Cleaned up a bit for better handling of point clouds
This commit is contained in:
parent
646a31972f
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58471132ba
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@ -20,44 +20,6 @@
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* for more details. *
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* for more details. *
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* *
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* *
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****************************************************************************/
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****************************************************************************/
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/****************************************************************************
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History
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$Log: not supported by cvs2svn $
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Revision 1.11 2006/06/08 13:55:16 cignoni
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Added ColorPreserving Cellbase template.
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Revision 1.10 2006/05/26 10:18:11 cignoni
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Re-adapted to ms compilers
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Revision 1.9 2006/05/25 09:37:14 cignoni
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Many changes for the different interpretation of hash_set between gcc and .net. Probably to be completed.
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Revision 1.8 2006/05/24 16:42:22 m_di_benedetto
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Corrected bbox inflation amount in case of _cellsize != 0
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Revision 1.7 2006/05/24 15:16:01 cignoni
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better comment to the init parameters
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Revision 1.6 2006/05/24 08:54:04 cignoni
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Added missing std:: to swap
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Revision 1.5 2006/05/21 06:40:31 cignoni
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Added DoubleFace management
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Revision 1.4 2006/05/19 20:49:03 m_di_benedetto
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Added check for empty generated mesh (prevent call to mesh allocator with zero vertices or faces).
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Revision 1.3 2006/05/18 22:20:53 m_di_benedetto
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added check for deleted faces and modified/added std namespace qualifier.
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Revision 1.2 2006/05/18 13:59:20 cignoni
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Some minor optimizations
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Revision 1.1 2006/05/16 21:56:06 cignoni
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First working Version
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****************************************************************************/
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#ifndef __VCGLIB_CLUSTERING
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#ifndef __VCGLIB_CLUSTERING
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#define __VCGLIB_CLUSTERING
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#define __VCGLIB_CLUSTERING
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@ -123,91 +85,90 @@ public:
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template<class MeshType >
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template<class MeshType >
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class NearestToCenter
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class NearestToCenter
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{
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{
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typedef typename MeshType::ScalarType ScalarType;
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typedef typename MeshType::ScalarType ScalarType;
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typedef typename MeshType::CoordType CoordType;
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typedef typename MeshType::CoordType CoordType;
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typedef typename MeshType::VertexType VertexType;
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typedef typename MeshType::VertexType VertexType;
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typedef typename MeshType::FaceType FaceType;
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typedef typename MeshType::FaceType FaceType;
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typedef BasicGrid<typename MeshType::ScalarType> GridType;
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typedef BasicGrid<typename MeshType::ScalarType> GridType;
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public:
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public:
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inline void AddVertex(MeshType &/*m*/, GridType &g, Point3i &pi, VertexType &v)
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inline void AddVertex(MeshType &/*m*/, GridType &g, Point3i &pi, VertexType &v)
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{
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{
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CoordType c;
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CoordType c;
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g.IPiToBoxCenter(pi,c);
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g.IPiToBoxCenter(pi,c);
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ScalarType newDist = Distance(c,v.cP());
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ScalarType newDist = Distance(c,v.cP());
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if(!valid || newDist < bestDist)
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if(!valid || newDist < bestDist)
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{
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{
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valid=true;
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valid=true;
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bestDist=newDist;
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bestDist=newDist;
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bestPos=v.cP();
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bestPos=v.cP();
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bestN=v.cN();
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bestN=v.cN();
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orig=&v;
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orig=&v;
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}
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}
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}
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}
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inline void AddFaceVertex(MeshType &/*m*/, FaceType &/*f*/, int /*i*/) { assert(0);}
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inline void AddFaceVertex(MeshType &/*m*/, FaceType &/*f*/, int /*i*/) { assert(0);}
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NearestToCenter(): valid(false){}
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NearestToCenter(): valid(false){}
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CoordType bestPos;
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CoordType bestPos;
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CoordType bestN;
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CoordType bestN;
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ScalarType bestDist;
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ScalarType bestDist;
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bool valid;
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bool valid;
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int id;
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int id;
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VertexType *orig;
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VertexType *orig;
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CoordType Pos() const
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CoordType Pos() const
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{
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{
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assert(valid);
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assert(valid);
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return bestPos;
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return bestPos;
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}
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}
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Color4b Col() const {return Color4b::White;}
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Color4b Col() const {return Color4b::White;}
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CoordType N() const {return bestN;}
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CoordType N() const {return bestN;}
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VertexType * Ptr() const {return orig;}
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VertexType * Ptr() const {return orig;}
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};
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};
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template<class MeshType>
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template<class MeshType>
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class AverageColorCell
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class AverageColorCell
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{
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{
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typedef typename MeshType::CoordType CoordType;
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typedef typename MeshType::CoordType CoordType;
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typedef typename MeshType::FaceType FaceType;
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typedef typename MeshType::FaceType FaceType;
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typedef typename MeshType::VertexType VertexType;
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typedef typename MeshType::VertexType VertexType;
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typedef BasicGrid<typename MeshType::ScalarType> GridType;
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typedef BasicGrid<typename MeshType::ScalarType> GridType;
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public:
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public:
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inline void AddFaceVertex(MeshType &/*m*/, FaceType &f, int i)
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inline void AddFaceVertex(MeshType &/*m*/, FaceType &f, int i)
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{
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{
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p+=f.cV(i)->cP();
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p+=f.cV(i)->cP();
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c+=CoordType(f.cV(i)->C()[0],f.cV(i)->C()[1],f.cV(i)->C()[2]);
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c+=CoordType(f.cV(i)->C()[0],f.cV(i)->C()[1],f.cV(i)->C()[2]);
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// we prefer to use the un-normalized face normal so small faces facing away are dropped out
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// we prefer to use the un-normalized face normal so small faces facing away are dropped out
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// and the resulting average is weighed with the size of the faces falling here.
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// and the resulting average is weighed with the size of the faces falling here.
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n+=f.cN();
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n+=f.cN();
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cnt++;
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cnt++;
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}
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}
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inline void AddVertex(MeshType &/*m*/, GridType &/*g*/, Point3i &/*pi*/, VertexType &v)
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inline void AddVertex(MeshType &m, GridType &/*g*/, Point3i &/*pi*/, VertexType &v)
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{
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{
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p+=v.cP();
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p+=v.cP();
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n+=v.cN();
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n+=v.cN();
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c+=CoordType(v.C()[0],v.C()[1],v.C()[2]);
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if(tri::HasPerVertexColor(m))
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cnt++;
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c+=CoordType(v.C()[0],v.C()[1],v.C()[2]);
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}
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cnt++;
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}
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AverageColorCell(): p(0,0,0), n(0,0,0), c(0,0,0),cnt(0){}
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AverageColorCell(): p(0,0,0), n(0,0,0), c(0,0,0),cnt(0){}
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CoordType p;
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CoordType p;
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CoordType n;
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CoordType n;
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CoordType c;
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CoordType c;
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int cnt;
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int cnt;
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int id;
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int id;
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Color4b Col() const
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Color4b Col() const
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{
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{
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return Color4b(c[0]/cnt,c[1]/cnt,c[2]/cnt,255);
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return Color4b(c[0]/cnt,c[1]/cnt,c[2]/cnt,255);
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}
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}
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CoordType N() const {return n;}
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CoordType N() const {return n;}
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VertexType * Ptr() const {return 0;}
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VertexType * Ptr() const {return 0;}
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CoordType Pos() const { return p/cnt; }
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CoordType Pos() const { return p/cnt; }
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};
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};
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@ -235,16 +196,16 @@ class Clustering
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bool DuplicateFaceParam;
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bool DuplicateFaceParam;
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// This class keeps the references to the three cells where a face has its vertexes.
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// This class keeps the references to the three cells where a face has its vertexes.
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class SimpleTri
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class SimpleTri
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{
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{
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public:
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public:
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CellType *v[3];
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CellType *v[3];
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int ii(int i) const {return *((int *)(&(v[i])));}
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int ii(int i) const {return *((int *)(&(v[i])));}
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bool operator < ( const SimpleTri &p) const {
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bool operator < ( const SimpleTri &p) const {
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return (v[2]!=p.v[2])?(v[2]<p.v[2]):
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return (v[2]!=p.v[2])?(v[2]<p.v[2]):
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(v[1]!=p.v[1])?(v[1]<p.v[1]):
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(v[1]!=p.v[1])?(v[1]<p.v[1]):
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(v[0]<p.v[0]);
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(v[0]<p.v[0]);
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}
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}
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// Sort the vertex of the face maintaining the original face orientation (it only ensure that v0 is the minimum)
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// Sort the vertex of the face maintaining the original face orientation (it only ensure that v0 is the minimum)
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void sortOrient()
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void sortOrient()
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void Init(Box3<ScalarType> _mbb, int _size, ScalarType _cellsize=0)
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void Init(Box3<ScalarType> _mbb, int _size, ScalarType _cellsize=0)
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{
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{
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GridCell.clear();
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GridCell.clear();
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TriSet.clear();
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TriSet.clear();
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Grid.bbox=_mbb;
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Grid.bbox=_mbb;
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///inflate the bb calculated
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///inflate the bb calculated
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ScalarType infl = (_cellsize == (ScalarType)0) ? (Grid.bbox.Diag() / _size) : (_cellsize);
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ScalarType infl = (_cellsize == (ScalarType)0) ? (Grid.bbox.Diag() / _size) : (_cellsize);
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Grid.bbox.min-=CoordType(infl,infl,infl);
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Grid.bbox.min-=CoordType(infl,infl,infl);
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Grid.bbox.max+=CoordType(infl,infl,infl);
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Grid.bbox.max+=CoordType(infl,infl,infl);
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Grid.dim = Grid.bbox.max - Grid.bbox.min;
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Grid.dim = Grid.bbox.max - Grid.bbox.min;
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if( _cellsize==0)
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if( _cellsize==0)
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BestDim( _size, Grid.dim, Grid.siz );
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BestDim( _size, Grid.dim, Grid.siz );
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Grid.voxel[2] = Grid.dim[2]/Grid.siz[2];
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Grid.voxel[2] = Grid.dim[2]/Grid.siz[2];
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}
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}
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BasicGrid<ScalarType> Grid;
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BasicGrid<ScalarType> Grid;
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#ifdef _MSC_VER
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#ifdef _MSC_VER
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typedef typename STDEXT::hash_set<SimpleTri>::iterator TriHashSetIterator;
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typedef typename STDEXT::hash_set<SimpleTri>::iterator TriHashSetIterator;
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#else
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#else
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struct SimpleTriHashFunc{
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struct SimpleTriHashFunc{
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inline size_t operator ()(const SimpleTri &p) const {return size_t(p);}
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inline size_t operator ()(const SimpleTri &p) const {return size_t(p);}
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};
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};
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STDEXT::hash_set<SimpleTri,SimpleTriHashFunc> TriSet;
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STDEXT::hash_set<SimpleTri,SimpleTriHashFunc> TriSet;
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typedef typename STDEXT::hash_set<SimpleTri,SimpleTriHashFunc>::iterator TriHashSetIterator;
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typedef typename STDEXT::hash_set<SimpleTri,SimpleTriHashFunc>::iterator TriHashSetIterator;
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{
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{
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FaceIterator fi;
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FaceIterator fi;
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for(fi=m.face.begin();fi!=m.face.end();++fi) if(!(*fi).IsD())
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for(fi=m.face.begin();fi!=m.face.end();++fi) if(!(*fi).IsD())
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{
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{
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HashedPoint3i pi;
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HashedPoint3i pi;
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SimpleTri st;
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SimpleTri st;
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for(int i=0;i<3;++i)
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for(int i=0;i<3;++i)
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{
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{
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Grid.PToIP((*fi).cV(i)->cP(), pi );
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Grid.PToIP((*fi).cV(i)->cP(), pi );
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st.v[i]=&(GridCell[pi]);
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st.v[i]=&(GridCell[pi]);
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st.v[i]->AddFaceVertex(m,*(fi),i);
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st.v[i]->AddFaceVertex(m,*(fi),i);
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}
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}
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if( (st.v[0]!=st.v[1]) && (st.v[0]!=st.v[2]) && (st.v[1]!=st.v[2]) )
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if( (st.v[0]!=st.v[1]) && (st.v[0]!=st.v[2]) && (st.v[1]!=st.v[2]) )
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{ // if we allow the duplication of faces we sort the vertex only partially (to maintain the original face orientation)
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{ // if we allow the duplication of faces we sort the vertex only partially (to maintain the original face orientation)
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if(DuplicateFaceParam) st.sortOrient();
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if(DuplicateFaceParam) st.sortOrient();
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else st.sort();
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else st.sort();
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TriSet.insert(st);
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TriSet.insert(st);
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}
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}
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// printf("Inserted %8i triangles, clustered to %8i tri and %i cells\n",distance(m.face.begin(),fi),TriSet.size(),GridCell.size());
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// printf("Inserted %8i triangles, clustered to %8i tri and %i cells\n",distance(m.face.begin(),fi),TriSet.size(),GridCell.size());
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}
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}
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}
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}
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int CountPointSet() {return GridCell.size(); }
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int CountPointSet() {return GridCell.size(); }
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void SelectPointSet(MeshType &m)
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void SelectPointSet(MeshType &m)
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{
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{
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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UpdateSelection<MeshType>::VertexClear(m);
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UpdateSelection<MeshType>::VertexClear(m);
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for(gi=GridCell.begin();gi!=GridCell.end();++gi)
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for(gi=GridCell.begin();gi!=GridCell.end();++gi)
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{
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{
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VertexType *ptr=(*gi).second.Ptr();
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VertexType *ptr=(*gi).second.Ptr();
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if(ptr && ( ptr >= &*m.vert.begin() ) && ( ptr <= &*(m.vert.end() - 1) ) )
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if(ptr && ( ptr >= &*m.vert.begin() ) && ( ptr <= &*(m.vert.end() - 1) ) )
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ptr->SetS();
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ptr->SetS();
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}
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}
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}
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}
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void ExtractPointSet(MeshType &m)
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void ExtractPointSet(MeshType &m)
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{
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{
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m.Clear();
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m.Clear();
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if (GridCell.empty()) return;
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if (GridCell.empty()) return;
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Allocator<MeshType>::AddVertices(m,GridCell.size());
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Allocator<MeshType>::AddVertices(m,GridCell.size());
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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{
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{
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m.vert[i].P()=(*gi).second.Pos();
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m.vert[i].P()=(*gi).second.Pos();
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m.vert[i].N()=(*gi).second.N();
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m.vert[i].N()=(*gi).second.N();
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m.vert[i].C()=(*gi).second.Col();
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if(HasPerVertexColor(m))
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++i;
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m.vert[i].C()=(*gi).second.Col();
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++i;
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}
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}
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}
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}
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void ExtractMesh(MeshType &m)
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void ExtractMesh(MeshType &m)
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{
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{
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m.Clear();
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m.Clear();
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if (TriSet.empty() || GridCell.empty())
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if (GridCell.empty()) return;
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{
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return;
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}
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Allocator<MeshType>::AddVertices(m,GridCell.size());
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Allocator<MeshType>::AddVertices(m,GridCell.size());
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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typename STDEXT::hash_map<HashedPoint3i,CellType>::iterator gi;
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@ -400,11 +358,13 @@ class Clustering
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for(gi=GridCell.begin();gi!=GridCell.end();++gi)
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for(gi=GridCell.begin();gi!=GridCell.end();++gi)
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{
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{
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m.vert[i].P()=(*gi).second.Pos();
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m.vert[i].P()=(*gi).second.Pos();
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if(m.vert[i].HasColor())
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m.vert[i].N()=(*gi).second.N();
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if(HasPerVertexColor(m))
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m.vert[i].C()=(*gi).second.Col();
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m.vert[i].C()=(*gi).second.Col();
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(*gi).second.id=i;
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(*gi).second.id=i;
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++i;
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++i;
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}
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}
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Allocator<MeshType>::AddFaces(m,TriSet.size());
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Allocator<MeshType>::AddFaces(m,TriSet.size());
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TriHashSetIterator ti;
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TriHashSetIterator ti;
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i=0;
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i=0;
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@ -417,7 +377,7 @@ class Clustering
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// the best orientation according to the averaged normal
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// the best orientation according to the averaged normal
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if(!DuplicateFaceParam)
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if(!DuplicateFaceParam)
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{
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{
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CoordType N=vcg::Normal(m.face[i]);
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CoordType N=vcg::Normal(m.face[i]);
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int badOrient=0;
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int badOrient=0;
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if( N.dot((*ti).v[0]->N()) <0) ++badOrient;
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if( N.dot((*ti).v[0]->N()) <0) ++badOrient;
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if( N.dot((*ti).v[1]->N()) <0) ++badOrient;
|
if( N.dot((*ti).v[1]->N()) <0) ++badOrient;
|
||||||
|
|
|
||||||
Loading…
Reference in New Issue