# encoding: utf-8
# module vtkmodules.vtkCommonDataModel
# from C:\Users\xukai\Downloads\发票2\venv\Lib\site-packages\vtkmodules\vtkCommonDataModel.cp311-win_amd64.pyd
# by generator 1.147
# no doc

# imports
import vtkmodules.vtkCommonCore as __vtkmodules_vtkCommonCore
import vtkmodules.vtkCommonMath as __vtkmodules_vtkCommonMath
import vtkmodules.vtkCommonTransforms as __vtkmodules_vtkCommonTransforms


from .vtkImplicitFunction import vtkImplicitFunction

class vtkCylinder(vtkImplicitFunction):
    """
    vtkCylinder - implicit function for a cylinder
    
    Superclass: vtkImplicitFunction
    
    vtkCylinder computes the implicit function and function gradient for
    a cylinder using F(r)=r^2-Radius^2. vtkCylinder is a concrete
    implementation of vtkImplicitFunction. By default the Cylinder is
    centered at the origin and the axis of rotation is along the y-axis.
    You can redefine the center and axis of rotation by setting the
    Center and Axis data members. (Note that it is also possible to use
    the superclass' vtkImplicitFunction transformation matrix if
    necessary to reposition by using FunctionValue() and
    FunctionGradient().)
    
    @warning
    The cylinder is infinite in extent. To truncate the cylinder in
    modeling operations use the vtkImplicitBoolean in combination with
    clipping planes.
    
    @sa
    vtkCylinderSource
    """
    def EvaluateFunction(self, x, *args, **kwargs): # real signature unknown; NOTE: unreliably restored from __doc__ 
        """
        EvaluateFunction(self, x:[float, float, float]) -> float
        C++: double EvaluateFunction(double x[3]) override;
        EvaluateFunction(self, input:vtkDataArray, output:vtkDataArray)
            -> None
        C++: virtual void EvaluateFunction(vtkDataArray *input,
            vtkDataArray *output)
        EvaluateFunction(self, x:float, y:float, z:float) -> float
        C++: virtual double EvaluateFunction(double x, double y, double z)
        
        Evaluate function at position x-y-z and return value.  You should
        generally not call this method directly, you should use
        FunctionValue() instead.  This method must be implemented by any
        derived class.
        """
        pass

    def EvaluateGradient(self, x, *args, **kwargs): # real signature unknown; NOTE: unreliably restored from __doc__ 
        """
        EvaluateGradient(self, x:[float, float, float], g:[float, float,
            float]) -> None
        C++: void EvaluateGradient(double x[3], double g[3]) override;
        
        Evaluate cylinder function gradient.
        """
        pass

    def GetAxis(self): # real signature unknown; restored from __doc__
        """
        GetAxis(self) -> (float, float, float)
        C++: virtual double *GetAxis()
        """
        pass

    def GetCenter(self): # real signature unknown; restored from __doc__
        """
        GetCenter(self) -> (float, float, float)
        C++: virtual double *GetCenter()
        """
        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 GetRadius(self): # real signature unknown; restored from __doc__
        """
        GetRadius(self) -> float
        C++: virtual double GetRadius()
        """
        return 0.0

    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) -> vtkCylinder
        C++: vtkCylinder *NewInstance()
        """
        return vtkCylinder

    def SafeDownCast(self, o): # real signature unknown; restored from __doc__
        """
        SafeDownCast(o:vtkObjectBase) -> vtkCylinder
        C++: static vtkCylinder *SafeDownCast(vtkObjectBase *o)
        """
        return vtkCylinder

    def SetAxis(self, ax, ay, az): # real signature unknown; restored from __doc__
        """
        SetAxis(self, ax:float, ay:float, az:float) -> None
        C++: void SetAxis(double ax, double ay, double az)
        SetAxis(self, a:[float, float, float]) -> None
        C++: void SetAxis(double a[3])
        
        Set/Get the axis of the cylinder. If the axis is not specified as
        a unit vector, it will be normalized. If zero-length axis vector
        is used as input to this method, it will be ignored.
        """
        pass

    def SetCenter(self, _arg1, _arg2, _arg3): # real signature unknown; restored from __doc__
        """
        SetCenter(self, _arg1:float, _arg2:float, _arg3:float) -> None
        C++: virtual void SetCenter(double _arg1, double _arg2,
            double _arg3)
        SetCenter(self, _arg:(float, float, float)) -> None
        C++: virtual void SetCenter(const double _arg[3])
        
        Set/Get the cylinder center.
        """
        pass

    def SetRadius(self, _arg): # real signature unknown; restored from __doc__
        """
        SetRadius(self, _arg:float) -> None
        C++: virtual void SetRadius(double _arg)
        
        Set/Get the cylinder radius.
        """
        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__\': \'vtkCylinder\', \'IsTypeOf\': <method \'IsTypeOf\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'IsA\': <method \'IsA\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'SafeDownCast\': <method \'SafeDownCast\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'NewInstance\': <method \'NewInstance\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'GetNumberOfGenerationsFromBaseType\': <method \'GetNumberOfGenerationsFromBaseType\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'GetNumberOfGenerationsFromBase\': <method \'GetNumberOfGenerationsFromBase\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'EvaluateFunction\': <method \'EvaluateFunction\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'EvaluateGradient\': <method \'EvaluateGradient\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'SetRadius\': <method \'SetRadius\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'GetRadius\': <method \'GetRadius\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'SetCenter\': <method \'SetCenter\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'GetCenter\': <method \'GetCenter\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'SetAxis\': <method \'SetAxis\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'GetAxis\': <method \'GetAxis\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__new__\': <built-in method __new__ of type object at 0x00007FF81D618D00>, \'__repr__\': <slot wrapper \'__repr__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__str__\': <slot wrapper \'__str__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__getattribute__\': <slot wrapper \'__getattribute__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__setattr__\': <slot wrapper \'__setattr__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__delattr__\': <slot wrapper \'__delattr__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__dict__\': <attribute \'__dict__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__this__\': <attribute \'__this__\' of \'vtkmodules.vtkCommonDataModel.vtkCylinder\' objects>, \'__doc__\': "vtkCylinder - implicit function for a cylinder\\n\\nSuperclass: vtkImplicitFunction\\n\\nvtkCylinder computes the implicit function and function gradient for\\na cylinder using F(r)=r^2-Radius^2. vtkCylinder is a concrete\\nimplementation of vtkImplicitFunction. By default the Cylinder is\\ncentered at the origin and the axis of rotation is along the y-axis.\\nYou can redefine the center and axis of rotation by setting the\\nCenter and Axis data members. (Note that it is also possible to use\\nthe superclass\' vtkImplicitFunction transformation matrix if\\nnecessary to reposition by using FunctionValue() and\\nFunctionGradient().)\\n\\n@warning\\nThe cylinder is infinite in extent. To truncate the cylinder in\\nmodeling operations use the vtkImplicitBoolean in combination with\\nclipping planes.\\n\\n@sa\\nvtkCylinderSource\\n\\n"})'
    __vtkname__ = 'vtkCylinder'


