/******************************************************************************** * * * 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 . * * * ********************************************************************************/ #define _USE_MATH_DEFINES #include #include "CgalKernel.h" #include "../../../ifcparse/IfcLogger.h" #include "../../../ifcgeom/kernels/cgal/CgalConversionResult.h" #include #include #include #include #include #include #include using namespace ifcopenshell::geometry; using namespace ifcopenshell::geometry::kernels; void CgalKernel::remove_duplicate_points_from_loop(cgal_wire_t& polygon) { std::set points; for (int i = 0; i < polygon.size(); ++i) { if (points.count(polygon[i])) { polygon.erase(polygon.begin() + i); --i; } else points.insert(polygon[i]); } } CGAL::Polyhedron_3 ifcopenshell::geometry::utils::create_polyhedron(std::list &face_list, bool stitch_borders) { // Naive creation CGAL::Polyhedron_3 polyhedron; PolyhedronBuilder builder(&face_list); polyhedron.delegate(builder); if (builder.from_soup) { polyhedron = *builder.from_soup; } // Stitch edges // std::cout << "Before: " << polyhedron.size_of_vertices() << " vertices and " << polyhedron.size_of_facets() << " facets" << std::endl; if (stitch_borders) { // we have a map of points now in the builder, it's maybe not necessary anymore to stitch_borders? // size_t ne = polyhedron.size_of_border_edges(); CGAL::Polygon_mesh_processing::stitch_borders(polyhedron); // size_t ne2 = polyhedron.size_of_border_edges(); // std::wcout << (ne - ne2) << " removed" << std::endl; } polyhedron.normalize_border(); if (!polyhedron.is_valid(false, 1)) { Logger::Message(Logger::LOG_ERROR, "create_polyhedron: Polyhedron not valid!"); // std::ofstream fresult; // fresult.open("/Users/ken/Desktop/invalid.off"); // fresult << polyhedron << std::endl; // fresult.close(); return CGAL::Polyhedron_3(); } if (polyhedron.is_closed()) { try { if (!CGAL::Polygon_mesh_processing::is_outward_oriented(polyhedron)) { CGAL::Polygon_mesh_processing::reverse_face_orientations(polyhedron); } } catch (CGAL::Failure_exception& e) { Logger::Message(Logger::LOG_ERROR, e); } } // std::cout << "After: " << polyhedron.size_of_vertices() << " vertices and " << polyhedron.size_of_facets() << " facets" << std::endl; return polyhedron; } CGAL::Polyhedron_3 ifcopenshell::geometry::utils::create_polyhedron(const CGAL::Nef_polyhedron_3& nef_polyhedron) { if (nef_polyhedron.is_simple()) { try { CGAL::Polyhedron_3 polyhedron; nef_polyhedron.convert_to_polyhedron(polyhedron); return polyhedron; } catch (...) { Logger::Message(Logger::LOG_ERROR, "Conversion from Nef to polyhedron failed!"); return CGAL::Polyhedron_3(); } } else { Logger::Message(Logger::LOG_ERROR, "Nef polyhedron not simple: cannot create polyhedron!"); return CGAL::Polyhedron_3(); } } CGAL::Nef_polyhedron_3 ifcopenshell::geometry::utils::create_nef_polyhedron(std::list &face_list) { CGAL::Polyhedron_3 polyhedron = create_polyhedron(face_list); CGAL::Polygon_mesh_processing::triangulate_faces(polyhedron); CGAL::Nef_polyhedron_3 nef_polyhedron; try { nef_polyhedron = CGAL::Nef_polyhedron_3(polyhedron); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Conversion to Nef polyhedron failed!"); } return nef_polyhedron; } CGAL::Nef_polyhedron_3 ifcopenshell::geometry::utils::create_nef_polyhedron(CGAL::Polyhedron_3 &polyhedron) { // @todo needed? polyhedron.normalize_border(); if (polyhedron.is_valid(false, 3) && polyhedron.is_closed()) { // @todo is it necessary to triangulat? CGAL::Polygon_mesh_processing::triangulate_faces(polyhedron); CGAL::Nef_polyhedron_3 nef_polyhedron; try { nef_polyhedron = CGAL::Nef_polyhedron_3(polyhedron); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Conversion to Nef polyhedron failed!"); } return nef_polyhedron; } else { Logger::Message(Logger::LOG_ERROR, "Polyhedron not valid: cannot create Nef polyhedron!"); return CGAL::Nef_polyhedron_3(); } } namespace { template void visit(const taxonomy::collection* c, Fn& fn) { static_assert(std::is_same::value, "@todo Only implemented for point3"); for (auto& i : c->children) { if (dynamic_cast(i)) { visit(dynamic_cast(i), fn); } else if (i->kind() == taxonomy::POINT3) { fn((const taxonomy::point3*) i); } else if (i->kind() == taxonomy::EDGE) { // @todo maybe make edge a collection then as well? auto l = (const taxonomy::edge *) i; if (l->start.which() == 0) { fn(&boost::get(l->start)); } if (l->end.which() == 0) { fn(&boost::get(l->end)); } } } } } bool CgalKernel::convert(const taxonomy::shell* l, cgal_shape_t& shape) { auto faces = l->children_as(); if (faces.size() > 1000) { static double inf = std::numeric_limits::infinity(); std::pair minmax( Eigen::Vector3d(+inf, +inf, +inf), Eigen::Vector3d(-inf, -inf, -inf) ); size_t num_points = 0; visit(l, [&minmax, &num_points](const taxonomy::point3* p) { auto& c = *p->components; ++num_points; for (int i = 0; i < 3; ++i) { if (c(i) < minmax.first(i)) { minmax.first(i) = c(i); } if (c(i) > minmax.second(i)) { minmax.second(i) = c(i); } } }); auto diag = minmax.second - minmax.first; double volume = diag(0) * diag(1) * diag(2); double density = num_points / volume; if (density > 1e5) { Logger::Notice("Substituted element with " + boost::lexical_cast(density) + " vertices / m3 with a bounding box"); CGAL::Point_3 lower(minmax.first(0), minmax.first(1), minmax.first(2)); CGAL::Point_3 upper(minmax.second(0), minmax.second(1), minmax.second(2)); shape = utils::create_cube(lower, upper); } return true; } std::list face_list; for (auto& f : faces) { bool success = false; cgal_face_t face; try { success = convert(f, face); } catch (...) {} if (!success) { Logger::Message(Logger::LOG_WARNING, "Failed to convert face:", f->instance); continue; } // std::cout << "Face in ConnectedFaceSet: " << std::endl; // for (auto &point: face.outer) { // std::cout << "\tPoint(" << point << ")" << std::endl; // } face_list.push_back(face); } shape = utils::create_polyhedron(face_list); return shape.size_of_facets(); } bool CgalKernel::convert(const taxonomy::face* face, cgal_face_t& result) { auto bounds = face->children_as(); int num_outer_bounds = 0; for (auto& bound : bounds) { if (bound->external.get_value_or(false)) num_outer_bounds++; } if (num_outer_bounds != 1) { Logger::Message(Logger::LOG_ERROR, "Invalid configuration of boundaries for:", face->instance); return false; } cgal_face_t mf; for (auto& bound : bounds) { const bool is_interior = !bound->external.get_value_or(false); cgal_wire_t wire; if (!convert(bound, wire)) { Logger::Message(Logger::LOG_ERROR, "Failed to process face boundary loop", bound->instance); return false; } if (!is_interior) { mf.outer = wire; } else { mf.inner.push_back(wire); } } result = mf; // std::cout << "Face: " << std::endl; // for (auto &point: face.outer) { // std::cout << "\tPoint(" << point << ")" << std::endl; // } return true; } namespace { // @todo obsolete? bool convert_curve(CgalKernel* kernel, const taxonomy::item* curve, cgal_wire_t& builder) { if (curve->kind() == taxonomy::EDGE) { auto e = (taxonomy::edge*) curve; if (true || e->basis == nullptr) { if (builder.empty()) { const auto& p = boost::get(e->start); cgal_point_t pnt((*p.components)(0), (*p.components)(1), (*p.components)(2)); builder.push_back(pnt); } const auto& p = boost::get(e->end); cgal_point_t pnt((*p.components)(0), (*p.components)(1), (*p.components)(2)); builder.push_back(pnt); } else if (e->basis->kind() == taxonomy::CIRCLE) { // @todo } else if (e->basis->kind() == taxonomy::ELLIPSE) { } else { throw std::runtime_error("Not implemented basis kind"); } } else if (curve->kind() == taxonomy::LOOP) { const auto& edges = ((taxonomy::loop*) curve)->children; for (auto& c : edges) { convert_curve(kernel, c, builder); } } else { throw std::runtime_error("Not implemented curve"); } } } namespace { typedef std::pair parameter_range; static const parameter_range unbounded = { -std::numeric_limits::infinity(), +std::numeric_limits::infinity() }; void evaluate_curve(const taxonomy::line& c, double u, taxonomy::point3& p) { Eigen::Vector4d xy{ u, 0, 0, 1. }; *p.components = (*c.matrix.components * xy).head<3>(); } void evaluate_curve(const taxonomy::circle& c, double u, taxonomy::point3& p) { Eigen::Vector4d xy{ c.radius * std::cos(u), c.radius * std::sin(u), 0, 1. }; *p.components = (*c.matrix.components * xy).head<3>(); } void evaluate_curve(const taxonomy::ellipse& c, double u, taxonomy::point3& p) { Eigen::Vector4d xy{ c.radius * std::cos(u), c.radius2 * std::sin(u), 0, 1. }; *p.components = (*c.matrix.components * xy).head<3>(); } // ---- void project_onto_curve(const taxonomy::line& c, const taxonomy::point3& p, double& u) { u = (c.matrix.components->inverse() * p.components->homogeneous())(0); } void project_onto_curve(const taxonomy::circle& c, const taxonomy::point3& p, double& u) { Eigen::Vector2d xy = (c.matrix.components->inverse() * p.components->homogeneous()).head<2>(); u = std::atan2(xy(1), xy(0)); } void project_onto_curve(const taxonomy::ellipse& c, const taxonomy::point3& p, double& u) { Eigen::Vector2d xy = (c.matrix.components->inverse() * p.components->homogeneous()).head<2>(); u = std::atan2(xy(1), xy(0)); } struct point_projection_visitor_ { taxonomy::point3 p; double u; typedef void result_type; void operator()(const taxonomy::line& c) { project_onto_curve(c, p, u); } void operator()(const taxonomy::circle& c) { project_onto_curve(c, p, u); } void operator()(const taxonomy::ellipse& c) { project_onto_curve(c, p, u); } void operator()(const taxonomy::item& c) { throw std::runtime_error("Point projection not implemented on this geometry type"); } }; struct point_projection_visitor { taxonomy::item* curve; double u; typedef void result_type; void operator()(const taxonomy::point3& p) { point_projection_visitor_ v{ p }; dispatch_curve_creation::dispatch(curve, v); u = v.u; } void operator()(const double& u) { this->u = u; } }; struct cgal_curve_creation_visitor { static const int FULL_CIRCLE_NUM_SEGMENTS = 32; parameter_range param; std::vector points; cgal_curve_creation_visitor() : param(unbounded) {} cgal_curve_creation_visitor(const parameter_range& p) : param(p) {} void operator()(const taxonomy::line& l) { if (param == unbounded) { throw std::runtime_error("Cannot represent infinite line segment"); } taxonomy::point3 start, end; evaluate_curve(l, param.first, start); evaluate_curve(l, param.second, end); points.push_back(start); points.push_back(end); } template void evaluate_conic(const T& t) { double a, b; if (param == unbounded) { a = 0.; b = 2 * M_PI; } else { std::tie(a, b) = param; } a = std::fmod(a, 2 * M_PI); b = std::fmod(b, 2 * M_PI); if (b < a) { b += 2 * M_PI; } int num_segments = (int)std::ceil(std::fabs(a - b) / (2 * M_PI) * FULL_CIRCLE_NUM_SEGMENTS); double du = (b - a) / num_segments; taxonomy::point3 P; // @nb for loop is not inclusive of the both end points evaluate_curve(t, a, P); points.push_back(P); for (int i = 1; i < num_segments; ++i) { double u = a + du * i; evaluate_curve(t, u, P); points.push_back(P); } evaluate_curve(t, b, P); points.push_back(P); } void operator()(const taxonomy::circle& c) { evaluate_conic(c); } void operator()(const taxonomy::ellipse& e) { evaluate_conic(e); } void operator()(const taxonomy::trimmed_curve& e) { point_projection_visitor v1{ e.basis }, v2{ e.basis }; boost::apply_visitor(v1, e.start); boost::apply_visitor(v2, e.end); if (!e.orientation.get_value_or(true)) { std::swap(v1.u, v2.u); } cgal_curve_creation_visitor v({ v1.u, v2.u }); dispatch_curve_creation::dispatch(e.basis, v); this->points = v.points; if (!e.orientation.get_value_or(true)) { std::reverse(this->points.begin(), this->points.end()); } } void operator()(const taxonomy::item& e) { throw std::runtime_error("Not supported"); } }; void convert_curve(taxonomy::item* i, std::vector& points) { cgal_curve_creation_visitor v; dispatch_curve_creation::dispatch(i, v); points = v.points; } // @nb mutates a void extend_wire(std::vector& a, const std::vector& b) { if (a.empty()) { a = b; return; } if (b.empty()) { return; } double d = (*a.back().components - *b.front().components).norm(); size_t offset = d < 1.e-5 ? 1 : 0; a.insert(a.end(), b.begin() + offset, b.end()); } } #include #include #include #include typedef CGAL::Box_intersection_d::Box_with_handle_d Box; namespace { void loop_to_segments(const cgal_wire_t& wire, std::vector& segments) { for (int i = 0; i < wire.size(); ++i) { int j = (i + 1) % wire.size(); segments.emplace_back(wire[i], wire[j]); } } struct intersection_collector { const std::vector& segments; int num_self_intersections = 0; explicit intersection_collector(const std::vector& s) : segments(s) {} void operator()(const Box& a, const Box& b) { int aid = *a.handle(); int bid = *b.handle(); if (aid > bid) { std::swap(aid, bid); } if (((aid + 1) == bid) || ((aid == 0) && (bid = (segments.size() - 1)))) { // consecutive segments. return; } auto s0 = segments[aid]; auto s1 = segments[bid]; if (CGAL::do_intersect(s0, s1)) { num_self_intersections++; } } }; bool do_segments_intersect(const std::vector& segments) { std::vector boxes; std::vector handles(segments.size()); std::iota(handles.begin(), handles.end(), 0); for (auto it = segments.begin(); it != segments.end(); ++it) { boxes.push_back(Box(it->bbox(), &*(handles.begin() + std::distance(segments.begin(), it)))); } intersection_collector x(segments); CGAL::box_self_intersection_d(boxes.begin(), boxes.end(), x); return !!x.num_self_intersections; } } namespace { cgal_direction_t newell(const std::vector & loop) { Kernel_::FT a(0.0), b(0.0), c(0.0); for (size_t i = 0; i < loop.size(); ++i) { auto & curr = loop[i]; auto & next = loop[(i + 1) % loop.size()]; a += (curr.y() - next.y()) * (curr.z() + next.z()); b += (curr.z() - next.z()) * (curr.x() + next.x()); c += (curr.x() - next.x()) * (curr.y() + next.y()); } return cgal_direction_t(a, b, c); } } namespace { CGAL::Polygon_2 loop_to_polygon_2(taxonomy::loop* loop) { CGAL::Polygon_2 polygon; auto edges = loop->children_as(); for (auto& e : edges) { auto& p = boost::get(e->start); CGAL::Point_2 pnt((*p.components)(0), (*p.components)(1)); polygon.push_back(pnt); } return polygon; } CGAL::Polygon_2 wire_to_polygon_2(const cgal_wire_t& w) { CGAL::Polygon_2 polygon; for (auto& p : w) { CGAL::Point_2 pnt(p.cartesian(0), p.cartesian(1)); polygon.push_back(pnt); } return polygon; } cgal_face_t wire_to_face(const cgal_wire_t& w) { cgal_face_t f; f.outer = w; return f; } class polygon_2_to_wire { private: const CGAL::Aff_transformation_3& t_; public: polygon_2_to_wire(const CGAL::Aff_transformation_3& t) : t_(t) {} cgal_wire_t operator()(const CGAL::Polygon_2& p) { cgal_wire_t w; for (auto it = p.vertices_begin(); it != p.vertices_end(); ++it) { cgal_point_t P(it->cartesian(0), it->cartesian(1), 0); P = t_.transform(P); w.push_back(P); } return w; } }; void transform_in_place(cgal_wire_t& w, const CGAL::Aff_transformation_3& t) { for (auto& p : w) { p = p.transform(t); } } } namespace { void face_to_poly_with_holes(const cgal_face_t& face, CGAL::Polygon_with_holes_2& pwh, CGAL::Aff_transformation_3& place) { static Kernel_::Vector_3 Z(0, 0, 1); static Kernel_::Vector_3 X(1, 0, 0); auto refz = newell(face.outer); refz /= std::sqrt(CGAL::to_double(refz.squared_length())); auto refx = CGAL::abs(refz.cartesian(0)) > CGAL::abs(refz.cartesian(2)) ? Z : X; auto refy = CGAL::cross_product(refz, refx); auto refl = face.outer.front(); place = CGAL::Aff_transformation_3( refx.cartesian(0), refy.cartesian(0), refz.cartesian(0), refl.cartesian(0), refx.cartesian(1), refy.cartesian(1), refz.cartesian(1), refl.cartesian(1), refx.cartesian(2), refy.cartesian(2), refz.cartesian(2), refl.cartesian(2) ); /* CGAL::NT_converter c; std::array, 4> matrix; for (int i = 0; i < 4; ++i) { for (int j = 0; j < 4; ++j) { matrix[i][j] = c(place.cartesian(i, j)); } } */ auto ref = place.inverse(); auto face_copy = face; transform_in_place(face_copy.outer, ref); for (auto& w : face_copy.inner) { transform_in_place(w, ref); } std::vector> holes; holes.reserve(face_copy.inner.size()); std::transform(face_copy.inner.begin(), face_copy.inner.end(), std::back_inserter(holes), wire_to_polygon_2); pwh = CGAL::Polygon_with_holes_2(wire_to_polygon_2(face_copy.outer), holes.begin(), holes.end()); } } bool CgalKernel::convert(const taxonomy::loop* loop, cgal_wire_t& result) { // @todo only implement polygonal loops auto edges = loop->children_as(); std::vector points; for (auto& e : edges) { std::vector edge; if (e->basis) { convert_curve(e, edge); if (!e->orientation_2.get_value_or(true)) { std::reverse(edge.begin(), edge.end()); } } else { edge = { boost::get(e->start), boost::get(e->end) }; } extend_wire(points, edge); } if (points.size() >= 2) { // the edges -> conversion left us with a duplicate global begin,end point. double d = (*points.back().components - *points.front().components).norm(); if (d < 1.e-5) { points.erase(points.end() - 1); } else { Logger::Warning("Loop not closed", loop->instance); } } // Parse and store the points in a sequence cgal_wire_t polygon = std::vector(); for (auto& p : points) { cgal_point_t pnt((*p.components)(0), (*p.components)(1), (*p.components)(2)); 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:", loop->instance); return false; } // Remove points that are too close to one another remove_duplicate_points_from_loop(polygon); 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(), loop->instance); } std::vector segments; loop_to_segments(polygon, segments); auto inf = std::numeric_limits::infinity(); double min_len = +inf; for (auto& s : segments) { auto l = std::sqrt(CGAL::to_double(s.squared_length())); if (l < min_len) { min_len = l; } } if (do_segments_intersect(segments)) { Logger::Message(Logger::LOG_WARNING, "Skipping self-intersecting loop", loop->instance); return false; } auto dir = newell(polygon); Kernel_::FT min_dot(+inf), max_dot(-inf); for (auto& p : polygon) { auto dot = dir * (p - CGAL::ORIGIN); if (dot < min_dot) { min_dot = dot; } if (dot > max_dot) { max_dot = dot; } } auto delta_dot = max_dot - min_dot; // @todo this can be used to assess face planarity. /* std::wcerr << "[" << std::endl; for (auto& p : polygon) { std::wcerr << " (" << CGAL::to_double(p.cartesian(0)) << ", " << CGAL::to_double(p.cartesian(1)) << ", " << CGAL::to_double(p.cartesian(2)) << ")," << std::endl; } std::wcerr << "]" << std::endl; */ if (count < 3) { Logger::Message(Logger::LOG_ERROR, "Not enough edges for:", loop->instance); return false; } result = polygon; // std::cout << "PolyLoop: " << std::endl; // for (auto &point: polygon) { // std::cout << "\tPoint(" << point << ")" << std::endl; // } return true; } bool CgalKernel::convert_impl(const taxonomy::shell *shell, ifcopenshell::geometry::ConversionResults& results) { cgal_shape_t shape; if (!convert(shell, shape)) { return false; } results.emplace_back(ConversionResult( shell->instance->data().id(), shell->matrix, new CgalShape(shape), shell->surface_style )); return true; } bool CgalKernel::convert_impl(const taxonomy::extrusion* extrusion, ifcopenshell::geometry::ConversionResults& results) { cgal_shape_t shape; if (!convert(extrusion, shape)) { return false; } results.emplace_back(ConversionResult( extrusion->instance->data().id(), extrusion->matrix, new CgalShape(shape), extrusion->surface_style )); return true; } bool CgalKernel::process_extrusion(const cgal_face_t& bottom_face, const taxonomy::direction3& direction, double height, cgal_shape_t& shape) { bool has_inner_bounds = !bottom_face.inner.empty(); std::list faces_to_extrude; std::set> internal_edges; CGAL::Cartesian_converter> C; if (has_inner_bounds) { CGAL::Polygon_with_holes_2 pwh; CGAL::Aff_transformation_3 place; face_to_poly_with_holes(bottom_face, pwh, place); CGAL::Polygon_triangulation_decomposition_2 decompositor; std::list> decom_polies; decompositor(pwh, std::back_inserter(decom_polies)); int n_vertices = 0; std::map point_map; for (auto& p : decom_polies) { for (auto it = p.vertices_begin(); it != p.vertices_end(); ++it) { point_map.insert({ *it, point_map.size() }); ++n_vertices; } } std::map, std::pair> external_edges; size_t i = 0; for (auto& p : decom_polies) { // this is always 3 given the usage of Polygon_triangulation_decomposition_2 size_t n = std::distance(p.vertices_begin(), p.vertices_end()); for (size_t j = 0; j < n; ++j) { auto k = (j + 1) % n; auto& p0 = *(p.vertices_begin() + j); auto& p1 = *(p.vertices_begin() + k); auto i0 = point_map.find(p0)->second; auto i1 = point_map.find(p1)->second; if (i0 > i1) { std::swap(i0, i1); } auto p = external_edges.insert({ { i0, i1 }, { i, j} }); if (!p.second) { Kernel_::Point_3 ppp0(p0.cartesian(0), p0.cartesian(1), 0); ppp0 = ppp0.transform(place); Kernel_::Point_3 ppp1(p1.cartesian(1), p1.cartesian(1), 0); ppp1 = ppp1.transform(place); auto pp0 = C(ppp0); auto pp1 = C(ppp1); std::ostringstream oss; oss << pp0 << " - " << pp1; auto ss = oss.str(); std::wcout << ss.c_str() << std::endl; // not inserted, remove external_edges.erase(p.first); // @nb note the difference here in indices, {i0, i1} is point indices in // point_map. i is index in faces_to_extrude, j is segment index in wire. internal_edges.insert({ i, j }); // This is {i,j} at the time the edge use was inserted. internal_edges.insert(p.first->second); } } i++; } polygon_2_to_wire wire_builder(place); std::transform(decom_polies.begin(), decom_polies.end(), std::back_inserter(faces_to_extrude), wire_builder); } else { faces_to_extrude.push_front(bottom_face.outer); } std::list face_list; int wi = 0; for (auto& w : faces_to_extrude) { face_list.push_back(cgal_face_t{ w }); auto& fs = *direction.components; cgal_direction_t dir(fs(0), fs(1), fs(2)); int si = 0; for (std::vector::const_iterator current_vertex = w.begin(); current_vertex != w.end(); ++current_vertex, ++si) { if (internal_edges.find({ wi, si }) != internal_edges.end()) { continue; } auto next_vertex = current_vertex + 1; if (next_vertex == w.end()) { next_vertex = w.begin(); } cgal_face_t side_face; side_face.outer.push_back(*next_vertex); side_face.outer.push_back(*current_vertex); side_face.outer.push_back(*current_vertex + height * dir); side_face.outer.push_back(*next_vertex + height * dir); face_list.push_back(side_face); } cgal_face_t top_face; for (std::vector::const_reverse_iterator vertex = w.rbegin(); vertex != w.rend(); ++vertex) { top_face.outer.push_back(*vertex + height * dir); } face_list.push_back(top_face); wi++; } shape = utils::create_polyhedron(face_list); // if (has_position) for (auto &vertex : vertices(shape)) vertex->point() = vertex->point().transform(trsf); return true; /* CGAL::Nef_polyhedron_3 nef_shape = utils::create_nef_polyhedron(face_list); // Inner // TODO: Would be faster to triangulate top/bottom face template rather than use Nef polyhedra for subtraction for (auto &inner : bottom_face.inner) { // std::cout << "Inner wire" << std::endl; face_list.clear(); cgal_face_t hole_bottom_face; hole_bottom_face.outer = inner; remove_duplicate_points_from_loop(hole_bottom_face.outer); face_list.push_back(hole_bottom_face); for (std::vector::const_iterator current_vertex = inner.begin(); current_vertex != inner.end(); ++current_vertex) { std::vector::const_iterator next_vertex = current_vertex; ++next_vertex; if (next_vertex == inner.end()) { next_vertex = inner.begin(); } cgal_face_t hole_side_face; hole_side_face.outer.push_back(*next_vertex); hole_side_face.outer.push_back(*current_vertex); hole_side_face.outer.push_back(*current_vertex + height * dir); hole_side_face.outer.push_back(*next_vertex + height * dir); face_list.push_back(hole_side_face); } cgal_face_t hole_top_face; for (std::vector::const_reverse_iterator vertex = inner.rbegin(); vertex != inner.rend(); ++vertex) { hole_top_face.outer.push_back(*vertex + height * dir); } face_list.push_back(hole_top_face); try { nef_shape -= utils::create_nef_polyhedron(face_list); } catch (...) { Logger::Message(Logger::LOG_ERROR, "IfcExtrudedAreaSolid: cannot subtract opening for:"); return false; } } */ /*if (has_position) { // IfcSweptAreaSolid.Position (trsf) is an IfcAxis2Placement3D // and therefore has a unit scale factor nef_shape.transform(trsf); }*/ /* try { nef_shape.convert_to_polyhedron(shape); return true; } catch (...) { Logger::Message(Logger::LOG_ERROR, "IfcExtrudedAreaSolid: cannot convert Nef to polyhedron for:"); return false; } */ } bool CgalKernel::convert(const taxonomy::extrusion* extrusion, cgal_shape_t &shape) { const double& height = extrusion->depth; if (height < precision_) { Logger::Message(Logger::LOG_ERROR, "Non-positive extrusion height encountered for:", extrusion->instance); return false; } cgal_face_t bottom_face; if (!convert(&extrusion->basis, bottom_face)) { return false; } return process_extrusion(bottom_face, extrusion->direction, extrusion->depth, shape); } CGAL::Polyhedron_3 ifcopenshell::geometry::utils::create_cube(double d) { cgal_face_t bottom_face; bottom_face.outer.push_back(Kernel_::Point_3(-d, -d, -d)); bottom_face.outer.push_back(Kernel_::Point_3(+d, -d, -d)); bottom_face.outer.push_back(Kernel_::Point_3(+d, +d, -d)); bottom_face.outer.push_back(Kernel_::Point_3(-d, +d, -d)); cgal_direction_t dir(0, 0, 2 * d); std::list face_list = { bottom_face }; for (std::vector::const_iterator current_vertex = bottom_face.outer.begin(); current_vertex != bottom_face.outer.end(); ++current_vertex) { std::vector::const_iterator next_vertex = current_vertex; ++next_vertex; if (next_vertex == bottom_face.outer.end()) { next_vertex = bottom_face.outer.begin(); } cgal_face_t side_face; side_face.outer.push_back(*next_vertex); side_face.outer.push_back(*current_vertex); side_face.outer.push_back(*current_vertex + dir); side_face.outer.push_back(*next_vertex + dir); face_list.push_back(side_face); } cgal_face_t top_face; for (std::vector::const_reverse_iterator vertex = bottom_face.outer.rbegin(); vertex != bottom_face.outer.rend(); ++vertex) { top_face.outer.push_back(*vertex + dir); } face_list.push_back(top_face); return create_polyhedron(face_list); } CGAL::Polyhedron_3 ifcopenshell::geometry::utils::create_cube(const Kernel_::Point_3& lower, const Kernel_::Point_3& upper) { cgal_face_t bottom_face; auto a0 = lower.cartesian(0); auto a1 = lower.cartesian(1); auto a2 = lower.cartesian(2); auto b0 = upper.cartesian(0); auto b1 = upper.cartesian(1); auto b2 = upper.cartesian(2); bottom_face.outer.push_back(Kernel_::Point_3(a0, a1, a2)); bottom_face.outer.push_back(Kernel_::Point_3(b0, a1, a2)); bottom_face.outer.push_back(Kernel_::Point_3(b0, b1, a2)); bottom_face.outer.push_back(Kernel_::Point_3(a0, b1, a2)); cgal_direction_t dir(0, 0, b2 - a2); std::list face_list = { bottom_face }; for (std::vector::const_iterator current_vertex = bottom_face.outer.begin(); current_vertex != bottom_face.outer.end(); ++current_vertex) { std::vector::const_iterator next_vertex = current_vertex; ++next_vertex; if (next_vertex == bottom_face.outer.end()) { next_vertex = bottom_face.outer.begin(); } cgal_face_t side_face; side_face.outer.push_back(*next_vertex); side_face.outer.push_back(*current_vertex); side_face.outer.push_back(*current_vertex + dir); side_face.outer.push_back(*next_vertex + dir); face_list.push_back(side_face); } cgal_face_t top_face; for (std::vector::const_reverse_iterator vertex = bottom_face.outer.rbegin(); vertex != bottom_face.outer.rend(); ++vertex) { top_face.outer.push_back(*vertex + dir); } face_list.push_back(top_face); return create_polyhedron(face_list); } bool CgalKernel::thin_solid(const CGAL::Nef_polyhedron_3& a, CGAL::Nef_polyhedron_3& result) { // @todo this should be possible as a minkowski sum of facet & cube. rather than a set of boolean ops. auto a_nonconst = a; auto ax = CGAL::minkowski_sum_3(a_nonconst, precision_cube_); auto x = ax - a; result = x; return true; auto yxy = CGAL::minkowski_sum_3(x, precision_cube_); auto y = yxy * a; auto zyz = CGAL::minkowski_sum_3(y, precision_cube_); result = yxy * zyz; return true; } bool CgalKernel::preprocess_boolean_operand(const IfcUtil::IfcBaseClass* log_reference, const cgal_shape_t& shape_const, CGAL::Nef_polyhedron_3& result, bool dilate) { cgal_shape_t shape = shape_const; if (!shape.is_valid()) { Logger::Message(Logger::LOG_ERROR, "Conversion to Nef will fail. Invalid geometry:", log_reference); return false; } if (!shape.is_closed()) { // TODO: There can be substractions to remove parts of non-volumetric objects. Maybe iterate over all faces of an entity and put them in a Nef_polyhedron_3 through Boolean union? Highly inefficient but maybe desirable... Logger::Message(Logger::LOG_ERROR, "Subtraction of openings not supported for non-closed geometry:", log_reference); return false; } bool success = false; try { success = CGAL::Polygon_mesh_processing::triangulate_faces(shape); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Triangulation of geometry crashed:", log_reference); return false; } if (!success) { Logger::Message(Logger::LOG_ERROR, "Triangulation of geometry failed:", log_reference); return false; } if (CGAL::Polygon_mesh_processing::does_self_intersect(shape)) { Logger::Message(Logger::LOG_ERROR, "Conversion to Nef will fail. Self-intersecting geometry:", log_reference); return false; } try { result = CGAL::Nef_polyhedron_3(shape); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Could not convert geometry to Nef:", log_reference); return false; } if (dilate) { try { // @todo don't dilate in 3 dimensions but only in the XY plane, orthogonal to wall axis. result = CGAL::minkowski_sum_3(result, precision_cube_); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Could not dilate boolean operand", log_reference); return false; } } try { cgal_shape_t convert_back; result.convert_to_polyhedron(convert_back); } catch (...) { Logger::Message(Logger::LOG_WARNING, "Final conversion will likely fail. Could not convert geometry from Nef:", log_reference); } return true; } namespace { bool convert_placement(const ifcopenshell::geometry::taxonomy::matrix4& place, cgal_placement_t& trsf) { const auto& m = *place.components; // @todo check trsf = cgal_placement_t( m(0, 0), m(0, 1), m(0, 2), m(0, 3), m(1, 0), m(1, 1), m(1, 2), m(1, 3), m(2, 0), m(2, 1), m(2, 2), m(2, 3)); return true; } } #include bool CgalKernel::process_as_2d_polygon(const taxonomy::boolean_result* br, std::list>& loops, double& z0, double& z1) { // @todo can also be for other boolean operations, just depth/matrix operands are different if (br->operation != taxonomy::boolean_result::SUBTRACTION) { return false; } auto& ops = br->children; std::vector extrusions; std::transform(ops.begin(), ops.end(), std::back_inserter(extrusions), [](taxonomy::item* op) { taxonomy::extrusion* nptr = nullptr; if (op->kind() != taxonomy::COLLECTION) return nptr; auto cl = (taxonomy::collection*) op; if ((cl)->children.size() != 1) return nptr; if (cl->children[0]->kind() == taxonomy::COLLECTION) { cl = (taxonomy::collection*) cl->children[0]; if ((cl)->children.size() != 1) return nptr; } if (cl->children[0]->kind() != taxonomy::EXTRUSION) return nptr; auto ex = (taxonomy::extrusion*) cl->children[0]; return ex; }); if (std::find(extrusions.begin(), extrusions.end(), nullptr) != extrusions.end()) { return false; } // op[i].matrix[2,0:3] = <0 0 1> Eigen::Vector3d Z(0., 0., 1.); if (std::find_if(extrusions.begin(), extrusions.end(), [&Z](taxonomy::extrusion* ex) { auto& m = *ex->matrix.components; return std::abs(1. - std::abs(m.col(2).head<3>().dot(Z))) > 1.e-5; }) != extrusions.end()) { return false; } // | op[i].matrix[2,0:3] . op[i].direction | = 1 if (std::find_if(extrusions.begin(), extrusions.end(), [](taxonomy::extrusion* ex) { auto& d = *ex->direction.components; auto& m = *ex->matrix.components; return std::abs(1. - std::abs(m.col(2).head<3>().dot(d))) > 1.e-5; }) != extrusions.end()) { return false; } // op[0].depth <= op[i..n].depth const auto& op_0_depth = extrusions[0]->depth; if (std::find_if(extrusions.begin() + 1, extrusions.end(), [&op_0_depth](taxonomy::extrusion* ex) { return op_0_depth > ex->depth; }) != extrusions.end()) { return false; } const auto& op_0_matrix_2_3 = (*extrusions[0]->matrix.components)(2, 3); if (std::find_if(extrusions.begin() + 1, extrusions.end(), [&op_0_matrix_2_3](taxonomy::extrusion* ex) { return op_0_matrix_2_3 < (*ex->matrix.components)(2, 3); }) != extrusions.end()) { return false; } std::vector wires; try { std::transform(extrusions.begin(), extrusions.end(), std::back_inserter(wires), [this](taxonomy::extrusion* ex) { if (ex->basis.children.size() == 1 && ex->basis.children[0]->kind() == taxonomy::LOOP) { auto l = (taxonomy::loop*) ex->basis.children[0]; cgal_wire_t w; cgal_placement_t trsf; convert_placement(ex->matrix, trsf); if (convert(l, w)) { for (auto& p : w) { p = p.transform(trsf); } return w; } } throw std::runtime_error("failed to convert to polygon"); }); } catch (std::runtime_error&) { return false; } for (auto it = wires.begin(); it != wires.end(); ++it) { auto& w = *it; auto op = (taxonomy::geom_item*) (*(ops.begin() + std::distance(wires.begin(), it))); cgal_placement_t trsf; convert_placement(op->matrix, trsf); for (auto& p : w) { p = trsf.transform(p); } } loops.clear(); std::transform(wires.begin(), wires.end(), std::back_inserter(loops), wire_to_polygon_2); auto& op_0_matrix = *extrusions[0]->matrix.components; Eigen::Vector4d op_0_dir; op_0_dir << (*extrusions[0]->direction.components), 0; op_0_dir = op_0_matrix * op_0_dir; z0 = op_0_matrix_2_3; z1 = z0 + extrusions[0]->depth * op_0_dir(2); if (z1 < z0) { std::swap(z0, z1); } return true; } bool CgalKernel::convert_impl(const taxonomy::boolean_result* br, ifcopenshell::geometry::ConversionResults& results) { double z0, z1; std::list> loops; if (process_as_2d_polygon(br, loops, z0, z1)) { auto first_item_style = ((taxonomy::geom_item*)br->children[0])->surface_style; std::list> pwhs; auto it = loops.begin(); const auto& p = *it; CGAL::Polygon_with_holes_2 pwh(p, ++it, loops.end()); CGAL::Gps_segment_traits_2 traits; if (false && !CGAL::are_holes_and_boundary_pairwise_disjoint(pwh, traits)) { // this is very slow. // the check is also slow... CGAL::Polygon_set_2 result; auto it = loops.begin(); result.insert(*it++); for (; it != loops.end(); ++it) { result.difference(*it); } result.polygons_with_holes(std::back_inserter(pwhs)); } else { pwhs.push_back(pwh); } #if 0 CGAL::Polygon_vertical_decomposition_2 decompositor; #else CGAL::Polygon_triangulation_decomposition_2 decompositor; #endif std::list> decom_polies; for (auto& pwh : pwhs) { decompositor(pwh, std::back_inserter(decom_polies)); } std::transform(decom_polies.begin(), decom_polies.end(), std::back_inserter(results), [this, &br, &z0, &z1, &first_item_style](const CGAL::Polygon_2& p2) { cgal_face_t f; std::transform( p2.vertices_begin(), p2.vertices_end(), std::back_inserter(f.outer), [](const CGAL::Point_2& p) { return CGAL::Point_3(p.cartesian(0), p.cartesian(1), 0); } ); cgal_shape_t shp; taxonomy::direction3 d(0, 0, 1); process_extrusion(f, d, z1 - z0, shp); for (auto it = shp.vertices_begin(); it != shp.vertices_end(); ++it) { auto p = it->point(); it->point() = cgal_point_t(p.cartesian(0), p.cartesian(1), p.cartesian(2) + z0); } return ConversionResult( br->instance->data().id(), br->matrix, new CgalShape(shp), br->surface_style.diffuse ? br->surface_style : first_item_style ); }); Logger::Notice("Processed boolean operation as 2d arrangement"); return true; } bool first = true; CGAL::Nef_polyhedron_3 a; CGAL::Nef_nary_union_3> second_operand_collector; size_t second_operand_collector_size = 0; taxonomy::style first_item_style; for (auto& c : br->children) { // AbstractKernel::convert(c, results); // continue; ifcopenshell::geometry::ConversionResults cr; // @todo half-space detection AbstractKernel::convert(c, cr); if (first && br->operation == taxonomy::boolean_result::SUBTRACTION) { first_item_style = ((taxonomy::geom_item*)c)->surface_style; if (!first_item_style.diffuse && c->kind() == taxonomy::COLLECTION) { first_item_style = ((taxonomy::geom_item*) ((taxonomy::collection*)c)->children[0])->surface_style; } } for (auto it = cr.begin(); it != cr.end(); ++it) { const cgal_shape_t& entity_shape_unlocated(((CgalShape*)it->Shape())->shape()); cgal_shape_t entity_shape(entity_shape_unlocated); if (!it->Placement().components->isIdentity()) { cgal_placement_t trsf; convert_placement(it->Placement(), trsf); for (auto &vertex : vertices(entity_shape)) { if (false) { auto x = CGAL::to_double(vertex->point().x()); auto y = CGAL::to_double(vertex->point().y()); auto z = CGAL::to_double(vertex->point().z()); std::wcout << x << " " << y << " " << z << std::endl; } vertex->point() = vertex->point().transform(trsf); if (false) { auto x = CGAL::to_double(vertex->point().x()); auto y = CGAL::to_double(vertex->point().y()); auto z = CGAL::to_double(vertex->point().z()); std::wcout << x << " " << y << " " << z << std::endl; } } } CGAL::Nef_polyhedron_3 nef; if (!preprocess_boolean_operand(c->instance, entity_shape, nef, // Dilate boolean subtraction operands (!first && br->operation == taxonomy::boolean_result::SUBTRACTION))) { continue; } if (first) { a = nef; } else { if (br->operation == taxonomy::boolean_result::SUBTRACTION) { second_operand_collector.add_polyhedron(nef); second_operand_collector_size++; // a -= nef; } else if (br->operation == taxonomy::boolean_result::INTERSECTION) { a *= nef; } else if (br->operation == taxonomy::boolean_result::UNION) { a += nef; } } } first = false; } if (br->operation == taxonomy::boolean_result::SUBTRACTION && second_operand_collector_size) { a -= second_operand_collector.get_union(); } cgal_shape_t a_poly, b_poly; // CGAL::Nef_polyhedron_3 b; // thin_solid(a, b); try { a.convert_to_polyhedron(a_poly); } catch (...) { Logger::Message(Logger::LOG_ERROR, "Could not convert geometry with openings from Nef:", br->instance); return false; } results.emplace_back(ConversionResult( br->instance->data().id(), br->matrix, new CgalShape(a_poly), br->surface_style.diffuse ? br->surface_style : first_item_style )); return true; } PolyhedronBuilder::PolyhedronBuilder(std::list* face_list) { this->face_list = face_list; } #include // @todo shouldn't we just always use polygon_soup_to_polygon_mesh instead of the incremental builder? #include void PolyhedronBuilder::operator()(CGAL::Polyhedron_3::HalfedgeDS &hds) { // std::list points; std::map points; std::vector> facet_vertices; facet_vertices.reserve(face_list->size()); CGAL::Polyhedron_incremental_builder_3::HalfedgeDS> builder(hds, true); std::list unique_points; for (auto &face : *face_list) { if (face.inner.empty()) { facet_vertices.emplace_back(); for (auto &point : face.outer) { auto p = points.insert({ point, points.size() }); if (p.second) { unique_points.push_back(point); } facet_vertices.back().push_back(p.first->second); } } else { std::map points_2d; CGAL::Polygon_with_holes_2 pwh; CGAL::Aff_transformation_3 place; face_to_poly_with_holes(face, pwh, place); // we assume the pwh constructor leaves points in order // wouldn't it be nice to have the equivalent of Python's zip() { auto it = pwh.outer_boundary().vertices_begin(); auto jt = face.outer.begin(); for (; it != pwh.outer_boundary().vertices_end(); ++it, ++jt) { auto p = points.insert({ *jt, points.size() }); if (p.second) { unique_points.push_back(*jt); } points_2d.insert({ *it, p.first->second }); } } auto it = pwh.holes_begin(); auto kt = face.inner.begin(); for (; it != pwh.holes_end(); ++it, ++kt) { auto jt = it->vertices_begin(); auto lt = kt->begin(); for (; jt != it->vertices_end(); ++jt, ++lt) { auto p = points.insert({ *lt, points.size() }); if (p.second) { unique_points.push_back(*lt); } points_2d.insert({ *jt, p.first->second }); } } CGAL::Polygon_triangulation_decomposition_2 decompositor; std::list> decom_polies; decompositor(pwh, std::back_inserter(decom_polies)); for (auto& p : decom_polies) { facet_vertices.emplace_back(); for (auto it = p.vertices_begin(); it != p.vertices_end(); ++it) { facet_vertices.back().push_back(points_2d.find(*it)->second); } } } } bool valid_orientation = true; std::set> added_edges; for (size_t fi = 0; fi < facet_vertices.size(); ++fi) { auto& f = facet_vertices[fi]; for (size_t i = 0; i < f.size(); ++i) { auto p = std::pair(f[i], f[(i + 1) % f.size()]); if (added_edges.find(p) != added_edges.end()) { valid_orientation = false; break; } added_edges.insert(p); } if (!valid_orientation) { break; } } if (!valid_orientation) { from_soup.emplace(); Logger::Warning("Reoriented polygonal surface"); // @todo ugh std::vector unique_points_as_vector(unique_points.begin(), unique_points.end()); CGAL::Polygon_mesh_processing::orient_polygon_soup(unique_points_as_vector, facet_vertices); CGAL::Polygon_mesh_processing::polygon_soup_to_polygon_mesh(unique_points_as_vector, facet_vertices, *from_soup); return; } /* std::vector facet_indices_to_delete; std::set> added_edges; for (size_t fi = 0; fi < facet_vertices.size(); ++fi) { auto& f = facet_vertices[fi]; bool reoriented = false, valid = true; check_edge_existence: for (size_t i = 0; i < f.size(); ++i) { auto p = std::pair(f[i], f[(i + 1) % f.size()]); if (added_edges.find(p) != added_edges.end()) { if (reoriented) { facet_indices_to_delete.push_back(fi); Logger::Notice("Removed facet"); valid = false; break; } else { std::reverse(f.begin(), f.end()); Logger::Notice("Reversed facet"); reoriented = true; goto check_edge_existence; } } } if (valid) { for (size_t i = 0; i < f.size(); ++i) { auto p = std::pair(f[i], f[(i + 1) % f.size()]); added_edges.insert(p); } } } std::reverse(facet_indices_to_delete.begin(), facet_indices_to_delete.end()); for (auto& fi : facet_indices_to_delete) { facet_vertices.erase(facet_vertices.begin() + fi); } */ builder.begin_surface(points.size(), facet_vertices.size()); // , 0, CGAL::Polyhedron_incremental_builder_3::HalfedgeDS>::ABSOLUTE_INDEXING); for (auto& point : unique_points) { builder.add_vertex(point); } for (auto &facet : facet_vertices) { builder.begin_facet(); // std::cout << "Adding facet "; for (auto &vertex : facet) { // std::cout << vertex << " "; builder.add_vertex_to_facet(vertex); } // std::cout << std::endl; builder.end_facet(); } builder.end_surface(); }