30#ifndef vtkQuadraticPyramid_h 
   31#define vtkQuadraticPyramid_h 
   33#include "vtkCommonDataModelModule.h"  
   36VTK_ABI_NAMESPACE_BEGIN
 
   68  int EvaluatePosition(
const double x[3], 
double closestPoint[3], 
int& subId, 
double pcoords[3],
 
   69    double& dist2, 
double weights[]) 
override;
 
   70  void EvaluateLocation(
int& subId, 
const double pcoords[3], 
double x[3], 
double* weights) 
override;
 
   73    int subId, 
const double pcoords[3], 
const double* values, 
int dim, 
double* derivs) 
override;
 
   89  int IntersectWithLine(
const double p1[3], 
const double p2[3], 
double tol, 
double& t, 
double x[3],
 
   90    double pcoords[3], 
int& subId) 
override;
 
  175  pcoords[0] = pcoords[1] = 6.0 / 13.0;
 
  176  pcoords[2] = 3.0 / 13.0;
 
object to represent cell connectivity
 
represent and manipulate cell attribute data
 
abstract class to specify cell behavior
 
virtual int GetParametricCenter(double pcoords[3])
Return center of the cell in parametric coordinates.
 
abstract superclass for arrays of numeric data
 
dynamic, self-adjusting array of double
 
list of point or cell ids
 
Abstract class in support of both point location and point insertion.
 
a simple class to control print indentation
 
abstract superclass for non-linear cells
 
represent and manipulate point attribute data
 
represent and manipulate 3D points
 
a 3D cell that represents a linear pyramid
 
cell represents a parabolic, isoparametric edge
 
cell represents a parabolic, 13-node isoparametric pyramid
 
int GetCellType() override
Implement the vtkCell API.
 
vtkCell * GetEdge(int edgeId) override
Implement the vtkCell API.
 
void ResizeArrays(vtkIdType newSize)
Resize the superclasses' member arrays to newSize where newSize should either be 13 or 14.
 
int GetParametricCenter(double pcoords[3]) override
Return the center of the quadratic pyramid in parametric coordinates.
 
void Clip(double value, vtkDataArray *cellScalars, vtkIncrementalPointLocator *locator, vtkCellArray *tets, vtkPointData *inPd, vtkPointData *outPd, vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd, int insideOut) override
Clip this quadratic triangle using scalar value provided.
 
int GetCellDimension() override
Implement the vtkCell API.
 
static const vtkIdType * GetEdgeArray(vtkIdType edgeId)
Return the ids of the vertices defining edge/face (edgeId/‘faceId’).
 
static const vtkIdType * GetFaceArray(vtkIdType faceId)
Return the ids of the vertices defining edge/face (edgeId/‘faceId’).
 
int Triangulate(int index, vtkIdList *ptIds, vtkPoints *pts) override
Generate simplices of proper dimension.
 
static vtkQuadraticPyramid * New()
 
vtkQuadraticTriangle * TriangleFace
 
void Contour(double value, vtkDataArray *cellScalars, vtkIncrementalPointLocator *locator, vtkCellArray *verts, vtkCellArray *lines, vtkCellArray *polys, vtkPointData *inPd, vtkPointData *outPd, vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd) override
Generate contouring primitives.
 
~vtkQuadraticPyramid() override
 
void Derivatives(int subId, const double pcoords[3], const double *values, int dim, double *derivs) override
Compute derivatives given cell subId and parametric coordinates.
 
static void InterpolationDerivs(const double pcoords[3], double derivs[39])
 
vtkCell * GetFace(int faceId) override
Implement the vtkCell API.
 
void InterpolateFunctions(const double pcoords[3], double weights[13]) override
Compute the interpolation functions/derivatives (aka shape functions/derivatives)
 
void JacobianInverse(const double pcoords[3], double **inverse, double derivs[39])
Given parametric coordinates compute inverse Jacobian transformation matrix.
 
int GetNumberOfFaces() override
Implement the vtkCell API.
 
int EvaluatePosition(const double x[3], double closestPoint[3], int &subId, double pcoords[3], double &dist2, double weights[]) override
Given a point x[3] return inside(=1), outside(=0) cell, or (-1) computational problem encountered; ev...
 
static void InterpolationFunctions(const double pcoords[3], double weights[13])
 
void EvaluateLocation(int &subId, const double pcoords[3], double x[3], double *weights) override
Determine global coordinate (x[3]) from subId and parametric coordinates.
 
double * GetParametricCoords() override
Return a contiguous array of parametric coordinates of the points defining this cell.
 
int CellBoundary(int subId, const double pcoords[3], vtkIdList *pts) override
Given parametric coordinates of a point, return the closest cell boundary, and whether the point is i...
 
void PrintSelf(ostream &os, vtkIndent indent) override
Methods invoked by print to print information about the object including superclasses.
 
void InterpolateDerivs(const double pcoords[3], double derivs[39]) override
Compute the interpolation functions/derivatives (aka shape functions/derivatives)
 
void Subdivide(vtkPointData *inPd, vtkCellData *inCd, vtkIdType cellId, vtkDataArray *cellScalars)
This method adds in a point at the center of the quadrilateral face and then interpolates values to t...
 
int IntersectWithLine(const double p1[3], const double p2[3], double tol, double &t, double x[3], double pcoords[3], int &subId) override
Line-edge intersection.
 
int GetNumberOfEdges() override
Implement the vtkCell API.
 
vtkDoubleArray * CellScalars
 
cell represents a parabolic, 8-node isoparametric quad
 
cell represents a parabolic, isoparametric triangle
 
a 3D cell that represents a tetrahedron