/******************************************************************************** * * * This file is part of IfcOpenShell. * * * * IfcOpenShell is free software: you can redistribute it and/or modify * * it under the terms of the Lesser GNU General Public License as published by * * the Free Software Foundation, either version 3.0 of the License, or * * (at your option) any later version. * * * * IfcOpenShell is distributed in the hope that it will be useful, * * but WITHOUT ANY WARRANTY; without even the implied warranty of * * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the * * Lesser GNU General Public License for more details. * * * * You should have received a copy of the Lesser GNU General Public License * * along with this program. If not, see . * * * ********************************************************************************/ #include "../../../ifcgeom/IfcGeomShapeType.h" #include "../../../ifcgeom/IfcGeom.h" #include "CgalKernel.h" #include "CgalConversionResult.h" using namespace IfcSchema; using namespace IfcUtil; bool IfcGeom::CgalKernel::convert_shapes(const IfcBaseClass* l, ConversionResults& r) { if (shape_type(l) != ST_SHAPELIST) { cgal_shape_t shp; if (convert_shape(l, shp)) { r.push_back(IfcGeom::ConversionResult(new CgalShape(shp), get_style(l->as()))); return true; } return false; } #include "CgalEntityMappingShapes.h" Logger::Message(Logger::LOG_ERROR,"No operation defined for:",l->entity); return false; } IfcGeom::ShapeType IfcGeom::CgalKernel::shape_type(const IfcBaseClass* l) { #include "CgalEntityMappingShapeType.h" return ST_OTHER; } bool IfcGeom::CgalKernel::convert_shape(const IfcBaseClass* l, cgal_shape_t& r) { const unsigned int id = l->entity->id(); bool success = false; bool processed = false; bool ignored = false; #ifndef NO_CACHE std::map::const_iterator it = cache.Shape.find(id); if ( it != cache.Shape.end() ) { r = it->second; return true; } #endif const bool include_curves = getValue(GV_DIMENSIONALITY) != +1; const bool include_solids_and_surfaces = getValue(GV_DIMENSIONALITY) != -1; IfcGeom::ShapeType st = shape_type(l); ignored = (!include_solids_and_surfaces && (st == ST_SHAPE || st == ST_FACE)) || (!include_curves && (st == ST_WIRE || st == ST_CURVE)); if (st == ST_SHAPE && include_solids_and_surfaces) { #include "CgalEntityMappingShape.h" } if ( processed && success ) { const double precision = getValue(GV_PRECISION); // apply_tolerance(r, precision); #ifndef NO_CACHE cache.Shape[id] = r; #endif } else if (!ignored) { const char* const msg = processed ? "Failed to convert:" : "No operation defined for:"; Logger::Message(Logger::LOG_ERROR, msg, l->entity); } return success; } bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcManifoldSolidBrep* l, ConversionResults& shape) { cgal_shape_t s; const SurfaceStyle* collective_style = get_style(l); if (convert_shape(l->Outer(),s) ) { // const SurfaceStyle* indiv_style = get_style(l->Outer()); // // IfcSchema::IfcClosedShell::list::ptr voids(new IfcSchema::IfcClosedShell::list); // if (l->is(IfcSchema::Type::IfcFacetedBrepWithVoids)) { // voids = l->as()->Voids(); // } //#ifdef USE_IFC4 // if (l->is(IfcSchema::Type::IfcAdvancedBrepWithVoids)) { // voids = l->as()->Voids(); // } //#endif // // for (IfcSchema::IfcClosedShell::list::it it = voids->begin(); it != voids->end(); ++it) { // TopoDS_Shape s2; // /// @todo No extensive shapefixing since shells should be disjoint. // /// @todo Awaiting generalized boolean ops module with appropriate checking // if (convert_shape(l->Outer(), s2)) { // s = BRepAlgoAPI_Cut(s, s2).Shape(); // } // } // // shape.push_back(ConversionResult(new OpenCascadeShape(s), indiv_style ? indiv_style : collective_style)); // return true; } return false; } bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcConnectedFaceSet* l, cgal_shape_t& shape) { IfcSchema::IfcFace::list::ptr faces = l->CfsFaces(); // TopTools_ListOfShape face_list; for (IfcSchema::IfcFace::list::it it = faces->begin(); it != faces->end(); ++it) { bool success = false; cgal_face_t face; try { success = convert_face(*it, face); } catch (...) {} if (!success) { Logger::Message(Logger::LOG_WARNING, "Failed to convert face:", (*it)->entity); continue; } // if (face_area(face) > getValue(GV_MINIMAL_FACE_AREA)) { // face_list.Append(face); // } else { // Logger::Message(Logger::LOG_WARNING, "Invalid face:", (*it)->entity); // } } // // if (face_list.Extent() == 0) { // return false; // } // // if (face_list.Extent() > getValue(GV_MAX_FACES_TO_SEW) || !create_solid_from_faces(face_list, shape)) { // TopoDS_Compound compound; // BRep_Builder builder; // builder.MakeCompound(compound); // // TopTools_ListIteratorOfListOfShape face_iterator; // for (face_iterator.Initialize(face_list); face_iterator.More(); face_iterator.Next()) { // builder.Add(compound, face_iterator.Value()); // } // shape = compound; // } return true; } bool IfcGeom::CgalKernel::convert_wire(const IfcBaseClass* l, cgal_wire_t& r) { #include "CgalEntityMappingWire.h" Logger::Message(Logger::LOG_ERROR,"No operation defined for:",l->entity); return false; } bool IfcGeom::CgalKernel::convert_face(const IfcBaseClass* l, cgal_face_t& r) { #include "CgalEntityMappingFace.h" Logger::Message(Logger::LOG_ERROR,"No operation defined for:",l->entity); return false; } bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcFace* l, cgal_face_t& face) { IfcSchema::IfcFaceBound::list::ptr bounds = l->Bounds(); int num_outer_bounds = 0; for (IfcSchema::IfcFaceBound::list::it it = bounds->begin(); it != bounds->end(); ++it) { IfcSchema::IfcFaceBound* bound = *it; if (bound->is(IfcSchema::Type::IfcFaceOuterBound)) num_outer_bounds ++; } if (num_outer_bounds != 1) { Logger::Message(Logger::LOG_ERROR, "Invalid configuration of boundaries for:", l->entity); return false; } cgal_face_t mf = new CgalFace(); for (IfcSchema::IfcFaceBound::list::it it = bounds->begin(); it != bounds->end(); ++it) { IfcSchema::IfcFaceBound* bound = *it; IfcSchema::IfcLoop* loop = bound->Bound(); const bool is_interior = !bound->is(IfcSchema::Type::IfcFaceOuterBound); cgal_wire_t wire; if (!convert_wire(loop, wire)) { Logger::Message(Logger::LOG_ERROR, "Failed to process face boundary loop", loop->entity); delete mf; return false; } if (!is_interior) { mf->outer = wire; } else { mf->inner.push_back(wire); } } face = mf; return true; } bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcPolyLoop* l, cgal_wire_t& result) { IfcSchema::IfcCartesianPoint::list::ptr points = l->Polygon(); // Parse and store the points in a sequence cgal_wire_t polygon = new std::vector(); for(IfcSchema::IfcCartesianPoint::list::it it = points->begin(); it != points->end(); ++ it) { cgal_point_t pnt; IfcGeom::CgalKernel::convert(*it, pnt); polygon->push_back(*pnt); } // A loop should consist of at least three vertices std::size_t original_count = polygon->size(); if (original_count < 3) { Logger::Message(Logger::LOG_ERROR, "Not enough edges for:", l->entity); return false; } // TODO: Remove repeated points (and points that are too close to one another?) // remove_duplicate_points_from_loop(polygon, true); std::size_t count = polygon->size(); if (original_count - count != 0) { std::stringstream ss; ss << (original_count - count) << " edges removed for:"; Logger::Message(Logger::LOG_WARNING, ss.str(), l->entity); } if (count < 3) { Logger::Message(Logger::LOG_ERROR, "Not enough edges for:", l->entity); return false; } result = polygon; return true; } bool IfcGeom::CgalKernel::convert_curve(const IfcBaseClass* l, cgal_curve_t& r) { #include "CgalEntityMappingCurve.h" Logger::Message(Logger::LOG_ERROR,"No operation defined for:",l->entity); return false; }