125{
126 if ( argc <= 1 )
127 {
128 usage( argc, argv );
129 return 0;
130 }
132 using namespace DGtal;
139
140 std::string input = argv[ 1 ];
141 const double R = argc > 2 ? atof( argv[ 2 ] ) : 2.0;
142 const int m = argc > 3 ? atoi( argv[ 3 ] ) : 0;
143 const int M = argc > 4 ? atoi( argv[ 4 ] ) : 1;
144 const double Kmax = argc > 5 ? atof( argv[ 5 ] ) : 0.33;
145
147
148 auto params = SH::defaultParameters() | SHG::defaultParameters();
149 params( "thresholdMin", m )( "thresholdMax", M )( "closed", 1);
150 params( "t-ring", 3 )( "surfaceTraversal", "Default" );
151 auto bimage = SH::makeBinaryImage( input.c_str(), params );
152 if ( bimage == nullptr )
153 {
154 trace.
error() <<
"Unable to read file <" << input.c_str() <<
">" << std::endl;
155 return 1;
156 }
157 auto K = SH::getKSpace( bimage, params );
158 auto sembedder = SH::getSCellEmbedder(
K );
159 auto embedder = SH::getCellEmbedder(
K );
160 auto surface = SH::makeDigitalSurface( bimage,
K, params );
161 auto surfels = SH::getSurfelRange(
surface, params );
162 trace.
info() <<
"- surface has " << surfels.size()<<
" surfels." << std::endl;
164
166 SM smesh;
167 std::vector< SM::Vertices > faces;
168 SH::Cell2Index c2i;
169 auto pointels = SH::getPointelRange( c2i,
surface );
170 auto vertices = SH::RealPoints( pointels.size() );
171 std::transform( pointels.cbegin(), pointels.cend(),
vertices.begin(),
172 [&] (const SH::Cell& c) { return embedder( c ); } );
173 for (
auto&& surfel : *
surface )
174 {
175 const auto primal_surfel_vtcs = SH::getPointelRange(
K, surfel );
176 SM::Vertices face;
177 for ( auto&& primal_vtx : primal_surfel_vtcs )
178 face.push_back( c2i[ primal_vtx ] );
179 faces.push_back( face );
180 }
182 faces.cbegin(), faces.cend() );
185
187
188 CNC cnc( smesh );
189
190 auto face_normals = SHG::getCTrivialNormalVectors(
surface, surfels, params );
191 smesh.setFaceNormals( face_normals.cbegin(), face_normals.cend() );
192 if ( smesh.vertexNormals().empty() )
193 smesh.computeVertexNormalsFromFaceNormals();
194
195 auto mu0 = cnc.computeMu0();
196 auto muXY = cnc.computeMuXY();
198
200
201
202 std::vector< double > K1( smesh.nbFaces() );
203 std::vector< double >
K2( smesh.nbFaces() );
204 std::vector< RealVector > D1( smesh.nbFaces() );
205 std::vector< RealVector > D2( smesh.nbFaces() );
206 for ( auto f = 0; f < smesh.nbFaces(); ++f )
207 {
208 const auto b = smesh.faceCentroid( f );
209 const auto N = smesh.faceNormals()[ f ];
210 const auto area = mu0 .measure( b, R, f );
211 const auto M = muXY.measure( b, R, f );
212 std::tie( K1[ f ], K2[ f ], D1[ f ], D2[ f ] )
213 = cnc.principalCurvatures( area, M, N );
214 }
216
218 auto K1_min_max = std::minmax_element( K1.cbegin(), K1.cend() );
219 auto K2_min_max = std::minmax_element(
K2.cbegin(),
K2.cend() );
220 std::cout << "Computed k1 curvatures:"
221 << " min=" << *K1_min_max.first << " max=" << *K1_min_max.second
222 << std::endl;
223 std::cout << "Computed k2 curvatures:"
224 << " min=" << *K2_min_max.first << " max=" << *K2_min_max.second
225 << std::endl;
227
229
230 smesh.vertexNormals() = SH::RealVectors();
231 smesh.faceNormals() = SH::RealVectors();
235 auto colorsK1 = SMW::Colors( smesh.nbFaces() );
236 auto colorsK2 = SMW::Colors( smesh.nbFaces() );
237 for ( auto i = 0; i < smesh.nbFaces(); i++ )
238 {
239 colorsK1[ i ] = colormapK1( K1[ i ] );
240 colorsK2[ i ] = colormapK2( K2[ i ] );
241 }
242 SMW::writeOBJ( "example-cnc-K1", smesh, colorsK1 );
243 SMW::writeOBJ( "example-cnc-K2", smesh, colorsK2 );
244 const auto avg_e = smesh.averageEdgeLength();
245 SH::RealPoints positions( smesh.nbFaces() );
246 for ( auto f = 0; f < positions.size(); ++f )
247 {
248 D1[ f ] *= smesh.localWindow( f );
249 positions[ f ] = smesh.faceCentroid( f ) - 0.5 * D1[ f ];
250 }
251 SH::saveVectorFieldOBJ( positions, D1, 0.05 * avg_e, SH::Colors(),
252 "example-cnc-D1",
253 SH::Color::Black, SH::Color( 0, 128, 0 ) );
254 for ( auto f = 0; f < positions.size(); ++f )
255 {
256 D2[ f ] *= smesh.localWindow( f );
257 positions[ f ] = smesh.faceCentroid( f ) - 0.5 * D2[ f ];
258 }
259 SH::saveVectorFieldOBJ( positions, D2, 0.05 * avg_e, SH::Colors(),
260 "example-cnc-D2",
261 SH::Color::Black, SH::Color(128, 0,128 ) );
263 return 0;
264}
Aim: This class is used to simplify shape and surface creation. With it, you can create new shapes an...
Aim: This class is used to simplify shape and surface creation. With it, you can create new shapes an...
CountedPtr< SH3::DigitalSurface > surface
Z3i this namespace gathers the standard of types for 3D imagery.
DGtal is the top-level namespace which contains all DGtal functions and types.
QuantifiedColorMap< TColorMap > makeQuantifiedColorMap(TColorMap colormap, int nb=50)
std::pair< typename graph_traits< DGtal::DigitalSurface< TDigitalSurfaceContainer > >::vertex_iterator, typename graph_traits< DGtal::DigitalSurface< TDigitalSurfaceContainer > >::vertex_iterator > vertices(const DGtal::DigitalSurface< TDigitalSurfaceContainer > &digSurf)
Aim: Utility class to compute curvature measures induced by (1) a corrected normal current defined by...
Aim: An helper class for writing mesh file formats (Waverfront OBJ at this point) and creating a Surf...
Aim: Represents an embedded mesh as faces and a list of vertices. Vertices may be shared among faces ...
DGtal::GradientColorMap< double > makeColorMap(double min_value, double max_value)
[curvature-measures-Includes]