# encoding: utf-8
# module vtkmodules.vtkInteractionWidgets
# from C:\Users\xukai\Downloads\发票2\venv\Lib\site-packages\vtkmodules\vtkInteractionWidgets.cp311-win_amd64.pyd
# by generator 1.147
# no doc

# imports
import vtkmodules.vtkCommonCore as __vtkmodules_vtkCommonCore
import vtkmodules.vtkCommonExecutionModel as __vtkmodules_vtkCommonExecutionModel
import vtkmodules.vtkFiltersSources as __vtkmodules_vtkFiltersSources
import vtkmodules.vtkRenderingContext2D as __vtkmodules_vtkRenderingContext2D
import vtkmodules.vtkRenderingCore as __vtkmodules_vtkRenderingCore


from .vtkTensorProbeRepresentation import vtkTensorProbeRepresentation

class vtkEllipsoidTensorProbeRepresentation(vtkTensorProbeRepresentation):
    """
    vtkEllipsoidTensorProbeRepresentation - A concrete implementation of
    vtkTensorProbeRepresentation that renders tensors as ellipoids.
    
    Superclass: vtkTensorProbeRepresentation
    
    vtkEllipsoidTensorProbeRepresentation is a concrete implementation of
    vtkTensorProbeRepresentation. It renders tensors as ellipsoids.
    Locations between two points when probed have the tensors linearly
    interpolated from the neighboring locations on the polyline.
    
    @sa
    vtkTensorProbeWidget
    """
    def BuildRepresentation(self): # real signature unknown; restored from __doc__
        """
        BuildRepresentation(self) -> None
        C++: void BuildRepresentation() override;
        
        See vtkWidgetRepresentation for details.
        """
        pass

    def GetActors(self, __a): # real signature unknown; restored from __doc__
        """
        GetActors(self, __a:vtkPropCollection) -> None
        C++: void GetActors(vtkPropCollection *) override;
        
        See vtkProp for details.
        """
        pass

    def GetNumberOfGenerationsFromBase(self, type): # real signature unknown; restored from __doc__
        """
        GetNumberOfGenerationsFromBase(self, type:str) -> int
        C++: vtkIdType GetNumberOfGenerationsFromBase(const char *type)
            override;
        
        Given the name of a base class of this class type, return the
        distance of inheritance between this class type and the named
        class (how many generations of inheritance are there between this
        class and the named class). If the named class is not in this
        class's inheritance tree, return a negative value. Valid
        responses will always be nonnegative. This method works in
        combination with vtkTypeMacro found in vtkSetGet.h.
        """
        return 0

    def GetNumberOfGenerationsFromBaseType(self, type): # real signature unknown; restored from __doc__
        """
        GetNumberOfGenerationsFromBaseType(type:str) -> int
        C++: static vtkIdType GetNumberOfGenerationsFromBaseType(
            const char *type)
        
        Given a the name of a base class of this class type, return the
        distance of inheritance between this class type and the named
        class (how many generations of inheritance are there between this
        class and the named class). If the named class is not in this
        class's inheritance tree, return a negative value. Valid
        responses will always be nonnegative. This method works in
        combination with vtkTypeMacro found in vtkSetGet.h.
        """
        return 0

    def IsA(self, type): # real signature unknown; restored from __doc__
        """
        IsA(self, type:str) -> int
        C++: vtkTypeBool IsA(const char *type) override;
        
        Return 1 if this class is the same type of (or a subclass of) the
        named class. Returns 0 otherwise. This method works in
        combination with vtkTypeMacro found in vtkSetGet.h.
        """
        return 0

    def IsTypeOf(self, type): # real signature unknown; restored from __doc__
        """
        IsTypeOf(type:str) -> int
        C++: static vtkTypeBool IsTypeOf(const char *type)
        
        Return 1 if this class type is the same type of (or a subclass
        of) the named class. Returns 0 otherwise. This method works in
        combination with vtkTypeMacro found in vtkSetGet.h.
        """
        return 0

    def NewInstance(self): # real signature unknown; restored from __doc__
        """
        NewInstance(self) -> vtkEllipsoidTensorProbeRepresentation
        C++: vtkEllipsoidTensorProbeRepresentation *NewInstance()
        """
        return vtkEllipsoidTensorProbeRepresentation

    def RegisterPickers(self): # real signature unknown; restored from __doc__
        """
        RegisterPickers(self) -> None
        C++: void RegisterPickers() override;
        
        Register internal Pickers in the Picking Manager. Must be
        reimplemented by concrete widget representations to register
        their pickers.
        """
        pass

    def ReleaseGraphicsResources(self, __a): # real signature unknown; restored from __doc__
        """
        ReleaseGraphicsResources(self, __a:vtkWindow) -> None
        C++: void ReleaseGraphicsResources(vtkWindow *) override;
        
        WARNING: INTERNAL METHOD - NOT INTENDED FOR GENERAL USE Release
        any graphics resources that are being consumed by this actor. The
        parameter window could be used to determine which graphic
        resources to release.
        """
        pass

    def RenderOpaqueGeometry(self, __a): # real signature unknown; restored from __doc__
        """
        RenderOpaqueGeometry(self, __a:vtkViewport) -> int
        C++: int RenderOpaqueGeometry(vtkViewport *) override;
        
        WARNING: INTERNAL METHOD - NOT INTENDED FOR GENERAL USE DO NOT
        USE THESE METHODS OUTSIDE OF THE RENDERING PROCESS All concrete
        subclasses must be able to render themselves. There are four key
        render methods in vtk and they correspond to four different
        points in the rendering cycle. Any given prop may implement one
        or more of these methods. The first method is intended for
        rendering all opaque geometry. The second method is intended for
        rendering all translucent polygonal geometry. The third one is
        intended for rendering all translucent volumetric geometry. Most
        of the volume rendering mappers draw their results during this
        third method. The last method is to render any 2D annotation or
        overlays. Each of these methods return an integer value
        indicating whether or not this render method was applied to this
        data.
        """
        return 0

    def SafeDownCast(self, o): # real signature unknown; restored from __doc__
        """
        SafeDownCast(o:vtkObjectBase)
            -> vtkEllipsoidTensorProbeRepresentation
        C++: static vtkEllipsoidTensorProbeRepresentation *SafeDownCast(
            vtkObjectBase *o)
        """
        return vtkEllipsoidTensorProbeRepresentation

    def SelectProbe(self, pos, *args, **kwargs): # real signature unknown; NOTE: unreliably restored from __doc__ 
        """
        SelectProbe(self, pos:[int, int]) -> int
        C++: int SelectProbe(int pos[2]) override;
        
        Can we pick the tensor glyph at the current cursor pos
        """
        pass

    def __delattr__(self, *args, **kwargs): # real signature unknown
        """ Implement delattr(self, name). """
        pass

    def __getattribute__(self, *args, **kwargs): # real signature unknown
        """ Return getattr(self, name). """
        pass

    def __init__(self, *args, **kwargs): # real signature unknown
        pass

    @staticmethod # known case of __new__
    def __new__(*args, **kwargs): # real signature unknown
        """ Create and return a new object.  See help(type) for accurate signature. """
        pass

    def __repr__(self, *args, **kwargs): # real signature unknown
        """ Return repr(self). """
        pass

    def __setattr__(self, *args, **kwargs): # real signature unknown
        """ Implement setattr(self, name, value). """
        pass

    def __str__(self, *args, **kwargs): # real signature unknown
        """ Return str(self). """
        pass

    __this__ = property(lambda self: object(), lambda self, v: None, lambda self: None)  # default
    """Pointer to the C++ object."""


    __dict__ = None # (!) real value is "mappingproxy({'__vtkname__': 'vtkEllipsoidTensorProbeRepresentation', 'IsTypeOf': <method 'IsTypeOf' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'IsA': <method 'IsA' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'SafeDownCast': <method 'SafeDownCast' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'NewInstance': <method 'NewInstance' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'GetNumberOfGenerationsFromBaseType': <method 'GetNumberOfGenerationsFromBaseType' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'GetNumberOfGenerationsFromBase': <method 'GetNumberOfGenerationsFromBase' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'BuildRepresentation': <method 'BuildRepresentation' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'RenderOpaqueGeometry': <method 'RenderOpaqueGeometry' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'SelectProbe': <method 'SelectProbe' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'GetActors': <method 'GetActors' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'ReleaseGraphicsResources': <method 'ReleaseGraphicsResources' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, 'RegisterPickers': <method 'RegisterPickers' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__new__': <built-in method __new__ of type object at 0x00007FF81D648190>, '__repr__': <slot wrapper '__repr__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__str__': <slot wrapper '__str__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__getattribute__': <slot wrapper '__getattribute__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__setattr__': <slot wrapper '__setattr__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__delattr__': <slot wrapper '__delattr__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__dict__': <attribute '__dict__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__this__': <attribute '__this__' of 'vtkmodules.vtkInteractionWidgets.vtkEllipsoidTensorProbeRepresentation' objects>, '__doc__': 'vtkEllipsoidTensorProbeRepresentation - A concrete implementation of\\nvtkTensorProbeRepresentation that renders tensors as ellipoids.\\n\\nSuperclass: vtkTensorProbeRepresentation\\n\\nvtkEllipsoidTensorProbeRepresentation is a concrete implementation of\\nvtkTensorProbeRepresentation. It renders tensors as ellipsoids.\\nLocations between two points when probed have the tensors linearly\\ninterpolated from the neighboring locations on the polyline.\\n\\n@sa\\nvtkTensorProbeWidget\\n\\n'})"
    __vtkname__ = 'vtkEllipsoidTensorProbeRepresentation'


