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161 lines
5.8 KiB
C
161 lines
5.8 KiB
C
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3 weeks ago
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/*=========================================================================
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Program: Visualization Toolkit
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Module: vtkBiQuadraticTriangle.h
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Copyright (c) Ken Martin, Will Schroeder, Bill Lorensen
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All rights reserved.
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See Copyright.txt or http://www.kitware.com/Copyright.htm for details.
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This software is distributed WITHOUT ANY WARRANTY; without even
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the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
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PURPOSE. See the above copyright notice for more information.
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=========================================================================*/
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/**
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* @class vtkBiQuadraticTriangle
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* @brief cell represents a parabolic, isoparametric triangle
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*
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* vtkBiQuadraticTriangle is a concrete implementation of vtkNonLinearCell to
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* represent a two-dimensional, 7-node, isoparametric parabolic triangle. The
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* interpolation is the standard finite element, bi-quadratic isoparametric
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* shape function. The cell includes three mid-edge nodes besides the three
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* triangle vertices and a center node. The ordering of the three points defining the cell is
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* point ids (0-2,3-6) where id #3 is the midedge node between points
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* (0,1); id #4 is the midedge node between points (1,2); and id #5 is the
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* midedge node between points (2,0). id #6 is the center node of the cell.
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*
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* @sa
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* vtkTriangle vtkQuadraticTriangle
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* vtkBiQuadraticQuad vtkBiQuadraticQuadraticWedge vtkBiQuadraticQuadraticHexahedron
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* @par Thanks:
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* <verbatim>
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* This file has been developed by Oxalya - www.oxalya.com
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* Copyright (c) EDF - www.edf.fr
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* </verbatim>
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*/
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#ifndef vtkBiQuadraticTriangle_h
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#define vtkBiQuadraticTriangle_h
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#include "vtkCommonDataModelModule.h" // For export macro
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#include "vtkNonLinearCell.h"
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class vtkQuadraticEdge;
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class vtkTriangle;
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class vtkDoubleArray;
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class VTKCOMMONDATAMODEL_EXPORT vtkBiQuadraticTriangle : public vtkNonLinearCell
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{
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public:
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static vtkBiQuadraticTriangle *New();
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vtkTypeMacro(vtkBiQuadraticTriangle,vtkNonLinearCell);
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void PrintSelf(ostream& os, vtkIndent indent) VTK_OVERRIDE;
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//@{
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/**
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* Implement the vtkCell API. See the vtkCell API for descriptions
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* of these methods.
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*/
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int GetCellType() VTK_OVERRIDE {return VTK_BIQUADRATIC_TRIANGLE;};
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int GetCellDimension() VTK_OVERRIDE {return 2;}
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int GetNumberOfEdges() VTK_OVERRIDE {return 3;}
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int GetNumberOfFaces() VTK_OVERRIDE {return 0;}
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vtkCell *GetEdge(int edgeId) VTK_OVERRIDE;
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vtkCell *GetFace(int) VTK_OVERRIDE {return 0;}
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//@}
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int CellBoundary(int subId, double pcoords[3], vtkIdList *pts) VTK_OVERRIDE;
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void Contour(double value, vtkDataArray *cellScalars,
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vtkIncrementalPointLocator *locator, vtkCellArray *verts,
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vtkCellArray *lines, vtkCellArray *polys,
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vtkPointData *inPd, vtkPointData *outPd,
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vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd) VTK_OVERRIDE;
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int EvaluatePosition(double x[3], double* closestPoint,
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int& subId, double pcoords[3],
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double& dist2, double *weights) VTK_OVERRIDE;
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void EvaluateLocation(int& subId, double pcoords[3], double x[3],
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double *weights) VTK_OVERRIDE;
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int Triangulate(int index, vtkIdList *ptIds, vtkPoints *pts) VTK_OVERRIDE;
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void Derivatives(int subId, double pcoords[3], double *values,
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int dim, double *derivs) VTK_OVERRIDE;
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double *GetParametricCoords() VTK_OVERRIDE;
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/**
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* Clip this quadratic triangle using scalar value provided. Like
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* contouring, except that it cuts the triangle to produce linear
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* triangles.
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*/
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void Clip(double value, vtkDataArray *cellScalars,
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vtkIncrementalPointLocator *locator, vtkCellArray *polys,
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vtkPointData *inPd, vtkPointData *outPd,
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vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd,
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int insideOut) VTK_OVERRIDE;
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/**
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* Line-edge intersection. Intersection has to occur within [0,1] parametric
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* coordinates and with specified tolerance.
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*/
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int IntersectWithLine(double p1[3], double p2[3], double tol, double& t,
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double x[3], double pcoords[3], int& subId) VTK_OVERRIDE;
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/**
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* Return the center of the quadratic triangle in parametric coordinates.
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*/
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int GetParametricCenter(double pcoords[3]) VTK_OVERRIDE;
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/**
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* Return the distance of the parametric coordinate provided to the
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* cell. If inside the cell, a distance of zero is returned.
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*/
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double GetParametricDistance(double pcoords[3]) VTK_OVERRIDE;
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/**
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* @deprecated Replaced by vtkBiQuadraticTriangle::InterpolateFunctions as of VTK 5.2
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*/
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static void InterpolationFunctions(double pcoords[3], double weights[7]);
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/**
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* @deprecated Replaced by vtkBiQuadraticTriangle::InterpolateDerivs as of VTK 5.2
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*/
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static void InterpolationDerivs(double pcoords[3], double derivs[14]);
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//@{
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/**
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* Compute the interpolation functions/derivatives
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* (aka shape functions/derivatives)
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*/
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void InterpolateFunctions(double pcoords[3], double weights[7]) VTK_OVERRIDE
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{
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vtkBiQuadraticTriangle::InterpolationFunctions(pcoords,weights);
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}
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void InterpolateDerivs(double pcoords[3], double derivs[14]) VTK_OVERRIDE
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{
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vtkBiQuadraticTriangle::InterpolationDerivs(pcoords,derivs);
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}
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//@}
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protected:
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vtkBiQuadraticTriangle();
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~vtkBiQuadraticTriangle() VTK_OVERRIDE;
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vtkQuadraticEdge *Edge;
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vtkTriangle *Face;
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vtkDoubleArray *Scalars; //used to avoid New/Delete in contouring/clipping
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private:
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vtkBiQuadraticTriangle(const vtkBiQuadraticTriangle&) VTK_DELETE_FUNCTION;
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void operator=(const vtkBiQuadraticTriangle&) VTK_DELETE_FUNCTION;
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};
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//----------------------------------------------------------------------------
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inline int vtkBiQuadraticTriangle::GetParametricCenter(double pcoords[3])
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{
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pcoords[0] = pcoords[1] = 1./3;
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pcoords[2] = 0.0;
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return 0;
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}
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#endif
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