main.cpp 3.5 KB

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  1. #include <igl/avg_edge_length.h>
  2. #include <igl/barycenter.h>
  3. #include <igl/jet.h>
  4. #include <igl/planarize_quad_mesh.h>
  5. #include <igl/quad_planarity.h>
  6. #include <igl/readDMAT.h>
  7. #include <igl/readOFF.h>
  8. #include <igl/slice.h>
  9. #include <igl/viewer/Viewer.h>
  10. #include <vector>
  11. #include <cstdlib>
  12. #include "tutorial_shared_path.h"
  13. // Quad mesh generated from conjugate field
  14. Eigen::MatrixXd VQC;
  15. Eigen::MatrixXi FQC;
  16. Eigen::MatrixXi FQCtri;
  17. Eigen::MatrixXd PQC0, PQC1, PQC2, PQC3;
  18. // Planarized quad mesh
  19. Eigen::MatrixXd VQCplan;
  20. Eigen::MatrixXi FQCtriplan;
  21. Eigen::MatrixXd PQC0plan, PQC1plan, PQC2plan, PQC3plan;
  22. // Scale for visualizing the fields
  23. double global_scale; //TODO: not used
  24. bool key_down(igl::viewer::Viewer& viewer, unsigned char key, int modifier)
  25. {
  26. using namespace std;
  27. using namespace Eigen;
  28. // Plot the original quad mesh
  29. if (key == '1')
  30. {
  31. // Draw the triangulated quad mesh
  32. viewer.data.set_mesh(VQC, FQCtri);
  33. // Assign a color to each quad that corresponds to its planarity
  34. VectorXd planarity;
  35. igl::quad_planarity( VQC, FQC, planarity);
  36. MatrixXd Ct;
  37. igl::jet(planarity, 0, 0.01, Ct);
  38. MatrixXd C(FQCtri.rows(),3);
  39. C << Ct, Ct;
  40. viewer.data.set_colors(C);
  41. // Plot a line for each edge of the quad mesh
  42. viewer.data.add_edges(PQC0, PQC1, Eigen::RowVector3d(0,0,0));
  43. viewer.data.add_edges(PQC1, PQC2, Eigen::RowVector3d(0,0,0));
  44. viewer.data.add_edges(PQC2, PQC3, Eigen::RowVector3d(0,0,0));
  45. viewer.data.add_edges(PQC3, PQC0, Eigen::RowVector3d(0,0,0));
  46. }
  47. // Plot the planarized quad mesh
  48. if (key == '2')
  49. {
  50. // Draw the triangulated quad mesh
  51. viewer.data.set_mesh(VQCplan, FQCtri);
  52. // Assign a color to each quad that corresponds to its planarity
  53. VectorXd planarity;
  54. igl::quad_planarity( VQCplan, FQC, planarity);
  55. MatrixXd Ct;
  56. igl::jet(planarity, 0, 0.01, Ct);
  57. MatrixXd C(FQCtri.rows(),3);
  58. C << Ct, Ct;
  59. viewer.data.set_colors(C);
  60. // Plot a line for each edge of the quad mesh
  61. viewer.data.add_edges(PQC0plan, PQC1plan, Eigen::RowVector3d(0,0,0));
  62. viewer.data.add_edges(PQC1plan, PQC2plan, Eigen::RowVector3d(0,0,0));
  63. viewer.data.add_edges(PQC2plan, PQC3plan, Eigen::RowVector3d(0,0,0));
  64. viewer.data.add_edges(PQC3plan, PQC0plan, Eigen::RowVector3d(0,0,0));
  65. }
  66. return false;
  67. }
  68. int main(int argc, char *argv[])
  69. {
  70. using namespace Eigen;
  71. using namespace std;
  72. // Load a quad mesh generated by a conjugate field
  73. igl::readOFF(TUTORIAL_SHARED_PATH "/inspired_mesh_quads_Conjugate.off", VQC, FQC);
  74. // Convert it in a triangle mesh
  75. FQCtri.resize(2*FQC.rows(), 3);
  76. FQCtri << FQC.col(0),FQC.col(1),FQC.col(2),
  77. FQC.col(2),FQC.col(3),FQC.col(0);
  78. igl::slice( VQC, FQC.col(0).eval(), 1, PQC0);
  79. igl::slice( VQC, FQC.col(1).eval(), 1, PQC1);
  80. igl::slice( VQC, FQC.col(2).eval(), 1, PQC2);
  81. igl::slice( VQC, FQC.col(3).eval(), 1, PQC3);
  82. // Planarize it
  83. igl::planarize_quad_mesh(VQC, FQC, 100, 0.005, VQCplan);
  84. // Convert the planarized mesh to triangles
  85. igl::slice( VQCplan, FQC.col(0).eval(), 1, PQC0plan);
  86. igl::slice( VQCplan, FQC.col(1).eval(), 1, PQC1plan);
  87. igl::slice( VQCplan, FQC.col(2).eval(), 1, PQC2plan);
  88. igl::slice( VQCplan, FQC.col(3).eval(), 1, PQC3plan);
  89. // Launch the viewer
  90. igl::viewer::Viewer viewer;
  91. key_down(viewer,'2',0);
  92. viewer.core.invert_normals = true;
  93. viewer.core.show_lines = false;
  94. viewer.callback_key_down = &key_down;
  95. viewer.launch();
  96. }