VTK  9.2.6
vtkTriangle.h
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1/*=========================================================================
2
3 Program: Visualization Toolkit
4 Module: vtkTriangle.h
5
6 Copyright (c) Ken Martin, Will Schroeder, Bill Lorensen
7 All rights reserved.
8 See Copyright.txt or http://www.kitware.com/Copyright.htm for details.
9
10 This software is distributed WITHOUT ANY WARRANTY; without even
11 the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
12 PURPOSE. See the above copyright notice for more information.
13
14=========================================================================*/
35#ifndef vtkTriangle_h
36#define vtkTriangle_h
37
38#include "vtkCell.h"
39#include "vtkCommonDataModelModule.h" // For export macro
40
41#include "vtkMath.h" // Needed for inline methods
42
43class vtkLine;
44class vtkQuadric;
46
47class VTKCOMMONDATAMODEL_EXPORT vtkTriangle : public vtkCell
48{
49public:
50 static vtkTriangle* New();
51 vtkTypeMacro(vtkTriangle, vtkCell);
52 void PrintSelf(ostream& os, vtkIndent indent) override;
53
58 vtkCell* GetEdge(int edgeId) override;
59
61
64 int GetCellType() override { return VTK_TRIANGLE; }
65 int GetCellDimension() override { return 2; }
66 int GetNumberOfEdges() override { return 3; }
67 int GetNumberOfFaces() override { return 0; }
68 vtkCell* GetFace(int) override { return nullptr; }
69 int CellBoundary(int subId, const double pcoords[3], vtkIdList* pts) override;
70 void Contour(double value, vtkDataArray* cellScalars, vtkIncrementalPointLocator* locator,
71 vtkCellArray* verts, vtkCellArray* lines, vtkCellArray* polys, vtkPointData* inPd,
72 vtkPointData* outPd, vtkCellData* inCd, vtkIdType cellId, vtkCellData* outCd) override;
73 int EvaluatePosition(const double x[3], double closestPoint[3], int& subId, double pcoords[3],
74 double& dist2, double weights[]) override;
75 void EvaluateLocation(int& subId, const double pcoords[3], double x[3], double* weights) override;
76 int Triangulate(int index, vtkIdList* ptIds, vtkPoints* pts) override;
78 int subId, const double pcoords[3], const double* values, int dim, double* derivs) override;
79 double* GetParametricCoords() override;
81
85 double ComputeArea();
86
91 void Clip(double value, vtkDataArray* cellScalars, vtkIncrementalPointLocator* locator,
92 vtkCellArray* polys, vtkPointData* inPd, vtkPointData* outPd, vtkCellData* inCd,
93 vtkIdType cellId, vtkCellData* outCd, int insideOut) override;
94
95 static void InterpolationFunctions(const double pcoords[3], double sf[3]);
96 static void InterpolationDerivs(const double pcoords[3], double derivs[6]);
98
102 void InterpolateFunctions(const double pcoords[3], double sf[3]) override
103 {
105 }
106 void InterpolateDerivs(const double pcoords[3], double derivs[6]) override
107 {
108 vtkTriangle::InterpolationDerivs(pcoords, derivs);
109 }
111
120
127 int IntersectWithLine(const double p1[3], const double p2[3], double tol, double& t, double x[3],
128 double pcoords[3], int& subId) override;
129
133 int GetParametricCenter(double pcoords[3]) override;
134
139 double GetParametricDistance(const double pcoords[3]) override;
140
144 static void TriangleCenter(
145 const double p1[3], const double p2[3], const double p3[3], double center[3]);
146
151 static double TriangleArea(const double p1[3], const double p2[3], const double p3[3]);
152
159 static double Circumcircle(
160 const double p1[2], const double p2[2], const double p3[2], double center[2]);
161
174 static int BarycentricCoords(const double x[2], const double x1[2], const double x2[2],
175 const double x3[2], double bcoords[3]);
176
182 static int ProjectTo2D(const double x1[3], const double x2[3], const double x3[3], double v1[2],
183 double v2[2], double v3[2]);
184
189 static void ComputeNormal(vtkPoints* p, int numPts, const vtkIdType* pts, double n[3]);
190
194 static void ComputeNormal(
195 const double v1[3], const double v2[3], const double v3[3], double n[3]);
196
200 static void ComputeNormalDirection(
201 const double v1[3], const double v2[3], const double v3[3], double n[3]);
202
203 // Description:
204 // Determine whether or not triangle (p1,q1,r1) intersects triangle
205 // (p2,q2,r2). This method is adapted from Olivier Devillers, Philippe Guigue.
206 // Faster Triangle-Triangle Intersection Tests. RR-4488, IN-RIA. 2002.
207 // <inria-00072100>.
208 static int TrianglesIntersect(const double p1[3], const double q1[3], const double r1[3],
209 const double p2[3], const double q2[3], const double r2[3]);
210
211 // Description:
212 // Given a point x, determine whether it is inside (within the
213 // tolerance squared, tol2) the triangle defined by the three
214 // coordinate values p1, p2, p3. Method is via comparing dot products.
215 // (Note: in current implementation the tolerance only works in the
216 // neighborhood of the three vertices of the triangle.
217 static int PointInTriangle(const double x[3], const double x1[3], const double x2[3],
218 const double x3[3], const double tol2);
219
221
227 static void ComputeQuadric(
228 const double x1[3], const double x2[3], const double x3[3], double quadric[4][4]);
229 static void ComputeQuadric(
230 const double x1[3], const double x2[3], const double x3[3], vtkQuadric* quadric);
232
237 static bool ComputeCentroid(vtkPoints* points, const vtkIdType* pointIds, double centroid[3]);
238
239protected:
241 ~vtkTriangle() override;
242
244
245private:
246 vtkTriangle(const vtkTriangle&) = delete;
247 void operator=(const vtkTriangle&) = delete;
248};
249
250//----------------------------------------------------------------------------
251inline int vtkTriangle::GetParametricCenter(double pcoords[3])
252{
253 pcoords[0] = pcoords[1] = 1. / 3;
254 pcoords[2] = 0.0;
255 return 0;
256}
257
258//----------------------------------------------------------------------------
260 const double v1[3], const double v2[3], const double v3[3], double n[3])
261{
262 double ax, ay, az, bx, by, bz;
263
264 // order is important!!! maintain consistency with triangle vertex order
265 ax = v3[0] - v2[0];
266 ay = v3[1] - v2[1];
267 az = v3[2] - v2[2];
268 bx = v1[0] - v2[0];
269 by = v1[1] - v2[1];
270 bz = v1[2] - v2[2];
271
272 n[0] = (ay * bz - az * by);
273 n[1] = (az * bx - ax * bz);
274 n[2] = (ax * by - ay * bx);
275}
276
277//----------------------------------------------------------------------------
279 const double v1[3], const double v2[3], const double v3[3], double n[3])
280{
281 double length;
282
284
285 if ((length = sqrt((n[0] * n[0] + n[1] * n[1] + n[2] * n[2]))) != 0.0)
286 {
287 n[0] /= length;
288 n[1] /= length;
289 n[2] /= length;
290 }
291}
292
293//----------------------------------------------------------------------------
295 const double p1[3], const double p2[3], const double p3[3], double center[3])
296{
297 center[0] = (p1[0] + p2[0] + p3[0]) / 3.0;
298 center[1] = (p1[1] + p2[1] + p3[1]) / 3.0;
299 center[2] = (p1[2] + p2[2] + p3[2]) / 3.0;
300}
301
302//----------------------------------------------------------------------------
303inline double vtkTriangle::TriangleArea(const double p1[3], const double p2[3], const double p3[3])
304{
305 double n[3];
307
308 return 0.5 * vtkMath::Norm(n);
309}
310
311#endif
object to represent cell connectivity
represent and manipulate cell attribute data
Definition vtkCellData.h:51
abstract class to specify cell behavior
Definition vtkCell.h:70
virtual int GetParametricCenter(double pcoords[3])
Return center of the cell in parametric coordinates.
abstract superclass for arrays of numeric data
list of point or cell ids
Definition vtkIdList.h:43
Abstract class in support of both point location and point insertion.
a simple class to control print indentation
Definition vtkIndent.h:49
cell represents a 1D line
Definition vtkLine.h:43
static float Norm(const float *x, int n)
Compute the norm of n-vector.
represent and manipulate point attribute data
represent and manipulate 3D points
Definition vtkPoints.h:49
evaluate implicit quadric function
Definition vtkQuadric.h:43
a cell that represents a triangle
Definition vtkTriangle.h:48
static int PointInTriangle(const double x[3], const double x1[3], const double x2[3], const double x3[3], const double tol2)
static void ComputeNormalDirection(const double v1[3], const double v2[3], const double v3[3], double n[3])
Compute the (unnormalized) triangle normal direction from three points.
void EvaluateLocation(int &subId, const double pcoords[3], double x[3], double *weights) override
See the vtkCell API for descriptions of these methods.
static int TrianglesIntersect(const double p1[3], const double q1[3], const double r1[3], const double p2[3], const double q2[3], const double r2[3])
static void ComputeQuadric(const double x1[3], const double x2[3], const double x3[3], vtkQuadric *quadric)
Calculate the error quadric for this triangle.
static void ComputeNormal(vtkPoints *p, int numPts, const vtkIdType *pts, double n[3])
Compute the triangle normal from a points list, and a list of point ids that index into the points li...
static vtkTriangle * New()
int EvaluatePosition(const double x[3], double closestPoint[3], int &subId, double pcoords[3], double &dist2, double weights[]) override
See the vtkCell API for descriptions of these methods.
int GetParametricCenter(double pcoords[3]) override
Return the center of the triangle in parametric coordinates.
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
See the vtkCell API for descriptions of these methods.
int GetNumberOfFaces() override
See the vtkCell API for descriptions of these methods.
Definition vtkTriangle.h:67
void Clip(double value, vtkDataArray *cellScalars, vtkIncrementalPointLocator *locator, vtkCellArray *polys, vtkPointData *inPd, vtkPointData *outPd, vtkCellData *inCd, vtkIdType cellId, vtkCellData *outCd, int insideOut) override
Clip this triangle using scalar value provided.
int CellBoundary(int subId, const double pcoords[3], vtkIdList *pts) override
See the vtkCell API for descriptions of these methods.
vtkLine * Line
void InterpolateFunctions(const double pcoords[3], double sf[3]) override
Compute the interpolation functions/derivatives (aka shape functions/derivatives)
static double TriangleArea(const double p1[3], const double p2[3], const double p3[3])
Compute the area of a triangle in 3D.
static int ProjectTo2D(const double x1[3], const double x2[3], const double x3[3], double v1[2], double v2[2], double v3[2])
Project triangle defined in 3D to 2D coordinates.
static bool ComputeCentroid(vtkPoints *points, const vtkIdType *pointIds, double centroid[3])
Get the centroid of the triangle.
double GetParametricDistance(const double pcoords[3]) override
Return the distance of the parametric coordinate provided to the cell.
~vtkTriangle() override
int IntersectWithLine(const double p1[3], const double p2[3], double tol, double &t, double x[3], double pcoords[3], int &subId) override
Given a line defined by two points p1 and p2, determine whether it intersects the triangle.
int Triangulate(int index, vtkIdList *ptIds, vtkPoints *pts) override
See the vtkCell API for descriptions of these methods.
void InterpolateDerivs(const double pcoords[3], double derivs[6]) override
Compute the interpolation functions/derivatives (aka shape functions/derivatives)
void PrintSelf(ostream &os, vtkIndent indent) override
Methods invoked by print to print information about the object including superclasses.
double * GetParametricCoords() override
See the vtkCell API for descriptions of these methods.
static double Circumcircle(const double p1[2], const double p2[2], const double p3[2], double center[2])
Compute the circumcenter (center[3]) and radius squared (method return value) of a triangle defined b...
static void InterpolationDerivs(const double pcoords[3], double derivs[6])
static void ComputeQuadric(const double x1[3], const double x2[3], const double x3[3], double quadric[4][4])
Calculate the error quadric for this triangle.
int GetCellDimension() override
See the vtkCell API for descriptions of these methods.
Definition vtkTriangle.h:65
double ComputeArea()
A convenience function to compute the area of a vtkTriangle.
static void TriangleCenter(const double p1[3], const double p2[3], const double p3[3], double center[3])
Compute the center of the triangle.
const vtkIdType * GetEdgeArray(vtkIdType edgeId)
Return the ids of the vertices defining edge (edgeId).
static int BarycentricCoords(const double x[2], const double x1[2], const double x2[2], const double x3[2], double bcoords[3])
Given a 2D point x[2], determine the barycentric coordinates of the point.
int GetNumberOfEdges() override
See the vtkCell API for descriptions of these methods.
Definition vtkTriangle.h:66
void Derivatives(int subId, const double pcoords[3], const double *values, int dim, double *derivs) override
See the vtkCell API for descriptions of these methods.
vtkCell * GetFace(int) override
See the vtkCell API for descriptions of these methods.
Definition vtkTriangle.h:68
vtkCell * GetEdge(int edgeId) override
Get the edge specified by edgeId (range 0 to 2) and return that edge's coordinates.
static void InterpolationFunctions(const double pcoords[3], double sf[3])
int GetCellType() override
See the vtkCell API for descriptions of these methods.
Definition vtkTriangle.h:64
@ VTK_TRIANGLE
Definition vtkCellType.h:51
int vtkIdType
Definition vtkType.h:332