mirror of https://github.com/CGAL/cgal
669 lines
21 KiB
C++
669 lines
21 KiB
C++
// Copyright (c) 2018 GeometryFactory (France).
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// Copyright (c) 2004-2006 INRIA Sophia-Antipolis (France).
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// Copyright (c) 2009 INRIA Sophia-Antipolis (France).
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// All rights reserved.
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//
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// This file is part of CGAL (www.cgal.org).
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// You can redistribute it and/or modify it under the terms of the GNU
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// General Public License as published by the Free Software Foundation,
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// either version 3 of the License, or (at your option) any later version.
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//
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// Licensees holding a valid commercial license may use this file in
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// accordance with the commercial license agreement provided with the software.
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//
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// This file is provided AS IS with NO WARRANTY OF ANY KIND, INCLUDING THE
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// WARRANTY OF DESIGN, MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.
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//
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// $URL$
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// $Id$
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//
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//
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// Author(s) : Laurent RINEAU, Stephane Tayeb, Maxime Gimeno
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#ifndef CGAL_VTK_IO_H
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#define CGAL_VTK_IO_H
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#include <fstream>
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#include <vector>
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#include <CGAL/Polygon_mesh_processing/internal/named_function_params.h>
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#include <CGAL/Polygon_mesh_processing/internal/named_params_helper.h>
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namespace CGAL{
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// writes the appended data into the .vtu file
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template <class FT>
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void
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write_vector(std::ostream& os,
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const std::vector<FT>& vect)
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{
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const char* buffer = reinterpret_cast<const char*>(&(vect[0]));
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std::size_t size = vect.size()*sizeof(FT);
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os.write(reinterpret_cast<const char *>(&size), sizeof(std::size_t)); // number of bytes encoded
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os.write(buffer, vect.size()*sizeof(FT)); // encoded data
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}
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// writes the cells tags before binary data is appended
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template <class C3T3>
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void
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write_cells_tag(std::ostream& os,
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const C3T3 & c3t3,
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std::map<typename C3T3::Triangulation::Vertex_handle, std::size_t> & V,
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bool binary,
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std::size_t& offset)
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{
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typedef typename C3T3::Cells_in_complex_iterator Cell_iterator;
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std::string formatattribute =
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binary ? " format=\"appended\"" : " format=\"ascii\"";
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std::string typeattribute;
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switch(sizeof(std::size_t)) {
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case 8: typeattribute = " type=\"UInt64\""; break;
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case 4: typeattribute = " type=\"UInt32\""; break;
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default: CGAL_error_msg("Unknown size of std::size_t");
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}
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// Write connectivity table
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os << " <Cells>\n"
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<< " <DataArray Name=\"connectivity\""
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<< formatattribute << typeattribute;
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if (binary) { // if binary output, just write the xml tag
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os << " offset=\"" << offset << "\"/>\n";
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offset += (4 * c3t3.number_of_cells() + 1) * sizeof(std::size_t);
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// 4 indices (size_t) per cell + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for( Cell_iterator cit = c3t3.cells_in_complex_begin() ;
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cit != c3t3.cells_in_complex_end() ;
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++cit )
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{
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for (int i=0; i<4; i++)
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os << V[cit->vertex(i)] << " ";
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}
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os << " </DataArray>\n";
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}
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// Write offsets
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os << " <DataArray Name=\"offsets\""
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<< formatattribute << typeattribute;
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if (binary) { // if binary output, just write the xml tag
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os << " offset=\"" << offset << "\"/>\n";
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offset += (c3t3.number_of_cells() + 1) * sizeof(std::size_t);
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// 1 offset (size_t) per cell + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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std::size_t cells_offset = 0;
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for( Cell_iterator cit = c3t3.cells_in_complex_begin() ;
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cit != c3t3.cells_in_complex_end() ;
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++cit )
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{
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cells_offset += 4;
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os << cells_offset << " ";
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}
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os << " </DataArray>\n";
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}
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// Write cell type (tetrahedra == 10)
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os << " <DataArray Name=\"types\""
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<< formatattribute << " type=\"UInt8\"";
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if (binary) {
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os << " offset=\"" << offset << "\"/>\n";
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offset += c3t3.number_of_cells() + sizeof(std::size_t);
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// 1 unsigned char per cell + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for( Cell_iterator cit = c3t3.cells_in_complex_begin() ;
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cit != c3t3.cells_in_complex_end() ;
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++cit )
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os << "10 ";
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os << " </DataArray>\n";
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}
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os << " </Cells>\n";
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}
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// writes the cells appended data at the end of the .vtu file
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template <class C3T3>
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void
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write_cells(std::ostream& os,
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const C3T3 & c3t3,
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std::map<typename C3T3::Triangulation::Vertex_handle, std::size_t> & V,
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std::vector<float>& mids)
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{
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typedef typename C3T3::Cells_in_complex_iterator Cell_iterator;
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std::vector<std::size_t> connectivity_table;
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std::vector<std::size_t> offsets;
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std::vector<unsigned char> cell_type(c3t3.number_of_cells(),10); // tetrahedra == 10
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std::size_t off = 0;
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for( Cell_iterator cit = c3t3.cells_in_complex_begin() ;
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cit != c3t3.cells_in_complex_end() ;
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++cit )
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{
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off += 4;
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offsets.push_back(off);
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for (int i=0; i<4; i++)
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connectivity_table.push_back(V[cit->vertex(i)]);
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mids.push_back(cit->subdomain_index());
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}
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write_vector<std::size_t>(os,connectivity_table);
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write_vector<std::size_t>(os,offsets);
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write_vector<unsigned char>(os,cell_type);
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}
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// writes the polys appended data at the end of the .vtp file
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template <class Mesh,
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typename NamedParameters>
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void
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write_polys(std::ostream& os,
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const Mesh & mesh,
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const NamedParameters& np)
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{
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typedef typename boost::graph_traits<Mesh>::face_iterator face_iterator;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexPointMap<Mesh, NamedParameters>::const_type Vpmap;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexIndexMap<Mesh, NamedParameters>::type Vimap;
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Vimap V = choose_param(get_param(np, CGAL::internal_np::vertex_index),
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get_const_property_map(CGAL::internal_np::vertex_index, mesh));
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typedef typename boost::property_traits<Vpmap>::value_type Point_t;
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typedef typename CGAL::Kernel_traits<Point_t>::Kernel Gt;
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typedef typename Gt::FT FT;
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std::vector<std::size_t> connectivity_table;
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std::vector<std::size_t> offsets;
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std::vector<unsigned char> cell_type(num_faces(mesh),5); // triangle == 5
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std::size_t off = 0;
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for( face_iterator fit = faces(mesh).begin() ;
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fit != faces(mesh).end() ;
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++fit )
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{
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off += 3;
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offsets.push_back(off);
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BOOST_FOREACH(vertex_descriptor v,
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vertices_around_face(halfedge(*fit, mesh), mesh))
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connectivity_table.push_back(V[v]);
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}
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write_vector<std::size_t>(os,connectivity_table);
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write_vector<std::size_t>(os,offsets);
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write_vector<unsigned char>(os,cell_type);
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}
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//overload
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template <class Mesh>
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void
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write_polys(std::ostream& os,
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const Mesh & mesh)
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{
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write_polys(os, mesh, CGAL::parameters::all_default());
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}
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//todo use named params for maps
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template <class Mesh,
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typename NamedParameters>
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void
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write_polys_tag(std::ostream& os,
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const Mesh & mesh,
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bool binary,
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std::size_t& offset,
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const NamedParameters& np)
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{
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typedef typename boost::graph_traits<Mesh>::face_iterator face_iterator;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexPointMap<Mesh, NamedParameters>::const_type Vpmap;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexIndexMap<Mesh, NamedParameters>::type Vimap;
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Vimap V = choose_param(get_param(np, CGAL::internal_np::vertex_index),
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get_const_property_map(CGAL::internal_np::vertex_index, mesh));
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typedef typename boost::property_traits<Vpmap>::value_type Point_t;
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typedef typename CGAL::Kernel_traits<Point_t>::Kernel Gt;
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typedef typename Gt::FT FT;
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std::string formatattribute =
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binary ? " format=\"appended\"" : " format=\"ascii\"";
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std::string typeattribute;
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switch(sizeof(std::size_t)) {
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case 8: typeattribute = " type=\"UInt64\""; break;
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case 4: typeattribute = " type=\"UInt32\""; break;
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default: CGAL_error_msg("Unknown size of std::size_t");
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}
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// Write connectivity table
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os << " <Polys>\n"
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<< " <DataArray Name=\"connectivity\""
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<< formatattribute << typeattribute;
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if (binary) { // if binary output, just write the xml tag
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os << " offset=\"" << offset << "\"/>\n";
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offset += (3 * num_faces(mesh)+ 1) * sizeof(std::size_t);
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// 3 indices (size_t) per triangle + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for( face_iterator fit = faces(mesh).begin() ;
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fit != faces(mesh).end() ;
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++fit )
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{
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BOOST_FOREACH(vertex_descriptor v,
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vertices_around_face(halfedge(*fit, mesh), mesh))
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os << V[v] << " ";
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}
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os << " </DataArray>\n";
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}
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// Write offsets
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os << " <DataArray Name=\"offsets\""
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<< formatattribute << typeattribute;
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if (binary) { // if binary output, just write the xml tag
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os << " offset=\"" << offset << "\"/>\n";
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offset += (num_faces(mesh) + 1) * sizeof(std::size_t);
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// 1 offset (size_t) per triangle + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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std::size_t polys_offset = 0;
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for( face_iterator fit = faces(mesh).begin() ;
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fit != faces(mesh).end() ;
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++fit )
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{
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polys_offset += 3;
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os << polys_offset << " ";
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}
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os << " </DataArray>\n";
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}
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// Write cell type (triangle == 5)
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os << " <DataArray Name=\"types\""
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<< formatattribute << " type=\"UInt8\"";
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if (binary) {
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os << " offset=\"" << offset << "\"/>\n";
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offset += num_faces(mesh) + sizeof(std::size_t);
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// 1 unsigned char per cell + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for(std::size_t i = 0; i< num_faces(mesh); ++i)
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os << "5 ";
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os << " </DataArray>\n";
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}
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os << " </Polys>\n";
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}
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//overload
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template <class Mesh>
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void
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write_polys_tag(std::ostream& os,
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const Mesh & mesh,
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bool binary,
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std::size_t& offset)
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{
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write_polys_tag(os,
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mesh,
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binary,
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offset,
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CGAL::parameters::all_default());
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}
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// writes the points tags before binary data is appended
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template <class Tr>
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void
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write_points_tag(std::ostream& os,
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const Tr & tr,
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std::map<typename Tr::Vertex_handle, std::size_t> & V,
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bool binary,
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std::size_t& offset,
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std::size_t dim)
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{
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typedef typename Tr::Finite_vertices_iterator Finite_vertices_iterator;
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typedef typename Tr::Geom_traits Gt;
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typedef typename Gt::FT FT;
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std::size_t inum = 0;
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std::string format = binary ? "appended" : "ascii";
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std::string type = (sizeof(FT) == 8) ? "Float64" : "Float32";
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os << " <Points>\n"
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<< " <DataArray type =\"" << type << "\" NumberOfComponents=\""
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<<dim
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<<"\" format=\"" << format;
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if (binary) {
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os << "\" offset=\"" << offset << "\"/>\n";
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offset += dim * tr.number_of_vertices() * sizeof(FT) + sizeof(std::size_t);
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// dim coords per points + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for( Finite_vertices_iterator vit = tr.finite_vertices_begin();
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vit != tr.finite_vertices_end();
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++vit)
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{
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V[vit] = inum++;
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os << vit->point().x() << " " << vit->point().y()<< " " ;
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if(dim == 3)
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os << vit->point().z() << " ";
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}
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os << " </DataArray>\n";
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}
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os << " </Points>\n";
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}
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//todo : use namedparams for points and ids
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//overload for facegraph
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template <class Mesh,
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typename NamedParameters>
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void
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write_points_tag(std::ostream& os,
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const Mesh & mesh,
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bool binary,
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std::size_t& offset,
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const NamedParameters& np)
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{
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typedef typename boost::graph_traits<Mesh>::vertex_iterator vertex_iterator;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexPointMap<Mesh, NamedParameters>::const_type Vpmap;
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Vpmap vpm = choose_param(get_param(np, CGAL::vertex_point),
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get_const_property_map(CGAL::vertex_point, mesh));
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typedef typename boost::property_traits<Vpmap>::value_type Point_t;
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typedef typename CGAL::Kernel_traits<Point_t>::Kernel Gt;
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typedef typename Gt::FT FT;
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std::string format = binary ? "appended" : "ascii";
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std::string type = (sizeof(FT) == 8) ? "Float64" : "Float32";
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os << " <Points>\n"
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<< " <DataArray type =\"" << type << "\" NumberOfComponents=\"3\" format=\""
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<< format;
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if (binary) {
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os << "\" offset=\"" << offset << "\"/>\n";
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offset += 3 * num_vertices(mesh) * sizeof(FT) + sizeof(std::size_t);
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// 3 coords per points + length of the encoded data (size_t)
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}
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else {
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os << "\">\n";
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for( vertex_iterator vit = vertices(mesh).begin();
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vit != vertices(mesh).end();
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++vit)
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{
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os << get(vpm, *vit).x() << " " << get(vpm, *vit).y() << " "
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<< get(vpm, *vit).z() << " ";
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}
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os << " </DataArray>\n";
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}
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os << " </Points>\n";
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}
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//overload
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template <class Mesh>
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void
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write_points_tag(std::ostream& os,
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const Mesh & mesh,
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bool binary,
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std::size_t& offset)
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{
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write_points_tag(os, mesh, binary, offset, CGAL::parameters::all_default());
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}
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// writes the points appended data at the end of the .vtu file
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template <class Tr>
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void
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write_points(std::ostream& os,
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const Tr & tr,
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std::map<typename Tr::Vertex_handle, std::size_t> & V,
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std::size_t dim)
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{
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typedef typename Tr::Finite_vertices_iterator Finite_vertices_iterator;
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typedef typename Tr::Geom_traits Gt;
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typedef typename Gt::FT FT;
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std::size_t inum = 0;
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std::vector<FT> coordinates;
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for( Finite_vertices_iterator vit = tr.finite_vertices_begin();
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vit != tr.finite_vertices_end();
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++vit)
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{
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V[vit] = inum++; // binary output => the map has not been filled yet
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coordinates.push_back(vit->point().x());
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coordinates.push_back(vit->point().y());
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if(dim == 3)
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coordinates.push_back(vit->point().z());
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}
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write_vector<FT>(os,coordinates);
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}
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// writes the points appended data at the end of the .vtp file
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template <class Mesh,
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class NamedParameters>
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void
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write_polys_points(std::ostream& os,
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const Mesh & mesh,
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const NamedParameters& np)
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{
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typedef typename boost::graph_traits<Mesh>::vertex_iterator vertex_iterator;
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typedef typename CGAL::Polygon_mesh_processing::GetVertexPointMap<Mesh, NamedParameters>::const_type Vpmap;
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Vpmap vpm = choose_param(get_param(np, CGAL::vertex_point),
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get_const_property_map(CGAL::vertex_point, mesh));
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typedef typename boost::property_traits<Vpmap>::value_type Point_t;
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typedef typename CGAL::Kernel_traits<Point_t>::Kernel Gt;
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typedef typename Gt::FT FT;
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std::vector<FT> coordinates;
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for( vertex_iterator vit = vertices(mesh).begin();
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vit != vertices(mesh).end();
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++vit)
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{
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coordinates.push_back(get(vpm, *vit).x());
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coordinates.push_back(get(vpm, *vit).y());
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coordinates.push_back(get(vpm, *vit).z());
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}
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write_vector<FT>(os,coordinates);
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}
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//overload
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template <class Mesh>
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void
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write_polys_points(std::ostream& os,
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const Mesh & mesh)
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{
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write_polys_points(os, mesh, CGAL::parameters::all_default());
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}
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// writes the attribute tags before binary data is appended
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template <class T>
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void
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write_attribute_tag(std::ostream& os,
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const std::string& attr_name,
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const std::vector<T>& attribute,
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bool binary,
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std::size_t& offset)
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{
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std::string format = binary ? "appended" : "ascii";
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std::string type = (sizeof(T) == 8) ? "Float64" : "Float32";
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os << " <DataArray type=\"" << type << "\" Name=\"" << attr_name << "\" format=\"" << format;
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if (binary) {
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os << "\" offset=\"" << offset << "\"/>\n";
|
|
offset += attribute.size() * sizeof(T) + sizeof(std::size_t);
|
|
}
|
|
else {
|
|
typedef typename std::vector<T>::const_iterator Iterator;
|
|
os << "\">\n";
|
|
for (Iterator it = attribute.begin();
|
|
it != attribute.end();
|
|
++it )
|
|
os << *it << " ";
|
|
os << " </DataArray>\n";
|
|
}
|
|
}
|
|
|
|
// writes the attributes appended data at the end of the .vtu file
|
|
template <typename FT>
|
|
void
|
|
write_attributes(std::ostream& os,
|
|
const std::vector<FT>& att)
|
|
{
|
|
write_vector(os,att);
|
|
}
|
|
|
|
template <class C3t3>
|
|
void write_unstructured_grid(std::ostream& os,
|
|
const C3t3& c3t3,
|
|
std::size_t dim)
|
|
{
|
|
typedef typename C3t3::Triangulation Tr;
|
|
typedef typename Tr::Vertex_handle Vertex_handle;
|
|
const Tr& tr = c3t3.triangulation();
|
|
std::map<Vertex_handle, std::size_t> V;
|
|
//write header
|
|
os << "<?xml version=\"1.0\"?>\n"
|
|
<< "<VTKFile type=\"UnstructuredGrid\" version=\"0.1\"";
|
|
#ifdef CGAL_LITTLE_ENDIAN
|
|
os << " byte_order=\"LittleEndian\"";
|
|
#else // CGAL_BIG_ENDIAN
|
|
os << " byte_order=\"BigEndian\"";
|
|
#endif
|
|
|
|
switch(sizeof(std::size_t)) {
|
|
case 4: os << " header_type=\"UInt32\""; break;
|
|
case 8: os << " header_type=\"UInt64\""; break;
|
|
default: CGAL_error_msg("Unknown size of std::size_t");
|
|
}
|
|
os << ">\n"
|
|
<< " <UnstructuredGrid>" << "\n";
|
|
|
|
os << " <Piece NumberOfPoints=\"" << tr.number_of_vertices()
|
|
<< "\" NumberOfCells=\"" << c3t3.number_of_cells() << "\">\n";
|
|
bool binary = true;
|
|
std::size_t offset = 0;
|
|
write_points_tag(os,tr,V,binary,offset, dim);
|
|
write_cells_tag(os,c3t3,V,binary,offset);
|
|
if(dim==3)
|
|
{
|
|
os << " <CellData Domain=\"MeshDomain";
|
|
os << "\">\n";
|
|
std::vector<float> mids;
|
|
write_attribute_tag(os,"MeshDomain",mids,binary,offset);
|
|
os << " </CellData>\n";
|
|
}
|
|
os << " </Piece>\n"
|
|
<< " </UnstructuredGrid>\n";
|
|
if (binary) {
|
|
os << "<AppendedData encoding=\"raw\">\n_";
|
|
write_points(os,tr,V, dim); // write points before cells to fill the std::map V
|
|
write_cells(os,c3t3,V, mids);//todo mids should be filled by write_attribute_tag
|
|
if(dim==3)
|
|
write_attributes(os,mids);
|
|
}
|
|
os << "</VTKFile>\n";
|
|
}
|
|
|
|
//public API
|
|
|
|
//!
|
|
//! \brief write_polydata_3 writes the content of a triangulated surface mesh in the .vtp
|
|
//! XML format.
|
|
//!
|
|
//! \tparam TriangleMesh a model of `FaceListGraph` with triangle faces.
|
|
//! \tparam NamedParameters a sequence of \ref pmp_namedparameters "Named Parameters"
|
|
//!
|
|
//! \param os a `std::ostream`.
|
|
//! \param mesh an instance of `TriangleMesh` to be written.
|
|
//! \param binary decides if the data should be written in binary(`true`)
|
|
//! or in ASCII(`false`).
|
|
//! \param np optional sequence of \ref pmp_namedparameters "Named Parameters" among the
|
|
//! ones listed below
|
|
//!
|
|
//! \cgalNamedParamsBegin
|
|
//! \cgalParamBegin{vertex_point_map} the property map with the points associated to
|
|
//! the vertices of `mesh`. If this parameter is omitted, an internal property map for
|
|
//! `CGAL::vertex_point_t` must be available in `TriangleMesh`.
|
|
//! \cgalParamEnd
|
|
//! \cgalParamBegin{vertex_index_map} the property map with the indices associated to
|
|
//! the vertices of `mesh`. If this parameter is omitted, an internal property map for
|
|
//! `CGAL::vertex_index_t` must be available in `TriangleMesh`.
|
|
//! \cgalParamEnd
|
|
//! \cgalNamedParamsEnd
|
|
template<class TriangleMesh,
|
|
class NamedParameters>
|
|
void write_polydata(std::ostream& os,
|
|
const TriangleMesh& mesh,
|
|
bool binary,
|
|
const NamedParameters& np)
|
|
{
|
|
os << "<?xml version=\"1.0\"?>\n"
|
|
<< "<VTKFile type=\"PolyData\" version=\"0.1\"";
|
|
#ifdef CGAL_LITTLE_ENDIAN
|
|
os << " byte_order=\"LittleEndian\"";
|
|
#else // CGAL_BIG_ENDIAN
|
|
os << " byte_order=\"BigEndian\"";
|
|
#endif
|
|
switch(sizeof(std::size_t)) {
|
|
case 4: os << " header_type=\"UInt32\""; break;
|
|
case 8: os << " header_type=\"UInt64\""; break;
|
|
default: CGAL_error_msg("Unknown size of std::size_t");
|
|
}
|
|
os << ">\n"
|
|
<< " <PolyData>" << "\n";
|
|
|
|
os << " <Piece NumberOfPoints=\"" << num_vertices(mesh)
|
|
<< "\" NumberOfPolys=\"" << num_faces(mesh) << "\">\n";
|
|
std::size_t offset = 0;
|
|
write_points_tag(os,mesh,binary,offset, np);
|
|
write_polys_tag(os,mesh,binary,offset, np);
|
|
os << " </Piece>\n"
|
|
<< " </PolyData>\n";
|
|
if (binary) {
|
|
os << "<AppendedData encoding=\"raw\">\n_";
|
|
write_polys_points(os,mesh, np);
|
|
write_polys(os,mesh, np);
|
|
}
|
|
os << "</VTKFile>\n";
|
|
}
|
|
|
|
template<class TriangleMesh>
|
|
void write_polydata(std::ostream& os,
|
|
const TriangleMesh& mesh,
|
|
bool binary = true)
|
|
{
|
|
write_polydata(os, mesh, binary, CGAL::parameters::all_default());
|
|
}
|
|
|
|
//!
|
|
//! \brief write_unstructured_grid_3 writes the content of a `C3t3` in the .vtu
|
|
//! XML format.
|
|
//!
|
|
//! \tparam C3T3 a model of `MeshComplexWithFeatures_3InTriangulation_3`.
|
|
//!
|
|
//! \param os a `std::ostream`.
|
|
//! \param c3t3 an instance of `C3T3` to be written.
|
|
//! \param binary decides if the data should be written in binary(`true`)
|
|
//! or in ASCII(`false`).
|
|
//!
|
|
template <class C3T3>
|
|
void write_unstructured_grid_3(std::ostream& os,
|
|
const C3T3& c3t3)
|
|
{
|
|
write_unstructured_grid(os, c3t3, 3);
|
|
}
|
|
|
|
//!
|
|
//! \brief write_unstructured_grid_2 writes the content of a `CDT` in the .vtu
|
|
//! XML format.
|
|
//!
|
|
//! \tparam CDT must be 2D constrained Delaunay triangulation
|
|
//!
|
|
//! \param os a `std::ostream`.
|
|
//! \param tr ?????????
|
|
//! \param binary decides if the data should be written in binary(`true`)
|
|
//! or in ASCII(`false`).
|
|
//!
|
|
//!
|
|
template <class CDT>
|
|
void write_unstructured_grid_2(std::ostream& os,
|
|
const CDT& tr)
|
|
{
|
|
write_unstructured_grid(os, tr, 2);
|
|
}
|
|
} //end CGAL
|
|
#endif // CGAL_VTK_IO_H
|