36 #ifndef vtkQuadraticHexahedron_h 
   37 #define vtkQuadraticHexahedron_h 
   72                        int& subId, 
double pcoords[3],
 
   73                        double& dist2, 
double *weights);
 
   77   void Derivatives(
int subId, 
double pcoords[3], 
double *values,
 
   78                    int dim, 
double *derivs);
 
   96                         double x[3], 
double pcoords[3], 
int& subId);
 
  102   static void InterpolationFunctions(
double pcoords[3], 
double weights[20]);
 
  105   static void InterpolationDerivs(
double pcoords[3], 
double derivs[60]);
 
  121   static int *GetEdgeArray(
int edgeId);
 
  122   static int *GetFaceArray(
int faceId);
 
  128   void JacobianInverse(
double pcoords[3], 
double **inverse, 
double derivs[60]);
 
represent and manipulate point attribute data 
virtual double * GetParametricCoords()
represent and manipulate cell attribute data 
Abstract class in support of both point location and point insertion. 
virtual void InterpolateDerivs(double pcoords[3], double derivs[60])
virtual int Triangulate(int index, vtkIdList *ptIds, vtkPoints *pts)=0
virtual void InterpolateFunctions(double pcoords[3], double weights[20])
virtual void EvaluateLocation(int &subId, double pcoords[3], double x[3], double *weights)=0
virtual int EvaluatePosition(double x[3], double *closestPoint, int &subId, double pcoords[3], double &dist2, double *weights)=0
abstract superclass for non-linear cells 
dynamic, self-adjusting array of double 
abstract class to specify cell behavior 
static void InterpolationDerivs(double pcoords[3], double derivs[60])
cell represents a parabolic, 8-node isoparametric quad 
a simple class to control print indentation 
list of point or cell ids 
virtual void Derivatives(int subId, double pcoords[3], double *values, int dim, double *derivs)=0
abstract superclass for arrays of numeric data 
virtual int IntersectWithLine(double p1[3], double p2[3], double tol, double &t, double x[3], double pcoords[3], int &subId)=0
a cell that represents a linear 3D hexahedron 
virtual void Clip(double value, vtkDataArray *cellScalars, vtkIncrementalPointLocator *locator, vtkCellArray *connectivity, vtkPointData *inPd, vtkPointData *outPd, vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd, int insideOut)=0
void PrintSelf(ostream &os, vtkIndent indent)
virtual vtkCell * GetFace(int faceId)=0
object to represent cell connectivity 
virtual vtkCell * GetEdge(int edgeId)=0
cell represents a parabolic, isoparametric edge 
cell represents a parabolic, 20-node isoparametric hexahedron 
virtual void Contour(double value, vtkDataArray *cellScalars, vtkIncrementalPointLocator *locator, vtkCellArray *verts, vtkCellArray *lines, vtkCellArray *polys, vtkPointData *inPd, vtkPointData *outPd, vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd)=0
static void InterpolationFunctions(double pcoords[3], double weights[20])
virtual int CellBoundary(int subId, double pcoords[3], vtkIdList *pts)=0
vtkDoubleArray * CellScalars
#define VTKCOMMONDATAMODEL_EXPORT
represent and manipulate 3D points