SelfIntersectMesh.h 27 KB

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  1. // This file is part of libigl, a simple c++ geometry processing library.
  2. //
  3. // Copyright (C) 2014 Alec Jacobson <alecjacobson@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. #ifndef IGL_COPYLEFT_CGAL_SELFINTERSECTMESH_H
  9. #define IGL_COPYLEFT_CGAL_SELFINTERSECTMESH_H
  10. #include "CGAL_includes.hpp"
  11. #include "RemeshSelfIntersectionsParam.h"
  12. #include <Eigen/Dense>
  13. #include <list>
  14. #include <map>
  15. #include <vector>
  16. //#define IGL_SELFINTERSECTMESH_DEBUG
  17. #ifndef IGL_FIRST_HIT_EXCEPTION
  18. #define IGL_FIRST_HIT_EXCEPTION 10
  19. #endif
  20. // The easiest way to keep track of everything is to use a class
  21. namespace igl
  22. {
  23. namespace copyleft
  24. {
  25. namespace cgal
  26. {
  27. // Kernel is a CGAL kernel like:
  28. // CGAL::Exact_predicates_inexact_constructions_kernel
  29. // or
  30. // CGAL::Exact_predicates_exact_constructions_kernel
  31. template <
  32. typename Kernel,
  33. typename DerivedV,
  34. typename DerivedF,
  35. typename DerivedVV,
  36. typename DerivedFF,
  37. typename DerivedIF,
  38. typename DerivedJ,
  39. typename DerivedIM>
  40. class SelfIntersectMesh
  41. {
  42. typedef
  43. SelfIntersectMesh<
  44. Kernel,
  45. DerivedV,
  46. DerivedF,
  47. DerivedVV,
  48. DerivedFF,
  49. DerivedIF,
  50. DerivedJ,
  51. DerivedIM> Self;
  52. public:
  53. // 3D Primitives
  54. typedef CGAL::Point_3<Kernel> Point_3;
  55. typedef CGAL::Segment_3<Kernel> Segment_3;
  56. typedef CGAL::Triangle_3<Kernel> Triangle_3;
  57. typedef CGAL::Plane_3<Kernel> Plane_3;
  58. typedef CGAL::Tetrahedron_3<Kernel> Tetrahedron_3;
  59. //typedef CGAL::Polyhedron_3<Kernel> Polyhedron_3;
  60. //typedef CGAL::Nef_polyhedron_3<Kernel> Nef_polyhedron_3;
  61. // 2D Primitives
  62. typedef CGAL::Point_2<Kernel> Point_2;
  63. typedef CGAL::Segment_2<Kernel> Segment_2;
  64. typedef CGAL::Triangle_2<Kernel> Triangle_2;
  65. // 2D Constrained Delaunay Triangulation types
  66. typedef CGAL::Triangulation_vertex_base_2<Kernel> TVB_2;
  67. typedef CGAL::Constrained_triangulation_face_base_2<Kernel> CTFB_2;
  68. typedef CGAL::Triangulation_data_structure_2<TVB_2,CTFB_2> TDS_2;
  69. typedef CGAL::Exact_intersections_tag Itag;
  70. typedef CGAL::Constrained_Delaunay_triangulation_2<Kernel,TDS_2,Itag>
  71. CDT_2;
  72. typedef CGAL::Constrained_triangulation_plus_2<CDT_2> CDT_plus_2;
  73. // Axis-align boxes for all-pairs self-intersection detection
  74. typedef std::vector<Triangle_3> Triangles;
  75. typedef typename Triangles::iterator TrianglesIterator;
  76. typedef typename Triangles::const_iterator TrianglesConstIterator;
  77. typedef
  78. CGAL::Box_intersection_d::Box_with_handle_d<double,3,TrianglesIterator>
  79. Box;
  80. // Input mesh
  81. const Eigen::PlainObjectBase<DerivedV> & V;
  82. const Eigen::PlainObjectBase<DerivedF> & F;
  83. // Number of self-intersecting triangle pairs
  84. typedef typename DerivedF::Index Index;
  85. Index count;
  86. typedef std::vector<CGAL::Object> ObjectList;
  87. // Using a vector here makes this **not** output sensitive
  88. Triangles T;
  89. typedef std::vector<Index> IndexList;
  90. IndexList lIF;
  91. // #F-long list of faces with intersections mapping to the order in
  92. // which they were first found
  93. std::map<Index,std::pair<Index,ObjectList> > offending;
  94. // Make a short name for the edge map's key
  95. typedef std::pair<Index,Index> EMK;
  96. // Make a short name for the type stored at each edge, the edge map's
  97. // value
  98. typedef std::vector<Index> EMV;
  99. // Make a short name for the edge map
  100. typedef std::map<EMK,EMV> EdgeMap;
  101. // Maps edges of offending faces to all incident offending faces
  102. EdgeMap edge2faces;
  103. public:
  104. RemeshSelfIntersectionsParam params;
  105. public:
  106. // Constructs (VV,FF) a new mesh with self-intersections of (V,F)
  107. // subdivided
  108. //
  109. // See also: remesh_self_intersections.h
  110. inline SelfIntersectMesh(
  111. const Eigen::PlainObjectBase<DerivedV> & V,
  112. const Eigen::PlainObjectBase<DerivedF> & F,
  113. const RemeshSelfIntersectionsParam & params,
  114. Eigen::PlainObjectBase<DerivedVV> & VV,
  115. Eigen::PlainObjectBase<DerivedFF> & FF,
  116. Eigen::PlainObjectBase<DerivedIF> & IF,
  117. Eigen::PlainObjectBase<DerivedJ> & J,
  118. Eigen::PlainObjectBase<DerivedIM> & IM);
  119. private:
  120. // Helper function to mark a face as offensive
  121. //
  122. // Inputs:
  123. // f index of face in F
  124. inline void mark_offensive(const Index f);
  125. // Helper function to count intersections between faces
  126. //
  127. // Input:
  128. // fa index of face A in F
  129. // fb index of face B in F
  130. inline void count_intersection( const Index fa, const Index fb);
  131. // Helper function for box_intersect. Intersect two triangles A and B,
  132. // append the intersection object (point,segment,triangle) to a running
  133. // list for A and B
  134. //
  135. // Inputs:
  136. // A triangle in 3D
  137. // B triangle in 3D
  138. // fa index of A in F (and key into offending)
  139. // fb index of A in F (and key into offending)
  140. // Returns true only if A intersects B
  141. //
  142. inline bool intersect(
  143. const Triangle_3 & A,
  144. const Triangle_3 & B,
  145. const Index fa,
  146. const Index fb);
  147. // Helper function for box_intersect. In the case where A and B have
  148. // already been identified to share a vertex, then we only want to add
  149. // possible segment intersections. Assumes truly duplicate triangles are
  150. // not given as input
  151. //
  152. // Inputs:
  153. // A triangle in 3D
  154. // B triangle in 3D
  155. // fa index of A in F (and key into offending)
  156. // fb index of B in F (and key into offending)
  157. // va index of shared vertex in A (and key into offending)
  158. // vb index of shared vertex in B (and key into offending)
  159. //// Returns object of intersection (should be Segment or point)
  160. // Returns true if intersection (besides shared point)
  161. //
  162. inline bool single_shared_vertex(
  163. const Triangle_3 & A,
  164. const Triangle_3 & B,
  165. const Index fa,
  166. const Index fb,
  167. const Index va,
  168. const Index vb);
  169. // Helper handling one direction
  170. inline bool single_shared_vertex(
  171. const Triangle_3 & A,
  172. const Triangle_3 & B,
  173. const Index fa,
  174. const Index fb,
  175. const Index va);
  176. // Helper function for box_intersect. In the case where A and B have
  177. // already been identified to share two vertices, then we only want to add
  178. // a possible coplanar (Triangle) intersection. Assumes truly degenerate
  179. // facets are not givin as input.
  180. inline bool double_shared_vertex(
  181. const Triangle_3 & A,
  182. const Triangle_3 & B,
  183. const Index fa,
  184. const Index fb,
  185. const std::vector<std::pair<Index,Index> > shared);
  186. public:
  187. // Callback function called during box self intersections test. Means
  188. // boxes a and b intersect. This method then checks if the triangles in
  189. // each box intersect and if so, then processes the intersections
  190. //
  191. // Inputs:
  192. // a box containing a triangle
  193. // b box containing a triangle
  194. inline void box_intersect(const Box& a, const Box& b);
  195. private:
  196. // Compute 2D delaunay triangulation of a given 3d triangle and a list of
  197. // intersection objects (points,segments,triangles). CGAL uses an affine
  198. // projection rather than an isometric projection, so we're not
  199. // guaranteed that the 2D delaunay triangulation here will be a delaunay
  200. // triangulation in 3D.
  201. //
  202. // Inputs:
  203. // A triangle in 3D
  204. // A_objects_3 updated list of intersection objects for A
  205. // Outputs:
  206. // cdt Contrained delaunay triangulation in projected 2D plane
  207. public:
  208. // Getters:
  209. //const IndexList& get_lIF() const{ return lIF;}
  210. static inline void box_intersect_static(
  211. SelfIntersectMesh * SIM,
  212. const Box &a,
  213. const Box &b);
  214. };
  215. }
  216. }
  217. }
  218. // Implementation
  219. #include "mesh_to_cgal_triangle_list.h"
  220. #include "remesh_intersections.h"
  221. #include "remesh_intersections.h"
  222. #include "../../REDRUM.h"
  223. #include "../../get_seconds.h"
  224. #include "../../C_STR.h"
  225. #include <functional>
  226. #include <algorithm>
  227. #include <exception>
  228. #include <cassert>
  229. #include <iostream>
  230. // References:
  231. // http://minregret.googlecode.com/svn/trunk/skyline/src/extern/CGAL-3.3.1/examples/Polyhedron/polyhedron_self_intersection.cpp
  232. // http://www.cgal.org/Manual/3.9/examples/Boolean_set_operations_2/do_intersect.cpp
  233. // Q: Should we be using CGAL::Polyhedron_3?
  234. // A: No! Input is just a list of unoriented triangles. Polyhedron_3 requires
  235. // a 2-manifold.
  236. // A: But! It seems we could use CGAL::Triangulation_3. Though it won't be easy
  237. // to take advantage of functions like insert_in_facet because we want to
  238. // constrain segments. Hmmm. Actualy Triangulation_3 doesn't look right...
  239. //static void box_intersect(SelfIntersectMesh * SIM,const Box & A, const Box & B)
  240. //{
  241. // return SIM->box_intersect(A,B);
  242. //}
  243. // CGAL's box_self_intersection_d uses C-style function callbacks without
  244. // userdata. This is a leapfrog method for calling a member function. It should
  245. // be bound as if the prototype was:
  246. // static void box_intersect(const Box &a, const Box &b)
  247. // using boost:
  248. // boost::function<void(const Box &a,const Box &b)> cb
  249. // = boost::bind(&::box_intersect, this, _1,_2);
  250. //
  251. template <
  252. typename Kernel,
  253. typename DerivedV,
  254. typename DerivedF,
  255. typename DerivedVV,
  256. typename DerivedFF,
  257. typename DerivedIF,
  258. typename DerivedJ,
  259. typename DerivedIM>
  260. inline void igl::copyleft::cgal::SelfIntersectMesh<
  261. Kernel,
  262. DerivedV,
  263. DerivedF,
  264. DerivedVV,
  265. DerivedFF,
  266. DerivedIF,
  267. DerivedJ,
  268. DerivedIM>::box_intersect_static(
  269. Self * SIM,
  270. const typename Self::Box &a,
  271. const typename Self::Box &b)
  272. {
  273. SIM->box_intersect(a,b);
  274. }
  275. template <
  276. typename Kernel,
  277. typename DerivedV,
  278. typename DerivedF,
  279. typename DerivedVV,
  280. typename DerivedFF,
  281. typename DerivedIF,
  282. typename DerivedJ,
  283. typename DerivedIM>
  284. inline igl::copyleft::cgal::SelfIntersectMesh<
  285. Kernel,
  286. DerivedV,
  287. DerivedF,
  288. DerivedVV,
  289. DerivedFF,
  290. DerivedIF,
  291. DerivedJ,
  292. DerivedIM>::SelfIntersectMesh(
  293. const Eigen::PlainObjectBase<DerivedV> & V,
  294. const Eigen::PlainObjectBase<DerivedF> & F,
  295. const RemeshSelfIntersectionsParam & params,
  296. Eigen::PlainObjectBase<DerivedVV> & VV,
  297. Eigen::PlainObjectBase<DerivedFF> & FF,
  298. Eigen::PlainObjectBase<DerivedIF> & IF,
  299. Eigen::PlainObjectBase<DerivedJ> & J,
  300. Eigen::PlainObjectBase<DerivedIM> & IM):
  301. V(V),
  302. F(F),
  303. count(0),
  304. T(),
  305. lIF(),
  306. offending(),
  307. edge2faces(),
  308. params(params)
  309. {
  310. using namespace std;
  311. using namespace Eigen;
  312. #ifdef IGL_SELFINTERSECTMESH_DEBUG
  313. const auto & tictoc = []()
  314. {
  315. static double t_start = igl::get_seconds();
  316. double diff = igl::get_seconds()-t_start;
  317. t_start += diff;
  318. return diff;
  319. };
  320. tictoc();
  321. #endif
  322. // Compute and process self intersections
  323. mesh_to_cgal_triangle_list(V,F,T);
  324. #ifdef IGL_SELFINTERSECTMESH_DEBUG
  325. cout<<"mesh_to_cgal_triangle_list: "<<tictoc()<<endl;
  326. #endif
  327. // http://www.cgal.org/Manual/latest/doc_html/cgal_manual/Box_intersection_d/Chapter_main.html#Section_63.5
  328. // Create the corresponding vector of bounding boxes
  329. std::vector<Box> boxes;
  330. boxes.reserve(T.size());
  331. for (
  332. TrianglesIterator tit = T.begin();
  333. tit != T.end();
  334. ++tit)
  335. {
  336. boxes.push_back(Box(tit->bbox(), tit));
  337. }
  338. // Leapfrog callback
  339. std::function<void(const Box &a,const Box &b)> cb =
  340. std::bind(&box_intersect_static, this,
  341. // Explicitly use std namespace to avoid confusion with boost (who puts
  342. // _1 etc. in global namespace)
  343. std::placeholders::_1,
  344. std::placeholders::_2);
  345. #ifdef IGL_SELFINTERSECTMESH_DEBUG
  346. cout<<"boxes and bind: "<<tictoc()<<endl;
  347. #endif
  348. // Run the self intersection algorithm with all defaults
  349. try{
  350. CGAL::box_self_intersection_d(boxes.begin(), boxes.end(),cb);
  351. }catch(int e)
  352. {
  353. // Rethrow if not IGL_FIRST_HIT_EXCEPTION
  354. if(e != IGL_FIRST_HIT_EXCEPTION)
  355. {
  356. throw e;
  357. }
  358. // Otherwise just fall through
  359. }
  360. #ifdef IGL_SELFINTERSECTMESH_DEBUG
  361. cout<<"box_self_intersection_d: "<<tictoc()<<endl;
  362. #endif
  363. // Convert lIF to Eigen matrix
  364. assert(lIF.size()%2 == 0);
  365. IF.resize(lIF.size()/2,2);
  366. {
  367. Index i=0;
  368. for(
  369. typename IndexList::const_iterator ifit = lIF.begin();
  370. ifit!=lIF.end();
  371. )
  372. {
  373. IF(i,0) = (*ifit);
  374. ifit++;
  375. IF(i,1) = (*ifit);
  376. ifit++;
  377. i++;
  378. }
  379. }
  380. #ifdef IGL_SELFINTERSECTMESH_DEBUG
  381. cout<<"IF: "<<tictoc()<<endl;
  382. #endif
  383. if(params.detect_only)
  384. {
  385. return;
  386. }
  387. remesh_intersections(V,F,T,offending,edge2faces,VV,FF,J,IM);
  388. // Q: Does this give the same result as TETGEN?
  389. // A: For the cow and beast, yes.
  390. // Q: Is tetgen faster than this CGAL implementation?
  391. // A: Well, yes. But Tetgen is only solving the detection (predicates)
  392. // problem. This is also appending the intersection objects (construction).
  393. // But maybe tetgen is still faster for the detection part. For example, this
  394. // CGAL implementation on the beast takes 98 seconds but tetgen detection
  395. // takes 14 seconds
  396. }
  397. template <
  398. typename Kernel,
  399. typename DerivedV,
  400. typename DerivedF,
  401. typename DerivedVV,
  402. typename DerivedFF,
  403. typename DerivedIF,
  404. typename DerivedJ,
  405. typename DerivedIM>
  406. inline void igl::copyleft::cgal::SelfIntersectMesh<
  407. Kernel,
  408. DerivedV,
  409. DerivedF,
  410. DerivedVV,
  411. DerivedFF,
  412. DerivedIF,
  413. DerivedJ,
  414. DerivedIM>::mark_offensive(const Index f)
  415. {
  416. using namespace std;
  417. lIF.push_back(f);
  418. if(offending.count(f) == 0)
  419. {
  420. // first time marking, initialize with new id and empty list
  421. const Index id = offending.size();
  422. offending[f] = {id,{}};
  423. for(Index e = 0; e<3;e++)
  424. {
  425. // append face to edge's list
  426. Index i = F(f,(e+1)%3) < F(f,(e+2)%3) ? F(f,(e+1)%3) : F(f,(e+2)%3);
  427. Index j = F(f,(e+1)%3) < F(f,(e+2)%3) ? F(f,(e+2)%3) : F(f,(e+1)%3);
  428. edge2faces[EMK(i,j)].push_back(f);
  429. }
  430. }
  431. }
  432. template <
  433. typename Kernel,
  434. typename DerivedV,
  435. typename DerivedF,
  436. typename DerivedVV,
  437. typename DerivedFF,
  438. typename DerivedIF,
  439. typename DerivedJ,
  440. typename DerivedIM>
  441. inline void igl::copyleft::cgal::SelfIntersectMesh<
  442. Kernel,
  443. DerivedV,
  444. DerivedF,
  445. DerivedVV,
  446. DerivedFF,
  447. DerivedIF,
  448. DerivedJ,
  449. DerivedIM>::count_intersection(
  450. const Index fa,
  451. const Index fb)
  452. {
  453. mark_offensive(fa);
  454. mark_offensive(fb);
  455. this->count++;
  456. // We found the first intersection
  457. if(params.first_only && this->count >= 1)
  458. {
  459. throw IGL_FIRST_HIT_EXCEPTION;
  460. }
  461. }
  462. template <
  463. typename Kernel,
  464. typename DerivedV,
  465. typename DerivedF,
  466. typename DerivedVV,
  467. typename DerivedFF,
  468. typename DerivedIF,
  469. typename DerivedJ,
  470. typename DerivedIM>
  471. inline bool igl::copyleft::cgal::SelfIntersectMesh<
  472. Kernel,
  473. DerivedV,
  474. DerivedF,
  475. DerivedVV,
  476. DerivedFF,
  477. DerivedIF,
  478. DerivedJ,
  479. DerivedIM>::intersect(
  480. const Triangle_3 & A,
  481. const Triangle_3 & B,
  482. const Index fa,
  483. const Index fb)
  484. {
  485. // Determine whether there is an intersection
  486. if(!CGAL::do_intersect(A,B))
  487. {
  488. return false;
  489. }
  490. count_intersection(fa,fb);
  491. if(!params.detect_only)
  492. {
  493. // Construct intersection
  494. CGAL::Object result = CGAL::intersection(A,B);
  495. offending[fa].second.push_back(result);
  496. offending[fb].second.push_back(result);
  497. }
  498. return true;
  499. }
  500. template <
  501. typename Kernel,
  502. typename DerivedV,
  503. typename DerivedF,
  504. typename DerivedVV,
  505. typename DerivedFF,
  506. typename DerivedIF,
  507. typename DerivedJ,
  508. typename DerivedIM>
  509. inline bool igl::copyleft::cgal::SelfIntersectMesh<
  510. Kernel,
  511. DerivedV,
  512. DerivedF,
  513. DerivedVV,
  514. DerivedFF,
  515. DerivedIF,
  516. DerivedJ,
  517. DerivedIM>::single_shared_vertex(
  518. const Triangle_3 & A,
  519. const Triangle_3 & B,
  520. const Index fa,
  521. const Index fb,
  522. const Index va,
  523. const Index vb)
  524. {
  525. ////using namespace std;
  526. //CGAL::Object result = CGAL::intersection(A,B);
  527. //if(CGAL::object_cast<Segment_3 >(&result))
  528. //{
  529. // // Append to each triangle's running list
  530. // F_objects[fa].push_back(result);
  531. // F_objects[fb].push_back(result);
  532. // count_intersection(fa,fb);
  533. //}else
  534. //{
  535. // // Then intersection must be at point
  536. // // And point must be at shared vertex
  537. // assert(CGAL::object_cast<Point_3>(&result));
  538. //}
  539. if(single_shared_vertex(A,B,fa,fb,va))
  540. {
  541. return true;
  542. }
  543. return single_shared_vertex(B,A,fb,fa,vb);
  544. }
  545. template <
  546. typename Kernel,
  547. typename DerivedV,
  548. typename DerivedF,
  549. typename DerivedVV,
  550. typename DerivedFF,
  551. typename DerivedIF,
  552. typename DerivedJ,
  553. typename DerivedIM>
  554. inline bool igl::copyleft::cgal::SelfIntersectMesh<
  555. Kernel,
  556. DerivedV,
  557. DerivedF,
  558. DerivedVV,
  559. DerivedFF,
  560. DerivedIF,
  561. DerivedJ,
  562. DerivedIM>::single_shared_vertex(
  563. const Triangle_3 & A,
  564. const Triangle_3 & B,
  565. const Index fa,
  566. const Index fb,
  567. const Index va)
  568. {
  569. // This was not a good idea. It will not handle coplanar triangles well.
  570. using namespace std;
  571. Segment_3 sa(
  572. A.vertex((va+1)%3),
  573. A.vertex((va+2)%3));
  574. if(CGAL::do_intersect(sa,B))
  575. {
  576. // can't put count_intersection(fa,fb) here since we use intersect below
  577. // and then it will be counted twice.
  578. if(params.detect_only)
  579. {
  580. count_intersection(fa,fb);
  581. return true;
  582. }
  583. CGAL::Object result = CGAL::intersection(sa,B);
  584. if(const Point_3 * p = CGAL::object_cast<Point_3 >(&result))
  585. {
  586. // Single intersection --> segment from shared point to intersection
  587. CGAL::Object seg = CGAL::make_object(Segment_3(
  588. A.vertex(va),
  589. *p));
  590. count_intersection(fa,fb);
  591. offending[fa].second.push_back(seg);
  592. offending[fb].second.push_back(seg);
  593. return true;
  594. }else if(CGAL::object_cast<Segment_3 >(&result))
  595. {
  596. //cerr<<REDRUM("Coplanar at: "<<fa<<" & "<<fb<<" (single shared).")<<endl;
  597. // Must be coplanar
  598. // WRONG:
  599. //// Segment intersection --> triangle from shared point to intersection
  600. //CGAL::Object tri = CGAL::make_object(Triangle_3(
  601. // A.vertex(va),
  602. // s->vertex(0),
  603. // s->vertex(1)));
  604. //F_objects[fa].push_back(tri);
  605. //F_objects[fb].push_back(tri);
  606. //count_intersection(fa,fb);
  607. // Need to do full test. Intersection could be a general poly.
  608. bool test = intersect(A,B,fa,fb);
  609. ((void)test);
  610. assert(test && "intersect should agree with do_intersect");
  611. return true;
  612. }else
  613. {
  614. cerr<<REDRUM("Segment ∩ triangle neither point nor segment?")<<endl;
  615. assert(false);
  616. }
  617. }
  618. return false;
  619. }
  620. template <
  621. typename Kernel,
  622. typename DerivedV,
  623. typename DerivedF,
  624. typename DerivedVV,
  625. typename DerivedFF,
  626. typename DerivedIF,
  627. typename DerivedJ,
  628. typename DerivedIM>
  629. inline bool igl::copyleft::cgal::SelfIntersectMesh<
  630. Kernel,
  631. DerivedV,
  632. DerivedF,
  633. DerivedVV,
  634. DerivedFF,
  635. DerivedIF,
  636. DerivedJ,
  637. DerivedIM>::double_shared_vertex(
  638. const Triangle_3 & A,
  639. const Triangle_3 & B,
  640. const Index fa,
  641. const Index fb,
  642. const std::vector<std::pair<Index,Index> > shared)
  643. {
  644. using namespace std;
  645. // must be co-planar
  646. if(
  647. A.supporting_plane() != B.supporting_plane() &&
  648. A.supporting_plane() != B.supporting_plane().opposite())
  649. {
  650. return false;
  651. }
  652. // Since A and B are non-degenerate the intersection must be a polygon
  653. // (triangle). Either
  654. // - the vertex of A (B) opposite the shared edge of lies on B (A), or
  655. // - an edge of A intersects and edge of B without sharing a vertex
  656. // Determine if the vertex opposite edge (a0,a1) in triangle A lies in
  657. // (intersects) triangle B
  658. const auto & opposite_point_inside = [](
  659. const Triangle_3 & A, const Index a0, const Index a1, const Triangle_3 & B)
  660. -> bool
  661. {
  662. // get opposite index
  663. Index a2 = -1;
  664. for(int c = 0;c<3;c++)
  665. {
  666. if(c != a0 && c != a1)
  667. {
  668. a2 = c;
  669. break;
  670. }
  671. }
  672. assert(a2 != -1);
  673. bool ret = CGAL::do_intersect(A.vertex(a2),B);
  674. //cout<<"opposite_point_inside: "<<ret<<endl;
  675. return ret;
  676. };
  677. // Determine if edge opposite vertex va in triangle A intersects edge
  678. // opposite vertex vb in triangle B.
  679. const auto & opposite_edges_intersect = [](
  680. const Triangle_3 & A, const Index va,
  681. const Triangle_3 & B, const Index vb) -> bool
  682. {
  683. Segment_3 sa( A.vertex((va+1)%3), A.vertex((va+2)%3));
  684. Segment_3 sb( B.vertex((vb+1)%3), B.vertex((vb+2)%3));
  685. //cout<<sa<<endl;
  686. //cout<<sb<<endl;
  687. bool ret = CGAL::do_intersect(sa,sb);
  688. //cout<<"opposite_edges_intersect: "<<ret<<endl;
  689. return ret;
  690. };
  691. if(
  692. !opposite_point_inside(A,shared[0].first,shared[1].first,B) &&
  693. !opposite_point_inside(B,shared[0].second,shared[1].second,A) &&
  694. !opposite_edges_intersect(A,shared[0].first,B,shared[1].second) &&
  695. !opposite_edges_intersect(A,shared[1].first,B,shared[0].second))
  696. {
  697. return false;
  698. }
  699. // there is an intersection indeed
  700. count_intersection(fa,fb);
  701. if(params.detect_only)
  702. {
  703. return true;
  704. }
  705. // Construct intersection
  706. try
  707. {
  708. // This can fail for Epick but not Epeck
  709. CGAL::Object result = CGAL::intersection(A,B);
  710. if(!result.empty())
  711. {
  712. if(CGAL::object_cast<Segment_3 >(&result))
  713. {
  714. // not coplanar
  715. assert(false &&
  716. "Co-planar non-degenerate triangles should intersect over triangle");
  717. return false;
  718. } else if(CGAL::object_cast<Point_3 >(&result))
  719. {
  720. // this "shouldn't" happen but does for inexact
  721. assert(false &&
  722. "Co-planar non-degenerate triangles should intersect over triangle");
  723. return false;
  724. } else
  725. {
  726. // Triangle object
  727. offending[fa].second.push_back(result);
  728. offending[fb].second.push_back(result);
  729. //cerr<<REDRUM("Coplanar at: "<<fa<<" & "<<fb<<" (double shared).")<<endl;
  730. return true;
  731. }
  732. }else
  733. {
  734. // CGAL::intersection is disagreeing with do_intersect
  735. assert(false && "CGAL::intersection should agree with predicate tests");
  736. return false;
  737. }
  738. }catch(...)
  739. {
  740. // This catches some cgal assertion:
  741. // CGAL error: assertion violation!
  742. // Expression : is_finite(d)
  743. // File : /opt/local/include/CGAL/GMP/Gmpq_type.h
  744. // Line : 132
  745. // Explanation:
  746. // But only if NDEBUG is not defined, otherwise there's an uncaught
  747. // "Floating point exception: 8" SIGFPE
  748. return false;
  749. }
  750. // No intersection.
  751. return false;
  752. }
  753. template <
  754. typename Kernel,
  755. typename DerivedV,
  756. typename DerivedF,
  757. typename DerivedVV,
  758. typename DerivedFF,
  759. typename DerivedIF,
  760. typename DerivedJ,
  761. typename DerivedIM>
  762. inline void igl::copyleft::cgal::SelfIntersectMesh<
  763. Kernel,
  764. DerivedV,
  765. DerivedF,
  766. DerivedVV,
  767. DerivedFF,
  768. DerivedIF,
  769. DerivedJ,
  770. DerivedIM>::box_intersect(
  771. const Box& a,
  772. const Box& b)
  773. {
  774. using namespace std;
  775. // Could we write this as a static function of:
  776. //
  777. // F.row(fa)
  778. // F.row(fb)
  779. // A
  780. // B
  781. // index in F and T
  782. Index fa = a.handle()-T.begin();
  783. Index fb = b.handle()-T.begin();
  784. const Triangle_3 & A = *a.handle();
  785. const Triangle_3 & B = *b.handle();
  786. // I'm not going to deal with degenerate triangles, though at some point we
  787. // should
  788. assert(!a.handle()->is_degenerate());
  789. assert(!b.handle()->is_degenerate());
  790. // Number of combinatorially shared vertices
  791. Index comb_shared_vertices = 0;
  792. // Number of geometrically shared vertices (*not* including combinatorially
  793. // shared)
  794. Index geo_shared_vertices = 0;
  795. // Keep track of shared vertex indices
  796. std::vector<std::pair<Index,Index> > shared;
  797. Index ea,eb;
  798. for(ea=0;ea<3;ea++)
  799. {
  800. for(eb=0;eb<3;eb++)
  801. {
  802. if(F(fa,ea) == F(fb,eb))
  803. {
  804. comb_shared_vertices++;
  805. shared.emplace_back(ea,eb);
  806. }else if(A.vertex(ea) == B.vertex(eb))
  807. {
  808. geo_shared_vertices++;
  809. shared.emplace_back(ea,eb);
  810. }
  811. }
  812. }
  813. const Index total_shared_vertices = comb_shared_vertices + geo_shared_vertices;
  814. if(comb_shared_vertices== 3)
  815. {
  816. assert(shared.size() == 3);
  817. //// Combinatorially duplicate face, these should be removed by preprocessing
  818. //cerr<<REDRUM("Facets "<<fa<<" and "<<fb<<" are combinatorial duplicates")<<endl;
  819. goto done;
  820. }
  821. if(total_shared_vertices== 3)
  822. {
  823. assert(shared.size() == 3);
  824. //// Geometrically duplicate face, these should be removed by preprocessing
  825. //cerr<<REDRUM("Facets "<<fa<<" and "<<fb<<" are geometrical duplicates")<<endl;
  826. goto done;
  827. }
  828. //// SPECIAL CASES ARE BROKEN FOR COPLANAR TRIANGLES
  829. //if(total_shared_vertices > 0)
  830. //{
  831. // bool coplanar =
  832. // CGAL::coplanar(A.vertex(0),A.vertex(1),A.vertex(2),B.vertex(0)) &&
  833. // CGAL::coplanar(A.vertex(0),A.vertex(1),A.vertex(2),B.vertex(1)) &&
  834. // CGAL::coplanar(A.vertex(0),A.vertex(1),A.vertex(2),B.vertex(2));
  835. // if(coplanar)
  836. // {
  837. // cerr<<MAGENTAGIN("Facets "<<fa<<" and "<<fb<<
  838. // " are coplanar and share vertices")<<endl;
  839. // goto full;
  840. // }
  841. //}
  842. if(total_shared_vertices == 2)
  843. {
  844. assert(shared.size() == 2);
  845. // Q: What about coplanar?
  846. //
  847. // o o
  848. // |\ /|
  849. // | \/ |
  850. // | /\ |
  851. // |/ \|
  852. // o----o
  853. double_shared_vertex(A,B,fa,fb,shared);
  854. goto done;
  855. }
  856. assert(total_shared_vertices<=1);
  857. if(total_shared_vertices==1)
  858. {
  859. //#ifndef NDEBUG
  860. // CGAL::Object result =
  861. //#endif
  862. single_shared_vertex(A,B,fa,fb,shared[0].first,shared[0].second);
  863. //#ifndef NDEBUG
  864. // if(!CGAL::object_cast<Segment_3 >(&result))
  865. // {
  866. // const Point_3 * p = CGAL::object_cast<Point_3 >(&result);
  867. // assert(p);
  868. // for(int ea=0;ea<3;ea++)
  869. // {
  870. // for(int eb=0;eb<3;eb++)
  871. // {
  872. // if(F(fa,ea) == F(fb,eb))
  873. // {
  874. // assert(*p==A.vertex(ea));
  875. // assert(*p==B.vertex(eb));
  876. // }
  877. // }
  878. // }
  879. // }
  880. //#endif
  881. }else
  882. {
  883. //full:
  884. // No geometrically shared vertices, do general intersect
  885. intersect(*a.handle(),*b.handle(),fa,fb);
  886. }
  887. done:
  888. return;
  889. }
  890. #endif