outer_hull_legacy.cpp 15 KB

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  1. // This file is part of libigl, a simple c++ geometry processing library.
  2. //
  3. // Copyright (C) 2015 Alec Jacobson <[email protected]>
  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. #include "outer_hull_legacy.h"
  9. #include "extract_cells.h"
  10. #include "remesh_self_intersections.h"
  11. #include "assign.h"
  12. #include "../../remove_unreferenced.h"
  13. #include <CGAL/AABB_tree.h>
  14. #include <CGAL/AABB_traits.h>
  15. #include <CGAL/AABB_triangle_primitive.h>
  16. #include <CGAL/intersections.h>
  17. #include <CGAL/Exact_predicates_exact_constructions_kernel.h>
  18. #include "points_inside_component.h"
  19. #include "order_facets_around_edges.h"
  20. #include "outer_facet.h"
  21. #include "../../sortrows.h"
  22. #include "../../facet_components.h"
  23. #include "../../winding_number.h"
  24. #include "../../triangle_triangle_adjacency.h"
  25. #include "../../unique_edge_map.h"
  26. #include "../../barycenter.h"
  27. #include "../../per_face_normals.h"
  28. #include "../../sort_angles.h"
  29. #include <Eigen/Geometry>
  30. #include <vector>
  31. #include <map>
  32. #include <queue>
  33. #include <iostream>
  34. #include <type_traits>
  35. #include <CGAL/number_utils.h>
  36. //#define IGL_OUTER_HULL_DEBUG
  37. template <
  38. typename DerivedV,
  39. typename DerivedF,
  40. typename DerivedG,
  41. typename DerivedJ,
  42. typename Derivedflip>
  43. IGL_INLINE void igl::copyleft::cgal::outer_hull_legacy(
  44. const Eigen::PlainObjectBase<DerivedV> & V,
  45. const Eigen::PlainObjectBase<DerivedF> & F,
  46. Eigen::PlainObjectBase<DerivedG> & G,
  47. Eigen::PlainObjectBase<DerivedJ> & J,
  48. Eigen::PlainObjectBase<Derivedflip> & flip)
  49. {
  50. #ifdef IGL_OUTER_HULL_DEBUG
  51. std::cerr << "Extracting outer hull" << std::endl;
  52. #endif
  53. using namespace Eigen;
  54. using namespace std;
  55. typedef typename DerivedF::Index Index;
  56. Matrix<Index,DerivedF::RowsAtCompileTime,1> C;
  57. typedef Matrix<typename DerivedV::Scalar,Dynamic,DerivedV::ColsAtCompileTime> MatrixXV;
  58. //typedef Matrix<typename DerivedF::Scalar,Dynamic,DerivedF::ColsAtCompileTime> MatrixXF;
  59. typedef Matrix<typename DerivedG::Scalar,Dynamic,DerivedG::ColsAtCompileTime> MatrixXG;
  60. typedef Matrix<typename DerivedJ::Scalar,Dynamic,DerivedJ::ColsAtCompileTime> MatrixXJ;
  61. const Index m = F.rows();
  62. // UNUSED:
  63. //const auto & duplicate_simplex = [&F](const int f, const int g)->bool
  64. //{
  65. // return
  66. // (F(f,0) == F(g,0) && F(f,1) == F(g,1) && F(f,2) == F(g,2)) ||
  67. // (F(f,1) == F(g,0) && F(f,2) == F(g,1) && F(f,0) == F(g,2)) ||
  68. // (F(f,2) == F(g,0) && F(f,0) == F(g,1) && F(f,1) == F(g,2)) ||
  69. // (F(f,0) == F(g,2) && F(f,1) == F(g,1) && F(f,2) == F(g,0)) ||
  70. // (F(f,1) == F(g,2) && F(f,2) == F(g,1) && F(f,0) == F(g,0)) ||
  71. // (F(f,2) == F(g,2) && F(f,0) == F(g,1) && F(f,1) == F(g,0));
  72. //};
  73. #ifdef IGL_OUTER_HULL_DEBUG
  74. cout<<"outer hull..."<<endl;
  75. #endif
  76. #ifdef IGL_OUTER_HULL_DEBUG
  77. cout<<"edge map..."<<endl;
  78. #endif
  79. typedef Matrix<typename DerivedF::Scalar,Dynamic,2> MatrixX2I;
  80. typedef Matrix<typename DerivedF::Index,Dynamic,1> VectorXI;
  81. //typedef Matrix<typename DerivedV::Scalar, 3, 1> Vector3F;
  82. MatrixX2I E,uE;
  83. VectorXI EMAP;
  84. vector<vector<typename DerivedF::Index> > uE2E;
  85. unique_edge_map(F,E,uE,EMAP,uE2E);
  86. #ifdef IGL_OUTER_HULL_DEBUG
  87. for (size_t ui=0; ui<uE.rows(); ui++) {
  88. std::cout << ui << ": " << uE2E[ui].size() << " -- (";
  89. for (size_t i=0; i<uE2E[ui].size(); i++) {
  90. std::cout << uE2E[ui][i] << ", ";
  91. }
  92. std::cout << ")" << std::endl;
  93. }
  94. #endif
  95. std::vector<std::vector<typename DerivedF::Index> > uE2oE;
  96. std::vector<std::vector<bool> > uE2C;
  97. order_facets_around_edges(V, F, uE, uE2E, uE2oE, uE2C);
  98. uE2E = uE2oE;
  99. VectorXI diIM(3*m);
  100. for (auto ue : uE2E) {
  101. for (size_t i=0; i<ue.size(); i++) {
  102. auto fe = ue[i];
  103. diIM[fe] = i;
  104. }
  105. }
  106. vector<vector<vector<Index > > > TT,_1;
  107. triangle_triangle_adjacency(E,EMAP,uE2E,false,TT,_1);
  108. VectorXI counts;
  109. #ifdef IGL_OUTER_HULL_DEBUG
  110. cout<<"facet components..."<<endl;
  111. #endif
  112. facet_components(TT,C,counts);
  113. assert(C.maxCoeff()+1 == counts.rows());
  114. const size_t ncc = counts.rows();
  115. G.resize(0,F.cols());
  116. J.resize(0,1);
  117. flip.setConstant(m,1,false);
  118. #ifdef IGL_OUTER_HULL_DEBUG
  119. cout<<"reindex..."<<endl;
  120. #endif
  121. // H contains list of faces on outer hull;
  122. vector<bool> FH(m,false);
  123. vector<bool> EH(3*m,false);
  124. vector<MatrixXG> vG(ncc);
  125. vector<MatrixXJ> vJ(ncc);
  126. vector<MatrixXJ> vIM(ncc);
  127. //size_t face_count = 0;
  128. for(size_t id = 0;id<ncc;id++)
  129. {
  130. vIM[id].resize(counts[id],1);
  131. }
  132. // current index into each IM
  133. vector<size_t> g(ncc,0);
  134. // place order of each face in its respective component
  135. for(Index f = 0;f<m;f++)
  136. {
  137. vIM[C(f)](g[C(f)]++) = f;
  138. }
  139. #ifdef IGL_OUTER_HULL_DEBUG
  140. cout<<"barycenters..."<<endl;
  141. #endif
  142. // assumes that "resolve" has handled any coplanar cases correctly and nearly
  143. // coplanar cases can be sorted based on barycenter.
  144. MatrixXV BC;
  145. barycenter(V,F,BC);
  146. #ifdef IGL_OUTER_HULL_DEBUG
  147. cout<<"loop over CCs (="<<ncc<<")..."<<endl;
  148. #endif
  149. for(Index id = 0;id<(Index)ncc;id++)
  150. {
  151. auto & IM = vIM[id];
  152. // starting face that's guaranteed to be on the outer hull and in this
  153. // component
  154. int f;
  155. bool f_flip;
  156. #ifdef IGL_OUTER_HULL_DEBUG
  157. cout<<"outer facet..."<<endl;
  158. #endif
  159. igl::copyleft::cgal::outer_facet(V,F,IM,f,f_flip);
  160. #ifdef IGL_OUTER_HULL_DEBUG
  161. cout<<"outer facet: "<<f<<endl;
  162. //cout << V.row(F(f, 0)) << std::endl;
  163. //cout << V.row(F(f, 1)) << std::endl;
  164. //cout << V.row(F(f, 2)) << std::endl;
  165. #endif
  166. int FHcount = 1;
  167. FH[f] = true;
  168. // Q contains list of face edges to continue traversing upong
  169. queue<int> Q;
  170. Q.push(f+0*m);
  171. Q.push(f+1*m);
  172. Q.push(f+2*m);
  173. flip(f) = f_flip;
  174. //std::cout << "face " << face_count++ << ": " << f << std::endl;
  175. //std::cout << "f " << F.row(f).array()+1 << std::endl;
  176. //cout<<"flip("<<f<<") = "<<(flip(f)?"true":"false")<<endl;
  177. #ifdef IGL_OUTER_HULL_DEBUG
  178. cout<<"BFS..."<<endl;
  179. #endif
  180. while(!Q.empty())
  181. {
  182. // face-edge
  183. const int e = Q.front();
  184. Q.pop();
  185. // face
  186. const int f = e%m;
  187. // corner
  188. const int c = e/m;
  189. #ifdef IGL_OUTER_HULL_DEBUG
  190. std::cout << "edge: " << e << ", ue: " << EMAP(e) << std::endl;
  191. std::cout << "face: " << f << std::endl;
  192. std::cout << "corner: " << c << std::endl;
  193. std::cout << "consistent: " << uE2C[EMAP(e)][diIM[e]] << std::endl;
  194. #endif
  195. // Should never see edge again...
  196. if(EH[e] == true)
  197. {
  198. continue;
  199. }
  200. EH[e] = true;
  201. // source of edge according to f
  202. const int fs = flip(f)?F(f,(c+2)%3):F(f,(c+1)%3);
  203. // destination of edge according to f
  204. const int fd = flip(f)?F(f,(c+1)%3):F(f,(c+2)%3);
  205. // edge valence
  206. const size_t val = uE2E[EMAP(e)].size();
  207. #ifdef IGL_OUTER_HULL_DEBUG
  208. //std::cout << "vd: " << V.row(fd) << std::endl;
  209. //std::cout << "vs: " << V.row(fs) << std::endl;
  210. //std::cout << "edge: " << V.row(fd) - V.row(fs) << std::endl;
  211. for (size_t i=0; i<val; i++) {
  212. if (i == diIM(e)) {
  213. std::cout << "* ";
  214. } else {
  215. std::cout << " ";
  216. }
  217. std::cout << i << ": "
  218. << " (e: " << uE2E[EMAP(e)][i] << ", f: "
  219. << uE2E[EMAP(e)][i] % m * (uE2C[EMAP(e)][i] ? 1:-1) << ")" << std::endl;
  220. }
  221. #endif
  222. // is edge consistent with edge of face used for sorting
  223. const int e_cons = (uE2C[EMAP(e)][diIM(e)] ? 1: -1);
  224. int nfei = -1;
  225. // Loop once around trying to find suitable next face
  226. for(size_t step = 1; step<val+2;step++)
  227. {
  228. const int nfei_new = (diIM(e) + 2*val + e_cons*step*(flip(f)?-1:1))%val;
  229. const int nf = uE2E[EMAP(e)][nfei_new] % m;
  230. {
  231. #ifdef IGL_OUTER_HULL_DEBUG
  232. //cout<<"Next facet: "<<(f+1)<<" --> "<<(nf+1)<<", |"<<
  233. // di[EMAP(e)][diIM(e)]<<" - "<<di[EMAP(e)][nfei_new]<<"| = "<<
  234. // abs(di[EMAP(e)][diIM(e)] - di[EMAP(e)][nfei_new])
  235. // <<endl;
  236. #endif
  237. // Only use this face if not already seen
  238. if(!FH[nf])
  239. {
  240. nfei = nfei_new;
  241. //} else {
  242. // std::cout << "skipping face " << nfei_new << " because it is seen before"
  243. // << std::endl;
  244. }
  245. break;
  246. //} else {
  247. // std::cout << di[EMAP(e)][diIM(e)].transpose() << std::endl;
  248. // std::cout << di[EMAP(e)][diIM(nfei_new)].transpose() << std::endl;
  249. // std::cout << "skipping face " << nfei_new << " with identical dihedral angle"
  250. // << std::endl;
  251. }
  252. //#ifdef IGL_OUTER_HULL_DEBUG
  253. // cout<<"Skipping co-planar facet: "<<(f+1)<<" --> "<<(nf+1)<<endl;
  254. //#endif
  255. }
  256. int max_ne = -1;
  257. if(nfei >= 0)
  258. {
  259. max_ne = uE2E[EMAP(e)][nfei];
  260. }
  261. if(max_ne>=0)
  262. {
  263. // face of neighbor
  264. const int nf = max_ne%m;
  265. #ifdef IGL_OUTER_HULL_DEBUG
  266. if(!FH[nf])
  267. {
  268. // first time seeing face
  269. cout<<(f+1)<<" --> "<<(nf+1)<<endl;
  270. }
  271. #endif
  272. FH[nf] = true;
  273. //std::cout << "face " << face_count++ << ": " << nf << std::endl;
  274. //std::cout << "f " << F.row(nf).array()+1 << std::endl;
  275. FHcount++;
  276. // corner of neighbor
  277. const int nc = max_ne/m;
  278. const int nd = F(nf,(nc+2)%3);
  279. const bool cons = (flip(f)?fd:fs) == nd;
  280. flip(nf) = (cons ? flip(f) : !flip(f));
  281. //cout<<"flip("<<nf<<") = "<<(flip(nf)?"true":"false")<<endl;
  282. const int ne1 = nf+((nc+1)%3)*m;
  283. const int ne2 = nf+((nc+2)%3)*m;
  284. if(!EH[ne1])
  285. {
  286. Q.push(ne1);
  287. }
  288. if(!EH[ne2])
  289. {
  290. Q.push(ne2);
  291. }
  292. }
  293. }
  294. {
  295. vG[id].resize(FHcount,3);
  296. vJ[id].resize(FHcount,1);
  297. //nG += FHcount;
  298. size_t h = 0;
  299. assert(counts(id) == IM.rows());
  300. for(int i = 0;i<counts(id);i++)
  301. {
  302. const size_t f = IM(i);
  303. //if(f_flip)
  304. //{
  305. // flip(f) = !flip(f);
  306. //}
  307. if(FH[f])
  308. {
  309. vG[id].row(h) = (flip(f)?F.row(f).reverse().eval():F.row(f));
  310. vJ[id](h,0) = f;
  311. h++;
  312. }
  313. }
  314. assert((int)h == FHcount);
  315. }
  316. }
  317. // Is A inside B? Assuming A and B are consistently oriented but closed and
  318. // non-intersecting.
  319. const auto & has_overlapping_bbox = [](
  320. const Eigen::PlainObjectBase<DerivedV> & V,
  321. const MatrixXG & A,
  322. const MatrixXG & B)->bool
  323. {
  324. const auto & bounding_box = [](
  325. const Eigen::PlainObjectBase<DerivedV> & V,
  326. const MatrixXG & F)->
  327. DerivedV
  328. {
  329. DerivedV BB(2,3);
  330. BB<<
  331. 1e26,1e26,1e26,
  332. -1e26,-1e26,-1e26;
  333. const size_t m = F.rows();
  334. for(size_t f = 0;f<m;f++)
  335. {
  336. for(size_t c = 0;c<3;c++)
  337. {
  338. const auto & vfc = V.row(F(f,c)).eval();
  339. BB(0,0) = std::min(BB(0,0), vfc(0,0));
  340. BB(0,1) = std::min(BB(0,1), vfc(0,1));
  341. BB(0,2) = std::min(BB(0,2), vfc(0,2));
  342. BB(1,0) = std::max(BB(1,0), vfc(0,0));
  343. BB(1,1) = std::max(BB(1,1), vfc(0,1));
  344. BB(1,2) = std::max(BB(1,2), vfc(0,2));
  345. }
  346. }
  347. return BB;
  348. };
  349. // A lot of the time we're dealing with unrelated, distant components: cull
  350. // them.
  351. DerivedV ABB = bounding_box(V,A);
  352. DerivedV BBB = bounding_box(V,B);
  353. if( (BBB.row(0)-ABB.row(1)).maxCoeff()>0 ||
  354. (ABB.row(0)-BBB.row(1)).maxCoeff()>0 )
  355. {
  356. // bounding boxes do not overlap
  357. return false;
  358. } else {
  359. return true;
  360. }
  361. };
  362. // Reject components which are completely inside other components
  363. vector<bool> keep(ncc,true);
  364. size_t nG = 0;
  365. // This is O( ncc * ncc * m)
  366. for(size_t id = 0;id<ncc;id++)
  367. {
  368. if (!keep[id]) continue;
  369. std::vector<size_t> unresolved;
  370. for(size_t oid = 0;oid<ncc;oid++)
  371. {
  372. if(id == oid || !keep[oid])
  373. {
  374. continue;
  375. }
  376. if (has_overlapping_bbox(V, vG[id], vG[oid])) {
  377. unresolved.push_back(oid);
  378. }
  379. }
  380. const size_t num_unresolved_components = unresolved.size();
  381. DerivedV query_points(num_unresolved_components, 3);
  382. for (size_t i=0; i<num_unresolved_components; i++) {
  383. const size_t oid = unresolved[i];
  384. DerivedF f = vG[oid].row(0);
  385. query_points(i,0) = (V(f(0,0), 0) + V(f(0,1), 0) + V(f(0,2), 0))/3.0;
  386. query_points(i,1) = (V(f(0,0), 1) + V(f(0,1), 1) + V(f(0,2), 1))/3.0;
  387. query_points(i,2) = (V(f(0,0), 2) + V(f(0,1), 2) + V(f(0,2), 2))/3.0;
  388. }
  389. Eigen::VectorXi inside;
  390. igl::copyleft::cgal::points_inside_component(V, vG[id], query_points, inside);
  391. assert((size_t)inside.size() == num_unresolved_components);
  392. for (size_t i=0; i<num_unresolved_components; i++) {
  393. if (inside(i, 0)) {
  394. const size_t oid = unresolved[i];
  395. keep[oid] = false;
  396. }
  397. }
  398. }
  399. for (size_t id = 0; id<ncc; id++) {
  400. if (keep[id]) {
  401. nG += vJ[id].rows();
  402. }
  403. }
  404. // collect G and J across components
  405. G.resize(nG,3);
  406. J.resize(nG,1);
  407. {
  408. size_t off = 0;
  409. for(Index id = 0;id<(Index)ncc;id++)
  410. {
  411. if(keep[id])
  412. {
  413. assert(vG[id].rows() == vJ[id].rows());
  414. G.block(off,0,vG[id].rows(),vG[id].cols()) = vG[id];
  415. J.block(off,0,vJ[id].rows(),vJ[id].cols()) = vJ[id];
  416. off += vG[id].rows();
  417. }
  418. }
  419. }
  420. }
  421. #ifdef IGL_STATIC_LIBRARY
  422. // Explicit template instantiation
  423. // generated by autoexplicit.sh
  424. template void igl::copyleft::cgal::outer_hull_legacy<Eigen::Matrix<CGAL::Epeck::FT, -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> >(Eigen::PlainObjectBase<Eigen::Matrix<CGAL::Epeck::FT, -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> >&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> >&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> >&);
  425. template void igl::copyleft::cgal::outer_hull_legacy< Eigen::Matrix<double, -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> >(Eigen::PlainObjectBase<Eigen::Matrix<double, -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> > &, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> > &, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, 1, 0, -1, 1> > &);
  426. template void igl::copyleft::cgal::outer_hull_legacy<Eigen::Matrix<double, -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> >(Eigen::PlainObjectBase<Eigen::Matrix<double, -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> >&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> >&, Eigen::PlainObjectBase<Eigen::Matrix<int, -1, -1, 0, -1, -1> >&);
  427. #ifdef WIN32
  428. #endif
  429. #endif