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https://github.com/IfcOpenShell/IfcOpenShell.git
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L profiles
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@@ -59,6 +59,7 @@ FACE(IfcRectangleProfileDef);
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FACE(IfcTrapeziumProfileDef);
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FACE(IfcTrapeziumProfileDef);
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FACE(IfcEllipseProfileDef);
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FACE(IfcEllipseProfileDef);
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FACE(IfcCShapeProfileDef);
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FACE(IfcCShapeProfileDef);
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FACE(IfcLShapeProfileDef);
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WIRE(IfcEdgeLoop);
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WIRE(IfcEdgeLoop);
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WIRE(IfcOrientedEdge);
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WIRE(IfcOrientedEdge);
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@@ -468,3 +468,112 @@ bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcCShapeProfileDef* l, cgal_
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return true;
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return true;
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}
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}
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bool IfcGeom::CgalKernel::convert(const IfcSchema::IfcLShapeProfileDef* l, cgal_face_t& face) {
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const bool hasSlope = l->hasLegSlope();
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const bool doEdgeFillet = l->hasEdgeRadius();
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const bool doFillet = l->hasFilletRadius();
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const double y = l->Depth() / 2.0f * getValue(GV_LENGTH_UNIT);
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const double x = (l->hasWidth() ? l->Width() : l->Depth()) / 2.0f * getValue(GV_LENGTH_UNIT);
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const double d = l->Thickness() * getValue(GV_LENGTH_UNIT);
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const double slope = hasSlope ? (l->LegSlope() * getValue(GV_PLANEANGLE_UNIT)) : 0.;
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double f1 = 0.0f;
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double f2 = 0.0f;
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if (doFillet) {
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f1 = l->FilletRadius() * getValue(GV_LENGTH_UNIT);
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}
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if ( doEdgeFillet) {
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f2 = l->EdgeRadius() * getValue(GV_LENGTH_UNIT);
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}
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if ( x < ALMOST_ZERO || y < ALMOST_ZERO || d < ALMOST_ZERO ) {
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Logger::Message(Logger::LOG_NOTICE,"Skipping zero sized profile:",l->entity);
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return false;
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}
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double xx = -x+d;
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double xy = -y+d;
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double dy1 = 0.;
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double dy2 = 0.;
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double dx1 = 0.;
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double dx2 = 0.;
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if (hasSlope) {
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dy1 = tan(slope) * x;
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dy2 = tan(slope) * (x - d);
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dx1 = tan(slope) * y;
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dx2 = tan(slope) * (y - d);
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const double x1s = x; const double y1s = -y + d - dy1;
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const double x1e = -x + d; const double y1e = -y + d + dy2;
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const double x2s = -x + d - dx1; const double y2s = y;
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const double x2e = -x + d + dx2; const double y2e = -y + d;
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const double a1 = y1e - y1s;
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const double b1 = x1s - x1e;
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const double c1 = a1*x1s + b1*y1s;
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const double a2 = y2e - y2s;
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const double b2 = x2s - x2e;
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const double c2 = a2*x2s + b2*y2s;
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const double det = a1*b2 - a2*b1;
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if (ALMOST_THE_SAME(det, 0.)) {
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Logger::Message(Logger::LOG_NOTICE, "Legs do not intersect for:",l->entity);
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return false;
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}
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xx = (b2*c1 - b1*c2) / det;
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xy = (a1*c2 - a2*c1) / det;
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}
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cgal_placement_t trsf2d;
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bool has_position = true;
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#ifdef USE_IFC4
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has_position = l->hasPosition();
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#endif
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const int segments = 3;
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face = cgal_face_t();
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face.outer.push_back(Kernel::Point_3(-x, -y, 0.0));
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face.outer.push_back(Kernel::Point_3(x, -y, 0.0));
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if (f2 == 0.0) {
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face.outer.push_back(Kernel::Point_3(x, -y+d-dy1, 0.0));
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} else {
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for (int current_segment = 0; current_segment <= segments; ++current_segment) {
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double current_angle = current_segment*0.5*3.141592653589793/((double)segments);
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face.outer.push_back(Kernel::Point_3(x-f2+f2*cos(current_angle), -y+d-dy1-f2+f2*sin(current_angle), 0));
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}
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} if (f1 == 0.0) {
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face.outer.push_back(Kernel::Point_3(xx, xy, 0.0));
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} else {
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for (int current_segment = segments; current_segment >= 0; --current_segment) {
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double current_angle = 1.0*3.141592653589793+current_segment*0.5*3.141592653589793/((double)segments);
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face.outer.push_back(Kernel::Point_3(xx+f1+f1*cos(current_angle), xy+f1+f1*sin(current_angle), 0));
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}
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} if (f2 == 0.0) {
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face.outer.push_back(Kernel::Point_3(-x+d-dx1, y, 0.0));
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} else {
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for (int current_segment = 0; current_segment <= segments; ++current_segment) {
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double current_angle = current_segment*0.5*3.141592653589793/((double)segments);
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face.outer.push_back(Kernel::Point_3(-x+d-dx1-f2+f2*cos(current_angle), y-f2+f2*sin(current_angle), 0));
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}
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} face.outer.push_back(Kernel::Point_3(-x, y, 0.0));
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if (has_position) {
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IfcGeom::CgalKernel::convert(l->Position(), trsf2d);
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for (auto &vertex: face.outer) {
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vertex = vertex.transform(trsf2d);
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}
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}
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return true;
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// double coords[12] = {-x,-y, x,-y, x,-y+d-dy1, xx, xy, -x+d-dx1,y, -x,y};
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// int fillets[3] = {2,3,4};
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// double radii[3] = {f2,f1,f2};
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// return profile_helper(6,coords,doFillet ? 3 : 0,fillets,radii,trsf2d,face);
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}
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