/******************************************************************************** * * * 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 "mapping.h" #define mapping POSTFIX_SCHEMA(mapping) using namespace ifcopenshell::geometry; #ifdef SCHEMA_HAS_IfcCurveSegment #include "../profile_helper.h" #include #include #include namespace { // @todo: rb is there a common math library these functions can be moved to? auto sign = [](double v) -> int { return v < 0 ? -1 : 1; }; // returns -1 or 1 auto binary_sign = [](double v) -> int { return v < 0 ? -1 : (0 < v ? 1 : 0); }; // returns -1, 0, or 1 // @todo change the calculation at end of this to std::lerp when upgrading to C++ 20 template auto compute_adjustment = [](double u, const T& a, const T& b, double l) -> double { return l == 0.0 ? 0.0 : u * (b - a) / l; }; } // namespace // @todo use std::numbers::pi when upgrading to C++ 20 static const double PI = boost::math::constants::pi(); // Current implementation uses the same segment_geometry_adjuster for all ParentCurve types. // Comment/Uncomment to change the type of segment geometry adjuster // Future implementations could use specialized adjusters based on ParentCurve type //#define GEOMETRY_ADJUSTER segment_geometry_adjuster #define GEOMETRY_ADJUSTER linear_segment_geometry_adjuster // Curve segments are evaluated using a parametric function over the curve length, u // IfcCurveSegment.TransitionCode defines how the end of a segment connects to the next segment. // When segments are continuously joined, the placement at u = length should be equal to the placement at u = 0 // of the next segment. However, numerical errors can cause these two points to be slightly offset // from one another (the tangents could be slightly different as well). // // The sources of these numerical errors include geometric approximations (series expansion versus integration // for spiral curves), the IfcCurveSegment.SegmentStart or .SegmentLength parameters contain roundoff or // truncation error, minor errors in placement at the start of a segment can magnify error at the end // of the segment. There are probably others as well. // // The evaluation of the relative location of the end and start points of adjacent segments occurs // after the IfcCurveSegment.Placement is applied to the ParentCurve. The ParentCurve can be defined in // a convenient coordinate system, such as the center of a circle or the origin of a line at (0,0). The Placement // them moves the computed geometry to its relative position. It is the geometry after applying the Placement // that needs to be evaluated and any difference forms the bases for the adjustments made by segment_geometry_adjuster // or one of its subclasses. // // This class applies the IfcCurveSegment.Placement to inst_. The placement at the start of next_inst_ can then be // obtained from mapping->map and compared to the end placement of inst_ and the placement at u can be adjusted // as needed. This default implementation doesn't make any adjustments. Subclass and override the transform_and_adjust // function to specialize the refinement of the placement at u. class segment_geometry_adjuster { public: segment_geometry_adjuster(mapping* mapping, const IfcSchema::IfcCurveSegment* inst, const IfcSchema::IfcCurveSegment* next_inst) : end_of_inst_(Eigen::Matrix4d::Identity()), start_of_next_inst_(Eigen::Matrix4d::Identity()), transition_code_(inst->Transition()) { transformation_matrix_ = taxonomy::cast(mapping->map(inst->Placement()))->ccomponents(); length_ = fabs(*inst->SegmentLength()->as() * mapping->get_length_unit()); if (next_inst) { // if there is a next segment, get the coordinates at the start. // Note that mapping->map(next_inst) causes mapping to occur recursively // through all of the curve segments until the end of curve is reached. // Mapping of IfcCompositeCurve, IfcGradientCurve, and IfcSegmentedReferenceCurve may // need to traverse the IfcCurveSegment objects in reverse order to avoid recursion. auto next = taxonomy::cast(mapping->map(next_inst)); start_of_next_inst_ = next->evaluate(0.0); } } // To determine the geometry adjustments the curve segment needs to be evaluated // without adjustments. This function toggles the application of geometry adjustments void enable_adjustments(bool adjustments) { adjustments_ = adjustments; } // This object doesn't have access to the eval_ property of the curve_segment_evaluator. // The end point of the segment being adjusted, without adjustments, is computed externally // and provided to the curve_segment_adjustor through this method void set_segment_end_point(const Eigen::Matrix4d& end_of_inst) { end_of_inst_ = end_of_inst; init_adjustments(); } // Transforms the ParentCurve geometry with the IfcCurveSegment.Placement and // applies geometric adjustments to the geometry, if enabled Eigen::Matrix4d transform_and_adjust(double u, const Eigen::Matrix4d& parent_curve_point) const { // transform the parent curve's value into the segment curve's coordinate system Eigen::Matrix4d segment_curve_point = transformation_matrix_ * parent_curve_point; if (adjustments_) { apply_adjustments(u, segment_curve_point); } return segment_curve_point; } protected: // precompute any values that are constant when applying geometry adjustments //( subclasses to override. virtual void init_adjustments() { /*do nothing*/ } // Applies geometric adjustment to the segment curve point evaluated at u // This default implementation does nothing virtual void apply_adjustments(double u, Eigen::Matrix4d& p) const { /* do nothing - override in subclass if needed */ } const Eigen::Matrix4d& get_end_of_segment() const { return end_of_inst_; } const Eigen::Matrix4d& get_start_of_next_segment() const { return start_of_next_inst_; } IfcSchema::IfcTransitionCode::Value get_transition_code() const { return transition_code_; } double get_length() const { return length_; } private: bool adjustments_ = true; Eigen::Matrix4d transformation_matrix_; Eigen::Matrix4d end_of_inst_; Eigen::Matrix4d start_of_next_inst_; double length_; IfcSchema::IfcTransitionCode::Value transition_code_; }; // This class refines the geometric adjustment along the segment by dividing the // difference between the segment end point and the start point of the next segment // into equal adjustments and applying the incremental adjustment to each position at u class linear_segment_geometry_adjuster : public segment_geometry_adjuster { public: using segment_geometry_adjuster::segment_geometry_adjuster; protected: virtual void init_adjustments() override { // @todo: rb - implement to improve efficiency // cache delta = (start_next - end_this)/length // adjustment is then adj = u*delta } virtual void apply_adjustments(double u, Eigen::Matrix4d& p) const override { // make the adjustments based on the transition code // all segments must connect end to end except for last segment IfcTransitionCode_DISCONTINUOUS for open curve auto transition_code = get_transition_code(); if (transition_code == IfcSchema::IfcTransitionCode::IfcTransitionCode_DISCONTINUOUS) return; const auto& end_this = get_end_of_segment(); const auto& start_next = get_start_of_next_segment(); auto xe = end_this.col(3)(0); auto ye = end_this.col(3)(1); auto xs = start_next.col(3)(0); auto ys = start_next.col(3)(1); auto length = get_length(); auto x = compute_adjustment(u, xe, xs, length); auto y = compute_adjustment(u, ye, ys, length); p.col(3)(0) += x; p.col(3)(1) += y; if (transition_code == IfcSchema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENT or transition_code == IfcSchema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENTSAMECURVATURE) { for (int i = 0; i < 2; i++) { auto dxe = end_this.col(i)(0); auto dye = end_this.col(i)(1); auto dxs = start_next.col(i)(0); auto dys = start_next.col(i)(1); auto dx = compute_adjustment(u,dxe,dxs,length); auto dy = compute_adjustment(u,dye,dys,length); p.col(i)(0) += dx; p.col(i)(1) += dy; p.col(i).normalize(); } } } }; typedef boost::mpl::vector< IfcSchema::IfcLine #ifdef SCHEMA_HAS_IfcClothoid , IfcSchema::IfcClothoid #endif #if defined SCHEMA_HAS_IfcSecondOrderPolynomialSpiral , IfcSchema::IfcSecondOrderPolynomialSpiral #endif , IfcSchema::IfcPolyline , IfcSchema::IfcCircle , IfcSchema::IfcPolynomialCurve > curve_seg_types; enum segment_type_t { ST_HORIZONTAL, ST_VERTICAL, ST_CANT }; class curve_segment_evaluator { private: mapping* mapping_; const IfcSchema::IfcCurveSegment* inst_; const IfcSchema::IfcCurveSegment* next_inst_; double length_unit_; double start_; double length_; segment_type_t segment_type_; const IfcSchema::IfcCurve* curve_; std::shared_ptr geometry_adjuster; std::optional> eval_; public: // First constructor, takes parameters from IfcCurveSegment curve_segment_evaluator(mapping* mapping, const IfcSchema::IfcCurveSegment* inst, const IfcSchema::IfcCurveSegment* next_inst, double length_unit, segment_type_t segment_type) : mapping_(mapping), inst_(inst), next_inst_(next_inst), length_unit_(length_unit), segment_type_(segment_type), curve_(inst->ParentCurve()) { // @todo in IFC4X3_ADD2 this needs to be length measure if (!inst->SegmentStart()->as() || !inst->SegmentLength()->as()) { // @nb Parameter values are forbidden in the specification until parametrization is provided for all spirals throw std::runtime_error("Unsupported curve measure type"); } start_ = *inst->SegmentStart()->as() * length_unit; length_ = *inst->SegmentLength()->as() * length_unit; } void compute_segment_end_point() { // The segment_geometry_adjuster needs to have both the end point of this segment // and the start point of the next segment. The start point of the next // segment is easy to get and is handled by the segment_geometry_adjuster. // The end point of this segment must be computed by calling the eval_ callback // at u = length_. But things are a little more complicated than that. eval_ will // use segment_geometry_adjuster to correct deviations between this segment's end point and // the next segments start point. In order to compute those adjustments, the // end point of this segment, without correction, must be known. The end point not known // at this time because segment_geometry_adjuster doesn't have access to the eval_ callback. // Additionally, the eval_ callback needs to know if it is evaluating the segment geometry // with our without geometric adjustments. // // Solving that conundrum is the purpose of this function. The geometric adjustments // of geometry_adjuster are disabled, eval_ is called to get the unadjusted end point // of this segment, the geometry_adjuster is updated with the end point so it can // compute and apply geometry adjustments. if (eval_) { geometry_adjuster->enable_adjustments(false); // disable adjustments auto end_point = (*eval_)(fabs(length_)); // compute the end point without correction geometry_adjuster->set_segment_end_point(end_point); // save the unadjusted end point it can be used to compute adjustments geometry_adjuster->enable_adjustments(true); // enable adjustments } } void set_spiral_function(mapping* mapping_, const IfcSchema::IfcSpiral* c, double s, std::function signX, std::function fnX, std::function signY, std::function fnY) { // determine the length of the spiral from the local origin to the end point auto sign_s = binary_sign(start_); auto sign_l = binary_sign(length_); double L = 0; if (sign_s == 0) { L = fabs(length_); // start_ is at zero so length_ is the L } else if (sign_s == sign_l) { L = fabs(start_ + length_); // start_ and length_ are additive } else { L = fabs(start_); // start_ and length_ are in opposite directions so start_ is furthest from the origin } auto transformation_matrix = taxonomy::cast(mapping_->map(c->Position()))->ccomponents(); auto start = start_; geometry_adjuster = std::make_shared(mapping_, inst_, next_inst_); if (segment_type_ == ST_HORIZONTAL || segment_type_ == ST_VERTICAL) { auto segment_type = segment_type_; eval_ = [L, start, s, signX, fnX, signY, fnY, transformation_matrix, segment_type, geometry_adjuster = this->geometry_adjuster](double u) { u += start; // integration limits, integrate from a to b auto a = 0.0; auto b = fabs(u / s); using boost::math::quadrature::trapezoidal; auto x = signX(u) * trapezoidal(fnX, a, b); auto y = signY(u) * trapezoidal(fnY, a, b); // From https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/lexical/IfcSpiral.htm, x = Integral(fnX du), y = Integral(fnY du) // The tangent slope of a curve is the derivate of the curve, so the derivitive of an integral, is just the function // Therefore, Dx/Du = fnX(u) and Dy/Du = fnY(u) which leads to du = Dx/fnX(u) and Dy = fnY(u)*Du = fnY(u)*Dx/fnX(u) so Dy/Dx = fnY(u)/fnX(u) // However, Dx and Dy are not normalized. Recall that slope = rise/run // If run = 1.0, then rise = Dy/Dx = fnY(u)/fnX(u) and l = sqrt((fnY(u)/fnX(u))^2 + 1.0^2) // The direction ratios are dx = 1.0/l and dy = (fnY/fnX)/l; auto rise = fnY(u) / fnX(u); auto run = 1.0; auto l = sqrt(run * run + rise * rise); auto dx = run / l; auto dy = rise / l; Eigen::Matrix4d m; if (segment_type == ST_HORIZONTAL) { // rotate about the Z-axis m.col(0) = Eigen::Vector4d(dx, dy, 0, 0); // vector tangent to the curve, in the direction of the curve m.col(1) = Eigen::Vector4d(-dy, dx, 0, 0); // vector perpendicular to the curve, towards the left when looking from start to end along the curve (this is used for IfcAxis2PlacementLinear.RefDirection when it is not provided) m.col(2) = Eigen::Vector4d(0, 0, 1.0, 0); // cross product of x and y and will always be up (this is used for IfcAxis2PlacementLinear.Axis when it is not provided) m.col(3) = Eigen::Vector4d(x, y, 0.0, 1.0); } else if (segment_type == ST_VERTICAL) { // rotate about the Y-axis (slope along u is dx, slope vertically is dy, vertical position is y) m.col(0) = Eigen::Vector4d(dx, 0, dy, 0); m.col(1) = Eigen::Vector4d(0, 1, 0, 0); m.col(2) = Eigen::Vector4d(-dy, 0, dx, 0); m.col(3) = Eigen::Vector4d(0, 0, y, 1.0); // y is an elevation so store it as z } Eigen::Matrix4d result = transformation_matrix * m; return geometry_adjuster->transform_and_adjust(u,result); }; } else if (segment_type_ == ST_CANT) { eval_ = [geometry_adjuster = this->geometry_adjuster](double u) { Eigen::Matrix4d result; return geometry_adjuster->transform_and_adjust(u, result); }; } else { Logger::Error(std::runtime_error("Unexpected segment type encountered")); } } // Clothoid using Taylor Series approximation //#ifdef SCHEMA_HAS_IfcClothoid // // Then initialize Function(double) -> Vector3, by means of IfcCurve subtypes // void operator()(IfcSchema::IfcClothoid* c) { // auto sign_s = binary_sign(start_); // auto sign_l = binary_sign(length_); // double L = 0; // if (sign_s == 0) L = fabs(length_); // else if (sign_s == sign_l) L = fabs(start_ + length_); // else L = fabs(start_); // // auto A = c->ClothoidConstant(); // auto R = A * A / L; // auto RL = sign(A) * R * L; // // //const auto& transformation_matrix = taxonomy::cast(mapping_->map(c->Position()))->ccomponents(); // auto transformation_matrix = taxonomy::cast(mapping_->map(c->Position()))->ccomponents(); // // auto start = start_; // eval_ = [RL, transformation_matrix, start](double u) { // // coordinate along clothoid is local coordinates // u += start; // // auto xterm_1 = u; // auto xterm_2 = std::pow(u, 5) / (40 * std::pow(RL, 2)); // auto xterm_3 = std::pow(u, 9) / (3456 * std::pow(RL, 4)); // auto xterm_4 = std::pow(u, 13) / (599040 * std::pow(RL, 6)); // auto x = xterm_1 - xterm_2 + xterm_3 - xterm_4; // // auto yterm_1 = std::pow(u, 3) / (6 * RL); // auto yterm_2 = std::pow(u, 7) / (336 * std::pow(RL, 3)); // auto yterm_3 = std::pow(u, 11) / (42240 * std::pow(RL, 5)); // auto yterm_4 = std::pow(u, 15) / (9676800 * std::pow(RL, 7)); // auto y = yterm_1 - yterm_2 + yterm_3 - yterm_4; // // // transform point into clothoid's coodinate system // auto result = transformation_matrix * Eigen::Vector4d(x, y, 0.0, 1.0); // Eigen::VectorXd vec(4); // vec << result(0), result(1), 0.0, 1.0; // return vec; // }; // } //#endif // Clothoid using numerical integration #ifdef SCHEMA_HAS_IfcClothoid // Then initialize Function(double) -> Vector3, by means of IfcCurve subtypes void operator()(const IfcSchema::IfcClothoid* c) { // see https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/lexical/IfcClothoid.htm // also see, https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/concepts/Partial_Templates/Geometry/Curve_Segment_Geometry/Clothoid_Transition_Segment/content.html, // which defines the clothoid constant as sqrt(L) and L is the length measured from the inflection point auto A = c->ClothoidConstant(); auto s = fabs(A * sqrt(PI)); // the integration is for the +X, +Y quadrant - need to adjust the signs of the resulting X and Y values // so that the results are in the correct quadrant. // A > 0 and u > 0 -> +X, +Y // A < 0 and u > 0 -> +X, -Y // A > 0 and u < 0 -> -X, -Y // A < 0 and u < 0 -> -X, +Y // X depends only on u, Y depends on u and A. auto sign_x = [](double t) {return sign(t); }; auto sign_y = [A](double t) {return sign(t) == sign(A) ? 1.0 : -1.0; }; auto fn_x = [A,s](double t)->double {return s * cos(PI * fabs(A) * t * t / (2 * fabs(A))); }; auto fn_y = [A,s](double t)->double {return s * sin(PI * fabs(A) * t * t / (2 * fabs(A))); }; set_spiral_function(mapping_, c, s, sign_x, fn_x, sign_y, fn_y); } #endif #ifdef SCHEMA_HAS_IfcSecondOrderPolynomialSpiral void operator()(const IfcSchema::IfcSecondOrderPolynomialSpiral* c) { // @todo: rb verify - this is an example implementation of a different kind of spiral - lots of clean up needed auto A0 = c->ConstantTerm(); auto A1 = c->LinearTerm(); auto A2 = c->QuadraticTerm(); auto theta = [A0, A1, A2](double t) { auto a0 = A0.has_value() ? t / A0.value() : 0.0; auto a1 = A1.has_value() ? A1.value() * std::pow(t, 2) / (2 * fabs(std::pow(A1.value(), 3))) : 0.0; auto a2 = std::pow(t, 3) / (3 * std::pow(A2, 3)); return a0 + a1 + a2; }; auto sign_x = [](double t) {return sign(t); }; auto sign_y = [](double t) {return sign(t); }; // @todo: rb - fix - not sure about sign_y yet, need to find some plots of this spiral auto fn_x = [theta](double t)->double {return cos(theta(t)); }; auto fn_y = [theta](double t)->double {return sin(theta(t)); }; double s = 1.0; // @todo: rb - this is supposed to be the curve length when the parametric value u = 1.0 set_spiral_function(mapping_, c, s, sign_x, fn_x, sign_y, fn_y); } #endif void operator()(const IfcSchema::IfcCircle* c) { auto R = c->Radius(); auto sign_l = sign(length_); auto start = start_; auto transformation_matrix = taxonomy::cast(mapping_->map(c->Position()))->ccomponents(); auto segment_type = segment_type_; geometry_adjuster = std::make_shared(mapping_, inst_, next_inst_); eval_ = [R, start, sign_l, transformation_matrix, segment_type, geometry_adjuster = this->geometry_adjuster](double u) { auto angle = start + sign_l * u / R; auto dx = cos(angle); auto dy = sin(angle); auto x = R * dx; auto y = R * dy; Eigen::Matrix4d m; if (segment_type == ST_HORIZONTAL) { // rotate about the Z-axis m.col(0) = Eigen::Vector4d(dx, dy, 0, 0); // vector tangent to the curve, in the direction of the curve m.col(1) = Eigen::Vector4d(-dy, dx, 0, 0); // vector perpendicular to the curve, towards the left when looking from start to end along the curve (this is used for IfcAxis2PlacementLinear.RefDirection when it is not provided) m.col(2) = Eigen::Vector4d(0, 0, 1.0, 0); // cross product of x and y and will always be up (this is used for IfcAxis2PlacementLinear.Axis when it is not provided) m.col(3) = Eigen::Vector4d(x, y, 0.0, 1.0); } else if (segment_type == ST_VERTICAL) { // rotate about the Y-axis (slope along u is dx, slope vertically is dy, vertical position is y) m.col(0) = Eigen::Vector4d(dx, 0, dy, 0); m.col(1) = Eigen::Vector4d(0, 1, 0, 0); m.col(2) = Eigen::Vector4d(-dy, 0, dx, 0); m.col(3) = Eigen::Vector4d(0, 0, y, 1.0); // y is an elevation so store it as z } else if (segment_type == ST_CANT) { Logger::Warning(std::runtime_error("Use of IfcCircle for cant is not supported")); } else { Logger::Error(std::runtime_error("Unexpected segment type encountered")); } Eigen::Matrix4d result = transformation_matrix * m; return geometry_adjuster->transform_and_adjust(u, result); }; } void operator()(const IfcSchema::IfcPolyline* pl) { struct Range { double u_start; double u_end; std::function compare; bool operator<(const Range& r) const { return u_start < r.u_start; } }; using Function = std::function; std::map fns; auto p = pl->Points(); if (p->size() < 2) { throw std::runtime_error("invalid polyline - must have at least 2 points"); // this should never happen, but just in case it does } auto std_compare = [](double u_start, double u, double u_end) {return u_start <= u && u < u_end; }; auto end_compare = [](double u_start, double u, double u_end) { return u_start <= u && u <= (u_end + 0.001); }; auto begin = p->begin(); auto iter = begin; auto end = p->end(); auto last = std::prev(end); auto p1 = *(iter++); if (p1->Coordinates().size() != 2) Logger::Warning("Expected IfcPolyline.Points to be 2D",pl); auto u = 0.0; for (; iter != end; iter++) { auto p2 = *iter; auto p1x = p1->Coordinates()[0]; auto p1y = p1->Coordinates()[1]; auto p2x = p2->Coordinates()[0]; auto p2y = p2->Coordinates()[1]; auto dx = p2x - p1x; auto dy = p2y - p1y; auto l = sqrt(dx * dx + dy * dy); if (l < mapping_->conversion_settings().getValue(ConversionSettings::GV_PRECISION)) { std::ostringstream os; os << "Coincident IfcPolyline.Points are not expected. Skipping point " << std::distance(iter, begin) << std::endl; Logger::Warning(os.str(), pl); continue; // go to next point } dx /= l; dy /= l; auto segment_type = segment_type_; auto fn = [p1x, p1y, dx, dy, segment_type](double u) { auto x = segment_type == ST_HORIZONTAL ? p1x + u * dx : u; auto y = p1y + u * dy; Eigen::Matrix4d m; if (segment_type == ST_HORIZONTAL) { // rotate about the Z-axis m.col(0) = Eigen::Vector4d(dx, dy, 0, 0); // vector tangent to the curve, in the direction of the curve m.col(1) = Eigen::Vector4d(-dy, dx, 0, 0); // vector perpendicular to the curve, towards the left when looking from start to end along the curve (this is used for IfcAxis2PlacementLinear.RefDirection when it is not provided) m.col(2) = Eigen::Vector4d(0, 0, 1.0, 0); // cross product of x and y and will always be up (this is used for IfcAxis2PlacementLinear.Axis when it is not provided) m.col(3) = Eigen::Vector4d(x, y, 0.0, 1.0); } else if (segment_type == ST_VERTICAL) { // rotate about the Y-axis (slope along u is dx, slope vertically is dy, vertical position is y) m.col(0) = Eigen::Vector4d(dx, 0, dy, 0); m.col(1) = Eigen::Vector4d(0, 1, 0, 0); m.col(2) = Eigen::Vector4d(-dy, 0, dx, 0); m.col(3) = Eigen::Vector4d(0, 0, y, 1.0); // y is an elevation so store it as z } else if (segment_type == ST_CANT) { Logger::Warning(std::runtime_error("Use of IfcPolyline for cant is not supported")); } else { Logger::Error(std::runtime_error("Unexpected segment type encountered")); } return m; }; fns.insert(std::make_pair(Range{ u, u + l,iter == last ? end_compare : std_compare }, fn)); p1 = p2; u = u + l; } geometry_adjuster = std::make_shared(mapping_, inst_, next_inst_); eval_ = [fns, geometry_adjuster = this->geometry_adjuster](double u) { auto iter = std::find_if(fns.cbegin(), fns.cend(), [=](const auto& fn) { auto [u_start, u_end, compare] = fn.first; return compare(u_start, u, u_end); }); if (iter == fns.end()) throw std::runtime_error("invalid distance from start"); // this should never happen, but just in case it does, throw an exception so the problem gets automatically detected const auto& [u_start, u_end, compare] = iter->first; const auto& fn = iter->second; Eigen::Matrix4d m = fn(u - u_start); // (u - u_start) is distance from start of this segment of the polyline return geometry_adjuster->transform_and_adjust(u, m); }; } void operator()(const IfcSchema::IfcLine* l) { auto s = l->Pnt(); auto c = s->Coordinates(); auto v = l->Dir(); auto dr = v->Orientation()->DirectionRatios(); auto m = v->Magnitude(); auto px = c[0]; auto py = c[1]; auto dx = dr[0] / m; auto dy = dr[1] / m; geometry_adjuster = std::make_shared(mapping_, inst_, next_inst_); if (segment_type_ == ST_HORIZONTAL) { eval_ = [px, py, dx, dy, geometry_adjuster=this->geometry_adjuster](double u) { auto x = px + u * dx; auto y = py + u * dy; Eigen::Matrix4d m; m.col(0) = Eigen::Vector4d(dx, dy, 0, 0); // vector tangent to the curve, in the direction of the curve m.col(1) = Eigen::Vector4d(-dy, dx, 0, 0); // vector perpendicular to the curve, towards the left when looking from start to end along the curve (this is used for IfcAxis2PlacementLinear.RefDirection when it is not provided) m.col(2) = Eigen::Vector4d(0, 0, 1.0, 0); // cross product of x and y and will always be up (this is used for IfcAxis2PlacementLinear.Axis when it is not provided) m.col(3) = Eigen::Vector4d(x, y, 0.0, 1.0); return geometry_adjuster->transform_and_adjust(u, m); }; } else if (segment_type_ == ST_VERTICAL || segment_type_ == ST_CANT) { eval_ = [py, dx, dy, geometry_adjuster = this->geometry_adjuster](double u) { // https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/lexical/IfcGradientCurve.htm // the parameter, u, is the parameter of the BaseCurve (u = plan view distance along base curve) // dx and dy are normalized so u needs to be scaled by dy/dx // Consider a 5% uphill grade defined by dr[0] = 1 and dr[1] = 0.05. // We would normally compute y = py + 0.05*u. // However, m = sqrt(1*1 + 0.05*0.05) = 1.0124922 we need to normalize the direction ratios as // dx = dr[0]/m and dy = dr[1]/m which makes dy = 0.05/1.0124922 = 0.0499376 // y = py + u * dy/dx = py + u * (dr[1]/m)*(m/dr[0]) = py + u * 0.05 auto y = py + u * dy/dx; Eigen::Matrix4d m; m.col(0) = Eigen::Vector4d(dx, 0, dy, 0); m.col(1) = Eigen::Vector4d(0, 1, 0, 0); m.col(2) = Eigen::Vector4d(-dy, 0, dx, 0); m.col(3) = Eigen::Vector4d(0, 0, y, 1.0); // y is an elevation so store it as z return geometry_adjuster->transform_and_adjust(u, m); }; } else { Logger::Error(std::runtime_error("Unexpected segment type encountered"), l); } } void operator()(const IfcSchema::IfcPolynomialCurve* p) { // see https://forums.buildingsmart.org/t/ifcpolynomialcurve-clarification/4716 for discussion on IfcPolynomialCurve auto coeffX = p->CoefficientsX().get_value_or(std::vector()); auto coeffY = p->CoefficientsY().get_value_or(std::vector()); auto coeffZ = p->CoefficientsZ().get_value_or(std::vector()); if (!coeffZ.empty()) Logger::Warning("Expected IfcPolynomialCurve.CoefficientsZ to be undefined for alignment geometry. Coefficients ignored.", p); auto transformation_matrix = taxonomy::cast(mapping_->map(p->Position()))->ccomponents(); auto segment_type = segment_type_; geometry_adjuster = std::make_shared(mapping_, inst_, next_inst_); eval_ = [coeffX, coeffY, transformation_matrix, segment_type, geometry_adjuster = this->geometry_adjuster](double u) { std::array*, 2> coefficients{&coeffX, &coeffY}; std::array position{0.0, 0.0}; std::array slope{0.0, 0.0}; // slope is derivative of the curve = SUM( coeff*pos*u^(pos-1) ) for (int i = 0; i < 2; i++) { auto begin = coefficients[i]->cbegin(); auto end = coefficients[i]->cend(); for (auto iter = begin; iter != end; iter++) { auto exp = std::distance(begin, iter); position[i] += (*iter) * pow(u, exp); if (iter != begin) { slope[i] += (*iter) * exp * pow(u, exp - 1); } } } auto x = position[0]; auto y = position[1]; auto dx = slope[0]; auto dy = slope[1]; Eigen::Matrix4d m; if (segment_type == ST_HORIZONTAL) { // rotate about the Z-axis m.col(0) = Eigen::Vector4d(dx, dy, 0, 0); // vector tangent to the curve, in the direction of the curve m.col(1) = Eigen::Vector4d(-dy, dx, 0, 0); // vector perpendicular to the curve, towards the left when looking from start to end along the curve (this is used for IfcAxis2PlacementLinear.RefDirection when it is not provided) m.col(2) = Eigen::Vector4d(0, 0, 1.0, 0); // cross product of x and y and will always be up (this is used for IfcAxis2PlacementLinear.Axis when it is not provided) m.col(3) = Eigen::Vector4d(x, y, 0.0, 1.0); } else if (segment_type == ST_VERTICAL) { // rotate about the Y-axis (slope along u is dx, slope vertically is dy, vertical position is y) m.col(0) = Eigen::Vector4d(dx, 0, -dy, 0); m.col(1) = Eigen::Vector4d(0, 1, 0, 0); m.col(2) = Eigen::Vector4d(dy, 0, dx, 0); m.col(3) = Eigen::Vector4d(0, 0, y, 1.0); // y is an elevation so store it as z } else if (segment_type == ST_CANT) { Logger::Warning(std::runtime_error("Use of IfcPolynomialCurve for cant is not supported")); } else { Logger::Error(std::runtime_error("Unexpected segment type encountered")); } return geometry_adjuster->transform_and_adjust(u, m); }; } // Take the boost::type value from mpl::for_each and test it against our curve instance template void operator()(boost::type) { if (curve_->as()) { (*this)(curve_->as()); } } double length() const { return length_; } const std::optional>& evaluation_function() const { return eval_; } }; taxonomy::ptr mapping::map_impl(const IfcSchema::IfcCurveSegment* inst) { // Find the next segment after inst const IfcSchema::IfcCurveSegment* next_inst = nullptr; auto composite_curves = inst->data().getInverse(&IfcSchema::IfcCompositeCurve::Class(), 0); if (composite_curves) { if (composite_curves->size() == 1) { auto segments = (*composite_curves->begin())->as()->Segments(); bool emit_next = false; for (auto& s : *segments) { if (emit_next) { next_inst = s->as(); break; } if (s == inst) { emit_next = true; } } } else { Logger::Warning("IfcCurveSegment belongs to multiple IfcCompositeCurve instances. Cannot determine the next segment. Geometry adjustments will not be made."); } } bool is_horizontal = false; bool is_vertical = false; bool is_cant = false; { aggregate_of_instance::ptr segment_owners = inst->data().getInverse(&IfcSchema::IfcCompositeCurve::Class(), 0); if (segment_owners) { for (auto& cc : *segment_owners) { if (cc->as()) { is_cant = true; } else if (cc->as()) { is_vertical = true; } else { is_horizontal = true; } } } } if ((is_horizontal + is_vertical + is_cant) != 1) { // We have to choose the correct functor based on usage. We can't // support multiple, because we don't know the caller at this point. return nullptr; } auto segment_type = is_horizontal ? ST_HORIZONTAL : is_vertical ? ST_VERTICAL : ST_CANT; curve_segment_evaluator cse(this, inst, next_inst, length_unit_, segment_type); boost::mpl::for_each>(std::ref(cse)); cse.compute_segment_end_point(); auto& eval_fn = cse.evaluation_function(); if(!eval_fn) throw std::runtime_error(inst->ParentCurve()->declaration().name() + " not implemented"); auto fn = *eval_fn; auto length = fabs(cse.length()); // @todo it might be suboptimal that we no longer have the spans now auto pwf = taxonomy::make(); pwf->spans.push_back({ length, fn }); pwf->instance = inst; return pwf; } #endif