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nmWTAI-Platform/3rd/VTK7.1/include/vtkVertex.h

153 lines
5.1 KiB
C

/*=========================================================================
Program: Visualization Toolkit
Module: vtkVertex.h
Copyright (c) Ken Martin, Will Schroeder, Bill Lorensen
All rights reserved.
See Copyright.txt or http://www.kitware.com/Copyright.htm for details.
This software is distributed WITHOUT ANY WARRANTY; without even
the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
PURPOSE. See the above copyright notice for more information.
=========================================================================*/
/**
* @class vtkVertex
* @brief a cell that represents a 3D point
*
* vtkVertex is a concrete implementation of vtkCell to represent a 3D point.
*/
#ifndef vtkVertex_h
#define vtkVertex_h
#include "vtkCommonDataModelModule.h" // For export macro
#include "vtkCell.h"
class vtkIncrementalPointLocator;
class VTKCOMMONDATAMODEL_EXPORT vtkVertex : public vtkCell
{
public:
static vtkVertex *New();
vtkTypeMacro(vtkVertex,vtkCell);
void PrintSelf(ostream& os, vtkIndent indent) VTK_OVERRIDE;
/**
* Make a new vtkVertex object with the same information as this object.
*/
//@{
/**
* See the vtkCell API for descriptions of these methods.
*/
int GetCellType() VTK_OVERRIDE {return VTK_VERTEX;};
int GetCellDimension() VTK_OVERRIDE {return 0;};
int GetNumberOfEdges() VTK_OVERRIDE {return 0;};
int GetNumberOfFaces() VTK_OVERRIDE {return 0;};
vtkCell *GetEdge(int) VTK_OVERRIDE {return 0;};
vtkCell *GetFace(int) VTK_OVERRIDE {return 0;};
void Clip(double value, vtkDataArray *cellScalars,
vtkIncrementalPointLocator *locator, vtkCellArray *pts,
vtkPointData *inPd, vtkPointData *outPd,
vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd,
int insideOut) VTK_OVERRIDE;
int EvaluatePosition(double x[3], double* closestPoint,
int& subId, double pcoords[3],
double& dist2, double *weights) VTK_OVERRIDE;
void EvaluateLocation(int& subId, double pcoords[3], double x[3],
double *weights) VTK_OVERRIDE;
double *GetParametricCoords() VTK_OVERRIDE;
//@}
/**
* Given parametric coordinates of a point, return the closest cell
* boundary, and whether the point is inside or outside of the cell. The
* cell boundary is defined by a list of points (pts) that specify a vertex
* (1D cell). If the return value of the method is != 0, then the point is
* inside the cell.
*/
int CellBoundary(int subId, double pcoords[3], vtkIdList *pts) VTK_OVERRIDE;
/**
* Generate contouring primitives. The scalar list cellScalars are
* scalar values at each cell point. The point locator is essentially a
* points list that merges points as they are inserted (i.e., prevents
* duplicates).
*/
void Contour(double value, vtkDataArray *cellScalars,
vtkIncrementalPointLocator *locator, vtkCellArray *verts1,
vtkCellArray *lines, vtkCellArray *verts2,
vtkPointData *inPd, vtkPointData *outPd,
vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd) VTK_OVERRIDE;
/**
* Return the center of the triangle in parametric coordinates.
*/
int GetParametricCenter(double pcoords[3]) VTK_OVERRIDE;
/**
* Intersect with a ray. Return parametric coordinates (both line and cell)
* and global intersection coordinates, given ray definition and tolerance.
* The method returns non-zero value if intersection occurs.
*/
int IntersectWithLine(double p1[3], double p2[3], double tol, double& t,
double x[3], double pcoords[3], int& subId) VTK_OVERRIDE;
/**
* Triangulate the vertex. This method fills pts and ptIds with information
* from the only point in the vertex.
*/
int Triangulate(int index, vtkIdList *ptIds, vtkPoints *pts) VTK_OVERRIDE;
/**
* Get the derivative of the vertex. Returns (0.0, 0.0, 0.0) for all
* dimensions.
*/
void Derivatives(int subId, double pcoords[3], double *values,
int dim, double *derivs) VTK_OVERRIDE;
/**
* @deprecated Replaced by vtkVertex::InterpolateFunctions as of VTK 5.2
*/
static void InterpolationFunctions(double pcoords[3], double weights[1]);
/**
* @deprecated Replaced by vtkVertex::InterpolateDerivs as of VTK 5.2
*/
static void InterpolationDerivs(double pcoords[3], double derivs[3]);
//@{
/**
* Compute the interpolation functions/derivatives
* (aka shape functions/derivatives)
*/
void InterpolateFunctions(double pcoords[3], double weights[1]) VTK_OVERRIDE
{
vtkVertex::InterpolationFunctions(pcoords,weights);
}
void InterpolateDerivs(double pcoords[3], double derivs[3]) VTK_OVERRIDE
{
vtkVertex::InterpolationDerivs(pcoords,derivs);
}
//@}
protected:
vtkVertex();
~vtkVertex() VTK_OVERRIDE {}
private:
vtkVertex(const vtkVertex&) VTK_DELETE_FUNCTION;
void operator=(const vtkVertex&) VTK_DELETE_FUNCTION;
};
//----------------------------------------------------------------------------
inline int vtkVertex::GetParametricCenter(double pcoords[3])
{
pcoords[0] = pcoords[1] = pcoords[2] = 0.0;
return 0;
}
#endif