extract_cells.cpp 19 KB

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  1. // This file is part of libigl, a simple c++ geometry processing library.
  2. //
  3. // Copyright (C) 2015 Qingnan Zhou <qnzhou@gmail.com>
  4. //
  5. // This Source Code Form is subject to the terms of the Mozilla Public License
  6. // v. 2.0. If a copy of the MPL was not distributed with this file, You can
  7. // obtain one at http://mozilla.org/MPL/2.0/.
  8. //
  9. #include "extract_cells.h"
  10. #include "closest_facet.h"
  11. #include "order_facets_around_edge.h"
  12. #include "outer_facet.h"
  13. #include "submesh_aabb_tree.h"
  14. #include "../../extract_manifold_patches.h"
  15. #include "../../facet_components.h"
  16. #include "../../get_seconds.h"
  17. #include "../../triangle_triangle_adjacency.h"
  18. #include "../../unique_edge_map.h"
  19. #include "../../vertex_triangle_adjacency.h"
  20. #include <CGAL/AABB_tree.h>
  21. #include <CGAL/AABB_traits.h>
  22. #include <CGAL/AABB_triangle_primitive.h>
  23. #include <CGAL/intersections.h>
  24. #include <CGAL/Exact_predicates_exact_constructions_kernel.h>
  25. #include <iostream>
  26. #include <vector>
  27. #include <queue>
  28. #include <map>
  29. #include <set>
  30. //#define EXTRACT_CELLS_DEBUG
  31. template<
  32. typename DerivedV,
  33. typename DerivedF,
  34. typename DerivedC >
  35. IGL_INLINE size_t igl::copyleft::cgal::extract_cells(
  36. const Eigen::PlainObjectBase<DerivedV>& V,
  37. const Eigen::PlainObjectBase<DerivedF>& F,
  38. Eigen::PlainObjectBase<DerivedC>& cells)
  39. {
  40. const size_t num_faces = F.rows();
  41. // Construct edge adjacency
  42. Eigen::MatrixXi E, uE;
  43. Eigen::VectorXi EMAP;
  44. std::vector<std::vector<size_t> > uE2E;
  45. igl::unique_edge_map(F, E, uE, EMAP, uE2E);
  46. // Cluster into manifold patches
  47. Eigen::VectorXi P;
  48. igl::extract_manifold_patches(F, EMAP, uE2E, P);
  49. // Extract cells
  50. DerivedC per_patch_cells;
  51. const size_t num_cells =
  52. igl::copyleft::cgal::extract_cells(V,F,P,E,uE,uE2E,EMAP,per_patch_cells);
  53. // Distribute per-patch cell information to each face
  54. cells.resize(num_faces, 2);
  55. for (size_t i=0; i<num_faces; i++)
  56. {
  57. cells.row(i) = per_patch_cells.row(P[i]);
  58. }
  59. return num_cells;
  60. }
  61. template<
  62. typename DerivedV,
  63. typename DerivedF,
  64. typename DerivedP,
  65. typename DerivedE,
  66. typename DeriveduE,
  67. typename uE2EType,
  68. typename DerivedEMAP,
  69. typename DerivedC >
  70. IGL_INLINE size_t igl::copyleft::cgal::extract_cells(
  71. const Eigen::PlainObjectBase<DerivedV>& V,
  72. const Eigen::PlainObjectBase<DerivedF>& F,
  73. const Eigen::PlainObjectBase<DerivedP>& P,
  74. const Eigen::PlainObjectBase<DerivedE>& E,
  75. const Eigen::PlainObjectBase<DeriveduE>& uE,
  76. const std::vector<std::vector<uE2EType> >& uE2E,
  77. const Eigen::PlainObjectBase<DerivedEMAP>& EMAP,
  78. Eigen::PlainObjectBase<DerivedC>& cells)
  79. {
  80. typedef CGAL::Exact_predicates_exact_constructions_kernel Kernel;
  81. typedef Kernel::Point_3 Point_3;
  82. typedef Kernel::Plane_3 Plane_3;
  83. typedef Kernel::Segment_3 Segment_3;
  84. typedef Kernel::Triangle_3 Triangle;
  85. typedef std::vector<Triangle>::iterator Iterator;
  86. typedef CGAL::AABB_triangle_primitive<Kernel, Iterator> Primitive;
  87. typedef CGAL::AABB_traits<Kernel, Primitive> AABB_triangle_traits;
  88. typedef CGAL::AABB_tree<AABB_triangle_traits> Tree;
  89. #ifdef EXTRACT_CELLS_DEBUG
  90. const auto & tictoc = []() -> double
  91. {
  92. static double t_start = igl::get_seconds();
  93. double diff = igl::get_seconds()-t_start;
  94. t_start += diff;
  95. return diff;
  96. };
  97. const auto log_time = [&](const std::string& label) -> void {
  98. std::cout << "extract_cells." << label << ": "
  99. << tictoc() << std::endl;
  100. };
  101. tictoc();
  102. #else
  103. // no-op
  104. const auto log_time = [](const std::string){};
  105. #endif
  106. const size_t num_faces = F.rows();
  107. typedef typename DerivedF::Scalar Index;
  108. const size_t num_patches = P.maxCoeff()+1;
  109. // Extract all cells...
  110. DerivedC raw_cells;
  111. const size_t num_raw_cells =
  112. extract_cells_single_component(V,F,P,uE,uE2E,EMAP,raw_cells);
  113. log_time("extract_single_component_cells");
  114. // Compute triangle-triangle adjacency data-structure
  115. std::vector<std::vector<std::vector<Index > > > TT,_1;
  116. igl::triangle_triangle_adjacency(E, EMAP, uE2E, false, TT, _1);
  117. log_time("compute_face_adjacency");
  118. // Compute connected components of the mesh
  119. Eigen::VectorXi C, counts;
  120. igl::facet_components(TT, C, counts);
  121. log_time("form_components");
  122. const size_t num_components = counts.size();
  123. // components[c] --> list of face indices into F of faces in component c
  124. std::vector<std::vector<size_t> > components(num_components);
  125. // Loop over all faces
  126. for (size_t i=0; i<num_faces; i++)
  127. {
  128. components[C[i]].push_back(i);
  129. }
  130. // Convert vector lists to Eigen lists...
  131. // and precompute data-structures for each component
  132. std::vector<std::vector<size_t> > VF,VFi;
  133. igl::vertex_triangle_adjacency(V.rows(), F, VF, VFi);
  134. std::vector<Eigen::VectorXi> Is(num_components);
  135. std::vector<
  136. CGAL::AABB_tree<
  137. CGAL::AABB_traits<
  138. Kernel,
  139. CGAL::AABB_triangle_primitive<
  140. Kernel, std::vector<
  141. Kernel::Triangle_3 >::iterator > > > > trees(num_components);
  142. std::vector< std::vector<Kernel::Triangle_3 > >
  143. triangle_lists(num_components);
  144. std::vector<std::vector<bool> > in_Is(num_components);
  145. // Find outer facets, their orientations and cells for each component
  146. Eigen::VectorXi outer_facets(num_components);
  147. Eigen::VectorXi outer_facet_orientation(num_components);
  148. Eigen::VectorXi outer_cells(num_components);
  149. for (size_t i=0; i<num_components; i++)
  150. {
  151. Is[i].resize(components[i].size());
  152. std::copy(components[i].begin(), components[i].end(),Is[i].data());
  153. bool flipped;
  154. igl::copyleft::cgal::outer_facet(V, F, Is[i], outer_facets[i], flipped);
  155. outer_facet_orientation[i] = flipped?1:0;
  156. outer_cells[i] = raw_cells(P[outer_facets[i]], outer_facet_orientation[i]);
  157. }
  158. #ifdef EXTRACT_CELLS_DEBUG
  159. log_time("outer_facet_per_component");
  160. #endif
  161. // Compute barycenter of a triangle in mesh (V,F)
  162. //
  163. // Inputs:
  164. // fid index into F
  165. // Returns row-vector of barycenter coordinates
  166. const auto get_triangle_center = [&V,&F](const size_t fid)
  167. {
  168. return ((V.row(F(fid,0))+V.row(F(fid,1))+V.row(F(fid,2)))/3.0).eval();
  169. };
  170. std::vector<std::vector<size_t> > nested_cells(num_raw_cells);
  171. std::vector<std::vector<size_t> > ambient_cells(num_raw_cells);
  172. std::vector<std::vector<size_t> > ambient_comps(num_components);
  173. // Only bother if there's more than one component
  174. if(num_components > 1)
  175. {
  176. // construct bounding boxes for each component
  177. DerivedV bbox_min(num_components, 3);
  178. DerivedV bbox_max(num_components, 3);
  179. // Assuming our mesh (in exact numbers) fits in the range of double.
  180. bbox_min.setConstant(std::numeric_limits<double>::max());
  181. bbox_max.setConstant(std::numeric_limits<double>::min());
  182. // Loop over faces
  183. for (size_t i=0; i<num_faces; i++)
  184. {
  185. // component of this face
  186. const auto comp_id = C[i];
  187. const auto& f = F.row(i);
  188. for (size_t j=0; j<3; j++)
  189. {
  190. for(size_t d=0;d<3;d++)
  191. {
  192. bbox_min(comp_id,d) = std::min(bbox_min(comp_id,d), V(f[j],d));
  193. bbox_max(comp_id,d) = std::max(bbox_max(comp_id,d), V(f[j],d));
  194. }
  195. }
  196. }
  197. // Return true if box of component ci intersects that of cj
  198. const auto bbox_intersects = [&bbox_max,&bbox_min](size_t ci, size_t cj)
  199. {
  200. return !(
  201. bbox_max(ci,0) < bbox_min(cj,0) ||
  202. bbox_max(ci,1) < bbox_min(cj,1) ||
  203. bbox_max(ci,2) < bbox_min(cj,2) ||
  204. bbox_max(cj,0) < bbox_min(ci,0) ||
  205. bbox_max(cj,1) < bbox_min(ci,1) ||
  206. bbox_max(cj,2) < bbox_min(ci,2));
  207. };
  208. // Loop over components. This section is O(m²)
  209. for (size_t i=0; i<num_components; i++)
  210. {
  211. // List of components that could overlap with component i
  212. std::vector<size_t> candidate_comps;
  213. candidate_comps.reserve(num_components);
  214. // Loop over components
  215. for (size_t j=0; j<num_components; j++)
  216. {
  217. if (i == j) continue;
  218. if (bbox_intersects(i,j)) candidate_comps.push_back(j);
  219. }
  220. const size_t num_candidate_comps = candidate_comps.size();
  221. if (num_candidate_comps == 0) continue;
  222. // Build aabb tree for this component.
  223. submesh_aabb_tree(V,F,Is[i],trees[i],triangle_lists[i],in_Is[i]);
  224. // Get query points on each candidate component: barycenter of
  225. // outer-facet
  226. DerivedV queries(num_candidate_comps, 3);
  227. for (size_t j=0; j<num_candidate_comps; j++)
  228. {
  229. const size_t index = candidate_comps[j];
  230. queries.row(j) = get_triangle_center(outer_facets[index]);
  231. }
  232. // Gather closest facets in ith component to each query point and their
  233. // orientations
  234. const auto& I = Is[i];
  235. const auto& tree = trees[i];
  236. const auto& in_I = in_Is[i];
  237. const auto& triangles = triangle_lists[i];
  238. Eigen::VectorXi closest_facets, closest_facet_orientations;
  239. closest_facet(
  240. V,
  241. F,
  242. I,
  243. queries,
  244. uE2E,
  245. EMAP,
  246. VF,
  247. VFi,
  248. tree,
  249. triangles,
  250. in_I,
  251. closest_facets,
  252. closest_facet_orientations);
  253. // Loop over all candidates
  254. for (size_t j=0; j<num_candidate_comps; j++)
  255. {
  256. const size_t index = candidate_comps[j];
  257. const size_t closest_patch = P[closest_facets[j]];
  258. const size_t closest_patch_side = closest_facet_orientations[j] ? 0:1;
  259. // The cell id of the closest patch
  260. const size_t ambient_cell =
  261. raw_cells(closest_patch,closest_patch_side);
  262. if (ambient_cell != (size_t)outer_cells[i])
  263. {
  264. // ---> component index inside component i, because the cell of the
  265. // closest facet on i to component index is **not** the same as the
  266. // "outer cell" of component i: component index is **not** outside of
  267. // component i (therefore it's inside).
  268. nested_cells[ambient_cell].push_back(outer_cells[index]);
  269. ambient_cells[outer_cells[index]].push_back(ambient_cell);
  270. ambient_comps[index].push_back(i);
  271. }
  272. }
  273. }
  274. }
  275. #ifdef EXTRACT_CELLS_DEBUG
  276. log_time("nested_relationship");
  277. #endif
  278. const size_t INVALID = std::numeric_limits<size_t>::max();
  279. const size_t INFINITE_CELL = num_raw_cells;
  280. std::vector<size_t> embedded_cells(num_raw_cells, INVALID);
  281. for (size_t i=0; i<num_components; i++) {
  282. const size_t outer_cell = outer_cells[i];
  283. const auto& ambient_comps_i = ambient_comps[i];
  284. const auto& ambient_cells_i = ambient_cells[outer_cell];
  285. const size_t num_ambient_comps = ambient_comps_i.size();
  286. assert(num_ambient_comps == ambient_cells_i.size());
  287. if (num_ambient_comps > 0) {
  288. size_t embedded_comp = INVALID;
  289. size_t embedded_cell = INVALID;
  290. for (size_t j=0; j<num_ambient_comps; j++) {
  291. if (ambient_comps[ambient_comps_i[j]].size() ==
  292. num_ambient_comps-1) {
  293. embedded_comp = ambient_comps_i[j];
  294. embedded_cell = ambient_cells_i[j];
  295. break;
  296. }
  297. }
  298. assert(embedded_comp != INVALID);
  299. assert(embedded_cell != INVALID);
  300. embedded_cells[outer_cell] = embedded_cell;
  301. } else {
  302. embedded_cells[outer_cell] = INFINITE_CELL;
  303. }
  304. }
  305. for (size_t i=0; i<num_patches; i++) {
  306. if (embedded_cells[raw_cells(i,0)] != INVALID) {
  307. raw_cells(i,0) = embedded_cells[raw_cells(i, 0)];
  308. }
  309. if (embedded_cells[raw_cells(i,1)] != INVALID) {
  310. raw_cells(i,1) = embedded_cells[raw_cells(i, 1)];
  311. }
  312. }
  313. size_t count = 0;
  314. std::vector<size_t> mapped_indices(num_raw_cells+1, INVALID);
  315. // Always map infinite cell to index 0.
  316. mapped_indices[INFINITE_CELL] = count;
  317. count++;
  318. for (size_t i=0; i<num_patches; i++) {
  319. const size_t old_positive_cell_id = raw_cells(i, 0);
  320. const size_t old_negative_cell_id = raw_cells(i, 1);
  321. size_t positive_cell_id, negative_cell_id;
  322. if (mapped_indices[old_positive_cell_id] == INVALID) {
  323. mapped_indices[old_positive_cell_id] = count;
  324. positive_cell_id = count;
  325. count++;
  326. } else {
  327. positive_cell_id = mapped_indices[old_positive_cell_id];
  328. }
  329. if (mapped_indices[old_negative_cell_id] == INVALID) {
  330. mapped_indices[old_negative_cell_id] = count;
  331. negative_cell_id = count;
  332. count++;
  333. } else {
  334. negative_cell_id = mapped_indices[old_negative_cell_id];
  335. }
  336. raw_cells(i, 0) = positive_cell_id;
  337. raw_cells(i, 1) = negative_cell_id;
  338. }
  339. cells = raw_cells;
  340. #ifdef EXTRACT_CELLS_DEBUG
  341. log_time("finalize");
  342. #endif
  343. return count;
  344. }
  345. template<
  346. typename DerivedV,
  347. typename DerivedF,
  348. typename DerivedP,
  349. typename DeriveduE,
  350. typename uE2EType,
  351. typename DerivedEMAP,
  352. typename DerivedC>
  353. IGL_INLINE size_t igl::copyleft::cgal::extract_cells_single_component(
  354. const Eigen::PlainObjectBase<DerivedV>& V,
  355. const Eigen::PlainObjectBase<DerivedF>& F,
  356. const Eigen::PlainObjectBase<DerivedP>& P,
  357. const Eigen::PlainObjectBase<DeriveduE>& uE,
  358. const std::vector<std::vector<uE2EType> >& uE2E,
  359. const Eigen::PlainObjectBase<DerivedEMAP>& EMAP,
  360. Eigen::PlainObjectBase<DerivedC>& cells)
  361. {
  362. const size_t num_faces = F.rows();
  363. // Input:
  364. // index index into #F*3 list of undirect edges
  365. // Returns index into face
  366. const auto edge_index_to_face_index = [&num_faces](size_t index)
  367. {
  368. return index % num_faces;
  369. };
  370. // Determine if a face (containing undirected edge {s,d} is consistently
  371. // oriented with directed edge {s,d} (or otherwise it is with {d,s})
  372. //
  373. // Inputs:
  374. // fid face index into F
  375. // s source index of edge
  376. // d destination index of edge
  377. // Returns true if face F(fid,:) is consistent with {s,d}
  378. const auto is_consistent =
  379. [&F](const size_t fid, const size_t s, const size_t d) -> bool
  380. {
  381. if ((size_t)F(fid, 0) == s && (size_t)F(fid, 1) == d) return false;
  382. if ((size_t)F(fid, 1) == s && (size_t)F(fid, 2) == d) return false;
  383. if ((size_t)F(fid, 2) == s && (size_t)F(fid, 0) == d) return false;
  384. if ((size_t)F(fid, 0) == d && (size_t)F(fid, 1) == s) return true;
  385. if ((size_t)F(fid, 1) == d && (size_t)F(fid, 2) == s) return true;
  386. if ((size_t)F(fid, 2) == d && (size_t)F(fid, 0) == s) return true;
  387. throw "Invalid face!";
  388. return false;
  389. };
  390. const size_t num_unique_edges = uE.rows();
  391. const size_t num_patches = P.maxCoeff() + 1;
  392. // Build patch-patch adjacency list.
  393. std::vector<std::map<size_t, size_t> > patch_adj(num_patches);
  394. for (size_t i=0; i<num_unique_edges; i++) {
  395. const size_t s = uE(i,0);
  396. const size_t d = uE(i,1);
  397. const auto adj_faces = uE2E[i];
  398. const size_t num_adj_faces = adj_faces.size();
  399. if (num_adj_faces > 2) {
  400. for (size_t j=0; j<num_adj_faces; j++) {
  401. const size_t patch_j = P[edge_index_to_face_index(adj_faces[j])];
  402. for (size_t k=j+1; k<num_adj_faces; k++) {
  403. const size_t patch_k = P[edge_index_to_face_index(adj_faces[k])];
  404. if (patch_adj[patch_j].find(patch_k) == patch_adj[patch_j].end()) {
  405. patch_adj[patch_j].insert({patch_k, i});
  406. }
  407. if (patch_adj[patch_k].find(patch_j) == patch_adj[patch_k].end()) {
  408. patch_adj[patch_k].insert({patch_j, i});
  409. }
  410. }
  411. }
  412. }
  413. }
  414. const int INVALID = std::numeric_limits<int>::max();
  415. std::vector<size_t> cell_labels(num_patches * 2);
  416. for (size_t i=0; i<num_patches; i++) cell_labels[i] = i;
  417. std::vector<std::set<size_t> > equivalent_cells(num_patches*2);
  418. std::vector<bool> processed(num_unique_edges, false);
  419. size_t label_count=0;
  420. for (size_t i=0; i<num_patches; i++) {
  421. for (const auto& entry : patch_adj[i]) {
  422. const size_t neighbor_patch = entry.first;
  423. const size_t uei = entry.second;
  424. if (processed[uei]) continue;
  425. processed[uei] = true;
  426. const auto& adj_faces = uE2E[uei];
  427. const size_t num_adj_faces = adj_faces.size();
  428. assert(num_adj_faces > 2);
  429. const size_t s = uE(uei,0);
  430. const size_t d = uE(uei,1);
  431. std::vector<int> signed_adj_faces;
  432. for (auto ej : adj_faces)
  433. {
  434. const size_t fid = edge_index_to_face_index(ej);
  435. bool cons = is_consistent(fid, s, d);
  436. signed_adj_faces.push_back((fid+1)*(cons ? 1:-1));
  437. }
  438. {
  439. // Sort adjacent faces cyclically around {s,d}
  440. Eigen::VectorXi order;
  441. // order[f] will reveal the order of face f in signed_adj_faces
  442. order_facets_around_edge(V, F, s, d, signed_adj_faces, order);
  443. for (size_t j=0; j<num_adj_faces; j++) {
  444. const size_t curr_idx = j;
  445. const size_t next_idx = (j+1)%num_adj_faces;
  446. const size_t curr_patch_idx =
  447. P[edge_index_to_face_index(adj_faces[order[curr_idx]])];
  448. const size_t next_patch_idx =
  449. P[edge_index_to_face_index(adj_faces[order[next_idx]])];
  450. const bool curr_cons = signed_adj_faces[order[curr_idx]] > 0;
  451. const bool next_cons = signed_adj_faces[order[next_idx]] > 0;
  452. const size_t curr_cell_idx = curr_patch_idx*2 + (curr_cons?0:1);
  453. const size_t next_cell_idx = next_patch_idx*2 + (next_cons?1:0);
  454. equivalent_cells[curr_cell_idx].insert(next_cell_idx);
  455. equivalent_cells[next_cell_idx].insert(curr_cell_idx);
  456. }
  457. }
  458. }
  459. }
  460. size_t count=0;
  461. cells.resize(num_patches, 2);
  462. cells.setConstant(INVALID);
  463. const auto extract_equivalent_cells = [&](size_t i) {
  464. if (cells(i/2, i%2) != INVALID) return;
  465. std::queue<size_t> Q;
  466. Q.push(i);
  467. cells(i/2, i%2) = count;
  468. while (!Q.empty()) {
  469. const size_t index = Q.front();
  470. Q.pop();
  471. for (const auto j : equivalent_cells[index]) {
  472. if (cells(j/2, j%2) == INVALID) {
  473. cells(j/2, j%2) = count;
  474. Q.push(j);
  475. }
  476. }
  477. }
  478. count++;
  479. };
  480. for (size_t i=0; i<num_patches; i++) {
  481. extract_equivalent_cells(i*2);
  482. extract_equivalent_cells(i*2+1);
  483. }
  484. assert((cells.array() != INVALID).all());
  485. return count;
  486. }
  487. #ifdef IGL_STATIC_LIBRARY
  488. #include <CGAL/Exact_predicates_exact_constructions_kernel.h>
  489. template unsigned long igl::copyleft::cgal::extract_cells<Eigen::Matrix<CGAL::Lazy_exact_nt<CGAL::Gmpq>, -1, -1, 0, -1, -1>, Eigen::Matrix<int, -1, -1, 0, -1, -1>, Eigen::Matrix<int, -1, 1, 0, -1, 1>, Eigen::Matrix<int, -1, -1, 0, -1, -1>, Eigen::Matrix<int, -1, -1, 0, -1, -1>, unsigned long, Eigen::Matrix<int, -1, 1, 0, -1, 1>, Eigen::Matrix<int, -1, -1, 0, -1, -1> >(Eigen::PlainObjectBase<Eigen::Matrix<CGAL::Lazy_exact_nt<CGAL::Gmpq>, -1, -1, 0, -1, -1> > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> > const&, std::vector<std::vector<unsigned long, std::allocator<unsigned long> >, std::allocator<std::vector<unsigned long, std::allocator<unsigned long> > > > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> > const&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> >&);
  490. #endif