#define SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES #define SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_H) #define SIMDE_ARM_NEON_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/types.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_TYPES_H) #define SIMDE_ARM_NEON_TYPES_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-common.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2017-2020 Evan Nemerson */ #if !defined(SIMDE_COMMON_H) #define SIMDE_COMMON_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/hedley.h :: */ /* Hedley - https://nemequ.github.io/hedley * Created by Evan Nemerson * * To the extent possible under law, the author(s) have dedicated all * copyright and related and neighboring rights to this software to * the public domain worldwide. This software is distributed without * any warranty. * * For details, see . * SPDX-License-Identifier: CC0-1.0 */ #if !defined(HEDLEY_VERSION) || (HEDLEY_VERSION < 16) #if defined(HEDLEY_VERSION) # undef HEDLEY_VERSION #endif #define HEDLEY_VERSION 16 #if defined(HEDLEY_STRINGIFY_EX) # undef HEDLEY_STRINGIFY_EX #endif #define HEDLEY_STRINGIFY_EX(x) #x #if defined(HEDLEY_STRINGIFY) # undef HEDLEY_STRINGIFY #endif #define HEDLEY_STRINGIFY(x) HEDLEY_STRINGIFY_EX(x) #if defined(HEDLEY_CONCAT_EX) # undef HEDLEY_CONCAT_EX #endif #define HEDLEY_CONCAT_EX(a,b) a##b #if defined(HEDLEY_CONCAT) # undef HEDLEY_CONCAT #endif #define HEDLEY_CONCAT(a,b) HEDLEY_CONCAT_EX(a,b) #if defined(HEDLEY_CONCAT3_EX) # undef HEDLEY_CONCAT3_EX #endif #define HEDLEY_CONCAT3_EX(a,b,c) a##b##c #if defined(HEDLEY_CONCAT3) # undef HEDLEY_CONCAT3 #endif #define HEDLEY_CONCAT3(a,b,c) HEDLEY_CONCAT3_EX(a,b,c) #if defined(HEDLEY_VERSION_ENCODE) # undef HEDLEY_VERSION_ENCODE #endif #define HEDLEY_VERSION_ENCODE(major,minor,revision) (((major) * 1000000) + ((minor) * 1000) + (revision)) #if defined(HEDLEY_VERSION_DECODE_MAJOR) # undef HEDLEY_VERSION_DECODE_MAJOR #endif #define HEDLEY_VERSION_DECODE_MAJOR(version) ((version) / 1000000) #if defined(HEDLEY_VERSION_DECODE_MINOR) # undef HEDLEY_VERSION_DECODE_MINOR #endif #define HEDLEY_VERSION_DECODE_MINOR(version) (((version) % 1000000) / 1000) #if defined(HEDLEY_VERSION_DECODE_REVISION) # undef HEDLEY_VERSION_DECODE_REVISION #endif #define HEDLEY_VERSION_DECODE_REVISION(version) ((version) % 1000) #if defined(HEDLEY_GNUC_VERSION) # undef HEDLEY_GNUC_VERSION #endif #if defined(__GNUC__) && defined(__GNUC_PATCHLEVEL__) # define HEDLEY_GNUC_VERSION HEDLEY_VERSION_ENCODE(__GNUC__, __GNUC_MINOR__, __GNUC_PATCHLEVEL__) #elif defined(__GNUC__) # define HEDLEY_GNUC_VERSION HEDLEY_VERSION_ENCODE(__GNUC__, __GNUC_MINOR__, 0) #endif #if defined(HEDLEY_GNUC_VERSION_CHECK) # undef HEDLEY_GNUC_VERSION_CHECK #endif #if defined(HEDLEY_GNUC_VERSION) # define HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) (HEDLEY_GNUC_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_MSVC_VERSION) # undef HEDLEY_MSVC_VERSION #endif #if defined(_MSC_FULL_VER) && (_MSC_FULL_VER >= 140000000) && !defined(__ICL) # define HEDLEY_MSVC_VERSION HEDLEY_VERSION_ENCODE(_MSC_FULL_VER / 10000000, (_MSC_FULL_VER % 10000000) / 100000, (_MSC_FULL_VER % 100000) / 100) #elif defined(_MSC_FULL_VER) && !defined(__ICL) # define HEDLEY_MSVC_VERSION HEDLEY_VERSION_ENCODE(_MSC_FULL_VER / 1000000, (_MSC_FULL_VER % 1000000) / 10000, (_MSC_FULL_VER % 10000) / 10) #elif defined(_MSC_VER) && !defined(__ICL) # define HEDLEY_MSVC_VERSION HEDLEY_VERSION_ENCODE(_MSC_VER / 100, _MSC_VER % 100, 0) #endif #if defined(HEDLEY_MSVC_VERSION_CHECK) # undef HEDLEY_MSVC_VERSION_CHECK #endif #if !defined(HEDLEY_MSVC_VERSION) # define HEDLEY_MSVC_VERSION_CHECK(major,minor,patch) (0) #elif defined(_MSC_VER) && (_MSC_VER >= 1400) # define HEDLEY_MSVC_VERSION_CHECK(major,minor,patch) (_MSC_FULL_VER >= ((major * 10000000) + (minor * 100000) + (patch))) #elif defined(_MSC_VER) && (_MSC_VER >= 1200) # define HEDLEY_MSVC_VERSION_CHECK(major,minor,patch) (_MSC_FULL_VER >= ((major * 1000000) + (minor * 10000) + (patch))) #else # define HEDLEY_MSVC_VERSION_CHECK(major,minor,patch) (_MSC_VER >= ((major * 100) + (minor))) #endif #if defined(HEDLEY_INTEL_VERSION) # undef HEDLEY_INTEL_VERSION #endif #if defined(__INTEL_COMPILER) && defined(__INTEL_COMPILER_UPDATE) && !defined(__ICL) # define HEDLEY_INTEL_VERSION HEDLEY_VERSION_ENCODE(__INTEL_COMPILER / 100, __INTEL_COMPILER % 100, __INTEL_COMPILER_UPDATE) #elif defined(__INTEL_COMPILER) && !defined(__ICL) # define HEDLEY_INTEL_VERSION HEDLEY_VERSION_ENCODE(__INTEL_COMPILER / 100, __INTEL_COMPILER % 100, 0) #endif #if defined(HEDLEY_INTEL_VERSION_CHECK) # undef HEDLEY_INTEL_VERSION_CHECK #endif #if defined(HEDLEY_INTEL_VERSION) # define HEDLEY_INTEL_VERSION_CHECK(major,minor,patch) (HEDLEY_INTEL_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_INTEL_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_INTEL_CL_VERSION) # undef HEDLEY_INTEL_CL_VERSION #endif #if defined(__INTEL_COMPILER) && defined(__INTEL_COMPILER_UPDATE) && defined(__ICL) # define HEDLEY_INTEL_CL_VERSION HEDLEY_VERSION_ENCODE(__INTEL_COMPILER, __INTEL_COMPILER_UPDATE, 0) #endif #if defined(HEDLEY_INTEL_CL_VERSION_CHECK) # undef HEDLEY_INTEL_CL_VERSION_CHECK #endif #if defined(HEDLEY_INTEL_CL_VERSION) # define HEDLEY_INTEL_CL_VERSION_CHECK(major,minor,patch) (HEDLEY_INTEL_CL_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_INTEL_CL_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_PGI_VERSION) # undef HEDLEY_PGI_VERSION #endif #if defined(__PGI) && defined(__PGIC__) && defined(__PGIC_MINOR__) && defined(__PGIC_PATCHLEVEL__) # define HEDLEY_PGI_VERSION HEDLEY_VERSION_ENCODE(__PGIC__, __PGIC_MINOR__, __PGIC_PATCHLEVEL__) #endif #if defined(HEDLEY_PGI_VERSION_CHECK) # undef HEDLEY_PGI_VERSION_CHECK #endif #if defined(HEDLEY_PGI_VERSION) # define HEDLEY_PGI_VERSION_CHECK(major,minor,patch) (HEDLEY_PGI_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_PGI_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_SUNPRO_VERSION) # undef HEDLEY_SUNPRO_VERSION #endif #if defined(__SUNPRO_C) && (__SUNPRO_C > 0x1000) # define HEDLEY_SUNPRO_VERSION HEDLEY_VERSION_ENCODE((((__SUNPRO_C >> 16) & 0xf) * 10) + ((__SUNPRO_C >> 12) & 0xf), (((__SUNPRO_C >> 8) & 0xf) * 10) + ((__SUNPRO_C >> 4) & 0xf), (__SUNPRO_C & 0xf) * 10) #elif defined(__SUNPRO_C) # define HEDLEY_SUNPRO_VERSION HEDLEY_VERSION_ENCODE((__SUNPRO_C >> 8) & 0xf, (__SUNPRO_C >> 4) & 0xf, (__SUNPRO_C) & 0xf) #elif defined(__SUNPRO_CC) && (__SUNPRO_CC > 0x1000) # define HEDLEY_SUNPRO_VERSION HEDLEY_VERSION_ENCODE((((__SUNPRO_CC >> 16) & 0xf) * 10) + ((__SUNPRO_CC >> 12) & 0xf), (((__SUNPRO_CC >> 8) & 0xf) * 10) + ((__SUNPRO_CC >> 4) & 0xf), (__SUNPRO_CC & 0xf) * 10) #elif defined(__SUNPRO_CC) # define HEDLEY_SUNPRO_VERSION HEDLEY_VERSION_ENCODE((__SUNPRO_CC >> 8) & 0xf, (__SUNPRO_CC >> 4) & 0xf, (__SUNPRO_CC) & 0xf) #endif #if defined(HEDLEY_SUNPRO_VERSION_CHECK) # undef HEDLEY_SUNPRO_VERSION_CHECK #endif #if defined(HEDLEY_SUNPRO_VERSION) # define HEDLEY_SUNPRO_VERSION_CHECK(major,minor,patch) (HEDLEY_SUNPRO_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_SUNPRO_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_EMSCRIPTEN_VERSION) # undef HEDLEY_EMSCRIPTEN_VERSION #endif #if defined(__EMSCRIPTEN__) # define HEDLEY_EMSCRIPTEN_VERSION HEDLEY_VERSION_ENCODE(__EMSCRIPTEN_major__, __EMSCRIPTEN_minor__, __EMSCRIPTEN_tiny__) #endif #if defined(HEDLEY_EMSCRIPTEN_VERSION_CHECK) # undef HEDLEY_EMSCRIPTEN_VERSION_CHECK #endif #if defined(HEDLEY_EMSCRIPTEN_VERSION) # define HEDLEY_EMSCRIPTEN_VERSION_CHECK(major,minor,patch) (HEDLEY_EMSCRIPTEN_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_EMSCRIPTEN_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_ARM_VERSION) # undef HEDLEY_ARM_VERSION #endif #if defined(__CC_ARM) && defined(__ARMCOMPILER_VERSION) # define HEDLEY_ARM_VERSION HEDLEY_VERSION_ENCODE(__ARMCOMPILER_VERSION / 1000000, (__ARMCOMPILER_VERSION % 1000000) / 10000, (__ARMCOMPILER_VERSION % 10000) / 100) #elif defined(__CC_ARM) && defined(__ARMCC_VERSION) # define HEDLEY_ARM_VERSION HEDLEY_VERSION_ENCODE(__ARMCC_VERSION / 1000000, (__ARMCC_VERSION % 1000000) / 10000, (__ARMCC_VERSION % 10000) / 100) #endif #if defined(HEDLEY_ARM_VERSION_CHECK) # undef HEDLEY_ARM_VERSION_CHECK #endif #if defined(HEDLEY_ARM_VERSION) # define HEDLEY_ARM_VERSION_CHECK(major,minor,patch) (HEDLEY_ARM_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_ARM_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_IBM_VERSION) # undef HEDLEY_IBM_VERSION #endif #if defined(__ibmxl__) # define HEDLEY_IBM_VERSION HEDLEY_VERSION_ENCODE(__ibmxl_version__, __ibmxl_release__, __ibmxl_modification__) #elif defined(__xlC__) && defined(__xlC_ver__) # define HEDLEY_IBM_VERSION HEDLEY_VERSION_ENCODE(__xlC__ >> 8, __xlC__ & 0xff, (__xlC_ver__ >> 8) & 0xff) #elif defined(__xlC__) # define HEDLEY_IBM_VERSION HEDLEY_VERSION_ENCODE(__xlC__ >> 8, __xlC__ & 0xff, 0) #endif #if defined(HEDLEY_IBM_VERSION_CHECK) # undef HEDLEY_IBM_VERSION_CHECK #endif #if defined(HEDLEY_IBM_VERSION) # define HEDLEY_IBM_VERSION_CHECK(major,minor,patch) (HEDLEY_IBM_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_IBM_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_VERSION) # undef HEDLEY_TI_VERSION #endif #if \ defined(__TI_COMPILER_VERSION__) && \ ( \ defined(__TMS470__) || defined(__TI_ARM__) || \ defined(__MSP430__) || \ defined(__TMS320C2000__) \ ) # if (__TI_COMPILER_VERSION__ >= 16000000) # define HEDLEY_TI_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) # endif #endif #if defined(HEDLEY_TI_VERSION_CHECK) # undef HEDLEY_TI_VERSION_CHECK #endif #if defined(HEDLEY_TI_VERSION) # define HEDLEY_TI_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_CL2000_VERSION) # undef HEDLEY_TI_CL2000_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && defined(__TMS320C2000__) # define HEDLEY_TI_CL2000_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_CL2000_VERSION_CHECK) # undef HEDLEY_TI_CL2000_VERSION_CHECK #endif #if defined(HEDLEY_TI_CL2000_VERSION) # define HEDLEY_TI_CL2000_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_CL2000_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_CL2000_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_CL430_VERSION) # undef HEDLEY_TI_CL430_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && defined(__MSP430__) # define HEDLEY_TI_CL430_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_CL430_VERSION_CHECK) # undef HEDLEY_TI_CL430_VERSION_CHECK #endif #if defined(HEDLEY_TI_CL430_VERSION) # define HEDLEY_TI_CL430_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_CL430_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_CL430_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_ARMCL_VERSION) # undef HEDLEY_TI_ARMCL_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && (defined(__TMS470__) || defined(__TI_ARM__)) # define HEDLEY_TI_ARMCL_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_ARMCL_VERSION_CHECK) # undef HEDLEY_TI_ARMCL_VERSION_CHECK #endif #if defined(HEDLEY_TI_ARMCL_VERSION) # define HEDLEY_TI_ARMCL_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_ARMCL_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_ARMCL_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_CL6X_VERSION) # undef HEDLEY_TI_CL6X_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && defined(__TMS320C6X__) # define HEDLEY_TI_CL6X_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_CL6X_VERSION_CHECK) # undef HEDLEY_TI_CL6X_VERSION_CHECK #endif #if defined(HEDLEY_TI_CL6X_VERSION) # define HEDLEY_TI_CL6X_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_CL6X_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_CL6X_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_CL7X_VERSION) # undef HEDLEY_TI_CL7X_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && defined(__C7000__) # define HEDLEY_TI_CL7X_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_CL7X_VERSION_CHECK) # undef HEDLEY_TI_CL7X_VERSION_CHECK #endif #if defined(HEDLEY_TI_CL7X_VERSION) # define HEDLEY_TI_CL7X_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_CL7X_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_CL7X_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TI_CLPRU_VERSION) # undef HEDLEY_TI_CLPRU_VERSION #endif #if defined(__TI_COMPILER_VERSION__) && defined(__PRU__) # define HEDLEY_TI_CLPRU_VERSION HEDLEY_VERSION_ENCODE(__TI_COMPILER_VERSION__ / 1000000, (__TI_COMPILER_VERSION__ % 1000000) / 1000, (__TI_COMPILER_VERSION__ % 1000)) #endif #if defined(HEDLEY_TI_CLPRU_VERSION_CHECK) # undef HEDLEY_TI_CLPRU_VERSION_CHECK #endif #if defined(HEDLEY_TI_CLPRU_VERSION) # define HEDLEY_TI_CLPRU_VERSION_CHECK(major,minor,patch) (HEDLEY_TI_CLPRU_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TI_CLPRU_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_CRAY_VERSION) # undef HEDLEY_CRAY_VERSION #endif #if defined(_CRAYC) # if defined(_RELEASE_PATCHLEVEL) # define HEDLEY_CRAY_VERSION HEDLEY_VERSION_ENCODE(_RELEASE_MAJOR, _RELEASE_MINOR, _RELEASE_PATCHLEVEL) # else # define HEDLEY_CRAY_VERSION HEDLEY_VERSION_ENCODE(_RELEASE_MAJOR, _RELEASE_MINOR, 0) # endif #endif #if defined(HEDLEY_CRAY_VERSION_CHECK) # undef HEDLEY_CRAY_VERSION_CHECK #endif #if defined(HEDLEY_CRAY_VERSION) # define HEDLEY_CRAY_VERSION_CHECK(major,minor,patch) (HEDLEY_CRAY_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_CRAY_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_IAR_VERSION) # undef HEDLEY_IAR_VERSION #endif #if defined(__IAR_SYSTEMS_ICC__) # if __VER__ > 1000 # define HEDLEY_IAR_VERSION HEDLEY_VERSION_ENCODE((__VER__ / 1000000), ((__VER__ / 1000) % 1000), (__VER__ % 1000)) # else # define HEDLEY_IAR_VERSION HEDLEY_VERSION_ENCODE(__VER__ / 100, __VER__ % 100, 0) # endif #endif #if defined(HEDLEY_IAR_VERSION_CHECK) # undef HEDLEY_IAR_VERSION_CHECK #endif #if defined(HEDLEY_IAR_VERSION) # define HEDLEY_IAR_VERSION_CHECK(major,minor,patch) (HEDLEY_IAR_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_IAR_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_TINYC_VERSION) # undef HEDLEY_TINYC_VERSION #endif #if defined(__TINYC__) # define HEDLEY_TINYC_VERSION HEDLEY_VERSION_ENCODE(__TINYC__ / 1000, (__TINYC__ / 100) % 10, __TINYC__ % 100) #endif #if defined(HEDLEY_TINYC_VERSION_CHECK) # undef HEDLEY_TINYC_VERSION_CHECK #endif #if defined(HEDLEY_TINYC_VERSION) # define HEDLEY_TINYC_VERSION_CHECK(major,minor,patch) (HEDLEY_TINYC_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_TINYC_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_DMC_VERSION) # undef HEDLEY_DMC_VERSION #endif #if defined(__DMC__) # define HEDLEY_DMC_VERSION HEDLEY_VERSION_ENCODE(__DMC__ >> 8, (__DMC__ >> 4) & 0xf, __DMC__ & 0xf) #endif #if defined(HEDLEY_DMC_VERSION_CHECK) # undef HEDLEY_DMC_VERSION_CHECK #endif #if defined(HEDLEY_DMC_VERSION) # define HEDLEY_DMC_VERSION_CHECK(major,minor,patch) (HEDLEY_DMC_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_DMC_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_COMPCERT_VERSION) # undef HEDLEY_COMPCERT_VERSION #endif #if defined(__COMPCERT_VERSION__) # define HEDLEY_COMPCERT_VERSION HEDLEY_VERSION_ENCODE(__COMPCERT_VERSION__ / 10000, (__COMPCERT_VERSION__ / 100) % 100, __COMPCERT_VERSION__ % 100) #endif #if defined(HEDLEY_COMPCERT_VERSION_CHECK) # undef HEDLEY_COMPCERT_VERSION_CHECK #endif #if defined(HEDLEY_COMPCERT_VERSION) # define HEDLEY_COMPCERT_VERSION_CHECK(major,minor,patch) (HEDLEY_COMPCERT_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_COMPCERT_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_PELLES_VERSION) # undef HEDLEY_PELLES_VERSION #endif #if defined(__POCC__) # define HEDLEY_PELLES_VERSION HEDLEY_VERSION_ENCODE(__POCC__ / 100, __POCC__ % 100, 0) #endif #if defined(HEDLEY_PELLES_VERSION_CHECK) # undef HEDLEY_PELLES_VERSION_CHECK #endif #if defined(HEDLEY_PELLES_VERSION) # define HEDLEY_PELLES_VERSION_CHECK(major,minor,patch) (HEDLEY_PELLES_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_PELLES_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_MCST_LCC_VERSION) # undef HEDLEY_MCST_LCC_VERSION #endif #if defined(__LCC__) && defined(__LCC_MINOR__) # define HEDLEY_MCST_LCC_VERSION HEDLEY_VERSION_ENCODE(__LCC__ / 100, __LCC__ % 100, __LCC_MINOR__) #endif #if defined(HEDLEY_MCST_LCC_VERSION_CHECK) # undef HEDLEY_MCST_LCC_VERSION_CHECK #endif #if defined(HEDLEY_MCST_LCC_VERSION) # define HEDLEY_MCST_LCC_VERSION_CHECK(major,minor,patch) (HEDLEY_MCST_LCC_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_MCST_LCC_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_GCC_VERSION) # undef HEDLEY_GCC_VERSION #endif #if \ defined(HEDLEY_GNUC_VERSION) && \ !defined(__clang__) && \ !defined(HEDLEY_INTEL_VERSION) && \ !defined(HEDLEY_PGI_VERSION) && \ !defined(HEDLEY_ARM_VERSION) && \ !defined(HEDLEY_CRAY_VERSION) && \ !defined(HEDLEY_TI_VERSION) && \ !defined(HEDLEY_TI_ARMCL_VERSION) && \ !defined(HEDLEY_TI_CL430_VERSION) && \ !defined(HEDLEY_TI_CL2000_VERSION) && \ !defined(HEDLEY_TI_CL6X_VERSION) && \ !defined(HEDLEY_TI_CL7X_VERSION) && \ !defined(HEDLEY_TI_CLPRU_VERSION) && \ !defined(__COMPCERT__) && \ !defined(HEDLEY_MCST_LCC_VERSION) # define HEDLEY_GCC_VERSION HEDLEY_GNUC_VERSION #endif #if defined(HEDLEY_GCC_VERSION_CHECK) # undef HEDLEY_GCC_VERSION_CHECK #endif #if defined(HEDLEY_GCC_VERSION) # define HEDLEY_GCC_VERSION_CHECK(major,minor,patch) (HEDLEY_GCC_VERSION >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else # define HEDLEY_GCC_VERSION_CHECK(major,minor,patch) (0) #endif #if defined(HEDLEY_HAS_ATTRIBUTE) # undef HEDLEY_HAS_ATTRIBUTE #endif #if \ defined(__has_attribute) && \ ( \ (!defined(HEDLEY_IAR_VERSION) || HEDLEY_IAR_VERSION_CHECK(8,5,9)) \ ) # define HEDLEY_HAS_ATTRIBUTE(attribute) __has_attribute(attribute) #else # define HEDLEY_HAS_ATTRIBUTE(attribute) (0) #endif #if defined(HEDLEY_GNUC_HAS_ATTRIBUTE) # undef HEDLEY_GNUC_HAS_ATTRIBUTE #endif #if defined(__has_attribute) # define HEDLEY_GNUC_HAS_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_HAS_ATTRIBUTE(attribute) #else # define HEDLEY_GNUC_HAS_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_ATTRIBUTE) # undef HEDLEY_GCC_HAS_ATTRIBUTE #endif #if defined(__has_attribute) # define HEDLEY_GCC_HAS_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_HAS_ATTRIBUTE(attribute) #else # define HEDLEY_GCC_HAS_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_CPP_ATTRIBUTE) # undef HEDLEY_HAS_CPP_ATTRIBUTE #endif #if \ defined(__has_cpp_attribute) && \ defined(__cplusplus) && \ (!defined(HEDLEY_SUNPRO_VERSION) || HEDLEY_SUNPRO_VERSION_CHECK(5,15,0)) # define HEDLEY_HAS_CPP_ATTRIBUTE(attribute) __has_cpp_attribute(attribute) #else # define HEDLEY_HAS_CPP_ATTRIBUTE(attribute) (0) #endif #if defined(HEDLEY_HAS_CPP_ATTRIBUTE_NS) # undef HEDLEY_HAS_CPP_ATTRIBUTE_NS #endif #if !defined(__cplusplus) || !defined(__has_cpp_attribute) # define HEDLEY_HAS_CPP_ATTRIBUTE_NS(ns,attribute) (0) #elif \ !defined(HEDLEY_PGI_VERSION) && \ !defined(HEDLEY_IAR_VERSION) && \ (!defined(HEDLEY_SUNPRO_VERSION) || HEDLEY_SUNPRO_VERSION_CHECK(5,15,0)) && \ (!defined(HEDLEY_MSVC_VERSION) || HEDLEY_MSVC_VERSION_CHECK(19,20,0)) # define HEDLEY_HAS_CPP_ATTRIBUTE_NS(ns,attribute) HEDLEY_HAS_CPP_ATTRIBUTE(ns::attribute) #else # define HEDLEY_HAS_CPP_ATTRIBUTE_NS(ns,attribute) (0) #endif #if defined(HEDLEY_GNUC_HAS_CPP_ATTRIBUTE) # undef HEDLEY_GNUC_HAS_CPP_ATTRIBUTE #endif #if defined(__has_cpp_attribute) && defined(__cplusplus) # define HEDLEY_GNUC_HAS_CPP_ATTRIBUTE(attribute,major,minor,patch) __has_cpp_attribute(attribute) #else # define HEDLEY_GNUC_HAS_CPP_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_CPP_ATTRIBUTE) # undef HEDLEY_GCC_HAS_CPP_ATTRIBUTE #endif #if defined(__has_cpp_attribute) && defined(__cplusplus) # define HEDLEY_GCC_HAS_CPP_ATTRIBUTE(attribute,major,minor,patch) __has_cpp_attribute(attribute) #else # define HEDLEY_GCC_HAS_CPP_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_BUILTIN) # undef HEDLEY_HAS_BUILTIN #endif #if defined(__has_builtin) # define HEDLEY_HAS_BUILTIN(builtin) __has_builtin(builtin) #else # define HEDLEY_HAS_BUILTIN(builtin) (0) #endif #if defined(HEDLEY_GNUC_HAS_BUILTIN) # undef HEDLEY_GNUC_HAS_BUILTIN #endif #if defined(__has_builtin) # define HEDLEY_GNUC_HAS_BUILTIN(builtin,major,minor,patch) __has_builtin(builtin) #else # define HEDLEY_GNUC_HAS_BUILTIN(builtin,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_BUILTIN) # undef HEDLEY_GCC_HAS_BUILTIN #endif #if defined(__has_builtin) # define HEDLEY_GCC_HAS_BUILTIN(builtin,major,minor,patch) __has_builtin(builtin) #else # define HEDLEY_GCC_HAS_BUILTIN(builtin,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_FEATURE) # undef HEDLEY_HAS_FEATURE #endif #if defined(__has_feature) # define HEDLEY_HAS_FEATURE(feature) __has_feature(feature) #else # define HEDLEY_HAS_FEATURE(feature) (0) #endif #if defined(HEDLEY_GNUC_HAS_FEATURE) # undef HEDLEY_GNUC_HAS_FEATURE #endif #if defined(__has_feature) # define HEDLEY_GNUC_HAS_FEATURE(feature,major,minor,patch) __has_feature(feature) #else # define HEDLEY_GNUC_HAS_FEATURE(feature,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_FEATURE) # undef HEDLEY_GCC_HAS_FEATURE #endif #if defined(__has_feature) # define HEDLEY_GCC_HAS_FEATURE(feature,major,minor,patch) __has_feature(feature) #else # define HEDLEY_GCC_HAS_FEATURE(feature,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_EXTENSION) # undef HEDLEY_HAS_EXTENSION #endif #if defined(__has_extension) # define HEDLEY_HAS_EXTENSION(extension) __has_extension(extension) #else # define HEDLEY_HAS_EXTENSION(extension) (0) #endif #if defined(HEDLEY_GNUC_HAS_EXTENSION) # undef HEDLEY_GNUC_HAS_EXTENSION #endif #if defined(__has_extension) # define HEDLEY_GNUC_HAS_EXTENSION(extension,major,minor,patch) __has_extension(extension) #else # define HEDLEY_GNUC_HAS_EXTENSION(extension,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_EXTENSION) # undef HEDLEY_GCC_HAS_EXTENSION #endif #if defined(__has_extension) # define HEDLEY_GCC_HAS_EXTENSION(extension,major,minor,patch) __has_extension(extension) #else # define HEDLEY_GCC_HAS_EXTENSION(extension,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_DECLSPEC_ATTRIBUTE) # undef HEDLEY_HAS_DECLSPEC_ATTRIBUTE #endif #if defined(__has_declspec_attribute) # define HEDLEY_HAS_DECLSPEC_ATTRIBUTE(attribute) __has_declspec_attribute(attribute) #else # define HEDLEY_HAS_DECLSPEC_ATTRIBUTE(attribute) (0) #endif #if defined(HEDLEY_GNUC_HAS_DECLSPEC_ATTRIBUTE) # undef HEDLEY_GNUC_HAS_DECLSPEC_ATTRIBUTE #endif #if defined(__has_declspec_attribute) # define HEDLEY_GNUC_HAS_DECLSPEC_ATTRIBUTE(attribute,major,minor,patch) __has_declspec_attribute(attribute) #else # define HEDLEY_GNUC_HAS_DECLSPEC_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_DECLSPEC_ATTRIBUTE) # undef HEDLEY_GCC_HAS_DECLSPEC_ATTRIBUTE #endif #if defined(__has_declspec_attribute) # define HEDLEY_GCC_HAS_DECLSPEC_ATTRIBUTE(attribute,major,minor,patch) __has_declspec_attribute(attribute) #else # define HEDLEY_GCC_HAS_DECLSPEC_ATTRIBUTE(attribute,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_HAS_WARNING) # undef HEDLEY_HAS_WARNING #endif #if defined(__has_warning) # define HEDLEY_HAS_WARNING(warning) __has_warning(warning) #else # define HEDLEY_HAS_WARNING(warning) (0) #endif #if defined(HEDLEY_GNUC_HAS_WARNING) # undef HEDLEY_GNUC_HAS_WARNING #endif #if defined(__has_warning) # define HEDLEY_GNUC_HAS_WARNING(warning,major,minor,patch) __has_warning(warning) #else # define HEDLEY_GNUC_HAS_WARNING(warning,major,minor,patch) HEDLEY_GNUC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_GCC_HAS_WARNING) # undef HEDLEY_GCC_HAS_WARNING #endif #if defined(__has_warning) # define HEDLEY_GCC_HAS_WARNING(warning,major,minor,patch) __has_warning(warning) #else # define HEDLEY_GCC_HAS_WARNING(warning,major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L)) || \ defined(__clang__) || \ HEDLEY_GCC_VERSION_CHECK(3,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_IAR_VERSION_CHECK(8,0,0) || \ HEDLEY_PGI_VERSION_CHECK(18,4,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(4,7,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(2,0,1) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_CRAY_VERSION_CHECK(5,0,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,17) || \ HEDLEY_SUNPRO_VERSION_CHECK(8,0,0) || \ (HEDLEY_IBM_VERSION_CHECK(10,1,0) && defined(__C99_PRAGMA_OPERATOR)) # define HEDLEY_PRAGMA(value) _Pragma(#value) #elif HEDLEY_MSVC_VERSION_CHECK(15,0,0) # define HEDLEY_PRAGMA(value) __pragma(value) #else # define HEDLEY_PRAGMA(value) #endif #if defined(HEDLEY_DIAGNOSTIC_PUSH) # undef HEDLEY_DIAGNOSTIC_PUSH #endif #if defined(HEDLEY_DIAGNOSTIC_POP) # undef HEDLEY_DIAGNOSTIC_POP #endif #if defined(__clang__) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("clang diagnostic push") # define HEDLEY_DIAGNOSTIC_POP _Pragma("clang diagnostic pop") #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("warning(push)") # define HEDLEY_DIAGNOSTIC_POP _Pragma("warning(pop)") #elif HEDLEY_GCC_VERSION_CHECK(4,6,0) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("GCC diagnostic push") # define HEDLEY_DIAGNOSTIC_POP _Pragma("GCC diagnostic pop") #elif \ HEDLEY_MSVC_VERSION_CHECK(15,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DIAGNOSTIC_PUSH __pragma(warning(push)) # define HEDLEY_DIAGNOSTIC_POP __pragma(warning(pop)) #elif HEDLEY_ARM_VERSION_CHECK(5,6,0) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("push") # define HEDLEY_DIAGNOSTIC_POP _Pragma("pop") #elif \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,4,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,1,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("diag_push") # define HEDLEY_DIAGNOSTIC_POP _Pragma("diag_pop") #elif HEDLEY_PELLES_VERSION_CHECK(2,90,0) # define HEDLEY_DIAGNOSTIC_PUSH _Pragma("warning(push)") # define HEDLEY_DIAGNOSTIC_POP _Pragma("warning(pop)") #else # define HEDLEY_DIAGNOSTIC_PUSH # define HEDLEY_DIAGNOSTIC_POP #endif /* HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_ is for HEDLEY INTERNAL USE ONLY. API subject to change without notice. */ #if defined(HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_) # undef HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_ #endif #if defined(__cplusplus) # if HEDLEY_HAS_WARNING("-Wc++98-compat") # if HEDLEY_HAS_WARNING("-Wc++17-extensions") # if HEDLEY_HAS_WARNING("-Wc++1z-extensions") # define HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(xpr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wc++98-compat\"") \ _Pragma("clang diagnostic ignored \"-Wc++17-extensions\"") \ _Pragma("clang diagnostic ignored \"-Wc++1z-extensions\"") \ xpr \ HEDLEY_DIAGNOSTIC_POP # else # define HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(xpr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wc++98-compat\"") \ _Pragma("clang diagnostic ignored \"-Wc++17-extensions\"") \ xpr \ HEDLEY_DIAGNOSTIC_POP # endif # else # define HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(xpr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wc++98-compat\"") \ xpr \ HEDLEY_DIAGNOSTIC_POP # endif # endif #endif #if !defined(HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_) # define HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(x) x #endif #if defined(HEDLEY_CONST_CAST) # undef HEDLEY_CONST_CAST #endif #if defined(__cplusplus) # define HEDLEY_CONST_CAST(T, expr) (const_cast(expr)) #elif \ HEDLEY_HAS_WARNING("-Wcast-qual") || \ HEDLEY_GCC_VERSION_CHECK(4,6,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_CONST_CAST(T, expr) (__extension__ ({ \ HEDLEY_DIAGNOSTIC_PUSH \ HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL \ ((T) (expr)); \ HEDLEY_DIAGNOSTIC_POP \ })) #else # define HEDLEY_CONST_CAST(T, expr) ((T) (expr)) #endif #if defined(HEDLEY_REINTERPRET_CAST) # undef HEDLEY_REINTERPRET_CAST #endif #if defined(__cplusplus) # define HEDLEY_REINTERPRET_CAST(T, expr) (reinterpret_cast(expr)) #else # define HEDLEY_REINTERPRET_CAST(T, expr) ((T) (expr)) #endif #if defined(HEDLEY_STATIC_CAST) # undef HEDLEY_STATIC_CAST #endif #if defined(__cplusplus) # define HEDLEY_STATIC_CAST(T, expr) (static_cast(expr)) #else # define HEDLEY_STATIC_CAST(T, expr) ((T) (expr)) #endif #if defined(HEDLEY_CPP_CAST) # undef HEDLEY_CPP_CAST #endif #if defined(__cplusplus) # if HEDLEY_HAS_WARNING("-Wold-style-cast") # define HEDLEY_CPP_CAST(T, expr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wold-style-cast\"") \ ((T) (expr)) \ HEDLEY_DIAGNOSTIC_POP # elif HEDLEY_IAR_VERSION_CHECK(8,3,0) # define HEDLEY_CPP_CAST(T, expr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("diag_suppress=Pe137") \ HEDLEY_DIAGNOSTIC_POP # else # define HEDLEY_CPP_CAST(T, expr) ((T) (expr)) # endif #else # define HEDLEY_CPP_CAST(T, expr) (expr) #endif #if defined(HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED) # undef HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED #endif #if HEDLEY_HAS_WARNING("-Wdeprecated-declarations") # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("clang diagnostic ignored \"-Wdeprecated-declarations\"") #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("warning(disable:1478 1786)") #elif HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED __pragma(warning(disable:1478 1786)) #elif HEDLEY_PGI_VERSION_CHECK(20,7,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("diag_suppress 1215,1216,1444,1445") #elif HEDLEY_PGI_VERSION_CHECK(17,10,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("diag_suppress 1215,1444") #elif HEDLEY_GCC_VERSION_CHECK(4,3,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("GCC diagnostic ignored \"-Wdeprecated-declarations\"") #elif HEDLEY_MSVC_VERSION_CHECK(15,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED __pragma(warning(disable:4996)) #elif HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("diag_suppress 1215,1444") #elif \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("diag_suppress 1291,1718") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,13,0) && !defined(__cplusplus) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("error_messages(off,E_DEPRECATED_ATT,E_DEPRECATED_ATT_MESS)") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,13,0) && defined(__cplusplus) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("error_messages(off,symdeprecated,symdeprecated2)") #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("diag_suppress=Pe1444,Pe1215") #elif HEDLEY_PELLES_VERSION_CHECK(2,90,0) # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED _Pragma("warn(disable:2241)") #else # define HEDLEY_DIAGNOSTIC_DISABLE_DEPRECATED #endif #if defined(HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS) # undef HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS #endif #if HEDLEY_HAS_WARNING("-Wunknown-pragmas") # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("clang diagnostic ignored \"-Wunknown-pragmas\"") #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("warning(disable:161)") #elif HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS __pragma(warning(disable:161)) #elif HEDLEY_PGI_VERSION_CHECK(17,10,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("diag_suppress 1675") #elif HEDLEY_GCC_VERSION_CHECK(4,3,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("GCC diagnostic ignored \"-Wunknown-pragmas\"") #elif HEDLEY_MSVC_VERSION_CHECK(15,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS __pragma(warning(disable:4068)) #elif \ HEDLEY_TI_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,3,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("diag_suppress 163") #elif HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("diag_suppress 163") #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("diag_suppress=Pe161") #elif HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS _Pragma("diag_suppress 161") #else # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS #endif #if defined(HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES) # undef HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES #endif #if HEDLEY_HAS_WARNING("-Wunknown-attributes") # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("clang diagnostic ignored \"-Wunknown-attributes\"") #elif HEDLEY_GCC_VERSION_CHECK(4,6,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("GCC diagnostic ignored \"-Wdeprecated-declarations\"") #elif HEDLEY_INTEL_VERSION_CHECK(17,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("warning(disable:1292)") #elif HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES __pragma(warning(disable:1292)) #elif HEDLEY_MSVC_VERSION_CHECK(19,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES __pragma(warning(disable:5030)) #elif HEDLEY_PGI_VERSION_CHECK(20,7,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("diag_suppress 1097,1098") #elif HEDLEY_PGI_VERSION_CHECK(17,10,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("diag_suppress 1097") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,14,0) && defined(__cplusplus) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("error_messages(off,attrskipunsup)") #elif \ HEDLEY_TI_VERSION_CHECK(18,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,3,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("diag_suppress 1173") #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("diag_suppress=Pe1097") #elif HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES _Pragma("diag_suppress 1097") #else # define HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_CPP_ATTRIBUTES #endif #if defined(HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL) # undef HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL #endif #if HEDLEY_HAS_WARNING("-Wcast-qual") # define HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL _Pragma("clang diagnostic ignored \"-Wcast-qual\"") #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL _Pragma("warning(disable:2203 2331)") #elif HEDLEY_GCC_VERSION_CHECK(3,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL _Pragma("GCC diagnostic ignored \"-Wcast-qual\"") #else # define HEDLEY_DIAGNOSTIC_DISABLE_CAST_QUAL #endif #if defined(HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION) # undef HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION #endif #if HEDLEY_HAS_WARNING("-Wunused-function") # define HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION _Pragma("clang diagnostic ignored \"-Wunused-function\"") #elif HEDLEY_GCC_VERSION_CHECK(3,4,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION _Pragma("GCC diagnostic ignored \"-Wunused-function\"") #elif HEDLEY_MSVC_VERSION_CHECK(1,0,0) # define HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION __pragma(warning(disable:4505)) #elif HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION _Pragma("diag_suppress 3142") #else # define HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION #endif #if defined(HEDLEY_DEPRECATED) # undef HEDLEY_DEPRECATED #endif #if defined(HEDLEY_DEPRECATED_FOR) # undef HEDLEY_DEPRECATED_FOR #endif #if \ HEDLEY_MSVC_VERSION_CHECK(14,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DEPRECATED(since) __declspec(deprecated("Since " # since)) # define HEDLEY_DEPRECATED_FOR(since, replacement) __declspec(deprecated("Since " #since "; use " #replacement)) #elif \ (HEDLEY_HAS_EXTENSION(attribute_deprecated_with_message) && !defined(HEDLEY_IAR_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(4,5,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(5,6,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,13,0) || \ HEDLEY_PGI_VERSION_CHECK(17,10,0) || \ HEDLEY_TI_VERSION_CHECK(18,1,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(18,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,3,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,3,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_DEPRECATED(since) __attribute__((__deprecated__("Since " #since))) # define HEDLEY_DEPRECATED_FOR(since, replacement) __attribute__((__deprecated__("Since " #since "; use " #replacement))) #elif defined(__cplusplus) && (__cplusplus >= 201402L) # define HEDLEY_DEPRECATED(since) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[deprecated("Since " #since)]]) # define HEDLEY_DEPRECATED_FOR(since, replacement) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[deprecated("Since " #since "; use " #replacement)]]) #elif \ HEDLEY_HAS_ATTRIBUTE(deprecated) || \ HEDLEY_GCC_VERSION_CHECK(3,1,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) || \ HEDLEY_IAR_VERSION_CHECK(8,10,0) # define HEDLEY_DEPRECATED(since) __attribute__((__deprecated__)) # define HEDLEY_DEPRECATED_FOR(since, replacement) __attribute__((__deprecated__)) #elif \ HEDLEY_MSVC_VERSION_CHECK(13,10,0) || \ HEDLEY_PELLES_VERSION_CHECK(6,50,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_DEPRECATED(since) __declspec(deprecated) # define HEDLEY_DEPRECATED_FOR(since, replacement) __declspec(deprecated) #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_DEPRECATED(since) _Pragma("deprecated") # define HEDLEY_DEPRECATED_FOR(since, replacement) _Pragma("deprecated") #else # define HEDLEY_DEPRECATED(since) # define HEDLEY_DEPRECATED_FOR(since, replacement) #endif #if defined(HEDLEY_UNAVAILABLE) # undef HEDLEY_UNAVAILABLE #endif #if \ HEDLEY_HAS_ATTRIBUTE(warning) || \ HEDLEY_GCC_VERSION_CHECK(4,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_UNAVAILABLE(available_since) __attribute__((__warning__("Not available until " #available_since))) #else # define HEDLEY_UNAVAILABLE(available_since) #endif #if defined(HEDLEY_WARN_UNUSED_RESULT) # undef HEDLEY_WARN_UNUSED_RESULT #endif #if defined(HEDLEY_WARN_UNUSED_RESULT_MSG) # undef HEDLEY_WARN_UNUSED_RESULT_MSG #endif #if \ HEDLEY_HAS_ATTRIBUTE(warn_unused_result) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ (HEDLEY_SUNPRO_VERSION_CHECK(5,15,0) && defined(__cplusplus)) || \ HEDLEY_PGI_VERSION_CHECK(17,10,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_WARN_UNUSED_RESULT __attribute__((__warn_unused_result__)) # define HEDLEY_WARN_UNUSED_RESULT_MSG(msg) __attribute__((__warn_unused_result__)) #elif (HEDLEY_HAS_CPP_ATTRIBUTE(nodiscard) >= 201907L) # define HEDLEY_WARN_UNUSED_RESULT HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[nodiscard]]) # define HEDLEY_WARN_UNUSED_RESULT_MSG(msg) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[nodiscard(msg)]]) #elif HEDLEY_HAS_CPP_ATTRIBUTE(nodiscard) # define HEDLEY_WARN_UNUSED_RESULT HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[nodiscard]]) # define HEDLEY_WARN_UNUSED_RESULT_MSG(msg) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[nodiscard]]) #elif defined(_Check_return_) /* SAL */ # define HEDLEY_WARN_UNUSED_RESULT _Check_return_ # define HEDLEY_WARN_UNUSED_RESULT_MSG(msg) _Check_return_ #else # define HEDLEY_WARN_UNUSED_RESULT # define HEDLEY_WARN_UNUSED_RESULT_MSG(msg) #endif #if defined(HEDLEY_SENTINEL) # undef HEDLEY_SENTINEL #endif #if \ HEDLEY_HAS_ATTRIBUTE(sentinel) || \ HEDLEY_GCC_VERSION_CHECK(4,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(5,4,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_SENTINEL(position) __attribute__((__sentinel__(position))) #else # define HEDLEY_SENTINEL(position) #endif #if defined(HEDLEY_NO_RETURN) # undef HEDLEY_NO_RETURN #endif #if HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_NO_RETURN __noreturn #elif \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_NO_RETURN __attribute__((__noreturn__)) #elif defined(__STDC_VERSION__) && __STDC_VERSION__ >= 201112L # define HEDLEY_NO_RETURN _Noreturn #elif defined(__cplusplus) && (__cplusplus >= 201103L) # define HEDLEY_NO_RETURN HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[noreturn]]) #elif \ HEDLEY_HAS_ATTRIBUTE(noreturn) || \ HEDLEY_GCC_VERSION_CHECK(3,2,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_IAR_VERSION_CHECK(8,10,0) # define HEDLEY_NO_RETURN __attribute__((__noreturn__)) #elif HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) # define HEDLEY_NO_RETURN _Pragma("does_not_return") #elif \ HEDLEY_MSVC_VERSION_CHECK(13,10,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_NO_RETURN __declspec(noreturn) #elif HEDLEY_TI_CL6X_VERSION_CHECK(6,0,0) && defined(__cplusplus) # define HEDLEY_NO_RETURN _Pragma("FUNC_NEVER_RETURNS;") #elif HEDLEY_COMPCERT_VERSION_CHECK(3,2,0) # define HEDLEY_NO_RETURN __attribute((noreturn)) #elif HEDLEY_PELLES_VERSION_CHECK(9,0,0) # define HEDLEY_NO_RETURN __declspec(noreturn) #else # define HEDLEY_NO_RETURN #endif #if defined(HEDLEY_NO_ESCAPE) # undef HEDLEY_NO_ESCAPE #endif #if HEDLEY_HAS_ATTRIBUTE(noescape) # define HEDLEY_NO_ESCAPE __attribute__((__noescape__)) #else # define HEDLEY_NO_ESCAPE #endif #if defined(HEDLEY_UNREACHABLE) # undef HEDLEY_UNREACHABLE #endif #if defined(HEDLEY_UNREACHABLE_RETURN) # undef HEDLEY_UNREACHABLE_RETURN #endif #if defined(HEDLEY_ASSUME) # undef HEDLEY_ASSUME #endif #if \ HEDLEY_MSVC_VERSION_CHECK(13,10,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_ASSUME(expr) __assume(expr) #elif HEDLEY_HAS_BUILTIN(__builtin_assume) # define HEDLEY_ASSUME(expr) __builtin_assume(expr) #elif \ HEDLEY_TI_CL2000_VERSION_CHECK(6,2,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(4,0,0) # if defined(__cplusplus) # define HEDLEY_ASSUME(expr) std::_nassert(expr) # else # define HEDLEY_ASSUME(expr) _nassert(expr) # endif #endif #if \ (HEDLEY_HAS_BUILTIN(__builtin_unreachable) && (!defined(HEDLEY_ARM_VERSION))) || \ HEDLEY_GCC_VERSION_CHECK(4,5,0) || \ HEDLEY_PGI_VERSION_CHECK(18,10,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,5) || \ HEDLEY_CRAY_VERSION_CHECK(10,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_UNREACHABLE() __builtin_unreachable() #elif defined(HEDLEY_ASSUME) # define HEDLEY_UNREACHABLE() HEDLEY_ASSUME(0) #endif #if !defined(HEDLEY_ASSUME) # if defined(HEDLEY_UNREACHABLE) # define HEDLEY_ASSUME(expr) HEDLEY_STATIC_CAST(void, ((expr) ? 1 : (HEDLEY_UNREACHABLE(), 1))) # else # define HEDLEY_ASSUME(expr) HEDLEY_STATIC_CAST(void, expr) # endif #endif #if defined(HEDLEY_UNREACHABLE) # if \ HEDLEY_TI_CL2000_VERSION_CHECK(6,2,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(4,0,0) # define HEDLEY_UNREACHABLE_RETURN(value) return (HEDLEY_STATIC_CAST(void, HEDLEY_ASSUME(0)), (value)) # else # define HEDLEY_UNREACHABLE_RETURN(value) HEDLEY_UNREACHABLE() # endif #else # define HEDLEY_UNREACHABLE_RETURN(value) return (value) #endif #if !defined(HEDLEY_UNREACHABLE) # define HEDLEY_UNREACHABLE() HEDLEY_ASSUME(0) #endif HEDLEY_DIAGNOSTIC_PUSH #if HEDLEY_HAS_WARNING("-Wpedantic") # pragma clang diagnostic ignored "-Wpedantic" #endif #if HEDLEY_HAS_WARNING("-Wc++98-compat-pedantic") && defined(__cplusplus) # pragma clang diagnostic ignored "-Wc++98-compat-pedantic" #endif #if HEDLEY_GCC_HAS_WARNING("-Wvariadic-macros",4,0,0) # if defined(__clang__) # pragma clang diagnostic ignored "-Wvariadic-macros" # elif defined(HEDLEY_GCC_VERSION) # pragma GCC diagnostic ignored "-Wvariadic-macros" # endif #endif #if defined(HEDLEY_NON_NULL) # undef HEDLEY_NON_NULL #endif #if \ HEDLEY_HAS_ATTRIBUTE(nonnull) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) # define HEDLEY_NON_NULL(...) __attribute__((__nonnull__(__VA_ARGS__))) #else # define HEDLEY_NON_NULL(...) #endif HEDLEY_DIAGNOSTIC_POP #if defined(HEDLEY_PRINTF_FORMAT) # undef HEDLEY_PRINTF_FORMAT #endif #if defined(__MINGW32__) && HEDLEY_GCC_HAS_ATTRIBUTE(format,4,4,0) && !defined(__USE_MINGW_ANSI_STDIO) # define HEDLEY_PRINTF_FORMAT(string_idx,first_to_check) __attribute__((__format__(ms_printf, string_idx, first_to_check))) #elif defined(__MINGW32__) && HEDLEY_GCC_HAS_ATTRIBUTE(format,4,4,0) && defined(__USE_MINGW_ANSI_STDIO) # define HEDLEY_PRINTF_FORMAT(string_idx,first_to_check) __attribute__((__format__(gnu_printf, string_idx, first_to_check))) #elif \ HEDLEY_HAS_ATTRIBUTE(format) || \ HEDLEY_GCC_VERSION_CHECK(3,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(5,6,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_PRINTF_FORMAT(string_idx,first_to_check) __attribute__((__format__(__printf__, string_idx, first_to_check))) #elif HEDLEY_PELLES_VERSION_CHECK(6,0,0) # define HEDLEY_PRINTF_FORMAT(string_idx,first_to_check) __declspec(vaformat(printf,string_idx,first_to_check)) #else # define HEDLEY_PRINTF_FORMAT(string_idx,first_to_check) #endif #if defined(HEDLEY_CONSTEXPR) # undef HEDLEY_CONSTEXPR #endif #if defined(__cplusplus) # if __cplusplus >= 201103L # define HEDLEY_CONSTEXPR HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(constexpr) # endif #endif #if !defined(HEDLEY_CONSTEXPR) # define HEDLEY_CONSTEXPR #endif #if defined(HEDLEY_PREDICT) # undef HEDLEY_PREDICT #endif #if defined(HEDLEY_LIKELY) # undef HEDLEY_LIKELY #endif #if defined(HEDLEY_UNLIKELY) # undef HEDLEY_UNLIKELY #endif #if defined(HEDLEY_UNPREDICTABLE) # undef HEDLEY_UNPREDICTABLE #endif #if HEDLEY_HAS_BUILTIN(__builtin_unpredictable) # define HEDLEY_UNPREDICTABLE(expr) __builtin_unpredictable((expr)) #endif #if \ (HEDLEY_HAS_BUILTIN(__builtin_expect_with_probability) && !defined(HEDLEY_PGI_VERSION) && !defined(HEDLEY_INTEL_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(9,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_PREDICT(expr, value, probability) __builtin_expect_with_probability( (expr), (value), (probability)) # define HEDLEY_PREDICT_TRUE(expr, probability) __builtin_expect_with_probability(!!(expr), 1 , (probability)) # define HEDLEY_PREDICT_FALSE(expr, probability) __builtin_expect_with_probability(!!(expr), 0 , (probability)) # define HEDLEY_LIKELY(expr) __builtin_expect (!!(expr), 1 ) # define HEDLEY_UNLIKELY(expr) __builtin_expect (!!(expr), 0 ) #elif \ (HEDLEY_HAS_BUILTIN(__builtin_expect) && !defined(HEDLEY_INTEL_CL_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(3,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ (HEDLEY_SUNPRO_VERSION_CHECK(5,15,0) && defined(__cplusplus)) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(4,7,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(3,1,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(6,1,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,27) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_PREDICT(expr, expected, probability) \ (((probability) >= 0.9) ? __builtin_expect((expr), (expected)) : (HEDLEY_STATIC_CAST(void, expected), (expr))) # define HEDLEY_PREDICT_TRUE(expr, probability) \ (__extension__ ({ \ double hedley_probability_ = (probability); \ ((hedley_probability_ >= 0.9) ? __builtin_expect(!!(expr), 1) : ((hedley_probability_ <= 0.1) ? __builtin_expect(!!(expr), 0) : !!(expr))); \ })) # define HEDLEY_PREDICT_FALSE(expr, probability) \ (__extension__ ({ \ double hedley_probability_ = (probability); \ ((hedley_probability_ >= 0.9) ? __builtin_expect(!!(expr), 0) : ((hedley_probability_ <= 0.1) ? __builtin_expect(!!(expr), 1) : !!(expr))); \ })) # define HEDLEY_LIKELY(expr) __builtin_expect(!!(expr), 1) # define HEDLEY_UNLIKELY(expr) __builtin_expect(!!(expr), 0) #else # define HEDLEY_PREDICT(expr, expected, probability) (HEDLEY_STATIC_CAST(void, expected), (expr)) # define HEDLEY_PREDICT_TRUE(expr, probability) (!!(expr)) # define HEDLEY_PREDICT_FALSE(expr, probability) (!!(expr)) # define HEDLEY_LIKELY(expr) (!!(expr)) # define HEDLEY_UNLIKELY(expr) (!!(expr)) #endif #if !defined(HEDLEY_UNPREDICTABLE) # define HEDLEY_UNPREDICTABLE(expr) HEDLEY_PREDICT(expr, 1, 0.5) #endif #if defined(HEDLEY_MALLOC) # undef HEDLEY_MALLOC #endif #if \ HEDLEY_HAS_ATTRIBUTE(malloc) || \ HEDLEY_GCC_VERSION_CHECK(3,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(12,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_MALLOC __attribute__((__malloc__)) #elif HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) # define HEDLEY_MALLOC _Pragma("returns_new_memory") #elif \ HEDLEY_MSVC_VERSION_CHECK(14,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_MALLOC __declspec(restrict) #else # define HEDLEY_MALLOC #endif #if defined(HEDLEY_PURE) # undef HEDLEY_PURE #endif #if \ HEDLEY_HAS_ATTRIBUTE(pure) || \ HEDLEY_GCC_VERSION_CHECK(2,96,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_PGI_VERSION_CHECK(17,10,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_PURE __attribute__((__pure__)) #elif HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) # define HEDLEY_PURE _Pragma("does_not_write_global_data") #elif defined(__cplusplus) && \ ( \ HEDLEY_TI_CL430_VERSION_CHECK(2,0,1) || \ HEDLEY_TI_CL6X_VERSION_CHECK(4,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) \ ) # define HEDLEY_PURE _Pragma("FUNC_IS_PURE;") #else # define HEDLEY_PURE #endif #if defined(HEDLEY_CONST) # undef HEDLEY_CONST #endif #if \ HEDLEY_HAS_ATTRIBUTE(const) || \ HEDLEY_GCC_VERSION_CHECK(2,5,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_PGI_VERSION_CHECK(17,10,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_CONST __attribute__((__const__)) #elif \ HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) # define HEDLEY_CONST _Pragma("no_side_effect") #else # define HEDLEY_CONST HEDLEY_PURE #endif #if defined(HEDLEY_RESTRICT) # undef HEDLEY_RESTRICT #endif #if defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) && !defined(__cplusplus) # define HEDLEY_RESTRICT restrict #elif \ HEDLEY_GCC_VERSION_CHECK(3,1,0) || \ HEDLEY_MSVC_VERSION_CHECK(14,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_PGI_VERSION_CHECK(17,10,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,2,4) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,1,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ (HEDLEY_SUNPRO_VERSION_CHECK(5,14,0) && defined(__cplusplus)) || \ HEDLEY_IAR_VERSION_CHECK(8,0,0) || \ defined(__clang__) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_RESTRICT __restrict #elif HEDLEY_SUNPRO_VERSION_CHECK(5,3,0) && !defined(__cplusplus) # define HEDLEY_RESTRICT _Restrict #else # define HEDLEY_RESTRICT #endif #if defined(HEDLEY_INLINE) # undef HEDLEY_INLINE #endif #if \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L)) || \ (defined(__cplusplus) && (__cplusplus >= 199711L)) # define HEDLEY_INLINE inline #elif \ defined(HEDLEY_GCC_VERSION) || \ HEDLEY_ARM_VERSION_CHECK(6,2,0) # define HEDLEY_INLINE __inline__ #elif \ HEDLEY_MSVC_VERSION_CHECK(12,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,1,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(3,1,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,2,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_INLINE __inline #else # define HEDLEY_INLINE #endif #if defined(HEDLEY_ALWAYS_INLINE) # undef HEDLEY_ALWAYS_INLINE #endif #if \ HEDLEY_HAS_ATTRIBUTE(always_inline) || \ HEDLEY_GCC_VERSION_CHECK(4,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) || \ HEDLEY_IAR_VERSION_CHECK(8,10,0) # define HEDLEY_ALWAYS_INLINE __attribute__((__always_inline__)) HEDLEY_INLINE #elif \ HEDLEY_MSVC_VERSION_CHECK(12,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_ALWAYS_INLINE __forceinline #elif defined(__cplusplus) && \ ( \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(6,1,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) \ ) # define HEDLEY_ALWAYS_INLINE _Pragma("FUNC_ALWAYS_INLINE;") #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_ALWAYS_INLINE _Pragma("inline=forced") #else # define HEDLEY_ALWAYS_INLINE HEDLEY_INLINE #endif #if defined(HEDLEY_NEVER_INLINE) # undef HEDLEY_NEVER_INLINE #endif #if \ HEDLEY_HAS_ATTRIBUTE(noinline) || \ HEDLEY_GCC_VERSION_CHECK(4,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(10,1,0) || \ HEDLEY_TI_VERSION_CHECK(15,12,0) || \ (HEDLEY_TI_ARMCL_VERSION_CHECK(4,8,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(5,2,0) || \ (HEDLEY_TI_CL2000_VERSION_CHECK(6,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL2000_VERSION_CHECK(6,4,0) || \ (HEDLEY_TI_CL430_VERSION_CHECK(4,0,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL430_VERSION_CHECK(4,3,0) || \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) || \ HEDLEY_IAR_VERSION_CHECK(8,10,0) # define HEDLEY_NEVER_INLINE __attribute__((__noinline__)) #elif \ HEDLEY_MSVC_VERSION_CHECK(13,10,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_NEVER_INLINE __declspec(noinline) #elif HEDLEY_PGI_VERSION_CHECK(10,2,0) # define HEDLEY_NEVER_INLINE _Pragma("noinline") #elif HEDLEY_TI_CL6X_VERSION_CHECK(6,0,0) && defined(__cplusplus) # define HEDLEY_NEVER_INLINE _Pragma("FUNC_CANNOT_INLINE;") #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_NEVER_INLINE _Pragma("inline=never") #elif HEDLEY_COMPCERT_VERSION_CHECK(3,2,0) # define HEDLEY_NEVER_INLINE __attribute((noinline)) #elif HEDLEY_PELLES_VERSION_CHECK(9,0,0) # define HEDLEY_NEVER_INLINE __declspec(noinline) #else # define HEDLEY_NEVER_INLINE #endif #if defined(HEDLEY_PRIVATE) # undef HEDLEY_PRIVATE #endif #if defined(HEDLEY_PUBLIC) # undef HEDLEY_PUBLIC #endif #if defined(HEDLEY_IMPORT) # undef HEDLEY_IMPORT #endif #if defined(_WIN32) || defined(__CYGWIN__) # define HEDLEY_PRIVATE # define HEDLEY_PUBLIC __declspec(dllexport) # define HEDLEY_IMPORT __declspec(dllimport) #else # if \ HEDLEY_HAS_ATTRIBUTE(visibility) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,11,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) || \ ( \ defined(__TI_EABI__) && \ ( \ (HEDLEY_TI_CL6X_VERSION_CHECK(7,2,0) && defined(__TI_GNU_ATTRIBUTE_SUPPORT__)) || \ HEDLEY_TI_CL6X_VERSION_CHECK(7,5,0) \ ) \ ) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_PRIVATE __attribute__((__visibility__("hidden"))) # define HEDLEY_PUBLIC __attribute__((__visibility__("default"))) # else # define HEDLEY_PRIVATE # define HEDLEY_PUBLIC # endif # define HEDLEY_IMPORT extern #endif #if defined(HEDLEY_NO_THROW) # undef HEDLEY_NO_THROW #endif #if \ HEDLEY_HAS_ATTRIBUTE(nothrow) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_NO_THROW __attribute__((__nothrow__)) #elif \ HEDLEY_MSVC_VERSION_CHECK(13,1,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) # define HEDLEY_NO_THROW __declspec(nothrow) #else # define HEDLEY_NO_THROW #endif #if defined(HEDLEY_FALL_THROUGH) # undef HEDLEY_FALL_THROUGH #endif #if defined(HEDLEY_INTEL_VERSION) # define HEDLEY_FALL_THROUGH #elif \ HEDLEY_HAS_ATTRIBUTE(fallthrough) || \ HEDLEY_GCC_VERSION_CHECK(7,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_FALL_THROUGH __attribute__((__fallthrough__)) #elif HEDLEY_HAS_CPP_ATTRIBUTE_NS(clang,fallthrough) # define HEDLEY_FALL_THROUGH HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[clang::fallthrough]]) #elif HEDLEY_HAS_CPP_ATTRIBUTE(fallthrough) # define HEDLEY_FALL_THROUGH HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_([[fallthrough]]) #elif defined(__fallthrough) /* SAL */ # define HEDLEY_FALL_THROUGH __fallthrough #else # define HEDLEY_FALL_THROUGH #endif #if defined(HEDLEY_RETURNS_NON_NULL) # undef HEDLEY_RETURNS_NON_NULL #endif #if \ HEDLEY_HAS_ATTRIBUTE(returns_nonnull) || \ HEDLEY_GCC_VERSION_CHECK(4,9,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_RETURNS_NON_NULL __attribute__((__returns_nonnull__)) #elif defined(_Ret_notnull_) /* SAL */ # define HEDLEY_RETURNS_NON_NULL _Ret_notnull_ #else # define HEDLEY_RETURNS_NON_NULL #endif #if defined(HEDLEY_ARRAY_PARAM) # undef HEDLEY_ARRAY_PARAM #endif #if \ defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) && \ !defined(__STDC_NO_VLA__) && \ !defined(__cplusplus) && \ !defined(HEDLEY_PGI_VERSION) && \ !defined(HEDLEY_TINYC_VERSION) # define HEDLEY_ARRAY_PARAM(name) (name) #else # define HEDLEY_ARRAY_PARAM(name) #endif #if defined(HEDLEY_IS_CONSTANT) # undef HEDLEY_IS_CONSTANT #endif #if defined(HEDLEY_REQUIRE_CONSTEXPR) # undef HEDLEY_REQUIRE_CONSTEXPR #endif /* HEDLEY_IS_CONSTEXPR_ is for HEDLEY INTERNAL USE ONLY. API subject to change without notice. */ #if defined(HEDLEY_IS_CONSTEXPR_) # undef HEDLEY_IS_CONSTEXPR_ #endif #if \ HEDLEY_HAS_BUILTIN(__builtin_constant_p) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,19) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(6,1,0) || \ (HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) && !defined(__cplusplus)) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define HEDLEY_IS_CONSTANT(expr) __builtin_constant_p(expr) #endif #if !defined(__cplusplus) # if \ HEDLEY_HAS_BUILTIN(__builtin_types_compatible_p) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_ARM_VERSION_CHECK(5,4,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,24) # if defined(__INTPTR_TYPE__) # define HEDLEY_IS_CONSTEXPR_(expr) __builtin_types_compatible_p(__typeof__((1 ? (void*) ((__INTPTR_TYPE__) ((expr) * 0)) : (int*) 0)), int*) # else # include # define HEDLEY_IS_CONSTEXPR_(expr) __builtin_types_compatible_p(__typeof__((1 ? (void*) ((intptr_t) ((expr) * 0)) : (int*) 0)), int*) # endif # elif \ ( \ defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L) && \ !defined(HEDLEY_SUNPRO_VERSION) && \ !defined(HEDLEY_PGI_VERSION) && \ !defined(HEDLEY_IAR_VERSION)) || \ (HEDLEY_HAS_EXTENSION(c_generic_selections) && !defined(HEDLEY_IAR_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(4,9,0) || \ HEDLEY_INTEL_VERSION_CHECK(17,0,0) || \ HEDLEY_IBM_VERSION_CHECK(12,1,0) || \ HEDLEY_ARM_VERSION_CHECK(5,3,0) # if defined(__INTPTR_TYPE__) # define HEDLEY_IS_CONSTEXPR_(expr) _Generic((1 ? (void*) ((__INTPTR_TYPE__) ((expr) * 0)) : (int*) 0), int*: 1, void*: 0) # else # include # define HEDLEY_IS_CONSTEXPR_(expr) _Generic((1 ? (void*) ((intptr_t) * 0) : (int*) 0), int*: 1, void*: 0) # endif # elif \ defined(HEDLEY_GCC_VERSION) || \ defined(HEDLEY_INTEL_VERSION) || \ defined(HEDLEY_TINYC_VERSION) || \ defined(HEDLEY_TI_ARMCL_VERSION) || \ HEDLEY_TI_CL430_VERSION_CHECK(18,12,0) || \ defined(HEDLEY_TI_CL2000_VERSION) || \ defined(HEDLEY_TI_CL6X_VERSION) || \ defined(HEDLEY_TI_CL7X_VERSION) || \ defined(HEDLEY_TI_CLPRU_VERSION) || \ defined(__clang__) # define HEDLEY_IS_CONSTEXPR_(expr) ( \ sizeof(void) != \ sizeof(*( \ 1 ? \ ((void*) ((expr) * 0L) ) : \ ((struct { char v[sizeof(void) * 2]; } *) 1) \ ) \ ) \ ) # endif #endif #if defined(HEDLEY_IS_CONSTEXPR_) # if !defined(HEDLEY_IS_CONSTANT) # define HEDLEY_IS_CONSTANT(expr) HEDLEY_IS_CONSTEXPR_(expr) # endif # define HEDLEY_REQUIRE_CONSTEXPR(expr) (HEDLEY_IS_CONSTEXPR_(expr) ? (expr) : (-1)) #else # if !defined(HEDLEY_IS_CONSTANT) # define HEDLEY_IS_CONSTANT(expr) (0) # endif # define HEDLEY_REQUIRE_CONSTEXPR(expr) (expr) #endif #if defined(HEDLEY_BEGIN_C_DECLS) # undef HEDLEY_BEGIN_C_DECLS #endif #if defined(HEDLEY_END_C_DECLS) # undef HEDLEY_END_C_DECLS #endif #if defined(HEDLEY_C_DECL) # undef HEDLEY_C_DECL #endif #if defined(__cplusplus) # define HEDLEY_BEGIN_C_DECLS extern "C" { # define HEDLEY_END_C_DECLS } # define HEDLEY_C_DECL extern "C" #else # define HEDLEY_BEGIN_C_DECLS # define HEDLEY_END_C_DECLS # define HEDLEY_C_DECL #endif #if defined(HEDLEY_STATIC_ASSERT) # undef HEDLEY_STATIC_ASSERT #endif #if \ !defined(__cplusplus) && ( \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L)) || \ (HEDLEY_HAS_FEATURE(c_static_assert) && !defined(HEDLEY_INTEL_CL_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(6,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ defined(_Static_assert) \ ) # define HEDLEY_STATIC_ASSERT(expr, message) _Static_assert(expr, message) #elif \ (defined(__cplusplus) && (__cplusplus >= 201103L)) || \ HEDLEY_MSVC_VERSION_CHECK(16,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_STATIC_ASSERT(expr, message) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(static_assert(expr, message)) #else # define HEDLEY_STATIC_ASSERT(expr, message) #endif #if defined(HEDLEY_NULL) # undef HEDLEY_NULL #endif #if defined(__cplusplus) # if __cplusplus >= 201103L # define HEDLEY_NULL HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(nullptr) # elif defined(NULL) # define HEDLEY_NULL NULL # else # define HEDLEY_NULL HEDLEY_STATIC_CAST(void*, 0) # endif #elif defined(NULL) # define HEDLEY_NULL NULL #else # define HEDLEY_NULL ((void*) 0) #endif #if defined(HEDLEY_MESSAGE) # undef HEDLEY_MESSAGE #endif #if HEDLEY_HAS_WARNING("-Wunknown-pragmas") # define HEDLEY_MESSAGE(msg) \ HEDLEY_DIAGNOSTIC_PUSH \ HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS \ HEDLEY_PRAGMA(message msg) \ HEDLEY_DIAGNOSTIC_POP #elif \ HEDLEY_GCC_VERSION_CHECK(4,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_MESSAGE(msg) HEDLEY_PRAGMA(message msg) #elif HEDLEY_CRAY_VERSION_CHECK(5,0,0) # define HEDLEY_MESSAGE(msg) HEDLEY_PRAGMA(_CRI message msg) #elif HEDLEY_IAR_VERSION_CHECK(8,0,0) # define HEDLEY_MESSAGE(msg) HEDLEY_PRAGMA(message(msg)) #elif HEDLEY_PELLES_VERSION_CHECK(2,0,0) # define HEDLEY_MESSAGE(msg) HEDLEY_PRAGMA(message(msg)) #else # define HEDLEY_MESSAGE(msg) #endif #if defined(HEDLEY_WARNING) # undef HEDLEY_WARNING #endif #if HEDLEY_HAS_WARNING("-Wunknown-pragmas") # define HEDLEY_WARNING(msg) \ HEDLEY_DIAGNOSTIC_PUSH \ HEDLEY_DIAGNOSTIC_DISABLE_UNKNOWN_PRAGMAS \ HEDLEY_PRAGMA(clang warning msg) \ HEDLEY_DIAGNOSTIC_POP #elif \ HEDLEY_GCC_VERSION_CHECK(4,8,0) || \ HEDLEY_PGI_VERSION_CHECK(18,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) # define HEDLEY_WARNING(msg) HEDLEY_PRAGMA(GCC warning msg) #elif \ HEDLEY_MSVC_VERSION_CHECK(15,0,0) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_WARNING(msg) HEDLEY_PRAGMA(message(msg)) #else # define HEDLEY_WARNING(msg) HEDLEY_MESSAGE(msg) #endif #if defined(HEDLEY_REQUIRE) # undef HEDLEY_REQUIRE #endif #if defined(HEDLEY_REQUIRE_MSG) # undef HEDLEY_REQUIRE_MSG #endif #if HEDLEY_HAS_ATTRIBUTE(diagnose_if) # if HEDLEY_HAS_WARNING("-Wgcc-compat") # define HEDLEY_REQUIRE(expr) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wgcc-compat\"") \ __attribute__((diagnose_if(!(expr), #expr, "error"))) \ HEDLEY_DIAGNOSTIC_POP # define HEDLEY_REQUIRE_MSG(expr,msg) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wgcc-compat\"") \ __attribute__((diagnose_if(!(expr), msg, "error"))) \ HEDLEY_DIAGNOSTIC_POP # else # define HEDLEY_REQUIRE(expr) __attribute__((diagnose_if(!(expr), #expr, "error"))) # define HEDLEY_REQUIRE_MSG(expr,msg) __attribute__((diagnose_if(!(expr), msg, "error"))) # endif #else # define HEDLEY_REQUIRE(expr) # define HEDLEY_REQUIRE_MSG(expr,msg) #endif #if defined(HEDLEY_FLAGS) # undef HEDLEY_FLAGS #endif #if HEDLEY_HAS_ATTRIBUTE(flag_enum) && (!defined(__cplusplus) || HEDLEY_HAS_WARNING("-Wbitfield-enum-conversion")) # define HEDLEY_FLAGS __attribute__((__flag_enum__)) #else # define HEDLEY_FLAGS #endif #if defined(HEDLEY_FLAGS_CAST) # undef HEDLEY_FLAGS_CAST #endif #if HEDLEY_INTEL_VERSION_CHECK(19,0,0) # define HEDLEY_FLAGS_CAST(T, expr) (__extension__ ({ \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("warning(disable:188)") \ ((T) (expr)); \ HEDLEY_DIAGNOSTIC_POP \ })) #else # define HEDLEY_FLAGS_CAST(T, expr) HEDLEY_STATIC_CAST(T, expr) #endif #if defined(HEDLEY_EMPTY_BASES) # undef HEDLEY_EMPTY_BASES #endif #if \ (HEDLEY_MSVC_VERSION_CHECK(19,0,23918) && !HEDLEY_MSVC_VERSION_CHECK(20,0,0)) || \ HEDLEY_INTEL_CL_VERSION_CHECK(2021,1,0) # define HEDLEY_EMPTY_BASES __declspec(empty_bases) #else # define HEDLEY_EMPTY_BASES #endif /* Remaining macros are deprecated. */ #if defined(HEDLEY_GCC_NOT_CLANG_VERSION_CHECK) # undef HEDLEY_GCC_NOT_CLANG_VERSION_CHECK #endif #if defined(__clang__) # define HEDLEY_GCC_NOT_CLANG_VERSION_CHECK(major,minor,patch) (0) #else # define HEDLEY_GCC_NOT_CLANG_VERSION_CHECK(major,minor,patch) HEDLEY_GCC_VERSION_CHECK(major,minor,patch) #endif #if defined(HEDLEY_CLANG_HAS_ATTRIBUTE) # undef HEDLEY_CLANG_HAS_ATTRIBUTE #endif #define HEDLEY_CLANG_HAS_ATTRIBUTE(attribute) HEDLEY_HAS_ATTRIBUTE(attribute) #if defined(HEDLEY_CLANG_HAS_CPP_ATTRIBUTE) # undef HEDLEY_CLANG_HAS_CPP_ATTRIBUTE #endif #define HEDLEY_CLANG_HAS_CPP_ATTRIBUTE(attribute) HEDLEY_HAS_CPP_ATTRIBUTE(attribute) #if defined(HEDLEY_CLANG_HAS_BUILTIN) # undef HEDLEY_CLANG_HAS_BUILTIN #endif #define HEDLEY_CLANG_HAS_BUILTIN(builtin) HEDLEY_HAS_BUILTIN(builtin) #if defined(HEDLEY_CLANG_HAS_FEATURE) # undef HEDLEY_CLANG_HAS_FEATURE #endif #define HEDLEY_CLANG_HAS_FEATURE(feature) HEDLEY_HAS_FEATURE(feature) #if defined(HEDLEY_CLANG_HAS_EXTENSION) # undef HEDLEY_CLANG_HAS_EXTENSION #endif #define HEDLEY_CLANG_HAS_EXTENSION(extension) HEDLEY_HAS_EXTENSION(extension) #if defined(HEDLEY_CLANG_HAS_DECLSPEC_DECLSPEC_ATTRIBUTE) # undef HEDLEY_CLANG_HAS_DECLSPEC_DECLSPEC_ATTRIBUTE #endif #define HEDLEY_CLANG_HAS_DECLSPEC_ATTRIBUTE(attribute) HEDLEY_HAS_DECLSPEC_ATTRIBUTE(attribute) #if defined(HEDLEY_CLANG_HAS_WARNING) # undef HEDLEY_CLANG_HAS_WARNING #endif #define HEDLEY_CLANG_HAS_WARNING(warning) HEDLEY_HAS_WARNING(warning) #endif /* !defined(HEDLEY_VERSION) || (HEDLEY_VERSION < X) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/hedley.h :: */ #define SIMDE_VERSION_MAJOR 0 #define SIMDE_VERSION_MINOR 7 #define SIMDE_VERSION_MICRO 3 #define SIMDE_VERSION HEDLEY_VERSION_ENCODE(SIMDE_VERSION_MAJOR, SIMDE_VERSION_MINOR, SIMDE_VERSION_MICRO) // Also update meson.build in the root directory of the repository #include #include /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-detect-clang.h :: */ /* Detect Clang Version * Created by Evan Nemerson * * To the extent possible under law, the author(s) have dedicated all * copyright and related and neighboring rights to this software to * the public domain worldwide. This software is distributed without * any warranty. * * For details, see . * SPDX-License-Identifier: CC0-1.0 */ /* This file was originally part of SIMDe * (). You're free to do with it as * you please, but I do have a few small requests: * * * If you make improvements, please submit them back to SIMDe * (at ) so others can * benefit from them. * * Please keep a link to SIMDe intact so people know where to submit * improvements. * * If you expose it publicly, please change the SIMDE_ prefix to * something specific to your project. * * The version numbers clang exposes (in the ___clang_major__, * __clang_minor__, and __clang_patchlevel__ macros) are unreliable. * Vendors such as Apple will define these values to their version * numbers; for example, "Apple Clang 4.0" is really clang 3.1, but * __clang_major__ and __clang_minor__ are defined to 4 and 0 * respectively, instead of 3 and 1. * * The solution is *usually* to use clang's feature detection macros * () * to determine if the feature you're interested in is available. This * generally works well, and it should probably be the first thing you * try. Unfortunately, it's not possible to check for everything. In * particular, compiler bugs. * * This file just uses the feature checking macros to detect features * added in specific versions of clang to identify which version of * clang the compiler is based on. * * Right now it only goes back to 3.6, but I'm happy to accept patches * to go back further. And, of course, newer versions are welcome if * they're not already present, and if you find a way to detect a point * release that would be great, too! */ #if !defined(SIMDE_DETECT_CLANG_H) #define SIMDE_DETECT_CLANG_H 1 /* Attempt to detect the upstream clang version number. I usually only * worry about major version numbers (at least for 4.0+), but if you * need more resolution I'm happy to accept patches that are able to * detect minor versions as well. That said, you'll probably have a * hard time with detection since AFAIK most minor releases don't add * anything we can detect. */ #if defined(__clang__) && !defined(SIMDE_DETECT_CLANG_VERSION) # if __has_warning("-Wformat-insufficient-args") # define SIMDE_DETECT_CLANG_VERSION 120000 # elif __has_warning("-Wimplicit-const-int-float-conversion") # define SIMDE_DETECT_CLANG_VERSION 110000 # elif __has_warning("-Wmisleading-indentation") # define SIMDE_DETECT_CLANG_VERSION 100000 # elif defined(__FILE_NAME__) # define SIMDE_DETECT_CLANG_VERSION 90000 # elif __has_warning("-Wextra-semi-stmt") || __has_builtin(__builtin_rotateleft32) # define SIMDE_DETECT_CLANG_VERSION 80000 # elif __has_warning("-Wc++98-compat-extra-semi") # define SIMDE_DETECT_CLANG_VERSION 70000 # elif __has_warning("-Wpragma-pack") # define SIMDE_DETECT_CLANG_VERSION 60000 # elif __has_warning("-Wbitfield-enum-conversion") # define SIMDE_DETECT_CLANG_VERSION 50000 # elif __has_attribute(diagnose_if) # define SIMDE_DETECT_CLANG_VERSION 40000 # elif __has_warning("-Wcomma") # define SIMDE_DETECT_CLANG_VERSION 39000 # elif __has_warning("-Wdouble-promotion") # define SIMDE_DETECT_CLANG_VERSION 38000 # elif __has_warning("-Wshift-negative-value") # define SIMDE_DETECT_CLANG_VERSION 37000 # elif __has_warning("-Wambiguous-ellipsis") # define SIMDE_DETECT_CLANG_VERSION 36000 # else # define SIMDE_DETECT_CLANG_VERSION 1 # endif #endif /* defined(__clang__) && !defined(SIMDE_DETECT_CLANG_VERSION) */ /* The SIMDE_DETECT_CLANG_VERSION_CHECK macro is pretty * straightforward; it returns true if the compiler is a derivative * of clang >= the specified version. * * Since this file is often (primarily?) useful for working around bugs * it is also helpful to have a macro which returns true if only if the * compiler is a version of clang *older* than the specified version to * make it a bit easier to ifdef regions to add code for older versions, * such as pragmas to disable a specific warning. */ #if defined(SIMDE_DETECT_CLANG_VERSION) # define SIMDE_DETECT_CLANG_VERSION_CHECK(major, minor, revision) (SIMDE_DETECT_CLANG_VERSION >= ((major * 10000) + (minor * 1000) + (revision))) # define SIMDE_DETECT_CLANG_VERSION_NOT(major, minor, revision) (SIMDE_DETECT_CLANG_VERSION < ((major * 10000) + (minor * 1000) + (revision))) #else # define SIMDE_DETECT_CLANG_VERSION_CHECK(major, minor, revision) (0) # define SIMDE_DETECT_CLANG_VERSION_NOT(major, minor, revision) (0) #endif #endif /* !defined(SIMDE_DETECT_CLANG_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-detect-clang.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-arch.h :: */ /* Architecture detection * Created by Evan Nemerson * * To the extent possible under law, the authors have waived all * copyright and related or neighboring rights to this code. For * details, see the Creative Commons Zero 1.0 Universal license at * * * SPDX-License-Identifier: CC0-1.0 * * Different compilers define different preprocessor macros for the * same architecture. This is an attempt to provide a single * interface which is usable on any compiler. * * In general, a macro named SIMDE_ARCH_* is defined for each * architecture the CPU supports. When there are multiple possible * versions, we try to define the macro to the target version. For * example, if you want to check for i586+, you could do something * like: * * #if defined(SIMDE_ARCH_X86) && (SIMDE_ARCH_X86 >= 5) * ... * #endif * * You could also just check that SIMDE_ARCH_X86 >= 5 without checking * if it's defined first, but some compilers may emit a warning about * an undefined macro being used (e.g., GCC with -Wundef). * * This was originally created for SIMDe * (hence the prefix), but this * header has no dependencies and may be used anywhere. It is * originally based on information from * , though it * has been enhanced with additional information. * * If you improve this file, or find a bug, please file the issue at * . If you copy this into * your project, even if you change the prefix, please keep the links * to SIMDe intact so others know where to report issues, submit * enhancements, and find the latest version. */ #if !defined(SIMDE_ARCH_H) #define SIMDE_ARCH_H /* Alpha */ #if defined(__alpha__) || defined(__alpha) || defined(_M_ALPHA) # if defined(__alpha_ev6__) # define SIMDE_ARCH_ALPHA 6 # elif defined(__alpha_ev5__) # define SIMDE_ARCH_ALPHA 5 # elif defined(__alpha_ev4__) # define SIMDE_ARCH_ALPHA 4 # else # define SIMDE_ARCH_ALPHA 1 # endif #endif #if defined(SIMDE_ARCH_ALPHA) # define SIMDE_ARCH_ALPHA_CHECK(version) ((version) <= SIMDE_ARCH_ALPHA) #else # define SIMDE_ARCH_ALPHA_CHECK(version) (0) #endif /* Atmel AVR */ #if defined(__AVR_ARCH__) # define SIMDE_ARCH_AVR __AVR_ARCH__ #endif /* AMD64 / x86_64 */ #if defined(__amd64__) || defined(__amd64) || defined(__x86_64__) || defined(__x86_64) || defined(_M_X64) || defined(_M_AMD64) # define SIMDE_ARCH_AMD64 1000 #endif /* ARM */ #if defined(__ARM_ARCH) # if __ARM_ARCH > 100 # define SIMDE_ARCH_ARM (__ARM_ARCH) # else # define SIMDE_ARCH_ARM (__ARM_ARCH * 100) # endif #elif defined(_M_ARM) # if _M_ARM > 100 # define SIMDE_ARCH_ARM (_M_ARM) # else # define SIMDE_ARCH_ARM (_M_ARM * 100) # endif #elif defined(__arm__) || defined(__thumb__) || defined(__TARGET_ARCH_ARM) || defined(_ARM) || defined(_M_ARM) || defined(_M_ARM) # define SIMDE_ARCH_ARM 1 #endif #if defined(SIMDE_ARCH_ARM) # define SIMDE_ARCH_ARM_CHECK(major, minor) (((major * 100) + (minor)) <= SIMDE_ARCH_ARM) #else # define SIMDE_ARCH_ARM_CHECK(major, minor) (0) #endif /* AArch64 */ #if defined(__aarch64__) || defined(_M_ARM64) # define SIMDE_ARCH_AARCH64 1000 #endif #if defined(SIMDE_ARCH_AARCH64) # define SIMDE_ARCH_AARCH64_CHECK(version) ((version) <= SIMDE_ARCH_AARCH64) #else # define SIMDE_ARCH_AARCH64_CHECK(version) (0) #endif /* ARM SIMD ISA extensions */ #if defined(__ARM_NEON) # if defined(SIMDE_ARCH_AARCH64) # define SIMDE_ARCH_ARM_NEON SIMDE_ARCH_AARCH64 # elif defined(SIMDE_ARCH_ARM) # define SIMDE_ARCH_ARM_NEON SIMDE_ARCH_ARM # endif #endif #if defined(__ARM_FEATURE_SVE) # define SIMDE_ARCH_ARM_SVE #endif /* Blackfin */ #if defined(__bfin) || defined(__BFIN__) || defined(__bfin__) # define SIMDE_ARCH_BLACKFIN 1 #endif /* CRIS */ #if defined(__CRIS_arch_version) # define SIMDE_ARCH_CRIS __CRIS_arch_version #elif defined(__cris__) || defined(__cris) || defined(__CRIS) || defined(__CRIS__) # define SIMDE_ARCH_CRIS 1 #endif /* Convex */ #if defined(__convex_c38__) # define SIMDE_ARCH_CONVEX 38 #elif defined(__convex_c34__) # define SIMDE_ARCH_CONVEX 34 #elif defined(__convex_c32__) # define SIMDE_ARCH_CONVEX 32 #elif defined(__convex_c2__) # define SIMDE_ARCH_CONVEX 2 #elif defined(__convex__) # define SIMDE_ARCH_CONVEX 1 #endif #if defined(SIMDE_ARCH_CONVEX) # define SIMDE_ARCH_CONVEX_CHECK(version) ((version) <= SIMDE_ARCH_CONVEX) #else # define SIMDE_ARCH_CONVEX_CHECK(version) (0) #endif /* Adapteva Epiphany */ #if defined(__epiphany__) # define SIMDE_ARCH_EPIPHANY 1 #endif /* Fujitsu FR-V */ #if defined(__frv__) # define SIMDE_ARCH_FRV 1 #endif /* H8/300 */ #if defined(__H8300__) # define SIMDE_ARCH_H8300 #endif /* Elbrus (8S, 8SV and successors) */ #if defined(__e2k__) # define SIMDE_ARCH_E2K #endif /* HP/PA / PA-RISC */ #if defined(__PA8000__) || defined(__HPPA20__) || defined(__RISC2_0__) || defined(_PA_RISC2_0) # define SIMDE_ARCH_HPPA 20 #elif defined(__PA7100__) || defined(__HPPA11__) || defined(_PA_RISC1_1) # define SIMDE_ARCH_HPPA 11 #elif defined(_PA_RISC1_0) # define SIMDE_ARCH_HPPA 10 #elif defined(__hppa__) || defined(__HPPA__) || defined(__hppa) # define SIMDE_ARCH_HPPA 1 #endif #if defined(SIMDE_ARCH_HPPA) # define SIMDE_ARCH_HPPA_CHECK(version) ((version) <= SIMDE_ARCH_HPPA) #else # define SIMDE_ARCH_HPPA_CHECK(version) (0) #endif /* x86 */ #if defined(_M_IX86) # define SIMDE_ARCH_X86 (_M_IX86 / 100) #elif defined(__I86__) # define SIMDE_ARCH_X86 __I86__ #elif defined(i686) || defined(__i686) || defined(__i686__) # define SIMDE_ARCH_X86 6 #elif defined(i586) || defined(__i586) || defined(__i586__) # define SIMDE_ARCH_X86 5 #elif defined(i486) || defined(__i486) || defined(__i486__) # define SIMDE_ARCH_X86 4 #elif defined(i386) || defined(__i386) || defined(__i386__) # define SIMDE_ARCH_X86 3 #elif defined(_X86_) || defined(__X86__) || defined(__THW_INTEL__) # define SIMDE_ARCH_X86 3 #endif #if defined(SIMDE_ARCH_X86) # define SIMDE_ARCH_X86_CHECK(version) ((version) <= SIMDE_ARCH_X86) #else # define SIMDE_ARCH_X86_CHECK(version) (0) #endif /* SIMD ISA extensions for x86/x86_64 and Elbrus */ #if defined(SIMDE_ARCH_X86) || defined(SIMDE_ARCH_AMD64) || defined(SIMDE_ARCH_E2K) # if defined(_M_IX86_FP) # define SIMDE_ARCH_X86_MMX # if (_M_IX86_FP >= 1) # define SIMDE_ARCH_X86_SSE 1 # endif # if (_M_IX86_FP >= 2) # define SIMDE_ARCH_X86_SSE2 1 # endif # elif defined(_M_X64) # define SIMDE_ARCH_X86_SSE 1 # define SIMDE_ARCH_X86_SSE2 1 # else # if defined(__MMX__) # define SIMDE_ARCH_X86_MMX 1 # endif # if defined(__SSE__) # define SIMDE_ARCH_X86_SSE 1 # endif # if defined(__SSE2__) # define SIMDE_ARCH_X86_SSE2 1 # endif # endif # if defined(__SSE3__) # define SIMDE_ARCH_X86_SSE3 1 # endif # if defined(__SSSE3__) # define SIMDE_ARCH_X86_SSSE3 1 # endif # if defined(__SSE4_1__) # define SIMDE_ARCH_X86_SSE4_1 1 # endif # if defined(__SSE4_2__) # define SIMDE_ARCH_X86_SSE4_2 1 # endif # if defined(__XOP__) # define SIMDE_ARCH_X86_XOP 1 # endif # if defined(__AVX__) # define SIMDE_ARCH_X86_AVX 1 # if !defined(SIMDE_ARCH_X86_SSE3) # define SIMDE_ARCH_X86_SSE3 1 # endif # if !defined(SIMDE_ARCH_X86_SSE4_1) # define SIMDE_ARCH_X86_SSE4_1 1 # endif # if !defined(SIMDE_ARCH_X86_SSE4_1) # define SIMDE_ARCH_X86_SSE4_2 1 # endif # endif # if defined(__AVX2__) # define SIMDE_ARCH_X86_AVX2 1 # endif # if defined(__FMA__) # define SIMDE_ARCH_X86_FMA 1 # if !defined(SIMDE_ARCH_X86_AVX) # define SIMDE_ARCH_X86_AVX 1 # endif # endif # if defined(__AVX512VP2INTERSECT__) # define SIMDE_ARCH_X86_AVX512VP2INTERSECT 1 # endif # if defined(__AVX512BITALG__) # define SIMDE_ARCH_X86_AVX512BITALG 1 # endif # if defined(__AVX512VBMI__) # define SIMDE_ARCH_X86_AVX512VBMI 1 # endif # if defined(__AVX512BW__) # define SIMDE_ARCH_X86_AVX512BW 1 # endif # if defined(__AVX512CD__) # define SIMDE_ARCH_X86_AVX512CD 1 # endif # if defined(__AVX512DQ__) # define SIMDE_ARCH_X86_AVX512DQ 1 # endif # if defined(__AVX512F__) # define SIMDE_ARCH_X86_AVX512F 1 # endif # if defined(__AVX512VL__) # define SIMDE_ARCH_X86_AVX512VL 1 # endif # if defined(__GFNI__) # define SIMDE_ARCH_X86_GFNI 1 # endif # if defined(__PCLMUL__) # define SIMDE_ARCH_X86_PCLMUL 1 # endif # if defined(__VPCLMULQDQ__) # define SIMDE_ARCH_X86_VPCLMULQDQ 1 # endif # if defined(__F16C__) # define SIMDE_ARCH_X86_F16C 1 # endif #endif /* Itanium */ #if defined(__ia64__) || defined(_IA64) || defined(__IA64__) || defined(__ia64) || defined(_M_IA64) || defined(__itanium__) # define SIMDE_ARCH_IA64 1 #endif /* Renesas M32R */ #if defined(__m32r__) || defined(__M32R__) # define SIMDE_ARCH_M32R #endif /* Motorola 68000 */ #if defined(__mc68060__) || defined(__MC68060__) # define SIMDE_ARCH_M68K 68060 #elif defined(__mc68040__) || defined(__MC68040__) # define SIMDE_ARCH_M68K 68040 #elif defined(__mc68030__) || defined(__MC68030__) # define SIMDE_ARCH_M68K 68030 #elif defined(__mc68020__) || defined(__MC68020__) # define SIMDE_ARCH_M68K 68020 #elif defined(__mc68010__) || defined(__MC68010__) # define SIMDE_ARCH_M68K 68010 #elif defined(__mc68000__) || defined(__MC68000__) # define SIMDE_ARCH_M68K 68000 #endif #if defined(SIMDE_ARCH_M68K) # define SIMDE_ARCH_M68K_CHECK(version) ((version) <= SIMDE_ARCH_M68K) #else # define SIMDE_ARCH_M68K_CHECK(version) (0) #endif /* Xilinx MicroBlaze */ #if defined(__MICROBLAZE__) || defined(__microblaze__) # define SIMDE_ARCH_MICROBLAZE #endif /* MIPS */ #if defined(_MIPS_ISA_MIPS64R2) # define SIMDE_ARCH_MIPS 642 #elif defined(_MIPS_ISA_MIPS64) # define SIMDE_ARCH_MIPS 640 #elif defined(_MIPS_ISA_MIPS32R2) # define SIMDE_ARCH_MIPS 322 #elif defined(_MIPS_ISA_MIPS32) # define SIMDE_ARCH_MIPS 320 #elif defined(_MIPS_ISA_MIPS4) # define SIMDE_ARCH_MIPS 4 #elif defined(_MIPS_ISA_MIPS3) # define SIMDE_ARCH_MIPS 3 #elif defined(_MIPS_ISA_MIPS2) # define SIMDE_ARCH_MIPS 2 #elif defined(_MIPS_ISA_MIPS1) # define SIMDE_ARCH_MIPS 1 #elif defined(_MIPS_ISA_MIPS) || defined(__mips) || defined(__MIPS__) # define SIMDE_ARCH_MIPS 1 #endif #if defined(SIMDE_ARCH_MIPS) # define SIMDE_ARCH_MIPS_CHECK(version) ((version) <= SIMDE_ARCH_MIPS) #else # define SIMDE_ARCH_MIPS_CHECK(version) (0) #endif #if defined(__mips_loongson_mmi) # define SIMDE_ARCH_MIPS_LOONGSON_MMI 1 #endif /* Matsushita MN10300 */ #if defined(__MN10300__) || defined(__mn10300__) # define SIMDE_ARCH_MN10300 1 #endif /* POWER */ #if defined(_M_PPC) # define SIMDE_ARCH_POWER _M_PPC #elif defined(_ARCH_PWR9) # define SIMDE_ARCH_POWER 900 #elif defined(_ARCH_PWR8) # define SIMDE_ARCH_POWER 800 #elif defined(_ARCH_PWR7) # define SIMDE_ARCH_POWER 700 #elif defined(_ARCH_PWR6) # define SIMDE_ARCH_POWER 600 #elif defined(_ARCH_PWR5) # define SIMDE_ARCH_POWER 500 #elif defined(_ARCH_PWR4) # define SIMDE_ARCH_POWER 400 #elif defined(_ARCH_440) || defined(__ppc440__) # define SIMDE_ARCH_POWER 440 #elif defined(_ARCH_450) || defined(__ppc450__) # define SIMDE_ARCH_POWER 450 #elif defined(_ARCH_601) || defined(__ppc601__) # define SIMDE_ARCH_POWER 601 #elif defined(_ARCH_603) || defined(__ppc603__) # define SIMDE_ARCH_POWER 603 #elif defined(_ARCH_604) || defined(__ppc604__) # define SIMDE_ARCH_POWER 604 #elif defined(_ARCH_605) || defined(__ppc605__) # define SIMDE_ARCH_POWER 605 #elif defined(_ARCH_620) || defined(__ppc620__) # define SIMDE_ARCH_POWER 620 #elif defined(__powerpc) || defined(__powerpc__) || defined(__POWERPC__) || defined(__ppc__) || defined(__PPC__) || defined(_ARCH_PPC) || defined(__ppc) # define SIMDE_ARCH_POWER 1 #endif #if defined(SIMDE_ARCH_POWER) #define SIMDE_ARCH_POWER_CHECK(version) ((version) <= SIMDE_ARCH_POWER) #else #define SIMDE_ARCH_POWER_CHECK(version) (0) #endif #if defined(__ALTIVEC__) # define SIMDE_ARCH_POWER_ALTIVEC SIMDE_ARCH_POWER #endif #if defined(SIMDE_ARCH_POWER) #define SIMDE_ARCH_POWER_ALTIVEC_CHECK(version) ((version) <= SIMDE_ARCH_POWER) #else #define SIMDE_ARCH_POWER_ALTIVEC_CHECK(version) (0) #endif /* SPARC */ #if defined(__sparc_v9__) || defined(__sparcv9) # define SIMDE_ARCH_SPARC 9 #elif defined(__sparc_v8__) || defined(__sparcv8) # define SIMDE_ARCH_SPARC 8 #elif defined(__sparc_v7__) || defined(__sparcv7) # define SIMDE_ARCH_SPARC 7 #elif defined(__sparc_v6__) || defined(__sparcv6) # define SIMDE_ARCH_SPARC 6 #elif defined(__sparc_v5__) || defined(__sparcv5) # define SIMDE_ARCH_SPARC 5 #elif defined(__sparc_v4__) || defined(__sparcv4) # define SIMDE_ARCH_SPARC 4 #elif defined(__sparc_v3__) || defined(__sparcv3) # define SIMDE_ARCH_SPARC 3 #elif defined(__sparc_v2__) || defined(__sparcv2) # define SIMDE_ARCH_SPARC 2 #elif defined(__sparc_v1__) || defined(__sparcv1) # define SIMDE_ARCH_SPARC 1 #elif defined(__sparc__) || defined(__sparc) # define SIMDE_ARCH_SPARC 1 #endif #if defined(SIMDE_ARCH_SPARC) #define SIMDE_ARCH_SPARC_CHECK(version) ((version) <= SIMDE_ARCH_SPARC) #else #define SIMDE_ARCH_SPARC_CHECK(version) (0) #endif /* SuperH */ #if defined(__sh5__) || defined(__SH5__) # define SIMDE_ARCH_SUPERH 5 #elif defined(__sh4__) || defined(__SH4__) # define SIMDE_ARCH_SUPERH 4 #elif defined(__sh3__) || defined(__SH3__) # define SIMDE_ARCH_SUPERH 3 #elif defined(__sh2__) || defined(__SH2__) # define SIMDE_ARCH_SUPERH 2 #elif defined(__sh1__) || defined(__SH1__) # define SIMDE_ARCH_SUPERH 1 #elif defined(__sh__) || defined(__SH__) # define SIMDE_ARCH_SUPERH 1 #endif /* IBM System z */ #if defined(__370__) || defined(__THW_370__) || defined(__s390__) || defined(__s390x__) || defined(__zarch__) || defined(__SYSC_ZARCH__) # define SIMDE_ARCH_ZARCH __ARCH__ #endif #if defined(SIMDE_ARCH_ZARCH) #define SIMDE_ARCH_ZARCH_CHECK(version) ((version) <= SIMDE_ARCH_ZARCH) #else #define SIMDE_ARCH_ZARCH_CHECK(version) (0) #endif #if defined(SIMDE_ARCH_ZARCH) && defined(__VEC__) #define SIMDE_ARCH_ZARCH_ZVECTOR SIMDE_ARCH_ZARCH #endif /* TMS320 DSP */ #if defined(_TMS320C6740) || defined(__TMS320C6740__) # define SIMDE_ARCH_TMS320 6740 #elif defined(_TMS320C6700_PLUS) || defined(__TMS320C6700_PLUS__) # define SIMDE_ARCH_TMS320 6701 #elif defined(_TMS320C6700) || defined(__TMS320C6700__) # define SIMDE_ARCH_TMS320 6700 #elif defined(_TMS320C6600) || defined(__TMS320C6600__) # define SIMDE_ARCH_TMS320 6600 #elif defined(_TMS320C6400_PLUS) || defined(__TMS320C6400_PLUS__) # define SIMDE_ARCH_TMS320 6401 #elif defined(_TMS320C6400) || defined(__TMS320C6400__) # define SIMDE_ARCH_TMS320 6400 #elif defined(_TMS320C6200) || defined(__TMS320C6200__) # define SIMDE_ARCH_TMS320 6200 #elif defined(_TMS320C55X) || defined(__TMS320C55X__) # define SIMDE_ARCH_TMS320 550 #elif defined(_TMS320C54X) || defined(__TMS320C54X__) # define SIMDE_ARCH_TMS320 540 #elif defined(_TMS320C28X) || defined(__TMS320C28X__) # define SIMDE_ARCH_TMS320 280 #endif #if defined(SIMDE_ARCH_TMS320) #define SIMDE_ARCH_TMS320_CHECK(version) ((version) <= SIMDE_ARCH_TMS320) #else #define SIMDE_ARCH_TMS320_CHECK(version) (0) #endif /* WebAssembly */ #if defined(__wasm__) # define SIMDE_ARCH_WASM 1 #endif #if defined(SIMDE_ARCH_WASM) && defined(__wasm_simd128__) # define SIMDE_ARCH_WASM_SIMD128 #endif /* Xtensa */ #if defined(__xtensa__) || defined(__XTENSA__) # define SIMDE_ARCH_XTENSA 1 #endif #endif /* !defined(SIMDE_ARCH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-arch.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-features.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ /* simde-arch.h is used to determine which features are available according to the compiler. However, we want to make it possible to forcibly enable or disable APIs */ #if !defined(SIMDE_FEATURES_H) #define SIMDE_FEATURES_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-diagnostic.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2017-2020 Evan Nemerson */ /* SIMDe targets a very wide range of standards and compilers, and our * goal is to compile cleanly even with extremely aggressive warnings * (i.e., -Weverything in clang, -Wextra in GCC, /W4 for MSVC, etc.) * treated as errors. * * While our preference is to resolve the underlying issue a given * diagnostic is warning us about, sometimes that's not possible. * Fixing a warning in one compiler may cause problems in another. * Sometimes a warning doesn't really apply to us (false positives), * and sometimes adhering to a warning would mean dropping a feature * we *know* the compiler supports since we have tested specifically * for the compiler or feature. * * When practical, warnings are only disabled for specific code. For * a list of warnings which are enabled by default in all SIMDe code, * see SIMDE_DISABLE_UNWANTED_DIAGNOSTICS. Note that we restore the * warning stack when SIMDe is done parsing, so code which includes * SIMDe is not deprived of these warnings. */ #if !defined(SIMDE_DIAGNOSTIC_H) #define SIMDE_DIAGNOSTIC_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* This is only to help us implement functions like _mm_undefined_ps. */ #if defined(SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_) #undef SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ #endif #if HEDLEY_HAS_WARNING("-Wuninitialized") #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("clang diagnostic ignored \"-Wuninitialized\"") #elif HEDLEY_GCC_VERSION_CHECK(4,2,0) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("GCC diagnostic ignored \"-Wuninitialized\"") #elif HEDLEY_PGI_VERSION_CHECK(19,10,0) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("diag_suppress 549") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,14,0) && defined(__cplusplus) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("error_messages(off,SEC_UNINITIALIZED_MEM_READ,SEC_UNDEFINED_RETURN_VALUE,unassigned)") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,14,0) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("error_messages(off,SEC_UNINITIALIZED_MEM_READ,SEC_UNDEFINED_RETURN_VALUE)") #elif HEDLEY_SUNPRO_VERSION_CHECK(5,12,0) && defined(__cplusplus) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("error_messages(off,unassigned)") #elif \ HEDLEY_TI_VERSION_CHECK(16,9,9) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,3,2) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("diag_suppress 551") #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ _Pragma("warning(disable:592)") #elif HEDLEY_MSVC_VERSION_CHECK(19,0,0) && !defined(__MSVC_RUNTIME_CHECKS) #define SIMDE_DIAGNOSTIC_DISABLE_UNINITIALIZED_ __pragma(warning(disable:4700)) #endif /* GCC emits a lot of "notes" about the ABI being different for things * in newer versions of GCC. We don't really care because all our * functions are inlined and don't generate ABI. */ #if HEDLEY_GCC_VERSION_CHECK(7,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_PSABI_ _Pragma("GCC diagnostic ignored \"-Wpsabi\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_PSABI_ #endif /* Since MMX uses x87 FP registers, you're supposed to call _mm_empty() * after each MMX function before any floating point instructions. * Some compilers warn about functions which use MMX functions but * don't call _mm_empty(). However, since SIMDe is implementyng the * MMX API we shouldn't be calling _mm_empty(); we leave it to the * caller to invoke simde_mm_empty(). */ #if HEDLEY_INTEL_VERSION_CHECK(19,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_NO_EMMS_INSTRUCTION_ _Pragma("warning(disable:13200 13203)") #elif defined(HEDLEY_MSVC_VERSION) #define SIMDE_DIAGNOSTIC_DISABLE_NO_EMMS_INSTRUCTION_ __pragma(warning(disable:4799)) #else #define SIMDE_DIAGNOSTIC_DISABLE_NO_EMMS_INSTRUCTION_ #endif /* Intel is pushing people to use OpenMP SIMD instead of Cilk+, so they * emit a diagnostic if you use #pragma simd instead of * #pragma omp simd. SIMDe supports OpenMP SIMD, you just need to * compile with -qopenmp or -qopenmp-simd and define * SIMDE_ENABLE_OPENMP. Cilk+ is just a fallback. */ #if HEDLEY_INTEL_VERSION_CHECK(18,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_SIMD_PRAGMA_DEPRECATED_ _Pragma("warning(disable:3948)") #else #define SIMDE_DIAGNOSTIC_DISABLE_SIMD_PRAGMA_DEPRECATED_ #endif /* MSVC emits a diagnostic when we call a function (like * simde_mm_set_epi32) while initializing a struct. We currently do * this a *lot* in the tests. */ #if \ defined(HEDLEY_MSVC_VERSION) #define SIMDE_DIAGNOSTIC_DISABLE_NON_CONSTANT_AGGREGATE_INITIALIZER_ __pragma(warning(disable:4204)) #else #define SIMDE_DIAGNOSTIC_DISABLE_NON_CONSTANT_AGGREGATE_INITIALIZER_ #endif /* This warning needs a lot of work. It is triggered if all you do is * pass the value to memcpy/__builtin_memcpy, or if you initialize a * member of the union, even if that member takes up the entire union. * Last tested with clang-10, hopefully things will improve in the * future; if clang fixes this I'd love to enable it. */ #if \ HEDLEY_HAS_WARNING("-Wconditional-uninitialized") #define SIMDE_DIAGNOSTIC_DISABLE_CONDITIONAL_UNINITIALIZED_ _Pragma("clang diagnostic ignored \"-Wconditional-uninitialized\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_CONDITIONAL_UNINITIALIZED_ #endif /* This warning is meant to catch things like `0.3 + 0.4 == 0.7`, which * will is false. However, SIMDe uses these operations exclusively * for things like _mm_cmpeq_ps, for which we really do want to check * for equality (or inequality). * * If someone wants to put together a SIMDE_FLOAT_EQUAL(a, op, b) macro * which just wraps a check in some code do disable this diagnostic I'd * be happy to accept it. */ #if \ HEDLEY_HAS_WARNING("-Wfloat-equal") || \ HEDLEY_GCC_VERSION_CHECK(3,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL_ _Pragma("GCC diagnostic ignored \"-Wfloat-equal\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL_ #endif /* This is because we use HEDLEY_STATIC_ASSERT for static assertions. * If Hedley can't find an implementation it will preprocess to * nothing, which means there will be a trailing semi-colon. */ #if HEDLEY_HAS_WARNING("-Wextra-semi") #define SIMDE_DIAGNOSTIC_DISABLE_EXTRA_SEMI_ _Pragma("clang diagnostic ignored \"-Wextra-semi\"") #elif HEDLEY_GCC_VERSION_CHECK(8,1,0) && defined(__cplusplus) #define SIMDE_DIAGNOSTIC_DISABLE_EXTRA_SEMI_ _Pragma("GCC diagnostic ignored \"-Wextra-semi\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_EXTRA_SEMI_ #endif /* We do use a few variadic macros, which technically aren't available * until C99 and C++11, but every compiler I'm aware of has supported * them for much longer. That said, usage is isolated to the test * suite and compilers known to support them. */ #if HEDLEY_HAS_WARNING("-Wvariadic-macros") || HEDLEY_GCC_VERSION_CHECK(4,0,0) #if HEDLEY_HAS_WARNING("-Wc++98-compat-pedantic") #define SIMDE_DIAGNOSTIC_DISABLE_VARIADIC_MACROS_ \ _Pragma("clang diagnostic ignored \"-Wvariadic-macros\"") \ _Pragma("clang diagnostic ignored \"-Wc++98-compat-pedantic\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_VARIADIC_MACROS_ _Pragma("GCC diagnostic ignored \"-Wvariadic-macros\"") #endif #else #define SIMDE_DIAGNOSTIC_DISABLE_VARIADIC_MACROS_ #endif /* emscripten requires us to use a __wasm_unimplemented_simd128__ macro * before we can access certain SIMD intrinsics, but this diagnostic * warns about it being a reserved name. It is a reserved name, but * it's reserved for the compiler and we are using it to convey * information to the compiler. * * This is also used when enabling native aliases since we don't get to * choose the macro names. */ #if HEDLEY_HAS_WARNING("-Wreserved-id-macro") #define SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_MACRO_ _Pragma("clang diagnostic ignored \"-Wreserved-id-macro\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_MACRO_ #endif /* Similar to above; types like simde__m128i are reserved due to the * double underscore, but we didn't choose them, Intel did. */ #if HEDLEY_HAS_WARNING("-Wreserved-identifier") #define SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_ _Pragma("clang diagnostic ignored \"-Wreserved-identifier\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_ #endif /* clang 3.8 warns about the packed attribute being unnecessary when * used in the _mm_loadu_* functions. That *may* be true for version * 3.8, but for later versions it is crucial in order to make unaligned * access safe. */ #if HEDLEY_HAS_WARNING("-Wpacked") #define SIMDE_DIAGNOSTIC_DISABLE_PACKED_ _Pragma("clang diagnostic ignored \"-Wpacked\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_PACKED_ #endif /* Triggered when assigning a float to a double implicitly. We use * explicit casts in SIMDe, this is only used in the test suite. */ #if HEDLEY_HAS_WARNING("-Wdouble-promotion") #define SIMDE_DIAGNOSTIC_DISABLE_DOUBLE_PROMOTION_ _Pragma("clang diagnostic ignored \"-Wdouble-promotion\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_DOUBLE_PROMOTION_ #endif /* Several compilers treat conformant array parameters as VLAs. We * test to make sure we're in C mode (C++ doesn't support CAPs), and * that the version of the standard supports CAPs. We also reject * some buggy compilers like MSVC (the logic is in Hedley if you want * to take a look), but with certain warnings enabled some compilers * still like to emit a diagnostic. */ #if HEDLEY_HAS_WARNING("-Wvla") #define SIMDE_DIAGNOSTIC_DISABLE_VLA_ _Pragma("clang diagnostic ignored \"-Wvla\"") #elif HEDLEY_GCC_VERSION_CHECK(4,3,0) #define SIMDE_DIAGNOSTIC_DISABLE_VLA_ _Pragma("GCC diagnostic ignored \"-Wvla\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_VLA_ #endif #if HEDLEY_HAS_WARNING("-Wused-but-marked-unused") #define SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED_ _Pragma("clang diagnostic ignored \"-Wused-but-marked-unused\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED_ #endif #if HEDLEY_HAS_WARNING("-Wpass-failed") #define SIMDE_DIAGNOSTIC_DISABLE_PASS_FAILED_ _Pragma("clang diagnostic ignored \"-Wpass-failed\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_PASS_FAILED_ #endif #if HEDLEY_HAS_WARNING("-Wpadded") #define SIMDE_DIAGNOSTIC_DISABLE_PADDED_ _Pragma("clang diagnostic ignored \"-Wpadded\"") #elif HEDLEY_MSVC_VERSION_CHECK(19,0,0) /* Likely goes back further */ #define SIMDE_DIAGNOSTIC_DISABLE_PADDED_ __pragma(warning(disable:4324)) #else #define SIMDE_DIAGNOSTIC_DISABLE_PADDED_ #endif #if HEDLEY_HAS_WARNING("-Wzero-as-null-pointer-constant") #define SIMDE_DIAGNOSTIC_DISABLE_ZERO_AS_NULL_POINTER_CONSTANT_ _Pragma("clang diagnostic ignored \"-Wzero-as-null-pointer-constant\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_ZERO_AS_NULL_POINTER_CONSTANT_ #endif #if HEDLEY_HAS_WARNING("-Wold-style-cast") #define SIMDE_DIAGNOSTIC_DISABLE_OLD_STYLE_CAST_ _Pragma("clang diagnostic ignored \"-Wold-style-cast\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_OLD_STYLE_CAST_ #endif #if HEDLEY_HAS_WARNING("-Wcast-function-type") || HEDLEY_GCC_VERSION_CHECK(8,0,0) #define SIMDE_DIAGNOSTIC_DISABLE_CAST_FUNCTION_TYPE_ _Pragma("GCC diagnostic ignored \"-Wcast-function-type\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_CAST_FUNCTION_TYPE_ #endif /* clang will emit this warning when we use C99 extensions whan not in * C99 mode, even though it does support this. In such cases we check * the compiler and version first, so we know it's not a problem. */ #if HEDLEY_HAS_WARNING("-Wc99-extensions") #define SIMDE_DIAGNOSTIC_DISABLE_C99_EXTENSIONS_ _Pragma("clang diagnostic ignored \"-Wc99-extensions\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_C99_EXTENSIONS_ #endif /* https://github.com/simd-everywhere/simde/issues/277 */ #if defined(HEDLEY_GCC_VERSION) && HEDLEY_GCC_VERSION_CHECK(4,6,0) && !HEDLEY_GCC_VERSION_CHECK(6,4,0) && defined(__cplusplus) #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_UNUSED_BUT_SET_VARIBALE_ _Pragma("GCC diagnostic ignored \"-Wunused-but-set-variable\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_UNUSED_BUT_SET_VARIBALE_ #endif /* This is the warning that you normally define _CRT_SECURE_NO_WARNINGS * to silence, but you have to do that before including anything and * that would require reordering includes. */ #if defined(_MSC_VER) #define SIMDE_DIAGNOSTIC_DISABLE_ANNEX_K_ __pragma(warning(disable:4996)) #else #define SIMDE_DIAGNOSTIC_DISABLE_ANNEX_K_ #endif /* Some compilers, such as clang, may use `long long` for 64-bit * integers, but `long long` triggers a diagnostic with * -Wc++98-compat-pedantic which says 'long long' is incompatible with * C++98. */ #if HEDLEY_HAS_WARNING("-Wc++98-compat-pedantic") #if HEDLEY_HAS_WARNING("-Wc++11-long-long") #define SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ \ _Pragma("clang diagnostic ignored \"-Wc++98-compat-pedantic\"") \ _Pragma("clang diagnostic ignored \"-Wc++11-long-long\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ _Pragma("clang diagnostic ignored \"-Wc++98-compat-pedantic\"") #endif #else #define SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ #endif /* Some problem as above */ #if HEDLEY_HAS_WARNING("-Wc++11-long-long") #define SIMDE_DIAGNOSTIC_DISABLE_CPP11_LONG_LONG_ _Pragma("clang diagnostic ignored \"-Wc++11-long-long\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_CPP11_LONG_LONG_ #endif /* emscripten emits this whenever stdin/stdout/stderr is used in a * macro. */ #if HEDLEY_HAS_WARNING("-Wdisabled-macro-expansion") #define SIMDE_DIAGNOSTIC_DISABLE_DISABLED_MACRO_EXPANSION_ _Pragma("clang diagnostic ignored \"-Wdisabled-macro-expansion\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_DISABLED_MACRO_EXPANSION_ #endif /* Clang uses C11 generic selections to implement some AltiVec * functions, which triggers this diagnostic when not compiling * in C11 mode */ #if HEDLEY_HAS_WARNING("-Wc11-extensions") #define SIMDE_DIAGNOSTIC_DISABLE_C11_EXTENSIONS_ _Pragma("clang diagnostic ignored \"-Wc11-extensions\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_C11_EXTENSIONS_ #endif /* Clang sometimes triggers this warning in macros in the AltiVec and * NEON headers, or due to missing functions. */ #if HEDLEY_HAS_WARNING("-Wvector-conversion") #define SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ _Pragma("clang diagnostic ignored \"-Wvector-conversion\"") /* For NEON, the situation with -Wvector-conversion in clang < 10 is * bad enough that we just disable the warning altogether. On x86, * clang has similar issues on several sse4.2+ intrinsics before 3.8. */ #if \ (defined(SIMDE_ARCH_ARM) && SIMDE_DETECT_CLANG_VERSION_NOT(10,0,0)) || \ SIMDE_DETECT_CLANG_VERSION_NOT(3,8,0) #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_VECTOR_CONVERSION_ SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif #else #define SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif #if !defined(SIMDE_DIAGNOSTIC_DISABLE_BUGGY_VECTOR_CONVERSION_) #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_VECTOR_CONVERSION_ #endif /* Prior to 5.0, clang didn't support disabling diagnostics in * statement exprs. As a result, some macros we use don't * properly silence warnings. */ #if SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) && HEDLEY_HAS_WARNING("-Wcast-qual") && HEDLEY_HAS_WARNING("-Wcast-align") #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_CASTS_ _Pragma("clang diagnostic ignored \"-Wcast-qual\"") _Pragma("clang diagnostic ignored \"-Wcast-align\"") #elif SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) && HEDLEY_HAS_WARNING("-Wcast-qual") #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_CASTS_ _Pragma("clang diagnostic ignored \"-Wcast-qual\"") #elif SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) && HEDLEY_HAS_WARNING("-Wcast-align") #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_CASTS_ _Pragma("clang diagnostic ignored \"-Wcast-align\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_BUGGY_CASTS_ #endif /* SLEEF triggers this a *lot* in their headers */ #if HEDLEY_HAS_WARNING("-Wignored-qualifiers") #define SIMDE_DIAGNOSTIC_DISABLE_IGNORED_QUALIFIERS_ _Pragma("clang diagnostic ignored \"-Wignored-qualifiers\"") #elif HEDLEY_GCC_VERSION_CHECK(4,3,0) #define SIMDE_DIAGNOSTIC_DISABLE_IGNORED_QUALIFIERS_ _Pragma("GCC diagnostic ignored \"-Wignored-qualifiers\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_IGNORED_QUALIFIERS_ #endif /* GCC emits this under some circumstances when using __int128 */ #if HEDLEY_GCC_VERSION_CHECK(4,8,0) #define SIMDE_DIAGNOSTIC_DISABLE_PEDANTIC_ _Pragma("GCC diagnostic ignored \"-Wpedantic\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_PEDANTIC_ #endif /* MSVC doesn't like (__assume(0), code) and will warn about code being * unreachable, but we want it there because not all compilers * understand the unreachable macro and will complain if it is missing. * I'm planning on adding a new macro to Hedley to handle this a bit * more elegantly, but until then... */ #if defined(HEDLEY_MSVC_VERSION) #define SIMDE_DIAGNOSTIC_DISABLE_UNREACHABLE_ __pragma(warning(disable:4702)) #else #define SIMDE_DIAGNOSTIC_DISABLE_UNREACHABLE_ #endif /* This is a false positive from GCC in a few places. */ #if HEDLEY_GCC_VERSION_CHECK(4,7,0) #define SIMDE_DIAGNOSTIC_DISABLE_MAYBE_UNINITIAZILED_ _Pragma("GCC diagnostic ignored \"-Wmaybe-uninitialized\"") #else #define SIMDE_DIAGNOSTIC_DISABLE_MAYBE_UNINITIAZILED_ #endif #if defined(SIMDE_ENABLE_NATIVE_ALIASES) #define SIMDE_DISABLE_UNWANTED_DIAGNOSTICS_NATIVE_ALIASES_ \ SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_MACRO_ #else #define SIMDE_DISABLE_UNWANTED_DIAGNOSTICS_NATIVE_ALIASES_ #endif /* Some native functions on E2K with instruction set < v6 are declared * as deprecated due to inefficiency. Still they are more efficient * than SIMDe implementation. So we're using them, and switching off * these deprecation warnings. */ #if defined(HEDLEY_MCST_LCC_VERSION) # define SIMDE_LCC_DISABLE_DEPRECATED_WARNINGS _Pragma("diag_suppress 1215,1444") # define SIMDE_LCC_REVERT_DEPRECATED_WARNINGS _Pragma("diag_default 1215,1444") #else # define SIMDE_LCC_DISABLE_DEPRECATED_WARNINGS # define SIMDE_LCC_REVERT_DEPRECATED_WARNINGS #endif #define SIMDE_DISABLE_UNWANTED_DIAGNOSTICS \ HEDLEY_DIAGNOSTIC_DISABLE_UNUSED_FUNCTION \ SIMDE_DISABLE_UNWANTED_DIAGNOSTICS_NATIVE_ALIASES_ \ SIMDE_DIAGNOSTIC_DISABLE_PSABI_ \ SIMDE_DIAGNOSTIC_DISABLE_NO_EMMS_INSTRUCTION_ \ SIMDE_DIAGNOSTIC_DISABLE_SIMD_PRAGMA_DEPRECATED_ \ SIMDE_DIAGNOSTIC_DISABLE_CONDITIONAL_UNINITIALIZED_ \ SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL_ \ SIMDE_DIAGNOSTIC_DISABLE_NON_CONSTANT_AGGREGATE_INITIALIZER_ \ SIMDE_DIAGNOSTIC_DISABLE_EXTRA_SEMI_ \ SIMDE_DIAGNOSTIC_DISABLE_VLA_ \ SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED_ \ SIMDE_DIAGNOSTIC_DISABLE_PASS_FAILED_ \ SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ \ SIMDE_DIAGNOSTIC_DISABLE_CPP11_LONG_LONG_ \ SIMDE_DIAGNOSTIC_DISABLE_BUGGY_UNUSED_BUT_SET_VARIBALE_ \ SIMDE_DIAGNOSTIC_DISABLE_BUGGY_CASTS_ \ SIMDE_DIAGNOSTIC_DISABLE_BUGGY_VECTOR_CONVERSION_ \ SIMDE_DIAGNOSTIC_DISABLE_RESERVED_ID_ #endif /* !defined(SIMDE_DIAGNOSTIC_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-diagnostic.h :: */ #if !defined(SIMDE_X86_SVML_NATIVE) && !defined(SIMDE_X86_SVML_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SVML) #define SIMDE_X86_SVML_NATIVE #endif #endif #if defined(SIMDE_X86_SVML_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512VP2INTERSECT_NATIVE) && !defined(SIMDE_X86_AVX512VP2INTERSECT_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512VP2INTERSECT) #define SIMDE_X86_AVX512VP2INTERSECT_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512VP2INTERSECT_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512BITALG_NATIVE) && !defined(SIMDE_X86_AVX512BITALG_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512BITALG) #define SIMDE_X86_AVX512BITALG_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512BITALG_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512VBMI_NATIVE) && !defined(SIMDE_X86_AVX512VBMI_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512VBMI) #define SIMDE_X86_AVX512VBMI_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512VBMI_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512CD_NATIVE) && !defined(SIMDE_X86_AVX512CD_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512CD) #define SIMDE_X86_AVX512CD_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512CD_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512DQ_NATIVE) && !defined(SIMDE_X86_AVX512DQ_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512DQ) #define SIMDE_X86_AVX512DQ_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512DQ_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512VL_NATIVE) && !defined(SIMDE_X86_AVX512VL_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512VL) #define SIMDE_X86_AVX512VL_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512VL_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512BW_NATIVE) && !defined(SIMDE_X86_AVX512BW_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512BW) #define SIMDE_X86_AVX512BW_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512BW_NATIVE) && !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_NATIVE #endif #if !defined(SIMDE_X86_AVX512F_NATIVE) && !defined(SIMDE_X86_AVX512F_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX512F) #define SIMDE_X86_AVX512F_NATIVE #endif #endif #if defined(SIMDE_X86_AVX512F_NATIVE) && !defined(SIMDE_X86_AVX2_NATIVE) #define SIMDE_X86_AVX2_NATIVE #endif #if !defined(SIMDE_X86_FMA_NATIVE) && !defined(SIMDE_X86_FMA_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_FMA) #define SIMDE_X86_FMA_NATIVE #endif #endif #if defined(SIMDE_X86_FMA_NATIVE) && !defined(SIMDE_X86_AVX_NATIVE) #define SIMDE_X86_AVX_NATIVE #endif #if !defined(SIMDE_X86_AVX2_NATIVE) && !defined(SIMDE_X86_AVX2_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX2) #define SIMDE_X86_AVX2_NATIVE #endif #endif #if defined(SIMDE_X86_AVX2_NATIVE) && !defined(SIMDE_X86_AVX_NATIVE) #define SIMDE_X86_AVX_NATIVE #endif #if !defined(SIMDE_X86_AVX_NATIVE) && !defined(SIMDE_X86_AVX_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_AVX) #define SIMDE_X86_AVX_NATIVE #endif #endif #if defined(SIMDE_X86_AVX_NATIVE) && !defined(SIMDE_X86_SSE4_1_NATIVE) #define SIMDE_X86_SSE4_2_NATIVE #endif #if !defined(SIMDE_X86_XOP_NATIVE) && !defined(SIMDE_X86_XOP_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_XOP) #define SIMDE_X86_XOP_NATIVE #endif #endif #if defined(SIMDE_X86_XOP_NATIVE) && !defined(SIMDE_X86_SSE4_2_NATIVE) #define SIMDE_X86_SSE4_2_NATIVE #endif #if !defined(SIMDE_X86_SSE4_2_NATIVE) && !defined(SIMDE_X86_SSE4_2_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSE4_2) #define SIMDE_X86_SSE4_2_NATIVE #endif #endif #if defined(SIMDE_X86_SSE4_2_NATIVE) && !defined(SIMDE_X86_SSE4_1_NATIVE) #define SIMDE_X86_SSE4_1_NATIVE #endif #if !defined(SIMDE_X86_SSE4_1_NATIVE) && !defined(SIMDE_X86_SSE4_1_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSE4_1) #define SIMDE_X86_SSE4_1_NATIVE #endif #endif #if defined(SIMDE_X86_SSE4_1_NATIVE) && !defined(SIMDE_X86_SSSE3_NATIVE) #define SIMDE_X86_SSSE3_NATIVE #endif #if !defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_X86_SSSE3_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSSE3) #define SIMDE_X86_SSSE3_NATIVE #endif #endif #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_X86_SSE3_NATIVE) #define SIMDE_X86_SSE3_NATIVE #endif #if !defined(SIMDE_X86_SSE3_NATIVE) && !defined(SIMDE_X86_SSE3_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSE3) #define SIMDE_X86_SSE3_NATIVE #endif #endif #if defined(SIMDE_X86_SSE3_NATIVE) && !defined(SIMDE_X86_SSE2_NATIVE) #define SIMDE_X86_SSE2_NATIVE #endif #if !defined(SIMDE_X86_SSE2_NATIVE) && !defined(SIMDE_X86_SSE2_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSE2) #define SIMDE_X86_SSE2_NATIVE #endif #endif #if defined(SIMDE_X86_SSE2_NATIVE) && !defined(SIMDE_X86_SSE_NATIVE) #define SIMDE_X86_SSE_NATIVE #endif #if !defined(SIMDE_X86_SSE_NATIVE) && !defined(SIMDE_X86_SSE_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_SSE) #define SIMDE_X86_SSE_NATIVE #endif #endif #if !defined(SIMDE_X86_MMX_NATIVE) && !defined(SIMDE_X86_MMX_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_MMX) #define SIMDE_X86_MMX_NATIVE #endif #endif #if !defined(SIMDE_X86_GFNI_NATIVE) && !defined(SIMDE_X86_GFNI_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_GFNI) #define SIMDE_X86_GFNI_NATIVE #endif #endif #if !defined(SIMDE_X86_PCLMUL_NATIVE) && !defined(SIMDE_X86_PCLMUL_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_PCLMUL) #define SIMDE_X86_PCLMUL_NATIVE #endif #endif #if !defined(SIMDE_X86_VPCLMULQDQ_NATIVE) && !defined(SIMDE_X86_VPCLMULQDQ_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_VPCLMULQDQ) #define SIMDE_X86_VPCLMULQDQ_NATIVE #endif #endif #if !defined(SIMDE_X86_F16C_NATIVE) && !defined(SIMDE_X86_F16C_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_X86_F16C) #define SIMDE_X86_F16C_NATIVE #endif #endif #if !defined(SIMDE_X86_SVML_NATIVE) && !defined(SIMDE_X86_SVML_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(__INTEL_COMPILER) #define SIMDE_X86_SVML_NATIVE #endif #endif #if defined(HEDLEY_MSVC_VERSION) #pragma warning(push) #pragma warning(disable:4799) #endif #if \ defined(SIMDE_X86_AVX_NATIVE) || defined(SIMDE_X86_GFNI_NATIVE) #include #elif defined(SIMDE_X86_SSE4_2_NATIVE) #include #elif defined(SIMDE_X86_SSE4_1_NATIVE) #include #elif defined(SIMDE_X86_SSSE3_NATIVE) #include #elif defined(SIMDE_X86_SSE3_NATIVE) #include #elif defined(SIMDE_X86_SSE2_NATIVE) #include #elif defined(SIMDE_X86_SSE_NATIVE) #include #elif defined(SIMDE_X86_MMX_NATIVE) #include #endif #if defined(SIMDE_X86_XOP_NATIVE) #if defined(_MSC_VER) #include #else #include #endif #endif #if defined(HEDLEY_MSVC_VERSION) #pragma warning(pop) #endif #if !defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_ARM_NEON_A64V8_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_ARM_NEON) && defined(SIMDE_ARCH_AARCH64) && SIMDE_ARCH_ARM_CHECK(8,0) #define SIMDE_ARM_NEON_A64V8_NATIVE #endif #endif #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_ARM_NEON_A32V8_NATIVE) #define SIMDE_ARM_NEON_A32V8_NATIVE #endif #if !defined(SIMDE_ARM_NEON_A32V8_NATIVE) && !defined(SIMDE_ARM_NEON_A32V8_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_ARM_NEON) && SIMDE_ARCH_ARM_CHECK(8,0) && (__ARM_NEON_FP & 0x02) #define SIMDE_ARM_NEON_A32V8_NATIVE #endif #endif #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define SIMDE_ARM_NEON_A32V7_NATIVE #endif #if !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(SIMDE_ARM_NEON_A32V7_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_ARM_NEON) && SIMDE_ARCH_ARM_CHECK(7,0) #define SIMDE_ARM_NEON_A32V7_NATIVE #endif #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #include #if defined(__ARM_FEATURE_FP16_VECTOR_ARITHMETIC) #include #endif #endif #if !defined(SIMDE_ARM_SVE_NATIVE) && !defined(SIMDE_ARM_SVE_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_ARM_SVE) #define SIMDE_ARM_SVE_NATIVE #include #endif #endif #if !defined(SIMDE_WASM_SIMD128_NATIVE) && !defined(SIMDE_WASM_SIMD128_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_WASM_SIMD128) #define SIMDE_WASM_SIMD128_NATIVE #endif #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) #include #endif #if !defined(SIMDE_POWER_ALTIVEC_P9_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P9_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_POWER_ALTIVEC_CHECK(900) #define SIMDE_POWER_ALTIVEC_P9_NATIVE #endif #endif #if defined(SIMDE_POWER_ALTIVEC_P9_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P8) #define SIMDE_POWER_ALTIVEC_P8_NATIVE #endif #if !defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P8_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_POWER_ALTIVEC_CHECK(800) #define SIMDE_POWER_ALTIVEC_P8_NATIVE #endif #endif #if defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P7) #define SIMDE_POWER_ALTIVEC_P7_NATIVE #endif #if !defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P7_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_POWER_ALTIVEC_CHECK(700) #define SIMDE_POWER_ALTIVEC_P7_NATIVE #endif #endif #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P6) #define SIMDE_POWER_ALTIVEC_P6_NATIVE #endif #if !defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P6_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_POWER_ALTIVEC_CHECK(600) #define SIMDE_POWER_ALTIVEC_P6_NATIVE #endif #endif #if defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P5) #define SIMDE_POWER_ALTIVEC_P5_NATIVE #endif #if !defined(SIMDE_POWER_ALTIVEC_P5_NATIVE) && !defined(SIMDE_POWER_ALTIVEC_P5_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_POWER_ALTIVEC_CHECK(500) #define SIMDE_POWER_ALTIVEC_P5_NATIVE #endif #endif #if !defined(SIMDE_ZARCH_ZVECTOR_15_NATIVE) && !defined(SIMDE_ZARCH_ZVECTOR_15_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_ZARCH_CHECK(13) && defined(SIMDE_ARCH_ZARCH_ZVECTOR) #define SIMDE_ZARCH_ZVECTOR_15_NATIVE #endif #endif #if !defined(SIMDE_ZARCH_ZVECTOR_14_NATIVE) && !defined(SIMDE_ZARCH_ZVECTOR_14_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_ZARCH_CHECK(12) && defined(SIMDE_ARCH_ZARCH_ZVECTOR) #define SIMDE_ZARCH_ZVECTOR_14_NATIVE #endif #endif #if !defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) && !defined(SIMDE_ZARCH_ZVECTOR_13_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if SIMDE_ARCH_ZARCH_CHECK(11) && defined(SIMDE_ARCH_ZARCH_ZVECTOR) #define SIMDE_ZARCH_ZVECTOR_13_NATIVE #endif #endif #if defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) /* AltiVec conflicts with lots of stuff. The bool keyword conflicts * with the bool keyword in C++ and the bool macro in C99+ (defined * in stdbool.h). The vector keyword conflicts with std::vector in * C++ if you are `using std;`. * * Luckily AltiVec allows you to use `__vector`/`__bool`/`__pixel` * instead, but altivec.h will unconditionally define * `vector`/`bool`/`pixel` so we need to work around that. * * Unfortunately this means that if your code uses AltiVec directly * it may break. If this is the case you'll want to define * `SIMDE_POWER_ALTIVEC_NO_UNDEF` before including SIMDe. Or, even * better, port your code to use the double-underscore versions. */ #if defined(bool) #undef bool #endif #if defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #include #if !defined(SIMDE_POWER_ALTIVEC_NO_UNDEF) #if defined(vector) #undef vector #endif #if defined(pixel) #undef pixel #endif #if defined(bool) #undef bool #endif #endif /* !defined(SIMDE_POWER_ALTIVEC_NO_UNDEF) */ #elif defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) #include #endif /* Use these intsead of vector/pixel/bool in SIMDe. */ #define SIMDE_POWER_ALTIVEC_VECTOR(T) __vector T #define SIMDE_POWER_ALTIVEC_PIXEL __pixel #define SIMDE_POWER_ALTIVEC_BOOL __bool /* Re-define bool if we're using stdbool.h */ #if !defined(__cplusplus) && defined(__bool_true_false_are_defined) && !defined(SIMDE_POWER_ALTIVEC_NO_UNDEF) #define bool _Bool #endif #endif #if !defined(SIMDE_MIPS_LOONGSON_MMI_NATIVE) && !defined(SIMDE_MIPS_LOONGSON_MMI_NO_NATIVE) && !defined(SIMDE_NO_NATIVE) #if defined(SIMDE_ARCH_MIPS_LOONGSON_MMI) #define SIMDE_MIPS_LOONGSON_MMI_NATIVE 1 #endif #endif #if defined(SIMDE_MIPS_LOONGSON_MMI_NATIVE) #include #endif /* This is used to determine whether or not to fall back on a vector * function in an earlier ISA extensions, as well as whether * we expected any attempts at vectorization to be fruitful or if we * expect to always be running serial code. */ #if !defined(SIMDE_NATURAL_VECTOR_SIZE) #if defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_NATURAL_VECTOR_SIZE (512) #elif defined(SIMDE_X86_AVX_NATIVE) #define SIMDE_NATURAL_VECTOR_SIZE (256) #elif \ defined(SIMDE_X86_SSE_NATIVE) || \ defined(SIMDE_ARM_NEON_A32V7_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) || \ defined(SIMDE_POWER_ALTIVEC_P5_NATIVE) #define SIMDE_NATURAL_VECTOR_SIZE (128) #endif #if !defined(SIMDE_NATURAL_VECTOR_SIZE) #define SIMDE_NATURAL_VECTOR_SIZE (0) #endif #endif #define SIMDE_NATURAL_VECTOR_SIZE_LE(x) ((SIMDE_NATURAL_VECTOR_SIZE > 0) && (SIMDE_NATURAL_VECTOR_SIZE <= (x))) #define SIMDE_NATURAL_VECTOR_SIZE_GE(x) ((SIMDE_NATURAL_VECTOR_SIZE > 0) && (SIMDE_NATURAL_VECTOR_SIZE >= (x))) /* Native aliases */ #if defined(SIMDE_ENABLE_NATIVE_ALIASES) #if !defined(SIMDE_X86_MMX_NATIVE) #define SIMDE_X86_MMX_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSE_NATIVE) #define SIMDE_X86_SSE_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSE2_NATIVE) #define SIMDE_X86_SSE2_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSE3_NATIVE) #define SIMDE_X86_SSE3_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSSE3_NATIVE) #define SIMDE_X86_SSSE3_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSE4_1_NATIVE) #define SIMDE_X86_SSE4_1_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_SSE4_2_NATIVE) #define SIMDE_X86_SSE4_2_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX_NATIVE) #define SIMDE_X86_AVX_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX2_NATIVE) #define SIMDE_X86_AVX2_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_FMA_NATIVE) #define SIMDE_X86_FMA_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX512F_NATIVE) #define SIMDE_X86_AVX512F_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX512VL_NATIVE) #define SIMDE_X86_AVX512VL_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX512BW_NATIVE) #define SIMDE_X86_AVX512BW_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX512DQ_NATIVE) #define SIMDE_X86_AVX512DQ_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_AVX512CD_NATIVE) #define SIMDE_X86_AVX512CD_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_GFNI_NATIVE) #define SIMDE_X86_GFNI_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_PCLMUL_NATIVE) #define SIMDE_X86_PCLMUL_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_VPCLMULQDQ_NATIVE) #define SIMDE_X86_VPCLMULQDQ_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_X86_F16C_NATIVE) #define SIMDE_X86_F16C_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_ARM_NEON_A32V8_NATIVE) #define SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_ARM_SVE_NATIVE) #define SIMDE_ARM_SVE_ENABLE_NATIVE_ALIASES #endif #if !defined(SIMDE_WASM_SIMD128_NATIVE) #define SIMDE_WASM_SIMD128_ENABLE_NATIVE_ALIASES #endif #endif /* Are floating point values stored using IEEE 754? Knowing * this at during preprocessing is a bit tricky, mostly because what * we're curious about is how values are stored and not whether the * implementation is fully conformant in terms of rounding, NaN * handling, etc. * * For example, if you use -ffast-math or -Ofast on * GCC or clang IEEE 754 isn't strictly followed, therefore IEE 754 * support is not advertised (by defining __STDC_IEC_559__). * * However, what we care about is whether it is safe to assume that * floating point values are stored in IEEE 754 format, in which case * we can provide faster implementations of some functions. * * Luckily every vaugely modern architecture I'm aware of uses IEEE 754- * so we just assume IEEE 754 for now. There is a test which verifies * this, if that test fails sowewhere please let us know and we'll add * an exception for that platform. Meanwhile, you can define * SIMDE_NO_IEEE754_STORAGE. */ #if !defined(SIMDE_IEEE754_STORAGE) && !defined(SIMDE_NO_IEE754_STORAGE) #define SIMDE_IEEE754_STORAGE #endif #endif /* !defined(SIMDE_FEATURES_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-features.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-math.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2017-2020 Evan Nemerson */ /* Attempt to find math functions. Functions may be in , * , compiler built-ins/intrinsics, or platform/architecture * specific headers. In some cases, especially those not built in to * libm, we may need to define our own implementations. */ #if !defined(SIMDE_MATH_H) #define SIMDE_MATH_H 1 /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #include #endif HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS /* SLEEF support * https://sleef.org/ * * If you include prior to including SIMDe, SIMDe will use * SLEEF. You can also define SIMDE_MATH_SLEEF_ENABLE prior to * including SIMDe to force the issue. * * Note that SLEEF does requires linking to libsleef. * * By default, SIMDe will use the 1 ULP functions, but if you use * SIMDE_ACCURACY_PREFERENCE of 0 we will use up to 4 ULP. This is * only the case for the simde_math_* functions; for code in other * SIMDe headers which calls SLEEF directly we may use functions with * greater error if the API we're implementing is less precise (for * example, SVML guarantees 4 ULP, so we will generally use the 3.5 * ULP functions from SLEEF). */ #if !defined(SIMDE_MATH_SLEEF_DISABLE) #if defined(__SLEEF_H__) #define SIMDE_MATH_SLEEF_ENABLE #endif #endif #if defined(SIMDE_MATH_SLEEF_ENABLE) && !defined(__SLEEF_H__) HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_IGNORED_QUALIFIERS_ #include HEDLEY_DIAGNOSTIC_POP #endif #if defined(SIMDE_MATH_SLEEF_ENABLE) && defined(__SLEEF_H__) #if defined(SLEEF_VERSION_MAJOR) #define SIMDE_MATH_SLEEF_VERSION_CHECK(major, minor, patch) (HEDLEY_VERSION_ENCODE(SLEEF_VERSION_MAJOR, SLEEF_VERSION_MINOR, SLEEF_VERSION_PATCHLEVEL) >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #else #define SIMDE_MATH_SLEEF_VERSION_CHECK(major, minor, patch) (HEDLEY_VERSION_ENCODE(3,0,0) >= HEDLEY_VERSION_ENCODE(major, minor, patch)) #endif #else #define SIMDE_MATH_SLEEF_VERSION_CHECK(major, minor, patch) (0) #endif #if defined(__has_builtin) #define SIMDE_MATH_BUILTIN_LIBM(func) __has_builtin(__builtin_##func) #elif \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(4,4,0) #define SIMDE_MATH_BUILTIN_LIBM(func) (1) #else #define SIMDE_MATH_BUILTIN_LIBM(func) (0) #endif #if defined(HUGE_VAL) /* Looks like or has already been included. */ /* The math.h from libc++ (yes, the C header from the C++ standard * library) will define an isnan function, but not an isnan macro * like the C standard requires. So we detect the header guards * macro libc++ uses. */ #if defined(isnan) || (defined(_LIBCPP_MATH_H) && !defined(_LIBCPP_CMATH)) #define SIMDE_MATH_HAVE_MATH_H #elif defined(__cplusplus) #define SIMDE_MATH_HAVE_CMATH #endif #elif defined(__has_include) #if defined(__cplusplus) && (__cplusplus >= 201103L) && __has_include() #define SIMDE_MATH_HAVE_CMATH #include #elif __has_include() #define SIMDE_MATH_HAVE_MATH_H #include #elif !defined(SIMDE_MATH_NO_LIBM) #define SIMDE_MATH_NO_LIBM #endif #elif !defined(SIMDE_MATH_NO_LIBM) #if defined(__cplusplus) && (__cplusplus >= 201103L) #define SIMDE_MATH_HAVE_CMATH HEDLEY_DIAGNOSTIC_PUSH #if defined(HEDLEY_MSVC_VERSION) /* VS 14 emits this diagnostic about noexcept being used on a * function, which we can't do anything about. */ #pragma warning(disable:4996) #endif #include HEDLEY_DIAGNOSTIC_POP #else #define SIMDE_MATH_HAVE_MATH_H #include #endif #endif #if !defined(SIMDE_MATH_INFINITY) #if \ HEDLEY_HAS_BUILTIN(__builtin_inf) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) #define SIMDE_MATH_INFINITY (__builtin_inf()) #elif defined(INFINITY) #define SIMDE_MATH_INFINITY INFINITY #endif #endif #if !defined(SIMDE_INFINITYF) #if \ HEDLEY_HAS_BUILTIN(__builtin_inff) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) #define SIMDE_MATH_INFINITYF (__builtin_inff()) #elif defined(INFINITYF) #define SIMDE_MATH_INFINITYF INFINITYF #elif defined(SIMDE_MATH_INFINITY) #define SIMDE_MATH_INFINITYF HEDLEY_STATIC_CAST(float, SIMDE_MATH_INFINITY) #endif #endif #if !defined(SIMDE_MATH_NAN) #if \ HEDLEY_HAS_BUILTIN(__builtin_nan) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) #define SIMDE_MATH_NAN (__builtin_nan("")) #elif defined(NAN) #define SIMDE_MATH_NAN NAN #endif #endif #if !defined(SIMDE_NANF) #if \ HEDLEY_HAS_BUILTIN(__builtin_nanf) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) #define SIMDE_MATH_NANF (__builtin_nanf("")) #elif defined(NANF) #define SIMDE_MATH_NANF NANF #elif defined(SIMDE_MATH_NAN) #define SIMDE_MATH_NANF HEDLEY_STATIC_CAST(float, SIMDE_MATH_NAN) #endif #endif #if !defined(SIMDE_MATH_PI) #if defined(M_PI) #define SIMDE_MATH_PI M_PI #else #define SIMDE_MATH_PI 3.14159265358979323846 #endif #endif #if !defined(SIMDE_MATH_PIF) #if defined(M_PI) #define SIMDE_MATH_PIF HEDLEY_STATIC_CAST(float, M_PI) #else #define SIMDE_MATH_PIF 3.14159265358979323846f #endif #endif #if !defined(SIMDE_MATH_PI_OVER_180) #define SIMDE_MATH_PI_OVER_180 0.0174532925199432957692369076848861271344287188854172545609719144 #endif #if !defined(SIMDE_MATH_PI_OVER_180F) #define SIMDE_MATH_PI_OVER_180F 0.0174532925199432957692369076848861271344287188854172545609719144f #endif #if !defined(SIMDE_MATH_180_OVER_PI) #define SIMDE_MATH_180_OVER_PI 57.295779513082320876798154814105170332405472466564321549160243861 #endif #if !defined(SIMDE_MATH_180_OVER_PIF) #define SIMDE_MATH_180_OVER_PIF 57.295779513082320876798154814105170332405472466564321549160243861f #endif #if !defined(SIMDE_MATH_FLT_MIN) #if defined(FLT_MIN) #define SIMDE_MATH_FLT_MIN FLT_MIN #elif defined(__FLT_MIN__) #define SIMDE_MATH_FLT_MIN __FLT_MIN__ #elif defined(__cplusplus) #include #define SIMDE_MATH_FLT_MIN FLT_MIN #else #include #define SIMDE_MATH_FLT_MIN FLT_MIN #endif #endif #if !defined(SIMDE_MATH_DBL_MIN) #if defined(DBL_MIN) #define SIMDE_MATH_DBL_MIN DBL_MIN #elif defined(__DBL_MIN__) #define SIMDE_MATH_DBL_MIN __DBL_MIN__ #elif defined(__cplusplus) #include #define SIMDE_MATH_DBL_MIN DBL_MIN #else #include #define SIMDE_MATH_DBL_MIN DBL_MIN #endif #endif /*** Classification macros from C99 ***/ #if !defined(simde_math_isinf) #if SIMDE_MATH_BUILTIN_LIBM(isinf) #define simde_math_isinf(v) __builtin_isinf(v) #elif defined(isinf) || defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_isinf(v) isinf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isinf(v) std::isinf(v) #endif #endif #if !defined(simde_math_isinff) #if HEDLEY_HAS_BUILTIN(__builtin_isinff) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) #define simde_math_isinff(v) __builtin_isinff(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isinff(v) std::isinf(v) #elif defined(simde_math_isinf) #define simde_math_isinff(v) simde_math_isinf(HEDLEY_STATIC_CAST(double, v)) #endif #endif #if !defined(simde_math_isnan) #if SIMDE_MATH_BUILTIN_LIBM(isnan) #define simde_math_isnan(v) __builtin_isnan(v) #elif defined(isnan) || defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_isnan(v) isnan(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isnan(v) std::isnan(v) #endif #endif #if !defined(simde_math_isnanf) #if HEDLEY_HAS_BUILTIN(__builtin_isnanf) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) /* XL C/C++ has __builtin_isnan but not __builtin_isnanf */ #define simde_math_isnanf(v) __builtin_isnanf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isnanf(v) std::isnan(v) #elif defined(simde_math_isnan) #define simde_math_isnanf(v) simde_math_isnan(HEDLEY_STATIC_CAST(double, v)) #endif #endif #if !defined(simde_math_isnormal) #if SIMDE_MATH_BUILTIN_LIBM(isnormal) #define simde_math_isnormal(v) __builtin_isnormal(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_isnormal(v) isnormal(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isnormal(v) std::isnormal(v) #endif #endif #if !defined(simde_math_isnormalf) #if HEDLEY_HAS_BUILTIN(__builtin_isnormalf) #define simde_math_isnormalf(v) __builtin_isnormalf(v) #elif SIMDE_MATH_BUILTIN_LIBM(isnormal) #define simde_math_isnormalf(v) __builtin_isnormal(v) #elif defined(isnormalf) #define simde_math_isnormalf(v) isnormalf(v) #elif defined(isnormal) || defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_isnormalf(v) isnormal(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_isnormalf(v) std::isnormal(v) #elif defined(simde_math_isnormal) #define simde_math_isnormalf(v) simde_math_isnormal(v) #endif #endif /*** Manipulation functions ***/ #if !defined(simde_math_nextafter) #if \ (HEDLEY_HAS_BUILTIN(__builtin_nextafter) && !defined(HEDLEY_IBM_VERSION)) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) #define simde_math_nextafter(x, y) __builtin_nextafter(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_nextafter(x, y) std::nextafter(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_nextafter(x, y) nextafter(x, y) #endif #endif #if !defined(simde_math_nextafterf) #if \ (HEDLEY_HAS_BUILTIN(__builtin_nextafterf) && !defined(HEDLEY_IBM_VERSION)) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) #define simde_math_nextafterf(x, y) __builtin_nextafterf(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_nextafterf(x, y) std::nextafter(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_nextafterf(x, y) nextafterf(x, y) #endif #endif /*** Functions from C99 ***/ #if !defined(simde_math_abs) #if SIMDE_MATH_BUILTIN_LIBM(abs) #define simde_math_abs(v) __builtin_abs(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_abs(v) std::abs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_abs(v) abs(v) #endif #endif #if !defined(simde_math_labs) #if SIMDE_MATH_BUILTIN_LIBM(labs) #define simde_math_labs(v) __builtin_labs(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_labs(v) std::labs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_labs(v) labs(v) #endif #endif #if !defined(simde_math_llabs) #if SIMDE_MATH_BUILTIN_LIBM(llabs) #define simde_math_llabs(v) __builtin_llabs(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_llabs(v) std::llabs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_llabs(v) llabs(v) #endif #endif #if !defined(simde_math_fabsf) #if SIMDE_MATH_BUILTIN_LIBM(fabsf) #define simde_math_fabsf(v) __builtin_fabsf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fabsf(v) std::abs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fabsf(v) fabsf(v) #endif #endif #if !defined(simde_math_acos) #if SIMDE_MATH_BUILTIN_LIBM(acos) #define simde_math_acos(v) __builtin_acos(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_acos(v) std::acos(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_acos(v) acos(v) #endif #endif #if !defined(simde_math_acosf) #if SIMDE_MATH_BUILTIN_LIBM(acosf) #define simde_math_acosf(v) __builtin_acosf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_acosf(v) std::acos(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_acosf(v) acosf(v) #endif #endif #if !defined(simde_math_acosh) #if SIMDE_MATH_BUILTIN_LIBM(acosh) #define simde_math_acosh(v) __builtin_acosh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_acosh(v) std::acosh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_acosh(v) acosh(v) #endif #endif #if !defined(simde_math_acoshf) #if SIMDE_MATH_BUILTIN_LIBM(acoshf) #define simde_math_acoshf(v) __builtin_acoshf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_acoshf(v) std::acosh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_acoshf(v) acoshf(v) #endif #endif #if !defined(simde_math_asin) #if SIMDE_MATH_BUILTIN_LIBM(asin) #define simde_math_asin(v) __builtin_asin(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_asin(v) std::asin(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_asin(v) asin(v) #endif #endif #if !defined(simde_math_asinf) #if SIMDE_MATH_BUILTIN_LIBM(asinf) #define simde_math_asinf(v) __builtin_asinf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_asinf(v) std::asin(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_asinf(v) asinf(v) #endif #endif #if !defined(simde_math_asinh) #if SIMDE_MATH_BUILTIN_LIBM(asinh) #define simde_math_asinh(v) __builtin_asinh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_asinh(v) std::asinh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_asinh(v) asinh(v) #endif #endif #if !defined(simde_math_asinhf) #if SIMDE_MATH_BUILTIN_LIBM(asinhf) #define simde_math_asinhf(v) __builtin_asinhf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_asinhf(v) std::asinh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_asinhf(v) asinhf(v) #endif #endif #if !defined(simde_math_atan) #if SIMDE_MATH_BUILTIN_LIBM(atan) #define simde_math_atan(v) __builtin_atan(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atan(v) std::atan(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atan(v) atan(v) #endif #endif #if !defined(simde_math_atan2) #if SIMDE_MATH_BUILTIN_LIBM(atan2) #define simde_math_atan2(y, x) __builtin_atan2(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atan2(y, x) std::atan2(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atan2(y, x) atan2(y, x) #endif #endif #if !defined(simde_math_atan2f) #if SIMDE_MATH_BUILTIN_LIBM(atan2f) #define simde_math_atan2f(y, x) __builtin_atan2f(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atan2f(y, x) std::atan2(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atan2f(y, x) atan2f(y, x) #endif #endif #if !defined(simde_math_atanf) #if SIMDE_MATH_BUILTIN_LIBM(atanf) #define simde_math_atanf(v) __builtin_atanf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atanf(v) std::atan(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atanf(v) atanf(v) #endif #endif #if !defined(simde_math_atanh) #if SIMDE_MATH_BUILTIN_LIBM(atanh) #define simde_math_atanh(v) __builtin_atanh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atanh(v) std::atanh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atanh(v) atanh(v) #endif #endif #if !defined(simde_math_atanhf) #if SIMDE_MATH_BUILTIN_LIBM(atanhf) #define simde_math_atanhf(v) __builtin_atanhf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_atanhf(v) std::atanh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_atanhf(v) atanhf(v) #endif #endif #if !defined(simde_math_cbrt) #if SIMDE_MATH_BUILTIN_LIBM(cbrt) #define simde_math_cbrt(v) __builtin_cbrt(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_cbrt(v) std::cbrt(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_cbrt(v) cbrt(v) #endif #endif #if !defined(simde_math_cbrtf) #if SIMDE_MATH_BUILTIN_LIBM(cbrtf) #define simde_math_cbrtf(v) __builtin_cbrtf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_cbrtf(v) std::cbrt(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_cbrtf(v) cbrtf(v) #endif #endif #if !defined(simde_math_ceil) #if SIMDE_MATH_BUILTIN_LIBM(ceil) #define simde_math_ceil(v) __builtin_ceil(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_ceil(v) std::ceil(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_ceil(v) ceil(v) #endif #endif #if !defined(simde_math_ceilf) #if SIMDE_MATH_BUILTIN_LIBM(ceilf) #define simde_math_ceilf(v) __builtin_ceilf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_ceilf(v) std::ceil(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_ceilf(v) ceilf(v) #endif #endif #if !defined(simde_math_copysign) #if SIMDE_MATH_BUILTIN_LIBM(copysign) #define simde_math_copysign(x, y) __builtin_copysign(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_copysign(x, y) std::copysign(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_copysign(x, y) copysign(x, y) #endif #endif #if !defined(simde_math_copysignf) #if SIMDE_MATH_BUILTIN_LIBM(copysignf) #define simde_math_copysignf(x, y) __builtin_copysignf(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_copysignf(x, y) std::copysignf(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_copysignf(x, y) copysignf(x, y) #endif #endif #if !defined(simde_math_cos) #if SIMDE_MATH_BUILTIN_LIBM(cos) #define simde_math_cos(v) __builtin_cos(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_cos(v) std::cos(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_cos(v) cos(v) #endif #endif #if !defined(simde_math_cosf) #if defined(SIMDE_MATH_SLEEF_ENABLE) #if SIMDE_ACCURACY_PREFERENCE < 1 #define simde_math_cosf(v) Sleef_cosf_u35(v) #else #define simde_math_cosf(v) Sleef_cosf_u10(v) #endif #elif SIMDE_MATH_BUILTIN_LIBM(cosf) #define simde_math_cosf(v) __builtin_cosf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_cosf(v) std::cos(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_cosf(v) cosf(v) #endif #endif #if !defined(simde_math_cosh) #if SIMDE_MATH_BUILTIN_LIBM(cosh) #define simde_math_cosh(v) __builtin_cosh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_cosh(v) std::cosh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_cosh(v) cosh(v) #endif #endif #if !defined(simde_math_coshf) #if SIMDE_MATH_BUILTIN_LIBM(coshf) #define simde_math_coshf(v) __builtin_coshf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_coshf(v) std::cosh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_coshf(v) coshf(v) #endif #endif #if !defined(simde_math_erf) #if SIMDE_MATH_BUILTIN_LIBM(erf) #define simde_math_erf(v) __builtin_erf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_erf(v) std::erf(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_erf(v) erf(v) #endif #endif #if !defined(simde_math_erff) #if SIMDE_MATH_BUILTIN_LIBM(erff) #define simde_math_erff(v) __builtin_erff(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_erff(v) std::erf(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_erff(v) erff(v) #endif #endif #if !defined(simde_math_erfc) #if SIMDE_MATH_BUILTIN_LIBM(erfc) #define simde_math_erfc(v) __builtin_erfc(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_erfc(v) std::erfc(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_erfc(v) erfc(v) #endif #endif #if !defined(simde_math_erfcf) #if SIMDE_MATH_BUILTIN_LIBM(erfcf) #define simde_math_erfcf(v) __builtin_erfcf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_erfcf(v) std::erfc(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_erfcf(v) erfcf(v) #endif #endif #if !defined(simde_math_exp) #if SIMDE_MATH_BUILTIN_LIBM(exp) #define simde_math_exp(v) __builtin_exp(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_exp(v) std::exp(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_exp(v) exp(v) #endif #endif #if !defined(simde_math_expf) #if SIMDE_MATH_BUILTIN_LIBM(expf) #define simde_math_expf(v) __builtin_expf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_expf(v) std::exp(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_expf(v) expf(v) #endif #endif #if !defined(simde_math_expm1) #if SIMDE_MATH_BUILTIN_LIBM(expm1) #define simde_math_expm1(v) __builtin_expm1(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_expm1(v) std::expm1(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_expm1(v) expm1(v) #endif #endif #if !defined(simde_math_expm1f) #if SIMDE_MATH_BUILTIN_LIBM(expm1f) #define simde_math_expm1f(v) __builtin_expm1f(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_expm1f(v) std::expm1(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_expm1f(v) expm1f(v) #endif #endif #if !defined(simde_math_exp2) #if SIMDE_MATH_BUILTIN_LIBM(exp2) #define simde_math_exp2(v) __builtin_exp2(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_exp2(v) std::exp2(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_exp2(v) exp2(v) #endif #endif #if !defined(simde_math_exp2f) #if SIMDE_MATH_BUILTIN_LIBM(exp2f) #define simde_math_exp2f(v) __builtin_exp2f(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_exp2f(v) std::exp2(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_exp2f(v) exp2f(v) #endif #endif #if HEDLEY_HAS_BUILTIN(__builtin_exp10) || HEDLEY_GCC_VERSION_CHECK(3,4,0) # define simde_math_exp10(v) __builtin_exp10(v) #else # define simde_math_exp10(v) pow(10.0, (v)) #endif #if HEDLEY_HAS_BUILTIN(__builtin_exp10f) || HEDLEY_GCC_VERSION_CHECK(3,4,0) # define simde_math_exp10f(v) __builtin_exp10f(v) #else # define simde_math_exp10f(v) powf(10.0f, (v)) #endif #if !defined(simde_math_fabs) #if SIMDE_MATH_BUILTIN_LIBM(fabs) #define simde_math_fabs(v) __builtin_fabs(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fabs(v) std::fabs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fabs(v) fabs(v) #endif #endif #if !defined(simde_math_fabsf) #if SIMDE_MATH_BUILTIN_LIBM(fabsf) #define simde_math_fabsf(v) __builtin_fabsf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fabsf(v) std::fabs(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fabsf(v) fabsf(v) #endif #endif #if !defined(simde_math_floor) #if SIMDE_MATH_BUILTIN_LIBM(floor) #define simde_math_floor(v) __builtin_floor(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_floor(v) std::floor(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_floor(v) floor(v) #endif #endif #if !defined(simde_math_floorf) #if SIMDE_MATH_BUILTIN_LIBM(floorf) #define simde_math_floorf(v) __builtin_floorf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_floorf(v) std::floor(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_floorf(v) floorf(v) #endif #endif #if !defined(simde_math_fma) #if SIMDE_MATH_BUILTIN_LIBM(fma) #define simde_math_fma(x, y, z) __builtin_fma(x, y, z) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fma(x, y, z) std::fma(x, y, z) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fma(x, y, z) fma(x, y, z) #endif #endif #if !defined(simde_math_fmaf) #if SIMDE_MATH_BUILTIN_LIBM(fmaf) #define simde_math_fmaf(x, y, z) __builtin_fmaf(x, y, z) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fmaf(x, y, z) std::fma(x, y, z) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fmaf(x, y, z) fmaf(x, y, z) #endif #endif #if !defined(simde_math_fmax) #if SIMDE_MATH_BUILTIN_LIBM(fmax) #define simde_math_fmax(x, y) __builtin_fmax(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fmax(x, y) std::fmax(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fmax(x, y) fmax(x, y) #endif #endif #if !defined(simde_math_fmaxf) #if SIMDE_MATH_BUILTIN_LIBM(fmaxf) #define simde_math_fmaxf(x, y) __builtin_fmaxf(x, y) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_fmaxf(x, y) std::fmax(x, y) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_fmaxf(x, y) fmaxf(x, y) #endif #endif #if !defined(simde_math_hypot) #if SIMDE_MATH_BUILTIN_LIBM(hypot) #define simde_math_hypot(y, x) __builtin_hypot(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_hypot(y, x) std::hypot(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_hypot(y, x) hypot(y, x) #endif #endif #if !defined(simde_math_hypotf) #if SIMDE_MATH_BUILTIN_LIBM(hypotf) #define simde_math_hypotf(y, x) __builtin_hypotf(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_hypotf(y, x) std::hypot(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_hypotf(y, x) hypotf(y, x) #endif #endif #if !defined(simde_math_log) #if SIMDE_MATH_BUILTIN_LIBM(log) #define simde_math_log(v) __builtin_log(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log(v) std::log(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log(v) log(v) #endif #endif #if !defined(simde_math_logf) #if SIMDE_MATH_BUILTIN_LIBM(logf) #define simde_math_logf(v) __builtin_logf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_logf(v) std::log(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_logf(v) logf(v) #endif #endif #if !defined(simde_math_logb) #if SIMDE_MATH_BUILTIN_LIBM(logb) #define simde_math_logb(v) __builtin_logb(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_logb(v) std::logb(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_logb(v) logb(v) #endif #endif #if !defined(simde_math_logbf) #if SIMDE_MATH_BUILTIN_LIBM(logbf) #define simde_math_logbf(v) __builtin_logbf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_logbf(v) std::logb(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_logbf(v) logbf(v) #endif #endif #if !defined(simde_math_log1p) #if SIMDE_MATH_BUILTIN_LIBM(log1p) #define simde_math_log1p(v) __builtin_log1p(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log1p(v) std::log1p(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log1p(v) log1p(v) #endif #endif #if !defined(simde_math_log1pf) #if SIMDE_MATH_BUILTIN_LIBM(log1pf) #define simde_math_log1pf(v) __builtin_log1pf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log1pf(v) std::log1p(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log1pf(v) log1pf(v) #endif #endif #if !defined(simde_math_log2) #if SIMDE_MATH_BUILTIN_LIBM(log2) #define simde_math_log2(v) __builtin_log2(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log2(v) std::log2(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log2(v) log2(v) #endif #endif #if !defined(simde_math_log2f) #if SIMDE_MATH_BUILTIN_LIBM(log2f) #define simde_math_log2f(v) __builtin_log2f(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log2f(v) std::log2(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log2f(v) log2f(v) #endif #endif #if !defined(simde_math_log10) #if SIMDE_MATH_BUILTIN_LIBM(log10) #define simde_math_log10(v) __builtin_log10(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log10(v) std::log10(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log10(v) log10(v) #endif #endif #if !defined(simde_math_log10f) #if SIMDE_MATH_BUILTIN_LIBM(log10f) #define simde_math_log10f(v) __builtin_log10f(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_log10f(v) std::log10(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_log10f(v) log10f(v) #endif #endif #if !defined(simde_math_modf) #if SIMDE_MATH_BUILTIN_LIBM(modf) #define simde_math_modf(x, iptr) __builtin_modf(x, iptr) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_modf(x, iptr) std::modf(x, iptr) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_modf(x, iptr) modf(x, iptr) #endif #endif #if !defined(simde_math_modff) #if SIMDE_MATH_BUILTIN_LIBM(modff) #define simde_math_modff(x, iptr) __builtin_modff(x, iptr) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_modff(x, iptr) std::modf(x, iptr) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_modff(x, iptr) modff(x, iptr) #endif #endif #if !defined(simde_math_nearbyint) #if SIMDE_MATH_BUILTIN_LIBM(nearbyint) #define simde_math_nearbyint(v) __builtin_nearbyint(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_nearbyint(v) std::nearbyint(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_nearbyint(v) nearbyint(v) #endif #endif #if !defined(simde_math_nearbyintf) #if SIMDE_MATH_BUILTIN_LIBM(nearbyintf) #define simde_math_nearbyintf(v) __builtin_nearbyintf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_nearbyintf(v) std::nearbyint(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_nearbyintf(v) nearbyintf(v) #endif #endif #if !defined(simde_math_pow) #if SIMDE_MATH_BUILTIN_LIBM(pow) #define simde_math_pow(y, x) __builtin_pow(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_pow(y, x) std::pow(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_pow(y, x) pow(y, x) #endif #endif #if !defined(simde_math_powf) #if SIMDE_MATH_BUILTIN_LIBM(powf) #define simde_math_powf(y, x) __builtin_powf(y, x) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_powf(y, x) std::pow(y, x) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_powf(y, x) powf(y, x) #endif #endif #if !defined(simde_math_rint) #if SIMDE_MATH_BUILTIN_LIBM(rint) #define simde_math_rint(v) __builtin_rint(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_rint(v) std::rint(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_rint(v) rint(v) #endif #endif #if !defined(simde_math_rintf) #if SIMDE_MATH_BUILTIN_LIBM(rintf) #define simde_math_rintf(v) __builtin_rintf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_rintf(v) std::rint(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_rintf(v) rintf(v) #endif #endif #if !defined(simde_math_round) #if SIMDE_MATH_BUILTIN_LIBM(round) #define simde_math_round(v) __builtin_round(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_round(v) std::round(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_round(v) round(v) #endif #endif #if !defined(simde_math_roundf) #if SIMDE_MATH_BUILTIN_LIBM(roundf) #define simde_math_roundf(v) __builtin_roundf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_roundf(v) std::round(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_roundf(v) roundf(v) #endif #endif #if !defined(simde_math_roundeven) #if \ HEDLEY_HAS_BUILTIN(__builtin_roundeven) || \ HEDLEY_GCC_VERSION_CHECK(10,0,0) #define simde_math_roundeven(v) __builtin_roundeven(v) #elif defined(simde_math_round) && defined(simde_math_fabs) static HEDLEY_INLINE double simde_math_roundeven(double v) { double rounded = simde_math_round(v); double diff = rounded - v; if (HEDLEY_UNLIKELY(simde_math_fabs(diff) == 0.5) && (HEDLEY_STATIC_CAST(int64_t, rounded) & 1)) { rounded = v - diff; } return rounded; } #define simde_math_roundeven simde_math_roundeven #endif #endif #if !defined(simde_math_roundevenf) #if \ HEDLEY_HAS_BUILTIN(__builtin_roundevenf) || \ HEDLEY_GCC_VERSION_CHECK(10,0,0) #define simde_math_roundevenf(v) __builtin_roundevenf(v) #elif defined(simde_math_roundf) && defined(simde_math_fabsf) static HEDLEY_INLINE float simde_math_roundevenf(float v) { float rounded = simde_math_roundf(v); float diff = rounded - v; if (HEDLEY_UNLIKELY(simde_math_fabsf(diff) == 0.5f) && (HEDLEY_STATIC_CAST(int32_t, rounded) & 1)) { rounded = v - diff; } return rounded; } #define simde_math_roundevenf simde_math_roundevenf #endif #endif #if !defined(simde_math_sin) #if SIMDE_MATH_BUILTIN_LIBM(sin) #define simde_math_sin(v) __builtin_sin(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sin(v) std::sin(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sin(v) sin(v) #endif #endif #if !defined(simde_math_sinf) #if SIMDE_MATH_BUILTIN_LIBM(sinf) #define simde_math_sinf(v) __builtin_sinf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sinf(v) std::sin(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sinf(v) sinf(v) #endif #endif #if !defined(simde_math_sinh) #if SIMDE_MATH_BUILTIN_LIBM(sinh) #define simde_math_sinh(v) __builtin_sinh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sinh(v) std::sinh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sinh(v) sinh(v) #endif #endif #if !defined(simde_math_sinhf) #if SIMDE_MATH_BUILTIN_LIBM(sinhf) #define simde_math_sinhf(v) __builtin_sinhf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sinhf(v) std::sinh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sinhf(v) sinhf(v) #endif #endif #if !defined(simde_math_sqrt) #if SIMDE_MATH_BUILTIN_LIBM(sqrt) #define simde_math_sqrt(v) __builtin_sqrt(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sqrt(v) std::sqrt(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sqrt(v) sqrt(v) #endif #endif #if !defined(simde_math_sqrtf) #if SIMDE_MATH_BUILTIN_LIBM(sqrtf) #define simde_math_sqrtf(v) __builtin_sqrtf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_sqrtf(v) std::sqrt(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_sqrtf(v) sqrtf(v) #endif #endif #if !defined(simde_math_tan) #if SIMDE_MATH_BUILTIN_LIBM(tan) #define simde_math_tan(v) __builtin_tan(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_tan(v) std::tan(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_tan(v) tan(v) #endif #endif #if !defined(simde_math_tanf) #if SIMDE_MATH_BUILTIN_LIBM(tanf) #define simde_math_tanf(v) __builtin_tanf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_tanf(v) std::tan(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_tanf(v) tanf(v) #endif #endif #if !defined(simde_math_tanh) #if SIMDE_MATH_BUILTIN_LIBM(tanh) #define simde_math_tanh(v) __builtin_tanh(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_tanh(v) std::tanh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_tanh(v) tanh(v) #endif #endif #if !defined(simde_math_tanhf) #if SIMDE_MATH_BUILTIN_LIBM(tanhf) #define simde_math_tanhf(v) __builtin_tanhf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_tanhf(v) std::tanh(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_tanhf(v) tanhf(v) #endif #endif #if !defined(simde_math_trunc) #if SIMDE_MATH_BUILTIN_LIBM(trunc) #define simde_math_trunc(v) __builtin_trunc(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_trunc(v) std::trunc(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_trunc(v) trunc(v) #endif #endif #if !defined(simde_math_truncf) #if SIMDE_MATH_BUILTIN_LIBM(truncf) #define simde_math_truncf(v) __builtin_truncf(v) #elif defined(SIMDE_MATH_HAVE_CMATH) #define simde_math_truncf(v) std::trunc(v) #elif defined(SIMDE_MATH_HAVE_MATH_H) #define simde_math_truncf(v) truncf(v) #endif #endif /*** Comparison macros (which don't raise invalid errors) ***/ #if defined(isunordered) #define simde_math_isunordered(x, y) isunordered(x, y) #elif HEDLEY_HAS_BUILTIN(__builtin_isunordered) #define simde_math_isunordered(x, y) __builtin_isunordered(x, y) #else static HEDLEY_INLINE int simde_math_isunordered(double x, double y) { return (x != y) && (x != x || y != y); } #define simde_math_isunordered simde_math_isunordered static HEDLEY_INLINE int simde_math_isunorderedf(float x, float y) { return (x != y) && (x != x || y != y); } #define simde_math_isunorderedf simde_math_isunorderedf #endif #if !defined(simde_math_isunorderedf) #define simde_math_isunorderedf simde_math_isunordered #endif /*** Additional functions not in libm ***/ #if defined(simde_math_fabs) && defined(simde_math_sqrt) && defined(simde_math_exp) static HEDLEY_INLINE double simde_math_cdfnorm(double x) { /* https://www.johndcook.com/blog/cpp_phi/ * Public Domain */ static const double a1 = 0.254829592; static const double a2 = -0.284496736; static const double a3 = 1.421413741; static const double a4 = -1.453152027; static const double a5 = 1.061405429; static const double p = 0.3275911; const int sign = x < 0; x = simde_math_fabs(x) / simde_math_sqrt(2.0); /* A&S formula 7.1.26 */ double t = 1.0 / (1.0 + p * x); double y = 1.0 - (((((a5 * t + a4) * t) + a3) * t + a2) * t + a1) * t * simde_math_exp(-x * x); return 0.5 * (1.0 + (sign ? -y : y)); } #define simde_math_cdfnorm simde_math_cdfnorm #endif #if defined(simde_math_fabsf) && defined(simde_math_sqrtf) && defined(simde_math_expf) static HEDLEY_INLINE float simde_math_cdfnormf(float x) { /* https://www.johndcook.com/blog/cpp_phi/ * Public Domain */ static const float a1 = 0.254829592f; static const float a2 = -0.284496736f; static const float a3 = 1.421413741f; static const float a4 = -1.453152027f; static const float a5 = 1.061405429f; static const float p = 0.3275911f; const int sign = x < 0; x = simde_math_fabsf(x) / simde_math_sqrtf(2.0f); /* A&S formula 7.1.26 */ float t = 1.0f / (1.0f + p * x); float y = 1.0f - (((((a5 * t + a4) * t) + a3) * t + a2) * t + a1) * t * simde_math_expf(-x * x); return 0.5f * (1.0f + (sign ? -y : y)); } #define simde_math_cdfnormf simde_math_cdfnormf #endif HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL_ #if !defined(simde_math_cdfnorminv) && defined(simde_math_log) && defined(simde_math_sqrt) /*https://web.archive.org/web/20150910081113/http://home.online.no/~pjacklam/notes/invnorm/impl/sprouse/ltqnorm.c*/ static HEDLEY_INLINE double simde_math_cdfnorminv(double p) { static const double a[] = { -3.969683028665376e+01, 2.209460984245205e+02, -2.759285104469687e+02, 1.383577518672690e+02, -3.066479806614716e+01, 2.506628277459239e+00 }; static const double b[] = { -5.447609879822406e+01, 1.615858368580409e+02, -1.556989798598866e+02, 6.680131188771972e+01, -1.328068155288572e+01 }; static const double c[] = { -7.784894002430293e-03, -3.223964580411365e-01, -2.400758277161838e+00, -2.549732539343734e+00, 4.374664141464968e+00, 2.938163982698783e+00 }; static const double d[] = { 7.784695709041462e-03, 3.224671290700398e-01, 2.445134137142996e+00, 3.754408661907416e+00 }; static const double low = 0.02425; static const double high = 0.97575; double q, r; if (p < 0 || p > 1) { return 0.0; } else if (p == 0) { return -SIMDE_MATH_INFINITY; } else if (p == 1) { return SIMDE_MATH_INFINITY; } else if (p < low) { q = simde_math_sqrt(-2.0 * simde_math_log(p)); return (((((c[0] * q + c[1]) * q + c[2]) * q + c[3]) * q + c[4]) * q + c[5]) / (((((d[0] * q + d[1]) * q + d[2]) * q + d[3]) * q + 1)); } else if (p > high) { q = simde_math_sqrt(-2.0 * simde_math_log(1.0 - p)); return -(((((c[0] * q + c[1]) * q + c[2]) * q + c[3]) * q + c[4]) * q + c[5]) / (((((d[0] * q + d[1]) * q + d[2]) * q + d[3]) * q + 1)); } else { q = p - 0.5; r = q * q; return (((((a[0] * r + a[1]) * r + a[2]) * r + a[3]) * r + a[4]) * r + a[5]) * q / (((((b[0] * r + b[1]) * r + b[2]) * r + b[3]) * r + b[4]) * r + 1); } } #define simde_math_cdfnorminv simde_math_cdfnorminv #endif #if !defined(simde_math_cdfnorminvf) && defined(simde_math_logf) && defined(simde_math_sqrtf) static HEDLEY_INLINE float simde_math_cdfnorminvf(float p) { static const float a[] = { -3.969683028665376e+01f, 2.209460984245205e+02f, -2.759285104469687e+02f, 1.383577518672690e+02f, -3.066479806614716e+01f, 2.506628277459239e+00f }; static const float b[] = { -5.447609879822406e+01f, 1.615858368580409e+02f, -1.556989798598866e+02f, 6.680131188771972e+01f, -1.328068155288572e+01f }; static const float c[] = { -7.784894002430293e-03f, -3.223964580411365e-01f, -2.400758277161838e+00f, -2.549732539343734e+00f, 4.374664141464968e+00f, 2.938163982698783e+00f }; static const float d[] = { 7.784695709041462e-03f, 3.224671290700398e-01f, 2.445134137142996e+00f, 3.754408661907416e+00f }; static const float low = 0.02425f; static const float high = 0.97575f; float q, r; if (p < 0 || p > 1) { return 0.0f; } else if (p == 0) { return -SIMDE_MATH_INFINITYF; } else if (p == 1) { return SIMDE_MATH_INFINITYF; } else if (p < low) { q = simde_math_sqrtf(-2.0f * simde_math_logf(p)); return (((((c[0] * q + c[1]) * q + c[2]) * q + c[3]) * q + c[4]) * q + c[5]) / (((((d[0] * q + d[1]) * q + d[2]) * q + d[3]) * q + 1)); } else if (p > high) { q = simde_math_sqrtf(-2.0f * simde_math_logf(1.0f - p)); return -(((((c[0] * q + c[1]) * q + c[2]) * q + c[3]) * q + c[4]) * q + c[5]) / (((((d[0] * q + d[1]) * q + d[2]) * q + d[3]) * q + 1)); } else { q = p - 0.5f; r = q * q; return (((((a[0] * r + a[1]) * r + a[2]) * r + a[3]) * r + a[4]) * r + a[5]) * q / (((((b[0] * r + b[1]) * r + b[2]) * r + b[3]) * r + b[4]) * r + 1); } } #define simde_math_cdfnorminvf simde_math_cdfnorminvf #endif #if !defined(simde_math_erfinv) && defined(simde_math_log) && defined(simde_math_copysign) && defined(simde_math_sqrt) static HEDLEY_INLINE double simde_math_erfinv(double x) { /* https://stackoverflow.com/questions/27229371/inverse-error-function-in-c * * The original answer on SO uses a constant of 0.147, but in my * testing 0.14829094707965850830078125 gives a lower average absolute error * (0.0001410958211636170744895935 vs. 0.0001465479290345683693885803). * That said, if your goal is to minimize the *maximum* absolute * error, 0.15449436008930206298828125 provides significantly better * results; 0.0009250640869140625000000000 vs ~ 0.005. */ double tt1, tt2, lnx; double sgn = simde_math_copysign(1.0, x); x = (1.0 - x) * (1.0 + x); lnx = simde_math_log(x); tt1 = 2.0 / (SIMDE_MATH_PI * 0.14829094707965850830078125) + 0.5 * lnx; tt2 = (1.0 / 0.14829094707965850830078125) * lnx; return sgn * simde_math_sqrt(-tt1 + simde_math_sqrt(tt1 * tt1 - tt2)); } #define simde_math_erfinv simde_math_erfinv #endif #if !defined(simde_math_erfinvf) && defined(simde_math_logf) && defined(simde_math_copysignf) && defined(simde_math_sqrtf) static HEDLEY_INLINE float simde_math_erfinvf(float x) { float tt1, tt2, lnx; float sgn = simde_math_copysignf(1.0f, x); x = (1.0f - x) * (1.0f + x); lnx = simde_math_logf(x); tt1 = 2.0f / (SIMDE_MATH_PIF * 0.14829094707965850830078125f) + 0.5f * lnx; tt2 = (1.0f / 0.14829094707965850830078125f) * lnx; return sgn * simde_math_sqrtf(-tt1 + simde_math_sqrtf(tt1 * tt1 - tt2)); } #define simde_math_erfinvf simde_math_erfinvf #endif #if !defined(simde_math_erfcinv) && defined(simde_math_erfinv) && defined(simde_math_log) && defined(simde_math_sqrt) static HEDLEY_INLINE double simde_math_erfcinv(double x) { if(x >= 0.0625 && x < 2.0) { return simde_math_erfinv(1.0 - x); } else if (x < 0.0625 && x >= 1.0e-100) { double p[6] = { 0.1550470003116, 1.382719649631, 0.690969348887, -1.128081391617, 0.680544246825, -0.16444156791 }; double q[3] = { 0.155024849822, 1.385228141995, 1.000000000000 }; const double t = 1.0 / simde_math_sqrt(-simde_math_log(x)); return (p[0] / t + p[1] + t * (p[2] + t * (p[3] + t * (p[4] + t * p[5])))) / (q[0] + t * (q[1] + t * (q[2]))); } else if (x < 1.0e-100 && x >= SIMDE_MATH_DBL_MIN) { double p[4] = { 0.00980456202915, 0.363667889171, 0.97302949837, -0.5374947401 }; double q[3] = { 0.00980451277802, 0.363699971544, 1.000000000000 }; const double t = 1.0 / simde_math_sqrt(-simde_math_log(x)); return (p[0] / t + p[1] + t * (p[2] + t * p[3])) / (q[0] + t * (q[1] + t * (q[2]))); } else if (!simde_math_isnormal(x)) { return SIMDE_MATH_INFINITY; } else { return -SIMDE_MATH_INFINITY; } } #define simde_math_erfcinv simde_math_erfcinv #endif #if !defined(simde_math_erfcinvf) && defined(simde_math_erfinvf) && defined(simde_math_logf) && defined(simde_math_sqrtf) static HEDLEY_INLINE float simde_math_erfcinvf(float x) { if(x >= 0.0625f && x < 2.0f) { return simde_math_erfinvf(1.0f - x); } else if (x < 0.0625f && x >= SIMDE_MATH_FLT_MIN) { static const float p[6] = { 0.1550470003116f, 1.382719649631f, 0.690969348887f, -1.128081391617f, 0.680544246825f -0.164441567910f }; static const float q[3] = { 0.155024849822f, 1.385228141995f, 1.000000000000f }; const float t = 1.0f / simde_math_sqrtf(-simde_math_logf(x)); return (p[0] / t + p[1] + t * (p[2] + t * (p[3] + t * (p[4] + t * p[5])))) / (q[0] + t * (q[1] + t * (q[2]))); } else if (x < SIMDE_MATH_FLT_MIN && simde_math_isnormalf(x)) { static const float p[4] = { 0.00980456202915f, 0.36366788917100f, 0.97302949837000f, -0.5374947401000f }; static const float q[3] = { 0.00980451277802f, 0.36369997154400f, 1.00000000000000f }; const float t = 1.0f / simde_math_sqrtf(-simde_math_logf(x)); return (p[0] / t + p[1] + t * (p[2] + t * p[3])) / (q[0] + t * (q[1] + t * (q[2]))); } else { return simde_math_isnormalf(x) ? -SIMDE_MATH_INFINITYF : SIMDE_MATH_INFINITYF; } } #define simde_math_erfcinvf simde_math_erfcinvf #endif HEDLEY_DIAGNOSTIC_POP static HEDLEY_INLINE double simde_math_rad2deg(double radians) { return radians * SIMDE_MATH_180_OVER_PI; } static HEDLEY_INLINE float simde_math_rad2degf(float radians) { return radians * SIMDE_MATH_180_OVER_PIF; } static HEDLEY_INLINE double simde_math_deg2rad(double degrees) { return degrees * SIMDE_MATH_PI_OVER_180; } static HEDLEY_INLINE float simde_math_deg2radf(float degrees) { return degrees * (SIMDE_MATH_PI_OVER_180F); } /*** Saturated arithmetic ***/ static HEDLEY_INLINE int8_t simde_math_adds_i8(int8_t a, int8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddb_s8(a, b); #else uint8_t a_ = HEDLEY_STATIC_CAST(uint8_t, a); uint8_t b_ = HEDLEY_STATIC_CAST(uint8_t, b); uint8_t r_ = a_ + b_; a_ = (a_ >> ((8 * sizeof(r_)) - 1)) + INT8_MAX; if (HEDLEY_STATIC_CAST(int8_t, ((a_ ^ b_) | ~(b_ ^ r_))) >= 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int8_t, r_); #endif } static HEDLEY_INLINE int16_t simde_math_adds_i16(int16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddh_s16(a, b); #else uint16_t a_ = HEDLEY_STATIC_CAST(uint16_t, a); uint16_t b_ = HEDLEY_STATIC_CAST(uint16_t, b); uint16_t r_ = a_ + b_; a_ = (a_ >> ((8 * sizeof(r_)) - 1)) + INT16_MAX; if (HEDLEY_STATIC_CAST(int16_t, ((a_ ^ b_) | ~(b_ ^ r_))) >= 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int16_t, r_); #endif } static HEDLEY_INLINE int32_t simde_math_adds_i32(int32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqadds_s32(a, b); #else uint32_t a_ = HEDLEY_STATIC_CAST(uint32_t, a); uint32_t b_ = HEDLEY_STATIC_CAST(uint32_t, b); uint32_t r_ = a_ + b_; a_ = (a_ >> ((8 * sizeof(r_)) - 1)) + INT32_MAX; if (HEDLEY_STATIC_CAST(int32_t, ((a_ ^ b_) | ~(b_ ^ r_))) >= 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int32_t, r_); #endif } static HEDLEY_INLINE int64_t simde_math_adds_i64(int64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddd_s64(a, b); #else uint64_t a_ = HEDLEY_STATIC_CAST(uint64_t, a); uint64_t b_ = HEDLEY_STATIC_CAST(uint64_t, b); uint64_t r_ = a_ + b_; a_ = (a_ >> ((8 * sizeof(r_)) - 1)) + INT64_MAX; if (HEDLEY_STATIC_CAST(int64_t, ((a_ ^ b_) | ~(b_ ^ r_))) >= 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int64_t, r_); #endif } static HEDLEY_INLINE uint8_t simde_math_adds_u8(uint8_t a, uint8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddb_u8(a, b); #else uint8_t r = a + b; r |= -(r < a); return r; #endif } static HEDLEY_INLINE uint16_t simde_math_adds_u16(uint16_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddh_u16(a, b); #else uint16_t r = a + b; r |= -(r < a); return r; #endif } static HEDLEY_INLINE uint32_t simde_math_adds_u32(uint32_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqadds_u32(a, b); #else uint32_t r = a + b; r |= -(r < a); return r; #endif } static HEDLEY_INLINE uint64_t simde_math_adds_u64(uint64_t a, uint64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqaddd_u64(a, b); #else uint64_t r = a + b; r |= -(r < a); return r; #endif } static HEDLEY_INLINE int8_t simde_math_subs_i8(int8_t a, int8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubb_s8(a, b); #else uint8_t a_ = HEDLEY_STATIC_CAST(uint8_t, a); uint8_t b_ = HEDLEY_STATIC_CAST(uint8_t, b); uint8_t r_ = a_ - b_; a_ = (a_ >> 7) + INT8_MAX; if (HEDLEY_STATIC_CAST(int8_t, (a_ ^ b_) & (a_ ^ r_)) < 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int8_t, r_); #endif } static HEDLEY_INLINE int16_t simde_math_subs_i16(int16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubh_s16(a, b); #else uint16_t a_ = HEDLEY_STATIC_CAST(uint16_t, a); uint16_t b_ = HEDLEY_STATIC_CAST(uint16_t, b); uint16_t r_ = a_ - b_; a_ = (a_ >> 15) + INT16_MAX; if (HEDLEY_STATIC_CAST(int16_t, (a_ ^ b_) & (a_ ^ r_)) < 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int16_t, r_); #endif } static HEDLEY_INLINE int32_t simde_math_subs_i32(int32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubs_s32(a, b); #else uint32_t a_ = HEDLEY_STATIC_CAST(uint32_t, a); uint32_t b_ = HEDLEY_STATIC_CAST(uint32_t, b); uint32_t r_ = a_ - b_; a_ = (a_ >> 31) + INT32_MAX; if (HEDLEY_STATIC_CAST(int32_t, (a_ ^ b_) & (a_ ^ r_)) < 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int32_t, r_); #endif } static HEDLEY_INLINE int64_t simde_math_subs_i64(int64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubd_s64(a, b); #else uint64_t a_ = HEDLEY_STATIC_CAST(uint64_t, a); uint64_t b_ = HEDLEY_STATIC_CAST(uint64_t, b); uint64_t r_ = a_ - b_; a_ = (a_ >> 63) + INT64_MAX; if (HEDLEY_STATIC_CAST(int64_t, (a_ ^ b_) & (a_ ^ r_)) < 0) { r_ = a_; } return HEDLEY_STATIC_CAST(int64_t, r_); #endif } static HEDLEY_INLINE uint8_t simde_math_subs_u8(uint8_t a, uint8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubb_u8(a, b); #else uint8_t res = a - b; res &= -(res <= a); return res; #endif } static HEDLEY_INLINE uint16_t simde_math_subs_u16(uint16_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubh_u16(a, b); #else uint16_t res = a - b; res &= -(res <= a); return res; #endif } static HEDLEY_INLINE uint32_t simde_math_subs_u32(uint32_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubs_u32(a, b); #else uint32_t res = a - b; res &= -(res <= a); return res; #endif } static HEDLEY_INLINE uint64_t simde_math_subs_u64(uint64_t a, uint64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqsubd_u64(a, b); #else uint64_t res = a - b; res &= -(res <= a); return res; #endif } HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_MATH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-math.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-constify.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ /* Constify macros. For internal use only. * * These are used to make it possible to call a function which takes * an Integer Constant Expression (ICE) using a compile time constant. * Technically it would also be possible to use a value not trivially * known by the compiler, but there would be a siginficant performance * hit (a switch switch is used). * * The basic idea is pretty simple; we just emit a do while loop which * contains a switch with a case for every possible value of the * constant. * * As long as the value you pass to the function in constant, pretty * much any copmiler shouldn't have a problem generating exactly the * same code as if you had used an ICE. * * This is intended to be used in the SIMDe implementations of * functions the compilers require to be an ICE, but the other benefit * is that if we also disable the warnings from * SIMDE_REQUIRE_CONSTANT_RANGE we can actually just allow the tests * to use non-ICE parameters */ #if !defined(SIMDE_CONSTIFY_H) #define SIMDE_CONSTIFY_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_VARIADIC_MACROS_ SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ #define SIMDE_CONSTIFY_2_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_4_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ case 2: result = func_name(__VA_ARGS__, 2); break; \ case 3: result = func_name(__VA_ARGS__, 3); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_8_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ case 2: result = func_name(__VA_ARGS__, 2); break; \ case 3: result = func_name(__VA_ARGS__, 3); break; \ case 4: result = func_name(__VA_ARGS__, 4); break; \ case 5: result = func_name(__VA_ARGS__, 5); break; \ case 6: result = func_name(__VA_ARGS__, 6); break; \ case 7: result = func_name(__VA_ARGS__, 7); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_16_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ case 2: result = func_name(__VA_ARGS__, 2); break; \ case 3: result = func_name(__VA_ARGS__, 3); break; \ case 4: result = func_name(__VA_ARGS__, 4); break; \ case 5: result = func_name(__VA_ARGS__, 5); break; \ case 6: result = func_name(__VA_ARGS__, 6); break; \ case 7: result = func_name(__VA_ARGS__, 7); break; \ case 8: result = func_name(__VA_ARGS__, 8); break; \ case 9: result = func_name(__VA_ARGS__, 9); break; \ case 10: result = func_name(__VA_ARGS__, 10); break; \ case 11: result = func_name(__VA_ARGS__, 11); break; \ case 12: result = func_name(__VA_ARGS__, 12); break; \ case 13: result = func_name(__VA_ARGS__, 13); break; \ case 14: result = func_name(__VA_ARGS__, 14); break; \ case 15: result = func_name(__VA_ARGS__, 15); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_32_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ case 2: result = func_name(__VA_ARGS__, 2); break; \ case 3: result = func_name(__VA_ARGS__, 3); break; \ case 4: result = func_name(__VA_ARGS__, 4); break; \ case 5: result = func_name(__VA_ARGS__, 5); break; \ case 6: result = func_name(__VA_ARGS__, 6); break; \ case 7: result = func_name(__VA_ARGS__, 7); break; \ case 8: result = func_name(__VA_ARGS__, 8); break; \ case 9: result = func_name(__VA_ARGS__, 9); break; \ case 10: result = func_name(__VA_ARGS__, 10); break; \ case 11: result = func_name(__VA_ARGS__, 11); break; \ case 12: result = func_name(__VA_ARGS__, 12); break; \ case 13: result = func_name(__VA_ARGS__, 13); break; \ case 14: result = func_name(__VA_ARGS__, 14); break; \ case 15: result = func_name(__VA_ARGS__, 15); break; \ case 16: result = func_name(__VA_ARGS__, 16); break; \ case 17: result = func_name(__VA_ARGS__, 17); break; \ case 18: result = func_name(__VA_ARGS__, 18); break; \ case 19: result = func_name(__VA_ARGS__, 19); break; \ case 20: result = func_name(__VA_ARGS__, 20); break; \ case 21: result = func_name(__VA_ARGS__, 21); break; \ case 22: result = func_name(__VA_ARGS__, 22); break; \ case 23: result = func_name(__VA_ARGS__, 23); break; \ case 24: result = func_name(__VA_ARGS__, 24); break; \ case 25: result = func_name(__VA_ARGS__, 25); break; \ case 26: result = func_name(__VA_ARGS__, 26); break; \ case 27: result = func_name(__VA_ARGS__, 27); break; \ case 28: result = func_name(__VA_ARGS__, 28); break; \ case 29: result = func_name(__VA_ARGS__, 29); break; \ case 30: result = func_name(__VA_ARGS__, 30); break; \ case 31: result = func_name(__VA_ARGS__, 31); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_64_(func_name, result, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: result = func_name(__VA_ARGS__, 0); break; \ case 1: result = func_name(__VA_ARGS__, 1); break; \ case 2: result = func_name(__VA_ARGS__, 2); break; \ case 3: result = func_name(__VA_ARGS__, 3); break; \ case 4: result = func_name(__VA_ARGS__, 4); break; \ case 5: result = func_name(__VA_ARGS__, 5); break; \ case 6: result = func_name(__VA_ARGS__, 6); break; \ case 7: result = func_name(__VA_ARGS__, 7); break; \ case 8: result = func_name(__VA_ARGS__, 8); break; \ case 9: result = func_name(__VA_ARGS__, 9); break; \ case 10: result = func_name(__VA_ARGS__, 10); break; \ case 11: result = func_name(__VA_ARGS__, 11); break; \ case 12: result = func_name(__VA_ARGS__, 12); break; \ case 13: result = func_name(__VA_ARGS__, 13); break; \ case 14: result = func_name(__VA_ARGS__, 14); break; \ case 15: result = func_name(__VA_ARGS__, 15); break; \ case 16: result = func_name(__VA_ARGS__, 16); break; \ case 17: result = func_name(__VA_ARGS__, 17); break; \ case 18: result = func_name(__VA_ARGS__, 18); break; \ case 19: result = func_name(__VA_ARGS__, 19); break; \ case 20: result = func_name(__VA_ARGS__, 20); break; \ case 21: result = func_name(__VA_ARGS__, 21); break; \ case 22: result = func_name(__VA_ARGS__, 22); break; \ case 23: result = func_name(__VA_ARGS__, 23); break; \ case 24: result = func_name(__VA_ARGS__, 24); break; \ case 25: result = func_name(__VA_ARGS__, 25); break; \ case 26: result = func_name(__VA_ARGS__, 26); break; \ case 27: result = func_name(__VA_ARGS__, 27); break; \ case 28: result = func_name(__VA_ARGS__, 28); break; \ case 29: result = func_name(__VA_ARGS__, 29); break; \ case 30: result = func_name(__VA_ARGS__, 30); break; \ case 31: result = func_name(__VA_ARGS__, 31); break; \ case 32: result = func_name(__VA_ARGS__, 32); break; \ case 33: result = func_name(__VA_ARGS__, 33); break; \ case 34: result = func_name(__VA_ARGS__, 34); break; \ case 35: result = func_name(__VA_ARGS__, 35); break; \ case 36: result = func_name(__VA_ARGS__, 36); break; \ case 37: result = func_name(__VA_ARGS__, 37); break; \ case 38: result = func_name(__VA_ARGS__, 38); break; \ case 39: result = func_name(__VA_ARGS__, 39); break; \ case 40: result = func_name(__VA_ARGS__, 40); break; \ case 41: result = func_name(__VA_ARGS__, 41); break; \ case 42: result = func_name(__VA_ARGS__, 42); break; \ case 43: result = func_name(__VA_ARGS__, 43); break; \ case 44: result = func_name(__VA_ARGS__, 44); break; \ case 45: result = func_name(__VA_ARGS__, 45); break; \ case 46: result = func_name(__VA_ARGS__, 46); break; \ case 47: result = func_name(__VA_ARGS__, 47); break; \ case 48: result = func_name(__VA_ARGS__, 48); break; \ case 49: result = func_name(__VA_ARGS__, 49); break; \ case 50: result = func_name(__VA_ARGS__, 50); break; \ case 51: result = func_name(__VA_ARGS__, 51); break; \ case 52: result = func_name(__VA_ARGS__, 52); break; \ case 53: result = func_name(__VA_ARGS__, 53); break; \ case 54: result = func_name(__VA_ARGS__, 54); break; \ case 55: result = func_name(__VA_ARGS__, 55); break; \ case 56: result = func_name(__VA_ARGS__, 56); break; \ case 57: result = func_name(__VA_ARGS__, 57); break; \ case 58: result = func_name(__VA_ARGS__, 58); break; \ case 59: result = func_name(__VA_ARGS__, 59); break; \ case 60: result = func_name(__VA_ARGS__, 60); break; \ case 61: result = func_name(__VA_ARGS__, 61); break; \ case 62: result = func_name(__VA_ARGS__, 62); break; \ case 63: result = func_name(__VA_ARGS__, 63); break; \ default: result = default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_2_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ default: default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_4_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ case 2: func_name(__VA_ARGS__, 2); break; \ case 3: func_name(__VA_ARGS__, 3); break; \ default: default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_8_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ case 2: func_name(__VA_ARGS__, 2); break; \ case 3: func_name(__VA_ARGS__, 3); break; \ case 4: func_name(__VA_ARGS__, 4); break; \ case 5: func_name(__VA_ARGS__, 5); break; \ case 6: func_name(__VA_ARGS__, 6); break; \ case 7: func_name(__VA_ARGS__, 7); break; \ default: default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_16_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ case 2: func_name(__VA_ARGS__, 2); break; \ case 3: func_name(__VA_ARGS__, 3); break; \ case 4: func_name(__VA_ARGS__, 4); break; \ case 5: func_name(__VA_ARGS__, 5); break; \ case 6: func_name(__VA_ARGS__, 6); break; \ case 7: func_name(__VA_ARGS__, 7); break; \ case 8: func_name(__VA_ARGS__, 8); break; \ case 9: func_name(__VA_ARGS__, 9); break; \ case 10: func_name(__VA_ARGS__, 10); break; \ case 11: func_name(__VA_ARGS__, 11); break; \ case 12: func_name(__VA_ARGS__, 12); break; \ case 13: func_name(__VA_ARGS__, 13); break; \ case 14: func_name(__VA_ARGS__, 14); break; \ case 15: func_name(__VA_ARGS__, 15); break; \ default: default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_32_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ case 2: func_name(__VA_ARGS__, 2); break; \ case 3: func_name(__VA_ARGS__, 3); break; \ case 4: func_name(__VA_ARGS__, 4); break; \ case 5: func_name(__VA_ARGS__, 5); break; \ case 6: func_name(__VA_ARGS__, 6); break; \ case 7: func_name(__VA_ARGS__, 7); break; \ case 8: func_name(__VA_ARGS__, 8); break; \ case 9: func_name(__VA_ARGS__, 9); break; \ case 10: func_name(__VA_ARGS__, 10); break; \ case 11: func_name(__VA_ARGS__, 11); break; \ case 12: func_name(__VA_ARGS__, 12); break; \ case 13: func_name(__VA_ARGS__, 13); break; \ case 14: func_name(__VA_ARGS__, 14); break; \ case 15: func_name(__VA_ARGS__, 15); break; \ case 16: func_name(__VA_ARGS__, 16); break; \ case 17: func_name(__VA_ARGS__, 17); break; \ case 18: func_name(__VA_ARGS__, 18); break; \ case 19: func_name(__VA_ARGS__, 19); break; \ case 20: func_name(__VA_ARGS__, 20); break; \ case 21: func_name(__VA_ARGS__, 21); break; \ case 22: func_name(__VA_ARGS__, 22); break; \ case 23: func_name(__VA_ARGS__, 23); break; \ case 24: func_name(__VA_ARGS__, 24); break; \ case 25: func_name(__VA_ARGS__, 25); break; \ case 26: func_name(__VA_ARGS__, 26); break; \ case 27: func_name(__VA_ARGS__, 27); break; \ case 28: func_name(__VA_ARGS__, 28); break; \ case 29: func_name(__VA_ARGS__, 29); break; \ case 30: func_name(__VA_ARGS__, 30); break; \ case 31: func_name(__VA_ARGS__, 31); break; \ default: default_case; break; \ } \ } while (0) #define SIMDE_CONSTIFY_64_NO_RESULT_(func_name, default_case, imm, ...) \ do { \ switch(imm) { \ case 0: func_name(__VA_ARGS__, 0); break; \ case 1: func_name(__VA_ARGS__, 1); break; \ case 2: func_name(__VA_ARGS__, 2); break; \ case 3: func_name(__VA_ARGS__, 3); break; \ case 4: func_name(__VA_ARGS__, 4); break; \ case 5: func_name(__VA_ARGS__, 5); break; \ case 6: func_name(__VA_ARGS__, 6); break; \ case 7: func_name(__VA_ARGS__, 7); break; \ case 8: func_name(__VA_ARGS__, 8); break; \ case 9: func_name(__VA_ARGS__, 9); break; \ case 10: func_name(__VA_ARGS__, 10); break; \ case 11: func_name(__VA_ARGS__, 11); break; \ case 12: func_name(__VA_ARGS__, 12); break; \ case 13: func_name(__VA_ARGS__, 13); break; \ case 14: func_name(__VA_ARGS__, 14); break; \ case 15: func_name(__VA_ARGS__, 15); break; \ case 16: func_name(__VA_ARGS__, 16); break; \ case 17: func_name(__VA_ARGS__, 17); break; \ case 18: func_name(__VA_ARGS__, 18); break; \ case 19: func_name(__VA_ARGS__, 19); break; \ case 20: func_name(__VA_ARGS__, 20); break; \ case 21: func_name(__VA_ARGS__, 21); break; \ case 22: func_name(__VA_ARGS__, 22); break; \ case 23: func_name(__VA_ARGS__, 23); break; \ case 24: func_name(__VA_ARGS__, 24); break; \ case 25: func_name(__VA_ARGS__, 25); break; \ case 26: func_name(__VA_ARGS__, 26); break; \ case 27: func_name(__VA_ARGS__, 27); break; \ case 28: func_name(__VA_ARGS__, 28); break; \ case 29: func_name(__VA_ARGS__, 29); break; \ case 30: func_name(__VA_ARGS__, 30); break; \ case 31: func_name(__VA_ARGS__, 31); break; \ case 32: func_name(__VA_ARGS__, 32); break; \ case 33: func_name(__VA_ARGS__, 33); break; \ case 34: func_name(__VA_ARGS__, 34); break; \ case 35: func_name(__VA_ARGS__, 35); break; \ case 36: func_name(__VA_ARGS__, 36); break; \ case 37: func_name(__VA_ARGS__, 37); break; \ case 38: func_name(__VA_ARGS__, 38); break; \ case 39: func_name(__VA_ARGS__, 39); break; \ case 40: func_name(__VA_ARGS__, 40); break; \ case 41: func_name(__VA_ARGS__, 41); break; \ case 42: func_name(__VA_ARGS__, 42); break; \ case 43: func_name(__VA_ARGS__, 43); break; \ case 44: func_name(__VA_ARGS__, 44); break; \ case 45: func_name(__VA_ARGS__, 45); break; \ case 46: func_name(__VA_ARGS__, 46); break; \ case 47: func_name(__VA_ARGS__, 47); break; \ case 48: func_name(__VA_ARGS__, 48); break; \ case 49: func_name(__VA_ARGS__, 49); break; \ case 50: func_name(__VA_ARGS__, 50); break; \ case 51: func_name(__VA_ARGS__, 51); break; \ case 52: func_name(__VA_ARGS__, 52); break; \ case 53: func_name(__VA_ARGS__, 53); break; \ case 54: func_name(__VA_ARGS__, 54); break; \ case 55: func_name(__VA_ARGS__, 55); break; \ case 56: func_name(__VA_ARGS__, 56); break; \ case 57: func_name(__VA_ARGS__, 57); break; \ case 58: func_name(__VA_ARGS__, 58); break; \ case 59: func_name(__VA_ARGS__, 59); break; \ case 60: func_name(__VA_ARGS__, 60); break; \ case 61: func_name(__VA_ARGS__, 61); break; \ case 62: func_name(__VA_ARGS__, 62); break; \ case 63: func_name(__VA_ARGS__, 63); break; \ default: default_case; break; \ } \ } while (0) HEDLEY_DIAGNOSTIC_POP #endif /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-constify.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-align.h :: */ /* Alignment * Created by Evan Nemerson * * To the extent possible under law, the authors have waived all * copyright and related or neighboring rights to this code. For * details, see the Creative Commons Zero 1.0 Universal license at * * * SPDX-License-Identifier: CC0-1.0 * ********************************************************************** * * This is portability layer which should help iron out some * differences across various compilers, as well as various verisons of * C and C++. * * It was originally developed for SIMD Everywhere * (), but since its only * dependency is Hedley (, also CC0) * it can easily be used in other projects, so please feel free to do * so. * * If you do use this in your project, please keep a link to SIMDe in * your code to remind you where to report any bugs and/or check for * updated versions. * * # API Overview * * The API has several parts, and most macros have a few variations. * There are APIs for declaring aligned fields/variables, optimization * hints, and run-time alignment checks. * * Briefly, macros ending with "_TO" take numeric values and are great * when you know the value you would like to use. Macros ending with * "_LIKE", on the other hand, accept a type and are used when you want * to use the alignment of a type instead of hardcoding a value. * * Documentation for each section of the API is inline. * * True to form, MSVC is the main problem and imposes several * limitations on the effectiveness of the APIs. Detailed descriptions * of the limitations of each macro are inline, but in general: * * * On C11+ or C++11+ code written using this API will work. The * ASSUME macros may or may not generate a hint to the compiler, but * that is only an optimization issue and will not actually cause * failures. * * If you're using pretty much any compiler other than MSVC, * everything should basically work as well as in C11/C++11. */ #if !defined(SIMDE_ALIGN_H) #define SIMDE_ALIGN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* I know this seems a little silly, but some non-hosted compilers * don't have stddef.h, so we try to accomodate them. */ #if !defined(SIMDE_ALIGN_SIZE_T_) #if defined(__SIZE_TYPE__) #define SIMDE_ALIGN_SIZE_T_ __SIZE_TYPE__ #elif defined(__SIZE_T_TYPE__) #define SIMDE_ALIGN_SIZE_T_ __SIZE_TYPE__ #elif defined(__cplusplus) #include #define SIMDE_ALIGN_SIZE_T_ size_t #else #include #define SIMDE_ALIGN_SIZE_T_ size_t #endif #endif #if !defined(SIMDE_ALIGN_INTPTR_T_) #if defined(__INTPTR_TYPE__) #define SIMDE_ALIGN_INTPTR_T_ __INTPTR_TYPE__ #elif defined(__PTRDIFF_TYPE__) #define SIMDE_ALIGN_INTPTR_T_ __PTRDIFF_TYPE__ #elif defined(__PTRDIFF_T_TYPE__) #define SIMDE_ALIGN_INTPTR_T_ __PTRDIFF_T_TYPE__ #elif defined(__cplusplus) #include #define SIMDE_ALIGN_INTPTR_T_ ptrdiff_t #else #include #define SIMDE_ALIGN_INTPTR_T_ ptrdiff_t #endif #endif #if defined(SIMDE_ALIGN_DEBUG) #if defined(__cplusplus) #include #else #include #endif #endif /* SIMDE_ALIGN_OF(Type) * * The SIMDE_ALIGN_OF macro works like alignof, or _Alignof, or * __alignof, or __alignof__, or __ALIGNOF__, depending on the compiler. * It isn't defined everywhere (only when the compiler has some alignof- * like feature we can use to implement it), but it should work in most * modern compilers, as well as C11 and C++11. * * If we can't find an implementation for SIMDE_ALIGN_OF then the macro * will not be defined, so if you can handle that situation sensibly * you may need to sprinkle some ifdefs into your code. */ #if \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L)) || \ (0 && HEDLEY_HAS_FEATURE(c_alignof)) #define SIMDE_ALIGN_OF(Type) _Alignof(Type) #elif \ (defined(__cplusplus) && (__cplusplus >= 201103L)) || \ (0 && HEDLEY_HAS_FEATURE(cxx_alignof)) #define SIMDE_ALIGN_OF(Type) alignof(Type) #elif \ HEDLEY_GCC_VERSION_CHECK(2,95,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,13,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,24) || \ HEDLEY_PGI_VERSION_CHECK(19,10,0) || \ HEDLEY_CRAY_VERSION_CHECK(10,0,0) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,3,2) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) || \ defined(__IBM__ALIGNOF__) || \ defined(__clang__) #define SIMDE_ALIGN_OF(Type) __alignof__(Type) #elif \ HEDLEY_IAR_VERSION_CHECK(8,40,0) #define SIMDE_ALIGN_OF(Type) __ALIGNOF__(Type) #elif \ HEDLEY_MSVC_VERSION_CHECK(19,0,0) /* Probably goes back much further, but MS takes down their old docs. * If you can verify that this works in earlier versions please let * me know! */ #define SIMDE_ALIGN_OF(Type) __alignof(Type) #endif /* SIMDE_ALIGN_MAXIMUM: * * This is the maximum alignment that the compiler supports. You can * define the value prior to including SIMDe if necessary, but in that * case *please* submit an issue so we can add the platform to the * detection code. * * Most compilers are okay with types which are aligned beyond what * they think is the maximum, as long as the alignment is a power * of two. Older versions of MSVC is the exception, so we need to cap * the alignment requests at values that the implementation supports. * * XL C/C++ will accept values larger than 16 (which is the alignment * of an AltiVec vector), but will not reliably align to the larger * value, so so we cap the value at 16 there. * * If the compiler accepts any power-of-two value within reason then * this macro should be left undefined, and the SIMDE_ALIGN_CAP * macro will just return the value passed to it. */ #if !defined(SIMDE_ALIGN_MAXIMUM) #if defined(HEDLEY_MSVC_VERSION) #if HEDLEY_MSVC_VERSION_CHECK(19, 16, 0) // Visual studio 2017 and newer does not need a max #else #if defined(_M_IX86) || defined(_M_AMD64) #if HEDLEY_MSVC_VERSION_CHECK(19,14,0) #define SIMDE_ALIGN_PLATFORM_MAXIMUM 64 #elif HEDLEY_MSVC_VERSION_CHECK(16,0,0) /* VS 2010 is really a guess based on Wikipedia; if anyone can * test with old VS versions I'd really appreciate it. */ #define SIMDE_ALIGN_PLATFORM_MAXIMUM 32 #else #define SIMDE_ALIGN_PLATFORM_MAXIMUM 16 #endif #elif defined(_M_ARM) || defined(_M_ARM64) #define SIMDE_ALIGN_PLATFORM_MAXIMUM 8 #endif #endif #elif defined(HEDLEY_IBM_VERSION) #define SIMDE_ALIGN_PLATFORM_MAXIMUM 16 #endif #endif /* You can mostly ignore these; they're intended for internal use. * If you do need to use them please let me know; if they fulfill * a common use case I'll probably drop the trailing underscore * and make them part of the public API. */ #if defined(SIMDE_ALIGN_PLATFORM_MAXIMUM) #if SIMDE_ALIGN_PLATFORM_MAXIMUM >= 64 #define SIMDE_ALIGN_64_ 64 #define SIMDE_ALIGN_32_ 32 #define SIMDE_ALIGN_16_ 16 #define SIMDE_ALIGN_8_ 8 #elif SIMDE_ALIGN_PLATFORM_MAXIMUM >= 32 #define SIMDE_ALIGN_64_ 32 #define SIMDE_ALIGN_32_ 32 #define SIMDE_ALIGN_16_ 16 #define SIMDE_ALIGN_8_ 8 #elif SIMDE_ALIGN_PLATFORM_MAXIMUM >= 16 #define SIMDE_ALIGN_64_ 16 #define SIMDE_ALIGN_32_ 16 #define SIMDE_ALIGN_16_ 16 #define SIMDE_ALIGN_8_ 8 #elif SIMDE_ALIGN_PLATFORM_MAXIMUM >= 8 #define SIMDE_ALIGN_64_ 8 #define SIMDE_ALIGN_32_ 8 #define SIMDE_ALIGN_16_ 8 #define SIMDE_ALIGN_8_ 8 #else #error Max alignment expected to be >= 8 #endif #else #define SIMDE_ALIGN_64_ 64 #define SIMDE_ALIGN_32_ 32 #define SIMDE_ALIGN_16_ 16 #define SIMDE_ALIGN_8_ 8 #endif /** * SIMDE_ALIGN_CAP(Alignment) * * Returns the minimum of Alignment or SIMDE_ALIGN_MAXIMUM. */ #if defined(SIMDE_ALIGN_MAXIMUM) #define SIMDE_ALIGN_CAP(Alignment) (((Alignment) < (SIMDE_ALIGN_PLATFORM_MAXIMUM)) ? (Alignment) : (SIMDE_ALIGN_PLATFORM_MAXIMUM)) #else #define SIMDE_ALIGN_CAP(Alignment) (Alignment) #endif /* SIMDE_ALIGN_TO(Alignment) * * SIMDE_ALIGN_TO is used to declare types or variables. It basically * maps to the align attribute in most compilers, the align declspec * in MSVC, or _Alignas/alignas in C11/C++11. * * Example: * * struct i32x4 { * SIMDE_ALIGN_TO(16) int32_t values[4]; * } * * Limitations: * * MSVC requires that the Alignment parameter be numeric; you can't do * something like `SIMDE_ALIGN_TO(SIMDE_ALIGN_OF(int))`. This is * unfortunate because that's really how the LIKE macros are * implemented, and I am not aware of a way to get anything like this * to work without using the C11/C++11 keywords. * * It also means that we can't use SIMDE_ALIGN_CAP to limit the * alignment to the value specified, which MSVC also requires, so on * MSVC you should use the `SIMDE_ALIGN_TO_8/16/32/64` macros instead. * They work like `SIMDE_ALIGN_TO(SIMDE_ALIGN_CAP(Alignment))` would, * but should be safe to use on MSVC. * * All this is to say that, if you want your code to work on MSVC, you * should use the SIMDE_ALIGN_TO_8/16/32/64 macros below instead of * SIMDE_ALIGN_TO(8/16/32/64). */ #if \ HEDLEY_HAS_ATTRIBUTE(aligned) || \ HEDLEY_GCC_VERSION_CHECK(2,95,0) || \ HEDLEY_CRAY_VERSION_CHECK(8,4,0) || \ HEDLEY_IBM_VERSION_CHECK(11,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_PGI_VERSION_CHECK(19,4,0) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,24) || \ HEDLEY_TI_ARMCL_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CL2000_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(8,0,0) || \ HEDLEY_TI_CL7X_VERSION_CHECK(1,2,0) || \ HEDLEY_TI_CL430_VERSION_CHECK(16,9,0) || \ HEDLEY_TI_CLPRU_VERSION_CHECK(2,3,2) #define SIMDE_ALIGN_TO(Alignment) __attribute__((__aligned__(SIMDE_ALIGN_CAP(Alignment)))) #elif \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L)) #define SIMDE_ALIGN_TO(Alignment) _Alignas(SIMDE_ALIGN_CAP(Alignment)) #elif \ (defined(__cplusplus) && (__cplusplus >= 201103L)) #define SIMDE_ALIGN_TO(Alignment) alignas(SIMDE_ALIGN_CAP(Alignment)) #elif \ defined(HEDLEY_MSVC_VERSION) #define SIMDE_ALIGN_TO(Alignment) __declspec(align(Alignment)) /* Unfortunately MSVC can't handle __declspec(align(__alignof(Type))); * the alignment passed to the declspec has to be an integer. */ #define SIMDE_ALIGN_OF_UNUSABLE_FOR_LIKE #endif #define SIMDE_ALIGN_TO_64 SIMDE_ALIGN_TO(SIMDE_ALIGN_64_) #define SIMDE_ALIGN_TO_32 SIMDE_ALIGN_TO(SIMDE_ALIGN_32_) #define SIMDE_ALIGN_TO_16 SIMDE_ALIGN_TO(SIMDE_ALIGN_16_) #define SIMDE_ALIGN_TO_8 SIMDE_ALIGN_TO(SIMDE_ALIGN_8_) /* SIMDE_ALIGN_ASSUME_TO(Pointer, Alignment) * * SIMDE_ALIGN_ASSUME_TO is semantically similar to C++20's * std::assume_aligned, or __builtin_assume_aligned. It tells the * compiler to assume that the provided pointer is aligned to an * `Alignment`-byte boundary. * * If you define SIMDE_ALIGN_DEBUG prior to including this header then * SIMDE_ALIGN_ASSUME_TO will turn into a runtime check. We don't * integrate with NDEBUG in this header, but it may be a good idea to * put something like this in your code: * * #if !defined(NDEBUG) * #define SIMDE_ALIGN_DEBUG * #endif * #include <.../simde-align.h> */ #if \ HEDLEY_HAS_BUILTIN(__builtin_assume_aligned) || \ HEDLEY_GCC_VERSION_CHECK(4,7,0) #define SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) \ HEDLEY_REINTERPRET_CAST(__typeof__(Pointer), __builtin_assume_aligned(HEDLEY_CONST_CAST(void*, HEDLEY_REINTERPRET_CAST(const void*, Pointer)), Alignment)) #elif HEDLEY_INTEL_VERSION_CHECK(13,0,0) #define SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) (__extension__ ({ \ __typeof__(v) simde_assume_aligned_t_ = (Pointer); \ __assume_aligned(simde_assume_aligned_t_, Alignment); \ simde_assume_aligned_t_; \ })) #elif defined(__cplusplus) && (__cplusplus > 201703L) #include #define SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) std::assume_aligned(Pointer) #else #if defined(__cplusplus) template HEDLEY_ALWAYS_INLINE static T* simde_align_assume_to_unchecked(T* ptr, const size_t alignment) #else HEDLEY_ALWAYS_INLINE static void* simde_align_assume_to_unchecked(void* ptr, const size_t alignment) #endif { HEDLEY_ASSUME((HEDLEY_REINTERPRET_CAST(size_t, (ptr)) % SIMDE_ALIGN_CAP(alignment)) == 0); return ptr; } #if defined(__cplusplus) #define SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) simde_align_assume_to_unchecked((Pointer), (Alignment)) #else #define SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) simde_align_assume_to_unchecked(HEDLEY_CONST_CAST(void*, HEDLEY_REINTERPRET_CAST(const void*, Pointer)), (Alignment)) #endif #endif #if !defined(SIMDE_ALIGN_DEBUG) #define SIMDE_ALIGN_ASSUME_TO(Pointer, Alignment) SIMDE_ALIGN_ASSUME_TO_UNCHECKED(Pointer, Alignment) #else #include #if defined(__cplusplus) template static HEDLEY_ALWAYS_INLINE T* simde_align_assume_to_checked_uncapped(T* ptr, const size_t alignment, const char* file, int line, const char* ptrname) #else static HEDLEY_ALWAYS_INLINE void* simde_align_assume_to_checked_uncapped(void* ptr, const size_t alignment, const char* file, int line, const char* ptrname) #endif { if (HEDLEY_UNLIKELY((HEDLEY_REINTERPRET_CAST(SIMDE_ALIGN_INTPTR_T_, (ptr)) % HEDLEY_STATIC_CAST(SIMDE_ALIGN_INTPTR_T_, SIMDE_ALIGN_CAP(alignment))) != 0)) { fprintf(stderr, "%s:%d: alignment check failed for `%s' (%p %% %u == %u)\n", file, line, ptrname, HEDLEY_REINTERPRET_CAST(const void*, ptr), HEDLEY_STATIC_CAST(unsigned int, SIMDE_ALIGN_CAP(alignment)), HEDLEY_STATIC_CAST(unsigned int, HEDLEY_REINTERPRET_CAST(SIMDE_ALIGN_INTPTR_T_, (ptr)) % HEDLEY_STATIC_CAST(SIMDE_ALIGN_INTPTR_T_, SIMDE_ALIGN_CAP(alignment)))); } return ptr; } #if defined(__cplusplus) #define SIMDE_ALIGN_ASSUME_TO(Pointer, Alignment) simde_align_assume_to_checked_uncapped((Pointer), (Alignment), __FILE__, __LINE__, #Pointer) #else #define SIMDE_ALIGN_ASSUME_TO(Pointer, Alignment) simde_align_assume_to_checked_uncapped(HEDLEY_CONST_CAST(void*, HEDLEY_REINTERPRET_CAST(const void*, Pointer)), (Alignment), __FILE__, __LINE__, #Pointer) #endif #endif /* SIMDE_ALIGN_LIKE(Type) * SIMDE_ALIGN_LIKE_#(Type) * * The SIMDE_ALIGN_LIKE macros are similar to the SIMDE_ALIGN_TO macros * except instead of an integer they take a type; basically, it's just * a more convenient way to do something like: * * SIMDE_ALIGN_TO(SIMDE_ALIGN_OF(Type)) * * The versions with a numeric suffix will fall back on using a numeric * value in the event we can't use SIMDE_ALIGN_OF(Type). This is * mainly for MSVC, where __declspec(align()) can't handle anything * other than hard-coded numeric values. */ #if defined(SIMDE_ALIGN_OF) && defined(SIMDE_ALIGN_TO) && !defined(SIMDE_ALIGN_OF_UNUSABLE_FOR_LIKE) #define SIMDE_ALIGN_LIKE(Type) SIMDE_ALIGN_TO(SIMDE_ALIGN_OF(Type)) #define SIMDE_ALIGN_LIKE_64(Type) SIMDE_ALIGN_LIKE(Type) #define SIMDE_ALIGN_LIKE_32(Type) SIMDE_ALIGN_LIKE(Type) #define SIMDE_ALIGN_LIKE_16(Type) SIMDE_ALIGN_LIKE(Type) #define SIMDE_ALIGN_LIKE_8(Type) SIMDE_ALIGN_LIKE(Type) #else #define SIMDE_ALIGN_LIKE_64(Type) SIMDE_ALIGN_TO_64 #define SIMDE_ALIGN_LIKE_32(Type) SIMDE_ALIGN_TO_32 #define SIMDE_ALIGN_LIKE_16(Type) SIMDE_ALIGN_TO_16 #define SIMDE_ALIGN_LIKE_8(Type) SIMDE_ALIGN_TO_8 #endif /* SIMDE_ALIGN_ASSUME_LIKE(Pointer, Type) * * Tihs is similar to SIMDE_ALIGN_ASSUME_TO, except that it takes a * type instead of a numeric value. */ #if defined(SIMDE_ALIGN_OF) && defined(SIMDE_ALIGN_ASSUME_TO) #define SIMDE_ALIGN_ASSUME_LIKE(Pointer, Type) SIMDE_ALIGN_ASSUME_TO(Pointer, SIMDE_ALIGN_OF(Type)) #endif /* SIMDE_ALIGN_CAST(Type, Pointer) * * SIMDE_ALIGN_CAST is like C++'s reinterpret_cast, but it will try * to silence warnings that some compilers may produce if you try * to assign to a type with increased alignment requirements. * * Note that it does *not* actually attempt to tell the compiler that * the pointer is aligned like the destination should be; that's the * job of the next macro. This macro is necessary for stupid APIs * like _mm_loadu_si128 where the input is a __m128i* but the function * is specifically for data which isn't necessarily aligned to * _Alignof(__m128i). */ #if HEDLEY_HAS_WARNING("-Wcast-align") || defined(__clang__) || HEDLEY_GCC_VERSION_CHECK(3,4,0) #define SIMDE_ALIGN_CAST(Type, Pointer) (__extension__({ \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("GCC diagnostic ignored \"-Wcast-align\"") \ Type simde_r_ = HEDLEY_REINTERPRET_CAST(Type, Pointer); \ HEDLEY_DIAGNOSTIC_POP \ simde_r_; \ })) #else #define SIMDE_ALIGN_CAST(Type, Pointer) HEDLEY_REINTERPRET_CAST(Type, Pointer) #endif /* SIMDE_ALIGN_ASSUME_CAST(Type, Pointer) * * This is sort of like a combination of a reinterpret_cast and a * SIMDE_ALIGN_ASSUME_LIKE. It uses SIMDE_ALIGN_ASSUME_LIKE to tell * the compiler that the pointer is aligned like the specified type * and casts the pointer to the specified type while suppressing any * warnings from the compiler about casting to a type with greater * alignment requirements. */ #define SIMDE_ALIGN_ASSUME_CAST(Type, Pointer) SIMDE_ALIGN_ASSUME_LIKE(SIMDE_ALIGN_CAST(Type, Pointer), Type) #endif /* !defined(SIMDE_ALIGN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-align.h :: */ /* In some situations, SIMDe has to make large performance sacrifices * for small increases in how faithfully it reproduces an API, but * only a relatively small number of users will actually need the API * to be completely accurate. The SIMDE_FAST_* options can be used to * disable these trade-offs. * * They can be enabled by passing -DSIMDE_FAST_MATH to the compiler, or * the individual defines (e.g., -DSIMDE_FAST_NANS) if you only want to * enable some optimizations. Using -ffast-math and/or * -ffinite-math-only will also enable the relevant options. If you * don't want that you can pass -DSIMDE_NO_FAST_* to disable them. */ /* Most programs avoid NaNs by never passing values which can result in * a NaN; for example, if you only pass non-negative values to the sqrt * functions, it won't generate a NaN. On some platforms, similar * functions handle NaNs differently; for example, the _mm_min_ps SSE * function will return 0.0 if you pass it (0.0, NaN), but the NEON * vminq_f32 function will return NaN. Making them behave like one * another is expensive; it requires generating a mask of all lanes * with NaNs, then performing the operation (e.g., vminq_f32), then * blending together the result with another vector using the mask. * * If you don't want SIMDe to worry about the differences between how * NaNs are handled on the two platforms, define this (or pass * -ffinite-math-only) */ #if !defined(SIMDE_FAST_MATH) && !defined(SIMDE_NO_FAST_MATH) && defined(__FAST_MATH__) #define SIMDE_FAST_MATH #endif #if !defined(SIMDE_FAST_NANS) && !defined(SIMDE_NO_FAST_NANS) #if defined(SIMDE_FAST_MATH) #define SIMDE_FAST_NANS #elif defined(__FINITE_MATH_ONLY__) #if __FINITE_MATH_ONLY__ #define SIMDE_FAST_NANS #endif #endif #endif /* Many functions are defined as using the current rounding mode * (i.e., the SIMD version of fegetround()) when converting to * an integer. For example, _mm_cvtpd_epi32. Unfortunately, * on some platforms (such as ARMv8+ where round-to-nearest is * always used, regardless of the FPSCR register) this means we * have to first query the current rounding mode, then choose * the proper function (rounnd , ceil, floor, etc.) */ #if !defined(SIMDE_FAST_ROUND_MODE) && !defined(SIMDE_NO_FAST_ROUND_MODE) && defined(SIMDE_FAST_MATH) #define SIMDE_FAST_ROUND_MODE #endif /* This controls how ties are rounded. For example, does 10.5 round to * 10 or 11? IEEE 754 specifies round-towards-even, but ARMv7 (for * example) doesn't support it and it must be emulated (which is rather * slow). If you're okay with just using the default for whatever arch * you're on, you should definitely define this. * * Note that we don't use this macro to avoid correct implementations * in functions which are explicitly about rounding (such as vrnd* on * NEON, _mm_round_* on x86, etc.); it is only used for code where * rounding is a component in another function, and even then it isn't * usually a problem since such functions will use the current rounding * mode. */ #if !defined(SIMDE_FAST_ROUND_TIES) && !defined(SIMDE_NO_FAST_ROUND_TIES) && defined(SIMDE_FAST_MATH) #define SIMDE_FAST_ROUND_TIES #endif /* For functions which convert from one type to another (mostly from * floating point to integer types), sometimes we need to do a range * check and potentially return a different result if the value * falls outside that range. Skipping this check can provide a * performance boost, at the expense of faithfulness to the API we're * emulating. */ #if !defined(SIMDE_FAST_CONVERSION_RANGE) && !defined(SIMDE_NO_FAST_CONVERSION_RANGE) && defined(SIMDE_FAST_MATH) #define SIMDE_FAST_CONVERSION_RANGE #endif #if \ HEDLEY_HAS_BUILTIN(__builtin_constant_p) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,19) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) || \ HEDLEY_TI_CL6X_VERSION_CHECK(6,1,0) || \ (HEDLEY_SUNPRO_VERSION_CHECK(5,10,0) && !defined(__cplusplus)) || \ HEDLEY_CRAY_VERSION_CHECK(8,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) #define SIMDE_CHECK_CONSTANT_(expr) (__builtin_constant_p(expr)) #elif defined(__cplusplus) && (__cplusplus > 201703L) #include #define SIMDE_CHECK_CONSTANT_(expr) (std::is_constant_evaluated()) #endif #if !defined(SIMDE_NO_CHECK_IMMEDIATE_CONSTANT) #if defined(SIMDE_CHECK_CONSTANT_) && \ SIMDE_DETECT_CLANG_VERSION_CHECK(9,0,0) && \ (!defined(__apple_build_version__) || ((__apple_build_version__ < 11000000) || (__apple_build_version__ >= 12000000))) #define SIMDE_REQUIRE_CONSTANT(arg) HEDLEY_REQUIRE_MSG(SIMDE_CHECK_CONSTANT_(arg), "`" #arg "' must be constant") #else #define SIMDE_REQUIRE_CONSTANT(arg) #endif #else #define SIMDE_REQUIRE_CONSTANT(arg) #endif #define SIMDE_REQUIRE_RANGE(arg, min, max) \ HEDLEY_REQUIRE_MSG((((arg) >= (min)) && ((arg) <= (max))), "'" #arg "' must be in [" #min ", " #max "]") #define SIMDE_REQUIRE_CONSTANT_RANGE(arg, min, max) \ SIMDE_REQUIRE_CONSTANT(arg) \ SIMDE_REQUIRE_RANGE(arg, min, max) /* A copy of HEDLEY_STATIC_ASSERT, except we don't define an empty * fallback if we can't find an implementation; instead we have to * check if SIMDE_STATIC_ASSERT is defined before using it. */ #if \ !defined(__cplusplus) && ( \ (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L)) || \ HEDLEY_HAS_FEATURE(c_static_assert) || \ HEDLEY_GCC_VERSION_CHECK(6,0,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ defined(_Static_assert) \ ) # define SIMDE_STATIC_ASSERT(expr, message) _Static_assert(expr, message) #elif \ (defined(__cplusplus) && (__cplusplus >= 201103L)) || \ HEDLEY_MSVC_VERSION_CHECK(16,0,0) # define SIMDE_STATIC_ASSERT(expr, message) HEDLEY_DIAGNOSTIC_DISABLE_CPP98_COMPAT_WRAP_(static_assert(expr, message)) #endif /* Statement exprs */ #if \ HEDLEY_GNUC_VERSION_CHECK(2,95,0) || \ HEDLEY_TINYC_VERSION_CHECK(0,9,26) || \ HEDLEY_INTEL_VERSION_CHECK(9,0,0) || \ HEDLEY_PGI_VERSION_CHECK(18,10,0) || \ HEDLEY_SUNPRO_VERSION_CHECK(5,12,0) || \ HEDLEY_IBM_VERSION_CHECK(11,1,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) #define SIMDE_STATEMENT_EXPR_(expr) (__extension__ expr) #endif #if defined(SIMDE_CHECK_CONSTANT_) && defined(SIMDE_STATIC_ASSERT) #define SIMDE_ASSERT_CONSTANT_(v) SIMDE_STATIC_ASSERT(SIMDE_CHECK_CONSTANT_(v), #v " must be constant.") #endif #if \ (HEDLEY_HAS_ATTRIBUTE(may_alias) && !defined(HEDLEY_SUNPRO_VERSION)) || \ HEDLEY_GCC_VERSION_CHECK(3,3,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) # define SIMDE_MAY_ALIAS __attribute__((__may_alias__)) #else # define SIMDE_MAY_ALIAS #endif /* Lots of compilers support GCC-style vector extensions, but many don't support all the features. Define different macros depending on support for * SIMDE_VECTOR - Declaring a vector. * SIMDE_VECTOR_OPS - basic operations (binary and unary). * SIMDE_VECTOR_NEGATE - negating a vector * SIMDE_VECTOR_SCALAR - For binary operators, the second argument can be a scalar, in which case the result is as if that scalar had been broadcast to all lanes of a vector. * SIMDE_VECTOR_SUBSCRIPT - Supports array subscript notation for extracting/inserting a single element.= SIMDE_VECTOR can be assumed if any others are defined, the others are independent. */ #if !defined(SIMDE_NO_VECTOR) # if \ HEDLEY_GCC_VERSION_CHECK(4,8,0) # define SIMDE_VECTOR(size) __attribute__((__vector_size__(size))) # define SIMDE_VECTOR_OPS # define SIMDE_VECTOR_NEGATE # define SIMDE_VECTOR_SCALAR # define SIMDE_VECTOR_SUBSCRIPT # elif HEDLEY_INTEL_VERSION_CHECK(16,0,0) # define SIMDE_VECTOR(size) __attribute__((__vector_size__(size))) # define SIMDE_VECTOR_OPS # define SIMDE_VECTOR_NEGATE /* ICC only supports SIMDE_VECTOR_SCALAR for constants */ # define SIMDE_VECTOR_SUBSCRIPT # elif \ HEDLEY_GCC_VERSION_CHECK(4,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) || \ HEDLEY_MCST_LCC_VERSION_CHECK(1,25,10) # define SIMDE_VECTOR(size) __attribute__((__vector_size__(size))) # define SIMDE_VECTOR_OPS # elif HEDLEY_SUNPRO_VERSION_CHECK(5,12,0) # define SIMDE_VECTOR(size) __attribute__((__vector_size__(size))) # elif HEDLEY_HAS_ATTRIBUTE(vector_size) # define SIMDE_VECTOR(size) __attribute__((__vector_size__(size))) # define SIMDE_VECTOR_OPS # define SIMDE_VECTOR_NEGATE # define SIMDE_VECTOR_SUBSCRIPT # if SIMDE_DETECT_CLANG_VERSION_CHECK(5,0,0) # define SIMDE_VECTOR_SCALAR # endif # endif /* GCC and clang have built-in functions to handle shuffling and converting of vectors, but the implementations are slightly different. This macro is just an abstraction over them. Note that elem_size is in bits but vec_size is in bytes. */ # if !defined(SIMDE_NO_SHUFFLE_VECTOR) && defined(SIMDE_VECTOR_SUBSCRIPT) HEDLEY_DIAGNOSTIC_PUSH /* We don't care about -Wvariadic-macros; all compilers that support * shufflevector/shuffle support them. */ # if HEDLEY_HAS_WARNING("-Wc++98-compat-pedantic") # pragma clang diagnostic ignored "-Wc++98-compat-pedantic" # endif # if HEDLEY_HAS_WARNING("-Wvariadic-macros") || HEDLEY_GCC_VERSION_CHECK(4,0,0) # pragma GCC diagnostic ignored "-Wvariadic-macros" # endif # if HEDLEY_HAS_BUILTIN(__builtin_shufflevector) # define SIMDE_SHUFFLE_VECTOR_(elem_size, vec_size, a, b, ...) __builtin_shufflevector(a, b, __VA_ARGS__) # elif HEDLEY_GCC_HAS_BUILTIN(__builtin_shuffle,4,7,0) && !defined(__INTEL_COMPILER) # define SIMDE_SHUFFLE_VECTOR_(elem_size, vec_size, a, b, ...) (__extension__ ({ \ int##elem_size##_t SIMDE_VECTOR(vec_size) simde_shuffle_ = { __VA_ARGS__ }; \ __builtin_shuffle(a, b, simde_shuffle_); \ })) # endif HEDLEY_DIAGNOSTIC_POP # endif /* TODO: this actually works on XL C/C++ without SIMDE_VECTOR_SUBSCRIPT but the code needs to be refactored a bit to take advantage. */ # if !defined(SIMDE_NO_CONVERT_VECTOR) && defined(SIMDE_VECTOR_SUBSCRIPT) # if HEDLEY_HAS_BUILTIN(__builtin_convertvector) || HEDLEY_GCC_VERSION_CHECK(9,0,0) # if HEDLEY_GCC_VERSION_CHECK(9,0,0) && !HEDLEY_GCC_VERSION_CHECK(9,3,0) /* https://gcc.gnu.org/bugzilla/show_bug.cgi?id=93557 */ # define SIMDE_CONVERT_VECTOR_(to, from) ((to) = (__extension__({ \ __typeof__(from) from_ = (from); \ ((void) from_); \ __builtin_convertvector(from_, __typeof__(to)); \ }))) # else # define SIMDE_CONVERT_VECTOR_(to, from) ((to) = __builtin_convertvector((from), __typeof__(to))) # endif # endif # endif #endif /* Since we currently require SUBSCRIPT before using a vector in a union, we define these as dependencies of SUBSCRIPT. They are likely to disappear in the future, once SIMDe learns how to make use of vectors without using the union members. Do not use them in your code unless you're okay with it breaking when SIMDe changes. */ #if defined(SIMDE_VECTOR_SUBSCRIPT) # if defined(SIMDE_VECTOR_OPS) # define SIMDE_VECTOR_SUBSCRIPT_OPS # endif # if defined(SIMDE_VECTOR_SCALAR) # define SIMDE_VECTOR_SUBSCRIPT_SCALAR # endif #endif #if !defined(SIMDE_DISABLE_OPENMP) #if !defined(SIMDE_ENABLE_OPENMP) && ((defined(_OPENMP) && (_OPENMP >= 201307L)) || (defined(_OPENMP_SIMD) && (_OPENMP_SIMD >= 201307L))) || defined(HEDLEY_MCST_LCC_VERSION) #define SIMDE_ENABLE_OPENMP #endif #endif #if !defined(SIMDE_ENABLE_CILKPLUS) && (defined(__cilk) || defined(HEDLEY_INTEL_VERSION)) # define SIMDE_ENABLE_CILKPLUS #endif #if defined(SIMDE_ENABLE_OPENMP) # define SIMDE_VECTORIZE HEDLEY_PRAGMA(omp simd) # define SIMDE_VECTORIZE_SAFELEN(l) HEDLEY_PRAGMA(omp simd safelen(l)) # if defined(__clang__) # define SIMDE_VECTORIZE_REDUCTION(r) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wsign-conversion\"") \ HEDLEY_PRAGMA(omp simd reduction(r)) \ HEDLEY_DIAGNOSTIC_POP # else # define SIMDE_VECTORIZE_REDUCTION(r) HEDLEY_PRAGMA(omp simd reduction(r)) # endif # if !defined(HEDLEY_MCST_LCC_VERSION) # define SIMDE_VECTORIZE_ALIGNED(a) HEDLEY_PRAGMA(omp simd aligned(a)) # else # define SIMDE_VECTORIZE_ALIGNED(a) HEDLEY_PRAGMA(omp simd) # endif #elif defined(SIMDE_ENABLE_CILKPLUS) # define SIMDE_VECTORIZE HEDLEY_PRAGMA(simd) # define SIMDE_VECTORIZE_SAFELEN(l) HEDLEY_PRAGMA(simd vectorlength(l)) # define SIMDE_VECTORIZE_REDUCTION(r) HEDLEY_PRAGMA(simd reduction(r)) # define SIMDE_VECTORIZE_ALIGNED(a) HEDLEY_PRAGMA(simd aligned(a)) #elif defined(__clang__) && !defined(HEDLEY_IBM_VERSION) # define SIMDE_VECTORIZE HEDLEY_PRAGMA(clang loop vectorize(enable)) # define SIMDE_VECTORIZE_SAFELEN(l) HEDLEY_PRAGMA(clang loop vectorize_width(l)) # define SIMDE_VECTORIZE_REDUCTION(r) SIMDE_VECTORIZE # define SIMDE_VECTORIZE_ALIGNED(a) #elif HEDLEY_GCC_VERSION_CHECK(4,9,0) # define SIMDE_VECTORIZE HEDLEY_PRAGMA(GCC ivdep) # define SIMDE_VECTORIZE_SAFELEN(l) SIMDE_VECTORIZE # define SIMDE_VECTORIZE_REDUCTION(r) SIMDE_VECTORIZE # define SIMDE_VECTORIZE_ALIGNED(a) #elif HEDLEY_CRAY_VERSION_CHECK(5,0,0) # define SIMDE_VECTORIZE HEDLEY_PRAGMA(_CRI ivdep) # define SIMDE_VECTORIZE_SAFELEN(l) SIMDE_VECTORIZE # define SIMDE_VECTORIZE_REDUCTION(r) SIMDE_VECTORIZE # define SIMDE_VECTORIZE_ALIGNED(a) #else # define SIMDE_VECTORIZE # define SIMDE_VECTORIZE_SAFELEN(l) # define SIMDE_VECTORIZE_REDUCTION(r) # define SIMDE_VECTORIZE_ALIGNED(a) #endif #define SIMDE_MASK_NZ_(v, mask) (((v) & (mask)) | !((v) & (mask))) /* Intended for checking coverage, you should never use this in production. */ #if defined(SIMDE_NO_INLINE) # define SIMDE_FUNCTION_ATTRIBUTES HEDLEY_NEVER_INLINE static #else # define SIMDE_FUNCTION_ATTRIBUTES HEDLEY_ALWAYS_INLINE static #endif #if \ HEDLEY_HAS_ATTRIBUTE(unused) || \ HEDLEY_GCC_VERSION_CHECK(2,95,0) # define SIMDE_FUNCTION_POSSIBLY_UNUSED_ __attribute__((__unused__)) #else # define SIMDE_FUNCTION_POSSIBLY_UNUSED_ #endif #if HEDLEY_HAS_WARNING("-Wused-but-marked-unused") # define SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED _Pragma("clang diagnostic ignored \"-Wused-but-marked-unused\"") #else # define SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED #endif #if defined(_MSC_VER) # define SIMDE_BEGIN_DECLS_ HEDLEY_DIAGNOSTIC_PUSH __pragma(warning(disable:4996 4204)) HEDLEY_BEGIN_C_DECLS # define SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP HEDLEY_END_C_DECLS #else # define SIMDE_BEGIN_DECLS_ \ HEDLEY_DIAGNOSTIC_PUSH \ SIMDE_DIAGNOSTIC_DISABLE_USED_BUT_MARKED_UNUSED \ HEDLEY_BEGIN_C_DECLS # define SIMDE_END_DECLS_ \ HEDLEY_END_C_DECLS \ HEDLEY_DIAGNOSTIC_POP #endif #if defined(__SIZEOF_INT128__) # define SIMDE_HAVE_INT128_ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_PEDANTIC_ typedef __int128 simde_int128; typedef unsigned __int128 simde_uint128; HEDLEY_DIAGNOSTIC_POP #endif #if !defined(SIMDE_ENDIAN_LITTLE) # define SIMDE_ENDIAN_LITTLE 1234 #endif #if !defined(SIMDE_ENDIAN_BIG) # define SIMDE_ENDIAN_BIG 4321 #endif #if !defined(SIMDE_ENDIAN_ORDER) /* GCC (and compilers masquerading as GCC) define __BYTE_ORDER__. */ # if defined(__BYTE_ORDER__) && defined(__ORDER_LITTLE_ENDIAN__) && (__BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(__BYTE_ORDER__) && defined(__ORDER_BIG_ENDIAN__) && (__BYTE_ORDER__ == __ORDER_BIG_ENDIAN__) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG /* TI defines _BIG_ENDIAN or _LITTLE_ENDIAN */ # elif defined(_BIG_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG # elif defined(_LITTLE_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE /* We know the endianness of some common architectures. Common * architectures not listed (ARM, POWER, MIPS, etc.) here are * bi-endian. */ # elif defined(__amd64) || defined(_M_X64) || defined(__i386) || defined(_M_IX86) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(__s390x__) || defined(__zarch__) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG /* Looks like we'll have to rely on the platform. If we're missing a * platform, please let us know. */ # elif defined(_WIN32) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(sun) || defined(__sun) /* Solaris */ # include # if defined(_LITTLE_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(_BIG_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG # endif # elif defined(__APPLE__) # include # if defined(__LITTLE_ENDIAN__) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(__BIG_ENDIAN__) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG # endif # elif defined(__FreeBSD__) || defined(__NetBSD__) || defined(__OpenBSD__) || defined(__bsdi__) || defined(__DragonFly__) || defined(BSD) # include # if defined(__BYTE_ORDER) && (__BYTE_ORDER == __LITTLE_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(__BYTE_ORDER) && (__BYTE_ORDER == __BIG_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG # endif # elif defined(__linux__) || defined(__linux) || defined(__gnu_linux__) # include # if defined(__BYTE_ORDER) && defined(__LITTLE_ENDIAN) && (__BYTE_ORDER == __LITTLE_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_LITTLE # elif defined(__BYTE_ORDER) && defined(__BIG_ENDIAN) && (__BYTE_ORDER == __BIG_ENDIAN) # define SIMDE_ENDIAN_ORDER SIMDE_ENDIAN_BIG # endif # endif #endif #if \ HEDLEY_HAS_BUILTIN(__builtin_bswap64) || \ HEDLEY_GCC_VERSION_CHECK(4,3,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) || \ HEDLEY_INTEL_VERSION_CHECK(13,0,0) #define simde_bswap64(v) __builtin_bswap64(v) #elif HEDLEY_MSVC_VERSION_CHECK(13,10,0) #define simde_bswap64(v) _byteswap_uint64(v) #else SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_bswap64(uint64_t v) { return ((v & (((uint64_t) 0xff) << 56)) >> 56) | ((v & (((uint64_t) 0xff) << 48)) >> 40) | ((v & (((uint64_t) 0xff) << 40)) >> 24) | ((v & (((uint64_t) 0xff) << 32)) >> 8) | ((v & (((uint64_t) 0xff) << 24)) << 8) | ((v & (((uint64_t) 0xff) << 16)) << 24) | ((v & (((uint64_t) 0xff) << 8)) << 40) | ((v & (((uint64_t) 0xff) )) << 56); } #endif #if !defined(SIMDE_ENDIAN_ORDER) # error Unknown byte order; please file a bug #else # if SIMDE_ENDIAN_ORDER == SIMDE_ENDIAN_LITTLE # define simde_endian_bswap64_be(value) simde_bswap64(value) # define simde_endian_bswap64_le(value) (value) # elif SIMDE_ENDIAN_ORDER == SIMDE_ENDIAN_BIG # define simde_endian_bswap64_be(value) (value) # define simde_endian_bswap64_le(value) simde_bswap64(value) # endif #endif /* TODO: we should at least make an attempt to detect the correct types for simde_float32/float64 instead of just assuming float and double. */ #if !defined(SIMDE_FLOAT32_TYPE) # define SIMDE_FLOAT32_TYPE float # define SIMDE_FLOAT32_C(value) value##f #else # define SIMDE_FLOAT32_C(value) ((SIMDE_FLOAT32_TYPE) value) #endif typedef SIMDE_FLOAT32_TYPE simde_float32; #if !defined(SIMDE_FLOAT64_TYPE) # define SIMDE_FLOAT64_TYPE double # define SIMDE_FLOAT64_C(value) value #else # define SIMDE_FLOAT64_C(value) ((SIMDE_FLOAT64_TYPE) value) #endif typedef SIMDE_FLOAT64_TYPE simde_float64; #if defined(__cplusplus) typedef bool simde_bool; #elif defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) typedef _Bool simde_bool; #elif defined(bool) typedef bool simde_bool; #else #include typedef bool simde_bool; #endif #if HEDLEY_HAS_WARNING("-Wbad-function-cast") # define SIMDE_CONVERT_FTOI(T,v) \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wbad-function-cast\"") \ HEDLEY_STATIC_CAST(T, (v)) \ HEDLEY_DIAGNOSTIC_POP #else # define SIMDE_CONVERT_FTOI(T,v) ((T) (v)) #endif /* TODO: detect compilers which support this outside of C11 mode */ #if defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L) #define SIMDE_CHECKED_REINTERPRET_CAST(to, from, value) _Generic((value), to: (value), default: (_Generic((value), from: ((to) (value))))) #define SIMDE_CHECKED_STATIC_CAST(to, from, value) _Generic((value), to: (value), default: (_Generic((value), from: ((to) (value))))) #else #define SIMDE_CHECKED_REINTERPRET_CAST(to, from, value) HEDLEY_REINTERPRET_CAST(to, value) #define SIMDE_CHECKED_STATIC_CAST(to, from, value) HEDLEY_STATIC_CAST(to, value) #endif #if HEDLEY_HAS_WARNING("-Wfloat-equal") # define SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL _Pragma("clang diagnostic ignored \"-Wfloat-equal\"") #elif HEDLEY_GCC_VERSION_CHECK(3,0,0) # define SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL _Pragma("GCC diagnostic ignored \"-Wfloat-equal\"") #else # define SIMDE_DIAGNOSTIC_DISABLE_FLOAT_EQUAL #endif /* Some functions can trade accuracy for speed. For those functions you can control the trade-off using this macro. Possible values: 0: prefer speed 1: reasonable trade-offs 2: prefer accuracy */ #if !defined(SIMDE_ACCURACY_PREFERENCE) # define SIMDE_ACCURACY_PREFERENCE 1 #endif #if defined(__STDC_HOSTED__) # define SIMDE_STDC_HOSTED __STDC_HOSTED__ #else # if \ defined(HEDLEY_PGI_VERSION) || \ defined(HEDLEY_MSVC_VERSION) # define SIMDE_STDC_HOSTED 1 # else # define SIMDE_STDC_HOSTED 0 # endif #endif /* Try to deal with environments without a standard library. */ #if !defined(simde_memcpy) #if HEDLEY_HAS_BUILTIN(__builtin_memcpy) #define simde_memcpy(dest, src, n) __builtin_memcpy(dest, src, n) #endif #endif #if !defined(simde_memset) #if HEDLEY_HAS_BUILTIN(__builtin_memset) #define simde_memset(s, c, n) __builtin_memset(s, c, n) #endif #endif #if !defined(simde_memcmp) #if HEDLEY_HAS_BUILTIN(__builtin_memcmp) #define simde_memcmp(s1, s2, n) __builtin_memcmp(s1, s2, n) #endif #endif #if !defined(simde_memcpy) || !defined(simde_memset) || !defined(simde_memcmp) #if !defined(SIMDE_NO_STRING_H) #if defined(__has_include) #if !__has_include() #define SIMDE_NO_STRING_H #endif #elif (SIMDE_STDC_HOSTED == 0) #define SIMDE_NO_STRING_H #endif #endif #if !defined(SIMDE_NO_STRING_H) #include #if !defined(simde_memcpy) #define simde_memcpy(dest, src, n) memcpy(dest, src, n) #endif #if !defined(simde_memset) #define simde_memset(s, c, n) memset(s, c, n) #endif #if !defined(simde_memcmp) #define simde_memcmp(s1, s2, n) memcmp(s1, s2, n) #endif #else /* These are meant to be portable, not fast. If you're hitting them you * should think about providing your own (by defining the simde_memcpy * macro prior to including any SIMDe files) or submitting a patch to * SIMDe so we can detect your system-provided memcpy/memset, like by * adding your compiler to the checks for __builtin_memcpy and/or * __builtin_memset. */ #if !defined(simde_memcpy) SIMDE_FUNCTION_ATTRIBUTES void simde_memcpy_(void* dest, const void* src, size_t len) { char* dest_ = HEDLEY_STATIC_CAST(char*, dest); char* src_ = HEDLEY_STATIC_CAST(const char*, src); for (size_t i = 0 ; i < len ; i++) { dest_[i] = src_[i]; } } #define simde_memcpy(dest, src, n) simde_memcpy_(dest, src, n) #endif #if !defined(simde_memset) SIMDE_FUNCTION_ATTRIBUTES void simde_memset_(void* s, int c, size_t len) { char* s_ = HEDLEY_STATIC_CAST(char*, s); char c_ = HEDLEY_STATIC_CAST(char, c); for (size_t i = 0 ; i < len ; i++) { s_[i] = c_[i]; } } #define simde_memset(s, c, n) simde_memset_(s, c, n) #endif #if !defined(simde_memcmp) SIMDE_FUCTION_ATTRIBUTES int simde_memcmp_(const void *s1, const void *s2, size_t n) { unsigned char* s1_ = HEDLEY_STATIC_CAST(unsigned char*, s1); unsigned char* s2_ = HEDLEY_STATIC_CAST(unsigned char*, s2); for (size_t i = 0 ; i < len ; i++) { if (s1_[i] != s2_[i]) { return (int) (s1_[i] - s2_[i]); } } return 0; } #define simde_memcmp(s1, s2, n) simde_memcmp_(s1, s2, n) #endif #endif #endif #if defined(FE_ALL_EXCEPT) #define SIMDE_HAVE_FENV_H #elif defined(__has_include) #if __has_include() #include #define SIMDE_HAVE_FENV_H #endif #elif SIMDE_STDC_HOSTED == 1 #include #define SIMDE_HAVE_FENV_H #endif #if defined(EXIT_FAILURE) #define SIMDE_HAVE_STDLIB_H #elif defined(__has_include) #if __has_include() #include #define SIMDE_HAVE_STDLIB_H #endif #elif SIMDE_STDC_HOSTED == 1 #include #define SIMDE_HAVE_STDLIB_H #endif #if defined(__has_include) # if defined(__cplusplus) && (__cplusplus >= 201103L) && __has_include() # include # elif __has_include() # include # endif # if __has_include() # include # endif #elif SIMDE_STDC_HOSTED == 1 # include # include #endif #define SIMDE_DEFINE_CONVERSION_FUNCTION_(Name, T_To, T_From) \ static HEDLEY_ALWAYS_INLINE HEDLEY_CONST \ T_To \ Name (T_From value) { \ T_To r; \ simde_memcpy(&r, &value, sizeof(r)); \ return r; \ } /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/check.h :: */ /* Check (assertions) * Portable Snippets - https://gitub.com/nemequ/portable-snippets * Created by Evan Nemerson * * To the extent possible under law, the authors have waived all * copyright and related or neighboring rights to this code. For * details, see the Creative Commons Zero 1.0 Universal license at * https://creativecommons.org/publicdomain/zero/1.0/ * * SPDX-License-Identifier: CC0-1.0 */ #if !defined(SIMDE_CHECK_H) #define SIMDE_CHECK_H #if !defined(SIMDE_NDEBUG) && !defined(SIMDE_DEBUG) # define SIMDE_NDEBUG 1 #endif /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include #if !defined(_WIN32) # define SIMDE_SIZE_MODIFIER "z" # define SIMDE_CHAR_MODIFIER "hh" # define SIMDE_SHORT_MODIFIER "h" #else # if defined(_M_X64) || defined(__amd64__) # define SIMDE_SIZE_MODIFIER "I64" # else # define SIMDE_SIZE_MODIFIER "" # endif # define SIMDE_CHAR_MODIFIER "" # define SIMDE_SHORT_MODIFIER "" #endif #if defined(_MSC_VER) && (_MSC_VER >= 1500) # define SIMDE_PUSH_DISABLE_MSVC_C4127_ __pragma(warning(push)) __pragma(warning(disable:4127)) # define SIMDE_POP_DISABLE_MSVC_C4127_ __pragma(warning(pop)) #else # define SIMDE_PUSH_DISABLE_MSVC_C4127_ # define SIMDE_POP_DISABLE_MSVC_C4127_ #endif #if !defined(simde_errorf) # if defined(__has_include) # if __has_include() # include # endif # elif defined(SIMDE_STDC_HOSTED) # if SIMDE_STDC_HOSTED == 1 # include # endif # elif defined(__STDC_HOSTED__) # if __STDC_HOSTETD__ == 1 # include # endif # endif /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/debug-trap.h :: */ /* Debugging assertions and traps * Portable Snippets - https://gitub.com/nemequ/portable-snippets * Created by Evan Nemerson * * To the extent possible under law, the authors have waived all * copyright and related or neighboring rights to this code. For * details, see the Creative Commons Zero 1.0 Universal license at * https://creativecommons.org/publicdomain/zero/1.0/ * * SPDX-License-Identifier: CC0-1.0 */ #if !defined(SIMDE_DEBUG_TRAP_H) #define SIMDE_DEBUG_TRAP_H #if !defined(SIMDE_NDEBUG) && defined(NDEBUG) && !defined(SIMDE_DEBUG) # define SIMDE_NDEBUG 1 #endif #if defined(__has_builtin) && !defined(__ibmxl__) # if __has_builtin(__builtin_debugtrap) # define simde_trap() __builtin_debugtrap() # elif __has_builtin(__debugbreak) # define simde_trap() __debugbreak() # endif #endif #if !defined(simde_trap) # if defined(_MSC_VER) || defined(__INTEL_COMPILER) # define simde_trap() __debugbreak() # elif defined(__ARMCC_VERSION) # define simde_trap() __breakpoint(42) # elif defined(__ibmxl__) || defined(__xlC__) # include # define simde_trap() __trap(42) # elif defined(__DMC__) && defined(_M_IX86) static inline void simde_trap(void) { __asm int 3h; } # elif defined(__i386__) || defined(__x86_64__) static inline void simde_trap(void) { __asm__ __volatile__("int $03"); } # elif defined(__thumb__) static inline void simde_trap(void) { __asm__ __volatile__(".inst 0xde01"); } # elif defined(__aarch64__) static inline void simde_trap(void) { __asm__ __volatile__(".inst 0xd4200000"); } # elif defined(__arm__) static inline void simde_trap(void) { __asm__ __volatile__(".inst 0xe7f001f0"); } # elif defined (__alpha__) && !defined(__osf__) static inline void simde_trap(void) { __asm__ __volatile__("bpt"); } # elif defined(_54_) static inline void simde_trap(void) { __asm__ __volatile__("ESTOP"); } # elif defined(_55_) static inline void simde_trap(void) { __asm__ __volatile__(";\n .if (.MNEMONIC)\n ESTOP_1\n .else\n ESTOP_1()\n .endif\n NOP"); } # elif defined(_64P_) static inline void simde_trap(void) { __asm__ __volatile__("SWBP 0"); } # elif defined(_6x_) static inline void simde_trap(void) { __asm__ __volatile__("NOP\n .word 0x10000000"); } # elif defined(__STDC_HOSTED__) && (__STDC_HOSTED__ == 0) && defined(__GNUC__) # define simde_trap() __builtin_trap() # else # include # if defined(SIGTRAP) # define simde_trap() raise(SIGTRAP) # else # define simde_trap() raise(SIGABRT) # endif # endif #endif #if defined(HEDLEY_LIKELY) # define SIMDE_DBG_LIKELY(expr) HEDLEY_LIKELY(expr) #elif defined(__GNUC__) && (__GNUC__ >= 3) # define SIMDE_DBG_LIKELY(expr) __builtin_expect(!!(expr), 1) #else # define SIMDE_DBG_LIKELY(expr) (!!(expr)) #endif #if !defined(SIMDE_NDEBUG) || (SIMDE_NDEBUG == 0) # define simde_dbg_assert(expr) do { \ if (!SIMDE_DBG_LIKELY(expr)) { \ simde_trap(); \ } \ } while (0) #else # define simde_dbg_assert(expr) #endif #endif /* !defined(SIMDE_DEBUG_TRAP_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/debug-trap.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_VARIADIC_MACROS_ # if defined(EOF) # define simde_errorf(format, ...) (fprintf(stderr, format, __VA_ARGS__), abort()) # else # define simde_errorf(format, ...) (simde_trap()) # endif HEDLEY_DIAGNOSTIC_POP #endif #define simde_error(msg) simde_errorf("%s", msg) #if defined(SIMDE_NDEBUG) || \ (defined(__cplusplus) && (__cplusplus < 201103L)) || \ (defined(__STDC__) && (__STDC__ < 199901L)) # if defined(SIMDE_CHECK_FAIL_DEFINED) # define simde_assert(expr) # else # if defined(HEDLEY_ASSUME) # define simde_assert(expr) HEDLEY_ASSUME(expr) # elif HEDLEY_GCC_VERSION_CHECK(4,5,0) # define simde_assert(expr) ((void) (!!(expr) ? 1 : (__builtin_unreachable(), 1))) # elif HEDLEY_MSVC_VERSION_CHECK(13,10,0) # define simde_assert(expr) __assume(expr) # else # define simde_assert(expr) # endif # endif # define simde_assert_true(expr) simde_assert(expr) # define simde_assert_false(expr) simde_assert(!(expr)) # define simde_assert_type_full(prefix, suffix, T, fmt, a, op, b) simde_assert(((a) op (b))) # define simde_assert_double_equal(a, b, precision) # define simde_assert_string_equal(a, b) # define simde_assert_string_not_equal(a, b) # define simde_assert_memory_equal(size, a, b) # define simde_assert_memory_not_equal(size, a, b) #else # define simde_assert(expr) \ do { \ if (!HEDLEY_LIKELY(expr)) { \ simde_error("assertion failed: " #expr "\n"); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_true(expr) \ do { \ if (!HEDLEY_LIKELY(expr)) { \ simde_error("assertion failed: " #expr " is not true\n"); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_false(expr) \ do { \ if (!HEDLEY_LIKELY(!(expr))) { \ simde_error("assertion failed: " #expr " is not false\n"); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_type_full(prefix, suffix, T, fmt, a, op, b) \ do { \ T simde_tmp_a_ = (a); \ T simde_tmp_b_ = (b); \ if (!(simde_tmp_a_ op simde_tmp_b_)) { \ simde_errorf("assertion failed: %s %s %s (" prefix "%" fmt suffix " %s " prefix "%" fmt suffix ")\n", \ #a, #op, #b, simde_tmp_a_, #op, simde_tmp_b_); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_double_equal(a, b, precision) \ do { \ const double simde_tmp_a_ = (a); \ const double simde_tmp_b_ = (b); \ const double simde_tmp_diff_ = ((simde_tmp_a_ - simde_tmp_b_) < 0) ? \ -(simde_tmp_a_ - simde_tmp_b_) : \ (simde_tmp_a_ - simde_tmp_b_); \ if (HEDLEY_UNLIKELY(simde_tmp_diff_ > 1e-##precision)) { \ simde_errorf("assertion failed: %s == %s (%0." #precision "g == %0." #precision "g)\n", \ #a, #b, simde_tmp_a_, simde_tmp_b_); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # include # define simde_assert_string_equal(a, b) \ do { \ const char* simde_tmp_a_ = a; \ const char* simde_tmp_b_ = b; \ if (HEDLEY_UNLIKELY(strcmp(simde_tmp_a_, simde_tmp_b_) != 0)) { \ simde_errorf("assertion failed: string %s == %s (\"%s\" == \"%s\")\n", \ #a, #b, simde_tmp_a_, simde_tmp_b_); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_string_not_equal(a, b) \ do { \ const char* simde_tmp_a_ = a; \ const char* simde_tmp_b_ = b; \ if (HEDLEY_UNLIKELY(strcmp(simde_tmp_a_, simde_tmp_b_) == 0)) { \ simde_errorf("assertion failed: string %s != %s (\"%s\" == \"%s\")\n", \ #a, #b, simde_tmp_a_, simde_tmp_b_); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_memory_equal(size, a, b) \ do { \ const unsigned char* simde_tmp_a_ = (const unsigned char*) (a); \ const unsigned char* simde_tmp_b_ = (const unsigned char*) (b); \ const size_t simde_tmp_size_ = (size); \ if (HEDLEY_UNLIKELY(memcmp(simde_tmp_a_, simde_tmp_b_, simde_tmp_size_)) != 0) { \ size_t simde_tmp_pos_; \ for (simde_tmp_pos_ = 0 ; simde_tmp_pos_ < simde_tmp_size_ ; simde_tmp_pos_++) { \ if (simde_tmp_a_[simde_tmp_pos_] != simde_tmp_b_[simde_tmp_pos_]) { \ simde_errorf("assertion failed: memory %s == %s, at offset %" SIMDE_SIZE_MODIFIER "u\n", \ #a, #b, simde_tmp_pos_); \ break; \ } \ } \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ # define simde_assert_memory_not_equal(size, a, b) \ do { \ const unsigned char* simde_tmp_a_ = (const unsigned char*) (a); \ const unsigned char* simde_tmp_b_ = (const unsigned char*) (b); \ const size_t simde_tmp_size_ = (size); \ if (HEDLEY_UNLIKELY(memcmp(simde_tmp_a_, simde_tmp_b_, simde_tmp_size_)) == 0) { \ simde_errorf("assertion failed: memory %s != %s (%" SIMDE_SIZE_MODIFIER "u bytes)\n", \ #a, #b, simde_tmp_size_); \ } \ SIMDE_PUSH_DISABLE_MSVC_C4127_ \ } while (0) \ SIMDE_POP_DISABLE_MSVC_C4127_ #endif #define simde_assert_type(T, fmt, a, op, b) \ simde_assert_type_full("", "", T, fmt, a, op, b) #define simde_assert_char(a, op, b) \ simde_assert_type_full("'\\x", "'", char, "02" SIMDE_CHAR_MODIFIER "x", a, op, b) #define simde_assert_uchar(a, op, b) \ simde_assert_type_full("'\\x", "'", unsigned char, "02" SIMDE_CHAR_MODIFIER "x", a, op, b) #define simde_assert_short(a, op, b) \ simde_assert_type(short, SIMDE_SHORT_MODIFIER "d", a, op, b) #define simde_assert_ushort(a, op, b) \ simde_assert_type(unsigned short, SIMDE_SHORT_MODIFIER "u", a, op, b) #define simde_assert_int(a, op, b) \ simde_assert_type(int, "d", a, op, b) #define simde_assert_uint(a, op, b) \ simde_assert_type(unsigned int, "u", a, op, b) #define simde_assert_long(a, op, b) \ simde_assert_type(long int, "ld", a, op, b) #define simde_assert_ulong(a, op, b) \ simde_assert_type(unsigned long int, "lu", a, op, b) #define simde_assert_llong(a, op, b) \ simde_assert_type(long long int, "lld", a, op, b) #define simde_assert_ullong(a, op, b) \ simde_assert_type(unsigned long long int, "llu", a, op, b) #define simde_assert_size(a, op, b) \ simde_assert_type(size_t, SIMDE_SIZE_MODIFIER "u", a, op, b) #define simde_assert_float(a, op, b) \ simde_assert_type(float, "f", a, op, b) #define simde_assert_double(a, op, b) \ simde_assert_type(double, "g", a, op, b) #define simde_assert_ptr(a, op, b) \ simde_assert_type(const void*, "p", a, op, b) #define simde_assert_int8(a, op, b) \ simde_assert_type(int8_t, PRIi8, a, op, b) #define simde_assert_uint8(a, op, b) \ simde_assert_type(uint8_t, PRIu8, a, op, b) #define simde_assert_int16(a, op, b) \ simde_assert_type(int16_t, PRIi16, a, op, b) #define simde_assert_uint16(a, op, b) \ simde_assert_type(uint16_t, PRIu16, a, op, b) #define simde_assert_int32(a, op, b) \ simde_assert_type(int32_t, PRIi32, a, op, b) #define simde_assert_uint32(a, op, b) \ simde_assert_type(uint32_t, PRIu32, a, op, b) #define simde_assert_int64(a, op, b) \ simde_assert_type(int64_t, PRIi64, a, op, b) #define simde_assert_uint64(a, op, b) \ simde_assert_type(uint64_t, PRIu64, a, op, b) #define simde_assert_ptr_equal(a, b) \ simde_assert_ptr(a, ==, b) #define simde_assert_ptr_not_equal(a, b) \ simde_assert_ptr(a, !=, b) #define simde_assert_null(ptr) \ simde_assert_ptr(ptr, ==, NULL) #define simde_assert_not_null(ptr) \ simde_assert_ptr(ptr, !=, NULL) #define simde_assert_ptr_null(ptr) \ simde_assert_ptr(ptr, ==, NULL) #define simde_assert_ptr_not_null(ptr) \ simde_assert_ptr(ptr, !=, NULL) #endif /* !defined(SIMDE_CHECK_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/check.h :: */ /* GCC/clang have a bunch of functionality in builtins which we would * like to access, but the suffixes indicate whether the operate on * int, long, or long long, not fixed width types (e.g., int32_t). * we use these macros to attempt to map from fixed-width to the * names GCC uses. Note that you should still cast the input(s) and * return values (to/from SIMDE_BUILTIN_TYPE_*_) since often even if * types are the same size they may not be compatible according to the * compiler. For example, on x86 long and long lonsg are generally * both 64 bits, but platforms vary on whether an int64_t is mapped * to a long or long long. */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DIAGNOSTIC_DISABLE_CPP98_COMPAT_PEDANTIC_ #if (INT8_MAX == INT_MAX) && (INT8_MIN == INT_MIN) #define SIMDE_BUILTIN_SUFFIX_8_ #define SIMDE_BUILTIN_TYPE_8_ int #elif (INT8_MAX == LONG_MAX) && (INT8_MIN == LONG_MIN) #define SIMDE_BUILTIN_SUFFIX_8_ l #define SIMDE_BUILTIN_TYPE_8_ long #elif (INT8_MAX == LLONG_MAX) && (INT8_MIN == LLONG_MIN) #define SIMDE_BUILTIN_SUFFIX_8_ ll #define SIMDE_BUILTIN_TYPE_8_ long long #endif #if (INT16_MAX == INT_MAX) && (INT16_MIN == INT_MIN) #define SIMDE_BUILTIN_SUFFIX_16_ #define SIMDE_BUILTIN_TYPE_16_ int #elif (INT16_MAX == LONG_MAX) && (INT16_MIN == LONG_MIN) #define SIMDE_BUILTIN_SUFFIX_16_ l #define SIMDE_BUILTIN_TYPE_16_ long #elif (INT16_MAX == LLONG_MAX) && (INT16_MIN == LLONG_MIN) #define SIMDE_BUILTIN_SUFFIX_16_ ll #define SIMDE_BUILTIN_TYPE_16_ long long #endif #if (INT32_MAX == INT_MAX) && (INT32_MIN == INT_MIN) #define SIMDE_BUILTIN_SUFFIX_32_ #define SIMDE_BUILTIN_TYPE_32_ int #elif (INT32_MAX == LONG_MAX) && (INT32_MIN == LONG_MIN) #define SIMDE_BUILTIN_SUFFIX_32_ l #define SIMDE_BUILTIN_TYPE_32_ long #elif (INT32_MAX == LLONG_MAX) && (INT32_MIN == LLONG_MIN) #define SIMDE_BUILTIN_SUFFIX_32_ ll #define SIMDE_BUILTIN_TYPE_32_ long long #endif #if (INT64_MAX == INT_MAX) && (INT64_MIN == INT_MIN) #define SIMDE_BUILTIN_SUFFIX_64_ #define SIMDE_BUILTIN_TYPE_64_ int #elif (INT64_MAX == LONG_MAX) && (INT64_MIN == LONG_MIN) #define SIMDE_BUILTIN_SUFFIX_64_ l #define SIMDE_BUILTIN_TYPE_64_ long #elif (INT64_MAX == LLONG_MAX) && (INT64_MIN == LLONG_MIN) #define SIMDE_BUILTIN_SUFFIX_64_ ll #define SIMDE_BUILTIN_TYPE_64_ long long #endif #if defined(SIMDE_BUILTIN_SUFFIX_8_) #define SIMDE_BUILTIN_8_(name) HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_8_) #define SIMDE_BUILTIN_HAS_8_(name) HEDLEY_HAS_BUILTIN(HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_8_)) #else #define SIMDE_BUILTIN_HAS_8_(name) 0 #endif #if defined(SIMDE_BUILTIN_SUFFIX_16_) #define SIMDE_BUILTIN_16_(name) HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_16_) #define SIMDE_BUILTIN_HAS_16_(name) HEDLEY_HAS_BUILTIN(HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_16_)) #else #define SIMDE_BUILTIN_HAS_16_(name) 0 #endif #if defined(SIMDE_BUILTIN_SUFFIX_32_) #define SIMDE_BUILTIN_32_(name) HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_32_) #define SIMDE_BUILTIN_HAS_32_(name) HEDLEY_HAS_BUILTIN(HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_32_)) #else #define SIMDE_BUILTIN_HAS_32_(name) 0 #endif #if defined(SIMDE_BUILTIN_SUFFIX_64_) #define SIMDE_BUILTIN_64_(name) HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_64_) #define SIMDE_BUILTIN_HAS_64_(name) HEDLEY_HAS_BUILTIN(HEDLEY_CONCAT3(__builtin_, name, SIMDE_BUILTIN_SUFFIX_64_)) #else #define SIMDE_BUILTIN_HAS_64_(name) 0 #endif #if !defined(__cplusplus) #if defined(__clang__) #if HEDLEY_HAS_WARNING("-Wc11-extensions") #define SIMDE_GENERIC_(...) (__extension__ ({ \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wc11-extensions\"") \ _Generic(__VA_ARGS__); \ HEDLEY_DIAGNOSTIC_POP \ })) #elif HEDLEY_HAS_WARNING("-Wc1x-extensions") #define SIMDE_GENERIC_(...) (__extension__ ({ \ HEDLEY_DIAGNOSTIC_PUSH \ _Pragma("clang diagnostic ignored \"-Wc1x-extensions\"") \ _Generic(__VA_ARGS__); \ HEDLEY_DIAGNOSTIC_POP \ })) #endif #elif \ defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201112L) || \ HEDLEY_HAS_EXTENSION(c_generic_selections) || \ HEDLEY_GCC_VERSION_CHECK(4,9,0) || \ HEDLEY_INTEL_VERSION_CHECK(17,0,0) || \ HEDLEY_IBM_VERSION_CHECK(12,1,0) || \ HEDLEY_ARM_VERSION_CHECK(5,3,0) #define SIMDE_GENERIC_(...) _Generic(__VA_ARGS__) #endif #endif HEDLEY_DIAGNOSTIC_POP /* Sometimes we run into problems with specific versions of compilers which make the native versions unusable for us. Often this is due to missing functions, sometimes buggy implementations, etc. These macros are how we check for specific bugs. As they are fixed we'll start only defining them for problematic compiler versions. */ #if !defined(SIMDE_IGNORE_COMPILER_BUGS) # if defined(HEDLEY_GCC_VERSION) # if !HEDLEY_GCC_VERSION_CHECK(4,9,0) # define SIMDE_BUG_GCC_REV_208793 # endif # if !HEDLEY_GCC_VERSION_CHECK(5,0,0) # define SIMDE_BUG_GCC_BAD_MM_SRA_EPI32 /* TODO: find relevant bug or commit */ # endif # if !HEDLEY_GCC_VERSION_CHECK(6,0,0) # define SIMDE_BUG_GCC_SIZEOF_IMMEDIATE # endif # if !HEDLEY_GCC_VERSION_CHECK(4,6,0) # define SIMDE_BUG_GCC_BAD_MM_EXTRACT_EPI8 /* TODO: find relevant bug or commit */ # endif # if !HEDLEY_GCC_VERSION_CHECK(8,0,0) # define SIMDE_BUG_GCC_REV_247851 # endif # if !HEDLEY_GCC_VERSION_CHECK(10,0,0) # define SIMDE_BUG_GCC_REV_274313 # define SIMDE_BUG_GCC_91341 # endif # if !HEDLEY_GCC_VERSION_CHECK(9,0,0) && defined(SIMDE_ARCH_AARCH64) # define SIMDE_BUG_GCC_ARM_SHIFT_SCALAR # endif # if !HEDLEY_GCC_VERSION_CHECK(9,0,0) && defined(SIMDE_ARCH_AARCH64) # define SIMDE_BUG_GCC_BAD_VEXT_REV32 # endif # if defined(SIMDE_ARCH_X86) && !defined(SIMDE_ARCH_AMD64) # define SIMDE_BUG_GCC_94482 # endif # if (defined(SIMDE_ARCH_X86) && !defined(SIMDE_ARCH_AMD64)) || defined(SIMDE_ARCH_ZARCH) # define SIMDE_BUG_GCC_53784 # endif # if defined(SIMDE_ARCH_X86) || defined(SIMDE_ARCH_AMD64) # if HEDLEY_GCC_VERSION_CHECK(4,3,0) /* -Wsign-conversion */ # define SIMDE_BUG_GCC_95144 # endif # if !HEDLEY_GCC_VERSION_CHECK(11,0,0) # define SIMDE_BUG_GCC_95483 # endif # define SIMDE_BUG_GCC_98521 # endif # if !HEDLEY_GCC_VERSION_CHECK(9,4,0) && defined(SIMDE_ARCH_AARCH64) # define SIMDE_BUG_GCC_94488 # endif # if !HEDLEY_GCC_VERSION_CHECK(9,1,0) && defined(SIMDE_ARCH_AARCH64) # define SIMDE_BUG_GCC_REV_264019 # endif # if defined(SIMDE_ARCH_ARM) # define SIMDE_BUG_GCC_95399 # define SIMDE_BUG_GCC_95471 # elif defined(SIMDE_ARCH_POWER) # define SIMDE_BUG_GCC_95227 # define SIMDE_BUG_GCC_95782 # elif defined(SIMDE_ARCH_X86) || defined(SIMDE_ARCH_AMD64) # if !HEDLEY_GCC_VERSION_CHECK(10,2,0) && !defined(__OPTIMIZE__) # define SIMDE_BUG_GCC_96174 # endif # elif defined(SIMDE_ARCH_ZARCH) # if !HEDLEY_GCC_VERSION_CHECK(9,0,0) # define SIMDE_BUG_GCC_95782 # endif # endif # define SIMDE_BUG_GCC_95399 # elif defined(__clang__) # if defined(SIMDE_ARCH_AARCH64) # define SIMDE_BUG_CLANG_45541 # define SIMDE_BUG_CLANG_46844 # define SIMDE_BUG_CLANG_48257 # if SIMDE_DETECT_CLANG_VERSION_CHECK(10,0,0) && SIMDE_DETECT_CLANG_VERSION_NOT(11,0,0) # define SIMDE_BUG_CLANG_BAD_VI64_OPS # endif # if SIMDE_DETECT_CLANG_VERSION_NOT(9,0,0) # define SIMDE_BUG_CLANG_GIT_4EC445B8 # define SIMDE_BUG_CLANG_REV_365298 /* 0464e07c8f6e3310c28eb210a4513bc2243c2a7e */ # endif # endif # if defined(SIMDE_ARCH_ARM) # if !SIMDE_DETECT_CLANG_VERSION_CHECK(11,0,0) # define SIMDE_BUG_CLANG_BAD_VGET_SET_LANE_TYPES # endif # endif # if defined(SIMDE_ARCH_POWER) # define SIMDE_BUG_CLANG_46770 # endif # if defined(_ARCH_PWR9) && !SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0) && !defined(__OPTIMIZE__) # define SIMDE_BUG_CLANG_POWER9_16x4_BAD_SHIFT # endif # if defined(SIMDE_ARCH_X86) || defined(SIMDE_ARCH_AMD64) # if SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) # define SIMDE_BUG_CLANG_REV_298042 /* 6afc436a7817a52e78ae7bcdc3faafd460124cac */ # endif # if SIMDE_DETECT_CLANG_VERSION_NOT(3,7,0) # define SIMDE_BUG_CLANG_REV_234560 /* b929ad7b1726a32650a8051f69a747fb6836c540 */ # endif # if SIMDE_DETECT_CLANG_VERSION_CHECK(3,8,0) && SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) # define SIMDE_BUG_CLANG_BAD_MADD # endif # if SIMDE_DETECT_CLANG_VERSION_CHECK(4,0,0) && SIMDE_DETECT_CLANG_VERSION_NOT(5,0,0) # define SIMDE_BUG_CLANG_REV_299346 /* ac9959eb533a58482ea4da6c4db1e635a98de384 */ # endif # if SIMDE_DETECT_CLANG_VERSION_NOT(8,0,0) # define SIMDE_BUG_CLANG_REV_344862 /* eae26bf73715994c2bd145f9b6dc3836aa4ffd4f */ # endif # if HEDLEY_HAS_WARNING("-Wsign-conversion") && SIMDE_DETECT_CLANG_VERSION_NOT(11,0,0) # define SIMDE_BUG_CLANG_45931 # endif # if HEDLEY_HAS_WARNING("-Wvector-conversion") && SIMDE_DETECT_CLANG_VERSION_NOT(11,0,0) # define SIMDE_BUG_CLANG_44589 # endif # define SIMDE_BUG_CLANG_48673 # endif # define SIMDE_BUG_CLANG_45959 # elif defined(HEDLEY_MSVC_VERSION) # if defined(SIMDE_ARCH_X86) # define SIMDE_BUG_MSVC_ROUND_EXTRACT # endif # elif defined(HEDLEY_INTEL_VERSION) # define SIMDE_BUG_INTEL_857088 # elif defined(HEDLEY_MCST_LCC_VERSION) # define SIMDE_BUG_MCST_LCC_MISSING_AVX_LOAD_STORE_M128_FUNCS # define SIMDE_BUG_MCST_LCC_MISSING_CMOV_M256 # define SIMDE_BUG_MCST_LCC_FMA_WRONG_RESULT # endif #endif /* GCC and Clang both have the same issue: * https://gcc.gnu.org/bugzilla/show_bug.cgi?id=95144 * https://bugs.llvm.org/show_bug.cgi?id=45931 * This is just an easy way to work around it. */ #if \ (HEDLEY_HAS_WARNING("-Wsign-conversion") && SIMDE_DETECT_CLANG_VERSION_NOT(11,0,0)) || \ HEDLEY_GCC_VERSION_CHECK(4,3,0) # define SIMDE_BUG_IGNORE_SIGN_CONVERSION(expr) (__extension__ ({ \ HEDLEY_DIAGNOSTIC_PUSH \ HEDLEY_DIAGNOSTIC_POP \ _Pragma("GCC diagnostic ignored \"-Wsign-conversion\"") \ __typeof__(expr) simde_bug_ignore_sign_conversion_v_= (expr); \ HEDLEY_DIAGNOSTIC_PUSH \ simde_bug_ignore_sign_conversion_v_; \ })) #else # define SIMDE_BUG_IGNORE_SIGN_CONVERSION(expr) (expr) #endif /* Usually the shift count is signed (for example, NEON or SSE). * OTOH, unsigned is good for PPC (vec_srl uses unsigned), and the only option for E2K. * Further info: https://github.com/simd-everywhere/simde/pull/700 */ #if defined(SIMDE_ARCH_E2K) || defined(SIMDE_ARCH_POWER) #define SIMDE_CAST_VECTOR_SHIFT_COUNT(width, value) HEDLEY_STATIC_CAST(uint##width##_t, (value)) #else #define SIMDE_CAST_VECTOR_SHIFT_COUNT(width, value) HEDLEY_STATIC_CAST(int##width##_t, (value)) #endif #endif /* !defined(SIMDE_COMMON_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/simde-common.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ #if defined(SIMDE_VECTOR_SUBSCRIPT) #define SIMDE_ARM_NEON_DECLARE_VECTOR(Element_Type, Name, Vector_Size) Element_Type Name SIMDE_VECTOR(Vector_Size) #else #define SIMDE_ARM_NEON_DECLARE_VECTOR(Element_Type, Name, Vector_Size) Element_Type Name[(Vector_Size) / sizeof(Element_Type)] #endif typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int8_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_int8x8_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int16_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_int16x4_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int32_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_int32x2_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int64_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_int64x1_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint8_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_uint8x8_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint16_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_uint16x4_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint32_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_uint32x2_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint64_t, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_uint64x1_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(simde_float32, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_float32x2_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(simde_float64, values, 8); #if defined(SIMDE_X86_MMX_NATIVE) __m64 m64; #endif } simde_float64x1_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int8_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x16_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_int8x16_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int16_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x8_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_int16x8_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int32_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x4_t neon; #endif #if defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) // SIMDE_POWER_ALTIVEC_VECTOR(signed int) altivec; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_int32x4_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(int64_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int64x2_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_int64x2_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint8_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x16_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_uint8x16_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint16_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x8_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_uint16x8_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint32_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x4_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_uint32x4_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(uint64_t, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i m128i; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int64x2_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_uint64x2_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(simde_float32, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128 m128; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x4_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_float32x4_private; typedef union { SIMDE_ARM_NEON_DECLARE_VECTOR(simde_float64, values, 16); #if defined(SIMDE_X86_SSE2_NATIVE) __m128d m128d; #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) int64x2_t neon; #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) v128_t v128; #endif } simde_float64x2_private; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) typedef float32_t simde_float32_t; typedef int8x8_t simde_int8x8_t; typedef int16x4_t simde_int16x4_t; typedef int32x2_t simde_int32x2_t; typedef int64x1_t simde_int64x1_t; typedef uint8x8_t simde_uint8x8_t; typedef uint16x4_t simde_uint16x4_t; typedef uint32x2_t simde_uint32x2_t; typedef uint64x1_t simde_uint64x1_t; typedef float32x2_t simde_float32x2_t; typedef int8x16_t simde_int8x16_t; typedef int16x8_t simde_int16x8_t; typedef int32x4_t simde_int32x4_t; typedef int64x2_t simde_int64x2_t; typedef uint8x16_t simde_uint8x16_t; typedef uint16x8_t simde_uint16x8_t; typedef uint32x4_t simde_uint32x4_t; typedef uint64x2_t simde_uint64x2_t; typedef float32x4_t simde_float32x4_t; typedef int8x8x2_t simde_int8x8x2_t; typedef int16x4x2_t simde_int16x4x2_t; typedef int32x2x2_t simde_int32x2x2_t; typedef int64x1x2_t simde_int64x1x2_t; typedef uint8x8x2_t simde_uint8x8x2_t; typedef uint16x4x2_t simde_uint16x4x2_t; typedef uint32x2x2_t simde_uint32x2x2_t; typedef uint64x1x2_t simde_uint64x1x2_t; typedef float32x2x2_t simde_float32x2x2_t; typedef int8x16x2_t simde_int8x16x2_t; typedef int16x8x2_t simde_int16x8x2_t; typedef int32x4x2_t simde_int32x4x2_t; typedef int64x2x2_t simde_int64x2x2_t; typedef uint8x16x2_t simde_uint8x16x2_t; typedef uint16x8x2_t simde_uint16x8x2_t; typedef uint32x4x2_t simde_uint32x4x2_t; typedef uint64x2x2_t simde_uint64x2x2_t; typedef float32x4x2_t simde_float32x4x2_t; typedef int8x8x3_t simde_int8x8x3_t; typedef int16x4x3_t simde_int16x4x3_t; typedef int32x2x3_t simde_int32x2x3_t; typedef int64x1x3_t simde_int64x1x3_t; typedef uint8x8x3_t simde_uint8x8x3_t; typedef uint16x4x3_t simde_uint16x4x3_t; typedef uint32x2x3_t simde_uint32x2x3_t; typedef uint64x1x3_t simde_uint64x1x3_t; typedef float32x2x3_t simde_float32x2x3_t; typedef int8x16x3_t simde_int8x16x3_t; typedef int16x8x3_t simde_int16x8x3_t; typedef int32x4x3_t simde_int32x4x3_t; typedef int64x2x3_t simde_int64x2x3_t; typedef uint8x16x3_t simde_uint8x16x3_t; typedef uint16x8x3_t simde_uint16x8x3_t; typedef uint32x4x3_t simde_uint32x4x3_t; typedef uint64x2x3_t simde_uint64x2x3_t; typedef float32x4x3_t simde_float32x4x3_t; typedef int8x8x4_t simde_int8x8x4_t; typedef int16x4x4_t simde_int16x4x4_t; typedef int32x2x4_t simde_int32x2x4_t; typedef int64x1x4_t simde_int64x1x4_t; typedef uint8x8x4_t simde_uint8x8x4_t; typedef uint16x4x4_t simde_uint16x4x4_t; typedef uint32x2x4_t simde_uint32x2x4_t; typedef uint64x1x4_t simde_uint64x1x4_t; typedef float32x2x4_t simde_float32x2x4_t; typedef int8x16x4_t simde_int8x16x4_t; typedef int16x8x4_t simde_int16x8x4_t; typedef int32x4x4_t simde_int32x4x4_t; typedef int64x2x4_t simde_int64x2x4_t; typedef uint8x16x4_t simde_uint8x16x4_t; typedef uint16x8x4_t simde_uint16x8x4_t; typedef uint32x4x4_t simde_uint32x4x4_t; typedef uint64x2x4_t simde_uint64x2x4_t; typedef float32x4x4_t simde_float32x4x4_t; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) typedef float64_t simde_float64_t; typedef float64x1_t simde_float64x1_t; typedef float64x2_t simde_float64x2_t; typedef float64x1x2_t simde_float64x1x2_t; typedef float64x2x2_t simde_float64x2x2_t; typedef float64x1x3_t simde_float64x1x3_t; typedef float64x2x3_t simde_float64x2x3_t; typedef float64x1x4_t simde_float64x1x4_t; typedef float64x2x4_t simde_float64x2x4_t; #else #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #endif #elif (defined(SIMDE_X86_MMX_NATIVE) || defined(SIMDE_X86_SSE_NATIVE)) && defined(SIMDE_ARM_NEON_FORCE_NATIVE_TYPES) #define SIMDE_ARM_NEON_NEED_PORTABLE_F32 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64 #define SIMDE_ARM_NEON_NEED_PORTABLE_VXN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #if defined(SIMDE_X86_MMX_NATIVE) typedef __m64 simde_int8x8_t; typedef __m64 simde_int16x4_t; typedef __m64 simde_int32x2_t; typedef __m64 simde_int64x1_t; typedef __m64 simde_uint8x8_t; typedef __m64 simde_uint16x4_t; typedef __m64 simde_uint32x2_t; typedef __m64 simde_uint64x1_t; typedef __m64 simde_float32x2_t; typedef __m64 simde_float64x1_t; #else #define SIMDE_ARM_NEON_NEED_PORTABLE_I8X8 #define SIMDE_ARM_NEON_NEED_PORTABLE_I16X4 #define SIMDE_ARM_NEON_NEED_PORTABLE_I32X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_I64X1 #define SIMDE_ARM_NEON_NEED_PORTABLE_U8X8 #define SIMDE_ARM_NEON_NEED_PORTABLE_U16X4 #define SIMDE_ARM_NEON_NEED_PORTABLE_U32X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_U64X1 #define SIMDE_ARM_NEON_NEED_PORTABLE_F32X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1 #endif #if defined(SIMDE_X86_SSE_NATIVE) typedef __m128 simde_float32x4_t; #else #define SIMDE_ARM_NEON_NEED_PORTABLE_F32X4 #endif #if defined(SIMDE_X86_SSE2_NATIVE) typedef __m128i simde_int8x16_t; typedef __m128i simde_int16x8_t; typedef __m128i simde_int32x4_t; typedef __m128i simde_int64x2_t; typedef __m128i simde_uint8x16_t; typedef __m128i simde_uint16x8_t; typedef __m128i simde_uint32x4_t; typedef __m128i simde_uint64x2_t; typedef __m128d simde_float64x2_t; #else #define SIMDE_ARM_NEON_NEED_PORTABLE_I8X16 #define SIMDE_ARM_NEON_NEED_PORTABLE_I16X8 #define SIMDE_ARM_NEON_NEED_PORTABLE_I32X4 #define SIMDE_ARM_NEON_NEED_PORTABLE_I64X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_U8X16 #define SIMDE_ARM_NEON_NEED_PORTABLE_U16X8 #define SIMDE_ARM_NEON_NEED_PORTABLE_U32X4 #define SIMDE_ARM_NEON_NEED_PORTABLE_U64X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2 #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) && defined(SIMDE_ARM_NEON_FORCE_NATIVE_TYPES) #define SIMDE_ARM_NEON_NEED_PORTABLE_F32 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64 #define SIMDE_ARM_NEON_NEED_PORTABLE_64BIT #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #define SIMDE_ARM_NEON_NEED_PORTABLE_VXN typedef v128_t simde_int8x16_t; typedef v128_t simde_int16x8_t; typedef v128_t simde_int32x4_t; typedef v128_t simde_int64x2_t; typedef v128_t simde_uint8x16_t; typedef v128_t simde_uint16x8_t; typedef v128_t simde_uint32x4_t; typedef v128_t simde_uint64x2_t; typedef v128_t simde_float32x4_t; typedef v128_t simde_float64x2_t; #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) #define SIMDE_ARM_NEON_NEED_PORTABLE_F32 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64 #define SIMDE_ARM_NEON_NEED_PORTABLE_64BIT #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #define SIMDE_ARM_NEON_NEED_PORTABLE_VXN typedef SIMDE_POWER_ALTIVEC_VECTOR(signed char) simde_int8x16_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(signed short) simde_int16x8_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(signed int) simde_int32x4_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) simde_uint8x16_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) simde_uint16x8_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) simde_uint32x4_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(float) simde_float32x4_t; #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) typedef SIMDE_POWER_ALTIVEC_VECTOR(signed long long) simde_int64x2_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) simde_uint64x2_t; typedef SIMDE_POWER_ALTIVEC_VECTOR(double) simde_float64x2_t; #else #define SIMDE_ARM_NEON_NEED_PORTABLE_I64X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_U64X2 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2 #endif #elif defined(SIMDE_VECTOR) typedef simde_float32 simde_float32_t; typedef simde_float64 simde_float64_t; typedef int8_t simde_int8x8_t SIMDE_VECTOR(8); typedef int16_t simde_int16x4_t SIMDE_VECTOR(8); typedef int32_t simde_int32x2_t SIMDE_VECTOR(8); typedef int64_t simde_int64x1_t SIMDE_VECTOR(8); typedef uint8_t simde_uint8x8_t SIMDE_VECTOR(8); typedef uint16_t simde_uint16x4_t SIMDE_VECTOR(8); typedef uint32_t simde_uint32x2_t SIMDE_VECTOR(8); typedef uint64_t simde_uint64x1_t SIMDE_VECTOR(8); typedef simde_float32_t simde_float32x2_t SIMDE_VECTOR(8); typedef simde_float64_t simde_float64x1_t SIMDE_VECTOR(8); typedef int8_t simde_int8x16_t SIMDE_VECTOR(16); typedef int16_t simde_int16x8_t SIMDE_VECTOR(16); typedef int32_t simde_int32x4_t SIMDE_VECTOR(16); typedef int64_t simde_int64x2_t SIMDE_VECTOR(16); typedef uint8_t simde_uint8x16_t SIMDE_VECTOR(16); typedef uint16_t simde_uint16x8_t SIMDE_VECTOR(16); typedef uint32_t simde_uint32x4_t SIMDE_VECTOR(16); typedef uint64_t simde_uint64x2_t SIMDE_VECTOR(16); typedef simde_float32_t simde_float32x4_t SIMDE_VECTOR(16); typedef simde_float64_t simde_float64x2_t SIMDE_VECTOR(16); #define SIMDE_ARM_NEON_NEED_PORTABLE_VXN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #else #define SIMDE_ARM_NEON_NEED_PORTABLE_F32 #define SIMDE_ARM_NEON_NEED_PORTABLE_F64 #define SIMDE_ARM_NEON_NEED_PORTABLE_64BIT #define SIMDE_ARM_NEON_NEED_PORTABLE_128BIT #define SIMDE_ARM_NEON_NEED_PORTABLE_VXN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN #define SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I8X8) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_int8x8_private simde_int8x8_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I16X4) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_int16x4_private simde_int16x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I32X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_int32x2_private simde_int32x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I64X1) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_int64x1_private simde_int64x1_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U8X8) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_uint8x8_private simde_uint8x8_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U16X4) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_uint16x4_private simde_uint16x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U32X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_uint32x2_private simde_uint32x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U64X1) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_uint64x1_private simde_uint64x1_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F32X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_float32x2_private simde_float32x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F64X1) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_64BIT) typedef simde_float64x1_private simde_float64x1_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I8X16) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_int8x16_private simde_int8x16_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I16X8) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_int16x8_private simde_int16x8_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I32X4) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_int32x4_private simde_int32x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_I64X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_int64x2_private simde_int64x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U8X16) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_uint8x16_private simde_uint8x16_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U16X8) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_uint16x8_private simde_uint16x8_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U32X4) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_uint32x4_private simde_uint32x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_U64X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_uint64x2_private simde_uint64x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F32X4) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_float32x4_private simde_float32x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F64X2) || defined(SIMDE_ARM_NEON_NEED_PORTABLE_128BIT) typedef simde_float64x2_private simde_float64x2_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F32) typedef simde_float32 simde_float32_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F64) typedef simde_float64 simde_float64_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_VXN) && !defined(SIMDE_BUG_INTEL_857088) typedef struct simde_int8x8x2_t { simde_int8x8_t val[2]; } simde_int8x8x2_t; typedef struct simde_int16x4x2_t { simde_int16x4_t val[2]; } simde_int16x4x2_t; typedef struct simde_int32x2x2_t { simde_int32x2_t val[2]; } simde_int32x2x2_t; typedef struct simde_int64x1x2_t { simde_int64x1_t val[2]; } simde_int64x1x2_t; typedef struct simde_uint8x8x2_t { simde_uint8x8_t val[2]; } simde_uint8x8x2_t; typedef struct simde_uint16x4x2_t { simde_uint16x4_t val[2]; } simde_uint16x4x2_t; typedef struct simde_uint32x2x2_t { simde_uint32x2_t val[2]; } simde_uint32x2x2_t; typedef struct simde_uint64x1x2_t { simde_uint64x1_t val[2]; } simde_uint64x1x2_t; typedef struct simde_float32x2x2_t { simde_float32x2_t val[2]; } simde_float32x2x2_t; typedef struct simde_int8x16x2_t { simde_int8x16_t val[2]; } simde_int8x16x2_t; typedef struct simde_int16x8x2_t { simde_int16x8_t val[2]; } simde_int16x8x2_t; typedef struct simde_int32x4x2_t { simde_int32x4_t val[2]; } simde_int32x4x2_t; typedef struct simde_int64x2x2_t { simde_int64x2_t val[2]; } simde_int64x2x2_t; typedef struct simde_uint8x16x2_t { simde_uint8x16_t val[2]; } simde_uint8x16x2_t; typedef struct simde_uint16x8x2_t { simde_uint16x8_t val[2]; } simde_uint16x8x2_t; typedef struct simde_uint32x4x2_t { simde_uint32x4_t val[2]; } simde_uint32x4x2_t; typedef struct simde_uint64x2x2_t { simde_uint64x2_t val[2]; } simde_uint64x2x2_t; typedef struct simde_float32x4x2_t { simde_float32x4_t val[2]; } simde_float32x4x2_t; typedef struct simde_int8x8x3_t { simde_int8x8_t val[3]; } simde_int8x8x3_t; typedef struct simde_int16x4x3_t { simde_int16x4_t val[3]; } simde_int16x4x3_t; typedef struct simde_int32x2x3_t { simde_int32x2_t val[3]; } simde_int32x2x3_t; typedef struct simde_int64x1x3_t { simde_int64x1_t val[3]; } simde_int64x1x3_t; typedef struct simde_uint8x8x3_t { simde_uint8x8_t val[3]; } simde_uint8x8x3_t; typedef struct simde_uint16x4x3_t { simde_uint16x4_t val[3]; } simde_uint16x4x3_t; typedef struct simde_uint32x2x3_t { simde_uint32x2_t val[3]; } simde_uint32x2x3_t; typedef struct simde_uint64x1x3_t { simde_uint64x1_t val[3]; } simde_uint64x1x3_t; typedef struct simde_float32x2x3_t { simde_float32x2_t val[3]; } simde_float32x2x3_t; typedef struct simde_int8x16x3_t { simde_int8x16_t val[3]; } simde_int8x16x3_t; typedef struct simde_int16x8x3_t { simde_int16x8_t val[3]; } simde_int16x8x3_t; typedef struct simde_int32x4x3_t { simde_int32x4_t val[3]; } simde_int32x4x3_t; typedef struct simde_int64x2x3_t { simde_int64x2_t val[3]; } simde_int64x2x3_t; typedef struct simde_uint8x16x3_t { simde_uint8x16_t val[3]; } simde_uint8x16x3_t; typedef struct simde_uint16x8x3_t { simde_uint16x8_t val[3]; } simde_uint16x8x3_t; typedef struct simde_uint32x4x3_t { simde_uint32x4_t val[3]; } simde_uint32x4x3_t; typedef struct simde_uint64x2x3_t { simde_uint64x2_t val[3]; } simde_uint64x2x3_t; typedef struct simde_float32x4x3_t { simde_float32x4_t val[3]; } simde_float32x4x3_t; typedef struct simde_int8x8x4_t { simde_int8x8_t val[4]; } simde_int8x8x4_t; typedef struct simde_int16x4x4_t { simde_int16x4_t val[4]; } simde_int16x4x4_t; typedef struct simde_int32x2x4_t { simde_int32x2_t val[4]; } simde_int32x2x4_t; typedef struct simde_int64x1x4_t { simde_int64x1_t val[4]; } simde_int64x1x4_t; typedef struct simde_uint8x8x4_t { simde_uint8x8_t val[4]; } simde_uint8x8x4_t; typedef struct simde_uint16x4x4_t { simde_uint16x4_t val[4]; } simde_uint16x4x4_t; typedef struct simde_uint32x2x4_t { simde_uint32x2_t val[4]; } simde_uint32x2x4_t; typedef struct simde_uint64x1x4_t { simde_uint64x1_t val[4]; } simde_uint64x1x4_t; typedef struct simde_float32x2x4_t { simde_float32x2_t val[4]; } simde_float32x2x4_t; typedef struct simde_int8x16x4_t { simde_int8x16_t val[4]; } simde_int8x16x4_t; typedef struct simde_int16x8x4_t { simde_int16x8_t val[4]; } simde_int16x8x4_t; typedef struct simde_int32x4x4_t { simde_int32x4_t val[4]; } simde_int32x4x4_t; typedef struct simde_int64x2x4_t { simde_int64x2_t val[4]; } simde_int64x2x4_t; typedef struct simde_uint8x16x4_t { simde_uint8x16_t val[4]; } simde_uint8x16x4_t; typedef struct simde_uint16x8x4_t { simde_uint16x8_t val[4]; } simde_uint16x8x4_t; typedef struct simde_uint32x4x4_t { simde_uint32x4_t val[4]; } simde_uint32x4x4_t; typedef struct simde_uint64x2x4_t { simde_uint64x2_t val[4]; } simde_uint64x2x4_t; typedef struct simde_float32x4x4_t { simde_float32x4_t val[4]; } simde_float32x4x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F64X1XN) typedef struct simde_float64x1x2_t { simde_float64x1_t val[2]; } simde_float64x1x2_t; typedef struct simde_float64x1x3_t { simde_float64x1_t val[3]; } simde_float64x1x3_t; typedef struct simde_float64x1x4_t { simde_float64x1_t val[4]; } simde_float64x1x4_t; #endif #if defined(SIMDE_ARM_NEON_NEED_PORTABLE_F64X2XN) typedef struct simde_float64x2x2_t { simde_float64x2_t val[2]; } simde_float64x2x2_t; typedef struct simde_float64x2x3_t { simde_float64x2_t val[3]; } simde_float64x2x3_t; typedef struct simde_float64x2x4_t { simde_float64x2_t val[4]; } simde_float64x2x4_t; #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) typedef simde_float32_t float32_t; typedef simde_int8x8_t int8x8_t; typedef simde_int16x4_t int16x4_t; typedef simde_int32x2_t int32x2_t; typedef simde_int64x1_t int64x1_t; typedef simde_uint8x8_t uint8x8_t; typedef simde_uint16x4_t uint16x4_t; typedef simde_uint32x2_t uint32x2_t; typedef simde_uint64x1_t uint64x1_t; typedef simde_float32x2_t float32x2_t; typedef simde_int8x16_t int8x16_t; typedef simde_int16x8_t int16x8_t; typedef simde_int32x4_t int32x4_t; typedef simde_int64x2_t int64x2_t; typedef simde_uint8x16_t uint8x16_t; typedef simde_uint16x8_t uint16x8_t; typedef simde_uint32x4_t uint32x4_t; typedef simde_uint64x2_t uint64x2_t; typedef simde_float32x4_t float32x4_t; typedef simde_int8x8x2_t int8x8x2_t; typedef simde_int16x4x2_t int16x4x2_t; typedef simde_int32x2x2_t int32x2x2_t; typedef simde_int64x1x2_t int64x1x2_t; typedef simde_uint8x8x2_t uint8x8x2_t; typedef simde_uint16x4x2_t uint16x4x2_t; typedef simde_uint32x2x2_t uint32x2x2_t; typedef simde_uint64x1x2_t uint64x1x2_t; typedef simde_float32x2x2_t float32x2x2_t; typedef simde_int8x16x2_t int8x16x2_t; typedef simde_int16x8x2_t int16x8x2_t; typedef simde_int32x4x2_t int32x4x2_t; typedef simde_int64x2x2_t int64x2x2_t; typedef simde_uint8x16x2_t uint8x16x2_t; typedef simde_uint16x8x2_t uint16x8x2_t; typedef simde_uint32x4x2_t uint32x4x2_t; typedef simde_uint64x2x2_t uint64x2x2_t; typedef simde_float32x4x2_t float32x4x2_t; typedef simde_int8x8x3_t int8x8x3_t; typedef simde_int16x4x3_t int16x4x3_t; typedef simde_int32x2x3_t int32x2x3_t; typedef simde_int64x1x3_t int64x1x3_t; typedef simde_uint8x8x3_t uint8x8x3_t; typedef simde_uint16x4x3_t uint16x4x3_t; typedef simde_uint32x2x3_t uint32x2x3_t; typedef simde_uint64x1x3_t uint64x1x3_t; typedef simde_float32x2x3_t float32x2x3_t; typedef simde_int8x16x3_t int8x16x3_t; typedef simde_int16x8x3_t int16x8x3_t; typedef simde_int32x4x3_t int32x4x3_t; typedef simde_int64x2x3_t int64x2x3_t; typedef simde_uint8x16x3_t uint8x16x3_t; typedef simde_uint16x8x3_t uint16x8x3_t; typedef simde_uint32x4x3_t uint32x4x3_t; typedef simde_uint64x2x3_t uint64x2x3_t; typedef simde_float32x4x3_t float32x4x3_t; typedef simde_int8x8x4_t int8x8x4_t; typedef simde_int16x4x4_t int16x4x4_t; typedef simde_int32x2x4_t int32x2x4_t; typedef simde_int64x1x4_t int64x1x4_t; typedef simde_uint8x8x4_t uint8x8x4_t; typedef simde_uint16x4x4_t uint16x4x4_t; typedef simde_uint32x2x4_t uint32x2x4_t; typedef simde_uint64x1x4_t uint64x1x4_t; typedef simde_float32x2x4_t float32x2x4_t; typedef simde_int8x16x4_t int8x16x4_t; typedef simde_int16x8x4_t int16x8x4_t; typedef simde_int32x4x4_t int32x4x4_t; typedef simde_int64x2x4_t int64x2x4_t; typedef simde_uint8x16x4_t uint8x16x4_t; typedef simde_uint16x8x4_t uint16x8x4_t; typedef simde_uint32x4x4_t uint32x4x4_t; typedef simde_uint64x2x4_t uint64x2x4_t; typedef simde_float32x4x4_t float32x4x4_t; #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) typedef simde_float64_t float64_t; typedef simde_float64x1_t float64x1_t; typedef simde_float64x2_t float64x2_t; typedef simde_float64x1x2_t float64x1x2_t; typedef simde_float64x2x2_t float64x2x2_t; typedef simde_float64x1x3_t float64x1x3_t; typedef simde_float64x2x3_t float64x2x3_t; typedef simde_float64x1x4_t float64x1x4_t; typedef simde_float64x2x4_t float64x2x4_t; #endif #if defined(SIMDE_X86_MMX_NATIVE) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x8_to_m64, __m64, simde_int8x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x4_to_m64, __m64, simde_int16x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x2_to_m64, __m64, simde_int32x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x1_to_m64, __m64, simde_int64x1_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x8_to_m64, __m64, simde_uint8x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x4_to_m64, __m64, simde_uint16x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x2_to_m64, __m64, simde_uint32x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x1_to_m64, __m64, simde_uint64x1_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x2_to_m64, __m64, simde_float32x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x1_to_m64, __m64, simde_float64x1_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x8_from_m64, simde_int8x8_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x4_from_m64, simde_int16x4_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x2_from_m64, simde_int32x2_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x1_from_m64, simde_int64x1_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x8_from_m64, simde_uint8x8_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x4_from_m64, simde_uint16x4_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x2_from_m64, simde_uint32x2_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x1_from_m64, simde_uint64x1_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x2_from_m64, simde_float32x2_t, __m64) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x1_from_m64, simde_float64x1_t, __m64) #endif #if defined(SIMDE_X86_SSE_NATIVE) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x4_to_m128, __m128, simde_float32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x4_from_m128, simde_float32x4_t, __m128) #endif #if defined(SIMDE_X86_SSE2_NATIVE) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x16_to_m128i, __m128i, simde_int8x16_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x8_to_m128i, __m128i, simde_int16x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x4_to_m128i, __m128i, simde_int32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x2_to_m128i, __m128i, simde_int64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x16_to_m128i, __m128i, simde_uint8x16_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x8_to_m128i, __m128i, simde_uint16x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x4_to_m128i, __m128i, simde_uint32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x2_to_m128i, __m128i, simde_uint64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x2_to_m128d, __m128d, simde_float64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x16_from_m128i, simde_int8x16_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x8_from_m128i, simde_int16x8_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x4_from_m128i, simde_int32x4_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x2_from_m128i, simde_int64x2_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x16_from_m128i, simde_uint8x16_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x8_from_m128i, simde_uint16x8_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x4_from_m128i, simde_uint32x4_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x2_from_m128i, simde_uint64x2_t, __m128i) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x2_from_m128d, simde_float64x2_t, __m128d) #endif #if defined(SIMDE_WASM_SIMD128_NATIVE) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x16_to_v128, v128_t, simde_int8x16_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x8_to_v128, v128_t, simde_int16x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x4_to_v128, v128_t, simde_int32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x2_to_v128, v128_t, simde_int64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x16_to_v128, v128_t, simde_uint8x16_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x8_to_v128, v128_t, simde_uint16x8_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x4_to_v128, v128_t, simde_uint32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x2_to_v128, v128_t, simde_uint64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x4_to_v128, v128_t, simde_float32x4_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x2_to_v128, v128_t, simde_float64x2_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int8x16_from_v128, simde_int8x16_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int16x8_from_v128, simde_int16x8_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int32x4_from_v128, simde_int32x4_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_int64x2_from_v128, simde_int64x2_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint8x16_from_v128, simde_uint8x16_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint16x8_from_v128, simde_uint16x8_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint32x4_from_v128, simde_uint32x4_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_uint64x2_from_v128, simde_uint64x2_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float32x4_from_v128, simde_float32x4_t, v128_t) SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_float64x2_from_v128, simde_float64x2_t, v128_t) #endif #define SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(T) \ SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_##T##_to_private, simde_##T##_private, simde_##T##_t) \ SIMDE_DEFINE_CONVERSION_FUNCTION_(simde_##T##_from_private, simde_##T##_t, simde_##T##_private) \ SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int8x8) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int16x4) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int32x2) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int64x1) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint8x8) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint16x4) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint32x2) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint64x1) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(float32x2) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(float64x1) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int8x16) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int16x8) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int32x4) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(int64x2) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint8x16) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint16x8) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint32x4) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(uint64x2) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(float32x4) SIMDE_ARM_NEON_TYPE_DEFINE_CONVERSIONS_(float64x2) SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* SIMDE_ARM_NEON_TYPES_H */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/types.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/aba.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ABA_H) #define SIMDE_ARM_NEON_ABA_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ABD_H) #define SIMDE_ARM_NEON_ABD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abs.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ABS_H) #define SIMDE_ARM_NEON_ABS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vabsd_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,1,0)) return vabsd_s64(a); #else return a < 0 ? -a : a; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabsd_s64 #define vabsd_s64(a) simde_vabsd_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vabs_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabs_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabs_f32 #define vabs_f32(a) simde_vabs_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vabs_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabs_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabs_f64 #define vabs_f64(a) simde_vabs_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vabs_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabs_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_abs_pi8(a_.m64); #elif (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT8_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabs_s8 #define vabs_s8(a) simde_vabs_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vabs_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabs_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_abs_pi16(a_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT16_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabs_s16 #define vabs_s16(a) simde_vabs_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vabs_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabs_s32(a); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_abs_pi32(a_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT32_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabs_s32 #define vabs_s32(a) simde_vabs_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vabs_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabs_s64(a); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT64_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabs_s64 #define vabs_s64(a) simde_vabs_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vabsq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabsq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_abs(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_abs(a_.v128); #elif defined(SIMDE_X86_SSE_NATIVE) simde_float32 mask_; uint32_t u32_ = UINT32_C(0x7FFFFFFF); simde_memcpy(&mask_, &u32_, sizeof(u32_)); r_.m128 = _mm_and_ps(_mm_set1_ps(mask_), a_.m128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_fabsf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabsq_f32 #define vabsq_f32(a) simde_vabsq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vabsq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabsq_f64(a); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_abs(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) simde_float64 mask_; uint64_t u64_ = UINT64_C(0x7FFFFFFFFFFFFFFF); simde_memcpy(&mask_, &u64_, sizeof(u64_)); r_.m128d = _mm_and_pd(_mm_set1_pd(mask_), a_.m128d); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_fabs(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabsq_f64 #define vabsq_f64(a) simde_vabsq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vabsq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabsq_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_abs(a); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_abs_epi8(a_.m128i); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_min_epu8(a_.m128i, _mm_sub_epi8(_mm_setzero_si128(), a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_abs(a_.v128); #elif (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT8_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabsq_s8 #define vabsq_s8(a) simde_vabsq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vabsq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabsq_s16(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_abs(a); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_abs_epi16(a_.m128i); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_max_epi16(a_.m128i, _mm_sub_epi16(_mm_setzero_si128(), a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_abs(a_.v128); #elif (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT16_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabsq_s16 #define vabsq_s16(a) simde_vabsq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vabsq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabsq_s32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_abs(a); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_abs_epi32(a_.m128i); #elif defined(SIMDE_X86_SSE2_NATIVE) const __m128i m = _mm_cmpgt_epi32(_mm_setzero_si128(), a_.m128i); r_.m128i = _mm_sub_epi32(_mm_xor_si128(a_.m128i, m), m); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_abs(a_.v128); #elif (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT32_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabsq_s32 #define vabsq_s32(a) simde_vabsq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vabsq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabsq_s64(a); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_s64(vreinterpretq_u64_s64(vshrq_n_s64(a, 63)), vsubq_s64(vdupq_n_s64(0), a), a); #elif defined(SIMDE_POWER_ALTIVEC_P64_NATIVE) && !defined(HEDLEY_IBM_VERSION) return vec_abs(a); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_abs_epi64(a_.m128i); #elif defined(SIMDE_X86_SSE2_NATIVE) const __m128i m = _mm_srai_epi32(_mm_shuffle_epi32(a_.m128i, 0xF5), 31); r_.m128i = _mm_sub_epi64(_mm_xor_si128(a_.m128i, m), m); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_abs(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) m = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < INT64_C(0)); r_.values = (-a_.values & m) | (a_.values & ~m); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] < 0 ? -a_.values[i] : a_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabsq_s64 #define vabsq_s64(a) simde_vabsq_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ABS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abs.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_SUBL_H) #define SIMDE_ARM_NEON_SUBL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sub.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_SUB_H) #define SIMDE_ARM_NEON_SUB_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vsub_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_f32 #define vsub_f32(a, b) simde_vsub_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vsub_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsub_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsub_f64 #define vsub_f64(a, b) simde_vsub_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vsub_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi8(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_s8 #define vsub_s8(a, b) simde_vsub_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vsub_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi16(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_s16 #define vsub_s16(a, b) simde_vsub_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vsub_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi32(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_s32 #define vsub_s32(a, b) simde_vsub_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vsub_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_s64 #define vsub_s64(a, b) simde_vsub_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vsub_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi8(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_u8 #define vsub_u8(a, b) simde_vsub_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vsub_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi16(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_u16 #define vsub_u16(a, b) simde_vsub_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vsub_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_sub_pi32(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_u32 #define vsub_u32(a, b) simde_vsub_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vsub_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsub_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsub_u64 #define vsub_u64(a, b) simde_vsub_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vsubq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(float) a_ , b_, r_; a_ = a; b_ = b; r_ = vec_sub(a_, b_); return r_; #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_sub_ps(a_.m128, b_.m128); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_f32 #define vsubq_f32(a, b) simde_vsubq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vsubq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_sub(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_sub_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubq_f64 #define vsubq_f64(a, b) simde_vsubq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vsubq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_sub_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_s8 #define vsubq_s8(a, b) simde_vsubq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vsubq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_sub_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_s16 #define vsubq_s16(a, b) simde_vsubq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vsubq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_sub_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_s32 #define vsubq_s32(a, b) simde_vsubq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vsubq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_sub(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_sub_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_sub(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_s64 #define vsubq_s64(a, b) simde_vsubq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vsubq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_u8 #define vsubq_u8(a, b) simde_vsubq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsubq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_u16 #define vsubq_u16(a, b) simde_vsubq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsubq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sub(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_u32 #define vsubq_u32(a, b) simde_vsubq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsubq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_sub(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values - b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubq_u64 #define vsubq_u64(a, b) simde_vsubq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SUB_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sub.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MOVL_H) #define SIMDE_ARM_NEON_MOVL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmovl_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_s8(a); #else simde_int16x8_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_load8x8(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_s8 #define vmovl_s8(a) simde_vmovl_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmovl_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_s16(a); #else simde_int32x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_load16x4(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_s16 #define vmovl_s16(a) simde_vmovl_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmovl_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_s32(a); #else simde_int64x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_load32x2(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int64_t, a_.values[i]); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_s32 #define vmovl_s32(a) simde_vmovl_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmovl_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_u8(a); #else simde_uint16x8_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_load8x8(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, a_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_u8 #define vmovl_u8(a) simde_vmovl_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmovl_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_u16(a); #else simde_uint32x4_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_load16x4(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_u16 #define vmovl_u16(a) simde_vmovl_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmovl_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovl_u32(a); #else simde_uint64x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u64x2_load32x2(&a_); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint64_t, a_.values[i]); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovl_u32 #define vmovl_u32(a) simde_vmovl_u32((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MOVL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movl_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MOVL_HIGH_H) #define SIMDE_ARM_NEON_MOVL_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_GET_HIGH_H) #define SIMDE_ARM_NEON_GET_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vget_high_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_f32(a); #else simde_float32x2_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_f32 #define vget_high_f32(a) simde_vget_high_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vget_high_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vget_high_f64(a); #else simde_float64x1_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vget_high_f64 #define vget_high_f64(a) simde_vget_high_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vget_high_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_s8(a); #else simde_int8x8_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_s8 #define vget_high_s8(a) simde_vget_high_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vget_high_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_s16(a); #else simde_int16x4_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_s16 #define vget_high_s16(a) simde_vget_high_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vget_high_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_s32(a); #else simde_int32x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_s32 #define vget_high_s32(a) simde_vget_high_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vget_high_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_s64(a); #else simde_int64x1_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_s64 #define vget_high_s64(a) simde_vget_high_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vget_high_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_u8(a); #else simde_uint8x8_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_u8 #define vget_high_u8(a) simde_vget_high_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vget_high_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_u16(a); #else simde_uint16x4_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_u16 #define vget_high_u16(a) simde_vget_high_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vget_high_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_u32(a); #else simde_uint32x2_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_u32 #define vget_high_u32(a) simde_vget_high_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vget_high_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_high_u64(a); #else simde_uint64x1_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i + (sizeof(r_.values) / sizeof(r_.values[0]))]; } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_high_u64 #define vget_high_u64(a) simde_vget_high_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_GET_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_high.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmovl_high_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_s8(a); #else return simde_vmovl_s8(simde_vget_high_s8(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_s8 #define vmovl_high_s8(a) simde_vmovl_high_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmovl_high_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_s16(a); #else return simde_vmovl_s16(simde_vget_high_s16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_s16 #define vmovl_high_s16(a) simde_vmovl_high_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmovl_high_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_s32(a); #else return simde_vmovl_s32(simde_vget_high_s32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_s32 #define vmovl_high_s32(a) simde_vmovl_high_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmovl_high_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_u8(a); #else return simde_vmovl_u8(simde_vget_high_u8(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_u8 #define vmovl_high_u8(a) simde_vmovl_high_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmovl_high_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_u16(a); #else return simde_vmovl_u16(simde_vget_high_u16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_u16 #define vmovl_high_u16(a) simde_vmovl_high_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmovl_high_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovl_high_u32(a); #else return simde_vmovl_u32(simde_vget_high_u32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovl_high_u32 #define vmovl_high_u32(a) simde_vmovl_high_u32((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MOVL_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movl_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vsubl_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_s8(a, b); #else return simde_vsubq_s16(simde_vmovl_s8(a), simde_vmovl_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_s8 #define vsubl_s8(a, b) simde_vsubl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vsubl_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_s16(a, b); #else return simde_vsubq_s32(simde_vmovl_s16(a), simde_vmovl_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_s16 #define vsubl_s16(a, b) simde_vsubl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vsubl_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_s32(a, b); #else return simde_vsubq_s64(simde_vmovl_s32(a), simde_vmovl_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_s32 #define vsubl_s32(a, b) simde_vsubl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsubl_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_u8(a, b); #else return simde_vsubq_u16(simde_vmovl_u8(a), simde_vmovl_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_u8 #define vsubl_u8(a, b) simde_vsubl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsubl_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_u16(a, b); #else return simde_vsubq_u32(simde_vmovl_u16(a), simde_vmovl_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_u16 #define vsubl_u16(a, b) simde_vsubl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsubl_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubl_u32(a, b); #else return simde_vsubq_u64(simde_vmovl_u32(a), simde_vmovl_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubl_u32 #define vsubl_u32(a, b) simde_vsubl_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SUBL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MOVN_H) #define SIMDE_ARM_NEON_MOVN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmovn_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_s16(a); #else simde_int8x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, a_.values[i]); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_s16 #define vmovn_s16(a) simde_vmovn_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmovn_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_s32(a); #else simde_int16x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i]); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_s32 #define vmovn_s32(a) simde_vmovn_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmovn_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_s64(a); #else simde_int32x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i]); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_s64 #define vmovn_s64(a) simde_vmovn_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmovn_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_u16(a); #else simde_uint8x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, a_.values[i]); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_u16 #define vmovn_u16(a) simde_vmovn_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmovn_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_u32(a); #else simde_uint16x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, a_.values[i]); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_u32 #define vmovn_u32(a) simde_vmovn_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmovn_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmovn_u64(a); #else simde_uint32x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i]); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmovn_u64 #define vmovn_u64(a) simde_vmovn_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MOVN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/reinterpret.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_REINTERPRET_H) #define SIMDE_ARM_NEON_REINTERPRET_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_s16(a); #else simde_int8x8_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_s16 #define vreinterpret_s8_s16(a) simde_vreinterpret_s8_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_s32(a); #else simde_int8x8_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_s32 #define vreinterpret_s8_s32(a) simde_vreinterpret_s8_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_s64(a); #else simde_int8x8_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_s64 #define vreinterpret_s8_s64(a) simde_vreinterpret_s8_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_u8(a); #else simde_int8x8_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_u8 #define vreinterpret_s8_u8(a) simde_vreinterpret_s8_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_u16(a); #else simde_int8x8_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_u16 #define vreinterpret_s8_u16(a) simde_vreinterpret_s8_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_u32(a); #else simde_int8x8_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_u32 #define vreinterpret_s8_u32(a) simde_vreinterpret_s8_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_u64(a); #else simde_int8x8_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_u64 #define vreinterpret_s8_u64(a) simde_vreinterpret_s8_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s8_f32(a); #else simde_int8x8_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_f32 #define vreinterpret_s8_f32(a) simde_vreinterpret_s8_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vreinterpret_s8_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_s8_f64(a); #else simde_int8x8_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s8_f64 #define vreinterpret_s8_f64(a) simde_vreinterpret_s8_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_s16(a); #else simde_int8x16_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_s16 #define vreinterpretq_s8_s16(a) simde_vreinterpretq_s8_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_s32(a); #else simde_int8x16_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_s32 #define vreinterpretq_s8_s32(a) simde_vreinterpretq_s8_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_s64(a); #else simde_int8x16_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_s64 #define vreinterpretq_s8_s64(a) simde_vreinterpretq_s8_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_u8(a); #else simde_int8x16_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_u8 #define vreinterpretq_s8_u8(a) simde_vreinterpretq_s8_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_u16(a); #else simde_int8x16_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_u16 #define vreinterpretq_s8_u16(a) simde_vreinterpretq_s8_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_u32(a); #else simde_int8x16_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_u32 #define vreinterpretq_s8_u32(a) simde_vreinterpretq_s8_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_u64(a); #else simde_int8x16_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_u64 #define vreinterpretq_s8_u64(a) simde_vreinterpretq_s8_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s8_f32(a); #else simde_int8x16_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_f32 #define vreinterpretq_s8_f32(a) simde_vreinterpretq_s8_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vreinterpretq_s8_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_s8_f64(a); #else simde_int8x16_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s8_f64 #define vreinterpretq_s8_f64(a) simde_vreinterpretq_s8_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_s8(a); #else simde_int16x4_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_s8 #define vreinterpret_s16_s8(a) simde_vreinterpret_s16_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_s32(a); #else simde_int16x4_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_s32 #define vreinterpret_s16_s32(a) simde_vreinterpret_s16_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_s64(a); #else simde_int16x4_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_s64 #define vreinterpret_s16_s64(a) simde_vreinterpret_s16_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_u8(a); #else simde_int16x4_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_u8 #define vreinterpret_s16_u8(a) simde_vreinterpret_s16_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_u16(a); #else simde_int16x4_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_u16 #define vreinterpret_s16_u16(a) simde_vreinterpret_s16_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_u32(a); #else simde_int16x4_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_u32 #define vreinterpret_s16_u32(a) simde_vreinterpret_s16_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_u64(a); #else simde_int16x4_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_u64 #define vreinterpret_s16_u64(a) simde_vreinterpret_s16_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s16_f32(a); #else simde_int16x4_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_f32 #define vreinterpret_s16_f32(a) simde_vreinterpret_s16_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vreinterpret_s16_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_s16_f64(a); #else simde_int16x4_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s16_f64 #define vreinterpret_s16_f64(a) simde_vreinterpret_s16_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_s8(a); #else simde_int16x8_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_s8 #define vreinterpretq_s16_s8(a) simde_vreinterpretq_s16_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_s32(a); #else simde_int16x8_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_s32 #define vreinterpretq_s16_s32(a) simde_vreinterpretq_s16_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_s64(a); #else simde_int16x8_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_s64 #define vreinterpretq_s16_s64(a) simde_vreinterpretq_s16_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_u8(a); #else simde_int16x8_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_u8 #define vreinterpretq_s16_u8(a) simde_vreinterpretq_s16_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_u16(a); #else simde_int16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_u16 #define vreinterpretq_s16_u16(a) simde_vreinterpretq_s16_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_u32(a); #else simde_int16x8_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_u32 #define vreinterpretq_s16_u32(a) simde_vreinterpretq_s16_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_u64(a); #else simde_int16x8_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_u64 #define vreinterpretq_s16_u64(a) simde_vreinterpretq_s16_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s16_f32(a); #else simde_int16x8_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_f32 #define vreinterpretq_s16_f32(a) simde_vreinterpretq_s16_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vreinterpretq_s16_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_s16_f64(a); #else simde_int16x8_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s16_f64 #define vreinterpretq_s16_f64(a) simde_vreinterpretq_s16_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_s8(a); #else simde_int32x2_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_s8 #define vreinterpret_s32_s8(a) simde_vreinterpret_s32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_s16(a); #else simde_int32x2_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_s16 #define vreinterpret_s32_s16(a) simde_vreinterpret_s32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_s64(a); #else simde_int32x2_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_s64 #define vreinterpret_s32_s64(a) simde_vreinterpret_s32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_u8(a); #else simde_int32x2_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_u8 #define vreinterpret_s32_u8(a) simde_vreinterpret_s32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_u16(a); #else simde_int32x2_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_u16 #define vreinterpret_s32_u16(a) simde_vreinterpret_s32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_u32(a); #else simde_int32x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_u32 #define vreinterpret_s32_u32(a) simde_vreinterpret_s32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_u64(a); #else simde_int32x2_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_u64 #define vreinterpret_s32_u64(a) simde_vreinterpret_s32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s32_f32(a); #else simde_int32x2_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_f32 #define vreinterpret_s32_f32(a) simde_vreinterpret_s32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vreinterpret_s32_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_s32_f64(a); #else simde_int32x2_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s32_f64 #define vreinterpret_s32_f64(a) simde_vreinterpret_s32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_s8(a); #else simde_int32x4_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_s8 #define vreinterpretq_s32_s8(a) simde_vreinterpretq_s32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_s16(a); #else simde_int32x4_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_s16 #define vreinterpretq_s32_s16(a) simde_vreinterpretq_s32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_s64(a); #else simde_int32x4_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_s64 #define vreinterpretq_s32_s64(a) simde_vreinterpretq_s32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_u8(a); #else simde_int32x4_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_u8 #define vreinterpretq_s32_u8(a) simde_vreinterpretq_s32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_u16(a); #else simde_int32x4_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_u16 #define vreinterpretq_s32_u16(a) simde_vreinterpretq_s32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_u32(a); #else simde_int32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_u32 #define vreinterpretq_s32_u32(a) simde_vreinterpretq_s32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_u64(a); #else simde_int32x4_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_u64 #define vreinterpretq_s32_u64(a) simde_vreinterpretq_s32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s32_f32(a); #else simde_int32x4_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_f32 #define vreinterpretq_s32_f32(a) simde_vreinterpretq_s32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vreinterpretq_s32_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_s32_f64(a); #else simde_int32x4_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s32_f64 #define vreinterpretq_s32_f64(a) simde_vreinterpretq_s32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_s8(a); #else simde_int64x1_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_s8 #define vreinterpret_s64_s8(a) simde_vreinterpret_s64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_s16(a); #else simde_int64x1_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_s16 #define vreinterpret_s64_s16(a) simde_vreinterpret_s64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_s32(a); #else simde_int64x1_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_s32 #define vreinterpret_s64_s32(a) simde_vreinterpret_s64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_u8(a); #else simde_int64x1_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_u8 #define vreinterpret_s64_u8(a) simde_vreinterpret_s64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_u16(a); #else simde_int64x1_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_u16 #define vreinterpret_s64_u16(a) simde_vreinterpret_s64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_u32(a); #else simde_int64x1_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_u32 #define vreinterpret_s64_u32(a) simde_vreinterpret_s64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_u64(a); #else simde_int64x1_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_u64 #define vreinterpret_s64_u64(a) simde_vreinterpret_s64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_s64_f32(a); #else simde_int64x1_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_f32 #define vreinterpret_s64_f32(a) simde_vreinterpret_s64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vreinterpret_s64_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_s64_f64(a); #else simde_int64x1_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_s64_f64 #define vreinterpret_s64_f64(a) simde_vreinterpret_s64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_s8(a); #else simde_int64x2_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_s8 #define vreinterpretq_s64_s8(a) simde_vreinterpretq_s64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_s16(a); #else simde_int64x2_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_s16 #define vreinterpretq_s64_s16(a) simde_vreinterpretq_s64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_s32(a); #else simde_int64x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_s32 #define vreinterpretq_s64_s32(a) simde_vreinterpretq_s64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_u8(a); #else simde_int64x2_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_u8 #define vreinterpretq_s64_u8(a) simde_vreinterpretq_s64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_u16(a); #else simde_int64x2_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_u16 #define vreinterpretq_s64_u16(a) simde_vreinterpretq_s64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_u32(a); #else simde_int64x2_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_u32 #define vreinterpretq_s64_u32(a) simde_vreinterpretq_s64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_u64(a); #else simde_int64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_u64 #define vreinterpretq_s64_u64(a) simde_vreinterpretq_s64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_s64_f32(a); #else simde_int64x2_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_f32 #define vreinterpretq_s64_f32(a) simde_vreinterpretq_s64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vreinterpretq_s64_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_s64_f64(a); #else simde_int64x2_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_s64_f64 #define vreinterpretq_s64_f64(a) simde_vreinterpretq_s64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_s8(a); #else simde_uint8x8_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_s8 #define vreinterpret_u8_s8(a) simde_vreinterpret_u8_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_s16(a); #else simde_uint8x8_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_s16 #define vreinterpret_u8_s16(a) simde_vreinterpret_u8_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_s32(a); #else simde_uint8x8_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_s32 #define vreinterpret_u8_s32(a) simde_vreinterpret_u8_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_s64(a); #else simde_uint8x8_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_s64 #define vreinterpret_u8_s64(a) simde_vreinterpret_u8_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_u16(a); #else simde_uint8x8_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_u16 #define vreinterpret_u8_u16(a) simde_vreinterpret_u8_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_u32(a); #else simde_uint8x8_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_u32 #define vreinterpret_u8_u32(a) simde_vreinterpret_u8_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_u64(a); #else simde_uint8x8_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_u64 #define vreinterpret_u8_u64(a) simde_vreinterpret_u8_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u8_f32(a); #else simde_uint8x8_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_f32 #define vreinterpret_u8_f32(a) simde_vreinterpret_u8_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vreinterpret_u8_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_u8_f64(a); #else simde_uint8x8_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u8_f64 #define vreinterpret_u8_f64(a) simde_vreinterpret_u8_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_s8(a); #else simde_uint8x16_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_s8 #define vreinterpretq_u8_s8(a) simde_vreinterpretq_u8_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_s16(a); #else simde_uint8x16_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_s16 #define vreinterpretq_u8_s16(a) simde_vreinterpretq_u8_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_s32(a); #else simde_uint8x16_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_s32 #define vreinterpretq_u8_s32(a) simde_vreinterpretq_u8_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_s64(a); #else simde_uint8x16_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_s64 #define vreinterpretq_u8_s64(a) simde_vreinterpretq_u8_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_u16(a); #else simde_uint8x16_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_u16 #define vreinterpretq_u8_u16(a) simde_vreinterpretq_u8_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_u32(a); #else simde_uint8x16_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_u32 #define vreinterpretq_u8_u32(a) simde_vreinterpretq_u8_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_u64(a); #else simde_uint8x16_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_u64 #define vreinterpretq_u8_u64(a) simde_vreinterpretq_u8_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u8_f32(a); #else simde_uint8x16_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_f32 #define vreinterpretq_u8_f32(a) simde_vreinterpretq_u8_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vreinterpretq_u8_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_u8_f64(a); #else simde_uint8x16_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u8_f64 #define vreinterpretq_u8_f64(a) simde_vreinterpretq_u8_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_s8(a); #else simde_uint16x4_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_s8 #define vreinterpret_u16_s8(a) simde_vreinterpret_u16_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_s16(a); #else simde_uint16x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_s16 #define vreinterpret_u16_s16(a) simde_vreinterpret_u16_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_s32(a); #else simde_uint16x4_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_s32 #define vreinterpret_u16_s32(a) simde_vreinterpret_u16_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_s64(a); #else simde_uint16x4_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_s64 #define vreinterpret_u16_s64(a) simde_vreinterpret_u16_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_u8(a); #else simde_uint16x4_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_u8 #define vreinterpret_u16_u8(a) simde_vreinterpret_u16_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_u32(a); #else simde_uint16x4_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_u32 #define vreinterpret_u16_u32(a) simde_vreinterpret_u16_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_u64(a); #else simde_uint16x4_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_u64 #define vreinterpret_u16_u64(a) simde_vreinterpret_u16_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u16_f32(a); #else simde_uint16x4_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_f32 #define vreinterpret_u16_f32(a) simde_vreinterpret_u16_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vreinterpret_u16_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_u16_f64(a); #else simde_uint16x4_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u16_f64 #define vreinterpret_u16_f64(a) simde_vreinterpret_u16_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_s8(a); #else simde_uint16x8_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_s8 #define vreinterpretq_u16_s8(a) simde_vreinterpretq_u16_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_s16(a); #else simde_uint16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_s16 #define vreinterpretq_u16_s16(a) simde_vreinterpretq_u16_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_s32(a); #else simde_uint16x8_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_s32 #define vreinterpretq_u16_s32(a) simde_vreinterpretq_u16_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_s64(a); #else simde_uint16x8_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_s64 #define vreinterpretq_u16_s64(a) simde_vreinterpretq_u16_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_u8(a); #else simde_uint16x8_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_u8 #define vreinterpretq_u16_u8(a) simde_vreinterpretq_u16_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_u32(a); #else simde_uint16x8_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_u32 #define vreinterpretq_u16_u32(a) simde_vreinterpretq_u16_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_u64(a); #else simde_uint16x8_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_u64 #define vreinterpretq_u16_u64(a) simde_vreinterpretq_u16_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u16_f32(a); #else simde_uint16x8_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_f32 #define vreinterpretq_u16_f32(a) simde_vreinterpretq_u16_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vreinterpretq_u16_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_u16_f64(a); #else simde_uint16x8_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u16_f64 #define vreinterpretq_u16_f64(a) simde_vreinterpretq_u16_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_s8(a); #else simde_uint32x2_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_s8 #define vreinterpret_u32_s8(a) simde_vreinterpret_u32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_s16(a); #else simde_uint32x2_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_s16 #define vreinterpret_u32_s16(a) simde_vreinterpret_u32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_s32(a); #else simde_uint32x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_s32 #define vreinterpret_u32_s32(a) simde_vreinterpret_u32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_s64(a); #else simde_uint32x2_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_s64 #define vreinterpret_u32_s64(a) simde_vreinterpret_u32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_u8(a); #else simde_uint32x2_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_u8 #define vreinterpret_u32_u8(a) simde_vreinterpret_u32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_u16(a); #else simde_uint32x2_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_u16 #define vreinterpret_u32_u16(a) simde_vreinterpret_u32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_u64(a); #else simde_uint32x2_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_u64 #define vreinterpret_u32_u64(a) simde_vreinterpret_u32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u32_f32(a); #else simde_uint32x2_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_f32 #define vreinterpret_u32_f32(a) simde_vreinterpret_u32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vreinterpret_u32_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_u32_f64(a); #else simde_uint32x2_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u32_f64 #define vreinterpret_u32_f64(a) simde_vreinterpret_u32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_s8(a); #else simde_uint32x4_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_s8 #define vreinterpretq_u32_s8(a) simde_vreinterpretq_u32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_s16(a); #else simde_uint32x4_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_s16 #define vreinterpretq_u32_s16(a) simde_vreinterpretq_u32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_s32(a); #else simde_uint32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_s32 #define vreinterpretq_u32_s32(a) simde_vreinterpretq_u32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_s64(a); #else simde_uint32x4_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_s64 #define vreinterpretq_u32_s64(a) simde_vreinterpretq_u32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_u8(a); #else simde_uint32x4_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_u8 #define vreinterpretq_u32_u8(a) simde_vreinterpretq_u32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_u16(a); #else simde_uint32x4_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_u16 #define vreinterpretq_u32_u16(a) simde_vreinterpretq_u32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_u64(a); #else simde_uint32x4_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_u64 #define vreinterpretq_u32_u64(a) simde_vreinterpretq_u32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u32_f32(a); #else simde_uint32x4_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_f32 #define vreinterpretq_u32_f32(a) simde_vreinterpretq_u32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vreinterpretq_u32_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_u32_f64(a); #else simde_uint32x4_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u32_f64 #define vreinterpretq_u32_f64(a) simde_vreinterpretq_u32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_s8(a); #else simde_uint64x1_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_s8 #define vreinterpret_u64_s8(a) simde_vreinterpret_u64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_s16(a); #else simde_uint64x1_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_s16 #define vreinterpret_u64_s16(a) simde_vreinterpret_u64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_s32(a); #else simde_uint64x1_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_s32 #define vreinterpret_u64_s32(a) simde_vreinterpret_u64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_s64(a); #else simde_uint64x1_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_s64 #define vreinterpret_u64_s64(a) simde_vreinterpret_u64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_u8(a); #else simde_uint64x1_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_u8 #define vreinterpret_u64_u8(a) simde_vreinterpret_u64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_u16(a); #else simde_uint64x1_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_u16 #define vreinterpret_u64_u16(a) simde_vreinterpret_u64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_u32(a); #else simde_uint64x1_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_u32 #define vreinterpret_u64_u32(a) simde_vreinterpret_u64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_u64_f32(a); #else simde_uint64x1_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_f32 #define vreinterpret_u64_f32(a) simde_vreinterpret_u64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vreinterpret_u64_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_u64_f64(a); #else simde_uint64x1_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_u64_f64 #define vreinterpret_u64_f64(a) simde_vreinterpret_u64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s8(a); #else simde_uint64x2_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_s8 #define vreinterpretq_u64_s8(a) simde_vreinterpretq_u64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s16(a); #else simde_uint64x2_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_s16 #define vreinterpretq_u64_s16(a) simde_vreinterpretq_u64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s32(a); #else simde_uint64x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_s32 #define vreinterpretq_u64_s32(a) simde_vreinterpretq_u64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s64(a); #else simde_uint64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_s64 #define vreinterpretq_u64_s64(a) simde_vreinterpretq_u64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_u8(a); #else simde_uint64x2_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_u8 #define vreinterpretq_u64_u8(a) simde_vreinterpretq_u64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_u16(a); #else simde_uint64x2_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_u16 #define vreinterpretq_u64_u16(a) simde_vreinterpretq_u64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_u32(a); #else simde_uint64x2_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_u32 #define vreinterpretq_u64_u32(a) simde_vreinterpretq_u64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_f32(a); #else simde_uint64x2_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_f32 #define vreinterpretq_u64_f32(a) simde_vreinterpretq_u64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vreinterpretq_u64_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_u64_f64(a); #else simde_uint64x2_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_u64_f64 #define vreinterpretq_u64_f64(a) simde_vreinterpretq_u64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_s8(a); #else simde_float32x2_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_s8 #define vreinterpret_f32_s8(a) simde_vreinterpret_f32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_s16(a); #else simde_float32x2_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_s16 #define vreinterpret_f32_s16(a) simde_vreinterpret_f32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_s32(a); #else simde_float32x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_s32 #define vreinterpret_f32_s32(a) simde_vreinterpret_f32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_s64(a); #else simde_float32x2_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_s64 #define vreinterpret_f32_s64(a) simde_vreinterpret_f32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_u8(a); #else simde_float32x2_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_u8 #define vreinterpret_f32_u8(a) simde_vreinterpret_f32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_u16(a); #else simde_float32x2_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_u16 #define vreinterpret_f32_u16(a) simde_vreinterpret_f32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_u32(a); #else simde_float32x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_u32 #define vreinterpret_f32_u32(a) simde_vreinterpret_f32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpret_f32_u64(a); #else simde_float32x2_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_u64 #define vreinterpret_f32_u64(a) simde_vreinterpret_f32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vreinterpret_f32_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f32_f64(a); #else simde_float32x2_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f32_f64 #define vreinterpret_f32_f64(a) simde_vreinterpret_f32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_s8(a); #else simde_float32x4_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_s8 #define vreinterpretq_f32_s8(a) simde_vreinterpretq_f32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_s16(a); #else simde_float32x4_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_s16 #define vreinterpretq_f32_s16(a) simde_vreinterpretq_f32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_s32(a); #else simde_float32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_s32 #define vreinterpretq_f32_s32(a) simde_vreinterpretq_f32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_s64(a); #else simde_float32x4_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_s64 #define vreinterpretq_f32_s64(a) simde_vreinterpretq_f32_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_u8(a); #else simde_float32x4_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_u8 #define vreinterpretq_f32_u8(a) simde_vreinterpretq_f32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_u16(a); #else simde_float32x4_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_u16 #define vreinterpretq_f32_u16(a) simde_vreinterpretq_f32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_u32(a); #else simde_float32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_u32 #define vreinterpretq_f32_u32(a) simde_vreinterpretq_f32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_f32_u64(a); #else simde_float32x4_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_u64 #define vreinterpretq_f32_u64(a) simde_vreinterpretq_f32_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vreinterpretq_f32_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f32_f64(a); #else simde_float32x4_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f32_f64 #define vreinterpretq_f32_f64(a) simde_vreinterpretq_f32_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_s8(a); #else simde_float64x1_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_s8 #define vreinterpret_f64_s8(a) simde_vreinterpret_f64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_s16(a); #else simde_float64x1_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_s16 #define vreinterpret_f64_s16(a) simde_vreinterpret_f64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_s32(a); #else simde_float64x1_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_s32 #define vreinterpret_f64_s32(a) simde_vreinterpret_f64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_s64(a); #else simde_float64x1_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_s64 #define vreinterpret_f64_s64(a) simde_vreinterpret_f64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_u8(a); #else simde_float64x1_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_u8 #define vreinterpret_f64_u8(a) simde_vreinterpret_f64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_u16(a); #else simde_float64x1_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_u16 #define vreinterpret_f64_u16(a) simde_vreinterpret_f64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_u32(a); #else simde_float64x1_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_u32 #define vreinterpret_f64_u32(a) simde_vreinterpret_f64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_u64(a); #else simde_float64x1_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_u64 #define vreinterpret_f64_u64(a) simde_vreinterpret_f64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vreinterpret_f64_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpret_f64_f32(a); #else simde_float64x1_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpret_f64_f32 #define vreinterpret_f64_f32(a) simde_vreinterpret_f64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_s8(a); #else simde_float64x2_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_s8 #define vreinterpretq_f64_s8(a) simde_vreinterpretq_f64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_s16(a); #else simde_float64x2_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_s16 #define vreinterpretq_f64_s16(a) simde_vreinterpretq_f64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_s32(a); #else simde_float64x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_s32 #define vreinterpretq_f64_s32(a) simde_vreinterpretq_f64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_s64(a); #else simde_float64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_s64 #define vreinterpretq_f64_s64(a) simde_vreinterpretq_f64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_u8(a); #else simde_float64x2_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_u8 #define vreinterpretq_f64_u8(a) simde_vreinterpretq_f64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_u16(a); #else simde_float64x2_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_u16 #define vreinterpretq_f64_u16(a) simde_vreinterpretq_f64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_u32(a); #else simde_float64x2_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_u32 #define vreinterpretq_f64_u32(a) simde_vreinterpretq_f64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_u64(a); #else simde_float64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_u64 #define vreinterpretq_f64_u64(a) simde_vreinterpretq_f64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vreinterpretq_f64_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vreinterpretq_f64_f32(a); #else simde_float64x2_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_memcpy(&r_, &a_, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vreinterpretq_f64_f32 #define vreinterpretq_f64_f32(a) simde_vreinterpretq_f64_f32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/reinterpret.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vabds_f32(simde_float32_t a, simde_float32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabds_f32(a, b); #else simde_float32_t r = a - b; return r < 0 ? -r : r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabds_f32 #define vabds_f32(a, b) simde_vabds_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vabdd_f64(simde_float64_t a, simde_float64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabdd_f64(a, b); #else simde_float64_t r = a - b; return r < 0 ? -r : r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabdd_f64 #define vabdd_f64(a, b) simde_vabdd_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vabd_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_f32(a, b); #else return simde_vabs_f32(simde_vsub_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_f32 #define vabd_f32(a, b) simde_vabd_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vabd_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabd_f64(a, b); #else return simde_vabs_f64(simde_vsub_f64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabd_f64 #define vabd_f64(a, b) simde_vabd_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vabd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_s8(a, b); #else return simde_vmovn_s16(simde_vabsq_s16(simde_vsubl_s8(a, b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_s8 #define vabd_s8(a, b) simde_vabd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vabd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_s16(a, b); #else return simde_vmovn_s32(simde_vabsq_s32(simde_vsubl_s16(a, b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_s16 #define vabd_s16(a, b) simde_vabd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vabd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_s32(a, b); #else return simde_vmovn_s64(simde_vabsq_s64(simde_vsubl_s32(a, b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_s32 #define vabd_s32(a, b) simde_vabd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vabd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_u8(a, b); #else return simde_vmovn_u16( simde_vreinterpretq_u16_s16( simde_vabsq_s16( simde_vsubq_s16( simde_vreinterpretq_s16_u16(simde_vmovl_u8(a)), simde_vreinterpretq_s16_u16(simde_vmovl_u8(b)))))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_u8 #define vabd_u8(a, b) simde_vabd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vabd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_u16(a, b); #else return simde_vmovn_u32( simde_vreinterpretq_u32_s32( simde_vabsq_s32( simde_vsubq_s32( simde_vreinterpretq_s32_u32(simde_vmovl_u16(a)), simde_vreinterpretq_s32_u32(simde_vmovl_u16(b)))))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_u16 #define vabd_u16(a, b) simde_vabd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vabd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabd_u32(a, b); #else return simde_vmovn_u64( simde_vreinterpretq_u64_s64( simde_vabsq_s64( simde_vsubq_s64( simde_vreinterpretq_s64_u64(simde_vmovl_u32(a)), simde_vreinterpretq_s64_u64(simde_vmovl_u32(b)))))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabd_u32 #define vabd_u32(a, b) simde_vabd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vabdq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_f32(a, b); #else return simde_vabsq_f32(simde_vsubq_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_f32 #define vabdq_f32(a, b) simde_vabdq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vabdq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vabdq_f64(a, b); #else return simde_vabsq_f64(simde_vsubq_f64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vabdq_f64 #define vabdq_f64(a, b) simde_vabdq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vabdq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int16_t tmp = HEDLEY_STATIC_CAST(int16_t, a_.values[i]) - HEDLEY_STATIC_CAST(int16_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int8_t, tmp < 0 ? -tmp : tmp); } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_s8 #define vabdq_s8(a, b) simde_vabdq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vabdq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int32_t tmp = HEDLEY_STATIC_CAST(int32_t, a_.values[i]) - HEDLEY_STATIC_CAST(int32_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int16_t, tmp < 0 ? -tmp : tmp); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_s16 #define vabdq_s16(a, b) simde_vabdq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vabdq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int64_t tmp = HEDLEY_STATIC_CAST(int64_t, a_.values[i]) - HEDLEY_STATIC_CAST(int64_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int32_t, tmp < 0 ? -tmp : tmp); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_s32 #define vabdq_s32(a, b) simde_vabdq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vabdq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P9_NATIVE) return vec_absd(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int16_t tmp = HEDLEY_STATIC_CAST(int16_t, a_.values[i]) - HEDLEY_STATIC_CAST(int16_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, tmp < 0 ? -tmp : tmp); } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_u8 #define vabdq_u8(a, b) simde_vabdq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vabdq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P9_NATIVE) return vec_absd(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int32_t tmp = HEDLEY_STATIC_CAST(int32_t, a_.values[i]) - HEDLEY_STATIC_CAST(int32_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, tmp < 0 ? -tmp : tmp); } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_u16 #define vabdq_u16(a, b) simde_vabdq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vabdq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P9_NATIVE) return vec_absd(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int64_t tmp = HEDLEY_STATIC_CAST(int64_t, a_.values[i]) - HEDLEY_STATIC_CAST(int64_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, tmp < 0 ? -tmp : tmp); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdq_u32 #define vabdq_u32(a, b) simde_vabdq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ABD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/add.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ADD_H) #define SIMDE_ARM_NEON_ADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vaddd_s64(int64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddd_s64(a, b); #else return a + b; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddd_s64 #define vaddd_s64(a, b) simde_vaddd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vaddd_u64(uint64_t a, uint64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddd_u64(a, b); #else return a + b; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddd_u64 #define vaddd_u64(a, b) simde_vaddd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vadd_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_f32 #define vadd_f32(a, b) simde_vadd_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vadd_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vadd_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vadd_f64 #define vadd_f64(a, b) simde_vadd_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vadd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #elif defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi8(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_s8 #define vadd_s8(a, b) simde_vadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vadd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #elif defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi16(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_s16 #define vadd_s16(a, b) simde_vadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vadd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #elif defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi32(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_s32 #define vadd_s32(a, b) simde_vadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vadd_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_s64 #define vadd_s64(a, b) simde_vadd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vadd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_u8 #define vadd_u8(a, b) simde_vadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vadd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_u16 #define vadd_u16(a, b) simde_vadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vadd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_u32 #define vadd_u32(a, b) simde_vadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vadd_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vadd_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vadd_u64 #define vadd_u64(a, b) simde_vadd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vaddq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(float) a_ , b_, r_; a_ = a; b_ = b; r_ = vec_add(a_, b_); return r_; #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_add_ps(a_.m128, b_.m128); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_f32 #define vaddq_f32(a, b) simde_vaddq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vaddq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_add(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_add_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddq_f64 #define vaddq_f64(a, b) simde_vaddq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vaddq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_add_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_s8 #define vaddq_s8(a, b) simde_vaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vaddq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_add_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_s16 #define vaddq_s16(a, b) simde_vaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vaddq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_add_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_s32 #define vaddq_s32(a, b) simde_vaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vaddq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_add(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_add_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_add(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_s64 #define vaddq_s64(a, b) simde_vaddq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vaddq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_u8 #define vaddq_u8(a, b) simde_vaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vaddq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_u16 #define vaddq_u16(a, b) simde_vaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vaddq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_add(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_u32 #define vaddq_u32(a, b) simde_vaddq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vaddq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_add(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values + b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddq_u64 #define vaddq_u64(a, b) simde_vaddq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/add.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vaba_s8(simde_int8x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_s8(a, b, c); #else return simde_vadd_s8(simde_vabd_s8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_s8 #define vaba_s8(a, b, c) simde_vaba_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vaba_s16(simde_int16x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_s16(a, b, c); #else return simde_vadd_s16(simde_vabd_s16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_s16 #define vaba_s16(a, b, c) simde_vaba_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vaba_s32(simde_int32x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_s32(a, b, c); #else return simde_vadd_s32(simde_vabd_s32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_s32 #define vaba_s32(a, b, c) simde_vaba_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vaba_u8(simde_uint8x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_u8(a, b, c); #else return simde_vadd_u8(simde_vabd_u8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_u8 #define vaba_u8(a, b, c) simde_vaba_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vaba_u16(simde_uint16x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_u16(a, b, c); #else return simde_vadd_u16(simde_vabd_u16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_u16 #define vaba_u16(a, b, c) simde_vaba_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vaba_u32(simde_uint32x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaba_u32(a, b, c); #else return simde_vadd_u32(simde_vabd_u32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaba_u32 #define vaba_u32(a, b, c) simde_vaba_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vabaq_s8(simde_int8x16_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_s8(a, b, c); #else return simde_vaddq_s8(simde_vabdq_s8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_s8 #define vabaq_s8(a, b, c) simde_vabaq_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vabaq_s16(simde_int16x8_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_s16(a, b, c); #else return simde_vaddq_s16(simde_vabdq_s16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_s16 #define vabaq_s16(a, b, c) simde_vabaq_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vabaq_s32(simde_int32x4_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_s32(a, b, c); #else return simde_vaddq_s32(simde_vabdq_s32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_s32 #define vabaq_s32(a, b, c) simde_vabaq_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vabaq_u8(simde_uint8x16_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_u8(a, b, c); #else return simde_vaddq_u8(simde_vabdq_u8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_u8 #define vabaq_u8(a, b, c) simde_vabaq_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vabaq_u16(simde_uint16x8_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_u16(a, b, c); #else return simde_vaddq_u16(simde_vabdq_u16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_u16 #define vabaq_u16(a, b, c) simde_vabaq_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vabaq_u32(simde_uint32x4_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabaq_u32(a, b, c); #else return simde_vaddq_u32(simde_vabdq_u32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabaq_u32 #define vabaq_u32(a, b, c) simde_vabaq_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ABA_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/aba.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abdl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ABDL_H) #define SIMDE_ARM_NEON_ABDL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vabdl_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_s8(a, b); #else return simde_vabsq_s16(simde_vsubl_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_s8 #define vabdl_s8(a, b) simde_vabdl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vabdl_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_s16(a, b); #else return simde_vabsq_s32(simde_vsubl_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_s16 #define vabdl_s16(a, b) simde_vabdl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vabdl_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_s32(a, b); #else return simde_vabsq_s64(simde_vsubl_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_s32 #define vabdl_s32(a, b) simde_vabdl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vabdl_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_u8(a, b); #else return simde_vreinterpretq_u16_s16( simde_vabsq_s16( simde_vsubq_s16( simde_vreinterpretq_s16_u16(simde_vmovl_u8(a)), simde_vreinterpretq_s16_u16(simde_vmovl_u8(b)) ) ) ); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_u8 #define vabdl_u8(a, b) simde_vabdl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vabdl_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_u16(a, b); #else return simde_vreinterpretq_u32_s32( simde_vabsq_s32( simde_vsubq_s32( simde_vreinterpretq_s32_u32(simde_vmovl_u16(a)), simde_vreinterpretq_s32_u32(simde_vmovl_u16(b)) ) ) ); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_u16 #define vabdl_u16(a, b) simde_vabdl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vabdl_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vabdl_u32(a, b); #else return simde_vreinterpretq_u64_s64( simde_vabsq_s64( simde_vsubq_s64( simde_vreinterpretq_s64_u64(simde_vmovl_u32(a)), simde_vreinterpretq_s64_u64(simde_vmovl_u32(b)) ) ) ); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vabdl_u32 #define vabdl_u32(a, b) simde_vabdl_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ABDL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/abdl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ADDL_H) #define SIMDE_ARM_NEON_ADDL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vaddl_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_s8(a, b); #else return simde_vaddq_s16(simde_vmovl_s8(a), simde_vmovl_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_s8 #define vaddl_s8(a, b) simde_vaddl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vaddl_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_s16(a, b); #else return simde_vaddq_s32(simde_vmovl_s16(a), simde_vmovl_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_s16 #define vaddl_s16(a, b) simde_vaddl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vaddl_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_s32(a, b); #else return simde_vaddq_s64(simde_vmovl_s32(a), simde_vmovl_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_s32 #define vaddl_s32(a, b) simde_vaddl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vaddl_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_u8(a, b); #else return simde_vaddq_u16(simde_vmovl_u8(a), simde_vmovl_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_u8 #define vaddl_u8(a, b) simde_vaddl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vaddl_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_u16(a, b); #else return simde_vaddq_u32(simde_vmovl_u16(a), simde_vmovl_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_u16 #define vaddl_u16(a, b) simde_vaddl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vaddl_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddl_u32(a, b); #else return simde_vaddq_u64(simde_vmovl_u32(a), simde_vmovl_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddl_u32 #define vaddl_u32(a, b) simde_vaddl_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addlv.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ADDLV_H) #define SIMDE_ARM_NEON_ADDLV_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addv.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ADDV_H) #define SIMDE_ARM_NEON_ADDV_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vaddv_f32(simde_float32x2_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_f32 #define vaddv_f32(v) simde_vaddv_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vaddv_s8(simde_int8x8_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_s8(a); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_s8 #define vaddv_s8(v) simde_vaddv_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vaddv_s16(simde_int16x4_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_s16(a); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_s16 #define vaddv_s16(v) simde_vaddv_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vaddv_s32(simde_int32x2_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_s32(a); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_s32 #define vaddv_s32(v) simde_vaddv_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vaddv_u8(simde_uint8x8_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_u8(a); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_u8 #define vaddv_u8(v) simde_vaddv_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vaddv_u16(simde_uint16x4_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_u16(a); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_u16 #define vaddv_u16(v) simde_vaddv_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vaddv_u32(simde_uint32x2_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddv_u32(a); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddv_u32 #define vaddv_u32(v) simde_vaddv_u32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vaddvq_f32(simde_float32x4_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_f32 #define vaddvq_f32(v) simde_vaddvq_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vaddvq_f64(simde_float64x2_t a) { simde_float64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_f64(a); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_f64 #define vaddvq_f64(v) simde_vaddvq_f64(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vaddvq_s8(simde_int8x16_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_s8(a); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_s8 #define vaddvq_s8(v) simde_vaddvq_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vaddvq_s16(simde_int16x8_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_s16(a); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_s16 #define vaddvq_s16(v) simde_vaddvq_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vaddvq_s32(simde_int32x4_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_s32 #define vaddvq_s32(v) simde_vaddvq_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vaddvq_s64(simde_int64x2_t a) { int64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_s64(a); #else simde_int64x2_private a_ = simde_int64x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_s64 #define vaddvq_s64(v) simde_vaddvq_s64(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vaddvq_u8(simde_uint8x16_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_u8(a); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_u8 #define vaddvq_u8(v) simde_vaddvq_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vaddvq_u16(simde_uint16x8_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_u16(a); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_u16 #define vaddvq_u16(v) simde_vaddvq_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vaddvq_u32(simde_uint32x4_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_u32 #define vaddvq_u32(v) simde_vaddvq_u32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vaddvq_u64(simde_uint64x2_t a) { uint64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vaddvq_u64(a); #else simde_uint64x2_private a_ = simde_uint64x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddvq_u64 #define vaddvq_u64(v) simde_vaddvq_u64(v) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDV_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addv.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vaddlv_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_s16(simde_vmovl_s8(a)); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); int16_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_s8 #define vaddlv_s8(a) simde_vaddlv_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vaddlv_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_s32(simde_vmovl_s16(a)); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); int32_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_s16 #define vaddlv_s16(a) simde_vaddlv_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vaddlv_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_s64(simde_vmovl_s32(a)); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); int64_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_s32 #define vaddlv_s32(a) simde_vaddlv_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vaddlv_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_u8(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_u16(simde_vmovl_u8(a)); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a); uint16_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_u8 #define vaddlv_u8(a) simde_vaddlv_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vaddlv_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_u16(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_u32(simde_vmovl_u16(a)); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a); uint32_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_u16 #define vaddlv_u16(a) simde_vaddlv_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vaddlv_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlv_u32(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddvq_u64(simde_vmovl_u32(a)); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a); uint64_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlv_u32 #define vaddlv_u32(a) simde_vaddlv_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vaddlvq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_s8(a); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); int16_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_s8 #define vaddlvq_s8(a) simde_vaddlvq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vaddlvq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_s16(a); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); int32_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_s16 #define vaddlvq_s16(a) simde_vaddlvq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vaddlvq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); int64_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_s32 #define vaddlvq_s32(a) simde_vaddlvq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vaddlvq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_u8(a); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a); uint16_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_u8 #define vaddlvq_u8(a) simde_vaddlvq_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vaddlvq_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_u16(a); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a); uint32_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_u16 #define vaddlvq_u16(a) simde_vaddlvq_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vaddlvq_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddlvq_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a); uint64_t r = 0; SIMDE_VECTORIZE_REDUCTION(+:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r += a_.values[i]; } return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddlvq_u32 #define vaddlvq_u32(a) simde_vaddlvq_u32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDLV_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addlv.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addl_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ADDL_HIGH_H) #define SIMDE_ARM_NEON_ADDL_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vaddl_high_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_s8(a, b); #else return simde_vaddq_s16(simde_vmovl_high_s8(a), simde_vmovl_high_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_s8 #define vaddl_high_s8(a, b) simde_vaddl_high_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vaddl_high_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_s16(a, b); #else return simde_vaddq_s32(simde_vmovl_high_s16(a), simde_vmovl_high_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_s16 #define vaddl_high_s16(a, b) simde_vaddl_high_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vaddl_high_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_s32(a, b); #else return simde_vaddq_s64(simde_vmovl_high_s32(a), simde_vmovl_high_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_s32 #define vaddl_high_s32(a, b) simde_vaddl_high_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vaddl_high_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_u8(a, b); #else return simde_vaddq_u16(simde_vmovl_high_u8(a), simde_vmovl_high_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_u8 #define vaddl_high_u8(a, b) simde_vaddl_high_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vaddl_high_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_u16(a, b); #else return simde_vaddq_u32(simde_vmovl_high_u16(a), simde_vmovl_high_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_u16 #define vaddl_high_u16(a, b) simde_vaddl_high_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vaddl_high_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddl_high_u32(a, b); #else return simde_vaddq_u64(simde_vmovl_high_u32(a), simde_vmovl_high_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddl_high_u32 #define vaddl_high_u32(a, b) simde_vaddl_high_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDL_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addl_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addw.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ADDW_H) #define SIMDE_ARM_NEON_ADDW_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vaddw_s8(simde_int16x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s16(a, simde_vmovl_s8(b)); #else simde_int16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_s8 #define vaddw_s8(a, b) simde_vaddw_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vaddw_s16(simde_int32x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s32(a, simde_vmovl_s16(b)); #else simde_int32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_s16 #define vaddw_s16(a, b) simde_vaddw_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vaddw_s32(simde_int64x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s64(a, simde_vmovl_s32(b)); #else simde_int64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_s32 #define vaddw_s32(a, b) simde_vaddw_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vaddw_u8(simde_uint16x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u16(a, simde_vmovl_u8(b)); #else simde_uint16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_uint8x8_private b_ = simde_uint8x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_u8 #define vaddw_u8(a, b) simde_vaddw_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vaddw_u16(simde_uint32x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u32(a, simde_vmovl_u16(b)); #else simde_uint32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_uint16x4_private b_ = simde_uint16x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_u16 #define vaddw_u16(a, b) simde_vaddw_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vaddw_u32(simde_uint64x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vaddw_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u64(a, simde_vmovl_u32(b)); #else simde_uint64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_uint32x2_private b_ = simde_uint32x2_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values += a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vaddw_u32 #define vaddw_u32(a, b) simde_vaddw_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDW_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addw.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addw_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ADDW_HIGH_H) #define SIMDE_ARM_NEON_ADDW_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_low.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_GET_LOW_H) #define SIMDE_ARM_NEON_GET_LOW_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vget_low_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_f32(a); #else simde_float32x2_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_f32 #define vget_low_f32(a) simde_vget_low_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vget_low_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vget_low_f64(a); #else simde_float64x1_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vget_low_f64 #define vget_low_f64(a) simde_vget_low_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vget_low_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_s8(a); #else simde_int8x8_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_s8 #define vget_low_s8(a) simde_vget_low_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vget_low_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_s16(a); #else simde_int16x4_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_s16 #define vget_low_s16(a) simde_vget_low_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vget_low_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_s32(a); #else simde_int32x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_s32 #define vget_low_s32(a) simde_vget_low_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vget_low_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_s64(a); #else simde_int64x1_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_s64 #define vget_low_s64(a) simde_vget_low_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vget_low_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_u8(a); #else simde_uint8x8_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_u8 #define vget_low_u8(a) simde_vget_low_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vget_low_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_u16(a); #else simde_uint16x4_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_u16 #define vget_low_u16(a) simde_vget_low_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vget_low_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_u32(a); #else simde_uint32x2_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_u32 #define vget_low_u32(a) simde_vget_low_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vget_low_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vget_low_u64(a); #else simde_uint64x1_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_movepi64_pi64(a_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_low_u64 #define vget_low_u64(a) simde_vget_low_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_GET_LOW_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_low.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vaddw_high_s8(simde_int16x8_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s16(a, simde_vmovl_s8(simde_vget_high_s8(b))); #else simde_int16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_s8 #define vaddw_high_s8(a, b) simde_vaddw_high_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vaddw_high_s16(simde_int32x4_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s32(a, simde_vmovl_s16(simde_vget_high_s16(b))); #else simde_int32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_s16 #define vaddw_high_s16(a, b) simde_vaddw_high_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vaddw_high_s32(simde_int64x2_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_s64(a, simde_vmovl_s32(simde_vget_high_s32(b))); #else simde_int64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_s32 #define vaddw_high_s32(a, b) simde_vaddw_high_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vaddw_high_u8(simde_uint16x8_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u16(a, simde_vmovl_u8(simde_vget_high_u8(b))); #else simde_uint16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_uint8x16_private b_ = simde_uint8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_u8 #define vaddw_high_u8(a, b) simde_vaddw_high_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vaddw_high_u16(simde_uint32x4_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u32(a, simde_vmovl_u16(simde_vget_high_u16(b))); #else simde_uint32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_uint16x8_private b_ = simde_uint16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_u16 #define vaddw_high_u16(a, b) simde_vaddw_high_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vaddw_high_u32(simde_uint64x2_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vaddw_high_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vaddq_u64(a, simde_vmovl_u32(simde_vget_high_u32(b))); #else simde_uint64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_uint32x4_private b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] + b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vaddw_high_u32 #define vaddw_high_u32(a, b) simde_vaddw_high_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ADDW_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/addw_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/and.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_AND_H) #define SIMDE_ARM_NEON_AND_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vand_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_s8 #define vand_s8(a, b) simde_vand_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vand_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_s16 #define vand_s16(a, b) simde_vand_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vand_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_s32 #define vand_s32(a, b) simde_vand_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vand_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_s64 #define vand_s64(a, b) simde_vand_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vand_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_u8 #define vand_u8(a, b) simde_vand_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vand_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_u16 #define vand_u16(a, b) simde_vand_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vand_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_u32 #define vand_u32(a, b) simde_vand_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vand_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vand_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_and_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vand_u64 #define vand_u64(a, b) simde_vand_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vandq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_s8 #define vandq_s8(a, b) simde_vandq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vandq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_s16 #define vandq_s16(a, b) simde_vandq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vandq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_s32 #define vandq_s32(a, b) simde_vandq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vandq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_and(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_s64 #define vandq_s64(a, b) simde_vandq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vandq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_u8 #define vandq_u8(a, b) simde_vandq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vandq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_u16 #define vandq_u16(a, b) simde_vandq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vandq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_u32 #define vandq_u32(a, b) simde_vandq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vandq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vandq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_and(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_and(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values & b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vandq_u64 #define vandq_u64(a, b) simde_vandq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_AND_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/and.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bcax.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_BCAX_H) #define SIMDE_ARM_NEON_BCAX_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/eor.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_EOR_H) #define SIMDE_ARM_NEON_EOR_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_veor_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_s8 #define veor_s8(a, b) simde_veor_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_veor_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_s16 #define veor_s16(a, b) simde_veor_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_veor_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_s32 #define veor_s32(a, b) simde_veor_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_veor_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_s64 #define veor_s64(a, b) simde_veor_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_veor_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_u8 #define veor_u8(a, b) simde_veor_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_veor_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_u16 #define veor_u16(a, b) simde_veor_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_veor_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_u32 #define veor_u32(a, b) simde_veor_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_veor_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veor_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_xor_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veor_u64 #define veor_u64(a, b) simde_veor_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_veorq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_s8 #define veorq_s8(a, b) simde_veorq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_veorq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_s16 #define veorq_s16(a, b) simde_veorq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_veorq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_s32 #define veorq_s32(a, b) simde_veorq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_veorq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_xor(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_s64 #define veorq_s64(a, b) simde_veorq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_veorq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_u8 #define veorq_u8(a, b) simde_veorq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_veorq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_u16 #define veorq_u16(a, b) simde_veorq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_veorq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_xor(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_u32 #define veorq_u32(a, b) simde_veorq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_veorq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return veorq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_xor(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_xor_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_xor(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values ^ b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] ^ b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef veorq_u64 #define veorq_u64(a, b) simde_veorq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_EOR_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/eor.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bic.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_BIC_H) #define SIMDE_ARM_NEON_BIC_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dup_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Sean Maher (Copyright owned by Google, LLC) * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_DUP_N_H) #define SIMDE_ARM_NEON_DUP_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vdup_n_f32(float value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_f32(value); #else simde_float32x2_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } return simde_float32x2_from_private(r_); #endif } #define simde_vmov_n_f32 simde_vdup_n_f32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_f32 #define vdup_n_f32(value) simde_vdup_n_f32((value)) #undef vmov_n_f32 #define vmov_n_f32(value) simde_vmov_n_f32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vdup_n_f64(double value) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vdup_n_f64(value); #else simde_float64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } return simde_float64x1_from_private(r_); #endif } #define simde_vmov_n_f64 simde_vdup_n_f64 #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_n_f64 #define vdup_n_f64(value) simde_vdup_n_f64((value)) #undef vmov_n_f64 #define vmov_n_f64(value) simde_vmov_n_f64((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vdup_n_s8(int8_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_s8(value); #else simde_int8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi8(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int8x8_from_private(r_); #endif } #define simde_vmov_n_s8 simde_vdup_n_s8 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_s8 #define vdup_n_s8(value) simde_vdup_n_s8((value)) #undef vmov_n_s8 #define vmov_n_s8(value) simde_vmov_n_s8((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vdup_n_s16(int16_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_s16(value); #else simde_int16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi16(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int16x4_from_private(r_); #endif } #define simde_vmov_n_s16 simde_vdup_n_s16 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_s16 #define vdup_n_s16(value) simde_vdup_n_s16((value)) #undef vmov_n_s16 #define vmov_n_s16(value) simde_vmov_n_s16((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vdup_n_s32(int32_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_s32(value); #else simde_int32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi32(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int32x2_from_private(r_); #endif } #define simde_vmov_n_s32 simde_vdup_n_s32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_s32 #define vdup_n_s32(value) simde_vdup_n_s32((value)) #undef vmov_n_s32 #define vmov_n_s32(value) simde_vmov_n_s32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vdup_n_s64(int64_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_s64(value); #else simde_int64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } return simde_int64x1_from_private(r_); #endif } #define simde_vmov_n_s64 simde_vdup_n_s64 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_s64 #define vdup_n_s64(value) simde_vdup_n_s64((value)) #undef vmov_n_s64 #define vmov_n_s64(value) simde_vmov_n_s64((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vdup_n_u8(uint8_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_u8(value); #else simde_uint8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi8(HEDLEY_STATIC_CAST(int8_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint8x8_from_private(r_); #endif } #define simde_vmov_n_u8 simde_vdup_n_u8 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_u8 #define vdup_n_u8(value) simde_vdup_n_u8((value)) #undef vmov_n_u8 #define vmov_n_u8(value) simde_vmov_n_u8((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vdup_n_u16(uint16_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_u16(value); #else simde_uint16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi16(HEDLEY_STATIC_CAST(int16_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint16x4_from_private(r_); #endif } #define simde_vmov_n_u16 simde_vdup_n_u16 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_u16 #define vdup_n_u16(value) simde_vdup_n_u16((value)) #undef vmov_n_u16 #define vmov_n_u16(value) simde_vmov_n_u16((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vdup_n_u32(uint32_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_u32(value); #else simde_uint32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_set1_pi32(HEDLEY_STATIC_CAST(int32_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint32x2_from_private(r_); #endif } #define simde_vmov_n_u32 simde_vdup_n_u32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_u32 #define vdup_n_u32(value) simde_vdup_n_u32((value)) #undef vmov_n_u32 #define vmov_n_u32(value) simde_vmov_n_u32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vdup_n_u64(uint64_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdup_n_u64(value); #else simde_uint64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } return simde_uint64x1_from_private(r_); #endif } #define simde_vmov_n_u64 simde_vdup_n_u64 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_n_u64 #define vdup_n_u64(value) simde_vdup_n_u64((value)) #undef vmov_n_u64 #define vmov_n_u64(value) simde_vmov_n_u64((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vdupq_n_f32(float value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_f32(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_14_NATIVE) (void) value; return vec_splats(value); #else simde_float32x4_private r_; #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_set1_ps(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_float32x4_from_private(r_); #endif } #define simde_vmovq_n_f32 simde_vdupq_n_f32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_f32 #define vdupq_n_f32(value) simde_vdupq_n_f32((value)) #undef vmovq_n_f32 #define vmovq_n_f32(value) simde_vmovq_n_f32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vdupq_n_f64(double value) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vdupq_n_f64(value); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) (void) value; return vec_splats(value); #else simde_float64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_set1_pd(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_float64x2_from_private(r_); #endif } #define simde_vmovq_n_f64 simde_vdupq_n_f64 #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_n_f64 #define vdupq_n_f64(value) simde_vdupq_n_f64((value)) #undef vmovq_n_f64 #define vmovq_n_f64(value) simde_vmovq_n_f64((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vdupq_n_s8(int8_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_s8(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_int8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi8(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int8x16_from_private(r_); #endif } #define simde_vmovq_n_s8 simde_vdupq_n_s8 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_s8 #define vdupq_n_s8(value) simde_vdupq_n_s8((value)) #undef vmovq_n_s8 #define vmovq_n_s8(value) simde_vmovq_n_s8((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vdupq_n_s16(int16_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_s16(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_int16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi16(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int16x8_from_private(r_); #endif } #define simde_vmovq_n_s16 simde_vdupq_n_s16 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_s16 #define vdupq_n_s16(value) simde_vdupq_n_s16((value)) #undef vmovq_n_s16 #define vmovq_n_s16(value) simde_vmovq_n_s16((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vdupq_n_s32(int32_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_s32(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_int32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi32(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int32x4_from_private(r_); #endif } #define simde_vmovq_n_s32 simde_vdupq_n_s32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_s32 #define vdupq_n_s32(value) simde_vdupq_n_s32((value)) #undef vmovq_n_s32 #define vmovq_n_s32(value) simde_vmovq_n_s32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vdupq_n_s64(int64_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_s64(value); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(HEDLEY_STATIC_CAST(signed long long, value)); #else simde_int64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) && (!defined(HEDLEY_MSVC_VERSION) || HEDLEY_MSVC_VERSION_CHECK(19,0,0)) r_.m128i = _mm_set1_epi64x(value); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_splat(value); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_int64x2_from_private(r_); #endif } #define simde_vmovq_n_s64 simde_vdupq_n_s64 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_s64 #define vdupq_n_s64(value) simde_vdupq_n_s64((value)) #undef vmovq_n_s64 #define vmovq_n_s64(value) simde_vmovq_n_s64((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vdupq_n_u8(uint8_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_u8(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_uint8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, value)); #elif defined (SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_splat(HEDLEY_STATIC_CAST(int8_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint8x16_from_private(r_); #endif } #define simde_vmovq_n_u8 simde_vdupq_n_u8 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_u8 #define vdupq_n_u8(value) simde_vdupq_n_u8((value)) #undef vmovq_n_u8 #define vmovq_n_u8(value) simde_vmovq_n_u8((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vdupq_n_u16(uint16_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_u16(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_uint16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi16(HEDLEY_STATIC_CAST(int16_t, value)); #elif defined (SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_splat(HEDLEY_STATIC_CAST(int16_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint16x8_from_private(r_); #endif } #define simde_vmovq_n_u16 simde_vdupq_n_u16 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_u16 #define vdupq_n_u16(value) simde_vdupq_n_u16((value)) #undef vmovq_n_u16 #define vmovq_n_u16(value) simde_vmovq_n_u16((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vdupq_n_u32(uint32_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_u32(value); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(value); #else simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi32(HEDLEY_STATIC_CAST(int32_t, value)); #elif defined (SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_splat(HEDLEY_STATIC_CAST(int32_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint32x4_from_private(r_); #endif } #define simde_vmovq_n_u32 simde_vdupq_n_u32 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_u32 #define vdupq_n_u32(value) simde_vdupq_n_u32((value)) #undef vmovq_n_u32 #define vmovq_n_u32(value) simde_vmovq_n_u32((value)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vdupq_n_u64(uint64_t value) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vdupq_n_u64(value); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_splats(HEDLEY_STATIC_CAST(unsigned long long, value)); #else simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) && (!defined(HEDLEY_MSVC_VERSION) || HEDLEY_MSVC_VERSION_CHECK(19,0,0)) r_.m128i = _mm_set1_epi64x(HEDLEY_STATIC_CAST(int64_t, value)); #elif defined (SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_splat(HEDLEY_STATIC_CAST(int64_t, value)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = value; } #endif return simde_uint64x2_from_private(r_); #endif } #define simde_vmovq_n_u64 simde_vdupq_n_u64 #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdupq_n_u64 #define vdupq_n_u64(value) simde_vdupq_n_u64((value)) #undef vmovq_n_u64 #define vmovq_n_u64(value) simde_vmovq_n_u64((value)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_DUP_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dup_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vbic_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_s8 #define vbic_s8(a, b) simde_vbic_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vbic_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_s16 #define vbic_s16(a, b) simde_vbic_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vbic_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_s32 #define vbic_s32(a, b) simde_vbic_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vbic_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_s64 #define vbic_s64(a, b) simde_vbic_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vbic_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_u8(a, b); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_u8 #define vbic_u8(a, b) simde_vbic_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vbic_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_u16(a, b); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_u16 #define vbic_u16(a, b) simde_vbic_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vbic_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_u32(a, b); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_u32 #define vbic_u32(a, b) simde_vbic_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vbic_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbic_u64(a, b); #else simde_uint64x1_private a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b), r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(b_.m64, a_.m64); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbic_u64 #define vbic_u64(a, b) simde_vbic_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vbicq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_s8 #define vbicq_s8(a, b) simde_vbicq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vbicq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_s16 #define vbicq_s16(a, b) simde_vbicq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vbicq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_s32 #define vbicq_s32(a, b) simde_vbicq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vbicq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_andc(a, b); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_s64 #define vbicq_s64(a, b) simde_vbicq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vbicq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_u8 #define vbicq_u8(a, b) simde_vbicq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vbicq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_u16 #define vbicq_u16(a, b) simde_vbicq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vbicq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_andc(a, b); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_u32 #define vbicq_u32(a, b) simde_vbicq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vbicq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbicq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_andc(a, b); #else simde_uint64x2_private a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b), r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(b_.m128i, a_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_andnot(a_.v128, b_.v128); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] & ~b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbicq_u64 #define vbicq_u64(a, b) simde_vbicq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_BIC_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bic.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vbcaxq_u8(simde_uint8x16_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_u8(a, b, c); #else return simde_veorq_u8(a, simde_vbicq_u8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_u8 #define vbcaxq_u8(a, b, c) simde_vbcaxq_u8(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vbcaxq_u16(simde_uint16x8_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_u16(a, b, c); #else return simde_veorq_u16(a, simde_vbicq_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_u16 #define vbcaxq_u16(a, b, c) simde_vbcaxq_u16(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vbcaxq_u32(simde_uint32x4_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_u32(a, b, c); #else return simde_veorq_u32(a, simde_vbicq_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_u32 #define vbcaxq_u32(a, b, c) simde_vbcaxq_u32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vbcaxq_u64(simde_uint64x2_t a, simde_uint64x2_t b, simde_uint64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_u64(a, b, c); #else return simde_veorq_u64(a, simde_vbicq_u64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_u64 #define vbcaxq_u64(a, b, c) simde_vbcaxq_u64(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vbcaxq_s8(simde_int8x16_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_s8(a, b, c); #else return simde_veorq_s8(a, simde_vbicq_s8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_s8 #define vbcaxq_s8(a, b, c) simde_vbcaxq_s8(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vbcaxq_s16(simde_int16x8_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_s16(a, b, c); #else return simde_veorq_s16(a,simde_vbicq_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_s16 #define vbcaxq_s16(a, b, c) simde_vbcaxq_s16(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vbcaxq_s32(simde_int32x4_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_s32(a, b, c); #else return simde_veorq_s32(a, simde_vbicq_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_s32 #define vbcaxq_s32(a, b, c) simde_vbcaxq_s32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vbcaxq_s64(simde_int64x2_t a, simde_int64x2_t b, simde_int64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) return vbcaxq_s64(a, b, c); #else return simde_veorq_s64(a, simde_vbicq_s64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vbcaxq_s64 #define vbcaxq_s64(a, b, c) simde_vbcaxq_s64(a, b, c) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_BCAX_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bcax.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bsl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_BSL_H) #define SIMDE_ARM_NEON_BSL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vbsl_f32(simde_uint32x2_t a, simde_float32x2_t b, simde_float32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_f32(a, b, c); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(simde_vreinterpret_u32_f32(b)), c_ = simde_uint32x2_to_private(simde_vreinterpret_u32_f32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && 0 r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_f32_u32(simde_uint32x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_f32 #define vbsl_f32(a, b, c) simde_vbsl_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vbsl_f64(simde_uint64x1_t a, simde_float64x1_t b, simde_float64x1_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vbsl_f64(a, b, c); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(simde_vreinterpret_u64_f64(b)), c_ = simde_uint64x1_to_private(simde_vreinterpret_u64_f64(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_f64_u64(simde_uint64x1_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vbsl_f64 #define vbsl_f64(a, b, c) simde_vbsl_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vbsl_s8(simde_uint8x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_s8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(simde_vreinterpret_u8_s8(b)), c_ = simde_uint8x8_to_private(simde_vreinterpret_u8_s8(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_s8_u8(simde_uint8x8_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_s8 #define vbsl_s8(a, b, c) simde_vbsl_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vbsl_s16(simde_uint16x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_s16(a, b, c); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(simde_vreinterpret_u16_s16(b)), c_ = simde_uint16x4_to_private(simde_vreinterpret_u16_s16(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_s16_u16(simde_uint16x4_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_s16 #define vbsl_s16(a, b, c) simde_vbsl_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vbsl_s32(simde_uint32x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_s32(a, b, c); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(simde_vreinterpret_u32_s32(b)), c_ = simde_uint32x2_to_private(simde_vreinterpret_u32_s32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_s32_u32(simde_uint32x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_s32 #define vbsl_s32(a, b, c) simde_vbsl_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vbsl_s64(simde_uint64x1_t a, simde_int64x1_t b, simde_int64x1_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_s64(a, b, c); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(simde_vreinterpret_u64_s64(b)), c_ = simde_uint64x1_to_private(simde_vreinterpret_u64_s64(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpret_s64_u64(simde_uint64x1_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_s64 #define vbsl_s64(a, b, c) simde_vbsl_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vbsl_u8(simde_uint8x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_u8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b), c_ = simde_uint8x8_to_private(c); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_u8 #define vbsl_u8(a, b, c) simde_vbsl_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vbsl_u16(simde_uint16x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_u16(a, b, c); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b), c_ = simde_uint16x4_to_private(c); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_u16 #define vbsl_u16(a, b, c) simde_vbsl_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vbsl_u32(simde_uint32x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_u32(a, b, c); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b), c_ = simde_uint32x2_to_private(c); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_u32 #define vbsl_u32(a, b, c) simde_vbsl_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vbsl_u64(simde_uint64x1_t a, simde_uint64x1_t b, simde_uint64x1_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbsl_u64(a, b, c); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b), c_ = simde_uint64x1_to_private(c); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbsl_u64 #define vbsl_u64(a, b, c) simde_vbsl_u64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vbslq_f32(simde_uint32x4_t a, simde_float32x4_t b, simde_float32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_f32(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_14_NATIVE) return vec_sel(c, b, a); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(simde_vreinterpretq_u32_f32(b)), c_ = simde_uint32x4_to_private(simde_vreinterpretq_u32_f32(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_f32_u32(simde_uint32x4_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_f32 #define vbslq_f32(a, b, c) simde_vbslq_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vbslq_f64(simde_uint64x2_t a, simde_float64x2_t b, simde_float64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vbslq_f64(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(simde_vreinterpretq_u64_f64(b)), c_ = simde_uint64x2_to_private(simde_vreinterpretq_u64_f64(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi64(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_f64_u64(simde_uint64x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vbslq_f64 #define vbslq_f64(a, b, c) simde_vbslq_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vbslq_s8(simde_uint8x16_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_s8(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(simde_vreinterpretq_u8_s8(b)), c_ = simde_uint8x16_to_private(simde_vreinterpretq_u8_s8(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_s8_u8(simde_uint8x16_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_s8 #define vbslq_s8(a, b, c) simde_vbslq_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vbslq_s16(simde_uint16x8_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_s16(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(simde_vreinterpretq_u16_s16(b)), c_ = simde_uint16x8_to_private(simde_vreinterpretq_u16_s16(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_s16_u16(simde_uint16x8_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_s16 #define vbslq_s16(a, b, c) simde_vbslq_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vbslq_s32(simde_uint32x4_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_s32(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(simde_vreinterpretq_u32_s32(b)), c_ = simde_uint32x4_to_private(simde_vreinterpretq_u32_s32(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_s32_u32(simde_uint32x4_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_s32 #define vbslq_s32(a, b, c) simde_vbslq_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vbslq_s64(simde_uint64x2_t a, simde_int64x2_t b, simde_int64x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_s64(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return simde_vreinterpretq_s64_s32( simde_vbslq_s32( simde_vreinterpretq_u32_u64(a), simde_vreinterpretq_s32_s64(b), simde_vreinterpretq_s32_s64(c) ) ); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel( HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), c), HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), b), HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), a)); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(simde_vreinterpretq_u64_s64(b)), c_ = simde_uint64x2_to_private(simde_vreinterpretq_u64_s64(c)); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_vreinterpretq_s64_u64(simde_uint64x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_s64 #define vbslq_s64(a, b, c) simde_vbslq_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vbslq_u8(simde_uint8x16_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_u8(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b), c_ = simde_uint8x16_to_private(c); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_u8 #define vbslq_u8(a, b, c) simde_vbslq_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vbslq_u16(simde_uint16x8_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_u16(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b), c_ = simde_uint16x8_to_private(c); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_u16 #define vbslq_u16(a, b, c) simde_vbslq_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vbslq_u32(simde_uint32x4_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_u32(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_sel(c, b, a); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b), c_ = simde_uint32x4_to_private(c); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_u32 #define vbslq_u32(a, b, c) simde_vbslq_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vbslq_u64(simde_uint64x2_t a, simde_uint64x2_t b, simde_uint64x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vbslq_u64(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return simde_vreinterpretq_u64_u32( simde_vbslq_u32( simde_vreinterpretq_u32_u64(a), simde_vreinterpretq_u32_u64(b), simde_vreinterpretq_u32_u64(c) ) ); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b), c_ = simde_uint64x2_to_private(c); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_bitselect(b_.v128, c_.v128, a_.v128); #elif defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, c_.m128i, 0xca); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = c_.values ^ ((b_.values ^ c_.values) & a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] & a_.values[i]) | (c_.values[i] & ~a_.values[i]); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vbslq_u64 #define vbslq_u64(a, b, c) simde_vbslq_u64((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_BSL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/bsl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cage.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Evan Nemerson * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_CAGE_H) #define SIMDE_ARM_NEON_CAGE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cge.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CGE_H) #define SIMDE_ARM_NEON_CGE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgeq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpge(a, b)); #else simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_cmpge_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_f32 #define vcgeq_f32(a, b) simde_vcgeq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgeq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgeq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpge(a, b)); #else simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castpd_si128(_mm_cmpge_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgeq_f64 #define vcgeq_f64(a, b) simde_vcgeq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgeq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpge(a, b)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); simde_uint8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi8(a_.m128i, b_.m128i), _mm_cmpeq_epi8(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_s8 #define vcgeq_s8(a, b) simde_vcgeq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgeq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpge(a, b)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); simde_uint16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi16(a_.m128i, b_.m128i), _mm_cmpeq_epi16(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_s16 #define vcgeq_s16(a, b) simde_vcgeq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgeq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpge(a, b)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi32(a_.m128i, b_.m128i), _mm_cmpeq_epi32(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_s32 #define vcgeq_s32(a, b) simde_vcgeq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgeq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgeq_s64(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s32(vmvnq_s32(vreinterpretq_s32_s64(vshrq_n_s64(vqsubq_s64(a, b), 63)))); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpge(a, b)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE4_2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi64(a_.m128i, b_.m128i), _mm_cmpeq_epi64(a_.m128i, b_.m128i)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgeq_s64 #define vcgeq_s64(a, b) simde_vcgeq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgeq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpge(a, b)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi8(INT8_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi8(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)), _mm_cmpeq_epi8(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_u8 #define vcgeq_u8(a, b) simde_vcgeq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgeq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpge(a, b)); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi16(INT16_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi16(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)), _mm_cmpeq_epi16(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_u16 #define vcgeq_u16(a, b) simde_vcgeq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgeq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgeq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpge(a, b)); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi32(INT32_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi32(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)), _mm_cmpeq_epi32(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_ge(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgeq_u32 #define vcgeq_u32(a, b) simde_vcgeq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgeq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgeq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && 0 return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpge(a, b)); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE4_2_NATIVE) __m128i sign_bits = _mm_set1_epi64x(INT64_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi64(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)), _mm_cmpeq_epi64(a_.m128i, b_.m128i)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgeq_u64 #define vcgeq_u64(a, b) simde_vcgeq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcge_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_f32(a, b); #else simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_f32 #define vcge_f32(a, b) simde_vcge_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcge_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcge_f64(a, b); #else simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcge_f64 #define vcge_f64(a, b) simde_vcge_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcge_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); simde_uint8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi8(a_.m64, b_.m64), _mm_cmpeq_pi8(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_s8 #define vcge_s8(a, b) simde_vcge_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcge_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); simde_uint16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi16(a_.m64, b_.m64), _mm_cmpeq_pi16(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_s16 #define vcge_s16(a, b) simde_vcge_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcge_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi32(a_.m64, b_.m64), _mm_cmpeq_pi32(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_s32 #define vcge_s32(a, b) simde_vcge_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcge_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcge_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcge_s64 #define vcge_s64(a, b) simde_vcge_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcge_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi8(INT8_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi8(_mm_xor_si64(a_.m64, sign_bits), _mm_xor_si64(b_.m64, sign_bits)), _mm_cmpeq_pi8(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_u8 #define vcge_u8(a, b) simde_vcge_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcge_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi16(INT16_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi16(_mm_xor_si64(a_.m64, sign_bits), _mm_xor_si64(b_.m64, sign_bits)), _mm_cmpeq_pi16(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_u16 #define vcge_u16(a, b) simde_vcge_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcge_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcge_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi32(INT32_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi32(_mm_xor_si64(a_.m64, sign_bits), _mm_xor_si64(b_.m64, sign_bits)), _mm_cmpeq_pi32(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcge_u32 #define vcge_u32(a, b) simde_vcge_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcge_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcge_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcge_u64 #define vcge_u64(a, b) simde_vcge_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcged_f64(simde_float64_t a, simde_float64_t b){ #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint64_t, vcged_f64(a, b)); #else return (a >= b) ? UINT64_MAX : 0; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcged_f64 #define vcged_f64(a, b) simde_vcged_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcged_s64(int64_t a, int64_t b){ #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint64_t, vcged_s64(a, b)); #else return (a >= b) ? UINT64_MAX : 0; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcged_s64 #define vcged_s64(a, b) simde_vcged_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcged_u64(uint64_t a, uint64_t b){ #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint64_t, vcged_u64(a, b)); #else return (a >= b) ? UINT64_MAX : 0; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcged_u64 #define vcged_u64(a, b) simde_vcged_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vcges_f32(simde_float32_t a, simde_float32_t b){ #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint32_t, vcges_f32(a, b)); #else return (a >= b) ? UINT32_MAX : 0; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcges_f32 #define vcges_f32(a, b) simde_vcges_f32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CGE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cge.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vcages_f32(simde_float32_t a, simde_float32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcages_f32(a, b); #else return (simde_math_fabsf(a) >= simde_math_fabsf(b)) ? ~UINT32_C(0) : UINT32_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcages_f32 #define vcages_f32(a, b) simde_vcages_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcaged_f64(simde_float64_t a, simde_float64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcaged_f64(a, b); #else return (simde_math_fabs(a) >= simde_math_fabs(b)) ? ~UINT64_C(0) : UINT64_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcaged_f64 #define vcaged_f64(a, b) simde_vcaged_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcage_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcage_f32(a, b); #else return simde_vcge_f32(simde_vabs_f32(a), simde_vabs_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcage_f32 #define vcage_f32(a, b) simde_vcage_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcage_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcage_f64(a, b); #else return simde_vcge_f64(simde_vabs_f64(a), simde_vabs_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcage_f64 #define vcage_f64(a, b) simde_vcage_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcageq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcageq_f32(a, b); #else return simde_vcgeq_f32(simde_vabsq_f32(a), simde_vabsq_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcageq_f32 #define vcageq_f32(a, b) simde_vcageq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcageq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcageq_f64(a, b); #else return simde_vcgeq_f64(simde_vabsq_f64(a), simde_vabsq_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcageq_f64 #define vcageq_f64(a, b) simde_vcageq_f64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CAGE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cage.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cagt.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_CAGT_H) #define SIMDE_ARM_NEON_CAGT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgt.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CGT_H) #define SIMDE_ARM_NEON_CGT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/combine.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the folhighing conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_COMBINE_H) #define SIMDE_ARM_NEON_COMBINE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcombine_f32(simde_float32x2_t low, simde_float32x2_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_f32(low, high); #else simde_float32x4_private r_; simde_float32x2_private low_ = simde_float32x2_to_private(low), high_ = simde_float32x2_to_private(high); /* Note: __builtin_shufflevector can have a the output contain * twice the number of elements, __builtin_shuffle cannot. * Using SIMDE_SHUFFLE_VECTOR_ here would not work. */ #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_f32 #define vcombine_f32(low, high) simde_vcombine_f32((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcombine_f64(simde_float64x1_t low, simde_float64x1_t high) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcombine_f64(low, high); #else simde_float64x2_private r_; simde_float64x1_private low_ = simde_float64x1_to_private(low), high_ = simde_float64x1_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcombine_f64 #define vcombine_f64(low, high) simde_vcombine_f64((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vcombine_s8(simde_int8x8_t low, simde_int8x8_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_s8(low, high); #else simde_int8x16_private r_; simde_int8x8_private low_ = simde_int8x8_to_private(low), high_ = simde_int8x8_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_s8 #define vcombine_s8(low, high) simde_vcombine_s8((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vcombine_s16(simde_int16x4_t low, simde_int16x4_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_s16(low, high); #else simde_int16x8_private r_; simde_int16x4_private low_ = simde_int16x4_to_private(low), high_ = simde_int16x4_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3, 4, 5, 6, 7); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_s16 #define vcombine_s16(low, high) simde_vcombine_s16((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vcombine_s32(simde_int32x2_t low, simde_int32x2_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_s32(low, high); #else simde_int32x4_private r_; simde_int32x2_private low_ = simde_int32x2_to_private(low), high_ = simde_int32x2_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_s32 #define vcombine_s32(low, high) simde_vcombine_s32((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vcombine_s64(simde_int64x1_t low, simde_int64x1_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_s64(low, high); #else simde_int64x2_private r_; simde_int64x1_private low_ = simde_int64x1_to_private(low), high_ = simde_int64x1_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_s64 #define vcombine_s64(low, high) simde_vcombine_s64((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcombine_u8(simde_uint8x8_t low, simde_uint8x8_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_u8(low, high); #else simde_uint8x16_private r_; simde_uint8x8_private low_ = simde_uint8x8_to_private(low), high_ = simde_uint8x8_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_u8 #define vcombine_u8(low, high) simde_vcombine_u8((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcombine_u16(simde_uint16x4_t low, simde_uint16x4_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_u16(low, high); #else simde_uint16x8_private r_; simde_uint16x4_private low_ = simde_uint16x4_to_private(low), high_ = simde_uint16x4_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3, 4, 5, 6, 7); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_u16 #define vcombine_u16(low, high) simde_vcombine_u16((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcombine_u32(simde_uint32x2_t low, simde_uint32x2_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_u32(low, high); #else simde_uint32x4_private r_; simde_uint32x2_private low_ = simde_uint32x2_to_private(low), high_ = simde_uint32x2_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1, 2, 3); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_u32 #define vcombine_u32(low, high) simde_vcombine_u32((low), (high)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcombine_u64(simde_uint64x1_t low, simde_uint64x1_t high) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcombine_u64(low, high); #else simde_uint64x2_private r_; simde_uint64x1_private low_ = simde_uint64x1_to_private(low), high_ = simde_uint64x1_to_private(high); #if defined(SIMDE_VECTOR_SUBSCRIPT) && HEDLEY_HAS_BUILTIN(__builtin_shufflevector) r_.values = __builtin_shufflevector(low_.values, high_.values, 0, 1); #else size_t halfway = (sizeof(r_.values) / sizeof(r_.values[0])) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway ; i++) { r_.values[i] = low_.values[i]; r_.values[i + halfway] = high_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcombine_u64 #define vcombine_u64(low, high) simde_vcombine_u64((low), (high)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_COMBINE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/combine.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgtq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpgt(a, b)); #else simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_cmpgt_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_f32 #define vcgtq_f32(a, b) simde_vcgtq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgtq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpgt(a, b)); #else simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castpd_si128(_mm_cmpgt_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtq_f64 #define vcgtq_f64(a, b) simde_vcgtq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgtq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpgt(a, b)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); simde_uint8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpgt_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_s8 #define vcgtq_s8(a, b) simde_vcgtq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgtq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpgt(a, b)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); simde_uint16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpgt_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_s16 #define vcgtq_s16(a, b) simde_vcgtq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgtq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpgt(a, b)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpgt_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_s32 #define vcgtq_s32(a, b) simde_vcgtq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgtq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtq_s64(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s64(vshrq_n_s64(vqsubq_s64(b, a), 63)); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpgt(a, b)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE4_2_NATIVE) r_.m128i = _mm_cmpgt_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_X86_SSE2_NATIVE) /* https://stackoverflow.com/a/65175746/501126 */ __m128i r = _mm_and_si128(_mm_cmpeq_epi32(a_.m128i, b_.m128i), _mm_sub_epi64(b_.m128i, a_.m128i)); r = _mm_or_si128(r, _mm_cmpgt_epi32(a_.m128i, b_.m128i)); r_.m128i = _mm_shuffle_epi32(r, _MM_SHUFFLE(3,3,1,1)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtq_s64 #define vcgtq_s64(a, b) simde_vcgtq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgtq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpgt(a, b)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bit = _mm_set1_epi8(INT8_MIN); r_.m128i = _mm_cmpgt_epi8(_mm_xor_si128(a_.m128i, sign_bit), _mm_xor_si128(b_.m128i, sign_bit)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_u8 #define vcgtq_u8(a, b) simde_vcgtq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgtq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpgt(a, b)); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bit = _mm_set1_epi16(INT16_MIN); r_.m128i = _mm_cmpgt_epi16(_mm_xor_si128(a_.m128i, sign_bit), _mm_xor_si128(b_.m128i, sign_bit)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_u16 #define vcgtq_u16(a, b) simde_vcgtq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgtq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgtq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpgt(a, b)); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bit = _mm_set1_epi32(INT32_MIN); r_.m128i = _mm_cmpgt_epi32(_mm_xor_si128(a_.m128i, sign_bit), _mm_xor_si128(b_.m128i, sign_bit)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_gt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgtq_u32 #define vcgtq_u32(a, b) simde_vcgtq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgtq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpgt(a, b)); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE4_2_NATIVE) __m128i sign_bit = _mm_set1_epi64x(INT64_MIN); r_.m128i = _mm_cmpgt_epi64(_mm_xor_si128(a_.m128i, sign_bit), _mm_xor_si128(b_.m128i, sign_bit)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtq_u64 #define vcgtq_u64(a, b) simde_vcgtq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgt_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_f32(a, b); #else simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_f32 #define vcgt_f32(a, b) simde_vcgt_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgt_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgt_f64(a, b); #else simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgt_f64 #define vcgt_f64(a, b) simde_vcgt_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcgt_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); simde_uint8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi8(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_s8 #define vcgt_s8(a, b) simde_vcgt_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcgt_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); simde_uint16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi16(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_s16 #define vcgt_s16(a, b) simde_vcgt_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgt_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi32(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_s32 #define vcgt_s32(a, b) simde_vcgt_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgt_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgt_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgt_s64 #define vcgt_s64(a, b) simde_vcgt_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcgt_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bit = _mm_set1_pi8(INT8_MIN); r_.m64 = _mm_cmpgt_pi8(_mm_xor_si64(a_.m64, sign_bit), _mm_xor_si64(b_.m64, sign_bit)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_u8 #define vcgt_u8(a, b) simde_vcgt_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcgt_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bit = _mm_set1_pi16(INT16_MIN); r_.m64 = _mm_cmpgt_pi16(_mm_xor_si64(a_.m64, sign_bit), _mm_xor_si64(b_.m64, sign_bit)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_u16 #define vcgt_u16(a, b) simde_vcgt_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgt_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcgt_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bit = _mm_set1_pi32(INT32_MIN); r_.m64 = _mm_cmpgt_pi32(_mm_xor_si64(a_.m64, sign_bit), _mm_xor_si64(b_.m64, sign_bit)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcgt_u32 #define vcgt_u32(a, b) simde_vcgt_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgt_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgt_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgt_u64 #define vcgt_u64(a, b) simde_vcgt_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CGT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgt.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vcagts_f32(simde_float32_t a, simde_float32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcagts_f32(a, b); #else return (simde_math_fabsf(a) > simde_math_fabsf(b)) ? ~UINT32_C(0) : UINT32_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcagts_f32 #define vcagts_f32(a, b) simde_vcagts_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcagtd_f64(simde_float64_t a, simde_float64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcagtd_f64(a, b); #else return (simde_math_fabs(a) > simde_math_fabs(b)) ? ~UINT64_C(0) : UINT64_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcagtd_f64 #define vcagtd_f64(a, b) simde_vcagtd_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcagt_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcagt_f32(a, b); #else return simde_vcgt_f32(simde_vabs_f32(a), simde_vabs_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcagt_f32 #define vcagt_f32(a, b) simde_vcagt_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcagt_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcagt_f64(a, b); #else return simde_vcgt_f64(simde_vabs_f64(a), simde_vabs_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcagt_f64 #define vcagt_f64(a, b) simde_vcagt_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcagtq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcagtq_f32(a, b); #else return simde_vcgtq_f32(simde_vabsq_f32(a), simde_vabsq_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcagtq_f32 #define vcagtq_f32(a, b) simde_vcagtq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcagtq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcagtq_f64(a, b); #else return simde_vcgtq_f64(simde_vabsq_f64(a), simde_vabsq_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcagtq_f64 #define vcagtq_f64(a, b) simde_vcagtq_f64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CAGT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cagt.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ceq.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_CEQ_H) #define SIMDE_ARM_NEON_CEQ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vceqs_f32(simde_float32_t a, simde_float32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqs_f32(a, b); #else return (a == b) ? ~UINT32_C(0) : UINT32_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqs_f32 #define vceqs_f32(a, b) simde_vceqs_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqd_f64(simde_float64_t a, simde_float64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqd_f64(a, b); #else return (a == b) ? ~UINT64_C(0) : UINT64_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqd_f64 #define vceqd_f64(a, b) simde_vceqd_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqd_s64(int64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint64_t, vceqd_s64(a, b)); #else return (a == b) ? ~UINT64_C(0) : UINT64_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqd_s64 #define vceqd_s64(a, b) simde_vceqd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqd_u64(uint64_t a, uint64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqd_u64(a, b); #else return (a == b) ? ~UINT64_C(0) : UINT64_C(0); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqd_u64 #define vceqd_u64(a, b) simde_vceqd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceq_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_f32(a, b); #else simde_uint32x2_private r_; simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_f32 #define vceq_f32(a, b) simde_vceq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceq_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceq_f64(a, b); #else simde_uint64x1_private r_; simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceq_f64 #define vceq_f64(a, b) simde_vceq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vceq_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_s8(a, b); #else simde_uint8x8_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpeq_pi8(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT8_C(0) : UINT8_C(0); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_s8 #define vceq_s8(a, b) simde_vceq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vceq_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_s16(a, b); #else simde_uint16x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpeq_pi16(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT16_C(0) : UINT16_C(0); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_s16 #define vceq_s16(a, b) simde_vceq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceq_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_s32(a, b); #else simde_uint32x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpeq_pi32(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_s32 #define vceq_s32(a, b) simde_vceq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceq_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceq_s64(a, b); #else simde_uint64x1_private r_; simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_s64 #define vceq_s64(a, b) simde_vceq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vceq_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_u8(a, b); #else simde_uint8x8_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT8_C(0) : UINT8_C(0); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_u8 #define vceq_u8(a, b) simde_vceq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vceq_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_u16(a, b); #else simde_uint16x4_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT16_C(0) : UINT16_C(0); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_u16 #define vceq_u16(a, b) simde_vceq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceq_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceq_u32(a, b); #else simde_uint32x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_u32 #define vceq_u32(a, b) simde_vceq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceq_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceq_u64(a, b); #else simde_uint64x1_private r_; simde_uint64x1_private a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceq_u64 #define vceq_u64(a, b) simde_vceq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpeq(a, b)); #else simde_uint32x4_private r_; simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_cmpeq_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_eq(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_f32 #define vceqq_f32(a, b) simde_vceqq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpeq(a, b)); #else simde_uint64x2_private r_; simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castpd_si128(_mm_cmpeq_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_eq(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqq_f64 #define vceqq_f64(a, b) simde_vceqq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vceqq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpeq(a, b)); #else simde_uint8x16_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_eq(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT8_C(0) : UINT8_C(0); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_s8 #define vceqq_s8(a, b) simde_vceqq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vceqq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpeq(a, b)); #else simde_uint16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_eq(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT16_C(0) : UINT16_C(0); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_s16 #define vceqq_s16(a, b) simde_vceqq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpeq(a, b)); #else simde_uint32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_eq(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_s32 #define vceqq_s32(a, b) simde_vceqq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpeq(a, b)); #else simde_uint64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_cmpeq_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_s64 #define vceqq_s64(a, b) simde_vceqq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vceqq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmpeq(a, b)); #else simde_uint8x16_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT8_C(0) : UINT8_C(0); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_u8 #define vceqq_u8(a, b) simde_vceqq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vceqq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmpeq(a, b)); #else simde_uint16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT16_C(0) : UINT16_C(0); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_u16 #define vceqq_u16(a, b) simde_vceqq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vceqq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmpeq(a, b)); #else simde_uint32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmpeq_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_u32 #define vceqq_u32(a, b) simde_vceqq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmpeq(a, b)); #else simde_uint64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_cmpeq_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values == b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == b_.values[i]) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqq_u64 #define vceqq_u64(a, b) simde_vceqq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CEQ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ceq.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ceqz.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_CEQZ_H) #define SIMDE_ARM_NEON_CEQZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceqz_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_f32(a); #else return simde_vceq_f32(a, simde_vdup_n_f32(0.0f)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_f32 #define vceqz_f32(a) simde_vceqz_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceqz_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_f64(a); #else return simde_vceq_f64(a, simde_vdup_n_f64(0.0)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqz_f64 #define vceqz_f64(a) simde_vceqz_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vceqz_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_s8(a); #else return simde_vceq_s8(a, simde_vdup_n_s8(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_s8 #define vceqz_s8(a) simde_vceqz_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vceqz_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_s16(a); #else return simde_vceq_s16(a, simde_vdup_n_s16(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_s16 #define vceqz_s16(a) simde_vceqz_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceqz_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_s32(a); #else return simde_vceq_s32(a, simde_vdup_n_s32(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_s32 #define vceqz_s32(a) simde_vceqz_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceqz_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_s64(a); #else return simde_vceq_s64(a, simde_vdup_n_s64(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_s64 #define vceqz_s64(a) simde_vceqz_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vceqz_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_u8(a); #else return simde_vceq_u8(a, simde_vdup_n_u8(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_u8 #define vceqz_u8(a) simde_vceqz_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vceqz_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_u16(a); #else return simde_vceq_u16(a, simde_vdup_n_u16(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_u16 #define vceqz_u16(a) simde_vceqz_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vceqz_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_u32(a); #else return simde_vceq_u32(a, simde_vdup_n_u32(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_u32 #define vceqz_u32(a) simde_vceqz_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vceqz_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqz_u64(a); #else return simde_vceq_u64(a, simde_vdup_n_u64(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqz_u64 #define vceqz_u64(a) simde_vceqz_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqzq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_f32(a); #else return simde_vceqq_f32(a, simde_vdupq_n_f32(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_f32 #define vceqzq_f32(a) simde_vceqzq_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqzq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_f64(a); #else return simde_vceqq_f64(a, simde_vdupq_n_f64(0)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vceqzq_f64 #define vceqzq_f64(a) simde_vceqzq_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vceqzq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_s8(a); #else return simde_vceqq_s8(a, simde_vdupq_n_s8(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_s8 #define vceqzq_s8(a) simde_vceqzq_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vceqzq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_s16(a); #else return simde_vceqq_s16(a, simde_vdupq_n_s16(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_s16 #define vceqzq_s16(a) simde_vceqzq_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqzq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_s32(a); #else return simde_vceqq_s32(a, simde_vdupq_n_s32(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_s32 #define vceqzq_s32(a) simde_vceqzq_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqzq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_s64(a); #else return simde_vceqq_s64(a, simde_vdupq_n_s64(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_s64 #define vceqzq_s64(a) simde_vceqzq_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vceqzq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_u8(a); #else return simde_vceqq_u8(a, simde_vdupq_n_u8(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_u8 #define vceqzq_u8(a) simde_vceqzq_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vceqzq_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_u16(a); #else return simde_vceqq_u16(a, simde_vdupq_n_u16(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_u16 #define vceqzq_u16(a) simde_vceqzq_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vceqzq_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_u32(a); #else return simde_vceqq_u32(a, simde_vdupq_n_u32(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_u32 #define vceqzq_u32(a) simde_vceqzq_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vceqzq_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzq_u64(a); #else return simde_vceqq_u64(a, simde_vdupq_n_u64(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzq_u64 #define vceqzq_u64(a) simde_vceqzq_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqzd_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint64_t, vceqzd_s64(a)); #else return simde_vceqd_s64(a, INT64_C(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzd_s64 #define vceqzd_s64(a) simde_vceqzd_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqzd_u64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzd_u64(a); #else return simde_vceqd_u64(a, UINT64_C(0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzd_u64 #define vceqzd_u64(a) simde_vceqzd_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vceqzs_f32(simde_float32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzs_f32(a); #else return simde_vceqs_f32(a, SIMDE_FLOAT32_C(0.0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzs_f32 #define vceqzs_f32(a) simde_vceqzs_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vceqzd_f64(simde_float64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vceqzd_f64(a); #else return simde_vceqd_f64(a, SIMDE_FLOAT64_C(0.0)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vceqzd_f64 #define vceqzd_f64(a) simde_vceqzd_f64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CEQZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ceqz.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgez.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CGEZ_H) #define SIMDE_ARM_NEON_CGEZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgezq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_f32(a, simde_vdupq_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_f32 #define vcgezq_f32(a) simde_vcgezq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgezq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_f64(a, simde_vdupq_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_f64 #define vcgezq_f64(a) simde_vcgezq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgezq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_s8(a, simde_vdupq_n_s8(0)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_uint8x16_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_s8 #define vcgezq_s8(a) simde_vcgezq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgezq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_s16(a, simde_vdupq_n_s16(0)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_uint16x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_s16 #define vcgezq_s16(a) simde_vcgezq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgezq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_s32(a, simde_vdupq_n_s32(0)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_s32 #define vcgezq_s32(a) simde_vcgezq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgezq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgezq_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgeq_s64(a, simde_vdupq_n_s64(0)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgezq_s64 #define vcgezq_s64(a) simde_vcgezq_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgez_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_f32(a, simde_vdup_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_f32 #define vcgez_f32(a) simde_vcgez_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgez_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_f64(a, simde_vdup_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_f64 #define vcgez_f64(a) simde_vcgez_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcgez_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_s8(a, simde_vdup_n_s8(0)); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_uint8x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_s8 #define vcgez_s8(a) simde_vcgez_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcgez_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_s16(a, simde_vdup_n_s16(0)); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_uint16x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_s16 #define vcgez_s16(a) simde_vcgez_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgez_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_s32(a, simde_vdup_n_s32(0)); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_s32 #define vcgez_s32(a) simde_vcgez_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgez_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgez_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcge_s64(a, simde_vdup_n_s64(0)); #else simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values >= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >= 0) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgez_s64 #define vcgez_s64(a) simde_vcgez_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CGEZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgez.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgtz.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CGTZ_H) #define SIMDE_ARM_NEON_CGTZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgtzq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_f32(a, simde_vdupq_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_f32 #define vcgtzq_f32(a) simde_vcgtzq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgtzq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_f64(a, simde_vdupq_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_f64 #define vcgtzq_f64(a) simde_vcgtzq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcgtzq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_s8(a, simde_vdupq_n_s8(0)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_uint8x16_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_s8 #define vcgtzq_s8(a) simde_vcgtzq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcgtzq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_s16(a, simde_vdupq_n_s16(0)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_uint16x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_s16 #define vcgtzq_s16(a) simde_vcgtzq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcgtzq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_s32(a, simde_vdupq_n_s32(0)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_s32 #define vcgtzq_s32(a) simde_vcgtzq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcgtzq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtzq_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgtq_s64(a, simde_vdupq_n_s64(0)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtzq_s64 #define vcgtzq_s64(a) simde_vcgtzq_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgtz_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_f32(a, simde_vdup_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_f32 #define vcgtz_f32(a) simde_vcgtz_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgtz_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_f64(a, simde_vdup_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_f64 #define vcgtz_f64(a) simde_vcgtz_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcgtz_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_s8(a, simde_vdup_n_s8(0)); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_uint8x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_s8 #define vcgtz_s8(a) simde_vcgtz_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcgtz_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_s16(a, simde_vdup_n_s16(0)); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_uint16x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_s16 #define vcgtz_s16(a) simde_vcgtz_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcgtz_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_s32(a, simde_vdup_n_s32(0)); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_s32 #define vcgtz_s32(a) simde_vcgtz_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcgtz_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcgtz_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcgt_s64(a, simde_vdup_n_s64(0)); #else simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values > 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > 0) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcgtz_s64 #define vcgtz_s64(a) simde_vcgtz_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CGTZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cgtz.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cle.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CLE_H) #define SIMDE_ARM_NEON_CLE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcleq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmple(a, b)); #else simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_cmple_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_f32 #define vcleq_f32(a, b) simde_vcleq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcleq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcleq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmple(a, b)); #else simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castpd_si128(_mm_cmple_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcleq_f64 #define vcleq_f64(a, b) simde_vcleq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcleq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmple(a, b)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); simde_uint8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi8(b_.m128i, a_.m128i), _mm_cmpeq_epi8(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_s8 #define vcleq_s8(a, b) simde_vcleq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcleq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmple(a, b)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); simde_uint16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi16(b_.m128i, a_.m128i), _mm_cmpeq_epi16(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_s16 #define vcleq_s16(a, b) simde_vcleq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcleq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmple(a, b)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi32(b_.m128i, a_.m128i), _mm_cmpeq_epi32(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_s32 #define vcleq_s32(a, b) simde_vcleq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcleq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcleq_s64(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s32(vmvnq_s32(vreinterpretq_s32_s64(vshrq_n_s64(vqsubq_s64(b, a), 63)))); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmple(a, b)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE4_2_NATIVE) r_.m128i = _mm_or_si128(_mm_cmpgt_epi64(b_.m128i, a_.m128i), _mm_cmpeq_epi64(a_.m128i, b_.m128i)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcleq_s64 #define vcleq_s64(a, b) simde_vcleq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcleq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmple(a, b)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi8(INT8_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi8(_mm_xor_si128(b_.m128i, sign_bits), _mm_xor_si128(a_.m128i, sign_bits)), _mm_cmpeq_epi8(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_u8 #define vcleq_u8(a, b) simde_vcleq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcleq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmple(a, b)); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi16(INT16_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi16(_mm_xor_si128(b_.m128i, sign_bits), _mm_xor_si128(a_.m128i, sign_bits)), _mm_cmpeq_epi16(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_u16 #define vcleq_u16(a, b) simde_vcleq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcleq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcleq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmple(a, b)); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi32(INT32_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi32(_mm_xor_si128(b_.m128i, sign_bits), _mm_xor_si128(a_.m128i, sign_bits)), _mm_cmpeq_epi32(a_.m128i, b_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_le(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcleq_u32 #define vcleq_u32(a, b) simde_vcleq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcleq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcleq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmple(a, b)); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE4_2_NATIVE) __m128i sign_bits = _mm_set1_epi64x(INT64_MIN); r_.m128i = _mm_or_si128(_mm_cmpgt_epi64(_mm_xor_si128(b_.m128i, sign_bits), _mm_xor_si128(a_.m128i, sign_bits)), _mm_cmpeq_epi64(a_.m128i, b_.m128i)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcleq_u64 #define vcleq_u64(a, b) simde_vcleq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcle_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_f32(a, b); #else simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_f32 #define vcle_f32(a, b) simde_vcle_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcle_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcle_f64(a, b); #else simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcle_f64 #define vcle_f64(a, b) simde_vcle_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcle_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); simde_uint8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi8(b_.m64, a_.m64), _mm_cmpeq_pi8(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_s8 #define vcle_s8(a, b) simde_vcle_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcle_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); simde_uint16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi16(b_.m64, a_.m64), _mm_cmpeq_pi16(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_s16 #define vcle_s16(a, b) simde_vcle_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcle_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(_mm_cmpgt_pi32(b_.m64, a_.m64), _mm_cmpeq_pi32(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_s32 #define vcle_s32(a, b) simde_vcle_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcle_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcle_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcle_s64 #define vcle_s64(a, b) simde_vcle_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcle_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi8(INT8_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi8(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)), _mm_cmpeq_pi8(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_u8 #define vcle_u8(a, b) simde_vcle_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcle_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi16(INT16_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi16(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)), _mm_cmpeq_pi16(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_u16 #define vcle_u16(a, b) simde_vcle_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcle_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcle_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi32(INT32_MIN); r_.m64 = _mm_or_si64(_mm_cmpgt_pi32(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)), _mm_cmpeq_pi32(a_.m64, b_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcle_u32 #define vcle_u32(a, b) simde_vcle_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcle_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcle_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcle_u64 #define vcle_u64(a, b) simde_vcle_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cle.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clez.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CLEZ_H) #define SIMDE_ARM_NEON_CLEZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vclezq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_f32(a, simde_vdupq_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_f32 #define vclezq_f32(a) simde_vclezq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vclezq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_f64(a, simde_vdupq_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_f64 #define vclezq_f64(a) simde_vclezq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vclezq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_s8(a, simde_vdupq_n_s8(0)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); simde_uint8x16_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_s8 #define vclezq_s8(a) simde_vclezq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vclezq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_s16(a, simde_vdupq_n_s16(0)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_uint16x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_s16 #define vclezq_s16(a) simde_vclezq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vclezq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_s32(a, simde_vdupq_n_s32(0)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_s32 #define vclezq_s32(a) simde_vclezq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vclezq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclezq_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcleq_s64(a, simde_vdupq_n_s64(0)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclezq_s64 #define vclezq_s64(a) simde_vclezq_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclez_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_f32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_f32(a, simde_vdup_n_f32(SIMDE_FLOAT32_C(0.0))); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= SIMDE_FLOAT32_C(0.0)) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_f32 #define vclez_f32(a) simde_vclez_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vclez_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_f64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_f64(a, simde_vdup_n_f64(SIMDE_FLOAT64_C(0.0))); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= SIMDE_FLOAT64_C(0.0)) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_f64 #define vclez_f64(a) simde_vclez_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vclez_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_s8(a, simde_vdup_n_s8(0)); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); simde_uint8x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_s8 #define vclez_s8(a) simde_vclez_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vclez_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_s16(a, simde_vdup_n_s16(0)); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); simde_uint16x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_s16 #define vclez_s16(a) simde_vclez_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclez_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_s32(a, simde_vdup_n_s32(0)); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_s32 #define vclez_s32(a) simde_vclez_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vclez_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclez_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vcle_s64(a, simde_vdup_n_s64(0)); #else simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values <= 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] <= 0) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclez_s64 #define vclez_s64(a) simde_vclez_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLEZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clez.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cls.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_CLS_H) #define SIMDE_ARM_NEON_CLS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clz.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_CLZ_H) #define SIMDE_ARM_NEON_CLZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_x_vclzb_u8(uint8_t a) { #if \ defined(SIMDE_BUILTIN_SUFFIX_8_) && \ ( \ SIMDE_BUILTIN_HAS_8_(clz) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) \ ) if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(r); return HEDLEY_STATIC_CAST(uint8_t, SIMDE_BUILTIN_8_(clz)(HEDLEY_STATIC_CAST(unsigned SIMDE_BUILTIN_TYPE_8_, a))); #else uint8_t r; uint8_t shift; if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(r); r = HEDLEY_STATIC_CAST(uint8_t, (a > UINT8_C(0x0F)) << 2); a >>= r; shift = HEDLEY_STATIC_CAST(uint8_t, (a > UINT8_C(0x03)) << 1); a >>= shift; r |= shift; r |= (a >> 1); return ((8 * sizeof(r)) - 1) - r; #endif } SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_x_vclzh_u16(uint16_t a) { #if \ defined(SIMDE_BUILTIN_SUFFIX_16_) && \ ( \ SIMDE_BUILTIN_HAS_16_(clz) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) \ ) if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(r); return HEDLEY_STATIC_CAST(uint16_t, SIMDE_BUILTIN_16_(clz)(HEDLEY_STATIC_CAST(unsigned SIMDE_BUILTIN_TYPE_16_, a))); #else uint16_t r; uint16_t shift; if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(r); r = HEDLEY_STATIC_CAST(uint16_t, (a > UINT16_C(0x00FF)) << 3); a >>= r; shift = HEDLEY_STATIC_CAST(uint16_t, (a > UINT16_C(0x000F)) << 2); a >>= shift; r |= shift; shift = HEDLEY_STATIC_CAST(uint16_t, (a > UINT16_C(0x0003)) << 1); a >>= shift; r |= shift; r |= (a >> 1); return ((8 * sizeof(r)) - 1) - r; #endif } SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_x_vclzs_u32(uint32_t a) { #if \ defined(SIMDE_BUILTIN_SUFFIX_32_) && \ ( \ SIMDE_BUILTIN_HAS_32_(clz) || \ HEDLEY_ARM_VERSION_CHECK(4,1,0) || \ HEDLEY_GCC_VERSION_CHECK(3,4,0) || \ HEDLEY_IBM_VERSION_CHECK(13,1,0) \ ) if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(a); return HEDLEY_STATIC_CAST(uint32_t, SIMDE_BUILTIN_32_(clz)(HEDLEY_STATIC_CAST(unsigned SIMDE_BUILTIN_TYPE_32_, a))); #else uint32_t r; uint32_t shift; if (HEDLEY_UNLIKELY(a == 0)) return 8 * sizeof(a); r = HEDLEY_STATIC_CAST(uint32_t, (a > UINT32_C(0xFFFF)) << 4); a >>= r; shift = HEDLEY_STATIC_CAST(uint32_t, (a > UINT32_C(0x00FF)) << 3); a >>= shift; r |= shift; shift = HEDLEY_STATIC_CAST(uint32_t, (a > UINT32_C(0x000F)) << 2); a >>= shift; r |= shift; shift = HEDLEY_STATIC_CAST(uint32_t, (a > UINT32_C(0x0003)) << 1); a >>= shift; r |= shift; r |= (a >> 1); return ((8 * sizeof(r)) - 1) - r; #endif } SIMDE_FUNCTION_ATTRIBUTES int8_t simde_x_vclzb_s8(int8_t a) { return HEDLEY_STATIC_CAST(int8_t, simde_x_vclzb_u8(HEDLEY_STATIC_CAST(uint8_t, a))); } SIMDE_FUNCTION_ATTRIBUTES int16_t simde_x_vclzh_s16(int16_t a) { return HEDLEY_STATIC_CAST(int16_t, simde_x_vclzh_u16(HEDLEY_STATIC_CAST(uint16_t, a))); } SIMDE_FUNCTION_ATTRIBUTES int32_t simde_x_vclzs_s32(int32_t a) { return HEDLEY_STATIC_CAST(int32_t, simde_x_vclzs_u32(HEDLEY_STATIC_CAST(uint32_t, a))); } SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vclz_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_s8(a); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzb_s8(a_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_s8 #define vclz_s8(a) simde_vclz_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vclz_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_s16(a); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzh_s16(a_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_s16 #define vclz_s16(a) simde_vclz_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vclz_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_s32(a); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzs_s32(a_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_s32 #define vclz_s32(a) simde_vclz_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vclz_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_u8(a); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzb_u8(a_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_u8 #define vclz_u8(a) simde_vclz_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vclz_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_u16(a); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzh_u16(a_.values[i]); } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_u16 #define vclz_u16(a) simde_vclz_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclz_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclz_u32(a); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzs_u32(a_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclz_u32 #define vclz_u32(a) simde_vclz_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vclzq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_s8(a); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), r_; #if defined(SIMDE_X86_GFNI_NATIVE) /* https://gist.github.com/animetosho/6cb732ccb5ecd86675ca0a442b3c0622 */ a_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set_epi32(HEDLEY_STATIC_CAST(int32_t, 0x80402010), HEDLEY_STATIC_CAST(int32_t, 0x08040201), HEDLEY_STATIC_CAST(int32_t, 0x80402010), HEDLEY_STATIC_CAST(int32_t, 0x08040201)), 0); a_.m128i = _mm_andnot_si128(_mm_add_epi8(a_.m128i, _mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, 0xff))), a_.m128i); r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set_epi32(HEDLEY_STATIC_CAST(int32_t, 0xaaccf0ff), 0, HEDLEY_STATIC_CAST(int32_t, 0xaaccf0ff), 0), 8); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzb_s8(a_.values[i]); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_s8 #define vclzq_s8(a) simde_vclzq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vclzq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_s16(a); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzh_s16(a_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_s16 #define vclzq_s16(a) simde_vclzq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vclzq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzs_s32(a_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_s32 #define vclzq_s32(a) simde_vclzq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vclzq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_u8(a); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a), r_; #if defined(SIMDE_X86_GFNI_NATIVE) a_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set_epi32(HEDLEY_STATIC_CAST(int32_t, 0x80402010), HEDLEY_STATIC_CAST(int32_t, 0x08040201), HEDLEY_STATIC_CAST(int32_t, 0x80402010), HEDLEY_STATIC_CAST(int32_t, 0x08040201)), 0); a_.m128i = _mm_andnot_si128(_mm_add_epi8(a_.m128i, _mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, 0xff))), a_.m128i); r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set_epi32(HEDLEY_STATIC_CAST(int32_t, 0xaaccf0ff), 0, HEDLEY_STATIC_CAST(int32_t, 0xaaccf0ff), 0), 8); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzb_u8(a_.values[i]); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_u8 #define vclzq_u8(a) simde_vclzq_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vclzq_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_u16(a); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzh_u16(a_.values[i]); } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_u16 #define vclzq_u16(a) simde_vclzq_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vclzq_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclzq_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a), r_; for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_vclzs_u32(a_.values[i]); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclzq_u32 #define vclzq_u32(a) simde_vclzq_u32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clz.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cltz.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ /* TODO: float fallbacks should use vclt(a, vdup_n(0.0)) */ #if !defined(SIMDE_ARM_NEON_CLTZ_H) #define SIMDE_ARM_NEON_CLTZ_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shr_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_SHR_N_H) #define SIMDE_ARM_NEON_SHR_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vshr_n_s8 (const simde_int8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); int32_t n_ = (n == 8) ? 7 : n; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n_; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, a_.values[i] >> n_); } #endif return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_s8(a, n) vshr_n_s8((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_s8(a, n) \ simde_int8x8_from_m64( \ _mm_or_si64(_mm_andnot_si64(_mm_set1_pi16(0x00FF), _mm_srai_pi16(simde_int8x8_to_m64(a), (n))), \ _mm_and_si64(_mm_set1_pi16(0x00FF), _mm_srai_pi16(_mm_slli_pi16(simde_int8x8_to_m64(a), 8), 8 + (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_s8 #define vshr_n_s8(a, n) simde_vshr_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vshr_n_s16 (const simde_int16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); int32_t n_ = (n == 16) ? 15 : n; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n_; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i] >> n_); } #endif return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_s16(a, n) vshr_n_s16((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_s16(a, n) simde_int16x4_from_m64(_mm_srai_pi16(simde_int16x4_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_s16 #define vshr_n_s16(a, n) simde_vshr_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vshr_n_s32 (const simde_int32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); int32_t n_ = (n == 32) ? 31 : n; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n_; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n_; } #endif return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_s32(a, n) vshr_n_s32((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_s32(a, n) simde_int32x2_from_m64(_mm_srai_pi32(simde_int32x2_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_s32 #define vshr_n_s32(a, n) simde_vshr_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vshr_n_s64 (const simde_int64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); int32_t n_ = (n == 64) ? 63 : n; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n_; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n_; } #endif return simde_int64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_s64(a, n) vshr_n_s64((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_s64 #define vshr_n_s64(a, n) simde_vshr_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vshr_n_u8 (const simde_uint8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); if (n == 8) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } return simde_uint8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_u8(a, n) vshr_n_u8((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_u8(a, n) \ simde_uint8x8_from_m64(_mm_and_si64(_mm_srli_si64(simde_uint8x8_to_m64(a), (n)), _mm_set1_pi8((1 << (8 - (n))) - 1))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_u8 #define vshr_n_u8(a, n) simde_vshr_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vshr_n_u16 (const simde_uint16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); if (n == 16) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_u16(a, n) vshr_n_u16((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_u16(a, n) simde_uint16x4_from_m64(_mm_srli_pi16(simde_uint16x4_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_u16 #define vshr_n_u16(a, n) simde_vshr_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vshr_n_u32 (const simde_uint32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); if (n == 32) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_u32(a, n) vshr_n_u32((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_u32(a, n) simde_uint32x2_from_m64(_mm_srli_pi32(simde_uint32x2_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_u32 #define vshr_n_u32(a, n) simde_vshr_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vshr_n_u64 (const simde_uint64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); if (n == 64) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } return simde_uint64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshr_n_u64(a, n) vshr_n_u64((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshr_n_u64(a, n) simde_uint64x1_from_m64(_mm_srli_si64(simde_uint64x1_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshr_n_u64 #define vshr_n_u64(a, n) simde_vshr_n_u64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vshrq_n_s8 (const simde_int8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_GFNI_NATIVE) /* https://wunkolo.github.io/post/2020/11/gf2p8affineqb-int8-shifting/ */ const int shift = (n_ <= 7) ? n : 7; const uint64_t matrix = (UINT64_C(0x8182848890A0C000) << (shift * 8)) ^ UINT64_C(0x8080808080808080); r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set1_epi64x(HEDLEY_STATIC_CAST(int64_t, matrix)), 0); #elif defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_blendv_epi8(_mm_srai_epi16(a_.m128i, n), _mm_srai_epi16(_mm_slli_epi16(a_.m128i, 8), 8 + (n)), _mm_set1_epi16(0x00FF)); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(_mm_andnot_si128(_mm_set1_epi16(0x00FF), _mm_srai_epi16(a_.m128i, n)), _mm_and_si128(_mm_set1_epi16(0x00FF), _mm_srai_epi16(_mm_slli_epi16(a_.m128i, 8), 8 + (n)))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shr(a_.v128, ((n) == 8) ? 7 : (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> ((n == 8) ? 7 : n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, a_.values[i] >> ((n == 8) ? 7 : n)); } #endif return simde_int8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_s8(a, n) vshrq_n_s8((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_s8(a, n) vec_sra((a), vec_splat_u8(((n) == 8) ? 7 : (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_s8 #define vshrq_n_s8(a, n) simde_vshrq_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vshrq_n_s16 (const simde_int16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_srai_epi16(a_.m128i, n); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shr(a_.v128, ((n) == 16) ? 15 : (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> ((n == 16) ? 15 : n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i] >> ((n == 16) ? 15 : n)); } #endif return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_s16(a, n) vshrq_n_s16((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_s16(a, n) vec_sra((a), vec_splat_u16(((n) == 16) ? 15 : (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_s16 #define vshrq_n_s16(a, n) simde_vshrq_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vshrq_n_s32 (const simde_int32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_srai_epi32(a_.m128i, n); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shr(a_.v128, ((n) == 32) ? 31 : (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> ((n == 32) ? 31 : n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> ((n == 32) ? 31 : n); } #endif return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_s32(a, n) vshrq_n_s32((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_s32(a, n) \ vec_sra((a), vec_splats(HEDLEY_STATIC_CAST(unsigned int, ((n) == 32) ? 31 : (n)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_s32 #define vshrq_n_s32(a, n) simde_vshrq_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vshrq_n_s64 (const simde_int64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shr(a_.v128, ((n) == 64) ? 63 : (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> ((n == 64) ? 63 : n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> ((n == 64) ? 63 : n); } #endif return simde_int64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_s64(a, n) vshrq_n_s64((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) #define simde_vshrq_n_s64(a, n) \ vec_sra((a), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, ((n) == 64) ? 63 : (n)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_s64 #define vshrq_n_s64(a, n) simde_vshrq_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vshrq_n_u8 (const simde_uint8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); #if defined(SIMDE_X86_GFNI_NATIVE) /* https://wunkolo.github.io/post/2020/11/gf2p8affineqb-int8-shifting/ */ r_.m128i = (n > 7) ? _mm_setzero_si128() : _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set1_epi64x(INT64_C(0x0102040810204080) << (n * 8)), 0); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_and_si128(_mm_srli_epi64(a_.m128i, (n)), _mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, (1 << (8 - (n))) - 1))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = (((n) == 8) ? wasm_i8x16_splat(0) : wasm_u8x16_shr(a_.v128, (n))); #else if (n == 8) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } #endif return simde_uint8x16_from_private(r_);\ } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_u8(a, n) vshrq_n_u8((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_u8(a, n) \ (((n) == 8) ? vec_splat_u8(0) : vec_sr((a), vec_splat_u8(n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_u8 #define vshrq_n_u8(a, n) simde_vshrq_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vshrq_n_u16 (const simde_uint16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_srli_epi16(a_.m128i, n); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = (((n) == 16) ? wasm_i16x8_splat(0) : wasm_u16x8_shr(a_.v128, (n))); #else if (n == 16) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } #endif return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_u16(a, n) vshrq_n_u16((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_u16(a, n) \ (((n) == 16) ? vec_splat_u16(0) : vec_sr((a), vec_splat_u16(n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_u16 #define vshrq_n_u16(a, n) simde_vshrq_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vshrq_n_u32 (const simde_uint32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_srli_epi32(a_.m128i, n); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = (((n) == 32) ? wasm_i32x4_splat(0) : wasm_u32x4_shr(a_.v128, (n))); #else if (n == 32) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } #endif return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_u32(a, n) vshrq_n_u32((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshrq_n_u32(a, n) \ (((n) == 32) ? vec_splat_u32(0) : vec_sr((a), vec_splats(HEDLEY_STATIC_CAST(unsigned int, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_u32 #define vshrq_n_u32(a, n) simde_vshrq_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vshrq_n_u64 (const simde_uint64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_srli_epi64(a_.m128i, n); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = (((n) == 64) ? wasm_i64x2_splat(0) : wasm_u64x2_shr(a_.v128, (n))); #else if (n == 64) { simde_memset(&r_, 0, sizeof(r_)); } else { #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values >> n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] >> n; } #endif } #endif return simde_uint64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrq_n_u64(a, n) vshrq_n_u64((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) #define simde_vshrq_n_u64(a, n) \ (((n) == 64) ? vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 0)) : vec_sr((a), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrq_n_u64 #define vshrq_n_u64(a, n) simde_vshrq_n_u64((a), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SHR_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shr_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcltz_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < SIMDE_FLOAT32_C(0.0)) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltz_f32 #define vcltz_f32(a) simde_vcltz_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcltz_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_f64(a); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < SIMDE_FLOAT64_C(0.0)) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcltz_f64 #define vcltz_f64(a) simde_vcltz_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcltz_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_s8(a); #else return simde_vreinterpret_u8_s8(simde_vshr_n_s8(a, 7)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltz_s8 #define vcltz_s8(a) simde_vcltz_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcltz_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_s16(a); #else return simde_vreinterpret_u16_s16(simde_vshr_n_s16(a, 15)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltz_s16 #define vcltz_s16(a) simde_vcltz_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcltz_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_s32(a); #else return simde_vreinterpret_u32_s32(simde_vshr_n_s32(a, 31)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltz_s32 #define vcltz_s32(a) simde_vcltz_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcltz_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltz_s64(a); #else return simde_vreinterpret_u64_s64(simde_vshr_n_s64(a, 63)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltz_s64 #define vcltz_s64(a) simde_vcltz_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcltzq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < SIMDE_FLOAT32_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < SIMDE_FLOAT32_C(0.0)) ? ~UINT32_C(0) : UINT32_C(0); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltzq_f32 #define vcltzq_f32(a) simde_vcltzq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcltzq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_f64(a); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < SIMDE_FLOAT64_C(0.0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < SIMDE_FLOAT64_C(0.0)) ? ~UINT64_C(0) : UINT64_C(0); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcltzq_f64 #define vcltzq_f64(a) simde_vcltzq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcltzq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_s8(a); #else return simde_vreinterpretq_u8_s8(simde_vshrq_n_s8(a, 7)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltzq_s8 #define vcltzq_s8(a) simde_vcltzq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcltzq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_s16(a); #else return simde_vreinterpretq_u16_s16(simde_vshrq_n_s16(a, 15)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltzq_s16 #define vcltzq_s16(a) simde_vcltzq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcltzq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_s32(a); #else return simde_vreinterpretq_u32_s32(simde_vshrq_n_s32(a, 31)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltzq_s32 #define vcltzq_s32(a) simde_vcltzq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcltzq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltzq_s64(a); #else return simde_vreinterpretq_u64_s64(simde_vshrq_n_s64(a, 63)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltzq_s64 #define vcltzq_s64(a) simde_vcltzq_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLTZ_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cltz.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mvn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_MVN_H) #define SIMDE_ARM_NEON_MVN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmvnq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi8(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_s8 #define vmvnq_s8(a) simde_vmvnq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmvnq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_s16(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi16(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_s16 #define vmvnq_s16(a) simde_vmvnq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmvnq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_s32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi32(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_s32 #define vmvnq_s32(a) simde_vmvnq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmvnq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_u8(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi8(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_u8 #define vmvnq_u8(a) simde_vmvnq_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmvnq_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_u16(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi16(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_u16 #define vmvnq_u16(a) simde_vmvnq_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmvnq_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvnq_u32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_nor(a, a); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, a_.m128i, a_.m128i, 0x55); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(a_.m128i, _mm_cmpeq_epi32(a_.m128i, a_.m128i)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_not(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvnq_u32 #define vmvnq_u32(a) simde_vmvnq_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmvn_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi8(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_s8 #define vmvn_s8(a) simde_vmvn_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmvn_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi16(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_s16 #define vmvn_s16(a) simde_vmvn_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmvn_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_s32(a); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi32(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_s32 #define vmvn_s32(a) simde_vmvn_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmvn_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_u8(a); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi8(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_u8 #define vmvn_u8(a) simde_vmvn_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmvn_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_u16(a); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi16(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_u16 #define vmvn_u16(a) simde_vmvn_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmvn_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmvn_u32(a); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_andnot_si64(a_.m64, _mm_cmpeq_pi32(a_.m64, a_.m64)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = ~a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ~(a_.values[i]); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmvn_u32 #define vmvn_u32(a) simde_vmvn_u32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MVN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mvn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vcls_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcls_s8(a); #else return simde_vsub_s8(simde_vclz_s8(simde_vbsl_s8(simde_vcltz_s8(a), simde_vmvn_s8(a), a)), simde_vdup_n_s8(INT8_C(1))); #endif } #define simde_vcls_u8(a) simde_vcls_s8(simde_vreinterpret_s8_u8(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcls_s8 #define vcls_s8(a) simde_vcls_s8(a) #undef vcls_u8 #define vcls_u8(a) simde_vcls_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vcls_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcls_s16(a); #else return simde_vsub_s16(simde_vclz_s16(simde_vbsl_s16(simde_vcltz_s16(a), simde_vmvn_s16(a), a)), simde_vdup_n_s16(INT16_C(1))); #endif } #define simde_vcls_u16(a) simde_vcls_s16(simde_vreinterpret_s16_u16(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcls_s16 #define vcls_s16(a) simde_vcls_s16(a) #undef vcls_u16 #define vcls_u16(a) simde_vcls_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vcls_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcls_s32(a); #else return simde_vsub_s32(simde_vclz_s32(simde_vbsl_s32(simde_vcltz_s32(a), simde_vmvn_s32(a), a)), simde_vdup_n_s32(INT32_C(1))); #endif } #define simde_vcls_u32(a) simde_vcls_s32(simde_vreinterpret_s32_u32(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcls_s32 #define vcls_s32(a) simde_vcls_s32(a) #undef vcls_u32 #define vcls_u32(a) simde_vcls_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vclsq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclsq_s8(a); #else return simde_vsubq_s8(simde_vclzq_s8(simde_vbslq_s8(simde_vcltzq_s8(a), simde_vmvnq_s8(a), a)), simde_vdupq_n_s8(INT8_C(1))); #endif } #define simde_vclsq_u8(a) simde_vclsq_s8(simde_vreinterpretq_s8_u8(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclsq_s8 #define vclsq_s8(a) simde_vclsq_s8(a) #undef vclsq_u8 #define vclsq_u8(a) simde_vclsq_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vclsq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclsq_s16(a); #else return simde_vsubq_s16(simde_vclzq_s16(simde_vbslq_s16(simde_vcltzq_s16(a), simde_vmvnq_s16(a), a)), simde_vdupq_n_s16(INT16_C(1))); #endif } #define simde_vclsq_u16(a) simde_vclsq_s16(simde_vreinterpretq_s16_u16(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclsq_s16 #define vclsq_s16(a) simde_vclsq_s16(a) #undef vclsq_u16 #define vclsq_u16(a) simde_vclsq_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vclsq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclsq_s32(a); #else return simde_vsubq_s32(simde_vclzq_s32(simde_vbslq_s32(simde_vcltzq_s32(a), simde_vmvnq_s32(a), a)), simde_vdupq_n_s32(INT32_C(1))); #endif } #define simde_vclsq_u32(a) simde_vclsq_s32(simde_vreinterpretq_s32_u32(a)) #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclsq_s32 #define vclsq_s32(a) simde_vclsq_s32(a) #undef vclsq_u32 #define vclsq_u32(a) simde_vclsq_u32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cls.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clt.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_CLT_H) #define SIMDE_ARM_NEON_CLT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcltq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmplt(a, b)); #else simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_cmplt_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_f32 #define vcltq_f32(a, b) simde_vcltq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcltq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmplt(a, b)); #else simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castpd_si128(_mm_cmplt_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcltq_f64 #define vcltq_f64(a, b) simde_vcltq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcltq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmplt(a, b)); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); simde_uint8x16_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmplt_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_s8 #define vcltq_s8(a, b) simde_vcltq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcltq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmplt(a, b)); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); simde_uint16x8_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmplt_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_s16 #define vcltq_s16(a, b) simde_vcltq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcltq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmplt(a, b)); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_cmplt_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_s32 #define vcltq_s32(a, b) simde_vcltq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcltq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltq_s64(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vreinterpretq_u64_s64(vshrq_n_s64(vqsubq_s64(a, b), 63)); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmplt(a, b)); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE4_2_NATIVE) r_.m128i = _mm_cmpgt_epi64(b_.m128i, a_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcltq_s64 #define vcltq_s64(a, b) simde_vcltq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcltq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_cmplt(a, b)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi8(INT8_MIN); r_.m128i = _mm_cmplt_epi8(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_u8 #define vcltq_u8(a, b) simde_vcltq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vcltq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_cmplt(a, b)); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi16(INT16_MIN); r_.m128i = _mm_cmplt_epi16(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_u16 #define vcltq_u16(a, b) simde_vcltq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcltq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcltq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_cmplt(a, b)); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128i sign_bits = _mm_set1_epi32(INT32_MIN); r_.m128i = _mm_cmplt_epi32(_mm_xor_si128(a_.m128i, sign_bits), _mm_xor_si128(b_.m128i, sign_bits)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_lt(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcltq_u32 #define vcltq_u32(a, b) simde_vcltq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcltq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcltq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_cmplt(a, b)); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE4_2_NATIVE) __m128i sign_bits = _mm_set1_epi64x(INT64_MIN); r_.m128i = _mm_cmpgt_epi64(_mm_xor_si128(b_.m128i, sign_bits), _mm_xor_si128(a_.m128i, sign_bits)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcltq_u64 #define vcltq_u64(a, b) simde_vcltq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclt_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_f32(a, b); #else simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_f32 #define vclt_f32(a, b) simde_vclt_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vclt_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclt_f64(a, b); #else simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclt_f64 #define vclt_f64(a, b) simde_vclt_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vclt_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); simde_uint8x8_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi8(b_.m64, a_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_s8 #define vclt_s8(a, b) simde_vclt_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vclt_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); simde_uint16x4_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi16(b_.m64, a_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_s16 #define vclt_s16(a, b) simde_vclt_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclt_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_cmpgt_pi32(b_.m64, a_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_s32 #define vclt_s32(a, b) simde_vclt_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vclt_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclt_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclt_s64 #define vclt_s64(a, b) simde_vclt_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vclt_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi8(INT8_MIN); r_.m64 = _mm_cmpgt_pi8(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_u8 #define vclt_u8(a, b) simde_vclt_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vclt_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi16(INT16_MIN); r_.m64 = _mm_cmpgt_pi16(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_u16 #define vclt_u16(a, b) simde_vclt_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vclt_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vclt_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) __m64 sign_bits = _mm_set1_pi32(INT32_MIN); r_.m64 = _mm_cmpgt_pi32(_mm_xor_si64(b_.m64, sign_bits), _mm_xor_si64(a_.m64, sign_bits)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vclt_u32 #define vclt_u32(a, b) simde_vclt_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vclt_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vclt_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), a_.values < b_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vclt_u64 #define vclt_u64(a, b) simde_vclt_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CLT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/clt.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_CMLA_H) #define SIMDE_ARM_NEON_CMLA_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcmla_f32(simde_float32x2_t r, simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmla_f32(r, a, b); #else simde_float32x2_private r_ = simde_float32x2_to_private(r), a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, a_.values, 0, 0); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] += b_.values[i] * a_.values[i & 2]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmla_f32 #define vcmla_f32(r, a, b) simde_vcmla_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcmlaq_f32(simde_float32x4_t r, simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_f32(r, a, b); #else simde_float32x4_private r_ = simde_float32x4_to_private(r), a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, a_.values, 0, 0, 2, 2); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] += b_.values[i] * a_.values[i & 2]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_f32 #define vcmlaq_f32(r, a, b) simde_vcmlaq_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcmlaq_f64(simde_float64x2_t r, simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_f64(r, a, b); #else simde_float64x2_private r_ = simde_float64x2_to_private(r), a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, a_.values, 0, 0); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] += b_.values[i] * a_.values[i & 2]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_f64 #define vcmlaq_f64(r, a, b) simde_vcmlaq_f64(r, a, b) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot90.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_CMLA_ROT90_H) #define SIMDE_ARM_NEON_CMLA_ROT90_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcmla_rot90_f32(simde_float32x2_t r, simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmla_rot90_f32(r, a, b); #else simde_float32x2_private r_ = simde_float32x2_to_private(r), a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, a_.values, 1, 1); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, -b_.values, b_.values, 1, 2); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i + 1]) * a_.values[2 * i + 1]; r_.values[2 * i + 1] += b_.values[2 * i] * a_.values[2 * i + 1]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmla_rot90_f32 #define vcmla_rot90_f32(r, a, b) simde_vcmla_rot90_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcmlaq_rot90_f32(simde_float32x4_t r, simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot90_f32(r, a, b); #else simde_float32x4_private r_ = simde_float32x4_to_private(r), a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, a_.values, 1, 1, 3, 3); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, -b_.values, b_.values, 1, 4, 3, 6); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i + 1]) * a_.values[2 * i + 1]; r_.values[2 * i + 1] += b_.values[2 * i] * a_.values[2 * i + 1]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot90_f32 #define vcmlaq_rot90_f32(r, a, b) simde_vcmlaq_rot90_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcmlaq_rot90_f64(simde_float64x2_t r, simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot90_f64(r, a, b); #else simde_float64x2_private r_ = simde_float64x2_to_private(r), a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, a_.values, 1, 1); b_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, -b_.values, b_.values, 1, 2); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i + 1]) * a_.values[2 * i + 1]; r_.values[2 * i + 1] += b_.values[2 * i] * a_.values[2 * i + 1]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot90_f64 #define vcmlaq_rot90_f64(r, a, b) simde_vcmlaq_rot90_f64(r, a, b) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_ROT90_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot90.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot180.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_CMLA_ROT180_H) #define SIMDE_ARM_NEON_CMLA_ROT180_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcmla_rot180_f32(simde_float32x2_t r, simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmla_rot180_f32(r, a, b); #else simde_float32x2_private r_ = simde_float32x2_to_private(r), a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, a_.values, 0, 0); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, -b_.values, -b_.values, 0, 1); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i]) * a_.values[2 * i]; r_.values[2 * i + 1] += -(b_.values[2 * i + 1]) * a_.values[2 * i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmla_rot180_f32 #define vcmla_rot180_f32(r, a, b) simde_vcmla_rot180_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcmlaq_rot180_f32(simde_float32x4_t r, simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot180_f32(r, a, b); #else simde_float32x4_private r_ = simde_float32x4_to_private(r), a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, a_.values, 0, 0, 2, 2); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, -b_.values, -b_.values, 0, 1, 2, 3); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i]) * a_.values[2 * i]; r_.values[2 * i + 1] += -(b_.values[2 * i + 1]) * a_.values[2 * i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot180_f32 #define vcmlaq_rot180_f32(r, a, b) simde_vcmlaq_rot180_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcmlaq_rot180_f64(simde_float64x2_t r, simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot180_f64(r, a, b); #else simde_float64x2_private r_ = simde_float64x2_to_private(r), a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, a_.values, 0, 0); b_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, -b_.values, -b_.values, 0, 1); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += -(b_.values[2 * i]) * a_.values[2 * i]; r_.values[2 * i + 1] += -(b_.values[2 * i + 1]) * a_.values[2 * i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot180_f64 #define vcmlaq_rot180_f64(r, a, b) simde_vcmlaq_rot180_f64(r, a, b) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_ROT180_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot180.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot270.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_CMLA_ROT270_H) #define SIMDE_ARM_NEON_CMLA_ROT270_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcmla_rot270_f32(simde_float32x2_t r, simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmla_rot270_f32(r, a, b); #else simde_float32x2_private r_ = simde_float32x2_to_private(r), a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, a_.values, 1, 1); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, -b_.values, b_.values, 3, 0); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += b_.values[2 * i + 1] * a_.values[2 * i + 1]; r_.values[2 * i + 1] += -(b_.values[2 * i]) * a_.values[2 * i + 1]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmla_rot270_f32 #define vcmla_rot270_f32(r, a, b) simde_vcmla_rot270_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcmlaq_rot270_f32(simde_float32x4_t r, simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot270_f32(r, a, b); #else simde_float32x4_private r_ = simde_float32x4_to_private(r), a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, a_.values, 1, 1, 3, 3); b_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, -b_.values, b_.values, 5, 0, 7, 2); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += b_.values[2 * i + 1] * a_.values[2 * i + 1]; r_.values[2 * i + 1] += -(b_.values[2 * i]) * a_.values[2 * i + 1]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot270_f32 #define vcmlaq_rot270_f32(r, a, b) simde_vcmlaq_rot270_f32(r, a, b) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcmlaq_rot270_f64(simde_float64x2_t r, simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && SIMDE_ARCH_ARM_CHECK(8,3) && \ (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(9,0,0)) && \ (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(12,0,0)) return vcmlaq_rot270_f64(r, a, b); #else simde_float64x2_private r_ = simde_float64x2_to_private(r), a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) a_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, a_.values, 1, 1); b_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, -b_.values, b_.values, 3, 0); r_.values += b_.values * a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / (2 * sizeof(r_.values[0]))) ; i++) { r_.values[2 * i] += b_.values[2 * i + 1] * a_.values[2 * i + 1]; r_.values[2 * i + 1] += -(b_.values[2 * i]) * a_.values[2 * i + 1]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) #undef vcmlaq_rot270_f64 #define vcmlaq_rot270_f64(r, a, b) simde_vcmlaq_rot270_f64(r, a, b) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_ROT270_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cmla_rot270.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cnt.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_CNT_H) #define SIMDE_ARM_NEON_CNT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_x_arm_neon_cntb(uint8_t v) { v = v - ((v >> 1) & (85)); v = (v & (51)) + ((v >> (2)) & (51)); v = (v + (v >> (4))) & (15); return HEDLEY_STATIC_CAST(uint8_t, v) >> (sizeof(uint8_t) - 1) * CHAR_BIT; } SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vcnt_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcnt_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, simde_x_arm_neon_cntb(HEDLEY_STATIC_CAST(uint8_t, a_.values[i]))); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcnt_s8 #define vcnt_s8(a) simde_vcnt_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcnt_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcnt_u8(a); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_x_arm_neon_cntb(a_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcnt_u8 #define vcnt_u8(a) simde_vcnt_u8((a)) #endif /* The x86 implementations are stolen from * https://github.com/WebAssembly/simd/pull/379. They could be cleaned * up a bit if someone is bored; they're mostly just direct * translations from the assembly. */ SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vcntq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcntq_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_popcnt(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), a))); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512BITALG_NATIVE) r_.m128i = _mm_popcnt_epi8(a_.m128i); #elif defined(SIMDE_X86_AVX2_NATIVE) __m128i tmp0 = _mm_set1_epi8(0x0f); __m128i tmp1 = _mm_andnot_si128(tmp0, a_.m128i); __m128i y = _mm_and_si128(tmp0, a_.m128i); tmp0 = _mm_set_epi8(4, 3, 3, 2, 3, 2, 2, 1, 3, 2, 2, 1, 2, 1, 1, 0); tmp1 = _mm_srli_epi16(tmp1, 4); y = _mm_shuffle_epi8(tmp0, y); tmp1 = _mm_shuffle_epi8(tmp0, tmp1); r_.m128i = _mm_add_epi8(y, tmp1); #elif defined(SIMDE_X86_SSSE3_NATIVE) __m128i tmp0 = _mm_set1_epi8(0x0f); __m128i tmp1 = a_.m128i; tmp1 = _mm_and_si128(tmp1, tmp0); tmp0 = _mm_andnot_si128(tmp0, a_.m128i); __m128i y = _mm_set_epi8(4, 3, 3, 2, 3, 2, 2, 1, 3, 2, 2, 1, 2, 1, 1, 0); tmp0 = _mm_srli_epi16(tmp0, 4); y = _mm_shuffle_epi8(y, tmp1); tmp1 = _mm_set_epi8(4, 3, 3, 2, 3, 2, 2, 1, 3, 2, 2, 1, 2, 1, 1, 0); tmp1 = _mm_shuffle_epi8(tmp1, tmp0); r_.m128i = _mm_add_epi8(y, tmp1); #elif defined(SIMDE_X86_SSE2_NATIVE) __m128i tmp = _mm_and_si128(_mm_srli_epi16(a_.m128i, 1), _mm_set1_epi8(0x55)); a_.m128i = _mm_sub_epi8(a_.m128i, tmp); tmp = a_.m128i; a_.m128i = _mm_and_si128(a_.m128i, _mm_set1_epi8(0x33)); tmp = _mm_and_si128(_mm_srli_epi16(tmp, 2), _mm_set1_epi8(0x33)); a_.m128i = _mm_add_epi8(a_.m128i, tmp); tmp = _mm_srli_epi16(a_.m128i, 4); a_.m128i = _mm_add_epi8(a_.m128i, tmp); r_.m128i = _mm_and_si128(a_.m128i, _mm_set1_epi8(0x0f)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, simde_x_arm_neon_cntb(HEDLEY_STATIC_CAST(uint8_t, a_.values[i]))); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcntq_s8 #define vcntq_s8(a) simde_vcntq_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vcntq_u8(simde_uint8x16_t a) { return simde_vreinterpretq_u8_s8(simde_vcntq_s8(simde_vreinterpretq_s8_u8(a))); } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcntq_u8 #define vcntq_u8(a) simde_vcntq_u8((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CNT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cnt.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cvt.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Sean Maher * 2020-2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_CVT_H) #define SIMDE_ARM_NEON_CVT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vcvts_s32_f32(simde_float32 a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvts_s32_f32(a); #else return HEDLEY_STATIC_CAST(int32_t, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvts_s32_f32 #define vcvts_s32_f32(a) simde_vcvts_s32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vcvts_u32_f32(simde_float32 a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvts_u32_f32(a); #else return HEDLEY_STATIC_CAST(uint32_t, (a < 0) ? 0 : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvts_u32_f32 #define vcvts_u32_f32(a) simde_vcvts_u32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32 simde_vcvts_f32_s32(int32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvts_f32_s32(a); #else return HEDLEY_STATIC_CAST(simde_float32, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvts_f32_s32 #define vcvts_f32_s32(a) simde_vcvts_f32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32 simde_vcvts_f32_u32 (uint32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvts_f32_u32(a); #else return HEDLEY_STATIC_CAST(simde_float32, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvts_f32_u32 #define vcvts_f32_u32(a) simde_vcvts_f32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vcvtd_s64_f64(simde_float64 a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvtd_s64_f64(a); #else return HEDLEY_STATIC_CAST(int64_t, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtd_s64_f64 #define vcvtd_s64_f64(a) simde_vcvtd_s64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vcvtd_u64_f64(simde_float64 a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtd_u64_f64(a); #else return HEDLEY_STATIC_CAST(uint64_t, (a < 0) ? 0 : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtd_u64_f64 #define vcvtd_u64_f64(a) simde_vcvtd_u64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64 simde_vcvtd_f64_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvtd_f64_s64(a); #else return HEDLEY_STATIC_CAST(simde_float64, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtd_f64_s64 #define vcvtd_f64_s64(a) simde_vcvtd_f64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64 simde_vcvtd_f64_u64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtd_f64_u64(a); #else return HEDLEY_STATIC_CAST(simde_float64, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtd_f64_u64 #define vcvtd_f64_u64(a) simde_vcvtd_f64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vcvt_s32_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcvt_s32_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_int32x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_s32_f32(a_.values[i]); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvt_s32_f32 #define vcvt_s32_f32(a) simde_vcvt_s32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcvt_u32_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvt_u32_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); simde_uint32x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SCALAR) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); r_.values &= HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values >= SIMDE_FLOAT32_C(0.0))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_u32_f32(a_.values[i]); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvt_u32_f32 #define vcvt_u32_f32(a) simde_vcvt_u32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vcvt_s64_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvt_s64_f64(a); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_int64x1_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_s64_f64(a_.values[i]); } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvt_s64_f64 #define vcvt_s64_f64(a) simde_vcvt_s64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcvt_u64_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvt_u64_f64(a); #else simde_float64x1_private a_ = simde_float64x1_to_private(a); simde_uint64x1_private r_; #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SCALAR) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); r_.values &= HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values >= SIMDE_FLOAT64_C(0.0))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_u64_f64(a_.values[i]); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvt_u64_f64 #define vcvt_u64_f64(a) simde_vcvt_u64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vcvtq_s32_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcvtq_s32_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_int32x4_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_s32_f32(a_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvtq_s32_f32 #define vcvtq_s32_f32(a) simde_vcvtq_s32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vcvtq_u32_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtq_u32_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); simde_uint32x4_private r_; #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SCALAR) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); r_.values &= HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values >= SIMDE_FLOAT32_C(0.0))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_u32_f32(a_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvtq_u32_f32 #define vcvtq_u32_f32(a) simde_vcvtq_u32_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vcvtq_s64_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvtq_s64_f64(a); #elif defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_signed(a); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_int64x2_private r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512DQ_NATIVE) r_.m128i = _mm_cvtpd_epi64(_mm_round_pd(a_.m128d, _MM_FROUND_TO_ZERO)); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_s64_f64(a_.values[i]); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtq_s64_f64 #define vcvtq_s64_f64(a) simde_vcvtq_s64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vcvtq_u64_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtq_u64_f64(a); #elif defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_ctul(a, 0); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); simde_uint64x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SCALAR) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); r_.values &= HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values >= SIMDE_FLOAT64_C(0.0))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_u64_f64(a_.values[i]); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtq_u64_f64 #define vcvtq_u64_f64(a) simde_vcvtq_u64_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcvt_f32_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcvt_f32_s32(a); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); simde_float32x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_f32_s32(a_.values[i]); } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvt_f32_s32 #define vcvt_f32_s32(a) simde_vcvt_f32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcvt_f32_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvt_f32_u32(a); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a); simde_float32x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_f32_u32(a_.values[i]); } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvt_f32_u32 #define vcvt_f32_u32(a) simde_vcvt_f32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vcvt_f64_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvt_f64_s64(a); #else simde_int64x1_private a_ = simde_int64x1_to_private(a); simde_float64x1_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_f64_s64(a_.values[i]); } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvt_f64_s64 #define vcvt_f64_s64(a) simde_vcvt_f64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vcvt_f64_u64(simde_uint64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvt_f64_u64(a); #else simde_uint64x1_private a_ = simde_uint64x1_to_private(a); simde_float64x1_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_f64_u64(a_.values[i]); } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvt_f64_u64 #define vcvt_f64_u64(a) simde_vcvt_f64_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcvtq_f32_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcvtq_f32_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_float32x4_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_f32_s32(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvtq_f32_s32 #define vcvtq_f32_s32(a) simde_vcvtq_f32_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vcvtq_f32_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtq_f32_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_float32x4_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvts_f32_u32(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcvtq_f32_u32 #define vcvtq_f32_u32(a) simde_vcvtq_f32_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcvtq_f64_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcvtq_f64_s64(a); #elif defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_ctd(a, 0); #else simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_float64x2_private r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512DQ_NATIVE) r_.m128d = _mm_cvtepi64_pd(a_.m128i); #elif defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_f64_s64(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtq_f64_s64 #define vcvtq_f64_s64(a) simde_vcvtq_f64_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vcvtq_f64_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_CLANG_46844) return vcvtq_f64_u64(a); #else simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_float64x2_private r_; #if defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, a_.values); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vcvtd_f64_u64(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vcvtq_f64_u64 #define vcvtq_f64_u64(a) simde_vcvtq_f64_u64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* SIMDE_ARM_NEON_CVT_H */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/cvt.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/create.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ /* N.B. CM: vcreate_f16 and vcreate_bf16 are omitted as * SIMDe has no 16-bit floating point support. * Idem for the poly types. */ #if !defined(SIMDE_ARM_NEON_CREATE_H) #define SIMDE_ARM_NEON_CREATE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vcreate_s8(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_s8(a); #else return simde_vreinterpret_s8_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_s8 #define vcreate_s8(a) simde_vcreate_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vcreate_s16(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_s16(a); #else return simde_vreinterpret_s16_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_s16 #define vcreate_s16(a) simde_vcreate_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vcreate_s32(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_s32(a); #else return simde_vreinterpret_s32_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_s32 #define vcreate_s32(a) simde_vcreate_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vcreate_s64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_s64(a); #else return simde_vreinterpret_s64_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_s64 #define vcreate_s64(a) simde_vcreate_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vcreate_u8(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_u8(a); #else return simde_vreinterpret_u8_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_u8 #define vcreate_u8(a) simde_vcreate_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vcreate_u16(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_u16(a); #else return simde_vreinterpret_u16_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_u16 #define vcreate_u16(a) simde_vcreate_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vcreate_u32(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_u32(a); #else return simde_vreinterpret_u32_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_u32 #define vcreate_u32(a) simde_vcreate_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vcreate_u64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_u64(a); #else return simde_vdup_n_u64(a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_u64 #define vcreate_u64(a) simde_vcreate_u64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vcreate_f32(uint64_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vcreate_f32(a); #else return simde_vreinterpret_f32_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_f32 #define vcreate_f32(a) simde_vcreate_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vcreate_f64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vcreate_f64(a); #else return simde_vreinterpret_f64_u64(simde_vdup_n_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vcreate_f64 #define vcreate_f64(a) simde_vcreate_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CREATE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/create.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dot.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_DOT_H) #define SIMDE_ARM_NEON_DOT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/paddl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_PADDL_H) #define SIMDE_ARM_NEON_PADDL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/padd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_PADD_H) #define SIMDE_ARM_NEON_PADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp1.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_UZP1_H) #define SIMDE_ARM_NEON_UZP1_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vuzp1_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_f32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) float32x2x2_t t = vuzp_f32(a, b); return t.val[0]; #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_f32 #define vuzp1_f32(a, b) simde_vuzp1_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vuzp1_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_s8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x8x2_t t = vuzp_s8(a, b); return t.val[0]; #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_s8 #define vuzp1_s8(a, b) simde_vuzp1_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vuzp1_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_s16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x4x2_t t = vuzp_s16(a, b); return t.val[0]; #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 0, 2, 4, 6); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_s16 #define vuzp1_s16(a, b) simde_vuzp1_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vuzp1_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_s32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x2x2_t t = vuzp_s32(a, b); return t.val[0]; #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_s32 #define vuzp1_s32(a, b) simde_vuzp1_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vuzp1_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_u8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint8x8x2_t t = vuzp_u8(a, b); return t.val[0]; #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_u8 #define vuzp1_u8(a, b) simde_vuzp1_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vuzp1_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_u16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint16x4x2_t t = vuzp_u16(a, b); return t.val[0]; #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 0, 2, 4, 6); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_u16 #define vuzp1_u16(a, b) simde_vuzp1_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vuzp1_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1_u32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint32x2x2_t t = vuzp_u32(a, b); return t.val[0]; #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1_u32 #define vuzp1_u32(a, b) simde_vuzp1_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vuzp1q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_f32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) float32x4x2_t t = vuzpq_f32(a, b); return t.val[0]; #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 2, 4, 6); #elif defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_shuffle_ps(a_.m128, b_.m128, 0x88); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 2, 4, 6); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_f32 #define vuzp1q_f32(a, b) simde_vuzp1q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vuzp1q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_f64(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_castps_pd(_mm_movelh_ps(_mm_castpd_ps(a_.m128d), _mm_castpd_ps(b_.m128d))); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_f64 #define vuzp1q_f64(a, b) simde_vuzp1q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vuzp1q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_s8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x16x2_t t = vuzpq_s8(a, b); return t.val[0]; #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 0, 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_s8 #define vuzp1q_s8(a, b) simde_vuzp1q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vuzp1q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_s16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x8x2_t t = vuzpq_s16(a, b); return t.val[0]; #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 0, 2, 4, 6, 8, 10, 12, 14); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_s16 #define vuzp1q_s16(a, b) simde_vuzp1q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vuzp1q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_s32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x4x2_t t = vuzpq_s32(a, b); return t.val[0]; #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 2, 4, 6); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_shuffle_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i), 0x88)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 2, 4, 6); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_s32 #define vuzp1q_s32(a, b) simde_vuzp1q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vuzp1q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_movelh_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i))); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_s64 #define vuzp1q_s64(a, b) simde_vuzp1q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vuzp1q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_u8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint8x16x2_t t = vuzpq_u8(a, b); return t.val[0]; #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 0, 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_u8 #define vuzp1q_u8(a, b) simde_vuzp1q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vuzp1q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_u16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint16x8x2_t t = vuzpq_u16(a, b); return t.val[0]; #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 0, 2, 4, 6, 8, 10, 12, 14); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 0, 2, 4, 6, 8, 10, 12, 14); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_u16 #define vuzp1q_u16(a, b) simde_vuzp1q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vuzp1q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_u32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint32x4x2_t t = vuzpq_u32(a, b); return t.val[0]; #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 2, 4, 6); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_shuffle_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i), 0x88)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 2, 4, 6); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_u32 #define vuzp1q_u32(a, b) simde_vuzp1q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vuzp1q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp1q_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) /* _mm_movelh_ps?!?! SSE is weird. */ r_.m128i = _mm_castps_si128(_mm_movelh_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i))); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx]; r_.values[i + halfway_point] = b_.values[idx]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp1q_u64 #define vuzp1q_u64(a, b) simde_vuzp1q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_UZP1_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp1.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp2.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_UZP2_H) #define SIMDE_ARM_NEON_UZP2_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vuzp2_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_f32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) float32x2x2_t t = vuzp_f32(a, b); return t.val[1]; #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_f32 #define vuzp2_f32(a, b) simde_vuzp2_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vuzp2_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_s8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x8x2_t t = vuzp_s8(a, b); return t.val[1]; #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_s8 #define vuzp2_s8(a, b) simde_vuzp2_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vuzp2_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_s16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x4x2_t t = vuzp_s16(a, b); return t.val[1]; #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 1, 3, 5, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_s16 #define vuzp2_s16(a, b) simde_vuzp2_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vuzp2_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_s32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x2x2_t t = vuzp_s32(a, b); return t.val[1]; #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_s32 #define vuzp2_s32(a, b) simde_vuzp2_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vuzp2_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_u8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint8x8x2_t t = vuzp_u8(a, b); return t.val[1]; #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_u8 #define vuzp2_u8(a, b) simde_vuzp2_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vuzp2_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_u16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint16x4x2_t t = vuzp_u16(a, b); return t.val[1]; #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 1, 3, 5, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_u16 #define vuzp2_u16(a, b) simde_vuzp2_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vuzp2_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2_u32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint32x2x2_t t = vuzp_u32(a, b); return t.val[1]; #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2_u32 #define vuzp2_u32(a, b) simde_vuzp2_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vuzp2q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_f32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) float32x4x2_t t = vuzpq_f32(a, b); return t.val[1]; #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 1, 3, 5, 7); #elif defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_shuffle_ps(a_.m128, b_.m128, 0xdd); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 1, 3, 5, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_f32 #define vuzp2q_f32(a, b) simde_vuzp2q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vuzp2q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_unpackhi_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_f64 #define vuzp2q_f64(a, b) simde_vuzp2q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vuzp2q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_s8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int8x16x2_t t = vuzpq_s8(a, b); return t.val[1]; #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_s8 #define vuzp2q_s8(a, b) simde_vuzp2q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vuzp2q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_s16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int16x8x2_t t = vuzpq_s16(a, b); return t.val[1]; #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 1, 3, 5, 7, 9, 11, 13, 15); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_s16 #define vuzp2q_s16(a, b) simde_vuzp2q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vuzp2q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_s32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) int32x4x2_t t = vuzpq_s32(a, b); return t.val[1]; #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 1, 3, 5, 7); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_shuffle_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i), 0xdd)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 1, 3, 5, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_s32 #define vuzp2q_s32(a, b) simde_vuzp2q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vuzp2q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_s64 #define vuzp2q_s64(a, b) simde_vuzp2q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vuzp2q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_u8(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint8x16x2_t t = vuzpq_u8(a, b); return t.val[1]; #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_u8 #define vuzp2q_u8(a, b) simde_vuzp2q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vuzp2q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_u16(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint16x8x2_t t = vuzpq_u16(a, b); return t.val[1]; #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 1, 3, 5, 7, 9, 11, 13, 15); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 1, 3, 5, 7, 9, 11, 13, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_u16 #define vuzp2q_u16(a, b) simde_vuzp2q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vuzp2q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_u32(a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) uint32x4x2_t t = vuzpq_u32(a, b); return t.val[1]; #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 1, 3, 5, 7); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_shuffle_ps(_mm_castsi128_ps(a_.m128i), _mm_castsi128_ps(b_.m128i), 0xdd)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 1, 3, 5, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_u32 #define vuzp2q_u32(a, b) simde_vuzp2q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vuzp2q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuzp2q_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[ i ] = a_.values[idx | 1]; r_.values[i + halfway_point] = b_.values[idx | 1]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuzp2q_u64 #define vuzp2q_u64(a, b) simde_vuzp2q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_UZP2_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp2.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vpadd_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !SIMDE_DETECT_CLANG_VERSION_NOT(9,0,0) return vpadd_f32(a, b); #else return simde_vadd_f32(simde_vuzp1_f32(a, b), simde_vuzp2_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_f32 #define vpadd_f32(a, b) simde_vpadd_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vpadd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_s8(a, b); #else return simde_vadd_s8(simde_vuzp1_s8(a, b), simde_vuzp2_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_s8 #define vpadd_s8(a, b) simde_vpadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vpadd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_s16(a, b); #elif defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) return simde_int16x4_from_m64(_mm_hadd_pi16(simde_int16x4_to_m64(a), simde_int16x4_to_m64(b))); #else return simde_vadd_s16(simde_vuzp1_s16(a, b), simde_vuzp2_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_s16 #define vpadd_s16(a, b) simde_vpadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vpadd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_s32(a, b); #elif defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) return simde_int32x2_from_m64(_mm_hadd_pi32(simde_int32x2_to_m64(a), simde_int32x2_to_m64(b))); #else return simde_vadd_s32(simde_vuzp1_s32(a, b), simde_vuzp2_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_s32 #define vpadd_s32(a, b) simde_vpadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vpadd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_u8(a, b); #else return simde_vadd_u8(simde_vuzp1_u8(a, b), simde_vuzp2_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_u8 #define vpadd_u8(a, b) simde_vpadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vpadd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_u16(a, b); #else return simde_vadd_u16(simde_vuzp1_u16(a, b), simde_vuzp2_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_u16 #define vpadd_u16(a, b) simde_vpadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vpadd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadd_u32(a, b); #else return simde_vadd_u32(simde_vuzp1_u32(a, b), simde_vuzp2_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadd_u32 #define vpadd_u32(a, b) simde_vpadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vpaddq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_f32(a, b); #elif defined(SIMDE_X86_SSE3_NATIVE) simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE3_NATIVE) r_.m128 = _mm_hadd_ps(a_.m128, b_.m128); #endif return simde_float32x4_from_private(r_); #else return simde_vaddq_f32(simde_vuzp1q_f32(a, b), simde_vuzp2q_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_f32 #define vpaddq_f32(a, b) simde_vpaddq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vpaddq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_f64(a, b); #elif defined(SIMDE_X86_SSE3_NATIVE) simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE3_NATIVE) r_.m128d = _mm_hadd_pd(a_.m128d, b_.m128d); #endif return simde_float64x2_from_private(r_); #else return simde_vaddq_f64(simde_vuzp1q_f64(a, b), simde_vuzp2q_f64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vpaddq_f64 #define vpaddq_f64(a, b) simde_vpaddq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vpaddq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_s8(a, b); #else return simde_vaddq_s8(simde_vuzp1q_s8(a, b), simde_vuzp2q_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_s8 #define vpaddq_s8(a, b) simde_vpaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vpaddq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_s16(a, b); #elif defined(SIMDE_X86_SSSE3_NATIVE) simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_hadd_epi16(a_.m128i, b_.m128i); #endif return simde_int16x8_from_private(r_); #else return simde_vaddq_s16(simde_vuzp1q_s16(a, b), simde_vuzp2q_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_s16 #define vpaddq_s16(a, b) simde_vpaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vpaddq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_s32(a, b); #elif defined(SIMDE_X86_SSSE3_NATIVE) simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_hadd_epi32(a_.m128i, b_.m128i); #endif return simde_int32x4_from_private(r_); #else return simde_vaddq_s32(simde_vuzp1q_s32(a, b), simde_vuzp2q_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_s32 #define vpaddq_s32(a, b) simde_vpaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vpaddq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_s64(a, b); #else return simde_vaddq_s64(simde_vuzp1q_s64(a, b), simde_vuzp2q_s64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_s64 #define vpaddq_s64(a, b) simde_vpaddq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vpaddq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_u8(a, b); #else return simde_vaddq_u8(simde_vuzp1q_u8(a, b), simde_vuzp2q_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_u8 #define vpaddq_u8(a, b) simde_vpaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vpaddq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_u16(a, b); #else return simde_vaddq_u16(simde_vuzp1q_u16(a, b), simde_vuzp2q_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_u16 #define vpaddq_u16(a, b) simde_vpaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vpaddq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_u32(a, b); #else return simde_vaddq_u32(simde_vuzp1q_u32(a, b), simde_vuzp2q_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_u32 #define vpaddq_u32(a, b) simde_vpaddq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vpaddq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpaddq_u64(a, b); #else return simde_vaddq_u64(simde_vuzp1q_u64(a, b), simde_vuzp2q_u64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddq_u64 #define vpaddq_u64(a, b) simde_vpaddq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_PADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/padd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shl_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_SHL_N_H) #define SIMDE_ARM_NEON_SHL_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vshl_n_s8 (const simde_int8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(int8_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, a_.values[i] << n); } #endif return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_s8(a, n) vshl_n_s8((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_s8(a, n) \ simde_int8x8_from_m64(_mm_andnot_si64(_mm_set1_pi8((1 << n) - 1), _mm_slli_si64(simde_int8x8_to_m64(a), (n)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_s8 #define vshl_n_s8(a, n) simde_vshl_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vshl_n_s16 (const simde_int16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(int16_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i] << n); } #endif return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_s16(a, n) vshl_n_s16((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_s16(a, n) simde_int16x4_from_m64(_mm_slli_pi16(simde_int16x4_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_s16 #define vshl_n_s16(a, n) simde_vshl_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vshl_n_s32 (const simde_int32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 31) { simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i] << n); } #endif return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_s32(a, n) vshl_n_s32((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_s32(a, n) simde_int32x2_from_m64(_mm_slli_pi32(simde_int32x2_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_s32 #define vshl_n_s32(a, n) simde_vshl_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vshl_n_s64 (const simde_int64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 63) { simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int64_t, a_.values[i] << n); } #endif return simde_int64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_s64(a, n) vshl_n_s64((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_s64(a, n) simde_int64x1_from_m64(_mm_slli_si64(simde_int64x1_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_s64 #define vshl_n_s64(a, n) simde_vshl_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vshl_n_u8 (const simde_uint8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(uint8_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, a_.values[i] << n); } #endif return simde_uint8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_u8(a, n) vshl_n_u8((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_u8(a, n) \ simde_uint8x8_from_m64(_mm_andnot_si64(_mm_set1_pi8((1 << n) - 1), _mm_slli_si64(simde_uint8x8_to_m64(a), (n)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_u8 #define vshl_n_u8(a, n) simde_vshl_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vshl_n_u16 (const simde_uint16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(uint16_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, a_.values[i] << n); } #endif return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_u16(a, n) vshl_n_u16((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_u16(a, n) simde_uint16x4_from_m64(_mm_slli_pi16(simde_uint16x4_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_u16 #define vshl_n_u16(a, n) simde_vshl_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vshl_n_u32 (const simde_uint32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 31) { simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i] << n); } #endif return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_u32(a, n) vshl_n_u32((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_u32(a, n) simde_uint32x2_from_m64(_mm_slli_pi32(simde_uint32x2_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_u32 #define vshl_n_u32(a, n) simde_vshl_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vshl_n_u64 (const simde_uint64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 63) { simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint64_t, a_.values[i] << n); } #endif return simde_uint64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshl_n_u64(a, n) vshl_n_u64((a), (n)) #elif defined(SIMDE_X86_MMX_NATIVE) #define simde_vshl_n_u64(a, n) simde_uint64x1_from_m64(_mm_slli_si64(simde_uint64x1_to_m64(a), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_n_u64 #define vshl_n_u64(a, n) simde_vshl_n_u64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vshlq_n_s8 (const simde_int8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_GFNI_NATIVE) /* https://wunkolo.github.io/post/2020/11/gf2p8affineqb-int8-shifting/ */ r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set1_epi64x(INT64_C(0x0102040810204080) >> (n * 8)), 0); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(_mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, (1 << n) - 1)), _mm_slli_epi64(a_.m128i, n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shl(a_.v128, n); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(int8_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, a_.values[i] << n); } #endif return simde_int8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_s8(a, n) vshlq_n_s8((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_s8(a, n) (vec_sl((a), vec_splats(SIMDE_CHECKED_STATIC_CAST(unsigned char, int, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_s8 #define vshlq_n_s8(a, n) simde_vshlq_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vshlq_n_s16 (const simde_int16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi16(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(int16_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i] << n); } #endif return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_s16(a, n) vshlq_n_s16((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_s16(a, n) (vec_sl((a), vec_splats(SIMDE_CHECKED_STATIC_CAST(unsigned short, int, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_s16 #define vshlq_n_s16(a, n) simde_vshlq_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vshlq_n_s32 (const simde_int32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 31) { simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi32(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i] << n); } #endif return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_s32(a, n) vshlq_n_s32((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_s32(a, n) (vec_sl((a), vec_splats(HEDLEY_STATIC_CAST(unsigned int, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_s32 #define vshlq_n_s32(a, n) simde_vshlq_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vshlq_n_s64 (const simde_int64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 63) { simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi64(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int64_t, a_.values[i] << n); } #endif return simde_int64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_s64(a, n) vshlq_n_s64((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) #define simde_vshlq_n_s64(a, n) (vec_sl((a), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_s64 #define vshlq_n_s64(a, n) simde_vshlq_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vshlq_n_u8 (const simde_uint8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); #if defined(SIMDE_X86_GFNI_NATIVE) /* https://wunkolo.github.io/post/2020/11/gf2p8affineqb-int8-shifting/ */ r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set1_epi64x(INT64_C(0x0102040810204080) >> (n * 8)), 0); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_andnot_si128(_mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, (1 << n) - 1)), _mm_slli_epi64(a_.m128i, (n))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(uint8_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, a_.values[i] << n); } #endif return simde_uint8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_u8(a, n) vshlq_n_u8((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_u8(a, n) (vec_sl((a), vec_splat_u8(n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_u8 #define vshlq_n_u8(a, n) simde_vshlq_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vshlq_n_u16 (const simde_uint16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi16(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << HEDLEY_STATIC_CAST(uint16_t, n); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, a_.values[i] << n); } #endif return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_u16(a, n) vshlq_n_u16((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_u16(a, n) (vec_sl((a), vec_splat_u16(n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_u16 #define vshlq_n_u16(a, n) simde_vshlq_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vshlq_n_u32 (const simde_uint32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 31) { simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi32(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i] << n); } #endif return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_u32(a, n) vshlq_n_u32((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) #define simde_vshlq_n_u32(a, n) (vec_sl((a), vec_splats(HEDLEY_STATIC_CAST(unsigned int, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_u32 #define vshlq_n_u32(a, n) simde_vshlq_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vshlq_n_u64 (const simde_uint64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 63) { simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_slli_epi64(a_.m128i, (n)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shl(a_.v128, (n)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = a_.values << n; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint64_t, a_.values[i] << n); } #endif return simde_uint64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshlq_n_u64(a, n) vshlq_n_u64((a), (n)) #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) #define simde_vshlq_n_u64(a, n) (vec_sl((a), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, (n))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_n_u64 #define vshlq_n_u64(a, n) simde_vshlq_n_u64((a), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SHL_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shl_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vpaddl_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_s8(a); #else simde_int16x8_t tmp = simde_vmovl_s8(a); return simde_vpadd_s16(simde_vget_low_s16(tmp), simde_vget_high_s16(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_s8 #define vpaddl_s8(a) simde_vpaddl_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vpaddl_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_s16(a); #else simde_int32x4_t tmp = simde_vmovl_s16(a); return simde_vpadd_s32(simde_vget_low_s32(tmp), simde_vget_high_s32(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_s16 #define vpaddl_s16(a) simde_vpaddl_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vpaddl_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_s32(a); #else simde_int64x2_t tmp = simde_vmovl_s32(a); return simde_vadd_s64(simde_vget_low_s64(tmp), simde_vget_high_s64(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_s32 #define vpaddl_s32(a) simde_vpaddl_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vpaddl_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_u8(a); #else simde_uint16x8_t tmp = simde_vmovl_u8(a); return simde_vpadd_u16(simde_vget_low_u16(tmp), simde_vget_high_u16(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_u8 #define vpaddl_u8(a) simde_vpaddl_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vpaddl_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_u16(a); #else simde_uint32x4_t tmp = simde_vmovl_u16(a); return simde_vpadd_u32(simde_vget_low_u32(tmp), simde_vget_high_u32(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_u16 #define vpaddl_u16(a) simde_vpaddl_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vpaddl_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddl_u32(a); #else simde_uint64x2_t tmp = simde_vmovl_u32(a); return simde_vadd_u64(simde_vget_low_u64(tmp), simde_vget_high_u64(tmp)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddl_u32 #define vpaddl_u32(a) simde_vpaddl_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vpaddlq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_s8(a); #else simde_int16x8_t lo = simde_vshrq_n_s16(simde_vshlq_n_s16(simde_vreinterpretq_s16_s8(a), 8), 8); simde_int16x8_t hi = simde_vshrq_n_s16(simde_vreinterpretq_s16_s8(a), 8); return simde_vaddq_s16(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_s8 #define vpaddlq_s8(a) simde_vpaddlq_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vpaddlq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_s16(a); #else simde_int32x4_t lo = simde_vshrq_n_s32(simde_vshlq_n_s32(simde_vreinterpretq_s32_s16(a), 16), 16); simde_int32x4_t hi = simde_vshrq_n_s32(simde_vreinterpretq_s32_s16(a), 16); return simde_vaddq_s32(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_s16 #define vpaddlq_s16(a) simde_vpaddlq_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vpaddlq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_s32(a); #elif defined(SIMDE_X86_SSE4_1_NATIVE) simde_int64x2_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) __m128i lo = _mm_cvtepi32_epi64(_mm_shuffle_epi32(a_.m128i, 0xe8)); __m128i hi = _mm_cvtepi32_epi64(_mm_shuffle_epi32(a_.m128i, 0xed)); r_.m128i = _mm_add_epi64(lo, hi); #endif return simde_int64x2_from_private(r_); #else simde_int64x2_t lo = simde_vshrq_n_s64(simde_vshlq_n_s64(simde_vreinterpretq_s64_s32(a), 32), 32); simde_int64x2_t hi = simde_vshrq_n_s64(simde_vreinterpretq_s64_s32(a), 32); return simde_vaddq_s64(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_s32 #define vpaddlq_s32(a) simde_vpaddlq_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vpaddlq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_u8(a); #else simde_uint16x8_t lo = simde_vshrq_n_u16(simde_vshlq_n_u16(simde_vreinterpretq_u16_u8(a), 8), 8); simde_uint16x8_t hi = simde_vshrq_n_u16(simde_vreinterpretq_u16_u8(a), 8); return simde_vaddq_u16(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_u8 #define vpaddlq_u8(a) simde_vpaddlq_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vpaddlq_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_u16(a); #else simde_uint32x4_t lo = simde_vshrq_n_u32(simde_vshlq_n_u32(simde_vreinterpretq_u32_u16(a), 16), 16); simde_uint32x4_t hi = simde_vshrq_n_u32(simde_vreinterpretq_u32_u16(a), 16); return simde_vaddq_u32(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_u16 #define vpaddlq_u16(a) simde_vpaddlq_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vpaddlq_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpaddlq_u32(a); #else simde_uint64x2_t lo = simde_vshrq_n_u64(simde_vshlq_n_u64(simde_vreinterpretq_u64_u32(a), 32), 32); simde_uint64x2_t hi = simde_vshrq_n_u64(simde_vreinterpretq_u64_u32(a), 32); return simde_vaddq_u64(lo, hi); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpaddlq_u32 #define vpaddlq_u32(a) simde_vpaddlq_u32((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* SIMDE_ARM_NEON_PADDL_H */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/paddl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MULL_H) #define SIMDE_ARM_NEON_MULL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MUL_H) #define SIMDE_ARM_NEON_MUL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmul_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_f32 #define vmul_f32(a, b) simde_vmul_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmul_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmul_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmul_f64 #define vmul_f64(a, b) simde_vmul_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmul_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_s8 #define vmul_s8(a, b) simde_vmul_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmul_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _m_pmullw(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_s16 #define vmul_s16(a, b) simde_vmul_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmul_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_s32 #define vmul_s32(a, b) simde_vmul_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_x_vmul_s64(simde_int64x1_t a, simde_int64x1_t b) { simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int64x1_from_private(r_); } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmul_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_u8 #define vmul_u8(a, b) simde_vmul_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmul_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_u16 #define vmul_u16(a, b) simde_vmul_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmul_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_u32 #define vmul_u32(a, b) simde_vmul_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_x_vmul_u64(simde_uint64x1_t a, simde_uint64x1_t b) { simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint64x1_from_private(r_); } SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmulq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_f32(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_mul_ps(a_.m128, b_.m128); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_f32 #define vmulq_f32(a, b) simde_vmulq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmulq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmulq_f64(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_mul_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_f64 #define vmulq_f64(a, b) simde_vmulq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmulq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_s8 #define vmulq_s8(a, b) simde_vmulq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmulq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_mullo_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_s16 #define vmulq_s16(a, b) simde_vmulq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmulq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_s32 #define vmulq_s32(a, b) simde_vmulq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_x_vmulq_s64(simde_int64x2_t a, simde_int64x2_t b) { simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_int64x2_from_private(r_); } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmulq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_u8 #define vmulq_u8(a, b) simde_vmulq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmulq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_u16 #define vmulq_u16(a, b) simde_vmulq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmulq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_u32 #define vmulq_u32(a, b) simde_vmulq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_x_vmulq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_mul(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values * b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[i]; } #endif return simde_uint64x2_from_private(r_); } SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MUL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmull_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_s16(simde_vmovl_s8(a), simde_vmovl_s8(b)); #else simde_int16x8_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, a_.values[i]) * HEDLEY_STATIC_CAST(int16_t, b_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_s8 #define vmull_s8(a, b) simde_vmull_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmull_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_s32(simde_vmovl_s16(a), simde_vmovl_s16(b)); #else simde_int32x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i]) * HEDLEY_STATIC_CAST(int32_t, b_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_s16 #define vmull_s16(a, b) simde_vmull_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmull_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_s32(a, b); #else simde_int64x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int64_t, a_.values[i]) * HEDLEY_STATIC_CAST(int64_t, b_.values[i]); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_s32 #define vmull_s32(a, b) simde_vmull_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmull_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_u16(simde_vmovl_u8(a), simde_vmovl_u8(b)); #else simde_uint16x8_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, a_.values[i]) * HEDLEY_STATIC_CAST(uint16_t, b_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_u8 #define vmull_u8(a, b) simde_vmull_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmull_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_u32(simde_vmovl_u16(a), simde_vmovl_u16(b)); #else simde_uint32x4_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i]) * HEDLEY_STATIC_CAST(uint32_t, b_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_u16 #define vmull_u16(a, b) simde_vmull_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmull_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_u32(a, b); #else simde_uint64x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) __typeof__(r_.values) av, bv; SIMDE_CONVERT_VECTOR_(av, a_.values); SIMDE_CONVERT_VECTOR_(bv, b_.values); r_.values = av * bv; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint64_t, a_.values[i]) * HEDLEY_STATIC_CAST(uint64_t, b_.values[i]); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_u32 #define vmull_u32(a, b) simde_vmull_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MULL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vdot_s32(simde_int32x2_t r, simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOTPROD) return vdot_s32(r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return simde_vadd_s32(r, simde_vmovn_s64(simde_vpaddlq_s32(simde_vpaddlq_s16(simde_vmull_s8(a, b))))); #else simde_int32x2_private r_; simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); for (int i = 0 ; i < 2 ; i++) { int32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (i << 2); acc += HEDLEY_STATIC_CAST(int32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(int32_t, b_.values[idx]); } r_.values[i] = acc; } return simde_vadd_s32(r, simde_int32x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_s32 #define vdot_s32(r, a, b) simde_vdot_s32((r), (a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vdot_u32(simde_uint32x2_t r, simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOTPROD) return vdot_u32(r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return simde_vadd_u32(r, simde_vmovn_u64(simde_vpaddlq_u32(simde_vpaddlq_u16(simde_vmull_u8(a, b))))); #else simde_uint32x2_private r_; simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); for (int i = 0 ; i < 2 ; i++) { uint32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (i << 2); acc += HEDLEY_STATIC_CAST(uint32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(uint32_t, b_.values[idx]); } r_.values[i] = acc; } return simde_vadd_u32(r, simde_uint32x2_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_u32 #define vdot_u32(r, a, b) simde_vdot_u32((r), (a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vdotq_s32(simde_int32x4_t r, simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOTPROD) return vdotq_s32(r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return simde_vaddq_s32(r, simde_vcombine_s32(simde_vmovn_s64(simde_vpaddlq_s32(simde_vpaddlq_s16(simde_vmull_s8(simde_vget_low_s8(a), simde_vget_low_s8(b))))), simde_vmovn_s64(simde_vpaddlq_s32(simde_vpaddlq_s16(simde_vmull_s8(simde_vget_high_s8(a), simde_vget_high_s8(b))))))); #else simde_int32x4_private r_; simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); for (int i = 0 ; i < 4 ; i++) { int32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (i << 2); acc += HEDLEY_STATIC_CAST(int32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(int32_t, b_.values[idx]); } r_.values[i] = acc; } return simde_vaddq_s32(r, simde_int32x4_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdotq_s32 #define vdotq_s32(r, a, b) simde_vdotq_s32((r), (a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vdotq_u32(simde_uint32x4_t r, simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOTPROD) return vdotq_u32(r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) return simde_vaddq_u32(r, simde_vcombine_u32(simde_vmovn_u64(simde_vpaddlq_u32(simde_vpaddlq_u16(simde_vmull_u8(simde_vget_low_u8(a), simde_vget_low_u8(b))))), simde_vmovn_u64(simde_vpaddlq_u32(simde_vpaddlq_u16(simde_vmull_u8(simde_vget_high_u8(a), simde_vget_high_u8(b))))))); #else simde_uint32x4_private r_; simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); for (int i = 0 ; i < 4 ; i++) { uint32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (i << 2); acc += HEDLEY_STATIC_CAST(uint32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(uint32_t, b_.values[idx]); } r_.values[i] = acc; } return simde_vaddq_u32(r, simde_uint32x4_from_private(r_)); #endif } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdotq_u32 #define vdotq_u32(r, a, b) simde_vdotq_u32((r), (a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_DOT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dot.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dot_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_DOT_LANE_H) #define SIMDE_ARM_NEON_DOT_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vdot_lane_s32(simde_int32x2_t r, simde_int8x8_t a, simde_int8x8_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int32x2_t result; #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOT_PROD) SIMDE_CONSTIFY_2_(vdot_lane_s32, result, (HEDLEY_UNCREACHABLE(), result), lane, r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x2_t mask; SIMDE_CONSTIFY_2_(vset_lane_u32, mask, (HEDLEY_UNREACHABLE(), mask), lane, UINT32_MAX, vdup_n_u32(0)); result = vbsl_s32(mask, vadd_s32(r, vmovn_s64(vpaddlq_s32(vpaddlq_s16(vmull_s8(a, b))))), r); #else simde_int32x2_private r_ = simde_int32x2_to_private(simde_vdup_n_s32(0)); simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); int32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (lane << 2); acc += HEDLEY_STATIC_CAST(int32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(int32_t, b_.values[idx]); } r_.values[lane] = acc; result = simde_vadd_s32(r, simde_int32x2_from_private(r_)); #endif return result; } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_lane_s32 #define vdot_lane_s32(r, a, b, lane) simde_vdot_lane_s32((r), (a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vdot_lane_u32(simde_uint32x2_t r, simde_uint8x8_t a, simde_uint8x8_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint32x2_t result; #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOT_PROD) SIMDE_CONSTIFY_2_(vdot_lane_u32, result, (HEDLEY_UNCREACHABLE(), result), lane, r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x2_t mask; SIMDE_CONSTIFY_2_(vset_lane_u32, mask, (HEDLEY_UNREACHABLE(), mask), lane, UINT32_MAX, vdup_n_u32(0)); result = vbsl_u32(mask, vadd_u32(r, vmovn_u64(vpaddlq_u32(vpaddlq_u16(vmull_u8(a, b))))), r); #else simde_uint32x2_private r_ = simde_uint32x2_to_private(simde_vdup_n_u32(0)); simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); uint32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (lane << 2); acc += HEDLEY_STATIC_CAST(uint32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(uint32_t, b_.values[idx]); } r_.values[lane] = acc; result = simde_vadd_u32(r, simde_uint32x2_from_private(r_)); #endif return result; } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_lane_u32 #define vdot_lane_u32(r, a, b, lane) simde_vdot_lane_u32((r), (a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vdot_laneq_s32(simde_int32x4_t r, simde_int8x16_t a, simde_int8x16_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int32x4_t result; #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOT_PROD) SIMDE_CONSTIFY_4_(vdot_laneq_s32, result, (HEDLEY_UNCREACHABLE(), result), lane, r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x4_t mask; SIMDE_CONSTIFY_4_(vsetq_lane_u32, mask, (HEDLEY_UNREACHABLE(), mask), lane, UINT32_MAX, vdupq_n_u32(0)); result = vbslq_s32(mask, vaddq_s32(r, vcombine_s32(vmovn_s64(vpaddlq_s32(vpaddlq_s16(vmull_s8(vget_low_s8(a), vget_low_s8(b))))), vmovn_s64(vpaddlq_s32(vpaddlq_s16(vmull_s8(vget_high_s8(a), vget_high_s8(b))))))), r); #else simde_int32x4_private r_ = simde_int32x4_to_private(simde_vdupq_n_s32(0)); simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); int32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (lane << 2); acc += HEDLEY_STATIC_CAST(int32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(int32_t, b_.values[idx]); } r_.values[lane] = acc; result = simde_vaddq_s32(r, simde_int32x4_from_private(r_)); #endif return result; } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_laneq_s32 #define vdot_laneq_s32(r, a, b, lane) simde_vdot_laneq_s32((r), (a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vdot_laneq_u32(simde_uint32x4_t r, simde_uint8x16_t a, simde_uint8x16_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint32x4_t result; #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && defined(__ARM_FEATURE_DOT_PROD) SIMDE_CONSTIFY_4_(vdot_laneq_u32, result, (HEDLEY_UNCREACHABLE(), result), lane, r, a, b); #elif defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x4_t mask; SIMDE_CONSTIFY_4_(vsetq_lane_u32, mask, (HEDLEY_UNREACHABLE(), mask), lane, UINT32_MAX, vdupq_n_u32(0)); result = vbslq_u32(mask, vaddq_u32(r, vcombine_u32(vmovn_u64(vpaddlq_u32(vpaddlq_u16(vmull_u8(vget_low_u8(a), vget_low_u8(b))))), vmovn_u64(vpaddlq_u32(vpaddlq_u16(vmull_u8(vget_high_u8(a), vget_high_u8(b))))))), r); #else simde_uint32x4_private r_ = simde_uint32x4_to_private(simde_vdupq_n_u32(0)); simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); uint32_t acc = 0; SIMDE_VECTORIZE_REDUCTION(+:acc) for (int j = 0 ; j < 4 ; j++) { const int idx = j + (lane << 2); acc += HEDLEY_STATIC_CAST(uint32_t, a_.values[idx]) * HEDLEY_STATIC_CAST(uint32_t, b_.values[idx]); } r_.values[lane] = acc; result = simde_vaddq_u32(r, simde_uint32x4_from_private(r_)); #endif return result; } #if defined(SIMDE_ARM_NEON_A32V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_DOTPROD)) #undef vdot_laneq_u32 #define vdot_laneq_u32(r, a, b, lane) simde_vdot_laneq_u32((r), (a), (b), (lane)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_DOT_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dot_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dup_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_DUP_LANE_H) #define SIMDE_ARM_NEON_DUP_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vdup_lane_f32(simde_float32x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32x2_private vec_ = simde_float32x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_f32(vec, lane) vdup_lane_f32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_f32 #define vdup_lane_f32(vec, lane) simde_vdup_lane_f32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vdup_lane_f64(simde_float64x1_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { (void) lane; return vec; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_lane_f64 #define vdup_lane_f64(vec, lane) simde_vdup_lane_f64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vdup_lane_s8(simde_int8x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int8x8_private vec_ = simde_int8x8_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_s8(vec, lane) vdup_lane_s8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_s8 #define vdup_lane_s8(vec, lane) simde_vdup_lane_s8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vdup_lane_s16(simde_int16x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int16x4_private vec_ = simde_int16x4_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_s16(vec, lane) vdup_lane_s16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_s16 #define vdup_lane_s16(vec, lane) simde_vdup_lane_s16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vdup_lane_s32(simde_int32x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int32x2_private vec_ = simde_int32x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_s32(vec, lane) vdup_lane_s32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_s32 #define vdup_lane_s32(vec, lane) simde_vdup_lane_s32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vdup_lane_s64(simde_int64x1_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_int64x1_private vec_ = simde_int64x1_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_s64(vec, lane) vdup_lane_s64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_s64 #define vdup_lane_s64(vec, lane) simde_vdup_lane_s64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vdup_lane_u8(simde_uint8x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint8x8_private vec_ = simde_uint8x8_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_u8(vec, lane) vdup_lane_u8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_u8 #define vdup_lane_u8(vec, lane) simde_vdup_lane_u8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vdup_lane_u16(simde_uint16x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint16x4_private vec_ = simde_uint16x4_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_u16(vec, lane) vdup_lane_u16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_u16 #define vdup_lane_u16(vec, lane) simde_vdup_lane_u16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vdup_lane_u32(simde_uint32x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint32x2_private vec_ = simde_uint32x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_u32(vec, lane) vdup_lane_u32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_u32 #define vdup_lane_u32(vec, lane) simde_vdup_lane_u32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vdup_lane_u64(simde_uint64x1_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_uint64x1_private vec_ = simde_uint64x1_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vdup_lane_u64(vec, lane) vdup_lane_u64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vdup_lane_u64 #define vdup_lane_u64(vec, lane) simde_vdup_lane_u64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vdup_laneq_f32(simde_float32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_float32x4_private vec_ = simde_float32x4_to_private(vec); simde_float32x2_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_f32(vec, lane) vdup_laneq_f32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_f32 #define vdup_laneq_f32(vec, lane) simde_vdup_laneq_f32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vdup_laneq_f64(simde_float64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float64x2_private vec_ = simde_float64x2_to_private(vec); simde_float64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_f64 #define vdup_laneq_f64(vec, lane) simde_vdup_laneq_f64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vdup_laneq_s8(simde_int8x16_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_int8x16_private vec_ = simde_int8x16_to_private(vec); simde_int8x8_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_s8(vec, lane) vdup_laneq_s8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_s8 #define vdup_laneq_s8(vec, lane) simde_vdup_laneq_s8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vdup_laneq_s16(simde_int16x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int16x8_private vec_ = simde_int16x8_to_private(vec); simde_int16x4_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_s16(vec, lane) vdup_laneq_s16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_s16 #define vdup_laneq_s16(vec, lane) simde_vdup_laneq_s16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vdup_laneq_s32(simde_int32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int32x4_private vec_ = simde_int32x4_to_private(vec); simde_int32x2_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_s32(vec, lane) vdup_laneq_s32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_s32 #define vdup_laneq_s32(vec, lane) simde_vdup_laneq_s32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vdup_laneq_s64(simde_int64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int64x2_private vec_ = simde_int64x2_to_private(vec); simde_int64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_s64(vec, lane) vdup_laneq_s64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_s64 #define vdup_laneq_s64(vec, lane) simde_vdup_laneq_s64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vdup_laneq_u8(simde_uint8x16_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_uint8x16_private vec_ = simde_uint8x16_to_private(vec); simde_uint8x8_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_u8(vec, lane) vdup_laneq_u8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_u8 #define vdup_laneq_u8(vec, lane) simde_vdup_laneq_u8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vdup_laneq_u16(simde_uint16x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint16x8_private vec_ = simde_uint16x8_to_private(vec); simde_uint16x4_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_u16(vec, lane) vdup_laneq_u16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_u16 #define vdup_laneq_u16(vec, lane) simde_vdup_laneq_u16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vdup_laneq_u32(simde_uint32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint32x4_private vec_ = simde_uint32x4_to_private(vec); simde_uint32x2_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_u32(vec, lane) vdup_laneq_u32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_u32 #define vdup_laneq_u32(vec, lane) simde_vdup_laneq_u32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vdup_laneq_u64(simde_uint64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint64x2_private vec_ = simde_uint64x2_to_private(vec); simde_uint64x1_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdup_laneq_u64(vec, lane) vdup_laneq_u64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdup_laneq_u64 #define vdup_laneq_u64(vec, lane) simde_vdup_laneq_u64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vdupq_lane_f32(simde_float32x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32x2_private vec_ = simde_float32x2_to_private(vec); simde_float32x4_private r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_lane_f32(vec, lane) vdupq_lane_f32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_lane_f32 #define vdupq_lane_f32(vec, lane) simde_vdupq_lane_f32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vdupq_laneq_f32(simde_float32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_float32x4_private vec_ = simde_float32x4_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_f32(vec, lane) vdupq_laneq_f32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_f32 #define vdupq_laneq_f32(vec, lane) simde_vdupq_laneq_f32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vdupq_laneq_f64(simde_float64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float64x2_private vec_ = simde_float64x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_float64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_f64 #define vdupq_laneq_f64(vec, lane) simde_vdupq_laneq_f64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vdupq_laneq_s8(simde_int8x16_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_int8x16_private vec_ = simde_int8x16_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_s8(vec, lane) vdupq_laneq_s8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_s8 #define vdupq_laneq_s8(vec, lane) simde_vdupq_laneq_s8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vdupq_laneq_s16(simde_int16x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int16x8_private vec_ = simde_int16x8_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_s16(vec, lane) vdupq_laneq_s16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_s16 #define vdupq_laneq_s16(vec, lane) simde_vdupq_laneq_s16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vdupq_laneq_s32(simde_int32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int32x4_private vec_ = simde_int32x4_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_s32(vec, lane) vdupq_laneq_s32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_s32 #define vdupq_laneq_s32(vec, lane) simde_vdupq_laneq_s32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vdupq_laneq_s64(simde_int64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int64x2_private vec_ = simde_int64x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_int64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_s64(vec, lane) vdupq_laneq_s64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_s64 #define vdupq_laneq_s64(vec, lane) simde_vdupq_laneq_s64((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vdupq_laneq_u8(simde_uint8x16_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_uint8x16_private vec_ = simde_uint8x16_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_u8(vec, lane) vdupq_laneq_u8(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_u8 #define vdupq_laneq_u8(vec, lane) simde_vdupq_laneq_u8((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vdupq_laneq_u16(simde_uint16x8_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint16x8_private vec_ = simde_uint16x8_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_u16(vec, lane) vdupq_laneq_u16(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_u16 #define vdupq_laneq_u16(vec, lane) simde_vdupq_laneq_u16((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vdupq_laneq_u32(simde_uint32x4_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint32x4_private vec_ = simde_uint32x4_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_u32(vec, lane) vdupq_laneq_u32(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_u32 #define vdupq_laneq_u32(vec, lane) simde_vdupq_laneq_u32((vec), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vdupq_laneq_u64(simde_uint64x2_t vec, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint64x2_private vec_ = simde_uint64x2_to_private(vec), r_; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = vec_.values[lane]; } return simde_uint64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vdupq_laneq_u64(vec, lane) vdupq_laneq_u64(vec, lane) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vdupq_laneq_u64 #define vdupq_laneq_u64(vec, lane) simde_vdupq_laneq_u64((vec), (lane)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_DUP_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/dup_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ext.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_EXT_H) #define SIMDE_ARM_NEON_EXT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vext_f32(simde_float32x2_t a, simde_float32x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_float32x2_t r; SIMDE_CONSTIFY_2_(vext_f32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_float32x2_private a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_f32(a, b, n) simde_float32x2_from_m64(_mm_alignr_pi8(simde_float32x2_to_m64(b), simde_float32x2_to_m64(a), n * sizeof(simde_float32))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_f32(a, b, n) (__extension__ ({ \ simde_float32x2_t simde_vext_f32_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_f32_r = simde_vext_f32(a, b, n); \ } else { \ const int simde_vext_f32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_float32x2_private simde_vext_f32_r_; \ simde_vext_f32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, simde_float32x2_to_private(a).values, simde_float32x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_f32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_f32_n + 1)); \ simde_vext_f32_r = simde_float32x2_from_private(simde_vext_f32_r_); \ } \ simde_vext_f32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_f32 #define vext_f32(a, b, n) simde_vext_f32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vext_f64(simde_float64x1_t a, simde_float64x1_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 0) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) (void) n; return vext_f64(a, b, 0); #else simde_float64x1_private a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 0]; } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_f64(a, b, n) simde_float64x1_from_m64(_mm_alignr_pi8(simde_float64x1_to_m64(b), simde_float64x1_to_m64(a), n * sizeof(simde_float64))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_f64(a, b, n) (__extension__ ({ \ simde_float64x1_t simde_vext_f64_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_f64_r = simde_vext_f64(a, b, n); \ } else { \ const int simde_vext_f64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_float64x1_private simde_vext_f64_r_; \ simde_vext_f64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 8, simde_float64x1_to_private(a).values, simde_float64x1_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_f64_n)); \ simde_vext_f64_r = simde_float64x1_from_private(simde_vext_f64_r_); \ } \ simde_vext_f64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vext_f64 #define vext_f64(a, b, n) simde_vext_f64((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vext_s8(simde_int8x8_t a, simde_int8x8_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int8x8_t r; SIMDE_CONSTIFY_8_(vext_s8, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 7]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_s8(a, b, n) simde_int8x8_from_m64(_mm_alignr_pi8(simde_int8x8_to_m64(b), simde_int8x8_to_m64(a), n * sizeof(int8_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_s8(a, b, n) (__extension__ ({ \ simde_int8x8_t simde_vext_s8_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_s8_r = simde_vext_s8(a, b, n); \ } else { \ const int simde_vext_s8_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int8x8_private simde_vext_s8_r_; \ simde_vext_s8_r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, simde_int8x8_to_private(a).values, simde_int8x8_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vext_s8_n + 7)); \ simde_vext_s8_r = simde_int8x8_from_private(simde_vext_s8_r_); \ } \ simde_vext_s8_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_s8 #define vext_s8(a, b, n) simde_vext_s8((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vext_s16(simde_int16x4_t a, simde_int16x4_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int16x4_t r; SIMDE_CONSTIFY_4_(vext_s16, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 3]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_s16(a, b, n) simde_int16x4_from_m64(_mm_alignr_pi8(simde_int16x4_to_m64(b), simde_int16x4_to_m64(a), n * sizeof(int16_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_s16(a, b, n) (__extension__ ({ \ simde_int16x4_t simde_vext_s16_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_s16_r = simde_vext_s16(a, b, n); \ } else { \ const int simde_vext_s16_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int16x4_private simde_vext_s16_r_; \ simde_vext_s16_r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, simde_int16x4_to_private(a).values, simde_int16x4_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s16_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_s16_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s16_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vext_s16_n + 3)); \ simde_vext_s16_r = simde_int16x4_from_private(simde_vext_s16_r_); \ } \ simde_vext_s16_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_s16 #define vext_s16(a, b, n) simde_vext_s16((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vext_s32(simde_int32x2_t a, simde_int32x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int32x2_t r; SIMDE_CONSTIFY_2_(vext_s32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_s32(a, b, n) simde_int32x2_from_m64(_mm_alignr_pi8(simde_int32x2_to_m64(b), simde_int32x2_to_m64(a), n * sizeof(int32_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_s32(a, b, n) (__extension__ ({ \ simde_int32x2_t simde_vext_s32_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_s32_r = simde_vext_s32(a, b, n); \ } else { \ const int simde_vext_s32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int32x2_private simde_vext_s32_r_; \ simde_vext_s32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, simde_int32x2_to_private(a).values, simde_int32x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_s32_n + 1)); \ simde_vext_s32_r = simde_int32x2_from_private(simde_vext_s32_r_); \ } \ simde_vext_s32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_s32 #define vext_s32(a, b, n) simde_vext_s32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vext_s64(simde_int64x1_t a, simde_int64x1_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 0) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) n; return vext_s64(a, b, 0); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 0]; } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_s64(a, b, n) simde_int64x1_from_m64(_mm_alignr_pi8(simde_int64x1_to_m64(b), simde_int64x1_to_m64(a), n * sizeof(int64_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_s64(a, b, n) (__extension__ ({ \ simde_int64x1_t simde_vext_s64_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_s64_r = simde_vext_s64(a, b, n); \ } else { \ const int simde_vext_s64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int64x1_private simde_vext_s64_r_; \ simde_vext_s64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 8, simde_int64x1_to_private(a).values, simde_int64x1_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_s64_n + 0)); \ simde_vext_s64_r = simde_int64x1_from_private(simde_vext_s64_r_); \ } \ simde_vext_s64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_s64 #define vext_s64(a, b, n) simde_vext_s64((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vext_u8(simde_uint8x8_t a, simde_uint8x8_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint8x8_t r; SIMDE_CONSTIFY_8_(vext_u8, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 7]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_u8(a, b, n) simde_uint8x8_from_m64(_mm_alignr_pi8(simde_uint8x8_to_m64(b), simde_uint8x8_to_m64(a), n * sizeof(uint8_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_u8(a, b, n) (__extension__ ({ \ simde_uint8x8_t simde_vext_u8_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_u8_r = simde_vext_u8(a, b, n); \ } else { \ const int simde_vext_u8_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint8x8_private simde_vext_u8_r_; \ simde_vext_u8_r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, simde_uint8x8_to_private(a).values, simde_uint8x8_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vext_u8_n + 7)); \ simde_vext_u8_r = simde_uint8x8_from_private(simde_vext_u8_r_); \ } \ simde_vext_u8_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_u8 #define vext_u8(a, b, n) simde_vext_u8((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vext_u16(simde_uint16x4_t a, simde_uint16x4_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint16x4_t r; SIMDE_CONSTIFY_4_(vext_u16, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 3]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_u16(a, b, n) simde_uint16x4_from_m64(_mm_alignr_pi8(simde_uint16x4_to_m64(b), simde_uint16x4_to_m64(a), n * sizeof(uint16_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_u16(a, b, n) (__extension__ ({ \ simde_uint16x4_t simde_vext_u16_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_u16_r = simde_vext_u16(a, b, n); \ } else { \ const int simde_vext_u16_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint16x4_private simde_vext_u16_r_; \ simde_vext_u16_r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, simde_uint16x4_to_private(a).values, simde_uint16x4_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u16_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_u16_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u16_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vext_u16_n + 3)); \ simde_vext_u16_r = simde_uint16x4_from_private(simde_vext_u16_r_); \ } \ simde_vext_u16_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_u16 #define vext_u16(a, b, n) simde_vext_u16((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vext_u32(simde_uint32x2_t a, simde_uint32x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x2_t r; SIMDE_CONSTIFY_2_(vext_u32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_u32(a, b, n) simde_uint32x2_from_m64(_mm_alignr_pi8(simde_uint32x2_to_m64(b), simde_uint32x2_to_m64(a), n * sizeof(uint32_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_u32(a, b, n) (__extension__ ({ \ simde_uint32x2_t simde_vext_u32_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_u32_r = simde_vext_u32(a, b, n); \ } else { \ const int simde_vext_u32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint32x2_private simde_vext_u32_r_; \ simde_vext_u32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, simde_uint32x2_to_private(a).values, simde_uint32x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vext_u32_n + 1)); \ simde_vext_u32_r = simde_uint32x2_from_private(simde_vext_u32_r_); \ } \ simde_vext_u32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_u32 #define vext_u32(a, b, n) simde_vext_u32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vext_u64(simde_uint64x1_t a, simde_uint64x1_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 0) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) n; return vext_u64(a, b, 0); #else simde_uint64x1_private a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 0]; } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vext_u64(a, b, n) simde_uint64x1_from_m64(_mm_alignr_pi8(simde_uint64x1_to_m64(b), simde_uint64x1_to_m64(a), n * sizeof(uint64_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vext_u64(a, b, n) (__extension__ ({ \ simde_uint64x1_t simde_vext_u64_r; \ if (!__builtin_constant_p(n)) { \ simde_vext_u64_r = simde_vext_u64(a, b, n); \ } else { \ const int simde_vext_u64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint64x1_private simde_vext_u64_r_; \ simde_vext_u64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 8, simde_uint64x1_to_private(a).values, simde_uint64x1_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vext_u64_n + 0)); \ simde_vext_u64_r = simde_uint64x1_from_private(simde_vext_u64_r_); \ } \ simde_vext_u64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vext_u64 #define vext_u64(a, b, n) simde_vext_u64((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vextq_f32(simde_float32x4_t a, simde_float32x4_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_float32x4_t r; SIMDE_CONSTIFY_4_(vextq_f32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_float32x4_private a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 3]; } return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_f32(a, b, n) simde_float32x4_from_m128(_mm_castsi128_ps(_mm_alignr_epi8(_mm_castps_si128(simde_float32x4_to_m128(b)), _mm_castps_si128(simde_float32x4_to_m128(a)), n * sizeof(simde_float32)))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_f32(a, b, n) (__extension__ ({ \ simde_float32x4_t simde_vextq_f32_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_f32_r = simde_vextq_f32(a, b, n); \ } else { \ const int simde_vextq_f32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_float32x4_private simde_vextq_f32_r_; \ simde_vextq_f32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, simde_float32x4_to_private(a).values, simde_float32x4_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_f32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_f32_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_f32_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_f32_n + 3)); \ simde_vextq_f32_r = simde_float32x4_from_private(simde_vextq_f32_r_); \ } \ simde_vextq_f32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_f32 #define vextq_f32(a, b, n) simde_vextq_f32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vextq_f64(simde_float64x2_t a, simde_float64x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) simde_float64x2_t r; SIMDE_CONSTIFY_2_(vextq_f64, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_float64x2_private a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_f64(a, b, n) simde_float64x2_from_m128d(_mm_castsi128_pd(_mm_alignr_epi8(_mm_castpd_si128(simde_float64x2_to_m128d(b)), _mm_castpd_si128(simde_float64x2_to_m128d(a)), n * sizeof(simde_float64)))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_f64(a, b, n) (__extension__ ({ \ simde_float64x2_t simde_vextq_f64_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_f64_r = simde_vextq_f64(a, b, n); \ } else { \ const int simde_vextq_f64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_float64x2_private simde_vextq_f64_r_; \ simde_vextq_f64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, simde_float64x2_to_private(a).values, simde_float64x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_f64_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_f64_n + 1)); \ simde_vextq_f64_r = simde_float64x2_from_private(simde_vextq_f64_r_); \ } \ simde_vextq_f64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vextq_f64 #define vextq_f64(a, b, n) simde_vextq_f64((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vextq_s8(simde_int8x16_t a, simde_int8x16_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int8x16_t r; SIMDE_CONSTIFY_16_(vextq_s8, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 15]; } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_s8(a, b, n) simde_int8x16_from_m128i(_mm_alignr_epi8(simde_int8x16_to_m128i(b), simde_int8x16_to_m128i(a), n * sizeof(int8_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_s8(a, b, n) (__extension__ ({ \ simde_int8x16_t simde_vextq_s8_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_s8_r = simde_vextq_s8(a, b, n); \ } else { \ const int simde_vextq_s8_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int8x16_private simde_vextq_s8_r_; \ simde_vextq_s8_r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, simde_int8x16_to_private(a).values, simde_int8x16_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 7), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 8), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 9), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 10), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 11), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 12), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 13), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 14), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s8_n + 15)); \ simde_vextq_s8_r = simde_int8x16_from_private(simde_vextq_s8_r_); \ } \ simde_vextq_s8_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_s8 #define vextq_s8(a, b, n) simde_vextq_s8((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vextq_s16(simde_int16x8_t a, simde_int16x8_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int16x8_t r; SIMDE_CONSTIFY_8_(vextq_s16, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 7]; } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_s16(a, b, n) simde_int16x8_from_m128i(_mm_alignr_epi8(simde_int16x8_to_m128i(b), simde_int16x8_to_m128i(a), n * sizeof(int16_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_s16(a, b, n) (__extension__ ({ \ simde_int16x8_t simde_vextq_s16_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_s16_r = simde_vextq_s16(a, b, n); \ } else { \ const int simde_vextq_s16_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int16x8_private simde_vextq_s16_r_; \ simde_vextq_s16_r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, simde_int16x8_to_private(a).values, simde_int16x8_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s16_n + 7)); \ simde_vextq_s16_r = simde_int16x8_from_private(simde_vextq_s16_r_); \ } \ simde_vextq_s16_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_s16 #define vextq_s16(a, b, n) simde_vextq_s16((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vextq_s32(simde_int32x4_t a, simde_int32x4_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int32x4_t r; SIMDE_CONSTIFY_4_(vextq_s32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 3]; } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_s32(a, b, n) simde_int32x4_from_m128i(_mm_alignr_epi8(simde_int32x4_to_m128i(b), simde_int32x4_to_m128i(a), n * sizeof(int32_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_s32(a, b, n) (__extension__ ({ \ simde_int32x4_t simde_vextq_s32_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_s32_r = simde_vextq_s32(a, b, n); \ } else { \ const int simde_vextq_s32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int32x4_private simde_vextq_s32_r_; \ simde_vextq_s32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, simde_int32x4_to_private(a).values, simde_int32x4_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s32_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s32_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s32_n + 3)); \ simde_vextq_s32_r = simde_int32x4_from_private(simde_vextq_s32_r_); \ } \ simde_vextq_s32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_s32 #define vextq_s32(a, b, n) simde_vextq_s32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vextq_s64(simde_int64x2_t a, simde_int64x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_int64x2_t r; SIMDE_CONSTIFY_2_(vextq_s64, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_s64(a, b, n) simde_int64x2_from_m128i(_mm_alignr_epi8(simde_int64x2_to_m128i(b), simde_int64x2_to_m128i(a), n * sizeof(int64_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_s64(a, b, n) (__extension__ ({ \ simde_int64x2_t simde_vextq_s64_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_s64_r = simde_vextq_s64(a, b, n); \ } else { \ const int simde_vextq_s64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_int64x2_private simde_vextq_s64_r_; \ simde_vextq_s64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, simde_int64x2_to_private(a).values, simde_int64x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_s64_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_s64_n + 1)); \ simde_vextq_s64_r = simde_int64x2_from_private(simde_vextq_s64_r_); \ } \ simde_vextq_s64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_s64 #define vextq_s64(a, b, n) simde_vextq_s64((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vextq_u8(simde_uint8x16_t a, simde_uint8x16_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 15) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint8x16_t r; SIMDE_CONSTIFY_16_(vextq_u8, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 15]; } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_u8(a, b, n) simde_uint8x16_from_m128i(_mm_alignr_epi8(simde_uint8x16_to_m128i(b), simde_uint8x16_to_m128i(a), n * sizeof(uint8_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_u8(a, b, n) (__extension__ ({ \ simde_uint8x16_t simde_vextq_u8_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_u8_r = simde_vextq_u8(a, b, n); \ } else { \ const int simde_vextq_u8_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint8x16_private simde_vextq_u8_r_; \ simde_vextq_u8_r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, simde_uint8x16_to_private(a).values, simde_uint8x16_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 7), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 8), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 9), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 10), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 11), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 12), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 13), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 14), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u8_n + 15)); \ simde_vextq_u8_r = simde_uint8x16_from_private(simde_vextq_u8_r_); \ } \ simde_vextq_u8_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_u8 #define vextq_u8(a, b, n) simde_vextq_u8((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vextq_u16(simde_uint16x8_t a, simde_uint16x8_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint16x8_t r; SIMDE_CONSTIFY_8_(vextq_u16, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 7]; } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_u16(a, b, n) simde_uint16x8_from_m128i(_mm_alignr_epi8(simde_uint16x8_to_m128i(b), simde_uint16x8_to_m128i(a), n * sizeof(uint16_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_u16(a, b, n) (__extension__ ({ \ simde_uint16x8_t simde_vextq_u16_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_u16_r = simde_vextq_u16(a, b, n); \ } else { \ const int simde_vextq_u16_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint16x8_private simde_vextq_u16_r_; \ simde_vextq_u16_r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, simde_uint16x8_to_private(a).values, simde_uint16x8_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 3), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 4), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 5), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 6), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u16_n + 7)); \ simde_vextq_u16_r = simde_uint16x8_from_private(simde_vextq_u16_r_); \ } \ simde_vextq_u16_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_u16 #define vextq_u16(a, b, n) simde_vextq_u16((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vextq_u32(simde_uint32x4_t a, simde_uint32x4_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint32x4_t r; SIMDE_CONSTIFY_4_(vextq_u32, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 3]; } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_u32(a, b, n) simde_uint32x4_from_m128i(_mm_alignr_epi8(simde_uint32x4_to_m128i(b), simde_uint32x4_to_m128i(a), n * sizeof(uint32_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_u32(a, b, n) (__extension__ ({ \ simde_uint32x4_t simde_vextq_u32_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_u32_r = simde_vextq_u32(a, b, n); \ } else { \ const int simde_vextq_u32_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint32x4_private simde_vextq_u32_r_; \ simde_vextq_u32_r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, simde_uint32x4_to_private(a).values, simde_uint32x4_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u32_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u32_n + 1), \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u32_n + 2), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u32_n + 3)); \ simde_vextq_u32_r = simde_uint32x4_from_private(simde_vextq_u32_r_); \ } \ simde_vextq_u32_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_u32 #define vextq_u32(a, b, n) simde_vextq_u32((a), (b), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vextq_u64(simde_uint64x2_t a, simde_uint64x2_t b, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) simde_uint64x2_t r; SIMDE_CONSTIFY_2_(vextq_u64, r, (HEDLEY_UNREACHABLE(), a), n, a, b); return r; #else simde_uint64x2_private a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b), r_ = a_; const size_t n_ = HEDLEY_STATIC_CAST(size_t, n); for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { size_t src = i + n_; r_.values[i] = (src < (sizeof(r_.values) / sizeof(r_.values[0]))) ? a_.values[src] : b_.values[src & 1]; } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_X86_SSSE3_NATIVE) && !defined(SIMDE_BUG_GCC_SIZEOF_IMMEDIATE) #define simde_vextq_u64(a, b, n) simde_uint64x2_from_m128i(_mm_alignr_epi8(simde_uint64x2_to_m128i(b), simde_uint64x2_to_m128i(a), n * sizeof(uint64_t))) #elif defined(SIMDE_SHUFFLE_VECTOR_) && !defined(SIMDE_ARM_NEON_A32V7_NATIVE) && !defined(__clang__) && !defined(SIMDE_BUG_GCC_BAD_VEXT_REV32) #define simde_vextq_u64(a, b, n) (__extension__ ({ \ simde_uint64x2_t simde_vextq_u64_r; \ if (!__builtin_constant_p(n)) { \ simde_vextq_u64_r = simde_vextq_u64(a, b, n); \ } else { \ const int simde_vextq_u64_n = HEDLEY_STATIC_CAST(int8_t, n); \ simde_uint64x2_private simde_vextq_u64_r_; \ simde_vextq_u64_r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, simde_uint64x2_to_private(a).values, simde_uint64x2_to_private(b).values, \ HEDLEY_STATIC_CAST(int8_t, simde_vextq_u64_n + 0), HEDLEY_STATIC_CAST(int8_t, simde_vextq_u64_n + 1)); \ simde_vextq_u64_r = simde_uint64x2_from_private(simde_vextq_u64_r_); \ } \ simde_vextq_u64_r; \ })) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vextq_u64 #define vextq_u64(a, b, n) simde_vextq_u64((a), (b), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_EXT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ext.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/fma.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_FMA_H) #define SIMDE_ARM_NEON_FMA_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vfma_f32(simde_float32x2_t a, simde_float32x2_t b, simde_float32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) return vfma_f32(a, b, c); #else return simde_vadd_f32(a, simde_vmul_f32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfma_f32 #define vfma_f32(a, b, c) simde_vfma_f32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vfma_f64(simde_float64x1_t a, simde_float64x1_t b, simde_float64x1_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) return vfma_f64(a, b, c); #else return simde_vadd_f64(a, simde_vmul_f64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfma_f64 #define vfma_f64(a, b, c) simde_vfma_f64(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vfmaq_f32(simde_float32x4_t a, simde_float32x4_t b, simde_float32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) return vfmaq_f32(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_madd(b, c, a); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b), c_ = simde_float32x4_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128 = _mm_fmadd_ps(b_.m128, c_.m128, a_.m128); #endif return simde_float32x4_from_private(r_); #else return simde_vaddq_f32(a, simde_vmulq_f32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfmaq_f32 #define vfmaq_f32(a, b, c) simde_vfmaq_f32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vfmaq_f64(simde_float64x2_t a, simde_float64x2_t b, simde_float64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) return vfmaq_f64(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_madd(b, c, a); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b), c_ = simde_float64x2_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128d = _mm_fmadd_pd(b_.m128d, c_.m128d, a_.m128d); #endif return simde_float64x2_from_private(r_); #else return simde_vaddq_f64(a, simde_vmulq_f64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfmaq_f64 #define vfmaq_f64(a, b, c) simde_vfmaq_f64(a, b, c) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/fma.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/fma_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_FMA_N_H) #define SIMDE_ARM_NEON_FMA_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vfma_n_f32(simde_float32x2_t a, simde_float32x2_t b, simde_float32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) && (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(7,0,0)) return vfma_n_f32(a, b, c); #else return simde_vfma_f32(a, b, simde_vdup_n_f32(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfma_n_f32 #define vfma_n_f32(a, b, c) simde_vfma_n_f32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vfma_n_f64(simde_float64x1_t a, simde_float64x1_t b, simde_float64_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) && (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(7,0,0)) return vfma_n_f64(a, b, c); #else return simde_vfma_f64(a, b, simde_vdup_n_f64(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfma_n_f64 #define vfma_n_f64(a, b, c) simde_vfma_n_f64(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vfmaq_n_f32(simde_float32x4_t a, simde_float32x4_t b, simde_float32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) && (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(7,0,0)) return vfmaq_n_f32(a, b, c); #else return simde_vfmaq_f32(a, b, simde_vdupq_n_f32(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfmaq_n_f32 #define vfmaq_n_f32(a, b, c) simde_vfmaq_n_f32(a, b, c) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vfmaq_n_f64(simde_float64x2_t a, simde_float64x2_t b, simde_float64_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && (defined(__ARM_FEATURE_FMA) && __ARM_FEATURE_FMA) && (!defined(__clang__) || SIMDE_DETECT_CLANG_VERSION_CHECK(7,0,0)) return vfmaq_n_f64(a, b, c); #else return simde_vfmaq_f64(a, b, simde_vdupq_n_f64(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vfmaq_n_f64 #define vfmaq_n_f64(a, b, c) simde_vfmaq_n_f64(a, b, c) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_CMLA_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/fma_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_GET_LANE_H) #define SIMDE_ARM_NEON_GET_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vget_lane_f32(simde_float32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vget_lane_f32, r, (HEDLEY_UNREACHABLE(), SIMDE_FLOAT32_C(0.0)), lane, v); #else simde_float32x2_private v_ = simde_float32x2_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_f32 #define vget_lane_f32(v, lane) simde_vget_lane_f32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vget_lane_f64(simde_float64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_float64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) (void) lane; return vget_lane_f64(v, 0); #else simde_float64x1_private v_ = simde_float64x1_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vget_lane_f64 #define vget_lane_f64(v, lane) simde_vget_lane_f64((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vget_lane_s8(simde_int8x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { int8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vget_lane_s8, r, (HEDLEY_UNREACHABLE(), INT8_C(0)), lane, v); #else simde_int8x8_private v_ = simde_int8x8_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_s8 #define vget_lane_s8(v, lane) simde_vget_lane_s8((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vget_lane_s16(simde_int16x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { int16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vget_lane_s16, r, (HEDLEY_UNREACHABLE(), INT16_C(0)), lane, v); #else simde_int16x4_private v_ = simde_int16x4_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_s16 #define vget_lane_s16(v, lane) simde_vget_lane_s16((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vget_lane_s32(simde_int32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { int32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vget_lane_s32, r, (HEDLEY_UNREACHABLE(), INT32_C(0)), lane, v); #else simde_int32x2_private v_ = simde_int32x2_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_s32 #define vget_lane_s32(v, lane) simde_vget_lane_s32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vget_lane_s64(simde_int64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { int64_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; return vget_lane_s64(v, 0); #else simde_int64x1_private v_ = simde_int64x1_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_s64 #define vget_lane_s64(v, lane) simde_vget_lane_s64((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vget_lane_u8(simde_uint8x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { uint8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vget_lane_u8, r, (HEDLEY_UNREACHABLE(), UINT8_C(0)), lane, v); #else simde_uint8x8_private v_ = simde_uint8x8_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_u8 #define vget_lane_u8(v, lane) simde_vget_lane_u8((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vget_lane_u16(simde_uint16x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { uint16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vget_lane_u16, r, (HEDLEY_UNREACHABLE(), UINT16_C(0)), lane, v); #else simde_uint16x4_private v_ = simde_uint16x4_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_u16 #define vget_lane_u16(v, lane) simde_vget_lane_u16((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vget_lane_u32(simde_uint32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { uint32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vget_lane_u32, r, (HEDLEY_UNREACHABLE(), UINT32_C(0)), lane, v); #else simde_uint32x2_private v_ = simde_uint32x2_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_u32 #define vget_lane_u32(v, lane) simde_vget_lane_u32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vget_lane_u64(simde_uint64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { uint64_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; return vget_lane_u64(v, 0); #else simde_uint64x1_private v_ = simde_uint64x1_to_private(v); r = v_.values[lane]; #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vget_lane_u64 #define vget_lane_u64(v, lane) simde_vget_lane_u64((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vgetq_lane_f32(simde_float32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vgetq_lane_f32, r, (HEDLEY_UNREACHABLE(), SIMDE_FLOAT32_C(0.0)), lane, v); #else simde_float32x4_private v_ = simde_float32x4_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) SIMDE_CONSTIFY_4_(wasm_f32x4_extract_lane, r, (HEDLEY_UNREACHABLE(), SIMDE_FLOAT32_C(0.0)), lane, v_.v128); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_f32 #define vgetq_lane_f32(v, lane) simde_vgetq_lane_f32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vgetq_lane_f64(simde_float64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) SIMDE_CONSTIFY_2_(vgetq_lane_f64, r, (HEDLEY_UNREACHABLE(), SIMDE_FLOAT64_C(0.0)), lane, v); #else simde_float64x2_private v_ = simde_float64x2_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) SIMDE_CONSTIFY_2_(wasm_f64x2_extract_lane, r, (HEDLEY_UNREACHABLE(), SIMDE_FLOAT64_C(0.0)), lane, v_.v128); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_f64 #define vgetq_lane_f64(v, lane) simde_vgetq_lane_f64((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vgetq_lane_s8(simde_int8x16_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { int8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_(vgetq_lane_s8, r, (HEDLEY_UNREACHABLE(), INT8_C(0)), lane, v); #else simde_int8x16_private v_ = simde_int8x16_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int r_; SIMDE_CONSTIFY_16_(wasm_i8x16_extract_lane, r_, (HEDLEY_UNREACHABLE(), INT8_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(int8_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_s8 #define vgetq_lane_s8(v, lane) simde_vgetq_lane_s8((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vgetq_lane_s16(simde_int16x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { int16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vgetq_lane_s16, r, (HEDLEY_UNREACHABLE(), INT16_C(0)), lane, v); #else simde_int16x8_private v_ = simde_int16x8_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int r_; SIMDE_CONSTIFY_8_(wasm_i16x8_extract_lane, r_, (HEDLEY_UNREACHABLE(), INT16_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(int16_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_s16 #define vgetq_lane_s16(v, lane) simde_vgetq_lane_s16((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vgetq_lane_s32(simde_int32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { int32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vgetq_lane_s32, r, (HEDLEY_UNREACHABLE(), INT32_C(0)), lane, v); #else simde_int32x4_private v_ = simde_int32x4_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int r_; SIMDE_CONSTIFY_4_(wasm_i32x4_extract_lane, r_, (HEDLEY_UNREACHABLE(), INT32_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(int32_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_s32 #define vgetq_lane_s32(v, lane) simde_vgetq_lane_s32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vgetq_lane_s64(simde_int64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { int64_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vgetq_lane_s64, r, (HEDLEY_UNREACHABLE(), INT64_C(0)), lane, v); #else simde_int64x2_private v_ = simde_int64x2_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int64_t r_; SIMDE_CONSTIFY_2_(wasm_i64x2_extract_lane, r_, (HEDLEY_UNREACHABLE(), INT64_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(int64_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_s64 #define vgetq_lane_s64(v, lane) simde_vgetq_lane_s64((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vgetq_lane_u8(simde_uint8x16_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { uint8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_(vgetq_lane_u8, r, (HEDLEY_UNREACHABLE(), UINT8_C(0)), lane, v); #else simde_uint8x16_private v_ = simde_uint8x16_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int r_; SIMDE_CONSTIFY_16_(wasm_i8x16_extract_lane, r_, (HEDLEY_UNREACHABLE(), UINT8_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(uint8_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_u8 #define vgetq_lane_u8(v, lane) simde_vgetq_lane_u8((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vgetq_lane_u16(simde_uint16x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { uint16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vgetq_lane_u16, r, (HEDLEY_UNREACHABLE(), UINT16_C(0)), lane, v); #else simde_uint16x8_private v_ = simde_uint16x8_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int r_; SIMDE_CONSTIFY_8_(wasm_i16x8_extract_lane, r_, (HEDLEY_UNREACHABLE(), UINT16_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(uint16_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_u16 #define vgetq_lane_u16(v, lane) simde_vgetq_lane_u16((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vgetq_lane_u32(simde_uint32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { uint32_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vgetq_lane_u32, r, (HEDLEY_UNREACHABLE(), UINT32_C(0)), lane, v); #else simde_uint32x4_private v_ = simde_uint32x4_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int32_t r_; SIMDE_CONSTIFY_4_(wasm_i32x4_extract_lane, r_, (HEDLEY_UNREACHABLE(), UINT32_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(uint32_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_u32 #define vgetq_lane_u32(v, lane) simde_vgetq_lane_u32((v), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vgetq_lane_u64(simde_uint64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { uint64_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vgetq_lane_u64, r, (HEDLEY_UNREACHABLE(), UINT64_C(0)), lane, v); #else simde_uint64x2_private v_ = simde_uint64x2_to_private(v); #if defined(SIMDE_WASM_SIMD128_NATIVE) int64_t r_; SIMDE_CONSTIFY_2_(wasm_i64x2_extract_lane, r_, (HEDLEY_UNREACHABLE(), UINT64_C(0)), lane, v_.v128); r = HEDLEY_STATIC_CAST(uint64_t, r_); #else r = v_.values[lane]; #endif #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vgetq_lane_u64 #define vgetq_lane_u64(v, lane) simde_vgetq_lane_u64((v), (lane)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_GET_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/get_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/hadd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ /* TODO: the 128-bit versions only require AVX-512 because of the final * conversions from larger types down to smaller ones. We could get * the same results from AVX/AVX2 instructions with some shuffling * to extract the low half of each input element to the low half * of a 256-bit vector, then cast that to a 128-bit vector. */ #if !defined(SIMDE_ARM_NEON_HADD_H) #define SIMDE_ARM_NEON_HADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vhadd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_s8(a, b); #else return simde_vmovn_s16(simde_vshrq_n_s16(simde_vaddl_s8(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_s8 #define vhadd_s8(a, b) simde_vhadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vhadd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_s16(a, b); #else return simde_vmovn_s32(simde_vshrq_n_s32(simde_vaddl_s16(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_s16 #define vhadd_s16(a, b) simde_vhadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vhadd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_s32(a, b); #else return simde_vmovn_s64(simde_vshrq_n_s64(simde_vaddl_s32(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_s32 #define vhadd_s32(a, b) simde_vhadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vhadd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_u8(a, b); #else return simde_vmovn_u16(simde_vshrq_n_u16(simde_vaddl_u8(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_u8 #define vhadd_u8(a, b) simde_vhadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vhadd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_u16(a, b); #else return simde_vmovn_u32(simde_vshrq_n_u32(simde_vaddl_u16(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_u16 #define vhadd_u16(a, b) simde_vhadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vhadd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhadd_u32(a, b); #else return simde_vmovn_u64(simde_vshrq_n_u64(simde_vaddl_u32(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhadd_u32 #define vhadd_u32(a, b) simde_vhadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vhaddq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512BW_NATIVE) r_.m128i = _mm256_cvtepi16_epi8(_mm256_srai_epi16(_mm256_add_epi16(_mm256_cvtepi8_epi16(a_.m128i), _mm256_cvtepi8_epi16(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (HEDLEY_STATIC_CAST(int16_t, a_.values[i]) + HEDLEY_STATIC_CAST(int16_t, b_.values[i])) >> 1); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_s8 #define vhaddq_s8(a, b) simde_vhaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vhaddq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi32_epi16(_mm256_srai_epi32(_mm256_add_epi32(_mm256_cvtepi16_epi32(a_.m128i), _mm256_cvtepi16_epi32(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (HEDLEY_STATIC_CAST(int32_t, a_.values[i]) + HEDLEY_STATIC_CAST(int32_t, b_.values[i])) >> 1); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_s16 #define vhaddq_s16(a, b) simde_vhaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vhaddq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi64_epi32(_mm256_srai_epi64(_mm256_add_epi64(_mm256_cvtepi32_epi64(a_.m128i), _mm256_cvtepi32_epi64(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, (HEDLEY_STATIC_CAST(int64_t, a_.values[i]) + HEDLEY_STATIC_CAST(int64_t, b_.values[i])) >> 1); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_s32 #define vhaddq_s32(a, b) simde_vhaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vhaddq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512BW_NATIVE) r_.m128i = _mm256_cvtepi16_epi8(_mm256_srli_epi16(_mm256_add_epi16(_mm256_cvtepu8_epi16(a_.m128i), _mm256_cvtepu8_epi16(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (HEDLEY_STATIC_CAST(uint16_t, a_.values[i]) + HEDLEY_STATIC_CAST(uint16_t, b_.values[i])) >> 1); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_u8 #define vhaddq_u8(a, b) simde_vhaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vhaddq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi32_epi16(_mm256_srli_epi32(_mm256_add_epi32(_mm256_cvtepu16_epi32(a_.m128i), _mm256_cvtepu16_epi32(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (HEDLEY_STATIC_CAST(uint32_t, a_.values[i]) + HEDLEY_STATIC_CAST(uint32_t, b_.values[i])) >> 1); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_u16 #define vhaddq_u16(a, b) simde_vhaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vhaddq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhaddq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi64_epi32(_mm256_srli_epi64(_mm256_add_epi64(_mm256_cvtepu32_epi64(a_.m128i), _mm256_cvtepu32_epi64(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, (HEDLEY_STATIC_CAST(uint64_t, a_.values[i]) + HEDLEY_STATIC_CAST(uint64_t, b_.values[i])) >> 1); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhaddq_u32 #define vhaddq_u32(a, b) simde_vhaddq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_HADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/hadd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/hsub.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ /* TODO: the 128-bit versions only require AVX-512 because of the final * conversions from larger types down to smaller ones. We could get * the same results from AVX/AVX2 instructions with some shuffling * to extract the low half of each input element to the low half * of a 256-bit vector, then cast that to a 128-bit vector. */ #if !defined(SIMDE_ARM_NEON_HSUB_H) #define SIMDE_ARM_NEON_HSUB_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vhsub_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_s8(a, b); #else return simde_vmovn_s16(simde_vshrq_n_s16(simde_vsubl_s8(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_s8 #define vhsub_s8(a, b) simde_vhsub_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vhsub_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_s16(a, b); #else return simde_vmovn_s32(simde_vshrq_n_s32(simde_vsubl_s16(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_s16 #define vhsub_s16(a, b) simde_vhsub_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vhsub_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_s32(a, b); #else return simde_vmovn_s64(simde_vshrq_n_s64(simde_vsubl_s32(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_s32 #define vhsub_s32(a, b) simde_vhsub_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vhsub_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_u8(a, b); #else return simde_vmovn_u16(simde_vshrq_n_u16(simde_vsubl_u8(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_u8 #define vhsub_u8(a, b) simde_vhsub_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vhsub_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_u16(a, b); #else return simde_vmovn_u32(simde_vshrq_n_u32(simde_vsubl_u16(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_u16 #define vhsub_u16(a, b) simde_vhsub_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vhsub_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsub_u32(a, b); #else return simde_vmovn_u64(simde_vshrq_n_u64(simde_vsubl_u32(a, b), 1)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsub_u32 #define vhsub_u32(a, b) simde_vhsub_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vhsubq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512BW_NATIVE) r_.m128i = _mm256_cvtepi16_epi8(_mm256_srai_epi16(_mm256_sub_epi16(_mm256_cvtepi8_epi16(a_.m128i), _mm256_cvtepi8_epi16(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (HEDLEY_STATIC_CAST(int16_t, a_.values[i]) - HEDLEY_STATIC_CAST(int16_t, b_.values[i])) >> 1); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_s8 #define vhsubq_s8(a, b) simde_vhsubq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vhsubq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi32_epi16(_mm256_srai_epi32(_mm256_sub_epi32(_mm256_cvtepi16_epi32(a_.m128i), _mm256_cvtepi16_epi32(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (HEDLEY_STATIC_CAST(int32_t, a_.values[i]) - HEDLEY_STATIC_CAST(int32_t, b_.values[i])) >> 1); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_s16 #define vhsubq_s16(a, b) simde_vhsubq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vhsubq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi64_epi32(_mm256_srai_epi64(_mm256_sub_epi64(_mm256_cvtepi32_epi64(a_.m128i), _mm256_cvtepi32_epi64(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, (HEDLEY_STATIC_CAST(int64_t, a_.values[i]) - HEDLEY_STATIC_CAST(int64_t, b_.values[i])) >> 1); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_s32 #define vhsubq_s32(a, b) simde_vhsubq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vhsubq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_AVX512BW_NATIVE) r_.m128i = _mm256_cvtepi16_epi8(_mm256_srli_epi16(_mm256_sub_epi16(_mm256_cvtepu8_epi16(a_.m128i), _mm256_cvtepu8_epi16(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (HEDLEY_STATIC_CAST(uint16_t, a_.values[i]) - HEDLEY_STATIC_CAST(uint16_t, b_.values[i])) >> 1); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_u8 #define vhsubq_u8(a, b) simde_vhsubq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vhsubq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi32_epi16(_mm256_srli_epi32(_mm256_sub_epi32(_mm256_cvtepu16_epi32(a_.m128i), _mm256_cvtepu16_epi32(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (HEDLEY_STATIC_CAST(uint32_t, a_.values[i]) - HEDLEY_STATIC_CAST(uint32_t, b_.values[i])) >> 1); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_u16 #define vhsubq_u16(a, b) simde_vhsubq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vhsubq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vhsubq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtepi64_epi32(_mm256_srli_epi64(_mm256_sub_epi64(_mm256_cvtepu32_epi64(a_.m128i), _mm256_cvtepu32_epi64(b_.m128i)), 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, (HEDLEY_STATIC_CAST(uint64_t, a_.values[i]) - HEDLEY_STATIC_CAST(uint64_t, b_.values[i])) >> 1); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vhsubq_u32 #define vhsubq_u32(a, b) simde_vhsubq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_HSUB_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/hsub.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld1.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_LD1_H) #define SIMDE_ARM_NEON_LD1_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vld1_f32(simde_float32 const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_f32(ptr); #else simde_float32x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_f32 #define vld1_f32(a) simde_vld1_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vld1_f64(simde_float64 const ptr[HEDLEY_ARRAY_PARAM(1)]) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld1_f64(ptr); #else simde_float64x1_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld1_f64 #define vld1_f64(a) simde_vld1_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vld1_s8(int8_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_s8(ptr); #else simde_int8x8_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_s8 #define vld1_s8(a) simde_vld1_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vld1_s16(int16_t const ptr[HEDLEY_ARRAY_PARAM(4)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_s16(ptr); #else simde_int16x4_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_s16 #define vld1_s16(a) simde_vld1_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vld1_s32(int32_t const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_s32(ptr); #else simde_int32x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_s32 #define vld1_s32(a) simde_vld1_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vld1_s64(int64_t const ptr[HEDLEY_ARRAY_PARAM(1)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_s64(ptr); #else simde_int64x1_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_s64 #define vld1_s64(a) simde_vld1_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vld1_u8(uint8_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_u8(ptr); #else simde_uint8x8_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_u8 #define vld1_u8(a) simde_vld1_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vld1_u16(uint16_t const ptr[HEDLEY_ARRAY_PARAM(4)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_u16(ptr); #else simde_uint16x4_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_u16 #define vld1_u16(a) simde_vld1_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vld1_u32(uint32_t const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_u32(ptr); #else simde_uint32x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_u32 #define vld1_u32(a) simde_vld1_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vld1_u64(uint64_t const ptr[HEDLEY_ARRAY_PARAM(1)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1_u64(ptr); #else simde_uint64x1_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1_u64 #define vld1_u64(a) simde_vld1_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vld1q_f32(simde_float32 const ptr[HEDLEY_ARRAY_PARAM(4)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_f32(ptr); #else simde_float32x4_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_f32 #define vld1q_f32(a) simde_vld1q_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vld1q_f64(simde_float64 const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld1q_f64(ptr); #else simde_float64x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld1q_f64 #define vld1q_f64(a) simde_vld1q_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vld1q_s8(int8_t const ptr[HEDLEY_ARRAY_PARAM(16)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_s8(ptr); #else simde_int8x16_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_s8 #define vld1q_s8(a) simde_vld1q_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vld1q_s16(int16_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_s16(ptr); #else simde_int16x8_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_s16 #define vld1q_s16(a) simde_vld1q_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vld1q_s32(int32_t const ptr[HEDLEY_ARRAY_PARAM(4)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_s32(ptr); #else simde_int32x4_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_s32 #define vld1q_s32(a) simde_vld1q_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vld1q_s64(int64_t const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_s64(ptr); #else simde_int64x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_s64 #define vld1q_s64(a) simde_vld1q_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vld1q_u8(uint8_t const ptr[HEDLEY_ARRAY_PARAM(16)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_u8(ptr); #else simde_uint8x16_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_u8 #define vld1q_u8(a) simde_vld1q_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vld1q_u16(uint16_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_u16(ptr); #else simde_uint16x8_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_u16 #define vld1q_u16(a) simde_vld1q_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vld1q_u32(uint32_t const ptr[HEDLEY_ARRAY_PARAM(4)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_u32(ptr); #else simde_uint32x4_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_u32 #define vld1q_u32(a) simde_vld1q_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vld1q_u64(uint64_t const ptr[HEDLEY_ARRAY_PARAM(2)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_u64(ptr); #else simde_uint64x2_private r_; simde_memcpy(&r_, ptr, sizeof(r_)); return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_u64 #define vld1q_u64(a) simde_vld1q_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_LD1_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld1.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld1_dup.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Zhi An Ng (Copyright owned by Google, LLC) * 2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_LD1_DUP_H) #define SIMDE_ARM_NEON_LD1_DUP_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vld1q_dup_f32(simde_float32 const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_f32(ptr); #elif \ defined(SIMDE_X86_SSE_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_float32x4_private r_; #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_load_ps1(ptr); #else r_.v128 = wasm_v128_load32_splat(ptr); #endif return simde_float32x4_from_private(r_); #else return simde_vdupq_n_f32(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_f32 #define vld1q_dup_f32(a) simde_vld1q_dup_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vld1q_dup_s8(int8_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_s8(ptr); #elif defined(SIMDE_WASM_SIMD128_NATIVE) simde_int8x16_private r_; r_.v128 = wasm_v128_load8_splat(ptr); return simde_int8x16_from_private(r_); #else return simde_vdupq_n_s8(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_s8 #define vld1q_dup_s8(a) simde_vld1q_dup_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vld1q_dup_s16(int16_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_s16(ptr); #elif defined(SIMDE_WASM_SIMD128_NATIVE) simde_int16x8_private r_; r_.v128 = wasm_v128_load16_splat(ptr); return simde_int16x8_from_private(r_); #else return simde_vdupq_n_s16(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_s16 #define vld1q_dup_s16(a) simde_vld1q_dup_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vld1q_dup_s32(int32_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_s32(ptr); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_int32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_load_ps1(HEDLEY_REINTERPRET_CAST(float const *, ptr))); #else r_.v128 = wasm_v128_load32_splat(ptr); #endif return simde_int32x4_from_private(r_); #else return simde_vdupq_n_s32(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_s32 #define vld1q_dup_s32(a) simde_vld1q_dup_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vld1q_dup_s64(int64_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_s64(ptr); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_int64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi64x(*ptr); #else r_.v128 = wasm_v128_load64_splat(ptr); #endif return simde_int64x2_from_private(r_); #else return simde_vdupq_n_s64(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_s64 #define vld1q_dup_s64(a) simde_vld1q_dup_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vld1q_dup_u8(uint8_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_u8(ptr); #elif defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint8x16_private r_; r_.v128 = wasm_v128_load8_splat(ptr); return simde_uint8x16_from_private(r_); #else return simde_vdupq_n_u8(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_u8 #define vld1q_dup_u8(a) simde_vld1q_dup_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vld1q_dup_u16(uint16_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_u16(ptr); #elif defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint16x8_private r_; r_.v128 = wasm_v128_load16_splat(ptr); return simde_uint16x8_from_private(r_); #else return simde_vdupq_n_u16(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_u16 #define vld1q_dup_u16(a) simde_vld1q_dup_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vld1q_dup_u32(uint32_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_u32(ptr); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint32x4_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_castps_si128(_mm_load_ps1(HEDLEY_REINTERPRET_CAST(float const *, ptr))); #else r_.v128 = wasm_v128_load32_splat(ptr); #endif return simde_uint32x4_from_private(r_); #else return simde_vdupq_n_u32(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_u32 #define vld1q_dup_u32(a) simde_vld1q_dup_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vld1q_dup_u64(uint64_t const * ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld1q_dup_u64(ptr); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint64x2_private r_; #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_set1_epi64x(*HEDLEY_REINTERPRET_CAST(int64_t const *, ptr)); #else r_.v128 = wasm_v128_load64_splat(ptr); #endif return simde_uint64x2_from_private(r_); #else return simde_vdupq_n_u64(*ptr); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld1q_dup_u64 #define vld1q_dup_u64(a) simde_vld1q_dup_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_LD1_DUP_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld1_dup.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld2.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_LD2_H) #define SIMDE_ARM_NEON_LD2_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS #if HEDLEY_GCC_VERSION_CHECK(7,0,0) && !HEDLEY_GCC_VERSION_CHECK(9,0,0) SIMDE_DIAGNOSTIC_DISABLE_MAYBE_UNINITIAZILED_ #endif SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x2_t simde_vld2_u8(uint8_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2_u8(ptr); #else simde_uint8x8_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint8x8x2_t r = { { simde_uint8x8_from_private(r_[0]), simde_uint8x8_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2_u8 #define vld2_u8(a) simde_vld2_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x2_t simde_vld2_u16(uint16_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2_u16(ptr); #else simde_uint16x4_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint16x4x2_t r = { { simde_uint16x4_from_private(r_[0]), simde_uint16x4_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2_u16 #define vld2_u16(a) simde_vld2_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x2_t simde_vld2_u32(uint32_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2_u32(ptr); #else simde_uint32x2_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint32x2x2_t r = { { simde_uint32x2_from_private(r_[0]), simde_uint32x2_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2_u32 #define vld2_u32(a) simde_vld2_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x2_t simde_vld2q_u8(uint8_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2q_u8(ptr); #else simde_uint8x16_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint8x16x2_t r = { { simde_uint8x16_from_private(r_[0]), simde_uint8x16_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2q_u8 #define vld2q_u8(a) simde_vld2q_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x2_t simde_vld2q_u16(uint16_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2q_u16(ptr); #else simde_uint16x8_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint16x8x2_t r = { { simde_uint16x8_from_private(r_[0]), simde_uint16x8_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2q_u16 #define vld2q_u16(a) simde_vld2q_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x2_t simde_vld2q_u32(uint32_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2q_u32(ptr); #else simde_uint32x4_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint32x4x2_t r = { { simde_uint32x4_from_private(r_[0]), simde_uint32x4_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2q_u32 #define vld2q_u32(a) simde_vld2q_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x2_t simde_vld2q_f32(simde_float32_t const ptr[HEDLEY_ARRAY_PARAM(8)]) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld2q_f32(ptr); #else simde_float32x4_private r_[2]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_float32x4x2_t r = { { simde_float32x4_from_private(r_[0]), simde_float32x4_from_private(r_[1]), } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld2q_f32 #define vld2q_f32(a) simde_vld2q_f32((a)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_LD2_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld2.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld3.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher */ #if !defined(SIMDE_ARM_NEON_LD3_H) #define SIMDE_ARM_NEON_LD3_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS #if HEDLEY_GCC_VERSION_CHECK(7,0,0) && !HEDLEY_GCC_VERSION_CHECK(9,0,0) SIMDE_DIAGNOSTIC_DISABLE_MAYBE_UNINITIAZILED_ #endif SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_float32x2x3_t simde_vld3_f32(simde_float32 const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_f32(ptr); #else simde_float32x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_float32x2x3_t r = { { simde_float32x2_from_private(r_[0]), simde_float32x2_from_private(r_[1]), simde_float32x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_f32 #define vld3_f32(a) simde_vld3_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1x3_t simde_vld3_f64(simde_float64 const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld3_f64(ptr); #else simde_float64x1_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_float64x1x3_t r = { { simde_float64x1_from_private(r_[0]), simde_float64x1_from_private(r_[1]), simde_float64x1_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3_f64 #define vld3_f64(a) simde_vld3_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8x3_t simde_vld3_s8(int8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_s8(ptr); #else simde_int8x8_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int8x8x3_t r = { { simde_int8x8_from_private(r_[0]), simde_int8x8_from_private(r_[1]), simde_int8x8_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_s8 #define vld3_s8(a) simde_vld3_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4x3_t simde_vld3_s16(int16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_s16(ptr); #else simde_int16x4_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int16x4x3_t r = { { simde_int16x4_from_private(r_[0]), simde_int16x4_from_private(r_[1]), simde_int16x4_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_s16 #define vld3_s16(a) simde_vld3_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2x3_t simde_vld3_s32(int32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_s32(ptr); #else simde_int32x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int32x2x3_t r = { { simde_int32x2_from_private(r_[0]), simde_int32x2_from_private(r_[1]), simde_int32x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_s32 #define vld3_s32(a) simde_vld3_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1x3_t simde_vld3_s64(int64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_s64(ptr); #else simde_int64x1_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int64x1x3_t r = { { simde_int64x1_from_private(r_[0]), simde_int64x1_from_private(r_[1]), simde_int64x1_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3_s64 #define vld3_s64(a) simde_vld3_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x3_t simde_vld3_u8(uint8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_u8(ptr); #else simde_uint8x8_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint8x8x3_t r = { { simde_uint8x8_from_private(r_[0]), simde_uint8x8_from_private(r_[1]), simde_uint8x8_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_u8 #define vld3_u8(a) simde_vld3_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x3_t simde_vld3_u16(uint16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_u16(ptr); #else simde_uint16x4_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint16x4x3_t r = { { simde_uint16x4_from_private(r_[0]), simde_uint16x4_from_private(r_[1]), simde_uint16x4_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_u16 #define vld3_u16(a) simde_vld3_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x3_t simde_vld3_u32(uint32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_u32(ptr); #else simde_uint32x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint32x2x3_t r = { { simde_uint32x2_from_private(r_[0]), simde_uint32x2_from_private(r_[1]), simde_uint32x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3_u32 #define vld3_u32(a) simde_vld3_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1x3_t simde_vld3_u64(uint64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3_u64(ptr); #else simde_uint64x1_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint64x1x3_t r = { { simde_uint64x1_from_private(r_[0]), simde_uint64x1_from_private(r_[1]), simde_uint64x1_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3_u64 #define vld3_u64(a) simde_vld3_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x3_t simde_vld3q_f32(simde_float32 const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_f32(ptr); #else simde_float32x4_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_float32x4x3_t r = { { simde_float32x4_from_private(r_[0]), simde_float32x4_from_private(r_[1]), simde_float32x4_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_f32 #define vld3q_f32(a) simde_vld3q_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2x3_t simde_vld3q_f64(simde_float64 const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld3q_f64(ptr); #else simde_float64x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_float64x2x3_t r = { { simde_float64x2_from_private(r_[0]), simde_float64x2_from_private(r_[1]), simde_float64x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3q_f64 #define vld3q_f64(a) simde_vld3q_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16x3_t simde_vld3q_s8(int8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_s8(ptr); #else simde_int8x16_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int8x16x3_t r = { { simde_int8x16_from_private(r_[0]), simde_int8x16_from_private(r_[1]), simde_int8x16_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_s8 #define vld3q_s8(a) simde_vld3q_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8x3_t simde_vld3q_s16(int16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_s16(ptr); #else simde_int16x8_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int16x8x3_t r = { { simde_int16x8_from_private(r_[0]), simde_int16x8_from_private(r_[1]), simde_int16x8_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_s16 #define vld3q_s16(a) simde_vld3q_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4x3_t simde_vld3q_s32(int32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_s32(ptr); #else simde_int32x4_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int32x4x3_t r = { { simde_int32x4_from_private(r_[0]), simde_int32x4_from_private(r_[1]), simde_int32x4_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_s32 #define vld3q_s32(a) simde_vld3q_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2x3_t simde_vld3q_s64(int64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld3q_s64(ptr); #else simde_int64x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_int64x2x3_t r = { { simde_int64x2_from_private(r_[0]), simde_int64x2_from_private(r_[1]), simde_int64x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3q_s64 #define vld3q_s64(a) simde_vld3q_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x3_t simde_vld3q_u8(uint8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_u8(ptr); #else simde_uint8x16_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint8x16x3_t r = { { simde_uint8x16_from_private(r_[0]), simde_uint8x16_from_private(r_[1]), simde_uint8x16_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_u8 #define vld3q_u8(a) simde_vld3q_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x3_t simde_vld3q_u16(uint16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_u16(ptr); #else simde_uint16x8_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint16x8x3_t r = { { simde_uint16x8_from_private(r_[0]), simde_uint16x8_from_private(r_[1]), simde_uint16x8_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_u16 #define vld3q_u16(a) simde_vld3q_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x3_t simde_vld3q_u32(uint32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld3q_u32(ptr); #else simde_uint32x4_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint32x4x3_t r = { { simde_uint32x4_from_private(r_[0]), simde_uint32x4_from_private(r_[1]), simde_uint32x4_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld3q_u32 #define vld3q_u32(a) simde_vld3q_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2x3_t simde_vld3q_u64(uint64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld3q_u64(ptr); #else simde_uint64x2_private r_[3]; for (size_t i = 0; i < (sizeof(r_) / sizeof(r_[0])); i++) { for (size_t j = 0 ; j < (sizeof(r_[0].values) / sizeof(r_[0].values[0])) ; j++) { r_[i].values[j] = ptr[i + (j * (sizeof(r_) / sizeof(r_[0])))]; } } simde_uint64x2x3_t r = { { simde_uint64x2_from_private(r_[0]), simde_uint64x2_from_private(r_[1]), simde_uint64x2_from_private(r_[2]) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld3q_u64 #define vld3q_u64(a) simde_vld3q_u64((a)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_LD3_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld3.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld4.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher */ #if !defined(SIMDE_ARM_NEON_LD4_H) #define SIMDE_ARM_NEON_LD4_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS #if HEDLEY_GCC_VERSION_CHECK(7,0,0) && !HEDLEY_GCC_VERSION_CHECK(9,0,0) SIMDE_DIAGNOSTIC_DISABLE_MAYBE_UNINITIAZILED_ #endif SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_float32x2x4_t simde_vld4_f32(simde_float32 const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_f32(ptr); #else simde_float32x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_float32x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_float32x2x4_t s_ = { { simde_float32x2_from_private(a_[0]), simde_float32x2_from_private(a_[1]), simde_float32x2_from_private(a_[2]), simde_float32x2_from_private(a_[3]) } }; return (s_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_f32 #define vld4_f32(a) simde_vld4_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1x4_t simde_vld4_f64(simde_float64 const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld4_f64(ptr); #else simde_float64x1_private a_[4]; for (size_t i = 0; i < (sizeof(simde_float64x1_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_float64x1x4_t s_ = { { simde_float64x1_from_private(a_[0]), simde_float64x1_from_private(a_[1]), simde_float64x1_from_private(a_[2]), simde_float64x1_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4_f64 #define vld4_f64(a) simde_vld4_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8x4_t simde_vld4_s8(int8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_s8(ptr); #else simde_int8x8_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int8x8_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int8x8x4_t s_ = { { simde_int8x8_from_private(a_[0]), simde_int8x8_from_private(a_[1]), simde_int8x8_from_private(a_[2]), simde_int8x8_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_s8 #define vld4_s8(a) simde_vld4_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4x4_t simde_vld4_s16(int16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_s16(ptr); #else simde_int16x4_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int16x4_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int16x4x4_t s_ = { { simde_int16x4_from_private(a_[0]), simde_int16x4_from_private(a_[1]), simde_int16x4_from_private(a_[2]), simde_int16x4_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_s16 #define vld4_s16(a) simde_vld4_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2x4_t simde_vld4_s32(int32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_s32(ptr); #else simde_int32x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int32x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int32x2x4_t s_ = { { simde_int32x2_from_private(a_[0]), simde_int32x2_from_private(a_[1]), simde_int32x2_from_private(a_[2]), simde_int32x2_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_s32 #define vld4_s32(a) simde_vld4_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1x4_t simde_vld4_s64(int64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_s64(ptr); #else simde_int64x1_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int64x1_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int64x1x4_t s_ = { { simde_int64x1_from_private(a_[0]), simde_int64x1_from_private(a_[1]), simde_int64x1_from_private(a_[2]), simde_int64x1_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4_s64 #define vld4_s64(a) simde_vld4_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x4_t simde_vld4_u8(uint8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_u8(ptr); #else simde_uint8x8_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint8x8_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint8x8x4_t s_ = { { simde_uint8x8_from_private(a_[0]), simde_uint8x8_from_private(a_[1]), simde_uint8x8_from_private(a_[2]), simde_uint8x8_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_u8 #define vld4_u8(a) simde_vld4_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x4_t simde_vld4_u16(uint16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_u16(ptr); #else simde_uint16x4_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint16x4_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint16x4x4_t s_ = { { simde_uint16x4_from_private(a_[0]), simde_uint16x4_from_private(a_[1]), simde_uint16x4_from_private(a_[2]), simde_uint16x4_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_u16 #define vld4_u16(a) simde_vld4_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x4_t simde_vld4_u32(uint32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_u32(ptr); #else simde_uint32x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint32x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint32x2x4_t s_ = { { simde_uint32x2_from_private(a_[0]), simde_uint32x2_from_private(a_[1]), simde_uint32x2_from_private(a_[2]), simde_uint32x2_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4_u32 #define vld4_u32(a) simde_vld4_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1x4_t simde_vld4_u64(uint64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4_u64(ptr); #else simde_uint64x1_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint64x1_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint64x1x4_t s_ = { { simde_uint64x1_from_private(a_[0]), simde_uint64x1_from_private(a_[1]), simde_uint64x1_from_private(a_[2]), simde_uint64x1_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4_u64 #define vld4_u64(a) simde_vld4_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x4_t simde_vld4q_f32(simde_float32 const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_f32(ptr); #else simde_float32x4_private a_[4]; for (size_t i = 0; i < (sizeof(simde_float32x4_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_float32x4x4_t s_ = { { simde_float32x4_from_private(a_[0]), simde_float32x4_from_private(a_[1]), simde_float32x4_from_private(a_[2]), simde_float32x4_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_f32 #define vld4q_f32(a) simde_vld4q_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2x4_t simde_vld4q_f64(simde_float64 const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld4q_f64(ptr); #else simde_float64x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_float64x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_float64x2x4_t s_ = { { simde_float64x2_from_private(a_[0]), simde_float64x2_from_private(a_[1]), simde_float64x2_from_private(a_[2]), simde_float64x2_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4q_f64 #define vld4q_f64(a) simde_vld4q_f64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16x4_t simde_vld4q_s8(int8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_s8(ptr); #else simde_int8x16_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int8x16_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int8x16x4_t s_ = { { simde_int8x16_from_private(a_[0]), simde_int8x16_from_private(a_[1]), simde_int8x16_from_private(a_[2]), simde_int8x16_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_s8 #define vld4q_s8(a) simde_vld4q_s8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8x4_t simde_vld4q_s16(int16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_s16(ptr); #else simde_int16x8_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int16x8_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int16x8x4_t s_ = { { simde_int16x8_from_private(a_[0]), simde_int16x8_from_private(a_[1]), simde_int16x8_from_private(a_[2]), simde_int16x8_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_s16 #define vld4q_s16(a) simde_vld4q_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4x4_t simde_vld4q_s32(int32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_s32(ptr); #else simde_int32x4_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int32x4_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int32x4x4_t s_ = { { simde_int32x4_from_private(a_[0]), simde_int32x4_from_private(a_[1]), simde_int32x4_from_private(a_[2]), simde_int32x4_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_s32 #define vld4q_s32(a) simde_vld4q_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2x4_t simde_vld4q_s64(int64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld4q_s64(ptr); #else simde_int64x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_int64x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_int64x2x4_t s_ = { { simde_int64x2_from_private(a_[0]), simde_int64x2_from_private(a_[1]), simde_int64x2_from_private(a_[2]), simde_int64x2_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4q_s64 #define vld4q_s64(a) simde_vld4q_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x4_t simde_vld4q_u8(uint8_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_u8(ptr); #else simde_uint8x16_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint8x16_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint8x16x4_t s_ = { { simde_uint8x16_from_private(a_[0]), simde_uint8x16_from_private(a_[1]), simde_uint8x16_from_private(a_[2]), simde_uint8x16_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_u8 #define vld4q_u8(a) simde_vld4q_u8((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x4_t simde_vld4q_u16(uint16_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_u16(ptr); #else simde_uint16x8_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint16x8_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint16x8x4_t s_ = { { simde_uint16x8_from_private(a_[0]), simde_uint16x8_from_private(a_[1]), simde_uint16x8_from_private(a_[2]), simde_uint16x8_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_u16 #define vld4q_u16(a) simde_vld4q_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x4_t simde_vld4q_u32(uint32_t const *ptr) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vld4q_u32(ptr); #else simde_uint32x4_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint32x4_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint32x4x4_t s_ = { { simde_uint32x4_from_private(a_[0]), simde_uint32x4_from_private(a_[1]), simde_uint32x4_from_private(a_[2]), simde_uint32x4_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vld4q_u32 #define vld4q_u32(a) simde_vld4q_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2x4_t simde_vld4q_u64(uint64_t const *ptr) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vld4q_u64(ptr); #else simde_uint64x2_private a_[4]; for (size_t i = 0; i < (sizeof(simde_uint64x2_t) / sizeof(*ptr)) * 4 ; i++) { a_[i % 4].values[i / 4] = ptr[i]; } simde_uint64x2x4_t s_ = { { simde_uint64x2_from_private(a_[0]), simde_uint64x2_from_private(a_[1]), simde_uint64x2_from_private(a_[2]), simde_uint64x2_from_private(a_[3]) } }; return s_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vld4q_u64 #define vld4q_u64(a) simde_vld4q_u64((a)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_LD4_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/ld4.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/max.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MAX_H) #define SIMDE_ARM_NEON_MAX_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmax_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) r_.values[i] = (a_.values[i] >= b_.values[i]) ? a_.values[i] : ((a_.values[i] < b_.values[i]) ? b_.values[i] : SIMDE_MATH_NANF); #else r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_f32 #define vmax_f32(a, b) simde_vmax_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmax_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmax_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) r_.values[i] = (a_.values[i] >= b_.values[i]) ? a_.values[i] : ((a_.values[i] < b_.values[i]) ? b_.values[i] : SIMDE_MATH_NAN); #else r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmax_f64 #define vmax_f64(a, b) simde_vmax_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmax_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s8(simde_vcgt_s8(a, b), a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_s8 #define vmax_s8(a, b) simde_vmax_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmax_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s16(simde_vcgt_s16(a, b), a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_s16 #define vmax_s16(a, b) simde_vmax_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmax_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s32(simde_vcgt_s32(a, b), a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_s32 #define vmax_s32(a, b) simde_vmax_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_x_vmax_s64(simde_int64x1_t a, simde_int64x1_t b) { #if SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s64(simde_vcgt_s64(a, b), a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int64x1_from_private(r_); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmax_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u8(simde_vcgt_u8(a, b), a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_u8 #define vmax_u8(a, b) simde_vmax_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmax_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u16(simde_vcgt_u16(a, b), a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_u16 #define vmax_u16(a, b) simde_vmax_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmax_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmax_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u32(simde_vcgt_u32(a, b), a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmax_u32 #define vmax_u32(a, b) simde_vmax_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_x_vmax_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u64(simde_vcgt_u64(a, b), a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint64x1_from_private(r_); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmaxq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_f32(a, b); #elif (defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE)) && defined(SIMDE_FAST_NANS) return vec_max(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128 nan_mask = _mm_cmpunord_ps(a_.m128, b_.m128); __m128 res = _mm_max_ps(a_.m128, b_.m128); res = _mm_andnot_ps(nan_mask, res); res = _mm_or_ps(res, _mm_and_ps(_mm_set1_ps(SIMDE_MATH_NANF), nan_mask)); r_.m128 = res; #else r_.m128 = _mm_max_ps(a_.m128, b_.m128); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_max(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) r_.values[i] = (a_.values[i] >= b_.values[i]) ? a_.values[i] : ((a_.values[i] < b_.values[i]) ? b_.values[i] : SIMDE_MATH_NANF); #else r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_f32 #define vmaxq_f32(a, b) simde_vmaxq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmaxq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmaxq_f64(a, b); #elif (defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE)) && defined(SIMDE_FAST_NANS) return vec_max(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128d nan_mask = _mm_cmpunord_pd(a_.m128d, b_.m128d); __m128d res = _mm_max_pd(a_.m128d, b_.m128d); res = _mm_andnot_pd(nan_mask, res); res = _mm_or_pd(res, _mm_and_pd(_mm_set1_pd(SIMDE_MATH_NAN), nan_mask)); r_.m128d = res; #else r_.m128d = _mm_max_pd(a, b); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_max(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) r_.values[i] = (a_.values[i] >= b_.values[i]) ? a_.values[i] : ((a_.values[i] < b_.values[i]) ? b_.values[i] : SIMDE_MATH_NAN); #else r_.values[i] = (a_.values[i] > b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxq_f64 #define vmaxq_f64(a, b) simde_vmaxq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmaxq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE4_1_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_max_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_max(a_.v128, b_.v128); #endif return simde_int8x16_from_private(r_); #else return simde_vbslq_s8(simde_vcgtq_s8(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_s8 #define vmaxq_s8(a, b) simde_vmaxq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmaxq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_max_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_max(a_.v128, b_.v128); #endif return simde_int16x8_from_private(r_); #else return simde_vbslq_s16(simde_vcgtq_s16(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_s16 #define vmaxq_s16(a, b) simde_vmaxq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmaxq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE4_1_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_max_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_max(a_.v128, b_.v128); #endif return simde_int32x4_from_private(r_); #else return simde_vbslq_s32(simde_vcgtq_s32(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_s32 #define vmaxq_s32(a, b) simde_vmaxq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_x_vmaxq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #else return simde_vbslq_s64(simde_vcgtq_s64(a, b), a, b); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmaxq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE2_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_max_epu8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_max(a_.v128, b_.v128); #endif return simde_uint8x16_from_private(r_); #else return simde_vbslq_u8(simde_vcgtq_u8(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_u8 #define vmaxq_u8(a, b) simde_vmaxq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmaxq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE4_1_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_max_epu16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_max(a_.v128, b_.v128); #endif return simde_uint16x8_from_private(r_); #else return simde_vbslq_u16(simde_vcgtq_u16(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_u16 #define vmaxq_u16(a, b) simde_vmaxq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmaxq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmaxq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #elif \ defined(SIMDE_X86_SSE4_1_NATIVE) || \ defined(SIMDE_WASM_SIMD128_NATIVE) simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_max_epu32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_max(a_.v128, b_.v128); #endif return simde_uint32x4_from_private(r_); #else return simde_vbslq_u32(simde_vcgtq_u32(a, b), a, b); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxq_u32 #define vmaxq_u32(a, b) simde_vmaxq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_x_vmaxq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_max(a, b); #else return simde_vbslq_u64(simde_vcgtq_u64(a, b), a, b); #endif } SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MAX_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/max.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/maxnm.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MAXNM_H) #define SIMDE_ARM_NEON_MAXNM_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmaxnm_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && (__ARM_NEON_FP >= 6) return vmaxnm_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmaxf) r_.values[i] = simde_math_fmaxf(a_.values[i], b_.values[i]); #else if (a_.values[i] > b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] < b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxnm_f32 #define vmaxnm_f32(a, b) simde_vmaxnm_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmaxnm_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmaxnm_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmax) r_.values[i] = simde_math_fmax(a_.values[i], b_.values[i]); #else if (a_.values[i] > b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] < b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxnm_f64 #define vmaxnm_f64(a, b) simde_vmaxnm_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmaxnmq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && (__ARM_NEON_FP >= 6) return vmaxnmq_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_max(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128 r = _mm_max_ps(a_.m128, b_.m128); __m128 bnan = _mm_cmpunord_ps(b_.m128, b_.m128); r = _mm_andnot_ps(bnan, r); r = _mm_or_ps(r, _mm_and_ps(a_.m128, bnan)); r_.m128 = r; #else r_.m128 = _mm_max_ps(a_.m128, b_.m128); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) && defined(SIMDE_FAST_NANS) r_.v128 = wasm_f32x4_max(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmaxf) r_.values[i] = simde_math_fmaxf(a_.values[i], b_.values[i]); #else if (a_.values[i] > b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] < b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmaxnmq_f32 #define vmaxnmq_f32(a, b) simde_vmaxnmq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmaxnmq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmaxnmq_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_max(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128d r = _mm_max_pd(a_.m128d, b_.m128d); __m128d bnan = _mm_cmpunord_pd(b_.m128d, b_.m128d); r = _mm_andnot_pd(bnan, r); r = _mm_or_pd(r, _mm_and_pd(a_.m128d, bnan)); r_.m128d = r; #else r_.m128d = _mm_max_pd(a_.m128d, b_.m128d); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) && defined(SIMDE_FAST_NANS) r_.v128 = wasm_f64x2_max(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmax) r_.values[i] = simde_math_fmax(a_.values[i], b_.values[i]); #else if (a_.values[i] > b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] < b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxnmq_f64 #define vmaxnmq_f64(a, b) simde_vmaxnmq_f64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MAXNM_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/maxnm.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/maxv.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MAXV_H) #define SIMDE_ARM_NEON_MAXV_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vmaxv_f32(simde_float32x2_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); r = -SIMDE_MATH_INFINITYF; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_f32 #define vmaxv_f32(v) simde_vmaxv_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vmaxv_s8(simde_int8x8_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_s8(a); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); r = INT8_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_s8 #define vmaxv_s8(v) simde_vmaxv_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vmaxv_s16(simde_int16x4_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_s16(a); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); r = INT16_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_s16 #define vmaxv_s16(v) simde_vmaxv_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vmaxv_s32(simde_int32x2_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_s32(a); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); r = INT32_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_s32 #define vmaxv_s32(v) simde_vmaxv_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vmaxv_u8(simde_uint8x8_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_u8(a); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_u8 #define vmaxv_u8(v) simde_vmaxv_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vmaxv_u16(simde_uint16x4_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_u16(a); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_u16 #define vmaxv_u16(v) simde_vmaxv_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vmaxv_u32(simde_uint32x2_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxv_u32(a); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxv_u32 #define vmaxv_u32(v) simde_vmaxv_u32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vmaxvq_f32(simde_float32x4_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); r = -SIMDE_MATH_INFINITYF; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_f32 #define vmaxvq_f32(v) simde_vmaxvq_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vmaxvq_f64(simde_float64x2_t a) { simde_float64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_f64(a); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); r = -SIMDE_MATH_INFINITY; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_f64 #define vmaxvq_f64(v) simde_vmaxvq_f64(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vmaxvq_s8(simde_int8x16_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_s8(a); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); r = INT8_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_s8 #define vmaxvq_s8(v) simde_vmaxvq_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vmaxvq_s16(simde_int16x8_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_s16(a); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); r = INT16_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_s16 #define vmaxvq_s16(v) simde_vmaxvq_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vmaxvq_s32(simde_int32x4_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); r = INT32_MIN; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_s32 #define vmaxvq_s32(v) simde_vmaxvq_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vmaxvq_u8(simde_uint8x16_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_u8(a); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_u8 #define vmaxvq_u8(v) simde_vmaxvq_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vmaxvq_u16(simde_uint16x8_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_u16(a); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_u16 #define vmaxvq_u16(v) simde_vmaxvq_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vmaxvq_u32(simde_uint32x4_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vmaxvq_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a); r = 0; SIMDE_VECTORIZE_REDUCTION(max:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] > r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmaxvq_u32 #define vmaxvq_u32(v) simde_vmaxvq_u32(v) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MAXV_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/maxv.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/min.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MIN_H) #define SIMDE_ARM_NEON_MIN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmin_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_f32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(64) simde_float32x2_t r = simde_vbsl_f32(simde_vcgt_f32(b, a), a, b); #if !defined(SIMDE_FAST_NANS) r = simde_vbsl_f32(simde_vceq_f32(a, a), simde_vbsl_f32(simde_vceq_f32(b, b), r, b), a); #endif return r; #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) if (simde_math_isnanf(a_.values[i])) { r_.values[i] = a_.values[i]; } else if (simde_math_isnanf(b_.values[i])) { r_.values[i] = b_.values[i]; } else { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #else r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_f32 #define vmin_f32(a, b) simde_vmin_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmin_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmin_f64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(64) simde_float64x1_t r = simde_vbsl_f64(simde_vcgt_f64(b, a), a, b); #if !defined(SIMDE_FAST_NANS) r = simde_vbsl_f64(simde_vceq_f64(a, a), simde_vbsl_f64(simde_vceq_f64(b, b), r, b), a); #endif return r; #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) if (simde_math_isnan(a_.values[i])) { r_.values[i] = a_.values[i]; } else if (simde_math_isnan(b_.values[i])) { r_.values[i] = b_.values[i]; } else { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #else r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmin_f64 #define vmin_f64(a, b) simde_vmin_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmin_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s8(simde_vcgt_s8(b, a), a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_s8 #define vmin_s8(a, b) simde_vmin_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmin_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s16(simde_vcgt_s16(b, a), a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_s16 #define vmin_s16(a, b) simde_vmin_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmin_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s32(simde_vcgt_s32(b, a), a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_s32 #define vmin_s32(a, b) simde_vmin_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_x_vmin_s64(simde_int64x1_t a, simde_int64x1_t b) { #if SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_s64(simde_vcgt_s64(b, a), a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_int64x1_from_private(r_); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmin_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u8(simde_vcgt_u8(b, a), a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_u8 #define vmin_u8(a, b) simde_vmin_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmin_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u16(simde_vcgt_u16(b, a), a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_u16 #define vmin_u16(a, b) simde_vmin_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmin_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmin_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u32(simde_vcgt_u32(b, a), a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmin_u32 #define vmin_u32(a, b) simde_vmin_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_x_vmin_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vbsl_u64(simde_vcgt_u64(b, a), a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint64x1_from_private(r_); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vminq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_f32(a, b); #elif (defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE)) && defined(SIMDE_FAST_NANS) return vec_min(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) && defined(SIMDE_FAST_NANS) r_.m128 = _mm_min_ps(a_.m128, b_.m128); #elif defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_blendv_ps(_mm_set1_ps(SIMDE_MATH_NANF), _mm_min_ps(a_.m128, b_.m128), _mm_cmpord_ps(a_.m128, b_.m128)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) if (simde_math_isnanf(a_.values[i])) { r_.values[i] = a_.values[i]; } else if (simde_math_isnanf(b_.values[i])) { r_.values[i] = b_.values[i]; } else { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #else r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_f32 #define vminq_f32(a, b) simde_vminq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vminq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vminq_f64(a, b); #elif (defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE)) && defined(SIMDE_FAST_NANS) return vec_min(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) && defined(SIMDE_FAST_NANS) r_.m128d = _mm_min_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_blendv_pd(_mm_set1_pd(SIMDE_MATH_NAN), _mm_min_pd(a_.m128d, b_.m128d), _mm_cmpord_pd(a_.m128d, b_.m128d)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if !defined(SIMDE_FAST_NANS) if (simde_math_isnan(a_.values[i])) { r_.values[i] = a_.values[i]; } else if (simde_math_isnan(b_.values[i])) { r_.values[i] = b_.values[i]; } else { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #else r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; #endif } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminq_f64 #define vminq_f64(a, b) simde_vminq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vminq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_min_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_s8 #define vminq_s8(a, b) simde_vminq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vminq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_min_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_s16 #define vminq_s16(a, b) simde_vminq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vminq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_min_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_s32 #define vminq_s32(a, b) simde_vminq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_x_vminq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_min_epi64(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vminq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_min_epu8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_u8 #define vminq_u8(a, b) simde_vminq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vminq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_min_epu16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_u16 #define vminq_u16(a, b) simde_vminq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vminq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vminq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128i = _mm_min_epu32(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u32x4_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminq_u32 #define vminq_u32(a, b) simde_vminq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_x_vminq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) || defined(SIMDE_ZARCH_ZVECTOR_13_NATIVE) return vec_min(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] < b_.values[i]) ? a_.values[i] : b_.values[i]; } return simde_uint64x2_from_private(r_); #endif } SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MIN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/min.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/minnm.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MINNM_H) #define SIMDE_ARM_NEON_MINNM_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vminnm_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && (__ARM_NEON_FP >= 6) return vminnm_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fminf) r_.values[i] = simde_math_fminf(a_.values[i], b_.values[i]); #else if (a_.values[i] < b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] > b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminnm_f32 #define vminnm_f32(a, b) simde_vminnm_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vminnm_f64(simde_float64x1_t a, simde_float64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vminnm_f64(a, b); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmin) r_.values[i] = simde_math_fmin(a_.values[i], b_.values[i]); #else if (a_.values[i] < b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] > b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminnm_f64 #define vminnm_f64(a, b) simde_vminnm_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vminnmq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && (__ARM_NEON_FP >= 6) return vminnmq_f32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) && defined(SIMDE_FAST_NANS) return simde_vbslq_f32(simde_vcleq_f32(a, b), a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_min(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128 r = _mm_min_ps(a_.m128, b_.m128); __m128 bnan = _mm_cmpunord_ps(b_.m128, b_.m128); r = _mm_andnot_ps(bnan, r); r_.m128 = _mm_or_ps(r, _mm_and_ps(a_.m128, bnan)); #else r_.m128 = _mm_min_ps(a_.m128, b_.m128); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) && defined(SIMDE_FAST_NANS) r_.v128 = wasm_f32x4_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fminf) r_.values[i] = simde_math_fminf(a_.values[i], b_.values[i]); #else if (a_.values[i] < b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] > b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vminnmq_f32 #define vminnmq_f32(a, b) simde_vminnmq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vminnmq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vminnmq_f64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) && defined(SIMDE_FAST_NANS) return simde_vbslq_f64(simde_vcleq_f64(a, b), a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_min(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) #if !defined(SIMDE_FAST_NANS) __m128d r = _mm_min_pd(a_.m128d, b_.m128d); __m128d bnan = _mm_cmpunord_pd(b_.m128d, b_.m128d); r = _mm_andnot_pd(bnan, r); r_.m128d = _mm_or_pd(r, _mm_and_pd(a_.m128d, bnan)); #else r_.m128d = _mm_min_pd(a_.m128d, b_.m128d); #endif #elif defined(SIMDE_WASM_SIMD128_NATIVE) && defined(SIMDE_FAST_NANS) r_.v128 = wasm_f64x2_min(a_.v128, b_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if defined(simde_math_fmin) r_.values[i] = simde_math_fmin(a_.values[i], b_.values[i]); #else if (a_.values[i] < b_.values[i]) { r_.values[i] = a_.values[i]; } else if (a_.values[i] > b_.values[i]) { r_.values[i] = b_.values[i]; } else if (a_.values[i] == a_.values[i]) { r_.values[i] = a_.values[i]; } else { r_.values[i] = b_.values[i]; } #endif } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminnmq_f64 #define vminnmq_f64(a, b) simde_vminnmq_f64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MINNM_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/minnm.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/minv.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MINV_H) #define SIMDE_ARM_NEON_MINV_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vminv_f32(simde_float32x2_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_f32(a); #else simde_float32x2_private a_ = simde_float32x2_to_private(a); r = SIMDE_MATH_INFINITYF; #if defined(SIMDE_FAST_NANS) SIMDE_VECTORIZE_REDUCTION(min:r) #else SIMDE_VECTORIZE #endif for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { #if defined(SIMDE_FAST_NANS) r = a_.values[i] < r ? a_.values[i] : r; #else r = (a_.values[i] < r) ? a_.values[i] : ((a_.values[i] >= r) ? r : ((a_.values[i] == a_.values[i]) ? r : a_.values[i])); #endif } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_f32 #define vminv_f32(v) simde_vminv_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vminv_s8(simde_int8x8_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_s8(a); #else simde_int8x8_private a_ = simde_int8x8_to_private(a); r = INT8_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_s8 #define vminv_s8(v) simde_vminv_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vminv_s16(simde_int16x4_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_s16(a); #else simde_int16x4_private a_ = simde_int16x4_to_private(a); r = INT16_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_s16 #define vminv_s16(v) simde_vminv_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vminv_s32(simde_int32x2_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_s32(a); #else simde_int32x2_private a_ = simde_int32x2_to_private(a); r = INT32_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_s32 #define vminv_s32(v) simde_vminv_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vminv_u8(simde_uint8x8_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_u8(a); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a); r = UINT8_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_u8 #define vminv_u8(v) simde_vminv_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vminv_u16(simde_uint16x4_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_u16(a); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a); r = UINT16_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_u16 #define vminv_u16(v) simde_vminv_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vminv_u32(simde_uint32x2_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminv_u32(a); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a); r = UINT32_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminv_u32 #define vminv_u32(v) simde_vminv_u32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32_t simde_vminvq_f32(simde_float32x4_t a) { simde_float32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_f32(a); #else simde_float32x4_private a_ = simde_float32x4_to_private(a); r = SIMDE_MATH_INFINITYF; #if defined(SIMDE_FAST_NANS) SIMDE_VECTORIZE_REDUCTION(min:r) #else SIMDE_VECTORIZE #endif for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { #if defined(SIMDE_FAST_NANS) r = a_.values[i] < r ? a_.values[i] : r; #else r = (a_.values[i] < r) ? a_.values[i] : ((a_.values[i] >= r) ? r : ((a_.values[i] == a_.values[i]) ? r : a_.values[i])); #endif } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_f32 #define vminvq_f32(v) simde_vminvq_f32(v) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64_t simde_vminvq_f64(simde_float64x2_t a) { simde_float64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_f64(a); #else simde_float64x2_private a_ = simde_float64x2_to_private(a); r = SIMDE_MATH_INFINITY; #if defined(SIMDE_FAST_NANS) SIMDE_VECTORIZE_REDUCTION(min:r) #else SIMDE_VECTORIZE #endif for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { #if defined(SIMDE_FAST_NANS) r = a_.values[i] < r ? a_.values[i] : r; #else r = (a_.values[i] < r) ? a_.values[i] : ((a_.values[i] >= r) ? r : ((a_.values[i] == a_.values[i]) ? r : a_.values[i])); #endif } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_f64 #define vminvq_f64(v) simde_vminvq_f64(v) #endif SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vminvq_s8(simde_int8x16_t a) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_s8(a); #else simde_int8x16_private a_ = simde_int8x16_to_private(a); r = INT8_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_s8 #define vminvq_s8(v) simde_vminvq_s8(v) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vminvq_s16(simde_int16x8_t a) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_s16(a); #else simde_int16x8_private a_ = simde_int16x8_to_private(a); r = INT16_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_s16 #define vminvq_s16(v) simde_vminvq_s16(v) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vminvq_s32(simde_int32x4_t a) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_s32(a); #else simde_int32x4_private a_ = simde_int32x4_to_private(a); r = INT32_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_s32 #define vminvq_s32(v) simde_vminvq_s32(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vminvq_u8(simde_uint8x16_t a) { uint8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_u8(a); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a); r = UINT8_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_u8 #define vminvq_u8(v) simde_vminvq_u8(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vminvq_u16(simde_uint16x8_t a) { uint16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_u16(a); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a); r = UINT16_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_u16 #define vminvq_u16(v) simde_vminvq_u16(v) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vminvq_u32(simde_uint32x4_t a) { uint32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vminvq_u32(a); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a); r = UINT32_MAX; SIMDE_VECTORIZE_REDUCTION(min:r) for (size_t i = 0 ; i < (sizeof(a_.values) / sizeof(a_.values[0])) ; i++) { r = a_.values[i] < r ? a_.values[i] : r; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vminvq_u32 #define vminvq_u32(v) simde_vminvq_u32(v) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MINV_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/minv.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mla.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MLA_H) #define SIMDE_ARM_NEON_MLA_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmla_f32(simde_float32x2_t a, simde_float32x2_t b, simde_float32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_f32(a, b, c); #else return simde_vadd_f32(simde_vmul_f32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_f32 #define vmla_f32(a, b, c) simde_vmla_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmla_f64(simde_float64x1_t a, simde_float64x1_t b, simde_float64x1_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmla_f64(a, b, c); #else return simde_vadd_f64(simde_vmul_f64(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmla_f64 #define vmla_f64(a, b, c) simde_vmla_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmla_s8(simde_int8x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_s8(a, b, c); #else return simde_vadd_s8(simde_vmul_s8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_s8 #define vmla_s8(a, b, c) simde_vmla_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmla_s16(simde_int16x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_s16(a, b, c); #else return simde_vadd_s16(simde_vmul_s16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_s16 #define vmla_s16(a, b, c) simde_vmla_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmla_s32(simde_int32x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_s32(a, b, c); #else return simde_vadd_s32(simde_vmul_s32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_s32 #define vmla_s32(a, b, c) simde_vmla_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmla_u8(simde_uint8x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_u8(a, b, c); #else return simde_vadd_u8(simde_vmul_u8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_u8 #define vmla_u8(a, b, c) simde_vmla_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmla_u16(simde_uint16x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_u16(a, b, c); #else return simde_vadd_u16(simde_vmul_u16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_u16 #define vmla_u16(a, b, c) simde_vmla_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmla_u32(simde_uint32x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_u32(a, b, c); #else return simde_vadd_u32(simde_vmul_u32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_u32 #define vmla_u32(a, b, c) simde_vmla_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmlaq_f32(simde_float32x4_t a, simde_float32x4_t b, simde_float32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_f32(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_madd(b, c, a); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b), c_ = simde_float32x4_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128 = _mm_fmadd_ps(b_.m128, c_.m128, a_.m128); #endif return simde_float32x4_from_private(r_); #else return simde_vaddq_f32(simde_vmulq_f32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_f32 #define vmlaq_f32(a, b, c) simde_vmlaq_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmlaq_f64(simde_float64x2_t a, simde_float64x2_t b, simde_float64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlaq_f64(a, b, c); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_madd(b, c, a); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b), c_ = simde_float64x2_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128d = _mm_fmadd_pd(b_.m128d, c_.m128d, a_.m128d); #endif return simde_float64x2_from_private(r_); #else return simde_vaddq_f64(simde_vmulq_f64(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlaq_f64 #define vmlaq_f64(a, b, c) simde_vmlaq_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmlaq_s8(simde_int8x16_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_s8(a, b, c); #else return simde_vaddq_s8(simde_vmulq_s8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_s8 #define vmlaq_s8(a, b, c) simde_vmlaq_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlaq_s16(simde_int16x8_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_s16(a, b, c); #else return simde_vaddq_s16(simde_vmulq_s16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_s16 #define vmlaq_s16(a, b, c) simde_vmlaq_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlaq_s32(simde_int32x4_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_s32(a, b, c); #else return simde_vaddq_s32(simde_vmulq_s32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_s32 #define vmlaq_s32(a, b, c) simde_vmlaq_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmlaq_u8(simde_uint8x16_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_u8(a, b, c); #else return simde_vaddq_u8(simde_vmulq_u8(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_u8 #define vmlaq_u8(a, b, c) simde_vmlaq_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlaq_u16(simde_uint16x8_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_u16(a, b, c); #else return simde_vaddq_u16(simde_vmulq_u16(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_u16 #define vmlaq_u16(a, b, c) simde_vmlaq_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlaq_u32(simde_uint32x4_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_u32(a, b, c); #else return simde_vaddq_u32(simde_vmulq_u32(b, c), a); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_u32 #define vmlaq_u32(a, b, c) simde_vmlaq_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLA_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mla.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mla_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MLA_N_H) #define SIMDE_ARM_NEON_MLA_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MUL_N_H) #define SIMDE_ARM_NEON_MUL_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmul_n_f32(simde_float32x2_t a, simde_float32 b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_n_f32(a, b); #else return simde_vmul_f32(a, simde_vdup_n_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_n_f32 #define vmul_n_f32(a, b) simde_vmul_n_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmul_n_f64(simde_float64x1_t a, simde_float64 b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmul_n_f64(a, b); #else return simde_vmul_f64(a, simde_vdup_n_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmul_n_f64 #define vmul_n_f64(a, b) simde_vmul_n_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmul_n_s16(simde_int16x4_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_n_s16(a, b); #else return simde_vmul_s16(a, simde_vdup_n_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_n_s16 #define vmul_n_s16(a, b) simde_vmul_n_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmul_n_s32(simde_int32x2_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_n_s32(a, b); #else return simde_vmul_s32(a, simde_vdup_n_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_n_s32 #define vmul_n_s32(a, b) simde_vmul_n_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmul_n_u16(simde_uint16x4_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_n_u16(a, b); #else return simde_vmul_u16(a, simde_vdup_n_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_n_u16 #define vmul_n_u16(a, b) simde_vmul_n_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmul_n_u32(simde_uint32x2_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmul_n_u32(a, b); #else return simde_vmul_u32(a, simde_vdup_n_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_n_u32 #define vmul_n_u32(a, b) simde_vmul_n_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmulq_n_f32(simde_float32x4_t a, simde_float32 b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_n_f32(a, b); #else return simde_vmulq_f32(a, simde_vdupq_n_f32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_n_f32 #define vmulq_n_f32(a, b) simde_vmulq_n_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmulq_n_f64(simde_float64x2_t a, simde_float64 b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmulq_n_f64(a, b); #else return simde_vmulq_f64(a, simde_vdupq_n_f64(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_n_f64 #define vmulq_n_f64(a, b) simde_vmulq_n_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmulq_n_s16(simde_int16x8_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_n_s16(a, b); #else return simde_vmulq_s16(a, simde_vdupq_n_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_n_s16 #define vmulq_n_s16(a, b) simde_vmulq_n_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmulq_n_s32(simde_int32x4_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_n_s32(a, b); #else return simde_vmulq_s32(a, simde_vdupq_n_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_n_s32 #define vmulq_n_s32(a, b) simde_vmulq_n_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmulq_n_u16(simde_uint16x8_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_n_u16(a, b); #else return simde_vmulq_u16(a, simde_vdupq_n_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_n_u16 #define vmulq_n_u16(a, b) simde_vmulq_n_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmulq_n_u32(simde_uint32x4_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmulq_n_u32(a, b); #else return simde_vmulq_u32(a, simde_vdupq_n_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_n_u32 #define vmulq_n_u32(a, b) simde_vmulq_n_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MUL_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul_n.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmla_n_f32(simde_float32x2_t a, simde_float32x2_t b, simde_float32 c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_n_f32(a, b, c); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) && !defined(SIMDE_BUG_GCC_53784) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_n_f32 #define vmla_n_f32(a, b, c) simde_vmla_n_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmla_n_s16(simde_int16x4_t a, simde_int16x4_t b, int16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_n_s16(a, b, c); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) && !defined(SIMDE_BUG_GCC_53784) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_n_s16 #define vmla_n_s16(a, b, c) simde_vmla_n_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmla_n_s32(simde_int32x2_t a, simde_int32x2_t b, int32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_n_s32(a, b, c); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_n_s32 #define vmla_n_s32(a, b, c) simde_vmla_n_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmla_n_u16(simde_uint16x4_t a, simde_uint16x4_t b, uint16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_n_u16(a, b, c); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_n_u16 #define vmla_n_u16(a, b, c) simde_vmla_n_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmla_n_u32(simde_uint32x2_t a, simde_uint32x2_t b, uint32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmla_n_u32(a, b, c); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmla_n_u32 #define vmla_n_u32(a, b, c) simde_vmla_n_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmlaq_n_f32(simde_float32x4_t a, simde_float32x4_t b, simde_float32 c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_n_f32(a, b, c); #elif SIMDE_NATURAL_VECTOR_SIZE_LE(128) return simde_vaddq_f32(simde_vmulq_n_f32(b, c), a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) && !defined(SIMDE_BUG_GCC_53784) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_n_f32 #define vmlaq_n_f32(a, b, c) simde_vmlaq_n_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlaq_n_s16(simde_int16x8_t a, simde_int16x8_t b, int16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_n_s16(a, b, c); #elif SIMDE_NATURAL_VECTOR_SIZE_LE(128) return simde_vaddq_s16(simde_vmulq_n_s16(b, c), a); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) && !defined(SIMDE_BUG_GCC_53784) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_n_s16 #define vmlaq_n_s16(a, b, c) simde_vmlaq_n_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlaq_n_s32(simde_int32x4_t a, simde_int32x4_t b, int32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_n_s32(a, b, c); #elif SIMDE_NATURAL_VECTOR_SIZE_LE(128) return simde_vaddq_s32(simde_vmulq_n_s32(b, c), a); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_n_s32 #define vmlaq_n_s32(a, b, c) simde_vmlaq_n_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlaq_n_u16(simde_uint16x8_t a, simde_uint16x8_t b, uint16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_n_u16(a, b, c); #elif SIMDE_NATURAL_VECTOR_SIZE_LE(128) return simde_vaddq_u16(simde_vmulq_n_u16(b, c), a); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_n_u16 #define vmlaq_n_u16(a, b, c) simde_vmlaq_n_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlaq_n_u32(simde_uint32x4_t a, simde_uint32x4_t b, uint32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlaq_n_u32(a, b, c); #elif SIMDE_NATURAL_VECTOR_SIZE_LE(128) return simde_vaddq_u32(simde_vmulq_n_u32(b, c), a); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (b_.values * c) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c) + a_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlaq_n_u32 #define vmlaq_n_u32(a, b, c) simde_vmlaq_n_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLA_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mla_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MLAL_H) #define SIMDE_ARM_NEON_MLAL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlal_s8(simde_int16x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_s8(a, b, c); #else return simde_vmlaq_s16(a, simde_vmovl_s8(b), simde_vmovl_s8(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_s8 #define vmlal_s8(a, b, c) simde_vmlal_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlal_s16(simde_int32x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_s16(a, b, c); #else return simde_vmlaq_s32(a, simde_vmovl_s16(b), simde_vmovl_s16(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_s16 #define vmlal_s16(a, b, c) simde_vmlal_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlal_s32(simde_int64x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_s32(a, b, c); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(simde_vmovl_s32(b)), c_ = simde_int64x2_to_private(simde_vmovl_s32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_s32 #define vmlal_s32(a, b, c) simde_vmlal_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlal_u8(simde_uint16x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_u8(a, b, c); #else return simde_vmlaq_u16(a, simde_vmovl_u8(b), simde_vmovl_u8(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_u8 #define vmlal_u8(a, b, c) simde_vmlal_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlal_u16(simde_uint32x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_u16(a, b, c); #else return simde_vmlaq_u32(a, simde_vmovl_u16(b), simde_vmovl_u16(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_u16 #define vmlal_u16(a, b, c) simde_vmlal_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlal_u32(simde_uint64x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_u32(a, b, c); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(simde_vmovl_u32(b)), c_ = simde_uint64x2_to_private(simde_vmovl_u32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_u32 #define vmlal_u32(a, b, c) simde_vmlal_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLAL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MLAL_HIGH_H) #define SIMDE_ARM_NEON_MLAL_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlal_high_s8(simde_int16x8_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_s8(a, b, c); #else return simde_vmlaq_s16(a, simde_vmovl_high_s8(b), simde_vmovl_high_s8(c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_s8 #define vmlal_high_s8(a, b, c) simde_vmlal_high_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlal_high_s16(simde_int32x4_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_s16(a, b, c); #else return simde_vmlaq_s32(a, simde_vmovl_high_s16(b), simde_vmovl_high_s16(c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_s16 #define vmlal_high_s16(a, b, c) simde_vmlal_high_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlal_high_s32(simde_int64x2_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_s32(a, b, c); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(simde_vmovl_high_s32(b)), c_ = simde_int64x2_to_private(simde_vmovl_high_s32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_s32 #define vmlal_high_s32(a, b, c) simde_vmlal_high_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlal_high_u8(simde_uint16x8_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_u8(a, b, c); #else return simde_vmlaq_u16(a, simde_vmovl_high_u8(b), simde_vmovl_high_u8(c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_u8 #define vmlal_high_u8(a, b, c) simde_vmlal_high_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlal_high_u16(simde_uint32x4_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_u16(a, b, c); #else return simde_vmlaq_u32(a, simde_vmovl_high_u16(b), simde_vmovl_high_u16(c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_u16 #define vmlal_high_u16(a, b, c) simde_vmlal_high_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlal_high_u32(simde_uint64x2_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlal_high_u32(a, b, c); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(simde_vmovl_high_u32(b)), c_ = simde_uint64x2_to_private(simde_vmovl_high_u32(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlal_high_u32 #define vmlal_high_u32(a, b, c) simde_vmlal_high_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLAL_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MLAL_N_H) #define SIMDE_ARM_NEON_MLAL_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlal_n_s16(simde_int32x4_t a, simde_int16x4_t b, int16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_n_s16(a, b, c); #else return simde_vmlaq_s32(a, simde_vmovl_s16(b), simde_vdupq_n_s32(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_n_s16 #define vmlal_n_s16(a, b, c) simde_vmlal_n_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlal_n_s32(simde_int64x2_t a, simde_int32x2_t b, int32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_n_s32(a, b, c); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(simde_vmovl_s32(b)), c_ = simde_int64x2_to_private(simde_vdupq_n_s64(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_n_s32 #define vmlal_n_s32(a, b, c) simde_vmlal_n_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlal_n_u16(simde_uint32x4_t a, simde_uint16x4_t b, uint16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_n_u16(a, b, c); #else return simde_vmlaq_u32(a, simde_vmovl_u16(b), simde_vdupq_n_u32(c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_n_u16 #define vmlal_n_u16(a, b, c) simde_vmlal_n_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlal_n_u32(simde_uint64x2_t a, simde_uint32x2_t b, uint32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlal_n_u32(a, b, c); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(simde_vmovl_u32(b)), c_ = simde_uint64x2_to_private(simde_vdupq_n_u64(c)); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = (b_.values * c_.values) + a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] * c_.values[i]) + a_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlal_n_u32 #define vmlal_n_u32(a, b, c) simde_vmlal_n_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLAL_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlal_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mls.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MLS_H) #define SIMDE_ARM_NEON_MLS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmls_f32(simde_float32x2_t a, simde_float32x2_t b, simde_float32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_f32(a, b, c); #else return simde_vsub_f32(a, simde_vmul_f32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_f32 #define vmls_f32(a, b, c) simde_vmls_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmls_f64(simde_float64x1_t a, simde_float64x1_t b, simde_float64x1_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmls_f64(a, b, c); #else return simde_vsub_f64(a, simde_vmul_f64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_f64 #define vmls_f64(a, b, c) simde_vmls_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vmls_s8(simde_int8x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_s8(a, b, c); #else return simde_vsub_s8(a, simde_vmul_s8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_s8 #define vmls_s8(a, b, c) simde_vmls_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmls_s16(simde_int16x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_s16(a, b, c); #else return simde_vsub_s16(a, simde_vmul_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_s16 #define vmls_s16(a, b, c) simde_vmls_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmls_s32(simde_int32x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_s32(a, b, c); #else return simde_vsub_s32(a, simde_vmul_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_s32 #define vmls_s32(a, b, c) simde_vmls_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vmls_u8(simde_uint8x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_u8(a, b, c); #else return simde_vsub_u8(a, simde_vmul_u8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_u8 #define vmls_u8(a, b, c) simde_vmls_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmls_u16(simde_uint16x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_u16(a, b, c); #else return simde_vsub_u16(a, simde_vmul_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_u16 #define vmls_u16(a, b, c) simde_vmls_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmls_u32(simde_uint32x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmls_u32(a, b, c); #else return simde_vsub_u32(a, simde_vmul_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmls_u32 #define vmls_u32(a, b, c) simde_vmls_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmlsq_f32(simde_float32x4_t a, simde_float32x4_t b, simde_float32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_f32(a, b, c); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b), c_ = simde_float32x4_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128 = _mm_fnmadd_ps(b_.m128, c_.m128, a_.m128); #endif return simde_float32x4_from_private(r_); #else return simde_vsubq_f32(a, simde_vmulq_f32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_f32 #define vmlsq_f32(a, b, c) simde_vmlsq_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmlsq_f64(simde_float64x2_t a, simde_float64x2_t b, simde_float64x2_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsq_f64(a, b, c); #elif \ defined(SIMDE_X86_FMA_NATIVE) simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b), c_ = simde_float64x2_to_private(c); #if defined(SIMDE_X86_FMA_NATIVE) r_.m128d = _mm_fnmadd_pd(b_.m128d, c_.m128d, a_.m128d); #endif return simde_float64x2_from_private(r_); #else return simde_vsubq_f64(a, simde_vmulq_f64(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_f64 #define vmlsq_f64(a, b, c) simde_vmlsq_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmlsq_s8(simde_int8x16_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_s8(a, b, c); #else return simde_vsubq_s8(a, simde_vmulq_s8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_s8 #define vmlsq_s8(a, b, c) simde_vmlsq_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlsq_s16(simde_int16x8_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_s16(a, b, c); #else return simde_vsubq_s16(a, simde_vmulq_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_s16 #define vmlsq_s16(a, b, c) simde_vmlsq_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlsq_s32(simde_int32x4_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_s32(a, b, c); #else return simde_vsubq_s32(a, simde_vmulq_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_s32 #define vmlsq_s32(a, b, c) simde_vmlsq_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmlsq_u8(simde_uint8x16_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_u8(a, b, c); #else return simde_vsubq_u8(a, simde_vmulq_u8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_u8 #define vmlsq_u8(a, b, c) simde_vmlsq_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlsq_u16(simde_uint16x8_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_u16(a, b, c); #else return simde_vsubq_u16(a, simde_vmulq_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_u16 #define vmlsq_u16(a, b, c) simde_vmlsq_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlsq_u32(simde_uint32x4_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsq_u32(a, b, c); #else return simde_vsubq_u32(a, simde_vmulq_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsq_u32 #define vmlsq_u32(a, b, c) simde_vmlsq_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mls.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MLSL_H) #define SIMDE_ARM_NEON_MLSL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlsl_s8(simde_int16x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_s8(a, b, c); #else return simde_vsubq_s16(a, simde_vmull_s8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_s8 #define vmlsl_s8(a, b, c) simde_vmlsl_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlsl_s16(simde_int32x4_t a, simde_int16x4_t b, simde_int16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_s16(a, b, c); #else return simde_vsubq_s32(a, simde_vmull_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_s16 #define vmlsl_s16(a, b, c) simde_vmlsl_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlsl_s32(simde_int64x2_t a, simde_int32x2_t b, simde_int32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_s32(a, b, c); #else return simde_vsubq_s64(a, simde_vmull_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_s32 #define vmlsl_s32(a, b, c) simde_vmlsl_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlsl_u8(simde_uint16x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_u8(a, b, c); #else return simde_vsubq_u16(a, simde_vmull_u8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_u8 #define vmlsl_u8(a, b, c) simde_vmlsl_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlsl_u16(simde_uint32x4_t a, simde_uint16x4_t b, simde_uint16x4_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_u16(a, b, c); #else return simde_vsubq_u32(a, simde_vmull_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_u16 #define vmlsl_u16(a, b, c) simde_vmlsl_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlsl_u32(simde_uint64x2_t a, simde_uint32x2_t b, simde_uint32x2_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_u32(a, b, c); #else return simde_vsubq_u64(a, simde_vmull_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_u32 #define vmlsl_u32(a, b, c) simde_vmlsl_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLSL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MLSL_HIGH_H) #define SIMDE_ARM_NEON_MLSL_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MULL_HIGH_H) #define SIMDE_ARM_NEON_MULL_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmull_high_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_s8(a, b); #else return simde_vmulq_s16(simde_vmovl_high_s8(a), simde_vmovl_high_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_s8 #define vmull_high_s8(a, b) simde_vmull_high_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmull_high_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_s16(a, b); #else return simde_vmulq_s32(simde_vmovl_high_s16(a), simde_vmovl_high_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_s16 #define vmull_high_s16(a, b) simde_vmull_high_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmull_high_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_s32(a, b); #else return simde_x_vmulq_s64(simde_vmovl_high_s32(a), simde_vmovl_high_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_s32 #define vmull_high_s32(a, b) simde_vmull_high_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmull_high_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_u8(a, b); #else return simde_vmulq_u16(simde_vmovl_high_u8(a), simde_vmovl_high_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_u8 #define vmull_high_u8(a, b) simde_vmull_high_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmull_high_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_u16(a, b); #else return simde_vmulq_u32(simde_vmovl_high_u16(a), simde_vmovl_high_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_u16 #define vmull_high_u16(a, b) simde_vmull_high_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmull_high_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmull_high_u32(a, b); #else return simde_x_vmulq_u64(simde_vmovl_high_u32(a), simde_vmovl_high_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmull_high_u32 #define vmull_high_u32(a, b) simde_vmull_high_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MULL_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmlsl_high_s8(simde_int16x8_t a, simde_int8x16_t b, simde_int8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_s8(a, b, c); #else return simde_vsubq_s16(a, simde_vmull_high_s8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_s8 #define vmlsl_high_s8(a, b, c) simde_vmlsl_high_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlsl_high_s16(simde_int32x4_t a, simde_int16x8_t b, simde_int16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_s16(a, b, c); #else return simde_vsubq_s32(a, simde_vmull_high_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_s16 #define vmlsl_high_s16(a, b, c) simde_vmlsl_high_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlsl_high_s32(simde_int64x2_t a, simde_int32x4_t b, simde_int32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_s32(a, b, c); #else return simde_vsubq_s64(a, simde_vmull_high_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_s32 #define vmlsl_high_s32(a, b, c) simde_vmlsl_high_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmlsl_high_u8(simde_uint16x8_t a, simde_uint8x16_t b, simde_uint8x16_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_u8(a, b, c); #else return simde_vsubq_u16(a, simde_vmull_high_u8(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_u8 #define vmlsl_high_u8(a, b, c) simde_vmlsl_high_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlsl_high_u16(simde_uint32x4_t a, simde_uint16x8_t b, simde_uint16x8_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_u16(a, b, c); #else return simde_vsubq_u32(a, simde_vmull_high_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_u16 #define vmlsl_high_u16(a, b, c) simde_vmlsl_high_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlsl_high_u32(simde_uint64x2_t a, simde_uint32x4_t b, simde_uint32x4_t c) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmlsl_high_u32(a, b, c); #else return simde_vsubq_u64(a, simde_vmull_high_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmlsl_high_u32 #define vmlsl_high_u32(a, b, c) simde_vmlsl_high_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLSL_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MLSL_N_H) #define SIMDE_ARM_NEON_MLSL_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_MULL_N_H) #define SIMDE_ARM_NEON_MULL_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmull_n_s16(simde_int16x4_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_n_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_n_s32(simde_vmovl_s16(a), b); #else simde_int32x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) av; SIMDE_CONVERT_VECTOR_(av, a_.values); r_.values = av * b; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, a_.values[i]) * HEDLEY_STATIC_CAST(int32_t, b); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_n_s16 #define vmull_n_s16(a, b) simde_vmull_n_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmull_n_s32(simde_int32x2_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_n_s32(a, b); #else simde_int64x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) av; SIMDE_CONVERT_VECTOR_(av, a_.values); r_.values = av * b; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int64_t, a_.values[i]) * HEDLEY_STATIC_CAST(int64_t, b); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_n_s32 #define vmull_n_s32(a, b) simde_vmull_n_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmull_n_u16(simde_uint16x4_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_n_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vmulq_n_u32(simde_vmovl_u16(a), b); #else simde_uint32x4_private r_; simde_uint16x4_private a_ = simde_uint16x4_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) av; SIMDE_CONVERT_VECTOR_(av, a_.values); r_.values = av * b; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint32_t, a_.values[i]) * HEDLEY_STATIC_CAST(uint32_t, b); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_n_u16 #define vmull_n_u16(a, b) simde_vmull_n_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmull_n_u32(simde_uint32x2_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmull_n_u32(a, b); #else simde_uint64x2_private r_; simde_uint32x2_private a_ = simde_uint32x2_to_private(a); #if defined(SIMDE_CONVERT_VECTOR_) && defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) __typeof__(r_.values) av; SIMDE_CONVERT_VECTOR_(av, a_.values); r_.values = av * b; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint64_t, a_.values[i]) * HEDLEY_STATIC_CAST(uint64_t, b); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmull_n_u32 #define vmull_n_u32(a, b) simde_vmull_n_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MULL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mull_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmlsl_n_s16(simde_int32x4_t a, simde_int16x4_t b, int16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_n_s16(a, b, c); #else return simde_vsubq_s32(a, simde_vmull_n_s16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_n_s16 #define vmlsl_n_s16(a, b, c) simde_vmlsl_n_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vmlsl_n_s32(simde_int64x2_t a, simde_int32x2_t b, int32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_n_s32(a, b, c); #else return simde_vsubq_s64(a, simde_vmull_n_s32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_n_s32 #define vmlsl_n_s32(a, b, c) simde_vmlsl_n_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmlsl_n_u16(simde_uint32x4_t a, simde_uint16x4_t b, uint16_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_n_u16(a, b, c); #else return simde_vsubq_u32(a, simde_vmull_n_u16(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_n_u16 #define vmlsl_n_u16(a, b, c) simde_vmlsl_n_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vmlsl_n_u32(simde_uint64x2_t a, simde_uint32x2_t b, uint32_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vmlsl_n_u32(a, b, c); #else return simde_vsubq_u64(a, simde_vmull_n_u32(b, c)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmlsl_n_u32 #define vmlsl_n_u32(a, b, c) simde_vmlsl_n_u32((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MLSL_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mlsl_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movn_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MOVN_HIGH_H) #define SIMDE_ARM_NEON_MOVN_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vmovn_high_s16(simde_int8x8_t r, simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_s16(r, a); #else return simde_vcombine_s8(r, simde_vmovn_s16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_s16 #define vmovn_high_s16(r, a) simde_vmovn_high_s16((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmovn_high_s32(simde_int16x4_t r, simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_s32(r, a); #else return simde_vcombine_s16(r, simde_vmovn_s32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_s32 #define vmovn_high_s32(r, a) simde_vmovn_high_s32((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmovn_high_s64(simde_int32x2_t r, simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_s64(r, a); #else return simde_vcombine_s32(r, simde_vmovn_s64(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_s64 #define vmovn_high_s64(r, a) simde_vmovn_high_s64((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vmovn_high_u16(simde_uint8x8_t r, simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_u16(r, a); #else return simde_vcombine_u8(r, simde_vmovn_u16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_u16 #define vmovn_high_u16(r, a) simde_vmovn_high_u16((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmovn_high_u32(simde_uint16x4_t r, simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_u32(r, a); #else return simde_vcombine_u16(r, simde_vmovn_u32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_u32 #define vmovn_high_u32(r, a) simde_vmovn_high_u32((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmovn_high_u64(simde_uint32x2_t r, simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vmovn_high_u64(r, a); #else return simde_vcombine_u32(r, simde_vmovn_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmovn_high_u64 #define vmovn_high_u64(r, a) simde_vmovn_high_u64((r), (a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MOVN_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/movn_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_MUL_LANE_H) #define SIMDE_ARM_NEON_MUL_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vmul_lane_f32(simde_float32x2_t a, simde_float32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmul_lane_f32(a, b, lane) vmul_lane_f32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_lane_f32 #define vmul_lane_f32(a, b, lane) simde_vmul_lane_f32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vmul_lane_f64(simde_float64x1_t a, simde_float64x1_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_float64x1_private r_, a_ = simde_float64x1_to_private(a), b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmul_lane_f64(a, b, lane) vmul_lane_f64((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmul_lane_f64 #define vmul_lane_f64(a, b, lane) simde_vmul_lane_f64((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vmul_lane_s16(simde_int16x4_t a, simde_int16x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmul_lane_s16(a, b, lane) vmul_lane_s16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_lane_s16 #define vmul_lane_s16(a, b, lane) simde_vmul_lane_s16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vmul_lane_s32(simde_int32x2_t a, simde_int32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmul_lane_s32(a, b, lane) vmul_lane_s32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_lane_s32 #define vmul_lane_s32(a, b, lane) simde_vmul_lane_s32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vmul_lane_u16(simde_uint16x4_t a, simde_uint16x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmul_lane_u16(a, b, lane) vmul_lane_u16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_lane_u16 #define vmul_lane_u16(a, b, lane) simde_vmul_lane_u16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vmul_lane_u32(simde_uint32x2_t a, simde_uint32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmul_lane_u32(a, b, lane) vmul_lane_u32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmul_lane_u32 #define vmul_lane_u32(a, b, lane) simde_vmul_lane_u32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmulq_lane_f32(simde_float32x4_t a, simde_float32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); simde_float32x2_private b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmulq_lane_f32(a, b, lane) vmulq_lane_f32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_f32 #define vmulq_lane_f32(a, b, lane) simde_vmulq_lane_f32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmulq_lane_f64(simde_float64x2_t a, simde_float64x1_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); simde_float64x1_private b_ = simde_float64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_lane_f64(a, b, lane) vmulq_lane_f64((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_f64 #define vmulq_lane_f64(a, b, lane) simde_vmulq_lane_f64((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmulq_lane_s16(simde_int16x8_t a, simde_int16x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmulq_lane_s16(a, b, lane) vmulq_lane_s16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_s16 #define vmulq_lane_s16(a, b, lane) simde_vmulq_lane_s16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmulq_lane_s32(simde_int32x4_t a, simde_int32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmulq_lane_s32(a, b, lane) vmulq_lane_s32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_s32 #define vmulq_lane_s32(a, b, lane) simde_vmulq_lane_s32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmulq_lane_u16(simde_uint16x8_t a, simde_uint16x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); simde_uint16x4_private b_ = simde_uint16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmulq_lane_u16(a, b, lane) vmulq_lane_u16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_u16 #define vmulq_lane_u16(a, b, lane) simde_vmulq_lane_u16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmulq_lane_u32(simde_uint32x4_t a, simde_uint32x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); simde_uint32x2_private b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vmulq_lane_u32(a, b, lane) vmulq_lane_u32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vmulq_lane_u32 #define vmulq_lane_u32(a, b, lane) simde_vmulq_lane_u32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vmulq_laneq_f32(simde_float32x4_t a, simde_float32x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_f32(a, b, lane) vmulq_laneq_f32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_f32 #define vmulq_laneq_f32(a, b, lane) simde_vmulq_laneq_f32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vmulq_laneq_f64(simde_float64x2_t a, simde_float64x2_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_float64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_f64(a, b, lane) vmulq_laneq_f64((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_f64 #define vmulq_laneq_f64(a, b, lane) simde_vmulq_laneq_f64((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vmulq_laneq_s16(simde_int16x8_t a, simde_int16x8_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_s16(a, b, lane) vmulq_laneq_s16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_s16 #define vmulq_laneq_s16(a, b, lane) simde_vmulq_laneq_s16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vmulq_laneq_s32(simde_int32x4_t a, simde_int32x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_s32(a, b, lane) vmulq_laneq_s32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_s32 #define vmulq_laneq_s32(a, b, lane) simde_vmulq_laneq_s32((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vmulq_laneq_u16(simde_uint16x8_t a, simde_uint16x8_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_u16(a, b, lane) vmulq_laneq_u16((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_u16 #define vmulq_laneq_u16(a, b, lane) simde_vmulq_laneq_u16((a), (b), (lane)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vmulq_laneq_u32(simde_uint32x4_t a, simde_uint32x4_t b, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] * b_.values[lane]; } return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #define simde_vmulq_laneq_u32(a, b, lane) vmulq_laneq_u32((a), (b), (lane)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vmulq_laneq_u32 #define vmulq_laneq_u32(a, b, lane) simde_vmulq_laneq_u32((a), (b), (lane)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_MUL_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/mul_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/neg.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_NEG_H) #define SIMDE_ARM_NEON_NEG_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vneg_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vneg_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vneg_f32 #define vneg_f32(a) simde_vneg_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vneg_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vneg_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vneg_f64 #define vneg_f64(a) simde_vneg_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vneg_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vneg_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vneg_s8 #define vneg_s8(a) simde_vneg_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vneg_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vneg_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vneg_s16 #define vneg_s16(a) simde_vneg_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vneg_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vneg_s32(a); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vneg_s32 #define vneg_s32(a) simde_vneg_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vneg_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vneg_s64(a); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vneg_s64 #define vneg_s64(a) simde_vneg_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vnegq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vnegq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f32x4_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vnegq_f32 #define vnegq_f32(a) simde_vnegq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vnegq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vnegq_f64(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_f64x2_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vnegq_f64 #define vnegq_f64(a) simde_vnegq_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vnegq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vnegq_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vnegq_s8 #define vnegq_s8(a) simde_vnegq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vnegq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vnegq_s16(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vnegq_s16 #define vnegq_s16(a) simde_vnegq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vnegq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vnegq_s32(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vnegq_s32 #define vnegq_s32(a) simde_vnegq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vnegq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vnegq_s64(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) && (!defined(HEDLEY_GCC_VERSION) || HEDLEY_GCC_VERSION_CHECK(8,1,0)) return vec_neg(a); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_neg(a_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = -a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = -(a_.values[i]); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vnegq_s64 #define vnegq_s64(a) simde_vnegq_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_NEG_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/neg.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/orn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ORN_H) #define SIMDE_ARM_NEON_ORN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/orr.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_ORR_H) #define SIMDE_ARM_NEON_ORR_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vorr_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_s8 #define vorr_s8(a, b) simde_vorr_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vorr_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_s16 #define vorr_s16(a, b) simde_vorr_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vorr_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_s32 #define vorr_s32(a, b) simde_vorr_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vorr_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_s64 #define vorr_s64(a, b) simde_vorr_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vorr_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_u8 #define vorr_u8(a, b) simde_vorr_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vorr_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_u16 #define vorr_u16(a, b) simde_vorr_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vorr_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_u32 #define vorr_u32(a, b) simde_vorr_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vorr_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorr_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_or_si64(a_.m64, b_.m64); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorr_u64 #define vorr_u64(a, b) simde_vorr_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vorrq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_s8 #define vorrq_s8(a, b) simde_vorrq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vorrq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_s16 #define vorrq_s16(a, b) simde_vorrq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vorrq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_s32 #define vorrq_s32(a, b) simde_vorrq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vorrq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_or(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_s64 #define vorrq_s64(a, b) simde_vorrq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vorrq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_u8 #define vorrq_u8(a, b) simde_vorrq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vorrq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_u16 #define vorrq_u16(a, b) simde_vorrq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vorrq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_or(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_u32 #define vorrq_u32(a, b) simde_vorrq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vorrq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorrq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_or(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_or_si128(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | b_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorrq_u64 #define vorrq_u64(a, b) simde_vorrq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ORR_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/orr.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vorn_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_s8(a, b); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_s8 #define vorn_s8(a, b) simde_vorn_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vorn_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_s16(a, b); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_s16 #define vorn_s16(a, b) simde_vorn_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vorn_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_s32(a, b); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_s32 #define vorn_s32(a, b) simde_vorn_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vorn_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_s64(a, b); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_s64 #define vorn_s64(a, b) simde_vorn_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vorn_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_u8(a, b); #else simde_uint8x8_private a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_u8 #define vorn_u8(a, b) simde_vorn_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vorn_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_u16(a, b); #else simde_uint16x4_private a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_u16 #define vorn_u16(a, b) simde_vorn_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vorn_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_u32(a, b); #else simde_uint32x2_private a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_u32 #define vorn_u32(a, b) simde_vorn_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vorn_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vorn_u64(a, b); #else simde_uint64x1_private a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b), r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vorn_u64 #define vorn_u64(a, b) simde_vorn_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vornq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_s8 #define vornq_s8(a, b) simde_vornq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vornq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_s16 #define vornq_s16(a, b) simde_vornq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vornq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_s32 #define vornq_s32(a, b) simde_vornq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vornq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi64(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_s64 #define vornq_s64(a, b) simde_vornq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vornq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_uint8x16_private a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_u8 #define vornq_u8(a, b) simde_vornq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vornq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_uint16x8_private a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_u16 #define vornq_u16(a, b) simde_vornq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vornq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_uint32x4_private a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi32(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_u32 #define vornq_u32(a, b) simde_vornq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vornq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vornq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_orc(a, b); #else simde_uint64x2_private a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b), r_; #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm_ternarylogic_epi64(a_.m128i, b_.m128i, a_.m128i, 0xf3); #elif defined(SIMDE_VECTOR_SUBSCRIPT_OPS) r_.values = a_.values | ~(b_.values); #else for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] | ~b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vornq_u64 #define vornq_u64(a, b) simde_vornq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ORN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/orn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/padal.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_PADAL_H) #define SIMDE_ARM_NEON_PADAL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vpadal_s8(simde_int16x4_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_s8(a, b); #else return simde_vadd_s16(a, simde_vpaddl_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_s8 #define vpadal_s8(a, b) simde_vpadal_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vpadal_s16(simde_int32x2_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_s16(a, b); #else return simde_vadd_s32(a, simde_vpaddl_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_s16 #define vpadal_s16(a, b) simde_vpadal_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vpadal_s32(simde_int64x1_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_s32(a, b); #else return simde_vadd_s64(a, simde_vpaddl_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_s32 #define vpadal_s32(a, b) simde_vpadal_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vpadal_u8(simde_uint16x4_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_u8(a, b); #else return simde_vadd_u16(a, simde_vpaddl_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_u8 #define vpadal_u8(a, b) simde_vpadal_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vpadal_u16(simde_uint32x2_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_u16(a, b); #else return simde_vadd_u32(a, simde_vpaddl_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_u16 #define vpadal_u16(a, b) simde_vpadal_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vpadal_u32(simde_uint64x1_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadal_u32(a, b); #else return simde_vadd_u64(a, simde_vpaddl_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadal_u32 #define vpadal_u32(a, b) simde_vpadal_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vpadalq_s8(simde_int16x8_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_s8(a, b); #else return simde_vaddq_s16(a, simde_vpaddlq_s8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_s8 #define vpadalq_s8(a, b) simde_vpadalq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vpadalq_s16(simde_int32x4_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_s16(a, b); #else return simde_vaddq_s32(a, simde_vpaddlq_s16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_s16 #define vpadalq_s16(a, b) simde_vpadalq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vpadalq_s32(simde_int64x2_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_s32(a, b); #else return simde_vaddq_s64(a, simde_vpaddlq_s32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_s32 #define vpadalq_s32(a, b) simde_vpadalq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vpadalq_u8(simde_uint16x8_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_u8(a, b); #else return simde_vaddq_u16(a, simde_vpaddlq_u8(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_u8 #define vpadalq_u8(a, b) simde_vpadalq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vpadalq_u16(simde_uint32x4_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_u16(a, b); #else return simde_vaddq_u32(a, simde_vpaddlq_u16(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_u16 #define vpadalq_u16(a, b) simde_vpadalq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vpadalq_u32(simde_uint64x2_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpadalq_u32(a, b); #else return simde_vaddq_u64(a, simde_vpaddlq_u32(b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpadalq_u32 #define vpadalq_u32(a, b) simde_vpadalq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* SIMDE_ARM_NEON_PADAL_H */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/padal.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/pmax.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_PMAX_H) #define SIMDE_ARM_NEON_PMAX_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vpmax_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_f32(a, b); #else return simde_vmax_f32(simde_vuzp1_f32(a, b), simde_vuzp2_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_f32 #define vpmax_f32(a, b) simde_vpmax_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vpmax_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_s8(a, b); #else return simde_vmax_s8(simde_vuzp1_s8(a, b), simde_vuzp2_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_s8 #define vpmax_s8(a, b) simde_vpmax_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vpmax_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_s16(a, b); #else return simde_vmax_s16(simde_vuzp1_s16(a, b), simde_vuzp2_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_s16 #define vpmax_s16(a, b) simde_vpmax_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vpmax_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_s32(a, b); #else return simde_vmax_s32(simde_vuzp1_s32(a, b), simde_vuzp2_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_s32 #define vpmax_s32(a, b) simde_vpmax_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vpmax_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_u8(a, b); #else return simde_vmax_u8(simde_vuzp1_u8(a, b), simde_vuzp2_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_u8 #define vpmax_u8(a, b) simde_vpmax_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vpmax_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_u16(a, b); #else return simde_vmax_u16(simde_vuzp1_u16(a, b), simde_vuzp2_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_u16 #define vpmax_u16(a, b) simde_vpmax_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vpmax_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmax_u32(a, b); #else return simde_vmax_u32(simde_vuzp1_u32(a, b), simde_vuzp2_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmax_u32 #define vpmax_u32(a, b) simde_vpmax_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vpmaxq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_f32(a, b); #else return simde_vmaxq_f32(simde_vuzp1q_f32(a, b), simde_vuzp2q_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_f32 #define vpmaxq_f32(a, b) simde_vpmaxq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vpmaxq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_f64(a, b); #else return simde_vmaxq_f64(simde_vuzp1q_f64(a, b), simde_vuzp2q_f64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vpmaxq_f64 #define vpmaxq_f64(a, b) simde_vpmaxq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vpmaxq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_s8(a, b); #else return simde_vmaxq_s8(simde_vuzp1q_s8(a, b), simde_vuzp2q_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_s8 #define vpmaxq_s8(a, b) simde_vpmaxq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vpmaxq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_s16(a, b); #else return simde_vmaxq_s16(simde_vuzp1q_s16(a, b), simde_vuzp2q_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_s16 #define vpmaxq_s16(a, b) simde_vpmaxq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vpmaxq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_s32(a, b); #else return simde_vmaxq_s32(simde_vuzp1q_s32(a, b), simde_vuzp2q_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_s32 #define vpmaxq_s32(a, b) simde_vpmaxq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vpmaxq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_u8(a, b); #else return simde_vmaxq_u8(simde_vuzp1q_u8(a, b), simde_vuzp2q_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_u8 #define vpmaxq_u8(a, b) simde_vpmaxq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vpmaxq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_u16(a, b); #else return simde_vmaxq_u16(simde_vuzp1q_u16(a, b), simde_vuzp2q_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_u16 #define vpmaxq_u16(a, b) simde_vpmaxq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vpmaxq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpmaxq_u32(a, b); #else return simde_vmaxq_u32(simde_vuzp1q_u32(a, b), simde_vuzp2q_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmaxq_u32 #define vpmaxq_u32(a, b) simde_vpmaxq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_PMAX_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/pmax.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/pmin.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_PMIN_H) #define SIMDE_ARM_NEON_PMIN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vpmin_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_f32(a, b); #else return simde_vmin_f32(simde_vuzp1_f32(a, b), simde_vuzp2_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_f32 #define vpmin_f32(a, b) simde_vpmin_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vpmin_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_s8(a, b); #else return simde_vmin_s8(simde_vuzp1_s8(a, b), simde_vuzp2_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_s8 #define vpmin_s8(a, b) simde_vpmin_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vpmin_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_s16(a, b); #else return simde_vmin_s16(simde_vuzp1_s16(a, b), simde_vuzp2_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_s16 #define vpmin_s16(a, b) simde_vpmin_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vpmin_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_s32(a, b); #else return simde_vmin_s32(simde_vuzp1_s32(a, b), simde_vuzp2_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_s32 #define vpmin_s32(a, b) simde_vpmin_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vpmin_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_u8(a, b); #else return simde_vmin_u8(simde_vuzp1_u8(a, b), simde_vuzp2_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_u8 #define vpmin_u8(a, b) simde_vpmin_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vpmin_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_u16(a, b); #else return simde_vmin_u16(simde_vuzp1_u16(a, b), simde_vuzp2_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_u16 #define vpmin_u16(a, b) simde_vpmin_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vpmin_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vpmin_u32(a, b); #else return simde_vmin_u32(simde_vuzp1_u32(a, b), simde_vuzp2_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpmin_u32 #define vpmin_u32(a, b) simde_vpmin_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vpminq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_f32(a, b); #elif defined(SIMDE_X86_SSE3_NATIVE) simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_X86_SSE3_NATIVE) __m128 e = _mm_shuffle_ps(a_.m128, b_.m128, _MM_SHUFFLE(2, 0, 2, 0)); __m128 o = _mm_shuffle_ps(a_.m128, b_.m128, _MM_SHUFFLE(3, 1, 3, 1)); r_.m128 = _mm_min_ps(e, o); #endif return simde_float32x4_from_private(r_); #else return simde_vminq_f32(simde_vuzp1q_f32(a, b), simde_vuzp2q_f32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_f32 #define vpminq_f32(a, b) simde_vpminq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vpminq_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_f64(a, b); #elif defined(SIMDE_X86_SSE2_NATIVE) simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) __m128d e = _mm_unpacklo_pd(a_.m128d, b_.m128d); __m128d o = _mm_unpackhi_pd(a_.m128d, b_.m128d); r_.m128d = _mm_min_pd(e, o); #endif return simde_float64x2_from_private(r_); #else return simde_vminq_f64(simde_vuzp1q_f64(a, b), simde_vuzp2q_f64(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vpminq_f64 #define vpminq_f64(a, b) simde_vpminq_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vpminq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_s8(a, b); #else return simde_vminq_s8(simde_vuzp1q_s8(a, b), simde_vuzp2q_s8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_s8 #define vpminq_s8(a, b) simde_vpminq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vpminq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_s16(a, b); #else return simde_vminq_s16(simde_vuzp1q_s16(a, b), simde_vuzp2q_s16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_s16 #define vpminq_s16(a, b) simde_vpminq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vpminq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_s32(a, b); #else return simde_vminq_s32(simde_vuzp1q_s32(a, b), simde_vuzp2q_s32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_s32 #define vpminq_s32(a, b) simde_vpminq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vpminq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_u8(a, b); #else return simde_vminq_u8(simde_vuzp1q_u8(a, b), simde_vuzp2q_u8(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_u8 #define vpminq_u8(a, b) simde_vpminq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vpminq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_u16(a, b); #else return simde_vminq_u16(simde_vuzp1q_u16(a, b), simde_vuzp2q_u16(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_u16 #define vpminq_u16(a, b) simde_vpminq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vpminq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vpminq_u32(a, b); #else return simde_vminq_u32(simde_vuzp1q_u32(a, b), simde_vuzp2q_u32(a, b)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vpminq_u32 #define vpminq_u32(a, b) simde_vpminq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_PMIN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/pmin.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qabs.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_QABS_H) #define SIMDE_ARM_NEON_QABS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqabsb_s8(int8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabsb_s8(a); #else return a == INT8_MIN ? INT8_MAX : (a < 0 ? -a : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabsb_s8 #define vqabsb_s8(a) simde_vqabsb_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqabsh_s16(int16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabsh_s16(a); #else return a == INT16_MIN ? INT16_MAX : (a < 0 ? -a : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabsh_s16 #define vqabsh_s16(a) simde_vqabsh_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqabss_s32(int32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabss_s32(a); #else return a == INT32_MIN ? INT32_MAX : (a < 0 ? -a : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabss_s32 #define vqabss_s32(a) simde_vqabss_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqabsd_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabsd_s64(a); #else return a == INT64_MIN ? INT64_MAX : (a < 0 ? -a : a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabsd_s64 #define vqabsd_s64(a) simde_vqabsd_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqabs_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabs_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsb_s8(a_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabs_s8 #define vqabs_s8(a) simde_vqabs_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqabs_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabs_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsh_s16(a_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabs_s16 #define vqabs_s16(a) simde_vqabs_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqabs_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabs_s32(a); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabss_s32(a_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabs_s32 #define vqabs_s32(a) simde_vqabs_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vqabs_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabs_s64(a); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsd_s64(a_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabs_s64 #define vqabs_s64(a) simde_vqabs_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqabsq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabsq_s8(a); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsb_s8(a_.values[i]); } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabsq_s8 #define vqabsq_s8(a) simde_vqabsq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqabsq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabsq_s16(a); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsh_s16(a_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabsq_s16 #define vqabsq_s16(a) simde_vqabsq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqabsq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqabsq_s32(a); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabss_s32(a_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqabsq_s32 #define vqabsq_s32(a) simde_vqabsq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqabsq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqabsq_s64(a); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqabsd_s64(a_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqabsq_s64 #define vqabsq_s64(a) simde_vqabsq_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QABS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qabs.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qadd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QADD_H) #define SIMDE_ARM_NEON_QADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqaddb_s8(int8_t a, int8_t b) { return simde_math_adds_i8(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddb_s8 #define vqaddb_s8(a, b) simde_vqaddb_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqaddh_s16(int16_t a, int16_t b) { return simde_math_adds_i16(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddh_s16 #define vqaddh_s16(a, b) simde_vqaddh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqadds_s32(int32_t a, int32_t b) { return simde_math_adds_i32(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqadds_s32 #define vqadds_s32(a, b) simde_vqadds_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqaddd_s64(int64_t a, int64_t b) { return simde_math_adds_i64(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddd_s64 #define vqaddd_s64(a, b) simde_vqaddd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vqaddb_u8(uint8_t a, uint8_t b) { return simde_math_adds_u8(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddb_u8 #define vqaddb_u8(a, b) simde_vqaddb_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vqaddh_u16(uint16_t a, uint16_t b) { return simde_math_adds_u16(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddh_u16 #define vqaddh_u16(a, b) simde_vqaddh_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vqadds_u32(uint32_t a, uint32_t b) { return simde_math_adds_u32(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqadds_u32 #define vqadds_u32(a, b) simde_vqadds_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vqaddd_u64(uint64_t a, uint64_t b) { return simde_math_adds_u64(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqaddd_u64 #define vqaddd_u64(a, b) simde_vqaddd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqadd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_adds_pi8(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddb_s8(a_.values[i], b_.values[i]); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_s8 #define vqadd_s8(a, b) simde_vqadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqadd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_adds_pi16(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddh_s16(a_.values[i], b_.values[i]); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_s16 #define vqadd_s16(a, b) simde_vqadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqadd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqadds_s32(a_.values[i], b_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_s32 #define vqadd_s32(a, b) simde_vqadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vqadd_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddd_s64(a_.values[i], b_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_s64 #define vqadd_s64(a, b) simde_vqadd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqadd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_adds_pu8(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddb_u8(a_.values[i], b_.values[i]); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_u8 #define vqadd_u8(a, b) simde_vqadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vqadd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_adds_pu16(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddh_u16(a_.values[i], b_.values[i]); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_u16 #define vqadd_u16(a, b) simde_vqadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vqadd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqadds_u32(a_.values[i], b_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_u32 #define vqadd_u32(a, b) simde_vqadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vqadd_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqadd_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddd_u64(a_.values[i], b_.values[i]); } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqadd_u64 #define vqadd_u64(a, b) simde_vqadd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqaddq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_add_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_adds_epi8(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddb_s8(a_.values[i], b_.values[i]); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_s8 #define vqaddq_s8(a, b) simde_vqaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqaddq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_add_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_adds_epi16(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddh_s16(a_.values[i], b_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_s16 #define vqaddq_s16(a, b) simde_vqaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqaddq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtsepi64_epi32(_mm256_add_epi64(_mm256_cvtepi32_epi64(a_.m128i), _mm256_cvtepi32_epi64(b_.m128i))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqadds_s32(a_.values[i], b_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_s32 #define vqaddq_s32(a, b) simde_vqaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqaddq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddd_s64(a_.values[i], b_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_s64 #define vqaddq_s64(a, b) simde_vqaddq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqaddq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_add_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_adds_epu8(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddb_u8(a_.values[i], b_.values[i]); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_u8 #define vqaddq_u8(a, b) simde_vqaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vqaddq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_add_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_adds_epu16(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddh_u16(a_.values[i], b_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_u16 #define vqaddq_u16(a, b) simde_vqaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vqaddq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6) return vec_adds(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqadds_u32(a_.values[i], b_.values[i]); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_u32 #define vqaddq_u32(a, b) simde_vqaddq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vqaddq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqaddq_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqaddd_u64(a_.values[i], b_.values[i]); } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqaddq_u64 #define vqaddq_u64(a, b) simde_vqaddq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qadd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qdmulh.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QDMULH_H) #define SIMDE_ARM_NEON_QDMULH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qdmull.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ /* Implementation notes (seanptmaher): * * It won't overflow during the multiplication, it'll ever only double * the bit length, we only care about the overflow during the shift, * so do the multiplication, then the shift with saturation */ #if !defined(SIMDE_ARM_NEON_QDMULL_H) #define SIMDE_ARM_NEON_QDMULL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqdmullh_s16(int16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqdmullh_s16(a, b); #else int32_t mul = (HEDLEY_STATIC_CAST(int32_t, a) * HEDLEY_STATIC_CAST(int32_t, b)); return (simde_math_labs(mul) & (1 << 30)) ? ((mul < 0) ? INT32_MIN : INT32_MAX) : mul << 1; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmullh_s16 #define vqdmullh_s16(a, b) simde_vqdmullh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqdmulls_s32(int32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqdmulls_s32(a, b); #else int64_t mul = (HEDLEY_STATIC_CAST(int64_t, a) * HEDLEY_STATIC_CAST(int64_t, b)); return ((a > 0 ? a : -a) & (HEDLEY_STATIC_CAST(int64_t, 1) << 62)) ? ((mul < 0) ? INT64_MIN : INT64_MAX) : mul << 1; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmulls_s16 #define vqdmulls_s16(a, b) simde_vqdmulls_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqdmull_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmull_s16(a, b); #else simde_int32x4_private r_; simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqdmullh_s16(a_.values[i], b_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmull_s16 #define vqdmull_s16(a, b) simde_vqdmull_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqdmull_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmull_s32(a, b); #else simde_int64x2_private r_; simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqdmulls_s32(a_.values[i], b_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmull_s32 #define vqdmull_s32(a, b) simde_vqdmull_s32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QDMULL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qdmull.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqdmulh_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmulh_s16(a, b); #else simde_int16x4_private r_; simde_int32x4_t r = simde_vqdmull_s16(a, b); simde_int32x4_private r_2 = simde_int32x4_to_private(r); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, r_2.values[i] >> 16); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmulh_s16 #define vqdmulh_s16(a, b) simde_vqdmulh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqdmulh_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmulh_s32(a, b); #else simde_int32x2_private r_; simde_int64x2_t r = simde_vqdmull_s32(a, b); simde_int64x2_private r_2 = simde_int64x2_to_private(r); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, r_2.values[i] >> 32); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmulh_s32 #define vqdmulh_s32(a, b) simde_vqdmulh_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqdmulhq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmulhq_s16(a, b); #else return simde_vcombine_s16(simde_vqdmulh_s16(simde_vget_low_s16(a), simde_vget_low_s16(b)), simde_vqdmulh_s16(simde_vget_high_s16(a), simde_vget_high_s16(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmulhq_s16 #define vqdmulhq_s16(a, b) simde_vqdmulhq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqdmulhq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqdmulhq_s32(a, b); #else return simde_vcombine_s32(simde_vqdmulh_s32(simde_vget_low_s32(a), simde_vget_low_s32(b)), simde_vqdmulh_s32(simde_vget_high_s32(a), simde_vget_high_s32(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqdmulhq_s32 #define vqdmulhq_s32(a, b) simde_vqdmulhq_s32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QDMULH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qdmulh.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qrdmulh.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QRDMULH_H) #define SIMDE_ARM_NEON_QRDMULH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqrdmulhh_s16(int16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqrdmulhh_s16(a, b); #else return HEDLEY_STATIC_CAST(int16_t, (((1 << 15) + ((HEDLEY_STATIC_CAST(int32_t, (HEDLEY_STATIC_CAST(int32_t, a) * HEDLEY_STATIC_CAST(int32_t, b)))) << 1)) >> 16) & 0xffff); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhh_s16 #define vqrdmulhh_s16(a, b) simde_vqrdmulhh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqrdmulhs_s32(int32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqrdmulhs_s32(a, b); #else return HEDLEY_STATIC_CAST(int32_t, (((HEDLEY_STATIC_CAST(int64_t, 1) << 31) + ((HEDLEY_STATIC_CAST(int64_t, (HEDLEY_STATIC_CAST(int64_t, a) * HEDLEY_STATIC_CAST(int64_t, b)))) << 1)) >> 32) & 0xffffffff); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhs_s32 #define vqrdmulhs_s32(a, b) simde_vqrdmulhs_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqrdmulh_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulh_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhh_s16(a_.values[i], b_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulh_s16 #define vqrdmulh_s16(a, b) simde_vqrdmulh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqrdmulh_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulh_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhs_s32(a_.values[i], b_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulh_s32 #define vqrdmulh_s32(a, b) simde_vqrdmulh_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqrdmulhq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulhq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhh_s16(a_.values[i], b_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhq_s16 #define vqrdmulhq_s16(a, b) simde_vqrdmulhq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqrdmulhq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulhq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhs_s32(a_.values[i], b_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhq_s32 #define vqrdmulhq_s32(a, b) simde_vqrdmulhq_s32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QRDMULH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qrdmulh.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qrdmulh_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QRDMULH_N_H) #define SIMDE_ARM_NEON_QRDMULH_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqrdmulh_n_s16(simde_int16x4_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulh_n_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhh_s16(a_.values[i], b); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulh_n_s16 #define vqrdmulh_n_s16(a, b) simde_vqrdmulh_n_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqrdmulh_n_s32(simde_int32x2_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulh_n_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhs_s32(a_.values[i], b); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulh_n_s32 #define vqrdmulh_n_s32(a, b) simde_vqrdmulh_n_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqrdmulhq_n_s16(simde_int16x8_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulhq_n_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhh_s16(a_.values[i], b); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhq_n_s16 #define vqrdmulhq_n_s16(a, b) simde_vqrdmulhq_n_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqrdmulhq_n_s32(simde_int32x4_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqrdmulhq_n_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqrdmulhs_s32(a_.values[i], b); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqrdmulhq_n_s32 #define vqrdmulhq_n_s32(a, b) simde_vqrdmulhq_n_s32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QRDMULH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qrdmulh_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QMOVN_H) #define SIMDE_ARM_NEON_QMOVN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqmovnh_s16(int16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovnh_s16(a); #else return (a > INT8_MAX) ? INT8_MAX : ((a < INT8_MIN) ? INT8_MIN : HEDLEY_STATIC_CAST(int8_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovnh_s16 #define vqmovnh_s16(a) simde_vqmovnh_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqmovns_s32(int32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovns_s32(a); #else return (a > INT16_MAX) ? INT16_MAX : ((a < INT16_MIN) ? INT16_MIN : HEDLEY_STATIC_CAST(int16_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovns_s32 #define vqmovns_s32(a) simde_vqmovns_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqmovnd_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovnd_s64(a); #else return (a > INT32_MAX) ? INT32_MAX : ((a < INT32_MIN) ? INT32_MIN : HEDLEY_STATIC_CAST(int32_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovnd_s64 #define vqmovnd_s64(a) simde_vqmovnd_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vqmovnh_u16(uint16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovnh_u16(a); #else return (a > UINT8_MAX) ? UINT8_MAX : HEDLEY_STATIC_CAST(uint8_t, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovnh_u16 #define vqmovnh_u16(a) simde_vqmovnh_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vqmovns_u32(uint32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovns_u32(a); #else return (a > UINT16_MAX) ? UINT16_MAX : HEDLEY_STATIC_CAST(uint16_t, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovns_u32 #define vqmovns_u32(a) simde_vqmovns_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vqmovnd_u64(uint64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovnd_u64(a); #else return (a > UINT32_MAX) ? UINT32_MAX : HEDLEY_STATIC_CAST(uint32_t, a); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovnd_u64 #define vqmovnd_u64(a) simde_vqmovnd_u64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqmovn_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_s16(simde_vmaxq_s16(simde_vdupq_n_s16(INT8_MIN), simde_vminq_s16(simde_vdupq_n_s16(INT8_MAX), a))); #else simde_int8x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovnh_s16(a_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_s16 #define vqmovn_s16(a) simde_vqmovn_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqmovn_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_s32(simde_vmaxq_s32(simde_vdupq_n_s32(INT16_MIN), simde_vminq_s32(simde_vdupq_n_s32(INT16_MAX), a))); #else simde_int16x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovns_s32(a_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_s32 #define vqmovn_s32(a) simde_vqmovn_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqmovn_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_s64(simde_x_vmaxq_s64(simde_vdupq_n_s64(INT32_MIN), simde_x_vminq_s64(simde_vdupq_n_s64(INT32_MAX), a))); #else simde_int32x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovnd_s64(a_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_s64 #define vqmovn_s64(a) simde_vqmovn_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqmovn_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_u16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u16(simde_vminq_u16(a, simde_vdupq_n_u16(UINT8_MAX))); #else simde_uint8x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovnh_u16(a_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_u16 #define vqmovn_u16(a) simde_vqmovn_u16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vqmovn_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_u32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u32(simde_vminq_u32(a, simde_vdupq_n_u32(UINT16_MAX))); #else simde_uint16x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovns_u32(a_.values[i]); } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_u32 #define vqmovn_u32(a) simde_vqmovn_u32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vqmovn_u64(simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovn_u64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u64(simde_x_vminq_u64(a, simde_vdupq_n_u64(UINT32_MAX))); #else simde_uint32x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovnd_u64(a_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovn_u64 #define vqmovn_u64(a) simde_vqmovn_u64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QMOVN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovun.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QMOVUN_H) #define SIMDE_ARM_NEON_QMOVUN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vqmovunh_s16(int16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint8_t, vqmovunh_s16(a)); #else return (a > UINT8_MAX) ? UINT8_MAX : ((a < 0) ? 0 : HEDLEY_STATIC_CAST(uint8_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovunh_s16 #define vqmovunh_s16(a) simde_vqmovunh_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vqmovuns_s32(int32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint16_t, vqmovuns_s32(a)); #else return (a > UINT16_MAX) ? UINT16_MAX : ((a < 0) ? 0 : HEDLEY_STATIC_CAST(uint16_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovuns_s32 #define vqmovuns_s32(a) simde_vqmovuns_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vqmovund_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return HEDLEY_STATIC_CAST(uint32_t, vqmovund_s64(a)); #else return (a > UINT32_MAX) ? UINT32_MAX : ((a < 0) ? 0 : HEDLEY_STATIC_CAST(uint32_t, a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovund_s64 #define vqmovund_s64(a) simde_vqmovund_s64((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqmovun_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovun_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u16(simde_vreinterpretq_u16_s16(simde_vmaxq_s16(simde_vdupq_n_s16(0), simde_vminq_s16(simde_vdupq_n_s16(UINT8_MAX), a)))); #else simde_uint8x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovunh_s16(a_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovun_s16 #define vqmovun_s16(a) simde_vqmovun_s16((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vqmovun_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovun_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u32(simde_vreinterpretq_u32_s32(simde_vmaxq_s32(simde_vdupq_n_s32(0), simde_vminq_s32(simde_vdupq_n_s32(UINT16_MAX), a)))); #else simde_uint16x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovuns_s32(a_.values[i]); } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovun_s32 #define vqmovun_s32(a) simde_vqmovun_s32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vqmovun_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqmovun_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmovn_u64(simde_vreinterpretq_u64_s64(simde_x_vmaxq_s64(simde_vdupq_n_s64(0), simde_x_vminq_s64(simde_vdupq_n_s64(UINT32_MAX), a)))); #else simde_uint32x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqmovund_s64(a_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqmovun_s64 #define vqmovun_s64(a) simde_vqmovun_s64((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QMOVUN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovun.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovn_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_QMOVN_HIGH_H) #define SIMDE_ARM_NEON_QMOVN_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqmovn_high_s16(simde_int8x8_t r, simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_s16(r, a); #else return simde_vcombine_s8(r, simde_vqmovn_s16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_s16 #define vqmovn_high_s16(r, a) simde_vqmovn_high_s16((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqmovn_high_s32(simde_int16x4_t r, simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_s32(r, a); #else return simde_vcombine_s16(r, simde_vqmovn_s32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_s32 #define vqmovn_high_s32(r, a) simde_vqmovn_high_s32((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqmovn_high_s64(simde_int32x2_t r, simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_s64(r, a); #else return simde_vcombine_s32(r, simde_vqmovn_s64(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_s64 #define vqmovn_high_s64(r, a) simde_vqmovn_high_s64((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqmovn_high_u16(simde_uint8x8_t r, simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_u16(r, a); #else return simde_vcombine_u8(r, simde_vqmovn_u16(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_u16 #define vqmovn_high_u16(r, a) simde_vqmovn_high_u16((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vqmovn_high_u32(simde_uint16x4_t r, simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_u32(r, a); #else return simde_vcombine_u16(r, simde_vqmovn_u32(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_u32 #define vqmovn_high_u32(r, a) simde_vqmovn_high_u32((r), (a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vqmovn_high_u64(simde_uint32x2_t r, simde_uint64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqmovn_high_u64(r, a); #else return simde_vcombine_u32(r, simde_vqmovn_u64(a)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqmovn_high_u64 #define vqmovn_high_u64(r, a) simde_vqmovn_high_u64((r), (a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QMOVN_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qmovn_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qneg.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_QNEG_H) #define SIMDE_ARM_NEON_QNEG_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #if !defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE) || 1 /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #endif HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqnegb_s8(int8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqnegb_s8(a); #else return a == INT8_MIN ? INT8_MAX : -a; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqnegb_s8 #define vqnegb_s8(a) simde_vqnegb_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqnegh_s16(int16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqnegh_s16(a); #else return a == INT16_MIN ? INT16_MAX : -a; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqnegh_s16 #define vqnegh_s16(a) simde_vqnegh_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqnegs_s32(int32_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqnegs_s32(a); #else return a == INT32_MIN ? INT32_MAX : -a; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqnegs_s32 #define vqnegs_s32(a) simde_vqnegs_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqnegd_s64(int64_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqnegd_s64(a); #else return a == INT64_MIN ? INT64_MAX : -a; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqnegd_s64 #define vqnegd_s64(a) simde_vqnegd_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqneg_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqneg_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(64) return simde_vneg_s8(simde_vmax_s8(a, simde_vdup_n_s8(INT8_MIN + 1))); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT8_MIN) ? INT8_MAX : -(a_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqneg_s8 #define vqneg_s8(a) simde_vqneg_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqneg_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqneg_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(64) return simde_vneg_s16(simde_vmax_s16(a, simde_vdup_n_s16(INT16_MIN + 1))); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT16_MIN) ? INT16_MAX : -(a_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqneg_s16 #define vqneg_s16(a) simde_vqneg_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqneg_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqneg_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(64) return simde_vneg_s32(simde_vmax_s32(a, simde_vdup_n_s32(INT32_MIN + 1))); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT32_MIN) ? INT32_MAX : -(a_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqneg_s32 #define vqneg_s32(a) simde_vqneg_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vqneg_s64(simde_int64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqneg_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vneg_s64(simde_x_vmax_s64(a, simde_vdup_n_s64(INT64_MIN + 1))); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT64_MIN) ? INT64_MAX : -(a_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqneg_s64 #define vqneg_s64(a) simde_vqneg_s64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqnegq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqnegq_s8(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vnegq_s8(simde_vmaxq_s8(a, simde_vdupq_n_s8(INT8_MIN + 1))); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT8_MIN) ? INT8_MAX : -(a_.values[i]); } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqnegq_s8 #define vqnegq_s8(a) simde_vqnegq_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqnegq_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqnegq_s16(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vnegq_s16(simde_vmaxq_s16(a, simde_vdupq_n_s16(INT16_MIN + 1))); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT16_MIN) ? INT16_MAX : -(a_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqnegq_s16 #define vqnegq_s16(a) simde_vqnegq_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqnegq_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqnegq_s32(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vnegq_s32(simde_vmaxq_s32(a, simde_vdupq_n_s32(INT32_MIN + 1))); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT32_MIN) ? INT32_MAX : -(a_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqnegq_s32 #define vqnegq_s32(a) simde_vqnegq_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqnegq_s64(simde_int64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqnegq_s64(a); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vnegq_s64(simde_x_vmaxq_s64(a, simde_vdupq_n_s64(INT64_MIN + 1))); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] == INT64_MIN) ? INT64_MAX : -(a_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqnegq_s64 #define vqnegq_s64(a) simde_vqnegq_s64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QNEG_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qneg.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qsub.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_QSUB_H) #define SIMDE_ARM_NEON_QSUB_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqsubb_s8(int8_t a, int8_t b) { return simde_math_subs_i8(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubb_s8 #define vqsubb_s8(a, b) simde_vqsubb_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqsubh_s16(int16_t a, int16_t b) { return simde_math_subs_i16(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubh_s16 #define vqsubh_s16(a, b) simde_vqsubh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqsubs_s32(int32_t a, int32_t b) { return simde_math_subs_i32(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubs_s32 #define vqsubs_s32(a, b) simde_vqsubs_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqsubd_s64(int64_t a, int64_t b) { return simde_math_subs_i64(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubd_s64 #define vqsubd_s64(a, b) simde_vqsubd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vqsubb_u8(uint8_t a, uint8_t b) { return simde_math_subs_u8(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubb_u8 #define vqsubb_u8(a, b) simde_vqsubb_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vqsubh_u16(uint16_t a, uint16_t b) { return simde_math_subs_u16(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubh_u16 #define vqsubh_u16(a, b) simde_vqsubh_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vqsubs_u32(uint32_t a, uint32_t b) { return simde_math_subs_u32(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubs_u32 #define vqsubs_u32(a, b) simde_vqsubs_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vqsubd_u64(uint64_t a, uint64_t b) { return simde_math_subs_u64(a, b); } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqsubd_u64 #define vqsubd_u64(a, b) simde_vqsubd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqsub_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_subs_pi8(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubb_s8(a_.values[i], b_.values[i]); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_s8 #define vqsub_s8(a, b) simde_vqsub_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqsub_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_subs_pi16(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubh_s16(a_.values[i], b_.values[i]); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_s16 #define vqsub_s16(a, b) simde_vqsub_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqsub_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubs_s32(a_.values[i], b_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_s32 #define vqsub_s32(a, b) simde_vqsub_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vqsub_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubd_s64(a_.values[i], b_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_s64 #define vqsub_s64(a, b) simde_vqsub_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqsub_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_subs_pu8(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubb_u8(a_.values[i], b_.values[i]); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_u8 #define vqsub_u8(a, b) simde_vqsub_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vqsub_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_subs_pu16(a_.m64, b_.m64); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubh_u16(a_.values[i], b_.values[i]); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_u16 #define vqsub_u16(a, b) simde_vqsub_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vqsub_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubs_u32(a_.values[i], b_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_u32 #define vqsub_u32(a, b) simde_vqsub_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vqsub_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsub_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubd_u64(a_.values[i], b_.values[i]); } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsub_u64 #define vqsub_u64(a, b) simde_vqsub_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqsubq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_sub_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_subs_epi8(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubb_s8(a_.values[i], b_.values[i]); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_s8 #define vqsubq_s8(a, b) simde_vqsubq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqsubq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_sub_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_subs_epi16(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubh_s16(a_.values[i], b_.values[i]); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_s16 #define vqsubq_s16(a, b) simde_vqsubq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqsubq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX512VL_NATIVE) r_.m128i = _mm256_cvtsepi64_epi32(_mm256_sub_epi64(_mm256_cvtepi32_epi64(a_.m128i), _mm256_cvtepi32_epi64(b_.m128i))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubs_s32(a_.values[i], b_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_s32 #define vqsubq_s32(a, b) simde_vqsubq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqsubq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubd_s64(a_.values[i], b_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_s64 #define vqsubq_s64(a, b) simde_vqsubq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqsubq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_sub_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_subs_epu8(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubb_u8(a_.values[i], b_.values[i]); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_u8 #define vqsubq_u8(a, b) simde_vqsubq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vqsubq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_sub_sat(a_.v128, b_.v128); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_subs_epu16(a_.m128i, b_.m128i); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubh_u16(a_.values[i], b_.values[i]); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_u16 #define vqsubq_u16(a, b) simde_vqsubq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vqsubq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_subs(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubs_u32(a_.values[i], b_.values[i]); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_u32 #define vqsubq_u32(a, b) simde_vqsubq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vqsubq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqsubq_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqsubd_u64(a_.values[i], b_.values[i]); } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqsubq_u64 #define vqsubq_u64(a, b) simde_vqsubq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QSUB_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qsub.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qshl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_QSHL_H) #define SIMDE_ARM_NEON_QSHL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vqshlb_s8(int8_t a, int8_t b) { int8_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vqshlb_s8(a, b); #else if (b < -7) b = -7; if (b <= 0) { r = a >> -b; } else if (b < 7) { r = HEDLEY_STATIC_CAST(int8_t, a << b); if ((r >> b) != a) { r = (a < 0) ? INT8_MIN : INT8_MAX; } } else if (a == 0) { r = 0; } else { r = (a < 0) ? INT8_MIN : INT8_MAX; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshlb_s8 #define vqshlb_s8(a, b) simde_vqshlb_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vqshlh_s16(int16_t a, int16_t b) { int16_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vqshlh_s16(a, b); #else int8_t b8 = HEDLEY_STATIC_CAST(int8_t, b); if (b8 < -15) b8 = -15; if (b8 <= 0) { r = a >> -b8; } else if (b8 < 15) { r = HEDLEY_STATIC_CAST(int16_t, a << b8); if ((r >> b8) != a) { r = (a < 0) ? INT16_MIN : INT16_MAX; } } else if (a == 0) { r = 0; } else { r = (a < 0) ? INT16_MIN : INT16_MAX; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshlh_s16 #define vqshlh_s16(a, b) simde_vqshlh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vqshls_s32(int32_t a, int32_t b) { int32_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vqshls_s32(a, b); #else int8_t b8 = HEDLEY_STATIC_CAST(int8_t, b); if (b8 < -31) b8 = -31; if (b8 <= 0) { r = a >> -b8; } else if (b8 < 31) { r = HEDLEY_STATIC_CAST(int32_t, a << b8); if ((r >> b8) != a) { r = (a < 0) ? INT32_MIN : INT32_MAX; } } else if (a == 0) { r = 0; } else { r = (a < 0) ? INT32_MIN : INT32_MAX; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshls_s32 #define vqshls_s32(a, b) simde_vqshls_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vqshld_s64(int64_t a, int64_t b) { int64_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) r = vqshld_s64(a, b); #else int8_t b8 = HEDLEY_STATIC_CAST(int8_t, b); if (b8 < -63) b8 = -63; if (b8 <= 0) { r = a >> -b8; } else if (b8 < 63) { r = HEDLEY_STATIC_CAST(int64_t, a << b8); if ((r >> b8) != a) { r = (a < 0) ? INT64_MIN : INT64_MAX; } } else if (a == 0) { r = 0; } else { r = (a < 0) ? INT64_MIN : INT64_MAX; } #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshld_s64 #define vqshld_s64(a, b) simde_vqshld_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vqshlb_u8(uint8_t a, int8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(HEDLEY_GCC_VERSION) && !HEDLEY_GCC_VERSION_CHECK(11,0,0) return vqshlb_u8(a, HEDLEY_STATIC_CAST(uint8_t, b)); #elif HEDLEY_HAS_WARNING("-Wsign-conversion") /* https://github.com/llvm/llvm-project/commit/f0a78bdfdc6d56b25e0081884580b3960a3c2429 */ HEDLEY_DIAGNOSTIC_PUSH #pragma clang diagnostic ignored "-Wsign-conversion" return vqshlb_u8(a, b); HEDLEY_DIAGNOSTIC_POP #else return vqshlb_u8(a, b); #endif #else uint8_t r; if (b < -7) b = -7; if (b <= 0) { r = a >> -b; } else if (b < 7) { r = HEDLEY_STATIC_CAST(uint8_t, a << b); if ((r >> b) != a) { r = UINT8_MAX; } } else if (a == 0) { r = 0; } else { r = UINT8_MAX; } return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshlb_u8 #define vqshlb_u8(a, b) simde_vqshlb_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vqshlh_u16(uint16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(HEDLEY_GCC_VERSION) && !HEDLEY_GCC_VERSION_CHECK(11,0,0) return vqshlh_u16(a, HEDLEY_STATIC_CAST(uint16_t, b)); #elif HEDLEY_HAS_WARNING("-Wsign-conversion") HEDLEY_DIAGNOSTIC_PUSH #pragma clang diagnostic ignored "-Wsign-conversion" return vqshlh_u16(a, b); HEDLEY_DIAGNOSTIC_POP #else return vqshlh_u16(a, b); #endif #else uint16_t r; if (b < -15) b = -15; if (b <= 0) { r = a >> -b; } else if (b < 15) { r = HEDLEY_STATIC_CAST(uint16_t, a << b); if ((r >> b) != a) { r = UINT16_MAX; } } else if (a == 0) { r = 0; } else { r = UINT16_MAX; } return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshlh_u16 #define vqshlh_u16(a, b) simde_vqshlh_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vqshls_u32(uint32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(HEDLEY_GCC_VERSION) && !HEDLEY_GCC_VERSION_CHECK(11,0,0) return vqshls_u32(a, HEDLEY_STATIC_CAST(uint16_t, b)); #elif HEDLEY_HAS_WARNING("-Wsign-conversion") HEDLEY_DIAGNOSTIC_PUSH #pragma clang diagnostic ignored "-Wsign-conversion" return vqshls_u32(a, b); HEDLEY_DIAGNOSTIC_POP #else return vqshls_u32(a, b); #endif #else uint32_t r; if (b < -31) b = -31; if (b <= 0) { r = HEDLEY_STATIC_CAST(uint32_t, a >> -b); } else if (b < 31) { r = a << b; if ((r >> b) != a) { r = UINT32_MAX; } } else if (a == 0) { r = 0; } else { r = UINT32_MAX; } return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshls_u32 #define vqshls_u32(a, b) simde_vqshls_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vqshld_u64(uint64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(HEDLEY_GCC_VERSION) && !HEDLEY_GCC_VERSION_CHECK(11,0,0) return vqshld_u64(a, HEDLEY_STATIC_CAST(uint16_t, b)); #elif HEDLEY_HAS_WARNING("-Wsign-conversion") HEDLEY_DIAGNOSTIC_PUSH #pragma clang diagnostic ignored "-Wsign-conversion" return vqshld_u64(a, b); HEDLEY_DIAGNOSTIC_POP #else return vqshld_u64(a, b); #endif #else uint64_t r; if (b < -63) b = -63; if (b <= 0) { r = a >> -b; } else if (b < 63) { r = HEDLEY_STATIC_CAST(uint64_t, a << b); if ((r >> b) != a) { r = UINT64_MAX; } } else if (a == 0) { r = 0; } else { r = UINT64_MAX; } return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqshldb_u64 #define vqshld_u64(a, b) simde_vqshld_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqshl_s8 (const simde_int8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlb_s8(a_.values[i], b_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_s8 #define vqshl_s8(a, b) simde_vqshl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vqshl_s16 (const simde_int16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlh_s16(a_.values[i], b_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_s16 #define vqshl_s16(a, b) simde_vqshl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vqshl_s32 (const simde_int32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshls_s32(a_.values[i], b_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_s32 #define vqshl_s32(a, b) simde_vqshl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vqshl_s64 (const simde_int64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshld_s64(a_.values[i], b_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_s64 #define vqshl_s64(a, b) simde_vqshl_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqshl_u8 (const simde_uint8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlb_u8(a_.values[i], b_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_u8 #define vqshl_u8(a, b) simde_vqshl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vqshl_u16 (const simde_uint16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlh_u16(a_.values[i], b_.values[i]); } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_u16 #define vqshl_u16(a, b) simde_vqshl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vqshl_u32 (const simde_uint32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshls_u32(a_.values[i], b_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_u32 #define vqshl_u32(a, b) simde_vqshl_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vqshl_u64 (const simde_uint64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshl_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); simde_int64x1_private b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshld_u64(a_.values[i], b_.values[i]); } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshl_u64 #define vqshl_u64(a, b) simde_vqshl_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqshlq_s8 (const simde_int8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlb_s8(a_.values[i], b_.values[i]); } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_s8 #define vqshlq_s8(a, b) simde_vqshlq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vqshlq_s16 (const simde_int16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlh_s16(a_.values[i], b_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_s16 #define vqshlq_s16(a, b) simde_vqshlq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vqshlq_s32 (const simde_int32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshls_s32(a_.values[i], b_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_s32 #define vqshlq_s32(a, b) simde_vqshlq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vqshlq_s64 (const simde_int64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshld_s64(a_.values[i], b_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_s64 #define vqshlq_s64(a, b) simde_vqshlq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqshlq_u8 (const simde_uint8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlb_u8(a_.values[i], b_.values[i]); } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_u8 #define vqshlq_u8(a, b) simde_vqshlq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vqshlq_u16 (const simde_uint16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshlh_u16(a_.values[i], b_.values[i]); } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_u16 #define vqshlq_u16(a, b) simde_vqshlq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vqshlq_u32 (const simde_uint32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshls_u32(a_.values[i], b_.values[i]); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_u32 #define vqshlq_u32(a, b) simde_vqshlq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vqshlq_u64 (const simde_uint64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vqshlq_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); simde_int64x2_private b_ = simde_int64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vqshld_u64(a_.values[i], b_.values[i]); } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vqshlq_u64 #define vqshlq_u64(a, b) simde_vqshlq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QSHL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qshl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qtbl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_QTBL_H) #define SIMDE_ARM_NEON_QTBL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbl1_u8(simde_uint8x16_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl1_u8(t, idx); #else simde_uint8x16_private t_ = simde_uint8x16_to_private(t); simde_uint8x8_private r_, idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); __m128i r128 = _mm_shuffle_epi8(t_.m128i, _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(15)))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 16) ? t_.values[idx_.values[i]] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl1_u8 #define vqtbl1_u8(t, idx) simde_vqtbl1_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbl1_s8(simde_int8x16_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl1_s8(t, idx); #else return simde_vreinterpret_s8_u8(simde_vqtbl1_u8(simde_vreinterpretq_u8_s8(t), idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl1_s8 #define vqtbl1_s8(t, idx) simde_vqtbl1_s8((t), (idx)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbl2_u8(simde_uint8x16x2_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl2_u8(t, idx); #else simde_uint8x16_private t_[2] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]) }; simde_uint8x8_private r_, idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(31))); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128 = _mm_blendv_epi8(r128_0, r128_1, _mm_slli_epi32(idx128, 3)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 32) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl2_u8 #define vqtbl2_u8(t, idx) simde_vqtbl2_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbl2_s8(simde_int8x16x2_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl2_s8(t, idx); #else simde_uint8x16x2_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbl2_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl2_s8 #define vqtbl2_s8(t, idx) simde_vqtbl2_s8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbl3_u8(simde_uint8x16x3_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl3_u8(t, idx); #else simde_uint8x16_private t_[3] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]) }; simde_uint8x8_private r_, idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(47))); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128_01 = _mm_blendv_epi8(r128_0, r128_1, _mm_slli_epi32(idx128, 3)); __m128i r128_2 = _mm_shuffle_epi8(t_[2].m128i, idx128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_2, _mm_slli_epi32(idx128, 2)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 48) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl3_u8 #define vqtbl3_u8(t, idx) simde_vqtbl3_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbl3_s8(simde_int8x16x3_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl3_s8(t, idx); #else simde_uint8x16x3_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbl3_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl3_s8 #define vqtbl3_s8(t, idx) simde_vqtbl3_s8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbl4_u8(simde_uint8x16x4_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl4_u8(t, idx); #else simde_uint8x16_private t_[4] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]), simde_uint8x16_to_private(t.val[3]) }; simde_uint8x8_private r_, idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(63))); __m128i idx128_shl3 = _mm_slli_epi32(idx128, 3); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128_01 = _mm_blendv_epi8(r128_0, r128_1, idx128_shl3); __m128i r128_2 = _mm_shuffle_epi8(t_[2].m128i, idx128); __m128i r128_3 = _mm_shuffle_epi8(t_[3].m128i, idx128); __m128i r128_23 = _mm_blendv_epi8(r128_2, r128_3, idx128_shl3); __m128i r128 = _mm_blendv_epi8(r128_01, r128_23, _mm_slli_epi32(idx128, 2)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 64) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl4_u8 #define vqtbl4_u8(t, idx) simde_vqtbl4_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbl4_s8(simde_int8x16x4_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl4_s8(t, idx); #else simde_uint8x16x4_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbl4_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl4_s8 #define vqtbl4_s8(t, idx) simde_vqtbl4_s8((t), (idx)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbl1q_u8(simde_uint8x16_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl1q_u8(t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(vec_perm(t, t, idx), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 16)))); #else simde_uint8x16_private t_ = simde_uint8x16_to_private(t); simde_uint8x16_private r_, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m128i = _mm_shuffle_epi8(t_.m128i, _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(15)))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_swizzle(t_.v128, idx_.v128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 16) ? t_.values[idx_.values[i]] : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl1q_u8 #define vqtbl1q_u8(t, idx) simde_vqtbl1q_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbl1q_s8(simde_int8x16_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl1q_s8(t, idx); #else return simde_vreinterpretq_s8_u8(simde_vqtbl1q_u8(simde_vreinterpretq_u8_s8(t), idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl1q_s8 #define vqtbl1q_s8(t, idx) simde_vqtbl1q_s8((t), (idx)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbl2q_u8(simde_uint8x16x2_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl2q_u8(t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_and(vec_perm(t.val[0], t.val[1], idx), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 32)))); #else simde_uint8x16_private t_[2] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]) }; simde_uint8x16_private r_, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(31))); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); r_.m128i = _mm_blendv_epi8(r_0, r_1, _mm_slli_epi32(idx_.m128i, 3)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 32) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl2q_u8 #define vqtbl2q_u8(t, idx) simde_vqtbl2q_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbl2q_s8(simde_int8x16x2_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl2q_s8(t, idx); #else simde_uint8x16x2_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbl2q_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl2q_s8 #define vqtbl2q_s8(t, idx) simde_vqtbl2q_s8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbl3q_u8(simde_uint8x16x3_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl3q_u8(t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_01 = vec_perm(t.val[0], t.val[1], idx); SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_2 = vec_perm(t.val[2], t.val[2], idx); return vec_and(vec_sel(r_01, r_2, vec_cmpgt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 31)))), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 48)))); #else simde_uint8x16_private t_[3] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]) }; simde_uint8x16_private r_, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(47))); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); __m128i r_01 = _mm_blendv_epi8(r_0, r_1, _mm_slli_epi32(idx_.m128i, 3)); __m128i r_2 = _mm_shuffle_epi8(t_[2].m128i, idx_.m128i); r_.m128i = _mm_blendv_epi8(r_01, r_2, _mm_slli_epi32(idx_.m128i, 2)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))), wasm_i8x16_swizzle(t_[2].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(32)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 48) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl3q_u8 #define vqtbl3q_u8(t, idx) simde_vqtbl3q_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbl3q_s8(simde_int8x16x3_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl3q_s8(t, idx); #else simde_uint8x16x3_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbl3q_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl3q_s8 #define vqtbl3q_s8(t, idx) simde_vqtbl3q_s8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbl4q_u8(simde_uint8x16x4_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl4q_u8(t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_01 = vec_perm(t.val[0], t.val[1], idx); SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_23 = vec_perm(t.val[2], t.val[3], idx); return vec_and(vec_sel(r_01, r_23, vec_cmpgt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 31)))), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 64)))); #else simde_uint8x16_private t_[4] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]), simde_uint8x16_to_private(t.val[3]) }; simde_uint8x16_private r_, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(63))); __m128i idx_shl3 = _mm_slli_epi32(idx_.m128i, 3); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); __m128i r_01 = _mm_blendv_epi8(r_0, r_1, idx_shl3); __m128i r_2 = _mm_shuffle_epi8(t_[2].m128i, idx_.m128i); __m128i r_3 = _mm_shuffle_epi8(t_[3].m128i, idx_.m128i); __m128i r_23 = _mm_blendv_epi8(r_2, r_3, idx_shl3); r_.m128i = _mm_blendv_epi8(r_01, r_23, _mm_slli_epi32(idx_.m128i, 2)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))), wasm_v128_or(wasm_i8x16_swizzle(t_[2].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(32))), wasm_i8x16_swizzle(t_[3].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(48))))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 64) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl4q_u8 #define vqtbl4q_u8(t, idx) simde_vqtbl4q_u8((t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbl4q_s8(simde_int8x16x4_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbl4q_s8(t, idx); #else simde_uint8x16x4_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbl4q_u8(t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbl4q_s8 #define vqtbl4q_s8(t, idx) simde_vqtbl4q_s8((t), (idx)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QTBL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qtbl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qtbx.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_QTBX_H) #define SIMDE_ARM_NEON_QTBX_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbx1_u8(simde_uint8x8_t a, simde_uint8x16_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx1_u8(a, t, idx); #else simde_uint8x16_private t_ = simde_uint8x16_to_private(t); simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(15))); __m128i r128 = _mm_shuffle_epi8(t_.m128i, idx128); r128 = _mm_blendv_epi8(r128, _mm_set1_epi64(a_.m64), idx128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 16) ? t_.values[idx_.values[i]] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx1_u8 #define vqtbx1_u8(a, t, idx) simde_vqtbx1_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbx1_s8(simde_int8x8_t a, simde_int8x16_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx1_s8(a, t, idx); #else return simde_vreinterpret_s8_u8(simde_vqtbx1_u8(simde_vreinterpret_u8_s8(a), simde_vreinterpretq_u8_s8(t), idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx1_s8 #define vqtbx1_s8(a, t, idx) simde_vqtbx1_s8((a), (t), (idx)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbx2_u8(simde_uint8x8_t a, simde_uint8x16x2_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx2_u8(a, t, idx); #else simde_uint8x16_private t_[2] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]) }; simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(31))); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128 = _mm_blendv_epi8(r128_0, r128_1, _mm_slli_epi32(idx128, 3)); r128 = _mm_blendv_epi8(r128, _mm_set1_epi64(a_.m64), idx128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 32) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx2_u8 #define vqtbx2_u8(a, t, idx) simde_vqtbx2_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbx2_s8(simde_int8x8_t a, simde_int8x16x2_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx2_s8(a, t, idx); #else simde_uint8x16x2_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbx2_u8(simde_vreinterpret_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx2_s8 #define vqtbx2_s8(a, t, idx) simde_vqtbx2_s8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbx3_u8(simde_uint8x8_t a, simde_uint8x16x3_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx3_u8(a, t, idx); #else simde_uint8x16_private t_[3] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]) }; simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(47))); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128_01 = _mm_blendv_epi8(r128_0, r128_1, _mm_slli_epi32(idx128, 3)); __m128i r128_2 = _mm_shuffle_epi8(t_[2].m128i, idx128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_2, _mm_slli_epi32(idx128, 2)); r128 = _mm_blendv_epi8(r128, _mm_set1_epi64(a_.m64), idx128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 48) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx3_u8 #define vqtbx3_u8(a, t, idx) simde_vqtbx3_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbx3_s8(simde_int8x8_t a, simde_int8x16x3_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx3_s8(a, t, idx); #else simde_uint8x16x3_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbx3_u8(simde_vreinterpret_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx3_s8 #define vqtbx3_s8(a, t, idx) simde_vqtbx3_s8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vqtbx4_u8(simde_uint8x8_t a, simde_uint8x16x4_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx4_u8(a, t, idx); #else simde_uint8x16_private t_[4] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]), simde_uint8x16_to_private(t.val[3]) }; simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), idx_ = simde_uint8x8_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i idx128 = _mm_set1_epi64(idx_.m64); idx128 = _mm_or_si128(idx128, _mm_cmpgt_epi8(idx128, _mm_set1_epi8(63))); __m128i idx128_shl3 = _mm_slli_epi32(idx128, 3); __m128i r128_0 = _mm_shuffle_epi8(t_[0].m128i, idx128); __m128i r128_1 = _mm_shuffle_epi8(t_[1].m128i, idx128); __m128i r128_01 = _mm_blendv_epi8(r128_0, r128_1, idx128_shl3); __m128i r128_2 = _mm_shuffle_epi8(t_[2].m128i, idx128); __m128i r128_3 = _mm_shuffle_epi8(t_[3].m128i, idx128); __m128i r128_23 = _mm_blendv_epi8(r128_2, r128_3, idx128_shl3); __m128i r128 = _mm_blendv_epi8(r128_01, r128_23, _mm_slli_epi32(idx128, 2)); r128 = _mm_blendv_epi8(r128, _mm_set1_epi64(a_.m64), idx128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 64) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx4_u8 #define vqtbx4_u8(a, t, idx) simde_vqtbx4_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vqtbx4_s8(simde_int8x8_t a, simde_int8x16x4_t t, simde_uint8x8_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx4_s8(a, t, idx); #else simde_uint8x16x4_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpret_s8_u8(simde_vqtbx4_u8(simde_vreinterpret_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx4_s8 #define vqtbx4_s8(a, t, idx) simde_vqtbx4_s8((a), (t), (idx)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbx1q_u8(simde_uint8x16_t a, simde_uint8x16_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx1q_u8(a, t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sel(a, vec_perm(t, t, idx), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 16)))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), t_ = simde_uint8x16_to_private(t), idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(15))); r_.m128i = _mm_blendv_epi8(_mm_shuffle_epi8(t_.m128i, idx_.m128i), a_.m128i, idx_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_i8x16_swizzle(t_.v128, idx_.v128), wasm_v128_and(a_.v128, wasm_u8x16_gt(idx_.v128, wasm_i8x16_splat(15)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 16) ? t_.values[idx_.values[i]] : a_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx1q_u8 #define vqtbx1q_u8(a, t, idx) simde_vqtbx1q_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbx1q_s8(simde_int8x16_t a, simde_int8x16_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx1q_s8(a, t, idx); #else return simde_vreinterpretq_s8_u8(simde_vqtbx1q_u8(simde_vreinterpretq_u8_s8(a), simde_vreinterpretq_u8_s8(t), idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx1q_s8 #define vqtbx1q_s8(a, t, idx) simde_vqtbx1q_s8((a), (t), (idx)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbx2q_u8(simde_uint8x16_t a, simde_uint8x16x2_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx2q_u8(a, t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_sel(a, vec_perm(t.val[0], t.val[1], idx), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 32)))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), t_[2] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]) }, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(31))); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); __m128i r = _mm_blendv_epi8(r_0, r_1, _mm_slli_epi32(idx_.m128i, 3)); r_.m128i = _mm_blendv_epi8(r, a_.m128i, idx_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))), wasm_v128_and(a_.v128, wasm_u8x16_gt(idx_.v128, wasm_i8x16_splat(31)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 32) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx2q_u8 #define vqtbx2q_u8(a, t, idx) simde_vqtbx2q_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbx2q_s8(simde_int8x16_t a, simde_int8x16x2_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx2q_s8(a, t, idx); #else simde_uint8x16x2_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbx2q_u8(simde_vreinterpretq_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx2q_s8 #define vqtbx2q_s8(a, t, idx) simde_vqtbx2q_s8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbx3q_u8(simde_uint8x16_t a, simde_uint8x16x3_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx3q_u8(a, t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_01 = vec_perm(t.val[0], t.val[1], idx); SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_2 = vec_perm(t.val[2], t.val[2], idx); return vec_sel(a, vec_sel(r_01, r_2, vec_cmpgt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 31)))), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 48)))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), t_[3] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]) }, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(47))); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); __m128i r_01 = _mm_blendv_epi8(r_0, r_1, _mm_slli_epi32(idx_.m128i, 3)); __m128i r_2 = _mm_shuffle_epi8(t_[2].m128i, idx_.m128i); __m128i r = _mm_blendv_epi8(r_01, r_2, _mm_slli_epi32(idx_.m128i, 2)); r_.m128i = _mm_blendv_epi8(r, a_.m128i, idx_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))), wasm_v128_or(wasm_i8x16_swizzle(t_[2].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(32))) , wasm_v128_and(a_.v128, wasm_u8x16_gt(idx_.v128, wasm_i8x16_splat(47))))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 48) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx3q_u8 #define vqtbx3q_u8(a, t, idx) simde_vqtbx3q_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbx3q_s8(simde_int8x16_t a, simde_int8x16x3_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx3q_s8(a, t, idx); #else simde_uint8x16x3_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbx3q_u8(simde_vreinterpretq_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx3q_s8 #define vqtbx3q_s8(a, t, idx) simde_vqtbx3q_s8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vqtbx4q_u8(simde_uint8x16_t a, simde_uint8x16x4_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx4q_u8(a, t, idx); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_01 = vec_perm(t.val[0], t.val[1], idx); SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) r_23 = vec_perm(t.val[2], t.val[3], idx); return vec_sel(a, vec_sel(r_01, r_23, vec_cmpgt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 31)))), vec_cmplt(idx, vec_splats(HEDLEY_STATIC_CAST(unsigned char, 64)))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), t_[4] = { simde_uint8x16_to_private(t.val[0]), simde_uint8x16_to_private(t.val[1]), simde_uint8x16_to_private(t.val[2]), simde_uint8x16_to_private(t.val[3]) }, idx_ = simde_uint8x16_to_private(idx); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) idx_.m128i = _mm_or_si128(idx_.m128i, _mm_cmpgt_epi8(idx_.m128i, _mm_set1_epi8(63))); __m128i idx_shl3 = _mm_slli_epi32(idx_.m128i, 3); __m128i r_0 = _mm_shuffle_epi8(t_[0].m128i, idx_.m128i); __m128i r_1 = _mm_shuffle_epi8(t_[1].m128i, idx_.m128i); __m128i r_01 = _mm_blendv_epi8(r_0, r_1, idx_shl3); __m128i r_2 = _mm_shuffle_epi8(t_[2].m128i, idx_.m128i); __m128i r_3 = _mm_shuffle_epi8(t_[3].m128i, idx_.m128i); __m128i r_23 = _mm_blendv_epi8(r_2, r_3, idx_shl3); __m128i r = _mm_blendv_epi8(r_01, r_23, _mm_slli_epi32(idx_.m128i, 2)); r_.m128i = _mm_blendv_epi8(r, a_.m128i, idx_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_v128_or(wasm_v128_or(wasm_v128_or(wasm_i8x16_swizzle(t_[0].v128, idx_.v128), wasm_i8x16_swizzle(t_[1].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(16)))), wasm_v128_or(wasm_i8x16_swizzle(t_[2].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(32))), wasm_i8x16_swizzle(t_[3].v128, wasm_i8x16_sub(idx_.v128, wasm_i8x16_splat(48))))), wasm_v128_and(a_.v128, wasm_u8x16_gt(idx_.v128, wasm_i8x16_splat(63)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (idx_.values[i] < 64) ? t_[idx_.values[i] / 16].values[idx_.values[i] & 15] : a_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx4q_u8 #define vqtbx4q_u8(a, t, idx) simde_vqtbx4q_u8((a), (t), (idx)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vqtbx4q_s8(simde_int8x16_t a, simde_int8x16x4_t t, simde_uint8x16_t idx) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vqtbx4q_s8(a, t, idx); #else simde_uint8x16x4_t t_; simde_memcpy(&t_, &t, sizeof(t_)); return simde_vreinterpretq_s8_u8(simde_vqtbx4q_u8(simde_vreinterpretq_u8_s8(a), t_, idx)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vqtbx4q_s8 #define vqtbx4q_s8(a, t, idx) simde_vqtbx4q_s8((a), (t), (idx)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_QTBX_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/qtbx.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rbit.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ /* The GFNI implementation is based on Wojciech Muła's work at * http://0x80.pl/articles/avx512-galois-field-for-bit-shuffling.html#bit-shuffling via * https://github.com/InstLatx64/InstLatX64_Demo/blob/49c27effdfd5a45f27e0ccb6e2f3be5f27c3845d/GFNI_Demo.h#L173 */ #if !defined(SIMDE_ARM_NEON_RBIT_H) #define SIMDE_ARM_NEON_RBIT_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrbit_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrbit_u8(a); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); #if defined(SIMDE_X86_MMX_NATIVE) && defined(SIMDE_X86_GFNI_NATIVE) __m128i tmp = _mm_movpi64_epi64(a_.m64); tmp = _mm_gf2p8affine_epi64_epi8(tmp, _mm_set1_epi64x(HEDLEY_STATIC_CAST(int64_t, UINT64_C(0x8040201008040201))), 0); r_.m64 = _mm_movepi64_pi64(tmp); #elif defined(SIMDE_X86_MMX_NATIVE) __m64 mask; mask = _mm_set1_pi8(0x55); a_.m64 = _mm_or_si64(_mm_andnot_si64(mask, _mm_slli_pi16(a_.m64, 1)), _mm_and_si64(mask, _mm_srli_pi16(a_.m64, 1))); mask = _mm_set1_pi8(0x33); a_.m64 = _mm_or_si64(_mm_andnot_si64(mask, _mm_slli_pi16(a_.m64, 2)), _mm_and_si64(mask, _mm_srli_pi16(a_.m64, 2))); mask = _mm_set1_pi8(0x0F); r_.m64 = _mm_or_si64(_mm_andnot_si64(mask, _mm_slli_pi16(a_.m64, 4)), _mm_and_si64(mask, _mm_srli_pi16(a_.m64, 4))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if HEDLEY_HAS_BUILTIN(__builtin_bitreverse8) && !defined(HEDLEY_IBM_VERSION) r_.values[i] = __builtin_bitreverse8(a_.values[i]); #else r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (((a_.values[i] * UINT64_C(0x80200802)) & UINT64_C(0x0884422110)) * UINT64_C(0x0101010101)) >> 32); #endif } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrbit_u8 #define vrbit_u8(a) simde_vrbit_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrbit_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrbit_s8(a); #else return simde_vreinterpret_s8_u8(simde_vrbit_u8(simde_vreinterpret_u8_s8(a))); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrbit_s8 #define vrbit_s8(a) simde_vrbit_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrbitq_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrbitq_u8(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) shift; shift = vec_splat_u8(1); a = vec_sel(vec_sl(a, shift), vec_sr(a, shift), vec_splats(HEDLEY_STATIC_CAST(unsigned char, 0x55))); shift = vec_splat_u8(2); a = vec_sel(vec_sl(a, shift), vec_sr(a, shift), vec_splats(HEDLEY_STATIC_CAST(unsigned char, 0x33))); shift = vec_splat_u8(4); return vec_or(vec_sl(a, shift), vec_sr(a, shift)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); #if defined(SIMDE_X86_GFNI_NATIVE) r_.m128i = _mm_gf2p8affine_epi64_epi8(a_.m128i, _mm_set1_epi64x(HEDLEY_STATIC_CAST(int64_t, UINT64_C(0x8040201008040201))), 0); #elif defined(SIMDE_X86_SSE2_NATIVE) __m128i mask; mask = _mm_set1_epi8(0x55); a_.m128i = _mm_or_si128(_mm_andnot_si128(mask, _mm_slli_epi16(a_.m128i, 1)), _mm_and_si128(mask, _mm_srli_epi16(a_.m128i, 1))); mask = _mm_set1_epi8(0x33); a_.m128i = _mm_or_si128(_mm_andnot_si128(mask, _mm_slli_epi16(a_.m128i, 2)), _mm_and_si128(mask, _mm_srli_epi16(a_.m128i, 2))); mask = _mm_set1_epi8(0x0F); r_.m128i = _mm_or_si128(_mm_andnot_si128(mask, _mm_slli_epi16(a_.m128i, 4)), _mm_and_si128(mask, _mm_srli_epi16(a_.m128i, 4))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) a_.v128 = wasm_v128_bitselect(wasm_u8x16_shr(a_.v128, 1), wasm_i8x16_shl(a_.v128, 1), wasm_i8x16_splat(0x55)); a_.v128 = wasm_v128_bitselect(wasm_u8x16_shr(a_.v128, 2), wasm_i8x16_shl(a_.v128, 2), wasm_i8x16_splat(0x33)); r_.v128 = wasm_v128_or(wasm_u8x16_shr(a_.v128, 4), wasm_i8x16_shl(a_.v128, 4)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if HEDLEY_HAS_BUILTIN(__builtin_bitreverse8) && !defined(HEDLEY_IBM_VERSION) r_.values[i] = __builtin_bitreverse8(a_.values[i]); #else r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (((a_.values[i] * UINT64_C(0x80200802)) & UINT64_C(0x0884422110)) * UINT64_C(0x0101010101)) >> 32); #endif } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrbitq_u8 #define vrbitq_u8(a) simde_vrbitq_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrbitq_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrbitq_s8(a); #else return simde_vreinterpretq_s8_u8(simde_vrbitq_u8(simde_vreinterpretq_u8_s8(a))); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrbitq_s8 #define vrbitq_s8(a) simde_vrbitq_s8(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RBIT_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rbit.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/recpe.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_RECPE_H) #define SIMDE_ARM_NEON_RECPE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrecpe_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrecpe_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); #if defined(SIMDE_IEEE754_STORAGE) /* https://stackoverflow.com/questions/12227126/division-as-multiply-and-lut-fast-float-division-reciprocal/12228234#12228234 */ SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int32_t ix; simde_float32 fx = a_.values[i]; simde_memcpy(&ix, &fx, sizeof(ix)); int32_t x = INT32_C(0x7EF311C3) - ix; simde_float32 temp; simde_memcpy(&temp, &x, sizeof(temp)); r_.values[i] = temp * (SIMDE_FLOAT32_C(2.0) - temp * fx); } #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.f32 = 1.0f / a_.f32; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.f32) / sizeof(r_.f32[0])) ; i++) { r_.values[i] = 1.0f / a_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrecpe_f32 #define vrecpe_f32(a) simde_vrecpe_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrecpeq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrecpeq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_re(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_rcp_ps(a_.m128); #elif defined(SIMDE_IEEE754_STORAGE) /* https://stackoverflow.com/questions/12227126/division-as-multiply-and-lut-fast-float-division-reciprocal/12228234#12228234 */ SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { int32_t ix; simde_float32 fx = a_.values[i]; simde_memcpy(&ix, &fx, sizeof(ix)); int32_t x = INT32_C(0x7EF311C3) - ix; simde_float32 temp; simde_memcpy(&temp, &x, sizeof(temp)); r_.values[i] = temp * (SIMDE_FLOAT32_C(2.0) - temp * fx); } #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.f32 = 1.0f / a_.f32; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.f32) / sizeof(r_.f32[0])) ; i++) { r_.values[i] = 1.0f / a_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrecpeq_f32 #define vrecpeq_f32(a) simde_vrecpeq_f32((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RECPE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/recpe.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/recps.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_RECPS_H) #define SIMDE_ARM_NEON_RECPS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrecps_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrecps_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = SIMDE_FLOAT32_C(2.0) - (a_.values[i] * b_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrecps_f32 #define vrecps_f32(a, b) simde_vrecps_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrecpsq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrecpsq_f32(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = SIMDE_FLOAT32_C(2.0) - (a_.values[i] * b_.values[i]); } return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrecpsq_f32 #define vrecpsq_f32(a, b) simde_vrecpsq_f32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RECPS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/recps.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev16.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_REV16_H) #define SIMDE_ARM_NEON_REV16_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrev16_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev16_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi8(a_.m64, _mm_set_pi8(6, 7, 4, 5, 2, 3, 0, 1)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, a_.values, 1, 0, 3, 2, 5, 4, 7, 6); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev16_s8 #define vrev16_s8(a) simde_vrev16_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrev16_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev16_u8(a); #else return simde_vreinterpret_u8_s8(simde_vrev16_s8(simde_vreinterpret_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev16_u8 #define vrev16_u8(a) simde_vrev16_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrev16q_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev16q_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_revb(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed short), a))); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed short), vec_reve(a)))); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_shuffle_epi8(a_.m128i, _mm_set_epi8(14, 15, 12, 13, 10, 11, 8, 9, 6, 7, 4, 5, 2, 3, 0, 1)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 1, 0, 3, 2, 5, 4, 7, 6, 9, 8, 11, 10, 13, 12, 15, 14); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, a_.values, 1, 0, 3, 2, 5, 4, 7, 6, 9, 8, 11, 10, 13, 12, 15, 14); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev16q_s8 #define vrev16q_s8(a) simde_vrev16q_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrev16q_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev16q_u8(a); #else return simde_vreinterpretq_u8_s8(simde_vrev16q_s8(simde_vreinterpretq_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev16q_u8 #define vrev16q_u8(a) simde_vrev16q_u8(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_REV16_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev16.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev32.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_REV32_H) #define SIMDE_ARM_NEON_REV32_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrev32_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi8(a_.m64, _mm_set_pi8(4, 5, 6, 7, 0, 1, 2, 3)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, a_.values, 3, 2, 1, 0, 7, 6, 5, 4); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 3]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32_s8 #define vrev32_s8(a) simde_vrev32_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vrev32_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_X86_SSE_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi16(a_.m64, (2 << 6) | (3 << 4) | (0 << 2) | (1 << 0)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, a_.values, 1, 0, 3, 2); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32_s16 #define vrev32_s16(a) simde_vrev32_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrev32_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32_u8(a); #else return simde_vreinterpret_u8_s8(simde_vrev32_s8(simde_vreinterpret_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32_u8 #define vrev32_u8(a) simde_vrev32_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vrev32_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32_u16(a); #else return simde_vreinterpret_u16_s16(simde_vrev32_s16(simde_vreinterpret_s16_u16(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32_u16 #define vrev32_u16(a) simde_vrev32_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrev32q_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32q_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_revb(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed int), a))); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE1_POWER_ALTIVEC_VECTOR(signed int), vec_reve(a)))); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_shuffle_epi8(a_.m128i, _mm_set_epi8(12, 13, 14, 15, 8, 9, 10, 11, 4, 5, 6, 7, 0, 1, 2, 3)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 3, 2, 1, 0, 7, 6, 5, 4, 11, 10, 9, 8, 15, 14, 13, 12); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, a_.values, 3, 2, 1, 0, 7, 6, 5, 4, 11, 10, 9, 8, 15, 14, 13, 12); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 3]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32q_s8 #define vrev32q_s8(a) simde_vrev32q_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vrev32q_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32q_s16(a); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed short), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed int), vec_reve(a)))); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_shuffle_epi8(a_.m128i, _mm_set_epi8(13, 12, 15, 14, 9, 8, 11, 10, 5, 4, 7, 6, 1, 0, 3, 2)); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_shufflehi_epi16(_mm_shufflelo_epi16(a_.m128i, (2 << 6) | (3 << 4) | (0 << 2) | (1 << 0)), (2 << 6) | (3 << 4) | (0 << 2) | (1 << 0)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 2, 3, 0, 1, 6, 7, 4, 5, 10, 11, 8, 9, 14, 15, 12, 13); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, a_.values, 1, 0, 3, 2, 5, 4, 7, 6); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32q_s16 #define vrev32q_s16(a) simde_vrev32q_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrev32q_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32q_u8(a); #else return simde_vreinterpretq_u8_s8(simde_vrev32q_s8(simde_vreinterpretq_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32q_u8 #define vrev32q_u8(a) simde_vrev32q_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vrev32q_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev32q_u16(a); #else return simde_vreinterpretq_u16_s16(simde_vrev32q_s16(simde_vreinterpretq_s16_u16(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev32q_u16 #define vrev32q_u16(a) simde_vrev32q_u16(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_REV32_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev32.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev64.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ /* N.B. CM: vrev64_f16 and vrev64q_f16 are omitted as * SIMDe has no 16-bit floating point support. */ #if !defined(SIMDE_ARM_NEON_REV64_H) #define SIMDE_ARM_NEON_REV64_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrev64_s8(simde_int8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_s8(a); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi8(a_.m64, _mm_set_pi8(0, 1, 2, 3, 4, 5, 6, 7)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, a_.values, 7, 6, 5, 4, 3, 2, 1, 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 7]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_s8 #define vrev64_s8(a) simde_vrev64_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vrev64_s16(simde_int16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_s16(a); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); #if defined(SIMDE_X86_SSE_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi16(a_.m64, (0 << 6) | (1 << 4) | (2 << 2) | (3 << 0)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, a_.values, 3, 2, 1, 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 3]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_s16 #define vrev64_s16(a) simde_vrev64_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vrev64_s32(simde_int32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_s32(a); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); #if defined(SIMDE_X86_SSE_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi16(a_.m64, (1 << 6) | (0 << 4) | (3 << 2) | (2 << 0)); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, a_.values, 1, 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_s32 #define vrev64_s32(a) simde_vrev64_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrev64_u8(simde_uint8x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_u8(a); #else return simde_vreinterpret_u8_s8(simde_vrev64_s8(simde_vreinterpret_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_u8 #define vrev64_u8(a) simde_vrev64_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vrev64_u16(simde_uint16x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_u16(a); #else return simde_vreinterpret_u16_s16(simde_vrev64_s16(simde_vreinterpret_s16_u16(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_u16 #define vrev64_u16(a) simde_vrev64_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vrev64_u32(simde_uint32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_u32(a); #else return simde_vreinterpret_u32_s32(simde_vrev64_s32(simde_vreinterpret_s32_u32(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_u32 #define vrev64_u32(a) simde_vrev64_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrev64_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64_f32(a); #else return simde_vreinterpret_f32_s32(simde_vrev64_s32(simde_vreinterpret_s32_f32(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64_f32 #define vrev64_f32(a) simde_vrev64_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrev64q_s8(simde_int8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_s8(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_revb(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), a))); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), vec_reve(a)))); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_shuffle_epi8(a_.m128i, _mm_set_epi8(8, 9, 10, 11, 12, 13, 14, 15, 0, 1, 2, 3, 4, 5, 6, 7)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 7, 6, 5, 4, 3, 2, 1, 0, 15, 14, 13, 12, 11, 10, 9, 8); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, a_.values, 7, 6, 5, 4, 3, 2, 1, 0, 15, 14, 13, 12, 11, 10, 9, 8); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 7]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_s8 #define vrev64q_s8(a) simde_vrev64q_s8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vrev64q_s16(simde_int16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_s16(a); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed short), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), vec_reve(a)))); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); #if defined(SIMDE_X86_SSSE3_NATIVE) r_.m128i = _mm_shuffle_epi8(a_.m128i, _mm_set_epi8(9, 8, 11, 10, 13, 12, 15, 14, 1, 0, 3, 2, 5, 4, 7, 6)); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_shufflehi_epi16(_mm_shufflelo_epi16(a_.m128i, (0 << 6) | (1 << 4) | (2 << 2) | (3 << 0)), (0 << 6) | (1 << 4) | (2 << 2) | (3 << 0)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 6, 7, 4, 5, 2, 3, 0, 1, 14, 15, 12, 13, 10, 11, 8, 9); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, a_.values, 3, 2, 1, 0, 7, 6, 5, 4); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 3]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_s16 #define vrev64q_s16(a) simde_vrev64q_s16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vrev64q_s32(simde_int32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_s32(a); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed int), vec_reve(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), vec_reve(a)))); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_shuffle_epi32(a_.m128i, (2 << 6) | (3 << 4) | (0 << 2) | (1 << 0)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, a_.v128, 4, 5, 6, 7, 0, 1, 2, 3, 12, 13, 14, 15, 8, 9, 10, 11); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, a_.values, 1, 0, 3, 2); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i ^ 1]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_s32 #define vrev64q_s32(a) simde_vrev64q_s32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrev64q_u8(simde_uint8x16_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_u8(a); #else return simde_vreinterpretq_u8_s8(simde_vrev64q_s8(simde_vreinterpretq_s8_u8(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_u8 #define vrev64q_u8(a) simde_vrev64q_u8(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vrev64q_u16(simde_uint16x8_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_u16(a); #else return simde_vreinterpretq_u16_s16(simde_vrev64q_s16(simde_vreinterpretq_s16_u16(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_u16 #define vrev64q_u16(a) simde_vrev64q_u16(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vrev64q_u32(simde_uint32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_u32(a); #else return simde_vreinterpretq_u32_s32(simde_vrev64q_s32(simde_vreinterpretq_s32_u32(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_u32 #define vrev64q_u32(a) simde_vrev64q_u32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrev64q_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrev64q_f32(a); #else return simde_vreinterpretq_f32_s32(simde_vrev64q_s32(simde_vreinterpretq_s32_f32(a))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrev64q_f32 #define vrev64q_f32(a) simde_vrev64q_f32(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_REV64_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rev64.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rhadd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ /* Formula to average two unsigned integers without overflow is from Hacker's Delight (ISBN 978-0-321-84268-8). * https://web.archive.org/web/20180831033349/http://hackersdelight.org/basics2.pdf#G525596 * avg_u = (x | y) - ((x ^ y) >> 1); * * Formula to average two signed integers (without widening): * avg_s = (x >> 1) + (y >> 1) + ((x | y) & 1); // use arithmetic shifts * * If hardware has avg_u but not avg_s then rebase input to be unsigned. * For example: s8 (-128..127) can be converted to u8 (0..255) by adding +128. * Idea borrowed from Intel's ARM_NEON_2_x86_SSE project. * https://github.com/intel/ARM_NEON_2_x86_SSE/blob/3c9879bf2dbef3274e0ed20f93cb8da3a2115ba1/NEON_2_SSE.h#L3171 * avg_s8 = avg_u8(a ^ 0x80, b ^ 0x80) ^ 0x80; */ #if !defined(SIMDE_ARM_NEON_RHADD_H) #define SIMDE_ARM_NEON_RHADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrhadd_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int8_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int8_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int8_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int8_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int8_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int8_t, 1))); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_s8 #define vrhadd_s8(a, b) simde_vrhadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vrhadd_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi16(_m_pand(_m_por(a_.m64, b_.m64), _mm_set1_pi16(HEDLEY_STATIC_CAST(int16_t, 1))), _mm_add_pi16(_m_psrawi(a_.m64, 1), _m_psrawi(b_.m64, 1))); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int16_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int16_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int16_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int16_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int16_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int16_t, 1))); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_s16 #define vrhadd_s16(a, b) simde_vrhadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vrhadd_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi32(_m_pand(_m_por(a_.m64, b_.m64), _mm_set1_pi32(HEDLEY_STATIC_CAST(int32_t, 1))), _mm_add_pi32(_m_psradi(a_.m64, 1), _m_psradi(b_.m64, 1))); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int32_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int32_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int32_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int32_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int32_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int32_t, 1))); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_s32 #define vrhadd_s32(a, b) simde_vrhadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrhadd_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(uint8_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(uint8_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(uint8_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(uint8_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(uint8_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(uint8_t, 1))); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_u8 #define vrhadd_u8(a, b) simde_vrhadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vrhadd_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi16(_m_pand(_m_por(a_.m64, b_.m64), _mm_set1_pi16(HEDLEY_STATIC_CAST(int16_t, 1))), _mm_add_pi16(_mm_srli_pi16(a_.m64, 1), _mm_srli_pi16(b_.m64, 1))); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(uint16_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(uint16_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(uint16_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(uint16_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(uint16_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(uint16_t, 1))); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_u16 #define vrhadd_u16(a, b) simde_vrhadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vrhadd_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhadd_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_add_pi32(_m_pand(_m_por(a_.m64, b_.m64), _mm_set1_pi32(HEDLEY_STATIC_CAST(int32_t, 1))), _mm_add_pi32(_mm_srli_pi32(a_.m64, 1), _mm_srli_pi32(b_.m64, 1))); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(uint32_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(uint32_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(uint32_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(uint32_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(uint32_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(uint32_t, 1))); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhadd_u32 #define vrhadd_u32(a, b) simde_vrhadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrhaddq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) const __m128i msb = _mm_set1_epi8(HEDLEY_STATIC_CAST(int8_t, -128)); /* 0x80 */ r_.m128i = _mm_xor_si128(_mm_avg_epu8(_mm_xor_si128(a_.m128i, msb), _mm_xor_si128(b_.m128i, msb)), msb); #elif defined(SIMDE_WASM_SIMD128_NATIVE) const v128_t msb = wasm_i8x16_splat(HEDLEY_STATIC_CAST(int8_t, -128)); /* 0x80 */ r_.v128 = wasm_v128_xor(wasm_u8x16_avgr(wasm_v128_xor(a_.v128, msb), wasm_v128_xor(b_.v128, msb)), msb); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int8_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int8_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int8_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int8_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int8_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int8_t, 1))); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_s8 #define vrhaddq_s8(a, b) simde_vrhaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vrhaddq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) const __m128i msb = _mm_set1_epi16(HEDLEY_STATIC_CAST(int16_t, -32768)); /* 0x8000 */ r_.m128i = _mm_xor_si128(_mm_avg_epu16(_mm_xor_si128(a_.m128i, msb), _mm_xor_si128(b_.m128i, msb)), msb); #elif defined(SIMDE_WASM_SIMD128_NATIVE) const v128_t msb = wasm_i16x8_splat(HEDLEY_STATIC_CAST(int16_t, -32768)); /* 0x8000 */ r_.v128 = wasm_v128_xor(wasm_u16x8_avgr(wasm_v128_xor(a_.v128, msb), wasm_v128_xor(b_.v128, msb)), msb); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int16_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int16_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int16_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int16_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int16_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int16_t, 1))); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_s16 #define vrhaddq_s16(a, b) simde_vrhaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vrhaddq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_add_epi32(_mm_and_si128(_mm_or_si128(a_.m128i, b_.m128i), _mm_set1_epi32(1)), _mm_add_epi32(_mm_srai_epi32(a_.m128i, 1), _mm_srai_epi32(b_.m128i, 1))); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_add(wasm_v128_and(wasm_v128_or(a_.v128, b_.v128), wasm_i32x4_splat(1)), wasm_i32x4_add(wasm_i32x4_shr(a_.v128, 1), wasm_i32x4_shr(b_.v128, 1))); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (((a_.values >> HEDLEY_STATIC_CAST(int32_t, 1)) + (b_.values >> HEDLEY_STATIC_CAST(int32_t, 1))) + ((a_.values | b_.values) & HEDLEY_STATIC_CAST(int32_t, 1))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (((a_.values[i] >> HEDLEY_STATIC_CAST(int32_t, 1)) + (b_.values[i] >> HEDLEY_STATIC_CAST(int32_t, 1))) + ((a_.values[i] | b_.values[i]) & HEDLEY_STATIC_CAST(int32_t, 1))); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_s32 #define vrhaddq_s32(a, b) simde_vrhaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrhaddq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_avg_epu8(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u8x16_avgr(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (a_.values | b_.values) - ((a_.values ^ b_.values) >> HEDLEY_STATIC_CAST(uint8_t, 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] | b_.values[i]) - ((a_.values[i] ^ b_.values[i]) >> HEDLEY_STATIC_CAST(uint8_t, 1)); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_u8 #define vrhaddq_u8(a, b) simde_vrhaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vrhaddq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_avg_epu16(a_.m128i, b_.m128i); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_u16x8_avgr(a_.v128, b_.v128); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (a_.values | b_.values) - ((a_.values ^ b_.values) >> HEDLEY_STATIC_CAST(uint16_t, 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] | b_.values[i]) - ((a_.values[i] ^ b_.values[i]) >> HEDLEY_STATIC_CAST(uint16_t, 1)); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_u16 #define vrhaddq_u16(a, b) simde_vrhaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vrhaddq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrhaddq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_sub_epi32(_mm_or_si128(a_.m128i, b_.m128i), _mm_srli_epi32(_mm_xor_si128(a_.m128i, b_.m128i), 1)); #elif defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_sub(wasm_v128_or(a_.v128, b_.v128), wasm_u32x4_shr(wasm_v128_xor(a_.v128, b_.v128), 1)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = (a_.values | b_.values) - ((a_.values ^ b_.values) >> HEDLEY_STATIC_CAST(uint32_t, 1)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] | b_.values[i]) - ((a_.values[i] ^ b_.values[i]) >> HEDLEY_STATIC_CAST(uint32_t, 1)); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrhaddq_u32 #define vrhaddq_u32(a, b) simde_vrhaddq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RHADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rhadd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rnd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RND_H) #define SIMDE_ARM_NEON_RND_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrnd_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrnd_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_truncf(a_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrnd_f32 #define vrnd_f32(a) simde_vrnd_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vrnd_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrnd_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_trunc(a_.values[i]); } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrnd_f64 #define vrnd_f64(a) simde_vrnd_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrndq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_trunc(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_round_ps(a_.m128, _MM_FROUND_TO_ZERO); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_trunc_ps(a_.m128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_truncf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndq_f32 #define vrndq_f32(a) simde_vrndq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vrndq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndq_f64(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_trunc(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_round_pd(a_.m128d, _MM_FROUND_TO_ZERO); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128d = _mm_trunc_ps(a_.m128d); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_trunc(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndq_f64 #define vrndq_f64(a) simde_vrndq_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RND_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rnd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndm.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020-2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RNDM_H) #define SIMDE_ARM_NEON_RNDM_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrndm_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndm_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_floorf(a_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndm_f32 #define vrndm_f32(a) simde_vrndm_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vrndm_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndm_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_floor(a_.values[i]); } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndm_f64 #define vrndm_f64(a) simde_vrndm_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrndmq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndmq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_floor(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_round_ps(a_.m128, _MM_FROUND_TO_NEG_INF); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_floor_ps(a_.m128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_floorf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndmq_f32 #define vrndmq_f32(a) simde_vrndmq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vrndmq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndmq_f64(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_floor(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_round_pd(a_.m128d, _MM_FROUND_TO_NEG_INF); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128d = _mm_floor_pd(a_.m128d); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_floor(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndmq_f64 #define vrndmq_f64(a) simde_vrndmq_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RNDM_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndm.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndi.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020-2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RNDI_H) #define SIMDE_ARM_NEON_RNDI_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrndi_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && !defined(SIMDE_BUG_GCC_95399) return vrndi_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_nearbyintf(a_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndi_f32 #define vrndi_f32(a) simde_vrndi_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vrndi_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_GCC_95399) return vrndi_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_nearbyint(a_.values[i]); } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndi_f64 #define vrndi_f64(a) simde_vrndi_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrndiq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) && !defined(SIMDE_BUG_GCC_95399) return vrndiq_f32(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_round_ps(a_.m128, _MM_FROUND_CUR_DIRECTION); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_nearbyintf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndiq_f32 #define vrndiq_f32(a) simde_vrndiq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vrndiq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && !defined(SIMDE_BUG_GCC_95399) return vrndiq_f64(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_round_pd(a_.m128d, _MM_FROUND_CUR_DIRECTION); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_nearbyint(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndiq_f64 #define vrndiq_f64(a) simde_vrndiq_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RNDI_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndi.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020-2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RNDN_H) #define SIMDE_ARM_NEON_RNDN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrndn_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndn_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_roundevenf(a_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndn_f32 #define vrndn_f32(a) simde_vrndn_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vrndn_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndn_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_roundeven(a_.values[i]); } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndn_f64 #define vrndn_f64(a) simde_vrndn_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrndnq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndnq_f32(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_round_ps(a_.m128, _MM_FROUND_TO_NEAREST_INT); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_roundevenf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndnq_f32 #define vrndnq_f32(a) simde_vrndnq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vrndnq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndnq_f64(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_round_pd(a_.m128d, _MM_FROUND_TO_NEAREST_INT); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_roundeven(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndnq_f64 #define vrndnq_f64(a) simde_vrndnq_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RNDN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndp.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020-2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RNDP_H) #define SIMDE_ARM_NEON_RNDP_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrndp_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndp_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_ceilf(a_.values[i]); } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndp_f32 #define vrndp_f32(a) simde_vrndp_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vrndp_f64(simde_float64x1_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndp_f64(a); #else simde_float64x1_private r_, a_ = simde_float64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_ceil(a_.values[i]); } return simde_float64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndp_f64 #define vrndp_f64(a) simde_vrndp_f64(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrndpq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V8_NATIVE) return vrndpq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_ceil(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128 = _mm_round_ps(a_.m128, _MM_FROUND_TO_POS_INF); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_ceil_ps(a_.m128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_ceilf(a_.values[i]); } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrndpq_f32 #define vrndpq_f32(a) simde_vrndpq_f32(a) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vrndpq_f64(simde_float64x2_t a) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vrndpq_f64(a); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) return vec_ceil(a); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a); #if defined(SIMDE_X86_SSE4_1_NATIVE) r_.m128d = _mm_round_pd(a_.m128d, _MM_FROUND_TO_POS_INF); #elif defined(SIMDE_X86_SVML_NATIVE) && defined(SIMDE_X86_SSE_NATIVE) r_.m128d = _mm_ceil_pd(a_.m128d); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_math_ceil(a_.values[i]); } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vrndpq_f64 #define vrndpq_f64(a) simde_vrndpq_f64(a) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RNDP_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rndp.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rshl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_RSHL_H) #define SIMDE_ARM_NEON_RSHL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* Notes from the implementer (Christopher Moore aka rosbif) * * I have tried to exactly reproduce the documented behaviour of the * ARM NEON rshl and rshlq intrinsics. * This is complicated for the following reasons:- * * a) Negative shift counts shift right. * * b) Only the low byte of the shift count is used but the shift count * is not limited to 8-bit values (-128 to 127). * * c) Overflow must be avoided when rounding, together with sign change * warning/errors in the C versions. * * d) Intel SIMD is not nearly as complete as NEON and AltiVec. * There were no intrisics with a vector shift count before AVX2 which * only has 32 and 64-bit logical ones and only a 32-bit arithmetic * one. The others need AVX512. There are no 8-bit shift intrinsics at * all, even with a scalar shift count. It is surprising to use AVX2 * and even AVX512 to implement a 64-bit vector operation. * * e) Many shift implementations, and the C standard, do not treat a * shift count >= the object's size in bits as one would expect. * (Personally I feel that > is silly but == can be useful.) * * Note that even the C17/18 standard does not define the behaviour of * a right shift of a negative value. * However Evan and I agree that all compilers likely to be used * implement this as an arithmetic right shift with sign extension. * If this is not the case it could be replaced by a logical right shift * if negative values are complemented before and after the shift. * * Some of the SIMD translations may be slower than the portable code, * particularly those for vectors with only one or two elements. * But I had fun writing them ;-) * */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrshl_s8 (const simde_int8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi16(zero, zero); __m128i a128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(b_.m64)); __m128i a128_shr = _mm_srav_epi16(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi16(a128, b128), _mm_srai_epi16(_mm_sub_epi16(a128_shr, ff), 1), _mm_cmpgt_epi16(zero, b128)); r_.m64 = _mm_movepi64_pi64(_mm_cvtepi16_epi8(r128)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi32(zero, zero); __m256i a256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(a_.m64)); __m256i b256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(b_.m64)); __m256i a256_shr = _mm256_srav_epi32(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srai_epi32(_mm256_sub_epi32(a256_shr, ff), 1), _mm256_cmpgt_epi32(zero, b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi32(0x0C080400)); r_.m64 = _mm_set_pi32(_mm256_extract_epi32(r256, 4), _mm256_extract_epi32(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (simde_math_abs(b_.values[i]) >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_s8 #define vrshl_s8(a, b) simde_vrshl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vrshl_s16 (const simde_int16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i a128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(b_.m64)); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i a128_shr = _mm_srav_epi32(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srai_epi32(_mm_sub_epi32(a128_shr, ff), 1), _mm_cmpgt_epi32(zero, b128)); r_.m64 = _mm_movepi64_pi64(_mm_shuffle_epi8(r128, _mm_set1_epi64x(0x0D0C090805040100))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (simde_math_abs(b_.values[i]) >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_s16 #define vrshl_s16(a, b) simde_vrshl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vrshl_s32 (const simde_int32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i a128_shr = _mm_srav_epi32(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srai_epi32(_mm_sub_epi32(a128_shr, ff), 1), _mm_cmpgt_epi32(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int32_t, (simde_math_abs(b_.values[i]) >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_s32 #define vrshl_s32(a, b) simde_vrshl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vrshl_s64 (const simde_int64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi64(zero, zero); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi64(_mm_slli_epi64(b128, 56), 56); __m128i a128_shr = _mm_srav_epi64(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128), _mm_srai_epi64(_mm_sub_epi64(a128_shr, ff), 1), _mm_cmpgt_epi64(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ones = _mm_set1_epi64x(1); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); __m128i maska = _mm_cmpgt_epi64(zero, a128); __m128i b128_abs = _mm_and_si128(_mm_abs_epi8(b128), _mm_set1_epi64x(0xFF)); __m128i a128_rnd = _mm_and_si128(_mm_srlv_epi64(a128, _mm_sub_epi64(b128_abs, ones)), ones); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128_abs), _mm_add_epi64(_mm_xor_si128(_mm_srlv_epi64(_mm_xor_si128(a128, maska), b128_abs), maska), a128_rnd), _mm_cmpgt_epi64(zero, _mm_slli_epi64(b128, 56))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int64_t, (simde_math_llabs(b_.values[i]) >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (INT64_C(1) << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_s64 #define vrshl_s64(a, b) simde_vrshl_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrshl_u8 (const simde_uint8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi16(zero, zero); __m128i a128 = _mm_cvtepu8_epi16(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(b_.m64)); __m128i a128_shr = _mm_srlv_epi16(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi16(a128, b128), _mm_srli_epi16(_mm_sub_epi16(a128_shr, ff), 1), _mm_cmpgt_epi16(zero, b128)); r_.m64 = _mm_movepi64_pi64(_mm_cvtepi16_epi8(r128)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi32(zero, zero); __m256i a256 = _mm256_cvtepu8_epi32(_mm_movpi64_epi64(a_.m64)); __m256i b256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(b_.m64)); __m256i a256_shr = _mm256_srlv_epi32(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srli_epi32(_mm256_sub_epi32(a256_shr, ff), 1), _mm256_cmpgt_epi32(zero, b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi32(0x0C080400)); r_.m64 = _mm_set_pi32(_mm256_extract_epi32(r256, 4), _mm256_extract_epi32(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (b_.values[i] >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -8) ? (((b_.values[i] == -8) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_u8 #define vrshl_u8(a, b) simde_vrshl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vrshl_u16 (const simde_uint16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i a128 = _mm_cvtepu16_epi32(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(b_.m64)); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i a128_shr = _mm_srlv_epi32(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srli_epi32(_mm_sub_epi32(a128_shr, ff), 1), _mm_cmpgt_epi32(zero, b128)); r_.m64 = _mm_movepi64_pi64(_mm_shuffle_epi8(r128, _mm_set1_epi64x(0x0D0C090805040100))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (b_.values[i] >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -16) ? (((b_.values[i] == -16) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_u16 #define vrshl_u16(a, b) simde_vrshl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vrshl_u32 (const simde_uint32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i a128_shr = _mm_srlv_epi32(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srli_epi32(_mm_sub_epi32(a128_shr, ff), 1), _mm_cmpgt_epi32(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -32) ? (((b_.values[i] == -32) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_u32 #define vrshl_u32(a, b) simde_vrshl_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vrshl_u64 (const simde_uint64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshl_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); simde_int64x1_private b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi64(zero, zero); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi64(_mm_slli_epi64(b128, 56), 56); __m128i a128_shr = _mm_srlv_epi64(a128, _mm_xor_si128(b128, ff)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128), _mm_srli_epi64(_mm_sub_epi64(a128_shr, ff), 1), _mm_cmpgt_epi64(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) const __m128i ones = _mm_set1_epi64x(1); const __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); __m128i b128_abs = _mm_and_si128(_mm_abs_epi8(b128), _mm_set1_epi64x(0xFF)); __m128i a128_shr = _mm_srlv_epi64(a128, _mm_sub_epi64(b128_abs, ones)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128_abs), _mm_srli_epi64(_mm_add_epi64(a128_shr, ones), 1), _mm_cmpgt_epi64(_mm_setzero_si128(), _mm_slli_epi64(b128, 56))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -64) ? (((b_.values[i] == -64) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshl_u64 #define vrshl_u64(a, b) simde_vrshl_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrshlq_s8 (const simde_int8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed char) zero = vec_splats(HEDLEY_STATIC_CAST( signed char, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned char, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) max = vec_splats(HEDLEY_STATIC_CAST(unsigned char, 8)); SIMDE_POWER_ALTIVEC_VECTOR(signed char) a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) b_abs; b_abs = HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_abs(b)); a_shr = vec_sra(a, vec_sub(b_abs, ones)); return vec_and(vec_sel(vec_sl(a, b_abs), vec_add(vec_sra(a_shr, ones), vec_and(a_shr, HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), ones))), vec_cmplt(b, zero)), vec_cmplt(b_abs, max)); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi16(zero, zero); __m256i a256 = _mm256_cvtepi8_epi16(a_.m128i); __m256i b256 = _mm256_cvtepi8_epi16(b_.m128i); __m256i a256_shr = _mm256_srav_epi16(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi16(a256, b256), _mm256_srai_epi16(_mm256_sub_epi16(a256_shr, ff), 1), _mm256_cmpgt_epi16(zero, b256)); r_.m128i = _mm256_cvtepi16_epi8(r256); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (simde_math_abs(b_.values[i]) >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_s8 #define vrshlq_s8(a, b) simde_vrshlq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vrshlq_s16 (const simde_int16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed short) zero = vec_splats(HEDLEY_STATIC_CAST( signed short, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) max = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(signed short) a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) b_abs; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); a_shr = vec_sra(a, vec_sub(b_abs, ones)); return vec_and(vec_sel(vec_sl(a, b_abs), vec_add(vec_sra(a_shr, ones), vec_and(a_shr, HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed short), ones))), vec_cmplt(vec_sl(b, shift), zero)), vec_cmplt(b_abs, max)); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi16(zero, zero); __m128i B = _mm_srai_epi16(_mm_slli_epi16(b_.m128i, 8), 8); __m128i a_shr = _mm_srav_epi16(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi16(a_.m128i, B), _mm_srai_epi16(_mm_sub_epi16(a_shr, ff), 1), _mm_cmpgt_epi16(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_ARCH_AMD64) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi32(zero, zero); __m256i a256 = _mm256_cvtepi16_epi32(a_.m128i); __m256i b256 = _mm256_cvtepi16_epi32(b_.m128i); b256 = _mm256_srai_epi32(_mm256_slli_epi32(b256, 24), 24); __m256i a256_shr = _mm256_srav_epi32(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srai_epi32(_mm256_sub_epi32(a256_shr, ff), 1), _mm256_cmpgt_epi32(zero, b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi64x(0x0D0C090805040100)); r_.m128i = _mm_set_epi64x(_mm256_extract_epi64(r256, 2), _mm256_extract_epi64(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (simde_math_abs(b_.values[i]) >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_s16 #define vrshlq_s16(a, b) simde_vrshlq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vrshlq_s32 (const simde_int32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed int) zero = vec_splats(HEDLEY_STATIC_CAST( signed int, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) max = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(signed int) a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) b_abs; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); a_shr = vec_sra(a, vec_sub(b_abs, ones)); return vec_and(vec_sel(vec_sl(a, b_abs), vec_add(vec_sra(a_shr, ones), vec_and(a_shr, HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed int), ones))), vec_cmplt(vec_sl(b, shift), zero)), vec_cmplt(b_abs, max)); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i B = _mm_srai_epi32(_mm_slli_epi32(b_.m128i, 24), 24); __m128i a_shr = _mm_srav_epi32(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi32(a_.m128i, B), _mm_srai_epi32(_mm_sub_epi32(a_shr, ff), 1), _mm_cmpgt_epi32(zero, B)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int32_t, (simde_math_abs(b_.values[i]) >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (1 << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_s32 #define vrshlq_s32(a, b) simde_vrshlq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vrshlq_s64 (const simde_int64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed long long) zero = vec_splats(HEDLEY_STATIC_CAST( signed long long, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 64 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) max = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 64)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(signed long long) a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) b_abs; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); a_shr = vec_sra(a, vec_sub(b_abs, ones)); HEDLEY_DIAGNOSTIC_PUSH #if defined(SIMDE_BUG_CLANG_46770) SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif return vec_and(vec_sel(vec_sl(a, b_abs), vec_add(vec_sra(a_shr, ones), vec_and(a_shr, HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed long long), ones))), vec_cmplt(vec_sl(b, shift), zero)), vec_cmplt(b_abs, max)); HEDLEY_DIAGNOSTIC_POP #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i B = _mm_srai_epi64(_mm_slli_epi64(b_.m128i, 56), 56); __m128i a_shr = _mm_srav_epi64(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, B), _mm_srai_epi64(_mm_sub_epi64(a_shr, ff), 1), _mm_cmpgt_epi64(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ones = _mm_set1_epi64x(1); __m128i maska = _mm_cmpgt_epi64(zero, a_.m128i); __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b_.m128i), _mm_set1_epi64x(0xFF)); __m128i a_rnd = _mm_and_si128(_mm_srlv_epi64(a_.m128i, _mm_sub_epi64(b_abs, ones)), ones); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, b_abs), _mm_add_epi64(_mm_xor_si128(_mm_srlv_epi64(_mm_xor_si128(a_.m128i, maska), b_abs), maska), a_rnd), _mm_cmpgt_epi64(zero, _mm_slli_epi64(b_.m128i, 56))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int64_t, (simde_math_llabs(b_.values[i]) >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : ((a_.values[i] + (INT64_C(1) << (-b_.values[i] - 1))) >> -b_.values[i])); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_s64 #define vrshlq_s64(a, b) simde_vrshlq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrshlq_u8 (const simde_uint8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed char) zero = vec_splats(HEDLEY_STATIC_CAST( signed char, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned char, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) max = vec_splats(HEDLEY_STATIC_CAST(unsigned char, 8)); SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) b_abs, b_abs_dec, a_shr; b_abs = HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_abs(b)); b_abs_dec = vec_sub(b_abs, ones); a_shr = vec_and(vec_sr(a, b_abs_dec), vec_cmplt(b_abs_dec, max)); return vec_sel(vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, max)), vec_sr(vec_add(a_shr, ones), ones), vec_cmplt(b, zero)); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi32(zero, zero); __m256i a256 = _mm256_cvtepu8_epi16(a_.m128i); __m256i b256 = _mm256_cvtepi8_epi16(b_.m128i); __m256i a256_shr = _mm256_srlv_epi16(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi16(a256, b256), _mm256_srli_epi16(_mm256_sub_epi16(a256_shr, ff), 1), _mm256_cmpgt_epi16(zero, b256)); r_.m128i = _mm256_cvtepi16_epi8(r256); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (b_.values[i] >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -8) ? (((b_.values[i] == -8) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_u8 #define vrshlq_u8(a, b) simde_vrshlq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vrshlq_u16 (const simde_uint16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed short) zero = vec_splats(HEDLEY_STATIC_CAST( signed short, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) max = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned short, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) b_abs, b_abs_dec, a_shr; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); b_abs_dec = vec_sub(b_abs, ones); a_shr = vec_and(vec_sr(a, b_abs_dec), vec_cmplt(b_abs_dec, max)); return vec_sel(vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, max)), vec_sr(vec_add(a_shr, ones), ones), vec_cmplt(vec_sl(b, shift), zero)); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi16(zero, zero); __m128i B = _mm_srai_epi16(_mm_slli_epi16(b_.m128i, 8), 8); __m128i a_shr = _mm_srlv_epi16(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi16(a_.m128i, B), _mm_srli_epi16(_mm_sub_epi16(a_shr, ff), 1), _mm_cmpgt_epi16(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_ARCH_AMD64) const __m256i zero = _mm256_setzero_si256(); const __m256i ff = _mm256_cmpeq_epi32(zero, zero); __m256i a256 = _mm256_cvtepu16_epi32(a_.m128i); __m256i b256 = _mm256_cvtepi16_epi32(b_.m128i); b256 = _mm256_srai_epi32(_mm256_slli_epi32(b256, 24), 24); __m256i a256_shr = _mm256_srlv_epi32(a256, _mm256_xor_si256(b256, ff)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srli_epi32(_mm256_sub_epi32(a256_shr, ff), 1), _mm256_cmpgt_epi32(zero, b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi64x(0x0D0C090805040100)); r_.m128i = _mm_set_epi64x(_mm256_extract_epi64(r256, 2), _mm256_extract_epi64(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (b_.values[i] >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -16) ? (((b_.values[i] == -16) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_u16 #define vrshlq_u16(a, b) simde_vrshlq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vrshlq_u32 (const simde_uint32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed int) zero = vec_splats(HEDLEY_STATIC_CAST( signed int, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) max = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) b_abs, b_abs_dec, a_shr; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); b_abs_dec = vec_sub(b_abs, ones); a_shr = vec_and(vec_sr(a, b_abs_dec), vec_cmplt(b_abs_dec, max)); return vec_sel(vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, max)), vec_sr(vec_add(a_shr, ones), ones), vec_cmplt(vec_sl(b, shift), zero)); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi32(zero, zero); __m128i B = _mm_srai_epi32(_mm_slli_epi32(b_.m128i, 24), 24); __m128i a_shr = _mm_srlv_epi32(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi32(a_.m128i, B), _mm_srli_epi32(_mm_sub_epi32(a_shr, ff), 1), _mm_cmpgt_epi32(zero, B)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -32) ? (((b_.values[i] == -32) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_u32 #define vrshlq_u32(a, b) simde_vrshlq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vrshlq_u64 (const simde_uint64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrshlq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) const SIMDE_POWER_ALTIVEC_VECTOR( signed long long) zero = vec_splats(HEDLEY_STATIC_CAST( signed long long, 0)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) ones = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 1)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) shift = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 64 - 8)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) max = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 64)); const SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) ff = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 0xFF)); SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) b_abs, b_abs_dec, a_shr; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), ff); b_abs_dec = vec_sub(b_abs, ones); a_shr = vec_and(vec_sr(a, b_abs_dec), vec_cmplt(b_abs_dec, max)); HEDLEY_DIAGNOSTIC_PUSH #if defined(SIMDE_BUG_CLANG_46770) SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif return vec_sel(vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, max)), vec_sr(vec_add(a_shr, ones), ones), vec_cmplt(vec_sl(b, shift), zero)); HEDLEY_DIAGNOSTIC_POP #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); simde_int64x2_private b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) const __m128i zero = _mm_setzero_si128(); const __m128i ff = _mm_cmpeq_epi64(zero, zero); __m128i B = _mm_srai_epi64(_mm_slli_epi64(b_.m128i, 56), 56); __m128i a_shr = _mm_srlv_epi64(a_.m128i, _mm_xor_si128(B, ff)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, B), _mm_srli_epi64(_mm_sub_epi64(a_shr, ff), 1), _mm_cmpgt_epi64(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) const __m128i ones = _mm_set1_epi64x(1); __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b_.m128i), _mm_set1_epi64x(0xFF)); __m128i a_shr = _mm_srlv_epi64(a_.m128i, _mm_sub_epi64(b_abs, ones)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, b_abs), _mm_srli_epi64(_mm_add_epi64(a_shr, ones), 1), _mm_cmpgt_epi64(_mm_setzero_si128(), _mm_slli_epi64(b_.m128i, 56))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (b_.values[i] >= -64) ? (((b_.values[i] == -64) ? 0 : (a_.values[i] >> -b_.values[i])) + ((a_.values[i] >> (-b_.values[i] - 1)) & 1)) : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshlq_u64 #define vrshlq_u64(a, b) simde_vrshlq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RSHL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rshl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rshr_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_RSHR_N_H) #define SIMDE_ARM_NEON_RSHR_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tst.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_TST_H) #define SIMDE_ARM_NEON_TST_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vtstq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u8(simde_vceqzq_s8(simde_vandq_s8(a, b))); #else simde_int8x16_private a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); simde_uint8x16_private r_; #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i8x16_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_s8 #define vtstq_s8(a, b) simde_vtstq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vtstq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u16(simde_vceqzq_s16(simde_vandq_s16(a, b))); #else simde_int16x8_private a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); simde_uint16x8_private r_; #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i16x8_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_s16 #define vtstq_s16(a, b) simde_vtstq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vtstq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u32(simde_vceqzq_s32(simde_vandq_s32(a, b))); #else simde_int32x4_private a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); simde_uint32x4_private r_; #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i32x4_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_s32 #define vtstq_s32(a, b) simde_vtstq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vtstq_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtstq_s64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vceqzq_u64(simde_vceqzq_s64(simde_vandq_s64(a, b))); #else simde_int64x2_private a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); simde_uint64x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtstq_s64 #define vtstq_s64(a, b) simde_vtstq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vtstq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u8(simde_vceqzq_u8(simde_vandq_u8(a, b))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i8x16_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT8_MAX : 0; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_u8 #define vtstq_u8(a, b) simde_vtstq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vtstq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u16(simde_vceqzq_u16(simde_vandq_u16(a, b))); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i16x8_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT16_MAX : 0; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_u16 #define vtstq_u16(a, b) simde_vtstq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vtstq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtstq_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvnq_u32(simde_vceqzq_u32(simde_vandq_u32(a, b))); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_ne(wasm_v128_and(a_.v128, b_.v128), wasm_i32x4_splat(0)); #elif defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT32_MAX : 0; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtstq_u32 #define vtstq_u32(a, b) simde_vtstq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vtstq_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtstq_u64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vceqzq_u64(simde_vceqzq_u64(simde_vandq_u64(a, b))); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT64_MAX : 0; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtstq_u64 #define vtstq_u64(a, b) simde_vtstq_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtst_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u8(simde_vceqz_s8(simde_vand_s8(a, b))); #else simde_int8x8_private a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); simde_uint8x8_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_s8 #define vtst_s8(a, b) simde_vtst_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vtst_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u16(simde_vceqz_s16(simde_vand_s16(a, b))); #else simde_int16x4_private a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); simde_uint16x4_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_s16 #define vtst_s16(a, b) simde_vtst_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vtst_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u32(simde_vceqz_s32(simde_vand_s32(a, b))); #else simde_int32x2_private a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); simde_uint32x2_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_s32 #define vtst_s32(a, b) simde_vtst_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vtst_s64(simde_int64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtst_s64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vceqz_u64(simde_vceqz_s64(simde_vand_s64(a, b))); #else simde_int64x1_private a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); simde_uint64x1_private r_; #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtst_s64 #define vtst_s64(a, b) simde_vtst_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtst_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u8(simde_vceqz_u8(simde_vand_u8(a, b))); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT8_MAX : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_u8 #define vtst_u8(a, b) simde_vtst_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vtst_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u16(simde_vceqz_u16(simde_vand_u16(a, b))); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT16_MAX : 0; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_u16 #define vtst_u16(a, b) simde_vtst_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vtst_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtst_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vmvn_u32(simde_vceqz_u32(simde_vand_u32(a, b))); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT32_MAX : 0; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtst_u32 #define vtst_u32(a, b) simde_vtst_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vtst_u64(simde_uint64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtst_u64(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE > 0 return simde_vceqz_u64(simde_vceqz_u64(simde_vand_u64(a, b))); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a), b_ = simde_uint64x1_to_private(b); #if defined(SIMDE_VECTOR_SUBSCRIPT_SCALAR) r_.values = HEDLEY_REINTERPRET_CAST(__typeof__(r_.values), (a_.values & b_.values) != 0); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((a_.values[i] & b_.values[i]) != 0) ? UINT64_MAX : 0; } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtst_u64 #define vtst_u64(a, b) simde_vtst_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TST_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tst.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vrshrq_n_s8 (const simde_int8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_int8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_s8(a, n) vrshrq_n_s8((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_s8(a, n) simde_vsubq_s8(simde_vshrq_n_s8((a), (n)), simde_vreinterpretq_s8_u8( \ simde_vtstq_u8(simde_vreinterpretq_u8_s8(a), \ simde_vdupq_n_u8(HEDLEY_STATIC_CAST(uint8_t, 1 << ((n) - 1)))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_s8 #define vrshrq_n_s8(a, n) simde_vrshrq_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vrshrq_n_s16 (const simde_int16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_int16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_s16(a, n) vrshrq_n_s16((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_s16(a, n) simde_vsubq_s16(simde_vshrq_n_s16((a), (n)), simde_vreinterpretq_s16_u16( \ simde_vtstq_u16(simde_vreinterpretq_u16_s16(a), \ simde_vdupq_n_u16(HEDLEY_STATIC_CAST(uint16_t, 1 << ((n) - 1)))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_s16 #define vrshrq_n_s16(a, n) simde_vrshrq_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vrshrq_n_s32 (const simde_int32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >> ((n == 32) ? 31 : n)) + ((a_.values[i] & HEDLEY_STATIC_CAST(int32_t, UINT32_C(1) << (n - 1))) != 0); } return simde_int32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_s32(a, n) vrshrq_n_s32((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_s32(a, n) simde_vsubq_s32(simde_vshrq_n_s32((a), (n)), \ simde_vreinterpretq_s32_u32(simde_vtstq_u32(simde_vreinterpretq_u32_s32(a), \ simde_vdupq_n_u32(UINT32_C(1) << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_s32 #define vrshrq_n_s32(a, n) simde_vrshrq_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vrshrq_n_s64 (const simde_int64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >> ((n == 64) ? 63 : n)) + ((a_.values[i] & HEDLEY_STATIC_CAST(int64_t, UINT64_C(1) << (n - 1))) != 0); } return simde_int64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_s64(a, n) vrshrq_n_s64((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_s64(a, n) simde_vsubq_s64(simde_vshrq_n_s64((a), (n)), \ simde_vreinterpretq_s64_u64(simde_vtstq_u64(simde_vreinterpretq_u64_s64(a), \ simde_vdupq_n_u64(UINT64_C(1) << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_s64 #define vrshrq_n_s64(a, n) simde_vrshrq_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vrshrq_n_u8 (const simde_uint8x16_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_uint8x16_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_u8(a, n) vrshrq_n_u8((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_u8(a, n) simde_vsubq_u8(simde_vshrq_n_u8((a), (n)), \ simde_vtstq_u8((a), simde_vdupq_n_u8(HEDLEY_STATIC_CAST(uint8_t, 1 << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_u8 #define vrshrq_n_u8(a, n) simde_vrshrq_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vrshrq_n_u16 (const simde_uint16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_uint16x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_u16(a, n) vrshrq_n_u16((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_u16(a, n) simde_vsubq_u16(simde_vshrq_n_u16((a), (n)), \ simde_vtstq_u16((a), simde_vdupq_n_u16(HEDLEY_STATIC_CAST(uint16_t, 1 << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_u16 #define vrshrq_n_u16(a, n) simde_vrshrq_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vrshrq_n_u32 (const simde_uint32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((n == 32) ? 0 : (a_.values[i] >> n)) + ((a_.values[i] & (UINT32_C(1) << (n - 1))) != 0); } return simde_uint32x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_u32(a, n) vrshrq_n_u32((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_u32(a, n) simde_vsubq_u32(simde_vshrq_n_u32((a), (n)), \ simde_vtstq_u32((a), simde_vdupq_n_u32(UINT32_C(1) << ((n) - 1)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_u32 #define vrshrq_n_u32(a, n) simde_vrshrq_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vrshrq_n_u64 (const simde_uint64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((n == 64) ? 0 : (a_.values[i] >> n)) + ((a_.values[i] & (UINT64_C(1) << (n - 1))) != 0); } return simde_uint64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshrq_n_u64(a, n) vrshrq_n_u64((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshrq_n_u64(a, n) simde_vsubq_u64(simde_vshrq_n_u64((a), (n)), \ simde_vtstq_u64((a), simde_vdupq_n_u64(UINT64_C(1) << ((n) - 1)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshrq_n_u64 #define vrshrq_n_u64(a, n) simde_vrshrq_n_u64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vrshr_n_s8 (const simde_int8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_s8(a, n) vrshr_n_s8((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_s8(a, n) simde_vsub_s8(simde_vshr_n_s8((a), (n)), simde_vreinterpret_s8_u8( \ simde_vtst_u8(simde_vreinterpret_u8_s8(a), \ simde_vdup_n_u8(HEDLEY_STATIC_CAST(uint8_t, 1 << ((n) - 1)))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_s8 #define vrshr_n_s8(a, n) simde_vrshr_n_s8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vrshr_n_s16 (const simde_int16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_s16(a, n) vrshr_n_s16((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_s16(a, n) simde_vsub_s16(simde_vshr_n_s16((a), (n)), simde_vreinterpret_s16_u16( \ simde_vtst_u16(simde_vreinterpret_u16_s16(a), \ simde_vdup_n_u16(HEDLEY_STATIC_CAST(uint16_t, 1 << ((n) - 1)))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_s16 #define vrshr_n_s16(a, n) simde_vrshr_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vrshr_n_s32 (const simde_int32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >> ((n == 32) ? 31 : n)) + ((a_.values[i] & HEDLEY_STATIC_CAST(int32_t, UINT32_C(1) << (n - 1))) != 0); } return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_s32(a, n) vrshr_n_s32((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_s32(a, n) simde_vsub_s32(simde_vshr_n_s32((a), (n)), \ simde_vreinterpret_s32_u32(simde_vtst_u32(simde_vreinterpret_u32_s32(a), \ simde_vdup_n_u32(UINT32_C(1) << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_s32 #define vrshr_n_s32(a, n) simde_vrshr_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vrshr_n_s64 (const simde_int64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (a_.values[i] >> ((n == 64) ? 63 : n)) + ((a_.values[i] & HEDLEY_STATIC_CAST(int64_t, UINT64_C(1) << (n - 1))) != 0); } return simde_int64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_s64(a, n) vrshr_n_s64((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_s64(a, n) simde_vsub_s64(simde_vshr_n_s64((a), (n)), \ simde_vreinterpret_s64_u64(simde_vtst_u64(simde_vreinterpret_u64_s64(a), \ simde_vdup_n_u64(UINT64_C(1) << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_s64 #define vrshr_n_s64(a, n) simde_vrshr_n_s64((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vrshr_n_u8 (const simde_uint8x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_uint8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_u8(a, n) vrshr_n_u8((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_u8(a, n) simde_vsub_u8(simde_vshr_n_u8((a), (n)), \ simde_vtst_u8((a), simde_vdup_n_u8(HEDLEY_STATIC_CAST(uint8_t, 1 << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_u8 #define vrshr_n_u8(a, n) simde_vrshr_n_u8((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vrshr_n_u16 (const simde_uint16x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (a_.values[i] + (1 << (n - 1))) >> n); } return simde_uint16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_u16(a, n) vrshr_n_u16((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_u16(a, n) simde_vsub_u16(simde_vshr_n_u16((a), (n)), \ simde_vtst_u16((a), simde_vdup_n_u16(HEDLEY_STATIC_CAST(uint16_t, 1 << ((n) - 1))))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_u16 #define vrshr_n_u16(a, n) simde_vrshr_n_u16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vrshr_n_u32 (const simde_uint32x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((n == 32) ? 0 : (a_.values[i] >> n)) + ((a_.values[i] & (UINT32_C(1) << (n - 1))) != 0); } return simde_uint32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_u32(a, n) vrshr_n_u32((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_u32(a, n) simde_vsub_u32(simde_vshr_n_u32((a), (n)), \ simde_vtst_u32((a), simde_vdup_n_u32(UINT32_C(1) << ((n) - 1)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_u32 #define vrshr_n_u32(a, n) simde_vrshr_n_u32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vrshr_n_u64 (const simde_uint64x1_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 64) { simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((n == 64) ? 0 : (a_.values[i] >> n)) + ((a_.values[i] & (UINT64_C(1) << (n - 1))) != 0); } return simde_uint64x1_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrshr_n_u64(a, n) vrshr_n_u64((a), (n)) #elif SIMDE_NATURAL_VECTOR_SIZE > 0 #define simde_vrshr_n_u64(a, n) simde_vsub_u64(simde_vshr_n_u64((a), (n)), \ simde_vtst_u64((a), simde_vdup_n_u64(UINT64_C(1) << ((n) - 1)))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrshr_n_u64 #define vrshr_n_u64(a, n) simde_vrshr_n_u64((a), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RSHR_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rshr_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsqrte.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_RSQRTE_H) #define SIMDE_ARM_NEON_RSQRTE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrsqrte_f32(simde_float32x2_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrsqrte_f32(a); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a); #if defined(SIMDE_IEEE754_STORAGE) /* https://basesandframes.files.wordpress.com/2020/04/even_faster_math_functions_green_2020.pdf Pages 100 - 103 */ SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if SIMDE_ACCURACY_PREFERENCE <= 0 r_.i32[i] = INT32_C(0x5F37624F) - (a_.i32[i] >> 1); #else simde_float32 x = a_.values[i]; simde_float32 xhalf = SIMDE_FLOAT32_C(0.5) * x; int32_t ix; simde_memcpy(&ix, &x, sizeof(ix)); #if SIMDE_ACCURACY_PREFERENCE == 1 ix = INT32_C(0x5F375A82) - (ix >> 1); #else ix = INT32_C(0x5F37599E) - (ix >> 1); #endif simde_memcpy(&x, &ix, sizeof(x)); #if SIMDE_ACCURACY_PREFERENCE >= 2 x = x * (SIMDE_FLOAT32_C(1.5008909) - xhalf * x * x); #endif x = x * (SIMDE_FLOAT32_C(1.5008909) - xhalf * x * x); r_.values[i] = x; #endif } #elif defined(simde_math_sqrtf) SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.f32) / sizeof(r_.f32[0])) ; i++) { r_.f32[i] = 1.0f / simde_math_sqrtf(a_.f32[i]); } #else HEDLEY_UNREACHABLE(); #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsqrte_f32 #define vrsqrte_f32(a) simde_vrsqrte_f32((a)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrsqrteq_f32(simde_float32x4_t a) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrsqrteq_f32(a); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_rsqrte(a); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a); #if defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_rsqrt_ps(a_.m128); #elif defined(SIMDE_IEEE754_STORAGE) /* https://basesandframes.files.wordpress.com/2020/04/even_faster_math_functions_green_2020.pdf Pages 100 - 103 */ SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { #if SIMDE_ACCURACY_PREFERENCE <= 0 r_.i32[i] = INT32_C(0x5F37624F) - (a_.i32[i] >> 1); #else simde_float32 x = a_.values[i]; simde_float32 xhalf = SIMDE_FLOAT32_C(0.5) * x; int32_t ix; simde_memcpy(&ix, &x, sizeof(ix)); #if SIMDE_ACCURACY_PREFERENCE == 1 ix = INT32_C(0x5F375A82) - (ix >> 1); #else ix = INT32_C(0x5F37599E) - (ix >> 1); #endif simde_memcpy(&x, &ix, sizeof(x)); #if SIMDE_ACCURACY_PREFERENCE >= 2 x = x * (SIMDE_FLOAT32_C(1.5008909) - xhalf * x * x); #endif x = x * (SIMDE_FLOAT32_C(1.5008909) - xhalf * x * x); r_.values[i] = x; #endif } #elif defined(simde_math_sqrtf) SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.f32) / sizeof(r_.f32[0])) ; i++) { r_.f32[i] = 1.0f / simde_math_sqrtf(a_.f32[i]); } #else HEDLEY_UNREACHABLE(); #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsqrteq_f32 #define vrsqrteq_f32(a) simde_vrsqrteq_f32((a)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RSQRTE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsqrte.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsqrts.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Zhi An Ng (Copyright owned by Google, LLC) * 2021 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_RSQRTS_H) #define SIMDE_ARM_NEON_RSQRTS_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vrsqrts_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrsqrts_f32(a, b); #else return simde_vmul_n_f32( simde_vmls_f32( simde_vdup_n_f32(SIMDE_FLOAT32_C(3.0)), a, b), SIMDE_FLOAT32_C(0.5) ); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsqrts_f32 #define vrsqrts_f32(a, b) simde_vrsqrts_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vrsqrtsq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vrsqrtsq_f32(a, b); #else return simde_vmulq_n_f32( simde_vmlsq_f32( simde_vdupq_n_f32(SIMDE_FLOAT32_C(3.0)), a, b), SIMDE_FLOAT32_C(0.5) ); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsqrtsq_f32 #define vrsqrtsq_f32(a, b) simde_vrsqrtsq_f32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RSQRTS_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsqrts.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsra_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_RSRA_N_H) #define SIMDE_ARM_NEON_RSRA_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ /* Remark: For these instructions * 1 <= n <= data element size in bits * so 0 <= n - 1 < data element size in bits */ #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_s8(a, b, n) vrsraq_n_s8((a), (b), (n)) #else #define simde_vrsraq_n_s8(a, b, n) simde_vaddq_s8((a), simde_vrshrq_n_s8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_s8 #define vrsraq_n_s8(a, b, n) simde_vrsraq_n_s8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_s16(a, b, n) vrsraq_n_s16((a), (b), (n)) #else #define simde_vrsraq_n_s16(a, b, n) simde_vaddq_s16((a), simde_vrshrq_n_s16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_s16 #define vrsraq_n_s16(a, b, n) simde_vrsraq_n_s16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_s32(a, b, n) vrsraq_n_s32((a), (b), (n)) #else #define simde_vrsraq_n_s32(a, b, n) simde_vaddq_s32((a), simde_vrshrq_n_s32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_s32 #define vrsraq_n_s32(a, b, n) simde_vrsraq_n_s32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_s64(a, b, n) vrsraq_n_s64((a), (b), (n)) #else #define simde_vrsraq_n_s64(a, b, n) simde_vaddq_s64((a), simde_vrshrq_n_s64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_s64 #define vrsraq_n_s64(a, b, n) simde_vrsraq_n_s64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_u8(a, b, n) vrsraq_n_u8((a), (b), (n)) #else #define simde_vrsraq_n_u8(a, b, n) simde_vaddq_u8((a), simde_vrshrq_n_u8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_u8 #define vrsraq_n_u8(a, b, n) simde_vrsraq_n_u8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_u16(a, b, n) vrsraq_n_u16((a), (b), (n)) #else #define simde_vrsraq_n_u16(a, b, n) simde_vaddq_u16((a), simde_vrshrq_n_u16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_u16 #define vrsraq_n_u16(a, b, n) simde_vrsraq_n_u16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_u32(a, b, n) vrsraq_n_u32((a), (b), (n)) #else #define simde_vrsraq_n_u32(a, b, n) simde_vaddq_u32((a), simde_vrshrq_n_u32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_u32 #define vrsraq_n_u32(a, b, n) simde_vrsraq_n_u32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsraq_n_u64(a, b, n) vrsraq_n_u64((a), (b), (n)) #else #define simde_vrsraq_n_u64(a, b, n) simde_vaddq_u64((a), simde_vrshrq_n_u64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsraq_n_u64 #define vrsraq_n_u64(a, b, n) simde_vrsraq_n_u64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_s8(a, b, n) vrsra_n_s8((a), (b), (n)) #else #define simde_vrsra_n_s8(a, b, n) simde_vadd_s8((a), simde_vrshr_n_s8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_s8 #define vrsra_n_s8(a, b, n) simde_vrsra_n_s8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_s16(a, b, n) vrsra_n_s16((a), (b), (n)) #else #define simde_vrsra_n_s16(a, b, n) simde_vadd_s16((a), simde_vrshr_n_s16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_s16 #define vrsra_n_s16(a, b, n) simde_vrsra_n_s16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_s32(a, b, n) vrsra_n_s32((a), (b), (n)) #else #define simde_vrsra_n_s32(a, b, n) simde_vadd_s32((a), simde_vrshr_n_s32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_s32 #define vrsra_n_s32(a, b, n) simde_vrsra_n_s32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_s64(a, b, n) vrsra_n_s64((a), (b), (n)) #else #define simde_vrsra_n_s64(a, b, n) simde_vadd_s64((a), simde_vrshr_n_s64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_s64 #define vrsra_n_s64(a, b, n) simde_vrsra_n_s64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_u8(a, b, n) vrsra_n_u8((a), (b), (n)) #else #define simde_vrsra_n_u8(a, b, n) simde_vadd_u8((a), simde_vrshr_n_u8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_u8 #define vrsra_n_u8(a, b, n) simde_vrsra_n_u8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_u16(a, b, n) vrsra_n_u16((a), (b), (n)) #else #define simde_vrsra_n_u16(a, b, n) simde_vadd_u16((a), simde_vrshr_n_u16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_u16 #define vrsra_n_u16(a, b, n) simde_vrsra_n_u16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_u32(a, b, n) vrsra_n_u32((a), (b), (n)) #else #define simde_vrsra_n_u32(a, b, n) simde_vadd_u32((a), simde_vrshr_n_u32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_u32 #define vrsra_n_u32(a, b, n) simde_vrsra_n_u32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vrsra_n_u64(a, b, n) vrsra_n_u64((a), (b), (n)) #else #define simde_vrsra_n_u64(a, b, n) simde_vadd_u64((a), simde_vrshr_n_u64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vrsra_n_u64 #define vrsra_n_u64(a, b, n) simde_vrsra_n_u64((a), (b), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_RSRA_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/rsra_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/set_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_SET_LANE_H) #define SIMDE_ARM_NEON_SET_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vset_lane_f32(simde_float32_t a, simde_float32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float32x2_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) SIMDE_CONSTIFY_2_(vset_lane_f32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_float32x2_private v_ = simde_float32x2_to_private(v); v_.values[lane] = a; r = simde_float32x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_f32 #define vset_lane_f32(a, b, c) simde_vset_lane_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x1_t simde_vset_lane_f64(simde_float64_t a, simde_float64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_float64x1_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) (void) lane; r = vset_lane_f64(a, v, 0); #else simde_float64x1_private v_ = simde_float64x1_to_private(v); v_.values[lane] = a; r = simde_float64x1_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vset_lane_f64 #define vset_lane_f64(a, b, c) simde_vset_lane_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vset_lane_s8(int8_t a, simde_int8x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int8x8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vset_lane_s8, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int8x8_private v_ = simde_int8x8_to_private(v); v_.values[lane] = a; r = simde_int8x8_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_s8 #define vset_lane_s8(a, b, c) simde_vset_lane_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vset_lane_s16(int16_t a, simde_int16x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int16x4_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vset_lane_s16, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int16x4_private v_ = simde_int16x4_to_private(v); v_.values[lane] = a; r = simde_int16x4_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_s16 #define vset_lane_s16(a, b, c) simde_vset_lane_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vset_lane_s32(int32_t a, simde_int32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int32x2_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vset_lane_s32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int32x2_private v_ = simde_int32x2_to_private(v); v_.values[lane] = a; r = simde_int32x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_s32 #define vset_lane_s32(a, b, c) simde_vset_lane_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vset_lane_s64(int64_t a, simde_int64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_int64x1_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; r = vset_lane_s64(a, v, 0); #else simde_int64x1_private v_ = simde_int64x1_to_private(v); v_.values[lane] = a; r = simde_int64x1_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_s64 #define vset_lane_s64(a, b, c) simde_vset_lane_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vset_lane_u8(uint8_t a, simde_uint8x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint8x8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vset_lane_u8, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint8x8_private v_ = simde_uint8x8_to_private(v); v_.values[lane] = a; r = simde_uint8x8_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_u8 #define vset_lane_u8(a, b, c) simde_vset_lane_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vset_lane_u16(uint16_t a, simde_uint16x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint16x4_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vset_lane_u16, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint16x4_private v_ = simde_uint16x4_to_private(v); v_.values[lane] = a; r = simde_uint16x4_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_u16 #define vset_lane_u16(a, b, c) simde_vset_lane_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vset_lane_u32(uint32_t a, simde_uint32x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint32x2_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vset_lane_u32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint32x2_private v_ = simde_uint32x2_to_private(v); v_.values[lane] = a; r = simde_uint32x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_u32 #define vset_lane_u32(a, b, c) simde_vset_lane_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vset_lane_u64(uint64_t a, simde_uint64x1_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { simde_uint64x1_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; r = vset_lane_u64(a, v, 0); #else simde_uint64x1_private v_ = simde_uint64x1_to_private(v); v_.values[lane] = a; r = simde_uint64x1_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vset_lane_u64 #define vset_lane_u64(a, b, c) simde_vset_lane_u64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vsetq_lane_f32(simde_float32_t a, simde_float32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_float32x4_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vsetq_lane_f32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_float32x4_private v_ = simde_float32x4_to_private(v); v_.values[lane] = a; r = simde_float32x4_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_f32 #define vsetq_lane_f32(a, b, c) simde_vsetq_lane_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vsetq_lane_f64(simde_float64_t a, simde_float64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_float64x2_t r; #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) SIMDE_CONSTIFY_2_(vsetq_lane_f64, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_float64x2_private v_ = simde_float64x2_to_private(v); v_.values[lane] = a; r = simde_float64x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_f64 #define vsetq_lane_f64(a, b, c) simde_vsetq_lane_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vsetq_lane_s8(int8_t a, simde_int8x16_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_int8x16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_(vsetq_lane_s8, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int8x16_private v_ = simde_int8x16_to_private(v); v_.values[lane] = a; r = simde_int8x16_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_s8 #define vsetq_lane_s8(a, b, c) simde_vsetq_lane_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vsetq_lane_s16(int16_t a, simde_int16x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_int16x8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vsetq_lane_s16, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int16x8_private v_ = simde_int16x8_to_private(v); v_.values[lane] = a; r = simde_int16x8_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_s16 #define vsetq_lane_s16(a, b, c) simde_vsetq_lane_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vsetq_lane_s32(int32_t a, simde_int32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_int32x4_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vsetq_lane_s32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int32x4_private v_ = simde_int32x4_to_private(v); v_.values[lane] = a; r = simde_int32x4_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_s32 #define vsetq_lane_s32(a, b, c) simde_vsetq_lane_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vsetq_lane_s64(int64_t a, simde_int64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_int64x2_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vsetq_lane_s64, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_int64x2_private v_ = simde_int64x2_to_private(v); v_.values[lane] = a; r = simde_int64x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_s64 #define vsetq_lane_s64(a, b, c) simde_vsetq_lane_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vsetq_lane_u8(uint8_t a, simde_uint8x16_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { simde_uint8x16_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_(vsetq_lane_u8, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint8x16_private v_ = simde_uint8x16_to_private(v); v_.values[lane] = a; r = simde_uint8x16_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_u8 #define vsetq_lane_u8(a, b, c) simde_vsetq_lane_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsetq_lane_u16(uint16_t a, simde_uint16x8_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { simde_uint16x8_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_(vsetq_lane_u16, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint16x8_private v_ = simde_uint16x8_to_private(v); v_.values[lane] = a; r = simde_uint16x8_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_u16 #define vsetq_lane_u16(a, b, c) simde_vsetq_lane_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsetq_lane_u32(uint32_t a, simde_uint32x4_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { simde_uint32x4_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_(vsetq_lane_u32, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint32x4_private v_ = simde_uint32x4_to_private(v); v_.values[lane] = a; r = simde_uint32x4_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_u32 #define vsetq_lane_u32(a, b, c) simde_vsetq_lane_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsetq_lane_u64(uint64_t a, simde_uint64x2_t v, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { simde_uint64x2_t r; #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_(vsetq_lane_u64, r, (HEDLEY_UNREACHABLE(), v), lane, a, v); #else simde_uint64x2_private v_ = simde_uint64x2_to_private(v); v_.values[lane] = a; r = simde_uint64x2_from_private(v_); #endif return r; } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsetq_lane_u64 #define vsetq_lane_u64(a, b, c) simde_vsetq_lane_u64((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SET_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/set_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_SHL_H) #define SIMDE_ARM_NEON_SHL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* Notes from the implementer (Christopher Moore aka rosbif) * * I have tried to exactly reproduce the documented behaviour of the * ARM NEON shl and shlq intrinsics. * This is complicated for the following reasons:- * * a) Negative shift counts shift right. * * b) Only the low byte of the shift count is used but the shift count * is not limited to 8-bit values (-128 to 127). * * c) Intel SIMD is not nearly as complete as NEON and AltiVec. * There were no intrisics with a vector shift count before AVX2 which * only has 32 and 64-bit logical ones and only a 32-bit arithmetic * one. The others need AVX512. There are no 8-bit shift intrinsics at * all, even with a scalar shift count. It is surprising to use AVX2 * and even AVX512 to implement a 64-bit vector operation. * * d) Many shift implementations, and the C standard, do not treat a * shift count >= the object's size in bits as one would expect. * (Personally I feel that > is silly but == can be useful.) * * Maybe it would be useful for SIMDe to have a flag enabling a fast * implementation where the result is only guaranteed for shift counts * conforming to the C standard. * * Note that even the C17/18 standard does not define the behaviour of * a right shift of a negative value. * However Evan and I agree that all compilers likely to be used * implement this as an arithmetic right shift with sign extension. * If this is not the case it could be replaced by a logical right shift * if negative values are complemented before and after the shift. * * Some of the SIMD translations may be slower than the portable code, * particularly those for vectors with only one or two elements. * But I had fun writing them ;-) * */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vshl_s8 (const simde_int8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(b_.m64)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi16(a128, b128), _mm_srav_epi16(a128, _mm_abs_epi16(b128)), _mm_cmpgt_epi16(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(_mm_cvtepi16_epi8(r128)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m256i a256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(a_.m64)); __m256i b256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(b_.m64)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srav_epi32(a256, _mm256_abs_epi32(b256)), _mm256_cmpgt_epi32(_mm256_setzero_si256(), b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi32(0x0C080400)); r_.m64 = _mm_set_pi32(_mm256_extract_epi32(r256, 4), _mm256_extract_epi32(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (b_.values[i] >= 0) ? (b_.values[i] >= 8) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -8) ? (a_.values[i] >> 7) : (a_.values[i] >> -b_.values[i])); } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_s8 #define vshl_s8(a, b) simde_vshl_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vshl_s16 (const simde_int16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(b_.m64)); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srav_epi32(a128, _mm_abs_epi32(b128)), _mm_cmpgt_epi32(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(_mm_shuffle_epi8(r128, _mm_set1_epi64x(0x0D0C090805040100))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (b_.values[i] >= 0) ? (b_.values[i] >= 16) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -16) ? (a_.values[i] >> 15) : (a_.values[i] >> -b_.values[i])); } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_s16 #define vshl_s16(a, b) simde_vshl_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vshl_s32 (const simde_int32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srav_epi32(a128, _mm_abs_epi32(b128)), _mm_cmpgt_epi32(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 0) ? (b_.values[i] >= 32) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -32) ? (a_.values[i] >> 31) : (a_.values[i] >> -b_.values[i]); } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_s32 #define vshl_s32(a, b) simde_vshl_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vshl_s64 (const simde_int64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a), b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi64(_mm_slli_epi64(b128, 56), 56); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128), _mm_srav_epi64(a128, _mm_sub_epi64(zero, b128)), _mm_cmpgt_epi64(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); __m128i maska = _mm_cmpgt_epi64(zero, a128); __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b128), _mm_set1_epi64x(0xFF)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b_abs), _mm_xor_si128(_mm_srlv_epi64(_mm_xor_si128(a128, maska), b_abs), maska), _mm_cmpgt_epi64(zero, _mm_slli_epi64(b128, 56))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 0) ? (b_.values[i] >= 64) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -64) ? (a_.values[i] >> 63) : (a_.values[i] >> -b_.values[i]); } #endif return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_s64 #define vshl_s64(a, b) simde_vshl_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vshl_u8 (const simde_uint8x8_t a, const simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_cvtepu8_epi16(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi8_epi16(_mm_movpi64_epi64(b_.m64)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi16(a128, b128), _mm_srlv_epi16(a128, _mm_abs_epi16(b128)), _mm_cmpgt_epi16(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(_mm_cvtepi16_epi8(r128)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m256i a256 = _mm256_cvtepu8_epi32(_mm_movpi64_epi64(a_.m64)); __m256i b256 = _mm256_cvtepi8_epi32(_mm_movpi64_epi64(b_.m64)); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srlv_epi32(a256, _mm256_abs_epi32(b256)), _mm256_cmpgt_epi32(_mm256_setzero_si256(), b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi32(0x0C080400)); r_.m64 = _mm_set_pi32(_mm256_extract_epi32(r256, 4), _mm256_extract_epi32(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (simde_math_abs(b_.values[i]) >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i])); } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_u8 #define vshl_u8(a, b) simde_vshl_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vshl_u16 (const simde_uint16x4_t a, const simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_cvtepu16_epi32(_mm_movpi64_epi64(a_.m64)); __m128i b128 = _mm_cvtepi16_epi32(_mm_movpi64_epi64(b_.m64)); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srlv_epi32(a128, _mm_abs_epi32(b128)), _mm_cmpgt_epi32(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(_mm_shuffle_epi8(r128, _mm_set1_epi64x(0x0D0C090805040100))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (simde_math_abs(b_.values[i]) >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i])); } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_u16 #define vshl_u16(a, b) simde_vshl_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vshl_u32 (const simde_uint32x2_t a, const simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi32(_mm_slli_epi32(b128, 24), 24); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi32(a128, b128), _mm_srlv_epi32(a128, _mm_abs_epi32(b128)), _mm_cmpgt_epi32(_mm_setzero_si128(), b128)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (simde_math_abs(b_.values[i]) >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i]); } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_u32 #define vshl_u32(a, b) simde_vshl_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vshl_u64 (const simde_uint64x1_t a, const simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshl_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); simde_int64x1_private b_ = simde_int64x1_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); b128 = _mm_srai_epi64(_mm_slli_epi64(b128, 56), 56); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b128), _mm_srlv_epi64(a128, _mm_sub_epi64(zero, b128)), _mm_cmpgt_epi64(zero, b128)); r_.m64 = _mm_movepi64_pi64(r128); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_movpi64_epi64(a_.m64); __m128i b128 = _mm_movpi64_epi64(b_.m64); __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b128), _mm_set1_epi64x(0xFF)); __m128i r128 = _mm_blendv_epi8(_mm_sllv_epi64(a128, b_abs), _mm_srlv_epi64(a128, b_abs), _mm_cmpgt_epi64(_mm_setzero_si128(), _mm_slli_epi64(b128, 56))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (simde_math_llabs(b_.values[i]) >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i]); } #endif return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshl_u64 #define vshl_u64(a, b) simde_vshl_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vshlq_s8 (const simde_int8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(signed char) a_shl, a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) b_abs, b_max; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL char) b_mask; b_abs = HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_abs(b)); b_max = vec_splat_u8(7); #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) a_shl = vec_and(vec_sl(a, b_abs), vec_cmple(b_abs, b_max)); #else a_shl = vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, vec_splat_u8(8))); #endif a_shr = vec_sra(a, vec_min(b_abs, b_max)); b_mask = vec_cmplt(b, vec_splat_s8(0)); return vec_sel(a_shl, a_shr, b_mask); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m256i a256 = _mm256_cvtepi8_epi16(a_.m128i); __m256i b256 = _mm256_cvtepi8_epi16(b_.m128i); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi16(a256, b256), _mm256_srav_epi16(a256, _mm256_abs_epi16(b256)), _mm256_cmpgt_epi16(_mm256_setzero_si256(), b256)); r_.m128i = _mm256_cvtepi16_epi8(r256); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (b_.values[i] >= 0) ? (b_.values[i] >= 8) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -8) ? (a_.values[i] >> 7) : (a_.values[i] >> -b_.values[i])); } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_s8 #define vshlq_s8(a, b) simde_vshlq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vshlq_s16 (const simde_int16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(signed short) a_shl, a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) b_abs, b_max; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL short) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned short, 0xFF))); b_max = vec_splat_u16(15); #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) a_shl = vec_and(vec_sl(a, b_abs), vec_cmple(b_abs, b_max)); #else a_shl = vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16)))); #endif a_shr = vec_sra(a, vec_min(b_abs, b_max)); b_mask = vec_cmplt(vec_sl(b, vec_splat_u16(8)), vec_splat_s16(0)); return vec_sel(a_shl, a_shr, b_mask); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m128i B = _mm_srai_epi16(_mm_slli_epi16(b_.m128i, 8), 8); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi16(a_.m128i, B), _mm_srav_epi16(a_.m128i, _mm_abs_epi16(B)), _mm_cmpgt_epi16(_mm_setzero_si128(), B)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_ARCH_AMD64) __m256i a256 = _mm256_cvtepi16_epi32(a_.m128i); __m256i b256 = _mm256_cvtepi16_epi32(b_.m128i); b256 = _mm256_srai_epi32(_mm256_slli_epi32(b256, 24), 24); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srav_epi32(a256, _mm256_abs_epi32(b256)), _mm256_cmpgt_epi32(_mm256_setzero_si256(), b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi64x(0x0D0C090805040100)); r_.m128i = _mm_set_epi64x(_mm256_extract_epi64(r256, 2), _mm256_extract_epi64(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (b_.values[i] >= 0) ? (b_.values[i] >= 16) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -16) ? (a_.values[i] >> 15) : (a_.values[i] >> -b_.values[i])); } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_s16 #define vshlq_s16(a, b) simde_vshlq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vshlq_s32 (const simde_int32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(signed int) a_shl, a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) b_abs, b_max; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL int) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned int, 0xFF))); b_max = vec_splats(HEDLEY_STATIC_CAST(unsigned int, 31)); #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) a_shl = vec_and(vec_sl(a, b_abs), vec_cmple(b_abs, b_max)); #else a_shl = vec_and(vec_sl(a, b_abs), vec_cmplt(b_abs, vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32)))); #endif a_shr = vec_sra(a, vec_min(b_abs, b_max)); b_mask = vec_cmplt(vec_sl(b, vec_splats(HEDLEY_STATIC_CAST(unsigned int, 24))), vec_splat_s32(0)); return vec_sel(a_shl, a_shr, b_mask); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) __m128i B = _mm_srai_epi32(_mm_slli_epi32(b_.m128i, 24), 24); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi32(a_.m128i, B), _mm_srav_epi32(a_.m128i, _mm_abs_epi32(B)), _mm_cmpgt_epi32(_mm_setzero_si128(), B)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 0) ? (b_.values[i] >= 32) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -32) ? (a_.values[i] >> 31) : (a_.values[i] >> -b_.values[i]); } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_s32 #define vshlq_s32(a, b) simde_vshlq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vshlq_s64 (const simde_int64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(signed long long) a_shl, a_shr; SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) b_abs, b_max; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL long long) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 0xFF))); b_max = vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 63)); a_shl = vec_and(vec_sl(a, b_abs), vec_cmple(b_abs, b_max)); a_shr = vec_sra(a, vec_min(b_abs, b_max)); b_mask = vec_cmplt(vec_sl(b, vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 56))), vec_splats(HEDLEY_STATIC_CAST(signed long long, 0))); HEDLEY_DIAGNOSTIC_PUSH #if defined(SIMDE_BUG_CLANG_46770) SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif return vec_sel(a_shl, a_shr, b_mask); HEDLEY_DIAGNOSTIC_POP #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i B = _mm_srai_epi64(_mm_slli_epi64(b_.m128i, 56), 56); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, B), _mm_srav_epi64(a_.m128i, _mm_sub_epi64(zero, B)), _mm_cmpgt_epi64(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i maska = _mm_cmpgt_epi64(zero, a_.m128i); __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b_.m128i), _mm_set1_epi64x(0xFF)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, b_abs), _mm_xor_si128(_mm_srlv_epi64(_mm_xor_si128(a_.m128i, maska), b_abs), maska), _mm_cmpgt_epi64(zero, _mm_slli_epi64(b_.m128i, 56))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (b_.values[i] >= 0) ? (b_.values[i] >= 64) ? 0 : (a_.values[i] << b_.values[i]) : (b_.values[i] <= -64) ? (a_.values[i] >> 63) : (a_.values[i] >> -b_.values[i]); } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_s64 #define vshlq_s64(a, b) simde_vshlq_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vshlq_u8 (const simde_uint8x16_t a, const simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned char) b_abs; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL char) b_mask; b_abs = HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned char), vec_abs(b)); b_mask = vec_cmplt(b, vec_splat_s8(0)); return vec_and(vec_sel(vec_sl(a, b_abs), vec_sr(a, b_abs), b_mask), vec_cmplt(b_abs, vec_splat_u8(8))); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m256i a256 = _mm256_cvtepu8_epi16(a_.m128i); __m256i b256 = _mm256_cvtepi8_epi16(b_.m128i); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi16(a256, b256), _mm256_srlv_epi16(a256, _mm256_abs_epi16(b256)), _mm256_cmpgt_epi16(_mm256_setzero_si256(), b256)); r_.m128i = _mm256_cvtepi16_epi8(r256); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(uint8_t, (simde_math_abs(b_.values[i]) >= 8) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i])); } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_u8 #define vshlq_u8(a, b) simde_vshlq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vshlq_u16 (const simde_uint16x8_t a, const simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned short) b_abs; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL short) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned short), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned short, 0xFF))); b_mask = vec_cmplt(vec_sl(b, vec_splat_u16(8)), vec_splat_s16(0)); #if defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_and(vec_sel(vec_sl(a, b_abs), vec_sr(a, b_abs), b_mask), vec_cmple(b_abs, vec_splat_u16(15))); #else return vec_and(vec_sel(vec_sl(a, b_abs), vec_sr(a, b_abs), b_mask), vec_cmplt(b_abs, vec_splats(HEDLEY_STATIC_CAST(unsigned short, 16)))); #endif #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); #if defined(SIMDE_X86_AVX512BW_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m128i B = _mm_srai_epi16(_mm_slli_epi16(b_.m128i, 8), 8); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi16(a_.m128i, B), _mm_srlv_epi16(a_.m128i, _mm_abs_epi16(B)), _mm_cmpgt_epi16(_mm_setzero_si128(), B)); #elif defined(SIMDE_X86_AVX2_NATIVE) && defined(SIMDE_ARCH_AMD64) __m256i a256 = _mm256_cvtepu16_epi32(a_.m128i); __m256i b256 = _mm256_cvtepi16_epi32(b_.m128i); b256 = _mm256_srai_epi32(_mm256_slli_epi32(b256, 24), 24); __m256i r256 = _mm256_blendv_epi8(_mm256_sllv_epi32(a256, b256), _mm256_srlv_epi32(a256, _mm256_abs_epi32(b256)), _mm256_cmpgt_epi32(_mm256_setzero_si256(), b256)); r256 = _mm256_shuffle_epi8(r256, _mm256_set1_epi64x(0x0D0C090805040100)); r_.m128i = _mm_set_epi64x(_mm256_extract_epi64(r256, 2), _mm256_extract_epi64(r256, 0)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = HEDLEY_STATIC_CAST(uint16_t, (simde_math_abs(b_.values[i]) >= 16) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i])); } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_u16 #define vshlq_u16(a, b) simde_vshlq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vshlq_u32 (const simde_uint32x4_t a, const simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned int) b_abs; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL int) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned int), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned int, 0xFF))); b_mask = vec_cmplt(vec_sl(b, vec_splats(HEDLEY_STATIC_CAST(unsigned int, 24))), vec_splat_s32(0)); return vec_and(vec_sel(vec_sl(a, b_abs), vec_sr(a, b_abs), b_mask), vec_cmplt(b_abs, vec_splats(HEDLEY_STATIC_CAST(unsigned int, 32)))); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); #if defined(SIMDE_X86_AVX2_NATIVE) __m128i B = _mm_srai_epi32(_mm_slli_epi32(b_.m128i, 24), 24); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi32(a_.m128i, B), _mm_srlv_epi32(a_.m128i, _mm_abs_epi32(B)), _mm_cmpgt_epi32(_mm_setzero_si128(), B)); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (simde_math_abs(b_.values[i]) >= 32) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i]); } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_u32 #define vshlq_u32(a, b) simde_vshlq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vshlq_u64 (const simde_uint64x2_t a, const simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vshlq_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P8_NATIVE) SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long) b_abs; SIMDE_POWER_ALTIVEC_VECTOR(SIMDE_POWER_ALTIVEC_BOOL long long) b_mask; b_abs = vec_and(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(unsigned long long), vec_abs(HEDLEY_REINTERPRET_CAST(SIMDE_POWER_ALTIVEC_VECTOR(signed char), b))), vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 0xFF))); b_mask = vec_cmplt(vec_sl(b, vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 56))), vec_splats(HEDLEY_STATIC_CAST(signed long long, 0))); HEDLEY_DIAGNOSTIC_PUSH #if defined(SIMDE_BUG_CLANG_46770) SIMDE_DIAGNOSTIC_DISABLE_VECTOR_CONVERSION_ #endif return vec_and(vec_sel(vec_sl(a, b_abs), vec_sr(a, b_abs), b_mask), vec_cmplt(b_abs, vec_splats(HEDLEY_STATIC_CAST(unsigned long long, 64)))); HEDLEY_DIAGNOSTIC_POP #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); simde_int64x2_private b_ = simde_int64x2_to_private(b); #if defined(SIMDE_X86_AVX512F_NATIVE) && defined(SIMDE_X86_AVX512VL_NATIVE) __m128i zero = _mm_setzero_si128(); __m128i B = _mm_srai_epi64(_mm_slli_epi64(b_.m128i, 56), 56); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, B), _mm_srlv_epi64(a_.m128i, _mm_sub_epi64(zero, B)), _mm_cmpgt_epi64(zero, B)); #elif defined(SIMDE_X86_AVX2_NATIVE) __m128i b_abs = _mm_and_si128(_mm_abs_epi8(b_.m128i), _mm_set1_epi64x(0xFF)); r_.m128i = _mm_blendv_epi8(_mm_sllv_epi64(a_.m128i, b_abs), _mm_srlv_epi64(a_.m128i, b_abs), _mm_cmpgt_epi64(_mm_setzero_si128(), _mm_slli_epi64(b_.m128i, 56))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { b_.values[i] = HEDLEY_STATIC_CAST(int8_t, b_.values[i]); r_.values[i] = (simde_math_llabs(b_.values[i]) >= 64) ? 0 : (b_.values[i] >= 0) ? (a_.values[i] << b_.values[i]) : (a_.values[i] >> -b_.values[i]); } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshlq_u64 #define vshlq_u64(a, b) simde_vshlq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SHL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shrn_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_SHRN_N_H) #define SIMDE_ARM_NEON_SHRN_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vshrn_n_s16 (const simde_int16x8_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 8) { simde_int8x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); int32_t n_ = n; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int8_t, (a_.values[i] >> n_) & UINT8_MAX); } return simde_int8x8_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrn_n_s16(a, n) vshrn_n_s16((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_s16 #define vshrn_n_s16(a, n) simde_vshrn_n_s16((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vshrn_n_s32 (const simde_int32x4_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 16) { simde_int16x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); /* int32_t n_ = (n == 8) ? 7 : n; */ int32_t n_ = n; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int16_t, (a_.values[i] >> n_) & UINT16_MAX); } return simde_int16x4_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrn_n_s32(a, n) vshrn_n_s32((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_s32 #define vshrn_n_s32(a, n) simde_vshrn_n_s32((a), (n)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vshrn_n_s64 (const simde_int64x2_t a, const int n) SIMDE_REQUIRE_CONSTANT_RANGE(n, 1, 32) { simde_int32x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); /* int32_t n_ = (n == 8) ? 7 : n; */ int32_t n_ = n; SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = HEDLEY_STATIC_CAST(int32_t, (a_.values[i] >> n_) & UINT32_MAX); } return simde_int32x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vshrn_n_s64(a, n) vshrn_n_s64((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_s64 #define vshrn_n_s64(a, n) simde_vshrn_n_s64((a), (n)) #endif #define simde_vshrn_n_u16(a, n) \ simde_vreinterpret_u8_s8( \ simde_vshrn_n_s16(simde_vreinterpretq_s16_u16(a), (n))) #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #undef simde_vshrn_n_u16 #define simde_vshrn_n_u16(a, n) vshrn_n_u16((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_u16 #define vshrn_n_u16(a, n) simde_vshrn_n_u16((a), (n)) #endif #define simde_vshrn_n_u32(a, n) \ simde_vreinterpret_u16_s16( \ simde_vshrn_n_s32(simde_vreinterpretq_s32_u32(a), (n))) #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #undef simde_vshrn_n_u32 #define simde_vshrn_n_u32(a, n) vshrn_n_u32((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_u32 #define vshrn_n_u32(a, n) simde_vshrn_n_u32((a), (n)) #endif #define simde_vshrn_n_u64(a, n) \ simde_vreinterpret_u32_s32( \ simde_vshrn_n_s64(simde_vreinterpretq_s64_u64(a), (n))) #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #undef simde_vshrn_n_u64 #define simde_vshrn_n_u64(a, n) vshrn_n_u64((a), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vshrn_n_u64 #define vshrn_n_u64(a, n) simde_vshrn_n_u64((a), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SHRN_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/shrn_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sqadd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_SQADD_H) #define SIMDE_ARM_NEON_SQADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #include HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES uint8_t simde_vsqaddb_u8(uint8_t a, int8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_REV_365298) return vsqaddb_u8(a, HEDLEY_STATIC_CAST(uint8_t, b)); #else return vsqaddb_u8(a, b); #endif #else int16_t r_ = HEDLEY_STATIC_CAST(int16_t, a) + HEDLEY_STATIC_CAST(int16_t, b); return (r_ < 0) ? 0 : ((r_ > UINT8_MAX) ? UINT8_MAX : HEDLEY_STATIC_CAST(uint8_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddb_u8 #define vsqaddb_u8(a, b) simde_vsqaddb_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint16_t simde_vsqaddh_u16(uint16_t a, int16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_REV_365298) return vsqaddh_u16(a, HEDLEY_STATIC_CAST(uint16_t, b)); #else return vsqaddh_u16(a, b); #endif #else int32_t r_ = HEDLEY_STATIC_CAST(int32_t, a) + HEDLEY_STATIC_CAST(int32_t, b); return (r_ < 0) ? 0 : ((r_ > UINT16_MAX) ? UINT16_MAX : HEDLEY_STATIC_CAST(uint16_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddh_u16 #define vsqaddh_u16(a, b) simde_vsqaddh_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint32_t simde_vsqadds_u32(uint32_t a, int32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_REV_365298) return vsqadds_u32(a, HEDLEY_STATIC_CAST(uint32_t, b)); #else return vsqadds_u32(a, b); #endif #else int64_t r_ = HEDLEY_STATIC_CAST(int64_t, a) + HEDLEY_STATIC_CAST(int64_t, b); return (r_ < 0) ? 0 : ((r_ > UINT32_MAX) ? UINT32_MAX : HEDLEY_STATIC_CAST(uint32_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqadds_u32 #define vsqadds_u32(a, b) simde_vsqadds_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES uint64_t simde_vsqaddd_u64(uint64_t a, int64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_REV_365298) return vsqaddd_u64(a, HEDLEY_STATIC_CAST(uint64_t, b)); #else return vsqaddd_u64(a, b); #endif #else uint64_t r_; if (b > 0) { uint64_t ub = HEDLEY_STATIC_CAST(uint64_t, b); r_ = ((UINT64_MAX - a) < ub) ? UINT64_MAX : a + ub; } else { uint64_t nb = HEDLEY_STATIC_CAST(uint64_t, -b); r_ = (nb > a) ? 0 : a - nb; } return r_; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddd_u64 #define vsqaddd_u64(a, b) simde_vsqaddd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vsqadd_u8(simde_uint8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqadd_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddb_u8(a_.values[i], b_.values[i]); } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqadd_u8 #define vsqadd_u8(a, b) simde_vsqadd_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vsqadd_u16(simde_uint16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqadd_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddh_u16(a_.values[i], b_.values[i]); } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqadd_u16 #define vsqadd_u16(a, b) simde_vsqadd_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vsqadd_u32(simde_uint32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqadd_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqadds_u32(a_.values[i], b_.values[i]); } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqadd_u32 #define vsqadd_u32(a, b) simde_vsqadd_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x1_t simde_vsqadd_u64(simde_uint64x1_t a, simde_int64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqadd_u64(a, b); #else simde_uint64x1_private r_, a_ = simde_uint64x1_to_private(a); simde_int64x1_private b_ = simde_int64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddd_u64(a_.values[i], b_.values[i]); } return simde_uint64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqadd_u64 #define vsqadd_u64(a, b) simde_vsqadd_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vsqaddq_u8(simde_uint8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqaddq_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddb_u8(a_.values[i], b_.values[i]); } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddq_u8 #define vsqaddq_u8(a, b) simde_vsqaddq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsqaddq_u16(simde_uint16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqaddq_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddh_u16(a_.values[i], b_.values[i]); } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddq_u16 #define vsqaddq_u16(a, b) simde_vsqaddq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsqaddq_u32(simde_uint32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqaddq_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqadds_u32(a_.values[i], b_.values[i]); } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddq_u32 #define vsqaddq_u32(a, b) simde_vsqaddq_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsqaddq_u64(simde_uint64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsqaddq_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a); simde_int64x2_private b_ = simde_int64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vsqaddd_u64(a_.values[i], b_.values[i]); } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsqaddq_u64 #define vsqaddq_u64(a, b) simde_vsqaddq_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SQADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sqadd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sra_n.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_SRA_N_H) #define SIMDE_ARM_NEON_SRA_N_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_s8(a, b, n) vsra_n_s8((a), (b), (n)) #else #define simde_vsra_n_s8(a, b, n) simde_vadd_s8((a), simde_vshr_n_s8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_s8 #define vsra_n_s8(a, b, n) simde_vsra_n_s8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_s16(a, b, n) vsra_n_s16((a), (b), (n)) #else #define simde_vsra_n_s16(a, b, n) simde_vadd_s16((a), simde_vshr_n_s16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_s16 #define vsra_n_s16(a, b, n) simde_vsra_n_s16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_s32(a, b, n) vsra_n_s32((a), (b), (n)) #else #define simde_vsra_n_s32(a, b, n) simde_vadd_s32((a), simde_vshr_n_s32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_s32 #define vsra_n_s32(a, b, n) simde_vsra_n_s32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_s64(a, b, n) vsra_n_s64((a), (b), (n)) #else #define simde_vsra_n_s64(a, b, n) simde_vadd_s64((a), simde_vshr_n_s64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_s64 #define vsra_n_s64(a, b, n) simde_vsra_n_s64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_u8(a, b, n) vsra_n_u8((a), (b), (n)) #else #define simde_vsra_n_u8(a, b, n) simde_vadd_u8((a), simde_vshr_n_u8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_u8 #define vsra_n_u8(a, b, n) simde_vsra_n_u8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_u16(a, b, n) vsra_n_u16((a), (b), (n)) #else #define simde_vsra_n_u16(a, b, n) simde_vadd_u16((a), simde_vshr_n_u16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_u16 #define vsra_n_u16(a, b, n) simde_vsra_n_u16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_u32(a, b, n) vsra_n_u32((a), (b), (n)) #else #define simde_vsra_n_u32(a, b, n) simde_vadd_u32((a), simde_vshr_n_u32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_u32 #define vsra_n_u32(a, b, n) simde_vsra_n_u32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsra_n_u64(a, b, n) vsra_n_u64((a), (b), (n)) #else #define simde_vsra_n_u64(a, b, n) simde_vadd_u64((a), simde_vshr_n_u64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsra_n_u64 #define vsra_n_u64(a, b, n) simde_vsra_n_u64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_s8(a, b, n) vsraq_n_s8((a), (b), (n)) #else #define simde_vsraq_n_s8(a, b, n) simde_vaddq_s8((a), simde_vshrq_n_s8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_s8 #define vsraq_n_s8(a, b, n) simde_vsraq_n_s8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_s16(a, b, n) vsraq_n_s16((a), (b), (n)) #else #define simde_vsraq_n_s16(a, b, n) simde_vaddq_s16((a), simde_vshrq_n_s16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_s16 #define vsraq_n_s16(a, b, n) simde_vsraq_n_s16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_s32(a, b, n) vsraq_n_s32((a), (b), (n)) #else #define simde_vsraq_n_s32(a, b, n) simde_vaddq_s32((a), simde_vshrq_n_s32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_s32 #define vsraq_n_s32(a, b, n) simde_vsraq_n_s32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_s64(a, b, n) vsraq_n_s64((a), (b), (n)) #else #define simde_vsraq_n_s64(a, b, n) simde_vaddq_s64((a), simde_vshrq_n_s64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_s64 #define vsraq_n_s64(a, b, n) simde_vsraq_n_s64((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_u8(a, b, n) vsraq_n_u8((a), (b), (n)) #else #define simde_vsraq_n_u8(a, b, n) simde_vaddq_u8((a), simde_vshrq_n_u8((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_u8 #define vsraq_n_u8(a, b, n) simde_vsraq_n_u8((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_u16(a, b, n) vsraq_n_u16((a), (b), (n)) #else #define simde_vsraq_n_u16(a, b, n) simde_vaddq_u16((a), simde_vshrq_n_u16((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_u16 #define vsraq_n_u16(a, b, n) simde_vsraq_n_u16((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_u32(a, b, n) vsraq_n_u32((a), (b), (n)) #else #define simde_vsraq_n_u32(a, b, n) simde_vaddq_u32((a), simde_vshrq_n_u32((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_u32 #define vsraq_n_u32(a, b, n) simde_vsraq_n_u32((a), (b), (n)) #endif #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) #define simde_vsraq_n_u64(a, b, n) vsraq_n_u64((a), (b), (n)) #else #define simde_vsraq_n_u64(a, b, n) simde_vaddq_u64((a), simde_vshrq_n_u64((b), (n))) #endif #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsraq_n_u64 #define vsraq_n_u64(a, b, n) simde_vsraq_n_u64((a), (b), (n)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SRA_N_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/sra_n.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st1.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_ST1_H) #define SIMDE_ARM_NEON_ST1_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_f32(simde_float32_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_float32x2_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst1_f32(ptr, val); #else simde_float32x2_private val_ = simde_float32x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_f32 #define vst1_f32(a, b) simde_vst1_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_f64(simde_float64_t ptr[HEDLEY_ARRAY_PARAM(1)], simde_float64x1_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst1_f64(ptr, val); #else simde_float64x1_private val_ = simde_float64x1_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst1_f64 #define vst1_f64(a, b) simde_vst1_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_s8(int8_t ptr[HEDLEY_ARRAY_PARAM(8)], simde_int8x8_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_s8(ptr, val); #else simde_int8x8_private val_ = simde_int8x8_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_s8 #define vst1_s8(a, b) simde_vst1_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_s16(int16_t ptr[HEDLEY_ARRAY_PARAM(4)], simde_int16x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_s16(ptr, val); #else simde_int16x4_private val_ = simde_int16x4_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_s16 #define vst1_s16(a, b) simde_vst1_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_s32(int32_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_int32x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_s32(ptr, val); #else simde_int32x2_private val_ = simde_int32x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_s32 #define vst1_s32(a, b) simde_vst1_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_s64(int64_t ptr[HEDLEY_ARRAY_PARAM(1)], simde_int64x1_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_s64(ptr, val); #else simde_int64x1_private val_ = simde_int64x1_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_s64 #define vst1_s64(a, b) simde_vst1_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_u8(uint8_t ptr[HEDLEY_ARRAY_PARAM(8)], simde_uint8x8_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_u8(ptr, val); #else simde_uint8x8_private val_ = simde_uint8x8_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_u8 #define vst1_u8(a, b) simde_vst1_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_u16(uint16_t ptr[HEDLEY_ARRAY_PARAM(4)], simde_uint16x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_u16(ptr, val); #else simde_uint16x4_private val_ = simde_uint16x4_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_u16 #define vst1_u16(a, b) simde_vst1_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_u32(uint32_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_uint32x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_u32(ptr, val); #else simde_uint32x2_private val_ = simde_uint32x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_u32 #define vst1_u32(a, b) simde_vst1_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_u64(uint64_t ptr[HEDLEY_ARRAY_PARAM(1)], simde_uint64x1_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1_u64(ptr, val); #else simde_uint64x1_private val_ = simde_uint64x1_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_u64 #define vst1_u64(a, b) simde_vst1_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_f32(simde_float32_t ptr[HEDLEY_ARRAY_PARAM(4)], simde_float32x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_f32(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_float32x4_private val_ = simde_float32x4_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_f32 #define vst1q_f32(a, b) simde_vst1q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_f64(simde_float64_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_float64x2_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst1q_f64(ptr, val); #else simde_float64x2_private val_ = simde_float64x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst1q_f64 #define vst1q_f64(a, b) simde_vst1q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_s8(int8_t ptr[HEDLEY_ARRAY_PARAM(16)], simde_int8x16_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_s8(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_int8x16_private val_ = simde_int8x16_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_s8 #define vst1q_s8(a, b) simde_vst1q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_s16(int16_t ptr[HEDLEY_ARRAY_PARAM(8)], simde_int16x8_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_s16(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_int16x8_private val_ = simde_int16x8_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_s16 #define vst1q_s16(a, b) simde_vst1q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_s32(int32_t ptr[HEDLEY_ARRAY_PARAM(4)], simde_int32x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_s32(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_int32x4_private val_ = simde_int32x4_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_s32 #define vst1q_s32(a, b) simde_vst1q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_s64(int64_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_int64x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_s64(ptr, val); #else simde_int64x2_private val_ = simde_int64x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_s64 #define vst1q_s64(a, b) simde_vst1q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_u8(uint8_t ptr[HEDLEY_ARRAY_PARAM(16)], simde_uint8x16_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_u8(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_uint8x16_private val_ = simde_uint8x16_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_u8 #define vst1q_u8(a, b) simde_vst1q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_u16(uint16_t ptr[HEDLEY_ARRAY_PARAM(8)], simde_uint16x8_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_u16(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_uint16x8_private val_ = simde_uint16x8_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_u16 #define vst1q_u16(a, b) simde_vst1q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_u32(uint32_t ptr[HEDLEY_ARRAY_PARAM(4)], simde_uint32x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_u32(ptr, val); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) && 0 vec_st(val, 0, ptr); #else simde_uint32x4_private val_ = simde_uint32x4_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_u32 #define vst1q_u32(a, b) simde_vst1q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_u64(uint64_t ptr[HEDLEY_ARRAY_PARAM(2)], simde_uint64x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst1q_u64(ptr, val); #else simde_uint64x2_private val_ = simde_uint64x2_to_private(val); simde_memcpy(ptr, &val_, sizeof(val_)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_u64 #define vst1q_u64(a, b) simde_vst1q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ST1_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st1.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st2.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2021 Zhi An Ng (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ST2_H) #define SIMDE_ARM_NEON_ST2_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_f32(simde_float32_t *ptr, simde_float32x2x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_f32(ptr, val); #else simde_float32_t buf[4]; simde_float32x2_private a_[2] = {simde_float32x2_to_private(val.val[0]), simde_float32x2_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_f32 #define vst2_f32(a, b) simde_vst2_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_s8(int8_t *ptr, simde_int8x8x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_s8(ptr, val); #else int8_t buf[16]; simde_int8x8_private a_[2] = {simde_int8x8_to_private(val.val[0]), simde_int8x8_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_s8 #define vst2_s8(a, b) simde_vst2_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_s16(int16_t *ptr, simde_int16x4x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_s16(ptr, val); #else int16_t buf[8]; simde_int16x4_private a_[2] = {simde_int16x4_to_private(val.val[0]), simde_int16x4_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_s16 #define vst2_s16(a, b) simde_vst2_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_s32(int32_t *ptr, simde_int32x2x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_s32(ptr, val); #else int32_t buf[4]; simde_int32x2_private a_[2] = {simde_int32x2_to_private(val.val[0]), simde_int32x2_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_s32 #define vst2_s32(a, b) simde_vst2_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_u8(uint8_t *ptr, simde_uint8x8x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_u8(ptr, val); #else uint8_t buf[16]; simde_uint8x8_private a_[2] = {simde_uint8x8_to_private(val.val[0]), simde_uint8x8_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_u8 #define vst2_u8(a, b) simde_vst2_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_u16(uint16_t *ptr, simde_uint16x4x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_u16(ptr, val); #else uint16_t buf[8]; simde_uint16x4_private a_[2] = {simde_uint16x4_to_private(val.val[0]), simde_uint16x4_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_u16 #define vst2_u16(a, b) simde_vst2_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2_u32(uint32_t *ptr, simde_uint32x2x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2_u32(ptr, val); #else uint32_t buf[4]; simde_uint32x2_private a_[2] = {simde_uint32x2_to_private(val.val[0]), simde_uint32x2_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2_u32 #define vst2_u32(a, b) simde_vst2_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_f32(simde_float32_t *ptr, simde_float32x4x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_f32(ptr, val); #else simde_float32_t buf[8]; simde_float32x4_private a_[2] = {simde_float32x4_to_private(val.val[0]), simde_float32x4_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_f32 #define vst2q_f32(a, b) simde_vst2q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_s8(int8_t *ptr, simde_int8x16x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_s8(ptr, val); #else int8_t buf[32]; simde_int8x16_private a_[2] = {simde_int8x16_to_private(val.val[0]), simde_int8x16_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_s8 #define vst2q_s8(a, b) simde_vst2q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_s16(int16_t *ptr, simde_int16x8x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_s16(ptr, val); #else int16_t buf[16]; simde_int16x8_private a_[2] = {simde_int16x8_to_private(val.val[0]), simde_int16x8_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_s16 #define vst2q_s16(a, b) simde_vst2q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_s32(int32_t *ptr, simde_int32x4x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_s32(ptr, val); #else int32_t buf[8]; simde_int32x4_private a_[2] = {simde_int32x4_to_private(val.val[0]), simde_int32x4_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_s32 #define vst2q_s32(a, b) simde_vst2q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_u8(uint8_t *ptr, simde_uint8x16x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_u8(ptr, val); #else uint8_t buf[32]; simde_uint8x16_private a_[2] = {simde_uint8x16_to_private(val.val[0]), simde_uint8x16_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_u8 #define vst2q_u8(a, b) simde_vst2q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_u16(uint16_t *ptr, simde_uint16x8x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_u16(ptr, val); #else uint16_t buf[16]; simde_uint16x8_private a_[2] = {simde_uint16x8_to_private(val.val[0]), simde_uint16x8_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_u16 #define vst2q_u16(a, b) simde_vst2q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst2q_u32(uint32_t *ptr, simde_uint32x4x2_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst2q_u32(ptr, val); #else uint32_t buf[8]; simde_uint32x4_private a_[2] = {simde_uint32x4_to_private(val.val[0]), simde_uint32x4_to_private(val.val[1])}; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 2 ; i++) { buf[i] = a_[i % 2].values[i / 2]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst2q_u32 #define vst2q_u32(a, b) simde_vst2q_u32((a), (b)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ST2_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st2.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st1_lane.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ST1_LANE_H) #define SIMDE_ARM_NEON_ST1_LANE_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_f32(simde_float32_t *ptr, simde_float32x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1_lane_f32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_float32x2_private val_ = simde_float32x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_f32 #define vst1_lane_f32(a, b, c) simde_vst1_lane_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_f64(simde_float64_t *ptr, simde_float64x1_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) (void) lane; vst1_lane_f64(ptr, val, 0); #else simde_float64x1_private val_ = simde_float64x1_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst1_lane_f64 #define vst1_lane_f64(a, b, c) simde_vst1_lane_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_s8(int8_t *ptr, simde_int8x8_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_NO_RESULT_(vst1_lane_s8, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int8x8_private val_ = simde_int8x8_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_s8 #define vst1_lane_s8(a, b, c) simde_vst1_lane_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_s16(int16_t *ptr, simde_int16x4_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_NO_RESULT_(vst1_lane_s16, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int16x4_private val_ = simde_int16x4_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_s16 #define vst1_lane_s16(a, b, c) simde_vst1_lane_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_s32(int32_t *ptr, simde_int32x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1_lane_s32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int32x2_private val_ = simde_int32x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_s32 #define vst1_lane_s32(a, b, c) simde_vst1_lane_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_s64(int64_t *ptr, simde_int64x1_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; vst1_lane_s64(ptr, val, 0); #else simde_int64x1_private val_ = simde_int64x1_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_s64 #define vst1_lane_s64(a, b, c) simde_vst1_lane_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_u8(uint8_t *ptr, simde_uint8x8_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_NO_RESULT_(vst1_lane_u8, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint8x8_private val_ = simde_uint8x8_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_u8 #define vst1_lane_u8(a, b, c) simde_vst1_lane_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_u16(uint16_t *ptr, simde_uint16x4_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_NO_RESULT_(vst1_lane_u16, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint16x4_private val_ = simde_uint16x4_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_u16 #define vst1_lane_u16(a, b, c) simde_vst1_lane_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_u32(uint32_t *ptr, simde_uint32x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1_lane_u32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint32x2_private val_ = simde_uint32x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_u32 #define vst1_lane_u32(a, b, c) simde_vst1_lane_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1_lane_u64(uint64_t *ptr, simde_uint64x1_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 0) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) (void) lane; vst1_lane_u64(ptr, val, 0); #else simde_uint64x1_private val_ = simde_uint64x1_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1_lane_u64 #define vst1_lane_u64(a, b, c) simde_vst1_lane_u64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_f32(simde_float32_t *ptr, simde_float32x4_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_NO_RESULT_(vst1q_lane_f32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_float32x4_private val_ = simde_float32x4_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_f32 #define vst1q_lane_f32(a, b, c) simde_vst1q_lane_f32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_f64(simde_float64_t *ptr, simde_float64x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1q_lane_f64, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_float64x2_private val_ = simde_float64x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_f64 #define vst1q_lane_f64(a, b, c) simde_vst1q_lane_f64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_s8(int8_t *ptr, simde_int8x16_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_NO_RESULT_(vst1q_lane_s8, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int8x16_private val_ = simde_int8x16_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_s8 #define vst1q_lane_s8(a, b, c) simde_vst1q_lane_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_s16(int16_t *ptr, simde_int16x8_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_NO_RESULT_(vst1q_lane_s16, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int16x8_private val_ = simde_int16x8_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_s16 #define vst1q_lane_s16(a, b, c) simde_vst1q_lane_s16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_s32(int32_t *ptr, simde_int32x4_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_NO_RESULT_(vst1q_lane_s32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int32x4_private val_ = simde_int32x4_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_s32 #define vst1q_lane_s32(a, b, c) simde_vst1q_lane_s32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_s64(int64_t *ptr, simde_int64x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1q_lane_s64, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_int64x2_private val_ = simde_int64x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_s64 #define vst1q_lane_s64(a, b, c) simde_vst1q_lane_s64((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_u8(uint8_t *ptr, simde_uint8x16_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 15) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_16_NO_RESULT_(vst1q_lane_u8, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint8x16_private val_ = simde_uint8x16_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_u8 #define vst1q_lane_u8(a, b, c) simde_vst1q_lane_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_u16(uint16_t *ptr, simde_uint16x8_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 7) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_8_NO_RESULT_(vst1q_lane_u16, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint16x8_private val_ = simde_uint16x8_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_u16 #define vst1q_lane_u16(a, b, c) simde_vst1q_lane_u16((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_u32(uint32_t *ptr, simde_uint32x4_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 3) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_4_NO_RESULT_(vst1q_lane_u32, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint32x4_private val_ = simde_uint32x4_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_u32 #define vst1q_lane_u32(a, b, c) simde_vst1q_lane_u32((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst1q_lane_u64(uint64_t *ptr, simde_uint64x2_t val, const int lane) SIMDE_REQUIRE_CONSTANT_RANGE(lane, 0, 1) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) SIMDE_CONSTIFY_2_NO_RESULT_(vst1q_lane_u64, HEDLEY_UNREACHABLE(), lane, ptr, val); #else simde_uint64x2_private val_ = simde_uint64x2_to_private(val); *ptr = val_.values[lane]; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst1q_lane_u64 #define vst1q_lane_u64(a, b, c) simde_vst1q_lane_u64((a), (b), (c)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ST1_LANE_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st1_lane.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st3.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher */ #if !defined(SIMDE_ARM_NEON_ST3_H) #define SIMDE_ARM_NEON_ST3_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_f32(simde_float32_t *ptr, simde_float32x2x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_f32(ptr, val); #else simde_float32_t buf[6]; simde_float32x2_private a_[3] = { simde_float32x2_to_private(val.val[0]), simde_float32x2_to_private(val.val[1]), simde_float32x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_f32 #define vst3_f32(a, b) simde_vst3_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_f64(simde_float64_t *ptr, simde_float64x1x3_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst3_f64(ptr, val); #else simde_float64_t buf[3]; simde_float64x1_private a_[3] = { simde_float64x1_to_private(val.val[0]), simde_float64x1_to_private(val.val[1]), simde_float64x1_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3_f64 #define vst3_f64(a, b) simde_vst3_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_s8(int8_t *ptr, simde_int8x8x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_s8(ptr, val); #else int8_t buf[24]; simde_int8x8_private a_[3] = { simde_int8x8_to_private(val.val[0]), simde_int8x8_to_private(val.val[1]), simde_int8x8_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_s8 #define vst3_s8(a, b) simde_vst3_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_s16(int16_t *ptr, simde_int16x4x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_s16(ptr, val); #else int16_t buf[12]; simde_int16x4_private a_[3] = { simde_int16x4_to_private(val.val[0]), simde_int16x4_to_private(val.val[1]), simde_int16x4_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_s16 #define vst3_s16(a, b) simde_vst3_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_s32(int32_t *ptr, simde_int32x2x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_s32(ptr, val); #else int32_t buf[6]; simde_int32x2_private a_[3] = { simde_int32x2_to_private(val.val[0]), simde_int32x2_to_private(val.val[1]), simde_int32x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_s32 #define vst3_s32(a, b) simde_vst3_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_s64(int64_t *ptr, simde_int64x1x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_s64(ptr, val); #else int64_t buf[3]; simde_int64x1_private a_[3] = { simde_int64x1_to_private(val.val[0]), simde_int64x1_to_private(val.val[1]), simde_int64x1_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3_s64 #define vst3_s64(a, b) simde_vst3_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_u8(uint8_t *ptr, simde_uint8x8x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_u8(ptr, val); #else uint8_t buf[24]; simde_uint8x8_private a_[3] = { simde_uint8x8_to_private(val.val[0]), simde_uint8x8_to_private(val.val[1]), simde_uint8x8_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_u8 #define vst3_u8(a, b) simde_vst3_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_u16(uint16_t *ptr, simde_uint16x4x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_u16(ptr, val); #else uint16_t buf[12]; simde_uint16x4_private a_[3] = { simde_uint16x4_to_private(val.val[0]), simde_uint16x4_to_private(val.val[1]), simde_uint16x4_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_u16 #define vst3_u16(a, b) simde_vst3_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_u32(uint32_t *ptr, simde_uint32x2x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_u32(ptr, val); #else uint32_t buf[6]; simde_uint32x2_private a_[3] = { simde_uint32x2_to_private(val.val[0]), simde_uint32x2_to_private(val.val[1]), simde_uint32x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3_u32 #define vst3_u32(a, b) simde_vst3_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3_u64(uint64_t *ptr, simde_uint64x1x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3_u64(ptr, val); #else uint64_t buf[3]; simde_uint64x1_private a_[3] = { simde_uint64x1_to_private(val.val[0]), simde_uint64x1_to_private(val.val[1]), simde_uint64x1_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3_u64 #define vst3_u64(a, b) simde_vst3_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_f32(simde_float32_t *ptr, simde_float32x4x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_f32(ptr, val); #else simde_float32_t buf[12]; simde_float32x4_private a_[3] = { simde_float32x4_to_private(val.val[0]), simde_float32x4_to_private(val.val[1]), simde_float32x4_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_f32 #define vst3q_f32(a, b) simde_vst3q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_f64(simde_float64_t *ptr, simde_float64x2x3_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst3q_f64(ptr, val); #else simde_float64_t buf[6]; simde_float64x2_private a_[3] = { simde_float64x2_to_private(val.val[0]), simde_float64x2_to_private(val.val[1]), simde_float64x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3q_f64 #define vst3q_f64(a, b) simde_vst3q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_s8(int8_t *ptr, simde_int8x16x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_s8(ptr, val); #else int8_t buf[48]; simde_int8x16_private a_[3] = { simde_int8x16_to_private(val.val[0]), simde_int8x16_to_private(val.val[1]), simde_int8x16_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_s8 #define vst3q_s8(a, b) simde_vst3q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_s16(int16_t *ptr, simde_int16x8x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_s16(ptr, val); #else int16_t buf[24]; simde_int16x8_private a_[3] = { simde_int16x8_to_private(val.val[0]), simde_int16x8_to_private(val.val[1]), simde_int16x8_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_s16 #define vst3q_s16(a, b) simde_vst3q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_s32(int32_t *ptr, simde_int32x4x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_s32(ptr, val); #else int32_t buf[12]; simde_int32x4_private a_[3] = { simde_int32x4_to_private(val.val[0]), simde_int32x4_to_private(val.val[1]), simde_int32x4_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_s32 #define vst3q_s32(a, b) simde_vst3q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_s64(int64_t *ptr, simde_int64x2x3_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst3q_s64(ptr, val); #else int64_t buf[6]; simde_int64x2_private a_[3] = { simde_int64x2_to_private(val.val[0]), simde_int64x2_to_private(val.val[1]), simde_int64x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3q_s64 #define vst3q_s64(a, b) simde_vst3q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_u8(uint8_t *ptr, simde_uint8x16x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_u8(ptr, val); #else uint8_t buf[48]; simde_uint8x16_private a_[3] = { simde_uint8x16_to_private(val.val[0]), simde_uint8x16_to_private(val.val[1]), simde_uint8x16_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_u8 #define vst3q_u8(a, b) simde_vst3q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_u16(uint16_t *ptr, simde_uint16x8x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_u16(ptr, val); #else uint16_t buf[24]; simde_uint16x8_private a_[3] = { simde_uint16x8_to_private(val.val[0]), simde_uint16x8_to_private(val.val[1]), simde_uint16x8_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_u16 #define vst3q_u16(a, b) simde_vst3q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_u32(uint32_t *ptr, simde_uint32x4x3_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst3q_u32(ptr, val); #else uint32_t buf[12]; simde_uint32x4_private a_[3] = { simde_uint32x4_to_private(val.val[0]), simde_uint32x4_to_private(val.val[1]), simde_uint32x4_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst3q_u32 #define vst3q_u32(a, b) simde_vst3q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst3q_u64(uint64_t *ptr, simde_uint64x2x3_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst3q_u64(ptr, val); #else uint64_t buf[6]; simde_uint64x2_private a_[3] = { simde_uint64x2_to_private(val.val[0]), simde_uint64x2_to_private(val.val[1]), simde_uint64x2_to_private(val.val[2]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 3 ; i++) { buf[i] = a_[i % 3].values[i / 3]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst3q_u64 #define vst3q_u64(a, b) simde_vst3q_u64((a), (b)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ST3_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st3.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st4.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher */ #if !defined(SIMDE_ARM_NEON_ST4_H) #define SIMDE_ARM_NEON_ST4_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_f32(simde_float32_t *ptr, simde_float32x2x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_f32(ptr, val); #else simde_float32_t buf[8]; simde_float32x2_private a_[4] = { simde_float32x2_to_private(val.val[0]), simde_float32x2_to_private(val.val[1]), simde_float32x2_to_private(val.val[2]), simde_float32x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_f32 #define vst4_f32(a, b) simde_vst4_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_f64(simde_float64_t *ptr, simde_float64x1x4_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst4_f64(ptr, val); #else simde_float64_t buf[4]; simde_float64x1_private a_[4] = { simde_float64x1_to_private(val.val[0]), simde_float64x1_to_private(val.val[1]), simde_float64x1_to_private(val.val[2]), simde_float64x1_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4_f64 #define vst4_f64(a, b) simde_vst4_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_s8(int8_t *ptr, simde_int8x8x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_s8(ptr, val); #else int8_t buf[32]; simde_int8x8_private a_[4] = { simde_int8x8_to_private(val.val[0]), simde_int8x8_to_private(val.val[1]), simde_int8x8_to_private(val.val[2]), simde_int8x8_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_s8 #define vst4_s8(a, b) simde_vst4_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_s16(int16_t *ptr, simde_int16x4x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_s16(ptr, val); #else int16_t buf[16]; simde_int16x4_private a_[4] = { simde_int16x4_to_private(val.val[0]), simde_int16x4_to_private(val.val[1]), simde_int16x4_to_private(val.val[2]), simde_int16x4_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_s16 #define vst4_s16(a, b) simde_vst4_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_s32(int32_t *ptr, simde_int32x2x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_s32(ptr, val); #else int32_t buf[8]; simde_int32x2_private a_[4] = { simde_int32x2_to_private(val.val[0]), simde_int32x2_to_private(val.val[1]), simde_int32x2_to_private(val.val[2]), simde_int32x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_s32 #define vst4_s32(a, b) simde_vst4_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_s64(int64_t *ptr, simde_int64x1x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_s64(ptr, val); #else int64_t buf[4]; simde_int64x1_private a_[4] = { simde_int64x1_to_private(val.val[0]), simde_int64x1_to_private(val.val[1]), simde_int64x1_to_private(val.val[2]), simde_int64x1_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4_s64 #define vst4_s64(a, b) simde_vst4_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_u8(uint8_t *ptr, simde_uint8x8x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_u8(ptr, val); #else uint8_t buf[32]; simde_uint8x8_private a_[4] = { simde_uint8x8_to_private(val.val[0]), simde_uint8x8_to_private(val.val[1]), simde_uint8x8_to_private(val.val[2]), simde_uint8x8_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_u8 #define vst4_u8(a, b) simde_vst4_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_u16(uint16_t *ptr, simde_uint16x4x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_u16(ptr, val); #else uint16_t buf[16]; simde_uint16x4_private a_[4] = { simde_uint16x4_to_private(val.val[0]), simde_uint16x4_to_private(val.val[1]), simde_uint16x4_to_private(val.val[2]), simde_uint16x4_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_u16 #define vst4_u16(a, b) simde_vst4_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_u32(uint32_t *ptr, simde_uint32x2x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_u32(ptr, val); #else uint32_t buf[8]; simde_uint32x2_private a_[4] = { simde_uint32x2_to_private(val.val[0]), simde_uint32x2_to_private(val.val[1]), simde_uint32x2_to_private(val.val[2]), simde_uint32x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4_u32 #define vst4_u32(a, b) simde_vst4_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4_u64(uint64_t *ptr, simde_uint64x1x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4_u64(ptr, val); #else uint64_t buf[4]; simde_uint64x1_private a_[4] = { simde_uint64x1_to_private(val.val[0]), simde_uint64x1_to_private(val.val[1]), simde_uint64x1_to_private(val.val[2]), simde_uint64x1_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4_u64 #define vst4_u64(a, b) simde_vst4_u64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_f32(simde_float32_t *ptr, simde_float32x4x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_f32(ptr, val); #else simde_float32_t buf[16]; simde_float32x4_private a_[4] = { simde_float32x4_to_private(val.val[0]), simde_float32x4_to_private(val.val[1]), simde_float32x4_to_private(val.val[2]), simde_float32x4_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_f32 #define vst4q_f32(a, b) simde_vst4q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_f64(simde_float64_t *ptr, simde_float64x2x4_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst4q_f64(ptr, val); #else simde_float64_t buf[8]; simde_float64x2_private a_[4] = { simde_float64x2_to_private(val.val[0]), simde_float64x2_to_private(val.val[1]), simde_float64x2_to_private(val.val[2]), simde_float64x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4q_f64 #define vst4q_f64(a, b) simde_vst4q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_s8(int8_t *ptr, simde_int8x16x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_s8(ptr, val); #else int8_t buf[64]; simde_int8x16_private a_[4] = { simde_int8x16_to_private(val.val[0]), simde_int8x16_to_private(val.val[1]), simde_int8x16_to_private(val.val[2]), simde_int8x16_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_s8 #define vst4q_s8(a, b) simde_vst4q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_s16(int16_t *ptr, simde_int16x8x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_s16(ptr, val); #else int16_t buf[32]; simde_int16x8_private a_[4] = { simde_int16x8_to_private(val.val[0]), simde_int16x8_to_private(val.val[1]), simde_int16x8_to_private(val.val[2]), simde_int16x8_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_s16 #define vst4q_s16(a, b) simde_vst4q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_s32(int32_t *ptr, simde_int32x4x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_s32(ptr, val); #else int32_t buf[16]; simde_int32x4_private a_[4] = { simde_int32x4_to_private(val.val[0]), simde_int32x4_to_private(val.val[1]), simde_int32x4_to_private(val.val[2]), simde_int32x4_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_s32 #define vst4q_s32(a, b) simde_vst4q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_s64(int64_t *ptr, simde_int64x2x4_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst4q_s64(ptr, val); #else int64_t buf[8]; simde_int64x2_private a_[4] = { simde_int64x2_to_private(val.val[0]), simde_int64x2_to_private(val.val[1]), simde_int64x2_to_private(val.val[2]), simde_int64x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4q_s64 #define vst4q_s64(a, b) simde_vst4q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_u8(uint8_t *ptr, simde_uint8x16x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_u8(ptr, val); #else uint8_t buf[64]; simde_uint8x16_private a_[4] = { simde_uint8x16_to_private(val.val[0]), simde_uint8x16_to_private(val.val[1]), simde_uint8x16_to_private(val.val[2]), simde_uint8x16_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_u8 #define vst4q_u8(a, b) simde_vst4q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_u16(uint16_t *ptr, simde_uint16x8x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_u16(ptr, val); #else uint16_t buf[32]; simde_uint16x8_private a_[4] = { simde_uint16x8_to_private(val.val[0]), simde_uint16x8_to_private(val.val[1]), simde_uint16x8_to_private(val.val[2]), simde_uint16x8_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_u16 #define vst4q_u16(a, b) simde_vst4q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_u32(uint32_t *ptr, simde_uint32x4x4_t val) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) vst4q_u32(ptr, val); #else uint32_t buf[16]; simde_uint32x4_private a_[4] = { simde_uint32x4_to_private(val.val[0]), simde_uint32x4_to_private(val.val[1]), simde_uint32x4_to_private(val.val[2]), simde_uint32x4_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vst4q_u32 #define vst4q_u32(a, b) simde_vst4q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES void simde_vst4q_u64(uint64_t *ptr, simde_uint64x2x4_t val) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) vst4q_u64(ptr, val); #else uint64_t buf[8]; simde_uint64x2_private a_[4] = { simde_uint64x2_to_private(val.val[0]), simde_uint64x2_to_private(val.val[1]), simde_uint64x2_to_private(val.val[2]), simde_uint64x2_to_private(val.val[3]) }; for (size_t i = 0; i < (sizeof(val.val[0]) / sizeof(*ptr)) * 4 ; i++) { buf[i] = a_[i % 4].values[i / 4]; } simde_memcpy(ptr, buf, sizeof(buf)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vst4q_u64 #define vst4q_u64(a, b) simde_vst4q_u64((a), (b)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ST4_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/st4.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subw.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_SUBW_H) #define SIMDE_ARM_NEON_SUBW_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vsubw_s8(simde_int16x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s16(a, simde_vmovl_s8(b)); #else simde_int16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_int8x8_private b_ = simde_int8x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_s8 #define vsubw_s8(a, b) simde_vsubw_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vsubw_s16(simde_int32x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s32(a, simde_vmovl_s16(b)); #else simde_int32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_int16x4_private b_ = simde_int16x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_s16 #define vsubw_s16(a, b) simde_vsubw_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vsubw_s32(simde_int64x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s64(a, simde_vmovl_s32(b)); #else simde_int64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_int32x2_private b_ = simde_int32x2_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_s32 #define vsubw_s32(a, b) simde_vsubw_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsubw_u8(simde_uint16x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u16(a, simde_vmovl_u8(b)); #else simde_uint16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_uint8x8_private b_ = simde_uint8x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_u8 #define vsubw_u8(a, b) simde_vsubw_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsubw_u16(simde_uint32x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u32(a, simde_vmovl_u16(b)); #else simde_uint32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_uint16x4_private b_ = simde_uint16x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_u16 #define vsubw_u16(a, b) simde_vsubw_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsubw_u32(simde_uint64x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vsubw_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u64(a, simde_vmovl_u32(b)); #else simde_uint64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_uint32x2_private b_ = simde_uint32x2_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vsubw_u32 #define vsubw_u32(a, b) simde_vsubw_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SUBW_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subw.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subw_high.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_SUBW_HIGH_H) #define SIMDE_ARM_NEON_SUBW_HIGH_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vsubw_high_s8(simde_int16x8_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_s8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s16(a, simde_vmovl_s8(simde_vget_high_s8(b))); #else simde_int16x8_private r_; simde_int16x8_private a_ = simde_int16x8_to_private(a); simde_int8x16_private b_ = simde_int8x16_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_s8 #define vsubw_high_s8(a, b) simde_vsubw_high_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vsubw_high_s16(simde_int32x4_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_s16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s32(a, simde_vmovl_s16(simde_vget_high_s16(b))); #else simde_int32x4_private r_; simde_int32x4_private a_ = simde_int32x4_to_private(a); simde_int16x8_private b_ = simde_int16x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_s16 #define vsubw_high_s16(a, b) simde_vsubw_high_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vsubw_high_s32(simde_int64x2_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_s32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_s64(a, simde_vmovl_s32(simde_vget_high_s32(b))); #else simde_int64x2_private r_; simde_int64x2_private a_ = simde_int64x2_to_private(a); simde_int32x4_private b_ = simde_int32x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_s32 #define vsubw_high_s32(a, b) simde_vsubw_high_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vsubw_high_u8(simde_uint16x8_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_u8(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u16(a, simde_vmovl_u8(simde_vget_high_u8(b))); #else simde_uint16x8_private r_; simde_uint16x8_private a_ = simde_uint16x8_to_private(a); simde_uint8x16_private b_ = simde_uint8x16_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_u8 #define vsubw_high_u8(a, b) simde_vsubw_high_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vsubw_high_u16(simde_uint32x4_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_u16(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u32(a, simde_vmovl_u16(simde_vget_high_u16(b))); #else simde_uint32x4_private r_; simde_uint32x4_private a_ = simde_uint32x4_to_private(a); simde_uint16x8_private b_ = simde_uint16x8_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_u16 #define vsubw_high_u16(a, b) simde_vsubw_high_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vsubw_high_u32(simde_uint64x2_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vsubw_high_u32(a, b); #elif SIMDE_NATURAL_VECTOR_SIZE_GE(128) return simde_vsubq_u64(a, simde_vmovl_u32(simde_vget_high_u32(b))); #else simde_uint64x2_private r_; simde_uint64x2_private a_ = simde_uint64x2_to_private(a); simde_uint32x4_private b_ = simde_uint32x4_to_private(b); #if (SIMDE_NATURAL_VECTOR_SIZE > 0) && defined(SIMDE_VECTOR_SUBSCRIPT_OPS) && defined(SIMDE_CONVERT_VECTOR_) SIMDE_CONVERT_VECTOR_(r_.values, b_.values); r_.values -= a_.values; #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = a_.values[i] - b_.values[i + ((sizeof(b_.values) / sizeof(b_.values[0])) / 2)]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vsubw_high_u32 #define vsubw_high_u32(a, b) simde_vsubw_high_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_SUBW_HIGH_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/subw_high.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tbl.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_TBL_H) #define SIMDE_ARM_NEON_TBL_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbl1_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl1_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_shuffle_pi8(a_.m64, _mm_or_si64(b_.m64, _mm_cmpgt_pi8(b_.m64, _mm_set1_pi8(7)))); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] < 8) ? a_.values[b_.values[i]] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl1_u8 #define vtbl1_u8(a, b) simde_vtbl1_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbl1_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl1_s8(a, b); #else return simde_vreinterpret_s8_u8(simde_vtbl1_u8(simde_vreinterpret_u8_s8(a), simde_vreinterpret_u8_s8(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl1_s8 #define vtbl1_s8(a, b) simde_vtbl1_s8((a), (b)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbl2_u8(simde_uint8x8x2_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl2_u8(a, b); #else simde_uint8x8_private r_, a_[2] = { simde_uint8x8_to_private(a.val[0]), simde_uint8x8_to_private(a.val[1]) }, b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_SSSE3_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_set_epi64(a_[1].m64, a_[0].m64); __m128i b128 = _mm_set1_epi64(b_.m64); __m128i r128 = _mm_shuffle_epi8(a128, _mm_or_si128(b128, _mm_cmpgt_epi8(b128, _mm_set1_epi8(15)))); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] < 16) ? a_[b_.values[i] / 8].values[b_.values[i] & 7] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl2_u8 #define vtbl2_u8(a, b) simde_vtbl2_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbl2_s8(simde_int8x8x2_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl2_s8(a, b); #else simde_uint8x8x2_t a_; simde_memcpy(&a_, &a, sizeof(a_)); return simde_vreinterpret_s8_u8(simde_vtbl2_u8(a_, simde_vreinterpret_u8_s8(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl2_s8 #define vtbl2_s8(a, b) simde_vtbl2_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbl3_u8(simde_uint8x8x3_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl3_u8(a, b); #else simde_uint8x8_private r_, a_[3] = { simde_uint8x8_to_private(a.val[0]), simde_uint8x8_to_private(a.val[1]), simde_uint8x8_to_private(a.val[2]) }, b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i b128 = _mm_set1_epi64(b_.m64); b128 = _mm_or_si128(b128, _mm_cmpgt_epi8(b128, _mm_set1_epi8(23))); __m128i r128_01 = _mm_shuffle_epi8(_mm_set_epi64(a_[1].m64, a_[0].m64), b128); __m128i r128_2 = _mm_shuffle_epi8(_mm_set1_epi64(a_[2].m64), b128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_2, _mm_slli_epi32(b128, 3)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] < 24) ? a_[b_.values[i] / 8].values[b_.values[i] & 7] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl3_u8 #define vtbl3_u8(a, b) simde_vtbl3_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbl3_s8(simde_int8x8x3_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl3_s8(a, b); #else simde_uint8x8x3_t a_; simde_memcpy(&a_, &a, sizeof(a_)); return simde_vreinterpret_s8_u8(simde_vtbl3_u8(a_, simde_vreinterpret_u8_s8(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl3_s8 #define vtbl3_s8(a, b) simde_vtbl3_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbl4_u8(simde_uint8x8x4_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl4_u8(a, b); #else simde_uint8x8_private r_, a_[4] = { simde_uint8x8_to_private(a.val[0]), simde_uint8x8_to_private(a.val[1]), simde_uint8x8_to_private(a.val[2]), simde_uint8x8_to_private(a.val[3]) }, b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i b128 = _mm_set1_epi64(b_.m64); b128 = _mm_or_si128(b128, _mm_cmpgt_epi8(b128, _mm_set1_epi8(31))); __m128i r128_01 = _mm_shuffle_epi8(_mm_set_epi64(a_[1].m64, a_[0].m64), b128); __m128i r128_23 = _mm_shuffle_epi8(_mm_set_epi64(a_[3].m64, a_[2].m64), b128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_23, _mm_slli_epi32(b128, 3)); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (b_.values[i] < 32) ? a_[b_.values[i] / 8].values[b_.values[i] & 7] : 0; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl4_u8 #define vtbl4_u8(a, b) simde_vtbl4_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbl4_s8(simde_int8x8x4_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbl4_s8(a, b); #else simde_uint8x8x4_t a_; simde_memcpy(&a_, &a, sizeof(a_)); return simde_vreinterpret_s8_u8(simde_vtbl4_u8(a_, simde_vreinterpret_u8_s8(b))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbl4_s8 #define vtbl4_s8(a, b) simde_vtbl4_s8((a), (b)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TBL_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tbl.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tbx.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Christopher Moore */ #if !defined(SIMDE_ARM_NEON_TBX_H) #define SIMDE_ARM_NEON_TBX_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbx1_u8(simde_uint8x8_t a, simde_uint8x8_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx1_u8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b), c_ = simde_uint8x8_to_private(c); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_set1_epi64(a_.m64); __m128i b128 = _mm_set1_epi64(b_.m64); __m128i c128 = _mm_set1_epi64(c_.m64); c128 = _mm_or_si128(c128, _mm_cmpgt_epi8(c128, _mm_set1_epi8(7))); __m128i r128 = _mm_shuffle_epi8(b128, c128); r128 = _mm_blendv_epi8(r128, a128, c128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (c_.values[i] < 8) ? b_.values[c_.values[i]] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx1_u8 #define vtbx1_u8(a, b, c) simde_vtbx1_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbx1_s8(simde_int8x8_t a, simde_int8x8_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx1_s8(a, b, c); #else return simde_vreinterpret_s8_u8(simde_vtbx1_u8(simde_vreinterpret_u8_s8(a), simde_vreinterpret_u8_s8(b), simde_vreinterpret_u8_s8(c))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx1_s8 #define vtbx1_s8(a, b, c) simde_vtbx1_s8((a), (b), (c)) #endif #if !defined(SIMDE_BUG_INTEL_857088) SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbx2_u8(simde_uint8x8_t a, simde_uint8x8x2_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx2_u8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_[2] = { simde_uint8x8_to_private(b.val[0]), simde_uint8x8_to_private(b.val[1]) }, c_ = simde_uint8x8_to_private(c); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_set1_epi64(a_.m64); __m128i b128 = _mm_set_epi64(b_[1].m64, b_[0].m64); __m128i c128 = _mm_set1_epi64(c_.m64); c128 = _mm_or_si128(c128, _mm_cmpgt_epi8(c128, _mm_set1_epi8(15))); __m128i r128 = _mm_shuffle_epi8(b128, c128); r128 = _mm_blendv_epi8(r128, a128, c128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (c_.values[i] < 16) ? b_[c_.values[i] / 8].values[c_.values[i] & 7] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx2_u8 #define vtbx2_u8(a, b, c) simde_vtbx2_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbx2_s8(simde_int8x8_t a, simde_int8x8x2_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx2_s8(a, b, c); #else simde_uint8x8x2_t b_; simde_memcpy(&b_, &b, sizeof(b_)); return simde_vreinterpret_s8_u8(simde_vtbx2_u8(simde_vreinterpret_u8_s8(a), b_, simde_vreinterpret_u8_s8(c))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx2_s8 #define vtbx2_s8(a, b, c) simde_vtbx2_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbx3_u8(simde_uint8x8_t a, simde_uint8x8x3_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx3_u8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_[3] = { simde_uint8x8_to_private(b.val[0]), simde_uint8x8_to_private(b.val[1]), simde_uint8x8_to_private(b.val[2]) }, c_ = simde_uint8x8_to_private(c); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_set1_epi64(a_.m64); __m128i c128 = _mm_set1_epi64(c_.m64); c128 = _mm_or_si128(c128, _mm_cmpgt_epi8(c128, _mm_set1_epi8(23))); __m128i r128_01 = _mm_shuffle_epi8(_mm_set_epi64(b_[1].m64, b_[0].m64), c128); __m128i r128_2 = _mm_shuffle_epi8(_mm_set1_epi64(b_[2].m64), c128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_2, _mm_slli_epi32(c128, 3)); r128 = _mm_blendv_epi8(r128, a128, c128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (c_.values[i] < 24) ? b_[c_.values[i] / 8].values[c_.values[i] & 7] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx3_u8 #define vtbx3_u8(a, b, c) simde_vtbx3_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbx3_s8(simde_int8x8_t a, simde_int8x8x3_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx3_s8(a, b, c); #else simde_uint8x8x3_t b_; simde_memcpy(&b_, &b, sizeof(b_)); return simde_vreinterpret_s8_u8(simde_vtbx3_u8(simde_vreinterpret_u8_s8(a), b_, simde_vreinterpret_u8_s8(c))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx3_s8 #define vtbx3_s8(a, b, c) simde_vtbx3_s8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtbx4_u8(simde_uint8x8_t a, simde_uint8x8x4_t b, simde_uint8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx4_u8(a, b, c); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_[4] = { simde_uint8x8_to_private(b.val[0]), simde_uint8x8_to_private(b.val[1]), simde_uint8x8_to_private(b.val[2]), simde_uint8x8_to_private(b.val[3]) }, c_ = simde_uint8x8_to_private(c); #if defined(SIMDE_X86_SSE4_1_NATIVE) && defined(SIMDE_X86_MMX_NATIVE) __m128i a128 = _mm_set1_epi64(a_.m64); __m128i c128 = _mm_set1_epi64(c_.m64); c128 = _mm_or_si128(c128, _mm_cmpgt_epi8(c128, _mm_set1_epi8(31))); __m128i r128_01 = _mm_shuffle_epi8(_mm_set_epi64(b_[1].m64, b_[0].m64), c128); __m128i r128_23 = _mm_shuffle_epi8(_mm_set_epi64(b_[3].m64, b_[2].m64), c128); __m128i r128 = _mm_blendv_epi8(r128_01, r128_23, _mm_slli_epi32(c128, 3)); r128 = _mm_blendv_epi8(r128, a128, c128); r_.m64 = _mm_movepi64_pi64(r128); #else SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = (c_.values[i] < 32) ? b_[c_.values[i] / 8].values[c_.values[i] & 7] : a_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx4_u8 #define vtbx4_u8(a, b, c) simde_vtbx4_u8((a), (b), (c)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtbx4_s8(simde_int8x8_t a, simde_int8x8x4_t b, simde_int8x8_t c) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtbx4_s8(a, b, c); #else simde_uint8x8x4_t b_; simde_memcpy(&b_, &b, sizeof(b_)); return simde_vreinterpret_s8_u8(simde_vtbx4_u8(simde_vreinterpret_u8_s8(a), b_, simde_vreinterpret_u8_s8(c))); #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtbx4_s8 #define vtbx4_s8(a, b, c) simde_vtbx4_s8((a), (b), (c)) #endif #endif /* !defined(SIMDE_BUG_INTEL_857088) */ SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TBX_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/tbx.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_TRN_H) && !defined(SIMDE_BUG_INTEL_857088) #define SIMDE_ARM_NEON_TRN_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn1.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_TRN1_H) #define SIMDE_ARM_NEON_TRN1_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vtrn1_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_f32 #define vtrn1_f32(a, b) simde_vtrn1_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtrn1_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_s8 #define vtrn1_s8(a, b) simde_vtrn1_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vtrn1_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_s16 #define vtrn1_s16(a, b) simde_vtrn1_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vtrn1_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_s32 #define vtrn1_s32(a, b) simde_vtrn1_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtrn1_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_u8 #define vtrn1_u8(a, b) simde_vtrn1_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vtrn1_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_u16 #define vtrn1_u16(a, b) simde_vtrn1_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vtrn1_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1_u32 #define vtrn1_u32(a, b) simde_vtrn1_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vtrn1q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_f32(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_f32 #define vtrn1q_f32(a, b) simde_vtrn1q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vtrn1q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_f64(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_f64 #define vtrn1q_f64(a, b) simde_vtrn1q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vtrn1q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_s8 #define vtrn1q_s8(a, b) simde_vtrn1q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vtrn1q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_s16 #define vtrn1q_s16(a, b) simde_vtrn1q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vtrn1q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_s32 #define vtrn1q_s32(a, b) simde_vtrn1q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vtrn1q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_s64 #define vtrn1q_s64(a, b) simde_vtrn1q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vtrn1q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_u8 #define vtrn1q_u8(a, b) simde_vtrn1q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vtrn1q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_u16 #define vtrn1q_u16(a, b) simde_vtrn1q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vtrn1q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_u32 #define vtrn1q_u32(a, b) simde_vtrn1q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vtrn1q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn1q_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx]; r_.values[idx | 1] = b_.values[idx]; } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn1q_u64 #define vtrn1q_u64(a, b) simde_vtrn1q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TRN1_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn1.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn2.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_TRN2_H) #define SIMDE_ARM_NEON_TRN2_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vtrn2_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_f32 #define vtrn2_f32(a, b) simde_vtrn2_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vtrn2_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_s8 #define vtrn2_s8(a, b) simde_vtrn2_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vtrn2_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_s16 #define vtrn2_s16(a, b) simde_vtrn2_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vtrn2_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_s32 #define vtrn2_s32(a, b) simde_vtrn2_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vtrn2_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_u8 #define vtrn2_u8(a, b) simde_vtrn2_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vtrn2_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_u16 #define vtrn2_u16(a, b) simde_vtrn2_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vtrn2_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2_u32 #define vtrn2_u32(a, b) simde_vtrn2_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vtrn2q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_f32(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_f32 #define vtrn2q_f32(a, b) simde_vtrn2q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vtrn2q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_f64(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_f64 #define vtrn2q_f64(a, b) simde_vtrn2q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vtrn2q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_s8 #define vtrn2q_s8(a, b) simde_vtrn2q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vtrn2q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_s16 #define vtrn2q_s16(a, b) simde_vtrn2q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vtrn2q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_s32 #define vtrn2q_s32(a, b) simde_vtrn2q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vtrn2q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_s64 #define vtrn2q_s64(a, b) simde_vtrn2q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vtrn2q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_u8(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_u8 #define vtrn2q_u8(a, b) simde_vtrn2q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vtrn2q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_u16(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_u16 #define vtrn2q_u16(a, b) simde_vtrn2q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vtrn2q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_u32(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_u32 #define vtrn2q_u32(a, b) simde_vtrn2q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vtrn2q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vtrn2q_u64(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { const size_t idx = i << 1; r_.values[idx] = a_.values[idx | 1]; r_.values[idx | 1] = b_.values[idx | 1]; } return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vtrn2q_u64 #define vtrn2q_u64(a, b) simde_vtrn2q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TRN2_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn2.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2x2_t simde_vtrn_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_f32(a, b); #else simde_float32x2x2_t r = { { simde_vtrn1_f32(a, b), simde_vtrn2_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_f32 #define vtrn_f32(a, b) simde_vtrn_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8x2_t simde_vtrn_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_s8(a, b); #else simde_int8x8x2_t r = { { simde_vtrn1_s8(a, b), simde_vtrn2_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_s8 #define vtrn_s8(a, b) simde_vtrn_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4x2_t simde_vtrn_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_s16(a, b); #else simde_int16x4x2_t r = { { simde_vtrn1_s16(a, b), simde_vtrn2_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_s16 #define vtrn_s16(a, b) simde_vtrn_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2x2_t simde_vtrn_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_s32(a, b); #else simde_int32x2x2_t r = { { simde_vtrn1_s32(a, b), simde_vtrn2_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_s32 #define vtrn_s32(a, b) simde_vtrn_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x2_t simde_vtrn_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_u8(a, b); #else simde_uint8x8x2_t r = { { simde_vtrn1_u8(a, b), simde_vtrn2_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_u8 #define vtrn_u8(a, b) simde_vtrn_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x2_t simde_vtrn_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_u16(a, b); #else simde_uint16x4x2_t r = { { simde_vtrn1_u16(a, b), simde_vtrn2_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_u16 #define vtrn_u16(a, b) simde_vtrn_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x2_t simde_vtrn_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrn_u32(a, b); #else simde_uint32x2x2_t r = { { simde_vtrn1_u32(a, b), simde_vtrn2_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrn_u32 #define vtrn_u32(a, b) simde_vtrn_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x2_t simde_vtrnq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_f32(a, b); #else simde_float32x4x2_t r = { { simde_vtrn1q_f32(a, b), simde_vtrn2q_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_f32 #define vtrnq_f32(a, b) simde_vtrnq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16x2_t simde_vtrnq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_s8(a, b); #else simde_int8x16x2_t r = { { simde_vtrn1q_s8(a, b), simde_vtrn2q_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_s8 #define vtrnq_s8(a, b) simde_vtrnq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8x2_t simde_vtrnq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_s16(a, b); #else simde_int16x8x2_t r = { { simde_vtrn1q_s16(a, b), simde_vtrn2q_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_s16 #define vtrnq_s16(a, b) simde_vtrnq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4x2_t simde_vtrnq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_s32(a, b); #else simde_int32x4x2_t r = { { simde_vtrn1q_s32(a, b), simde_vtrn2q_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_s32 #define vtrnq_s32(a, b) simde_vtrnq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x2_t simde_vtrnq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_u8(a, b); #else simde_uint8x16x2_t r = { { simde_vtrn1q_u8(a, b), simde_vtrn2q_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_u8 #define vtrnq_u8(a, b) simde_vtrnq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x2_t simde_vtrnq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_u16(a, b); #else simde_uint16x8x2_t r = { { simde_vtrn1q_u16(a, b), simde_vtrn2q_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_u16 #define vtrnq_u16(a, b) simde_vtrnq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x2_t simde_vtrnq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vtrnq_u32(a, b); #else simde_uint32x4x2_t r = { { simde_vtrn1q_u32(a, b), simde_vtrn2q_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vtrnq_u32 #define vtrnq_u32(a, b) simde_vtrnq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_TRN_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/trn.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uqadd.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson */ #if !defined(SIMDE_ARM_NEON_UQADD_H) #define SIMDE_ARM_NEON_UQADD_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES int8_t simde_vuqaddb_s8(int8_t a, uint8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_GIT_4EC445B8) return vuqaddb_s8(a, HEDLEY_STATIC_CAST(int8_t, b)); #else return vuqaddb_s8(a, b); #endif #else int16_t r_ = HEDLEY_STATIC_CAST(int16_t, a) + HEDLEY_STATIC_CAST(int16_t, b); return (r_ < INT8_MIN) ? INT8_MIN : ((r_ > INT8_MAX) ? INT8_MAX : HEDLEY_STATIC_CAST(int8_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddb_s8 #define vuqaddb_s8(a, b) simde_vuqaddb_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int16_t simde_vuqaddh_s16(int16_t a, uint16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_GIT_4EC445B8) return vuqaddh_s16(a, HEDLEY_STATIC_CAST(int16_t, b)); #else return vuqaddh_s16(a, b); #endif #else int32_t r_ = HEDLEY_STATIC_CAST(int32_t, a) + HEDLEY_STATIC_CAST(int32_t, b); return (r_ < INT16_MIN) ? INT16_MIN : ((r_ > INT16_MAX) ? INT16_MAX : HEDLEY_STATIC_CAST(int16_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddh_s16 #define vuqaddh_s16(a, b) simde_vuqaddh_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int32_t simde_vuqadds_s32(int32_t a, uint32_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_GIT_4EC445B8) return vuqadds_s32(a, HEDLEY_STATIC_CAST(int32_t, b)); #else return vuqadds_s32(a, b); #endif #else int64_t r_ = HEDLEY_STATIC_CAST(int64_t, a) + HEDLEY_STATIC_CAST(int64_t, b); return (r_ < INT32_MIN) ? INT32_MIN : ((r_ > INT32_MAX) ? INT32_MAX : HEDLEY_STATIC_CAST(int32_t, r_)); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqadds_s32 #define vuqadds_s32(a, b) simde_vuqadds_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES int64_t simde_vuqaddd_s64(int64_t a, uint64_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) #if defined(SIMDE_BUG_CLANG_GIT_4EC445B8) return vuqaddd_s64(a, HEDLEY_STATIC_CAST(int64_t, b)); #else return vuqaddd_s64(a, b); #endif #else /* TODO: I suspect there is room for improvement here. This is * just the first thing that worked, and I don't feel like messing * with it now. */ int64_t r; if (a < 0) { uint64_t na = HEDLEY_STATIC_CAST(uint64_t, -a); if (na > b) { uint64_t t = na - b; r = (t > (HEDLEY_STATIC_CAST(uint64_t, INT64_MAX) + 1)) ? INT64_MIN : -HEDLEY_STATIC_CAST(int64_t, t); } else { uint64_t t = b - na; r = (t > (HEDLEY_STATIC_CAST(uint64_t, INT64_MAX) )) ? INT64_MAX : HEDLEY_STATIC_CAST(int64_t, t); } } else { uint64_t ua = HEDLEY_STATIC_CAST(uint64_t, a); r = ((INT64_MAX - ua) < b) ? INT64_MAX : HEDLEY_STATIC_CAST(int64_t, ua + b); } return r; #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddd_s64 #define vuqaddd_s64(a, b) simde_vuqaddd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vuqadd_s8(simde_int8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqadd_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a); simde_uint8x8_private b_ = simde_uint8x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddb_s8(a_.values[i], b_.values[i]); } return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqadd_s8 #define vuqadd_s8(a, b) simde_vuqadd_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vuqadd_s16(simde_int16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqadd_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a); simde_uint16x4_private b_ = simde_uint16x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddh_s16(a_.values[i], b_.values[i]); } return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqadd_s16 #define vuqadd_s16(a, b) simde_vuqadd_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vuqadd_s32(simde_int32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqadd_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a); simde_uint32x2_private b_ = simde_uint32x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqadds_s32(a_.values[i], b_.values[i]); } return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqadd_s32 #define vuqadd_s32(a, b) simde_vuqadd_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x1_t simde_vuqadd_s64(simde_int64x1_t a, simde_uint64x1_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqadd_s64(a, b); #else simde_int64x1_private r_, a_ = simde_int64x1_to_private(a); simde_uint64x1_private b_ = simde_uint64x1_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddd_s64(a_.values[i], b_.values[i]); } return simde_int64x1_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqadd_s64 #define vuqadd_s64(a, b) simde_vuqadd_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vuqaddq_s8(simde_int8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqaddq_s8(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a); simde_uint8x16_private b_ = simde_uint8x16_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddb_s8(a_.values[i], b_.values[i]); } return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddq_s8 #define vuqaddq_s8(a, b) simde_vuqaddq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vuqaddq_s16(simde_int16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqaddq_s16(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a); simde_uint16x8_private b_ = simde_uint16x8_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddh_s16(a_.values[i], b_.values[i]); } return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddq_s16 #define vuqaddq_s16(a, b) simde_vuqaddq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vuqaddq_s32(simde_int32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqaddq_s32(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a); simde_uint32x4_private b_ = simde_uint32x4_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqadds_s32(a_.values[i], b_.values[i]); } return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddq_s32 #define vuqaddq_s32(a, b) simde_vuqaddq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vuqaddq_s64(simde_int64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vuqaddq_s64(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a); simde_uint64x2_private b_ = simde_uint64x2_to_private(b); SIMDE_VECTORIZE for (size_t i = 0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = simde_vuqaddd_s64(a_.values[i], b_.values[i]); } return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vuqaddq_s64 #define vuqaddq_s64(a, b) simde_vuqaddq_s64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_UQADD_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uqadd.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_UZP_H) && !defined(SIMDE_BUG_INTEL_857088) #define SIMDE_ARM_NEON_UZP_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2x2_t simde_vuzp_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_f32(a, b); #else simde_float32x2x2_t r = { { simde_vuzp1_f32(a, b), simde_vuzp2_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_f32 #define vuzp_f32(a, b) simde_vuzp_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8x2_t simde_vuzp_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_s8(a, b); #else simde_int8x8x2_t r = { { simde_vuzp1_s8(a, b), simde_vuzp2_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_s8 #define vuzp_s8(a, b) simde_vuzp_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4x2_t simde_vuzp_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_s16(a, b); #else simde_int16x4x2_t r = { { simde_vuzp1_s16(a, b), simde_vuzp2_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_s16 #define vuzp_s16(a, b) simde_vuzp_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2x2_t simde_vuzp_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_s32(a, b); #else simde_int32x2x2_t r = { { simde_vuzp1_s32(a, b), simde_vuzp2_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_s32 #define vuzp_s32(a, b) simde_vuzp_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x2_t simde_vuzp_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_u8(a, b); #else simde_uint8x8x2_t r = { { simde_vuzp1_u8(a, b), simde_vuzp2_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_u8 #define vuzp_u8(a, b) simde_vuzp_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x2_t simde_vuzp_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_u16(a, b); #else simde_uint16x4x2_t r = { { simde_vuzp1_u16(a, b), simde_vuzp2_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_u16 #define vuzp_u16(a, b) simde_vuzp_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x2_t simde_vuzp_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzp_u32(a, b); #else simde_uint32x2x2_t r = { { simde_vuzp1_u32(a, b), simde_vuzp2_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzp_u32 #define vuzp_u32(a, b) simde_vuzp_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x2_t simde_vuzpq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_f32(a, b); #else simde_float32x4x2_t r = { { simde_vuzp1q_f32(a, b), simde_vuzp2q_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_f32 #define vuzpq_f32(a, b) simde_vuzpq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16x2_t simde_vuzpq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_s8(a, b); #else simde_int8x16x2_t r = { { simde_vuzp1q_s8(a, b), simde_vuzp2q_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_s8 #define vuzpq_s8(a, b) simde_vuzpq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8x2_t simde_vuzpq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_s16(a, b); #else simde_int16x8x2_t r = { { simde_vuzp1q_s16(a, b), simde_vuzp2q_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_s16 #define vuzpq_s16(a, b) simde_vuzpq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4x2_t simde_vuzpq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_s32(a, b); #else simde_int32x4x2_t r = { { simde_vuzp1q_s32(a, b), simde_vuzp2q_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_s32 #define vuzpq_s32(a, b) simde_vuzpq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x2_t simde_vuzpq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_u8(a, b); #else simde_uint8x16x2_t r = { { simde_vuzp1q_u8(a, b), simde_vuzp2q_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_u8 #define vuzpq_u8(a, b) simde_vuzpq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x2_t simde_vuzpq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_u16(a, b); #else simde_uint16x8x2_t r = { { simde_vuzp1q_u16(a, b), simde_vuzp2q_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_u16 #define vuzpq_u16(a, b) simde_vuzpq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x2_t simde_vuzpq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vuzpq_u32(a, b); #else simde_uint32x4x2_t r = { { simde_vuzp1q_u32(a, b), simde_vuzp2q_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vuzpq_u32 #define vuzpq_u32(a, b) simde_vuzpq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_UZP_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/uzp.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/xar.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2021 Atharva Nimbalkar */ #if !defined(SIMDE_ARM_NEON_XAR_H) #define SIMDE_ARM_NEON_XAR_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vxarq_u64(simde_uint64x2_t a, simde_uint64x2_t b, const int d) SIMDE_REQUIRE_CONSTANT_RANGE(d, 0, 63) { simde_uint64x2_private r_, t = simde_uint64x2_to_private(simde_veorq_u64(a,b)); SIMDE_VECTORIZE for (size_t i=0 ; i < (sizeof(r_.values) / sizeof(r_.values[0])) ; i++) { r_.values[i] = ((t.values[i] >> d) | (t.values[i] << (64 - d))); } return simde_uint64x2_from_private(r_); } #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) && defined(__ARM_FEATURE_SHA3) #define simde_vxarq_u64(a, b, d) vxarq_u64((a), (b), (d)) #endif #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) || (defined(SIMDE_ENABLE_NATIVE_ALIASES) && !defined(__ARM_FEATURE_SHA3)) #undef vxarq_u64 #define vxarq_u64(a, b, d) simde_vxarq_u64((a), (b), (d)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_XAR_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/xar.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ZIP_H) && !defined(SIMDE_BUG_INTEL_857088) #define SIMDE_ARM_NEON_ZIP_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip1.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ZIP1_H) #define SIMDE_ARM_NEON_ZIP1_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vzip1_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_f32 #define vzip1_f32(a, b) simde_vzip1_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vzip1_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi8(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 0, 8, 1, 9, 2, 10, 3, 11); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_s8 #define vzip1_s8(a, b) simde_vzip1_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vzip1_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi16(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 0, 4, 1, 5); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_s16 #define vzip1_s16(a, b) simde_vzip1_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vzip1_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_s32 #define vzip1_s32(a, b) simde_vzip1_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vzip1_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi8(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 0, 8, 1, 9, 2, 10, 3, 11); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_u8 #define vzip1_u8(a, b) simde_vzip1_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vzip1_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi16(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 0, 4, 1, 5); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_u16 #define vzip1_u16(a, b) simde_vzip1_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vzip1_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpacklo_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1_u32 #define vzip1_u32(a, b) simde_vzip1_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vzip1q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 4, 1, 5); #elif defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_unpacklo_ps(a_.m128, b_.m128); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 4, 1, 5); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_f32 #define vzip1q_f32(a, b) simde_vzip1q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vzip1q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergeh(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_unpacklo_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_f64 #define vzip1q_f64(a, b) simde_vzip1q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vzip1q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 0, 16, 1, 17, 2, 18, 3, 19, 4, 20, 5, 21, 6, 22, 7, 23); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 0, 16, 1, 17, 2, 18, 3, 19, 4, 20, 5, 21, 6, 22, 7, 23); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_s8 #define vzip1q_s8(a, b) simde_vzip1q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vzip1q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 0, 8, 1, 9, 2, 10, 3, 11); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 0, 8, 1, 9, 2, 10, 3, 11); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_s16 #define vzip1q_s16(a, b) simde_vzip1q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vzip1q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 4, 1, 5); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 4, 1, 5); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_s32 #define vzip1q_s32(a, b) simde_vzip1q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vzip1q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergeh(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_s64 #define vzip1q_s64(a, b) simde_vzip1q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vzip1q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 0, 16, 1, 17, 2, 18, 3, 19, 4, 20, 5, 21, 6, 22, 7, 23); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 0, 16, 1, 17, 2, 18, 3, 19, 4, 20, 5, 21, 6, 22, 7, 23); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_u8 #define vzip1q_u8(a, b) simde_vzip1q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vzip1q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 0, 8, 1, 9, 2, 10, 3, 11); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 0, 8, 1, 9, 2, 10, 3, 11); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_u16 #define vzip1q_u16(a, b) simde_vzip1q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vzip1q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergeh(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 0, 4, 1, 5); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 0, 4, 1, 5); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_u32 #define vzip1q_u32(a, b) simde_vzip1q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vzip1q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip1q_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergeh(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 0, 2); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpacklo_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 0, 2); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[2 * i ] = a_.values[i]; r_.values[2 * i + 1] = b_.values[i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip1q_u64 #define vzip1q_u64(a, b) simde_vzip1q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ZIP1_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip1.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* :: Begin ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip2.h :: */ /* SPDX-License-Identifier: MIT * * Permission is hereby granted, free of charge, to any person * obtaining a copy of this software and associated documentation * files (the "Software"), to deal in the Software without * restriction, including without limitation the rights to use, copy, * modify, merge, publish, distribute, sublicense, and/or sell copies * of the Software, and to permit persons to whom the Software is * furnished to do so, subject to the following conditions: * * The above copyright notice and this permission notice shall be * included in all copies or substantial portions of the Software. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * Copyright: * 2020 Evan Nemerson * 2020 Sean Maher (Copyright owned by Google, LLC) */ #if !defined(SIMDE_ARM_NEON_ZIP2_H) #define SIMDE_ARM_NEON_ZIP2_H /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2_t simde_vzip2_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_f32(a, b); #else simde_float32x2_private r_, a_ = simde_float32x2_to_private(a), b_ = simde_float32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_float32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_f32 #define vzip2_f32(a, b) simde_vzip2_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8_t simde_vzip2_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_s8(a, b); #else simde_int8x8_private r_, a_ = simde_int8x8_to_private(a), b_ = simde_int8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi8(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 4, 12, 5, 13, 6, 14, 7, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_s8 #define vzip2_s8(a, b) simde_vzip2_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4_t simde_vzip2_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_s16(a, b); #else simde_int16x4_private r_, a_ = simde_int16x4_to_private(a), b_ = simde_int16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi16(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 2, 6, 3, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_s16 #define vzip2_s16(a, b) simde_vzip2_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2_t simde_vzip2_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_s32(a, b); #else simde_int32x2_private r_, a_ = simde_int32x2_to_private(a), b_ = simde_int32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_s32 #define vzip2_s32(a, b) simde_vzip2_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8_t simde_vzip2_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_u8(a, b); #else simde_uint8x8_private r_, a_ = simde_uint8x8_to_private(a), b_ = simde_uint8x8_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi8(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 8, a_.values, b_.values, 4, 12, 5, 13, 6, 14, 7, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint8x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_u8 #define vzip2_u8(a, b) simde_vzip2_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4_t simde_vzip2_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_u16(a, b); #else simde_uint16x4_private r_, a_ = simde_uint16x4_to_private(a), b_ = simde_uint16x4_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi16(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 8, a_.values, b_.values, 2, 6, 3, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint16x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_u16 #define vzip2_u16(a, b) simde_vzip2_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2_t simde_vzip2_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2_u32(a, b); #else simde_uint32x2_private r_, a_ = simde_uint32x2_to_private(a), b_ = simde_uint32x2_to_private(b); #if defined(SIMDE_X86_MMX_NATIVE) r_.m64 = _mm_unpackhi_pi32(a_.m64, b_.m64); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 8, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint32x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2_u32 #define vzip2_u32(a, b) simde_vzip2_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4_t simde_vzip2q_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_f32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_float32x4_private r_, a_ = simde_float32x4_to_private(a), b_ = simde_float32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 2, 6, 3, 7); #elif defined(SIMDE_X86_SSE_NATIVE) r_.m128 = _mm_unpackhi_ps(a_.m128, b_.m128); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 2, 6, 3, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_float32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_f32 #define vzip2q_f32(a, b) simde_vzip2q_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float64x2_t simde_vzip2q_f64(simde_float64x2_t a, simde_float64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_f64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_float64x2_private r_, a_ = simde_float64x2_to_private(a), b_ = simde_float64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128d = _mm_unpackhi_pd(a_.m128d, b_.m128d); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_float64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_f64 #define vzip2q_f64(a, b) simde_vzip2q_f64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16_t simde_vzip2q_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_s8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_int8x16_private r_, a_ = simde_int8x16_to_private(a), b_ = simde_int8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 8, 24, 9, 25, 10, 26, 11, 27, 12, 28, 13, 29, 14, 30, 15, 31); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 8, 24, 9, 25, 10, 26, 11, 27, 12, 28, 13, 29, 14, 30, 15, 31); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_s8 #define vzip2q_s8(a, b) simde_vzip2q_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8_t simde_vzip2q_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_s16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_int16x8_private r_, a_ = simde_int16x8_to_private(a), b_ = simde_int16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 4, 12, 5, 13, 6, 14, 7, 15); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 4, 12, 5, 13, 6, 14, 7, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_s16 #define vzip2q_s16(a, b) simde_vzip2q_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4_t simde_vzip2q_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_s32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_int32x4_private r_, a_ = simde_int32x4_to_private(a), b_ = simde_int32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 2, 6, 3, 7); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 2, 6, 3, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_s32 #define vzip2q_s32(a, b) simde_vzip2q_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int64x2_t simde_vzip2q_s64(simde_int64x2_t a, simde_int64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_s64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_int64x2_private r_, a_ = simde_int64x2_to_private(a), b_ = simde_int64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_int64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_s64 #define vzip2q_s64(a, b) simde_vzip2q_s64((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16_t simde_vzip2q_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_u8(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_uint8x16_private r_, a_ = simde_uint8x16_to_private(a), b_ = simde_uint8x16_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i8x16_shuffle(a_.v128, b_.v128, 8, 24, 9, 25, 10, 26, 11, 27, 12, 28, 13, 29, 14, 30, 15, 31); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi8(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(8, 16, a_.values, b_.values, 8, 24, 9, 25, 10, 26, 11, 27, 12, 28, 13, 29, 14, 30, 15, 31); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint8x16_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_u8 #define vzip2q_u8(a, b) simde_vzip2q_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8_t simde_vzip2q_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_u16(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_uint16x8_private r_, a_ = simde_uint16x8_to_private(a), b_ = simde_uint16x8_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i16x8_shuffle(a_.v128, b_.v128, 4, 12, 5, 13, 6, 14, 7, 15); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi16(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(16, 16, a_.values, b_.values, 4, 12, 5, 13, 6, 14, 7, 15); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint16x8_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_u16 #define vzip2q_u16(a, b) simde_vzip2q_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4_t simde_vzip2q_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_u32(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P6_NATIVE) return vec_mergel(a, b); #else simde_uint32x4_private r_, a_ = simde_uint32x4_to_private(a), b_ = simde_uint32x4_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i32x4_shuffle(a_.v128, b_.v128, 2, 6, 3, 7); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi32(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(32, 16, a_.values, b_.values, 2, 6, 3, 7); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint32x4_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_u32 #define vzip2q_u32(a, b) simde_vzip2q_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint64x2_t simde_vzip2q_u64(simde_uint64x2_t a, simde_uint64x2_t b) { #if defined(SIMDE_ARM_NEON_A64V8_NATIVE) return vzip2q_u64(a, b); #elif defined(SIMDE_POWER_ALTIVEC_P7_NATIVE) return vec_mergel(a, b); #else simde_uint64x2_private r_, a_ = simde_uint64x2_to_private(a), b_ = simde_uint64x2_to_private(b); #if defined(SIMDE_WASM_SIMD128_NATIVE) r_.v128 = wasm_i64x2_shuffle(a_.v128, b_.v128, 1, 3); #elif defined(SIMDE_X86_SSE2_NATIVE) r_.m128i = _mm_unpackhi_epi64(a_.m128i, b_.m128i); #elif defined(SIMDE_SHUFFLE_VECTOR_) r_.values = SIMDE_SHUFFLE_VECTOR_(64, 16, a_.values, b_.values, 1, 3); #else const size_t halfway_point = sizeof(r_.values) / sizeof(r_.values[0]) / 2; SIMDE_VECTORIZE for (size_t i = 0 ; i < halfway_point ; i++) { r_.values[(2 * i) ] = a_.values[halfway_point + i]; r_.values[(2 * i) + 1] = b_.values[halfway_point + i]; } #endif return simde_uint64x2_from_private(r_); #endif } #if defined(SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES) #undef vzip2q_u64 #define vzip2q_u64(a, b) simde_vzip2q_u64((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ZIP2_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip2.h :: */ HEDLEY_DIAGNOSTIC_PUSH SIMDE_DISABLE_UNWANTED_DIAGNOSTICS SIMDE_BEGIN_DECLS_ SIMDE_FUNCTION_ATTRIBUTES simde_float32x2x2_t simde_vzip_f32(simde_float32x2_t a, simde_float32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_f32(a, b); #else simde_float32x2x2_t r = { { simde_vzip1_f32(a, b), simde_vzip2_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_f32 #define vzip_f32(a, b) simde_vzip_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x8x2_t simde_vzip_s8(simde_int8x8_t a, simde_int8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_s8(a, b); #else simde_int8x8x2_t r = { { simde_vzip1_s8(a, b), simde_vzip2_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_s8 #define vzip_s8(a, b) simde_vzip_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x4x2_t simde_vzip_s16(simde_int16x4_t a, simde_int16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_s16(a, b); #else simde_int16x4x2_t r = { { simde_vzip1_s16(a, b), simde_vzip2_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_s16 #define vzip_s16(a, b) simde_vzip_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x2x2_t simde_vzip_s32(simde_int32x2_t a, simde_int32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_s32(a, b); #else simde_int32x2x2_t r = { { simde_vzip1_s32(a, b), simde_vzip2_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_s32 #define vzip_s32(a, b) simde_vzip_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x8x2_t simde_vzip_u8(simde_uint8x8_t a, simde_uint8x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_u8(a, b); #else simde_uint8x8x2_t r = { { simde_vzip1_u8(a, b), simde_vzip2_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_u8 #define vzip_u8(a, b) simde_vzip_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x4x2_t simde_vzip_u16(simde_uint16x4_t a, simde_uint16x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_u16(a, b); #else simde_uint16x4x2_t r = { { simde_vzip1_u16(a, b), simde_vzip2_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_u16 #define vzip_u16(a, b) simde_vzip_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x2x2_t simde_vzip_u32(simde_uint32x2_t a, simde_uint32x2_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzip_u32(a, b); #else simde_uint32x2x2_t r = { { simde_vzip1_u32(a, b), simde_vzip2_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzip_u32 #define vzip_u32(a, b) simde_vzip_u32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_float32x4x2_t simde_vzipq_f32(simde_float32x4_t a, simde_float32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_f32(a, b); #else simde_float32x4x2_t r = { { simde_vzip1q_f32(a, b), simde_vzip2q_f32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_f32 #define vzipq_f32(a, b) simde_vzipq_f32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int8x16x2_t simde_vzipq_s8(simde_int8x16_t a, simde_int8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_s8(a, b); #else simde_int8x16x2_t r = { { simde_vzip1q_s8(a, b), simde_vzip2q_s8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_s8 #define vzipq_s8(a, b) simde_vzipq_s8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int16x8x2_t simde_vzipq_s16(simde_int16x8_t a, simde_int16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_s16(a, b); #else simde_int16x8x2_t r = { { simde_vzip1q_s16(a, b), simde_vzip2q_s16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_s16 #define vzipq_s16(a, b) simde_vzipq_s16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_int32x4x2_t simde_vzipq_s32(simde_int32x4_t a, simde_int32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_s32(a, b); #else simde_int32x4x2_t r = { { simde_vzip1q_s32(a, b), simde_vzip2q_s32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_s32 #define vzipq_s32(a, b) simde_vzipq_s32((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint8x16x2_t simde_vzipq_u8(simde_uint8x16_t a, simde_uint8x16_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_u8(a, b); #else simde_uint8x16x2_t r = { { simde_vzip1q_u8(a, b), simde_vzip2q_u8(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_u8 #define vzipq_u8(a, b) simde_vzipq_u8((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint16x8x2_t simde_vzipq_u16(simde_uint16x8_t a, simde_uint16x8_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_u16(a, b); #else simde_uint16x8x2_t r = { { simde_vzip1q_u16(a, b), simde_vzip2q_u16(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_u16 #define vzipq_u16(a, b) simde_vzipq_u16((a), (b)) #endif SIMDE_FUNCTION_ATTRIBUTES simde_uint32x4x2_t simde_vzipq_u32(simde_uint32x4_t a, simde_uint32x4_t b) { #if defined(SIMDE_ARM_NEON_A32V7_NATIVE) return vzipq_u32(a, b); #else simde_uint32x4x2_t r = { { simde_vzip1q_u32(a, b), simde_vzip2q_u32(a, b) } }; return r; #endif } #if defined(SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES) #undef vzipq_u32 #define vzipq_u32(a, b) simde_vzipq_u32((a), (b)) #endif SIMDE_END_DECLS_ HEDLEY_DIAGNOSTIC_POP #endif /* !defined(SIMDE_ARM_NEON_ZIP_H) */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon/zip.h :: */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ /* AUTOMATICALLY GENERATED FILE, DO NOT MODIFY */ /* ff7472b2954d2285de79c7f35692d9390d74877f */ #endif /* SIMDE_ARM_NEON_H */ /* :: End ../../tmp/emscripten_temp_40y8f0y4/simde/simde/arm/neon.h :: */ #undef SIMDE_ARM_NEON_A32V7_ENABLE_NATIVE_ALIASES #undef SIMDE_ARM_NEON_A64V8_ENABLE_NATIVE_ALIASES