mesh_boolean_beta.cpp 14 KB

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  1. #include "mesh_boolean_beta.h"
  2. #include <igl/cgal/assign_scalar.h>
  3. #include <igl/cgal/propagate_winding_numbers.h>
  4. #include <igl/cgal/remesh_self_intersections.h>
  5. #include <igl/remove_unreferenced.h>
  6. #include <CGAL/Exact_predicates_exact_constructions_kernel.h>
  7. namespace igl {
  8. namespace boolean {
  9. namespace mesh_boolean_helper {
  10. typedef CGAL::Epeck Kernel;
  11. typedef Kernel::FT ExactScalar;
  12. template<
  13. typename DerivedV,
  14. typename DerivedF,
  15. typename DerivedVo,
  16. typename DerivedFo,
  17. typename DerivedJ>
  18. void igl_resolve(
  19. const Eigen::PlainObjectBase<DerivedV>& V,
  20. const Eigen::PlainObjectBase<DerivedF>& F,
  21. Eigen::PlainObjectBase<DerivedVo>& Vo,
  22. Eigen::PlainObjectBase<DerivedFo>& Fo,
  23. Eigen::PlainObjectBase<DerivedJ>& J) {
  24. Eigen::VectorXi I;
  25. igl::cgal::RemeshSelfIntersectionsParam params;
  26. DerivedVo Vr;
  27. DerivedFo Fr;
  28. Eigen::MatrixXi IF;
  29. igl::cgal::remesh_self_intersections(V, F, params, Vr, Fr, IF, J, I);
  30. assert(I.size() == Vr.rows());
  31. // Merge coinciding vertices into non-manifold vertices.
  32. std::for_each(Fr.data(), Fr.data()+Fr.size(),
  33. [&I](typename DerivedF::Scalar& a) { a=I[a]; });
  34. // Remove unreferenced vertices.
  35. Eigen::VectorXi UIM;
  36. igl::remove_unreferenced(Vr, Fr, Vo, Fo, UIM);
  37. }
  38. // Combine mesh A with mesh B and resolve all intersections.
  39. template<
  40. typename DerivedVA,
  41. typename DerivedVB,
  42. typename DerivedFA,
  43. typename DerivedFB,
  44. typename ResolveFunc,
  45. typename DerivedVC,
  46. typename DerivedFC,
  47. typename DerivedJ>
  48. void resolve_intersections(
  49. const Eigen::PlainObjectBase<DerivedVA>& VA,
  50. const Eigen::PlainObjectBase<DerivedFA>& FA,
  51. const Eigen::PlainObjectBase<DerivedVB>& VB,
  52. const Eigen::PlainObjectBase<DerivedFB>& FB,
  53. const ResolveFunc& resolve_func,
  54. Eigen::PlainObjectBase<DerivedVC>& VC,
  55. Eigen::PlainObjectBase<DerivedFC>& FC,
  56. Eigen::PlainObjectBase<DerivedJ>& J) {
  57. DerivedVA V(VA.rows()+VB.rows(),3);
  58. DerivedFA F(FA.rows()+FB.rows(),3);
  59. V << VA, VB;
  60. F << FA, FB.array() + VA.rows();
  61. resolve_func(V, F, VC, FC, J);
  62. }
  63. template<
  64. typename DerivedF1,
  65. typename DerivedJ1,
  66. typename DerivedF2,
  67. typename DerivedJ2 >
  68. void resolve_duplicated_faces(
  69. const Eigen::PlainObjectBase<DerivedF1>& F1,
  70. const Eigen::PlainObjectBase<DerivedJ1>& J1,
  71. Eigen::PlainObjectBase<DerivedF2>& F2,
  72. Eigen::PlainObjectBase<DerivedJ2>& J2) {
  73. typedef typename DerivedF1::Scalar Index;
  74. Eigen::VectorXi IA,IC;
  75. DerivedF1 uF;
  76. unique_simplices(F1,uF,IA,IC);
  77. const size_t num_faces = F1.rows();
  78. const size_t num_unique_faces = uF.rows();
  79. assert(IA.rows() == num_unique_faces);
  80. // faces ontop of each unique face
  81. std::vector<std::vector<int> > uF2F(num_unique_faces);
  82. // signed counts
  83. Eigen::VectorXi counts = Eigen::VectorXi::Zero(num_unique_faces);
  84. Eigen::VectorXi ucounts = Eigen::VectorXi::Zero(num_unique_faces);
  85. // loop over all faces
  86. for (size_t i=0; i<num_faces; i++) {
  87. const size_t ui = IC(i);
  88. const bool consistent =
  89. (F1(i,0) == uF(ui, 0) &&
  90. F1(i,1) == uF(ui, 1) &&
  91. F1(i,2) == uF(ui, 2)) ||
  92. (F1(i,0) == uF(ui, 1) &&
  93. F1(i,1) == uF(ui, 2) &&
  94. F1(i,2) == uF(ui, 0)) ||
  95. (F1(i,0) == uF(ui, 2) &&
  96. F1(i,1) == uF(ui, 0) &&
  97. F1(i,2) == uF(ui, 1));
  98. uF2F[ui].push_back(int(i+1) * (consistent?1:-1));
  99. counts(ui) += consistent ? 1:-1;
  100. ucounts(ui)++;
  101. }
  102. std::vector<size_t> kept_faces;
  103. for (size_t i=0; i<num_unique_faces; i++) {
  104. if (ucounts[i] == 1) {
  105. kept_faces.push_back(abs(uF2F[i][0])-1);
  106. continue;
  107. }
  108. if (counts[i] == 1) {
  109. for (auto fid : uF2F[i]) {
  110. if (fid > 0) {
  111. kept_faces.push_back(abs(fid)-1);
  112. break;
  113. }
  114. }
  115. } else if (counts[i] == -1) {
  116. for (auto fid : uF2F[i]) {
  117. if (fid < 0) {
  118. kept_faces.push_back(abs(fid)-1);
  119. break;
  120. }
  121. }
  122. } else {
  123. assert(counts[i] == 0);
  124. }
  125. }
  126. const size_t num_kept = kept_faces.size();
  127. F2.resize(num_kept, 3);
  128. J2.resize(num_kept, 1);
  129. for (size_t i=0; i<num_kept; i++) {
  130. F2.row(i) = F1.row(kept_faces[i]);
  131. J2.row(i) = J1.row(kept_faces[i]);
  132. }
  133. }
  134. typedef Eigen::Matrix<int, 1, Eigen::Dynamic> WindingNumbers;
  135. typedef std::function<int(const WindingNumbers&)> WindingNumberOperation;
  136. WindingNumberOperation binary_union() {
  137. return [](const WindingNumbers& win_nums) -> int{
  138. return win_nums[0] > 0 || win_nums[1] > 0;
  139. };
  140. }
  141. WindingNumberOperation binary_intersect() {
  142. return [](const WindingNumbers& win_nums) -> int{
  143. return win_nums[0] > 0 && win_nums[1] > 0;
  144. };
  145. }
  146. WindingNumberOperation binary_difference() {
  147. return [](const WindingNumbers& win_nums) -> int{
  148. return win_nums[0] > 0 && win_nums[1] <= 0;
  149. };
  150. }
  151. WindingNumberOperation binary_xor() {
  152. return [](const WindingNumbers& win_nums) -> int{
  153. return (win_nums[0] > 0 && win_nums[1] <= 0) ||
  154. (win_nums[0] <= 0 && win_nums[1] > 0);
  155. };
  156. }
  157. WindingNumberOperation binary_resolve() {
  158. return [](const WindingNumbers& win_nums) -> int{
  159. return true;
  160. };
  161. }
  162. typedef std::function<short(int, int)> ToKeepFunc;
  163. ToKeepFunc keep_inside() {
  164. return [](int out_w, int in_w) -> short {
  165. if (in_w > 0 && out_w <= 0) return 1;
  166. else if (in_w <= 0 && out_w > 0) return -1;
  167. else return 0;
  168. };
  169. }
  170. ToKeepFunc keep_all() {
  171. return [](int out_w, int in_w) -> short {
  172. return true;
  173. };
  174. }
  175. }
  176. }
  177. }
  178. template <
  179. typename DerivedVA,
  180. typename DerivedFA,
  181. typename DerivedVB,
  182. typename DerivedFB,
  183. typename WindingNumberOp,
  184. typename KeepFunc,
  185. typename ResolveFunc,
  186. typename DerivedVC,
  187. typename DerivedFC,
  188. typename DerivedJ>
  189. IGL_INLINE void igl::boolean::per_face_winding_number_binary_operation(
  190. const Eigen::PlainObjectBase<DerivedVA> & VA,
  191. const Eigen::PlainObjectBase<DerivedFA> & FA,
  192. const Eigen::PlainObjectBase<DerivedVB> & VB,
  193. const Eigen::PlainObjectBase<DerivedFB> & FB,
  194. const WindingNumberOp& wind_num_op,
  195. const KeepFunc& keep,
  196. const ResolveFunc& resolve_fun,
  197. Eigen::PlainObjectBase<DerivedVC > & VC,
  198. Eigen::PlainObjectBase<DerivedFC > & FC,
  199. Eigen::PlainObjectBase<DerivedJ > & J) {
  200. using namespace igl::boolean::mesh_boolean_helper;
  201. typedef typename DerivedVC::Scalar Scalar;
  202. typedef typename DerivedFC::Scalar Index;
  203. typedef Eigen::Matrix<Scalar,Eigen::Dynamic,3> MatrixX3S;
  204. typedef Eigen::Matrix<Index,Eigen::Dynamic,Eigen::Dynamic> MatrixXI;
  205. typedef Eigen::Matrix<typename DerivedJ::Scalar,Eigen::Dynamic,1> VectorXJ;
  206. // Generate combined mesh.
  207. typedef Eigen::Matrix<
  208. ExactScalar,
  209. Eigen::Dynamic,
  210. Eigen::Dynamic,
  211. DerivedVC::IsRowMajor> MatrixXES;
  212. MatrixXES V;
  213. DerivedFC F;
  214. VectorXJ CJ;
  215. resolve_intersections(VA, FA, VB, FB, resolve_fun, V, F, CJ);
  216. // Compute winding numbers on each side of each facet.
  217. const size_t num_faces = F.rows();
  218. Eigen::MatrixXi W;
  219. Eigen::VectorXi labels(num_faces);
  220. std::transform(CJ.data(), CJ.data()+CJ.size(), labels.data(),
  221. [&](int i) { return i<FA.rows() ? 0:1; });
  222. igl::cgal::propagate_winding_numbers(V, F, labels, W);
  223. assert(W.rows() == num_faces);
  224. if (W.cols() == 2) {
  225. assert(FB.rows() == 0);
  226. Eigen::MatrixXi W_tmp(num_faces, 4);
  227. W_tmp << W, Eigen::MatrixXi::Zero(num_faces, 2);
  228. W = W_tmp;
  229. } else {
  230. assert(W.cols() == 4);
  231. }
  232. // Compute resulting winding number.
  233. Eigen::MatrixXi Wr(num_faces, 2);
  234. for (size_t i=0; i<num_faces; i++) {
  235. Eigen::MatrixXi w_out(1,2), w_in(1,2);
  236. w_out << W(i,0), W(i,2);
  237. w_in << W(i,1), W(i,3);
  238. Wr(i,0) = wind_num_op(w_out);
  239. Wr(i,1) = wind_num_op(w_in);
  240. }
  241. // Extract boundary separating inside from outside.
  242. auto index_to_signed_index = [&](size_t i, bool ori) -> int{
  243. return (i+1)*(ori?1:-1);
  244. };
  245. auto signed_index_to_index = [&](int i) -> size_t {
  246. return abs(i) - 1;
  247. };
  248. std::vector<int> selected;
  249. for(size_t i=0; i<num_faces; i++) {
  250. auto should_keep = keep(Wr(i,0), Wr(i,1));
  251. if (should_keep > 0) {
  252. selected.push_back(index_to_signed_index(i, true));
  253. } else if (should_keep < 0) {
  254. selected.push_back(index_to_signed_index(i, false));
  255. }
  256. }
  257. const size_t num_selected = selected.size();
  258. DerivedFC kept_faces(num_selected, 3);
  259. DerivedJ kept_face_indices;
  260. kept_face_indices.resize(num_selected, 1);
  261. for (size_t i=0; i<num_selected; i++) {
  262. size_t idx = abs(selected[i]) - 1;
  263. if (selected[i] > 0) {
  264. kept_faces.row(i) = F.row(idx);
  265. } else {
  266. kept_faces.row(i) = F.row(idx).reverse();
  267. }
  268. kept_face_indices(i, 0) = CJ[idx];
  269. }
  270. // Finally, remove duplicated faces and unreferenced vertices.
  271. {
  272. DerivedFC G;
  273. DerivedJ J;
  274. resolve_duplicated_faces(kept_faces, kept_face_indices, G, J);
  275. MatrixX3S Vs(V.rows(), V.cols());
  276. for (size_t i=0; i<V.rows(); i++) {
  277. for (size_t j=0; j<V.cols(); j++) {
  278. igl::cgal::assign_scalar(V(i,j), Vs(i,j));
  279. }
  280. }
  281. Eigen::VectorXi newIM;
  282. igl::remove_unreferenced(Vs,G,VC,FC,newIM);
  283. }
  284. }
  285. template <
  286. typename DerivedVA,
  287. typename DerivedFA,
  288. typename DerivedVB,
  289. typename DerivedFB,
  290. typename DerivedVC,
  291. typename DerivedFC,
  292. typename DerivedJ>
  293. IGL_INLINE void igl::boolean::mesh_boolean_beta(
  294. const Eigen::PlainObjectBase<DerivedVA > & VA,
  295. const Eigen::PlainObjectBase<DerivedFA > & FA,
  296. const Eigen::PlainObjectBase<DerivedVB > & VB,
  297. const Eigen::PlainObjectBase<DerivedFB > & FB,
  298. const MeshBooleanType & type,
  299. Eigen::PlainObjectBase<DerivedVC > & VC,
  300. Eigen::PlainObjectBase<DerivedFC > & FC,
  301. Eigen::PlainObjectBase<DerivedJ > & J) {
  302. using namespace igl::boolean::mesh_boolean_helper;
  303. WindingNumberOperation op;
  304. ToKeepFunc keep;
  305. switch (type) {
  306. case MESH_BOOLEAN_TYPE_UNION:
  307. op = binary_union();
  308. keep = keep_inside();
  309. break;
  310. case MESH_BOOLEAN_TYPE_INTERSECT:
  311. op = binary_intersect();
  312. keep = keep_inside();
  313. break;
  314. case MESH_BOOLEAN_TYPE_MINUS:
  315. op = binary_difference();
  316. keep = keep_inside();
  317. break;
  318. case MESH_BOOLEAN_TYPE_XOR:
  319. op = binary_xor();
  320. keep = keep_inside();
  321. break;
  322. case MESH_BOOLEAN_TYPE_RESOLVE:
  323. op = binary_resolve();
  324. keep = keep_all();
  325. break;
  326. default:
  327. throw std::runtime_error("Unsupported boolean type.");
  328. }
  329. typedef Eigen::Matrix<
  330. ExactScalar,
  331. Eigen::Dynamic,
  332. Eigen::Dynamic,
  333. DerivedVC::IsRowMajor> MatrixXES;
  334. std::function<void(
  335. const Eigen::PlainObjectBase<DerivedVA>&,
  336. const Eigen::PlainObjectBase<DerivedFA>&,
  337. Eigen::PlainObjectBase<MatrixXES>&,
  338. Eigen::PlainObjectBase<DerivedFC>&,
  339. Eigen::PlainObjectBase<DerivedJ>&)> resolve_func =
  340. igl_resolve<DerivedVA, DerivedFA, MatrixXES, DerivedFC, DerivedJ>;
  341. igl::boolean::per_face_winding_number_binary_operation(
  342. VA, FA, VB, FB, op, keep, resolve_func, VC, FC, J);
  343. }
  344. template <
  345. typename DerivedVA,
  346. typename DerivedFA,
  347. typename DerivedVB,
  348. typename DerivedFB,
  349. typename DerivedVC,
  350. typename DerivedFC>
  351. IGL_INLINE void igl::boolean::mesh_boolean_beta(
  352. const Eigen::PlainObjectBase<DerivedVA > & VA,
  353. const Eigen::PlainObjectBase<DerivedFA > & FA,
  354. const Eigen::PlainObjectBase<DerivedVB > & VB,
  355. const Eigen::PlainObjectBase<DerivedFB > & FB,
  356. const MeshBooleanType & type,
  357. Eigen::PlainObjectBase<DerivedVC > & VC,
  358. Eigen::PlainObjectBase<DerivedFC > & FC) {
  359. Eigen::Matrix<typename DerivedFC::Index, Eigen::Dynamic,1> J;
  360. return igl::boolean::mesh_boolean_beta(VA,FA,VB,FB,type,VC,FC,J);
  361. }