Added RemoveTVertexByCollapse and RemoveTVertexByFlip methods
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@ -228,6 +228,8 @@ Initial Release
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#include<vcg/complex/trimesh/allocate.h>
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#include<vcg/complex/trimesh/update/selection.h>
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#include<vcg/complex/trimesh/update/flag.h>
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#include <vcg/complex/trimesh/update/topology.h>
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#include <vcg/space/triangle3.h>
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namespace vcg {
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@ -245,6 +247,7 @@ class ConnectedIterator
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typedef typename MeshType::FacePointer FacePointer;
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typedef typename MeshType::FaceIterator FaceIterator;
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typedef typename MeshType::FaceContainer FaceContainer;
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typedef typename vcg::Box3<ScalarType> Box3Type;
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public:
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@ -1103,6 +1106,92 @@ private:
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}
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}
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static int RemoveTVertexByFlip(MeshType &m, float threshold=40, bool repeat=true)
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{
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assert(m.HasFFTopology());
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assert(m.HasPerVertexMark());
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//Counters for logging and convergence
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int count, total = 0;
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do {
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tri::UpdateTopology<CMeshO>::FaceFace(m);
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m.UnMarkAll();
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count = 0;
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//detection stage
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for(unsigned int index = 0 ; index < m.face.size(); ++index )
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{
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CMeshO::FacePointer f = &(m.face[index]); float sides[3]; Point3<float> dummy;
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sides[0] = Distance(f->P(0), f->P(1)); sides[1] = Distance(f->P(1), f->P(2)); sides[2] = Distance(f->P(2), f->P(0));
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int i = std::find(sides, sides+3, std::max( std::max(sides[0],sides[1]), sides[2])) - (sides);
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if( m.IsMarked(f->V2(i) )) continue;
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if( PSDist(f->P2(i),f->P(i),f->P1(i),dummy)*threshold <= sides[i] )
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{
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m.Mark(f->V2(i));
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if(face::CheckFlipEdge<CMeshO::FaceType>( *f, i )) {
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// Check if EdgeFlipping improves quality
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CMeshO::FacePointer g = f->FFp(i); int k = f->FFi(i);
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Triangle3<float> t1(f->P(i), f->P1(i), f->P2(i)), t2(g->P(k), g->P1(k), g->P2(k)),
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t3(f->P(i), g->P2(k), f->P2(i)), t4(g->P(k), f->P2(i), g->P2(k));
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if ( std::min( t1.QualityFace(), t2.QualityFace() ) < std::min( t3.QualityFace(), t4.QualityFace() ))
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{
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face::FlipEdge<CMeshO::FaceType>( *f, i );
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++count; ++total;
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}
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}
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}
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}
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tri::UpdateNormals<CMeshO>::PerFace(m);
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}
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while( repeat && count );
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return total;
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}
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static int RemoveTVertexByCollapse(MeshType &m, float threshold=40, bool repeat=true)
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{
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assert(m.HasPerVertexMark());
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//Counters for logging and convergence
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int count, total = 0;
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do {
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m.UnMarkAll();
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count = 0;
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//detection stage
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for(unsigned int index = 0 ; index < m.face.size(); ++index )
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{
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CMeshO::FacePointer f = &(m.face[index]); float sides[3]; Point3<float> dummy;
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sides[0] = Distance(f->P(0), f->P(1)); sides[1] = Distance(f->P(1), f->P(2)); sides[2] = Distance(f->P(2), f->P(0));
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int i = std::find(sides, sides+3, std::max( std::max(sides[0],sides[1]), sides[2])) - (sides);
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if( m.IsMarked(f->V2(i) )) continue;
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if( PSDist(f->P2(i),f->P(i),f->P1(i),dummy)*threshold <= sides[i] )
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{
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m.Mark(f->V2(i));
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int j = Distance(dummy,f->P(i))<Distance(dummy,f->P1(i))?i:(i+1)%3;
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f->P2(i) = f->P(j); m.Mark(f->V(j));
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++count; ++total;
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}
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}
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tri::Clean<CMeshO>::RemoveDuplicateVertex(m);
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tri::Allocator<CMeshO>::CompactFaceVector(m);
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tri::Allocator<CMeshO>::CompactVertexVector(m);
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}
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while( repeat && count );
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return total;
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}
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static bool SelfIntersections(MeshType &m, std::vector<FaceType*> &ret)
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{
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//assert(FaceType::HasMark()); // Needed by the UG
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