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495 lines
27 KiB
C++
495 lines
27 KiB
C++
/********************************************************************************
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* *
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* This file is part of IfcOpenShell. *
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* *
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* IfcOpenShell is free software: you can redistribute it and/or modify *
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* it under the terms of the Lesser GNU General Public License as published by *
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* the Free Software Foundation, either version 3.0 of the License, or *
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* (at your option) any later version. *
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* *
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* IfcOpenShell is distributed in the hope that it will be useful, *
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* but WITHOUT ANY WARRANTY; without even the implied warranty of *
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
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* Lesser GNU General Public License for more details. *
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* *
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* You should have received a copy of the Lesser GNU General Public License *
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* along with this program. If not, see <http://www.gnu.org/licenses/>. *
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* *
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********************************************************************************/
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// This example illustrates the basic of building an alignment model.
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// The alignment is based on "Bridge Geometry Manual", April 2022
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// US Department of Transportation, Federal Highway Administration (FHWA)
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// https://www.fhwa.dot.gov/bridge/pubs/hif22034.pdf
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//
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// Sections and page number for this document are cited in the code comments.
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//
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// This examples differs from IfcSimplifiedAlignment because it builds the
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// alignment explicitly
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// Disable warnings coming from IfcOpenShell
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#pragma warning(disable : 4018 4267 4250 4984 4985)
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#include "../ifcparse/Ifc4x3_add2.h"
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#include "../ifcparse/IfcHierarchyHelper.h"
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#include <boost/math/constants/constants.hpp>
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#include <fstream>
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const double PI = boost::math::constants::pi<double>();
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double to_radian(double deg) { return PI * deg / 180; }
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#define Schema Ifc4x3_add2
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// performs basic project setup including created the IfcProject object
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// and initializing the project units to FEET
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Schema::IfcProject* setup_project(IfcHierarchyHelper<Schema>& file) {
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std::vector<std::string> file_description;
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file_description.push_back("ViewDefinition[Alignment-basedReferenceView]");
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file.header().file_description()->setdescription(file_description);
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auto project = file.addProject();
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project->setName(std::string("FHWA Bridge Geometry Manual Example Alignment"));
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project->setDescription(std::string("C++ Example"));
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// set up project units for feet
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// the call to file.addProject() sets up length units as millimeter.
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auto units_in_context = project->UnitsInContext();
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auto units = units_in_context->Units();
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auto begin = units->begin();
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auto iter = begin;
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auto end = units->end();
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for (; iter != end; iter++) {
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auto unit = *iter;
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if (unit->as<Schema::IfcSIUnit>() && unit->as<Schema::IfcSIUnit>()->UnitType() == Schema::IfcUnitEnum::IfcUnit_LENGTHUNIT) {
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auto dimensions = new Schema::IfcDimensionalExponents(1, 0, 0, 0, 0, 0, 0);
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file.addEntity(dimensions);
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auto conversion_factor = new Schema::IfcMeasureWithUnit(new Schema::IfcLengthMeasure(304.80), unit->as<Schema::IfcSIUnit>());
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file.addEntity(conversion_factor);
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auto conversion_based_unit = new Schema::IfcConversionBasedUnit(dimensions, Schema::IfcUnitEnum::IfcUnit_LENGTHUNIT, "FEET", conversion_factor);
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file.addEntity(conversion_based_unit);
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units->remove(unit); // remove the millimeter unit
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units->push(conversion_based_unit); // add the feet unit
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units_in_context->setUnits(units); // update the UnitsInContext
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break; // Done!, the length unit was found, so break out of the loop
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}
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}
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return project;
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}
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// creates geometry and business logic segments for horizontal alignment tangent runs
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std::pair<typename Schema::IfcCurveSegment*, typename Schema::IfcAlignmentSegment*> create_tangent(typename Schema::IfcCartesianPoint* p, double dir, double length) {
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// geometry
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auto parent_curve = new Schema::IfcLine(
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new Schema::IfcCartesianPoint(std::vector<double>({0, 0})),
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new Schema::IfcVector(new Schema::IfcDirection(std::vector<double>{1.0, 0.0}), 1.0));
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auto curve_segment = new Schema::IfcCurveSegment(
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Schema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENT,
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new Schema::IfcAxis2Placement2D(p, new Schema::IfcDirection(std::vector<double>{cos(dir), sin(dir)})),
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new Schema::IfcLengthMeasure(0.0), // start
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new Schema::IfcLengthMeasure(length),
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parent_curve);
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// business logic
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auto design_parameters = new Schema::IfcAlignmentHorizontalSegment(
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boost::none, boost::none, p, dir, 0.0, 0.0, length, boost::none, Schema::IfcAlignmentHorizontalSegmentTypeEnum::IfcAlignmentHorizontalSegmentType_LINE);
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auto alignment_segment = new Schema::IfcAlignmentSegment(
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IfcParse::IfcGlobalId(), nullptr, boost::none, boost::none, boost::none, nullptr, nullptr, design_parameters);
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return {curve_segment, alignment_segment};
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}
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// creates geometry and business logic segments for horizontal alignment horizonal curves
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std::pair<typename Schema::IfcCurveSegment*, typename Schema::IfcAlignmentSegment*> create_hcurve(typename Schema::IfcCartesianPoint* pc, double dir, double radius, double lc) {
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// geometry
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double sign = radius / fabs(radius);
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auto parent_curve = new Schema::IfcCircle(
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new Schema::IfcAxis2Placement2D(new Schema::IfcCartesianPoint(std::vector<double>({0, 0})), new Schema::IfcDirection(std::vector<double>{1, 0})),
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fabs(radius));
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auto curve_segment = new Schema::IfcCurveSegment(
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Schema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENT,
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new Schema::IfcAxis2Placement2D(pc, new Schema::IfcDirection(std::vector<double>{cos(dir), sin(dir)})),
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new Schema::IfcLengthMeasure(0.0),
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new Schema::IfcLengthMeasure(sign * lc),
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parent_curve);
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// business logic
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auto design_parameters = new Schema::IfcAlignmentHorizontalSegment(boost::none, boost::none, pc, dir, radius, radius, lc, boost::none, Schema::IfcAlignmentHorizontalSegmentTypeEnum::IfcAlignmentHorizontalSegmentType_CIRCULARARC);
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auto alignment_segment = new Schema::IfcAlignmentSegment(IfcParse::IfcGlobalId(), nullptr, boost::none, boost::none, boost::none, nullptr, nullptr, design_parameters);
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return {curve_segment, alignment_segment};
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}
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// creates geometry and business logic segments for vertical profile gradient runs
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std::pair<typename Schema::IfcCurveSegment*, typename Schema::IfcAlignmentSegment*> create_gradient(typename Schema::IfcCartesianPoint* p, double slope, double length) {
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// geometry
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auto parent_curve = new Schema::IfcLine(
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new Schema::IfcCartesianPoint(std::vector<double>({0, 0})),
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new Schema::IfcVector(new Schema::IfcDirection(std::vector<double>{1, 0}), 1.0));
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auto curve_segment = new Schema::IfcCurveSegment(
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Schema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENT,
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new Schema::IfcAxis2Placement2D(p, new Schema::IfcDirection(std::vector<double>{sqrt(1 - slope * slope), slope})),
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new Schema::IfcLengthMeasure(0.0), // start
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new Schema::IfcLengthMeasure(length),
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parent_curve);
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// business logic
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auto design_parameters = new Schema::IfcAlignmentVerticalSegment(boost::none, boost::none, p->Coordinates()[0], length, p->Coordinates()[1], slope, slope, boost::none, Schema::IfcAlignmentVerticalSegmentTypeEnum::IfcAlignmentVerticalSegmentType_CONSTANTGRADIENT);
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auto alignment_segment = new Schema::IfcAlignmentSegment(IfcParse::IfcGlobalId(), nullptr, boost::none, boost::none, boost::none, nullptr, nullptr, design_parameters);
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return {curve_segment, alignment_segment};
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}
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// creates geometry and business logic segments for vertical profile parabolic vertical curves
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std::pair<typename Schema::IfcCurveSegment*, typename Schema::IfcAlignmentSegment*> create_vcurve(typename Schema::IfcCartesianPoint* p, double start_slope, double end_slope, double length) {
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// geometry
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double A = p->Coordinates()[1];
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double B = start_slope;
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double C = (end_slope - start_slope) / (2 * length);
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auto parent_curve = new Schema::IfcPolynomialCurve(
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new Schema::IfcAxis2Placement2D(new Schema::IfcCartesianPoint(std::vector<double>{0.0, 0.0}), new Schema::IfcDirection(std::vector<double>{1.0, 0.0})),
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std::vector<double>{0.0, 1.0},
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std::vector<double>{A, B, C},
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boost::none);
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auto curve_segment = new Schema::IfcCurveSegment(
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Schema::IfcTransitionCode::IfcTransitionCode_CONTSAMEGRADIENT,
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new Schema::IfcAxis2Placement2D(p, new Schema::IfcDirection(std::vector<double>{sqrt(1 - start_slope * start_slope), start_slope})),
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new Schema::IfcLengthMeasure(0.0),
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new Schema::IfcLengthMeasure(length),
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parent_curve);
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// business logic
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double k = (end_slope - start_slope) / length;
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auto design_parameters = new Schema::IfcAlignmentVerticalSegment(boost::none, boost::none, p->Coordinates()[0], length, p->Coordinates()[1], start_slope, end_slope, 1 / k, Schema::IfcAlignmentVerticalSegmentTypeEnum::IfcAlignmentVerticalSegmentType_PARABOLICARC);
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auto alignment_segment = new Schema::IfcAlignmentSegment(IfcParse::IfcGlobalId(), nullptr, boost::none, boost::none, boost::none, nullptr, nullptr, design_parameters);
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return {curve_segment, alignment_segment};
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}
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// creates representations for each IfcAlignmentSegment per CT 4.1.7.1.1.4
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// https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/concepts/Product_Shape/Product_Geometric_Representation/Alignment_Geometry/Alignment_Geometry_-_Segments/content.html
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void create_segment_representations(IfcHierarchyHelper<Schema>& file, Schema::IfcLocalPlacement* global_placement, Schema::IfcGeometricRepresentationSubContext* segment_axis_subcontext, typename aggregate_of<typename Schema::IfcSegment>::ptr curve_segments, typename aggregate_of<typename Schema::IfcObjectDefinition>::ptr segments) {
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auto cs_iter = curve_segments->begin();
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auto s_iter = segments->begin();
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for (; cs_iter != curve_segments->end(); cs_iter++, s_iter++) {
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auto curve_segment = *cs_iter;
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auto alignment_segment = (*s_iter)->as<Schema::IfcAlignmentSegment>();
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typename aggregate_of<typename Schema::IfcRepresentationItem>::ptr representation_items(new aggregate_of<typename Schema::IfcRepresentationItem>());
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representation_items->push(curve_segment);
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auto axis_representation = new Schema::IfcShapeRepresentation(segment_axis_subcontext, std::string("Axis"), std::string("Segment"), representation_items);
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file.addEntity(axis_representation);
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typename aggregate_of<typename Schema::IfcRepresentation>::ptr representations(new aggregate_of<typename Schema::IfcRepresentation>());
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representations->push(axis_representation);
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auto product = new Schema::IfcProductDefinitionShape(boost::none, boost::none, representations);
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file.addEntity(product);
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alignment_segment->setObjectPlacement(global_placement);
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alignment_segment->setRepresentation(product);
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}
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}
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int main() {
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IfcHierarchyHelper<Schema> file;
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auto project = setup_project(file);
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auto geometric_representation_context = file.getRepresentationContext(std::string("Model")); // creates the representation context if it doesn't already exist
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auto axis_model_representation_subcontext = new Schema::IfcGeometricRepresentationSubContext(std::string("Axis"), std::string("Model"), geometric_representation_context, boost::none, Schema::IfcGeometricProjectionEnum::IfcGeometricProjection_MODEL_VIEW, boost::none);
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file.addEntity(axis_model_representation_subcontext);
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auto global_placement = file.addLocalPlacement();
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//
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// Define horizontal alignment
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//
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// define key points
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// B.1.4 pg 212
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auto pob = file.addDoublet<Schema::IfcCartesianPoint>(500, 2500); // beginning
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auto pc1 = file.addDoublet<Schema::IfcCartesianPoint>(2142.237995, 1436.014820); // Point of curve (PC), Curve #1
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auto pt1 = file.addDoublet<Schema::IfcCartesianPoint>(3660.446123, 2050.736173); // Point of tangent (PT), Curve #1
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auto pc2 = file.addDoublet<Schema::IfcCartesianPoint>(4084.115884, 3889.462938); // Point of curve (PC), Curve #2
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auto pt2 = file.addDoublet<Schema::IfcCartesianPoint>(5469.395067, 4847.566310); // Point of tangent (PT), Curve #2
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auto pc3 = file.addDoublet<Schema::IfcCartesianPoint>(7019.971367, 4638.286073); // Point of curve (PC), Curve #3
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auto pt3 = file.addDoublet<Schema::IfcCartesianPoint>(7790.932128, 4006.730765); // Point of tangent (PT), Curve #3
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auto poe = file.addDoublet<Schema::IfcCartesianPoint>(8480, 2010); // ending
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// define tangent runs and curve lengths
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double run_1 = 1956.785654;
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double lc_1 = 1919.222667;
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double run_2 = 1886.905454;
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double lc_2 = 1848.115835;
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double run_3 = 1564.635765;
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double lc_3 = 1049.119737;
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double run_4 = 2112.285084;
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// define curve radii
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double rc_1 = 1000;
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double rc_2 = -1250; // negative radius for curves to the right
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double rc_3 = -950;
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// bearing of tangents
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double angle_1 = to_radian(327.0613);
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double angle_2 = to_radian(77.0247);
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double angle_3 = to_radian(352.3133);
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double angle_4 = to_radian(289.0395);
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// create containers to store the curve segments
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typename aggregate_of<typename Schema::IfcSegment>::ptr horizontal_curve_segments(new aggregate_of<typename Schema::IfcSegment>()); // geometry
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typename aggregate_of<typename Schema::IfcObjectDefinition>::ptr horizontal_segments(new aggregate_of<typename Schema::IfcObjectDefinition>()); // business logic
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//
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// Build the horizontal alignment segments
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//
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// POB to PC1
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auto curve_segment_1 = create_tangent(pob, angle_1, run_1);
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horizontal_curve_segments->push(curve_segment_1.first);
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horizontal_segments->push(curve_segment_1.second);
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// Curve 1
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auto curve_segment_2 = create_hcurve(pc1, angle_1, rc_1, lc_1);
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horizontal_curve_segments->push(curve_segment_2.first);
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horizontal_segments->push(curve_segment_2.second);
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// PT1 to PC2
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auto curve_segment_3 = create_tangent(pt1, angle_2, run_2);
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horizontal_curve_segments->push(curve_segment_3.first);
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horizontal_segments->push(curve_segment_3.second);
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// Curve 2
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auto curve_segment_4 = create_hcurve(pc2, angle_2, rc_2, lc_2);
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horizontal_curve_segments->push(curve_segment_4.first);
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horizontal_segments->push(curve_segment_4.second);
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// PT2 to PC3
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auto curve_segment_5 = create_tangent(pt2, angle_3, run_3);
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horizontal_curve_segments->push(curve_segment_5.first);
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horizontal_segments->push(curve_segment_5.second);
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// Curve 3
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auto curve_segment_6 = create_hcurve(pc3, angle_3, rc_3, lc_3);
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horizontal_curve_segments->push(curve_segment_6.first);
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horizontal_segments->push(curve_segment_6.second);
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// PT3 to POE
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auto curve_segment_7 = create_tangent(pt3, angle_4, run_4);
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horizontal_curve_segments->push(curve_segment_7.first);
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horizontal_segments->push(curve_segment_7.second);
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// Zero-length terminator segment
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auto terminator_segment = create_tangent(poe, angle_4, 0.0);
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terminator_segment.first->setTransition(Schema::IfcTransitionCode::IfcTransitionCode_DISCONTINUOUS);
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horizontal_curve_segments->push(terminator_segment.first);
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horizontal_segments->push(terminator_segment.second);
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//
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// Create the horizontal alignment (IfcAlignmentHorizontal) and nest alignment segments
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//
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auto horizontal_alignment = new Schema::IfcAlignmentHorizontal(IfcParse::IfcGlobalId(), nullptr, std::string("Horizontal Alignment"), boost::none, boost::none, nullptr, nullptr);
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file.addEntity(horizontal_alignment);
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auto nests_horizontal_segments = new Schema::IfcRelNests(IfcParse::IfcGlobalId(), nullptr, boost::none, std::string("Nests horizontal alignment segments with horizontal alignment"), horizontal_alignment, horizontal_segments);
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file.addEntity(nests_horizontal_segments);
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//
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// Create plan view footprint model representation for the horizontal alignment
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//
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// start by defining a composite curve composed of the horizonal curve segments
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auto composite_curve = new Schema::IfcCompositeCurve(horizontal_curve_segments, false /*not self-intersecting*/);
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file.addEntity(composite_curve);
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// the composite curve is a representation item
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typename aggregate_of<typename Schema::IfcRepresentationItem>::ptr alignment_representation_items(new aggregate_of<typename Schema::IfcRepresentationItem>());
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alignment_representation_items->push(composite_curve);
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// create the footprint representation
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auto footprint_shape_representation = new Schema::IfcShapeRepresentation(axis_model_representation_subcontext, std::string("FootPrint"), std::string("Curve2D"), alignment_representation_items);
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file.addEntity(footprint_shape_representation);
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//
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// Define vertical profile segments
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//
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// create containers to store the curve segments
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typename aggregate_of<typename Schema::IfcSegment>::ptr vertical_curve_segments(new aggregate_of<typename Schema::IfcSegment>()); // geometry
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typename aggregate_of<typename Schema::IfcObjectDefinition>::ptr vertical_segments(new aggregate_of<typename Schema::IfcObjectDefinition>()); // business logic
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// define key profile points
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auto vpob = file.addDoublet<Schema::IfcCartesianPoint>(0.0, 100.0); // beginning
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auto vpc1 = file.addDoublet<Schema::IfcCartesianPoint>(1200.0, 121.0); // Vertical Curve Point (VPC), Vertical Curve #1
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auto vpt1 = file.addDoublet<Schema::IfcCartesianPoint>(2800.0, 127.0); // Vertical Curve Tangent (VPT), Vertical Curve #1
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auto vpc2 = file.addDoublet<Schema::IfcCartesianPoint>(4400.0, 111.0); // Vertical Curve Point (VPC), Vertical Curve #2
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auto vpt2 = file.addDoublet<Schema::IfcCartesianPoint>(5600.0, 117.0); // Vertical Curve Tangent (VPT), Vertical Curve #2
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auto vpc3 = file.addDoublet<Schema::IfcCartesianPoint>(6400.0, 133.0); // Vertical Curve Point (VPC), Vertical Curve #3
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auto vpt3 = file.addDoublet<Schema::IfcCartesianPoint>(8400.0, 133.0); // Vertical Curve Tangent (VPT), Vertical Curve #3
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auto vpc4 = file.addDoublet<Schema::IfcCartesianPoint>(9400.0, 113.0); // Vertical Curve Point (VPC), Vertical Curve #4
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auto vpt4 = file.addDoublet<Schema::IfcCartesianPoint>(10200.0, 103.0); // Vertical Curve Tangent (VPT), Vertical Curve #4
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auto vpoe = file.addDoublet<Schema::IfcCartesianPoint>(12800.0, 90.0); // ending
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//
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// Build the vertical alignment segments
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//
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// Grade start to VPC1
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auto vertical_profile_segment_1 = create_gradient(vpob, 1.75 / 100, 1200);
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vertical_curve_segments->push(vertical_profile_segment_1.first);
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vertical_segments->push(vertical_profile_segment_1.second);
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// Vertical Curve 1
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auto vertical_profile_segment_2 = create_vcurve(vpc1, 1.75 / 100, -1.0 / 100, 1600);
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vertical_curve_segments->push(vertical_profile_segment_2.first);
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vertical_segments->push(vertical_profile_segment_2.second);
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// Grade VPT1 to VPC2
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auto vertical_profile_segment_3 = create_gradient(vpt1, -1.0 / 100, 1600);
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vertical_curve_segments->push(vertical_profile_segment_3.first);
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vertical_segments->push(vertical_profile_segment_3.second);
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// Vertical Curve 2
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auto vertical_profile_segment_4 = create_vcurve(vpc2, -1.0 / 100, 2.0 / 100, 1200);
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vertical_curve_segments->push(vertical_profile_segment_4.first);
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vertical_segments->push(vertical_profile_segment_4.second);
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// Grade PVT2 to VPC3
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auto vertical_profile_segment_5 = create_gradient(vpt2, 2.0 / 100, 800);
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vertical_curve_segments->push(vertical_profile_segment_5.first);
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vertical_segments->push(vertical_profile_segment_5.second);
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// Vertical Curve 3
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auto vertical_profile_segment_6 = create_vcurve(vpc3, 2.0 / 100, -2.0 / 100, 2000);
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vertical_curve_segments->push(vertical_profile_segment_6.first);
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vertical_segments->push(vertical_profile_segment_6.second);
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// Grade PVT3 to VPC4
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auto vertical_profile_segment_7 = create_gradient(vpt3, -2.0 / 100, 1000);
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vertical_curve_segments->push(vertical_profile_segment_7.first);
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vertical_segments->push(vertical_profile_segment_7.second);
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// Vertical Curve 4
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auto vertical_profile_segment_8 = create_vcurve(vpc4, -2.0 / 100, -0.5 / 100, 800);
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vertical_curve_segments->push(vertical_profile_segment_8.first);
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vertical_segments->push(vertical_profile_segment_8.second);
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// Grade VPT4 to End
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auto vertical_profile_segment_9 = create_gradient(vpt4, -0.5 / 100, 2600);
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vertical_curve_segments->push(vertical_profile_segment_9.first);
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vertical_segments->push(vertical_profile_segment_9.second);
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// Zero-length terminator
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auto vertical_terminator_segment = create_gradient(vpoe, -0.5 / 100, 0.0);
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vertical_terminator_segment.first->setTransition(Schema::IfcTransitionCode::IfcTransitionCode_DISCONTINUOUS);
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vertical_curve_segments->push(vertical_terminator_segment.first);
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vertical_segments->push(vertical_terminator_segment.second);
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//
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// Create the vertical alignment (IfcAlignmentVertical) and nest alignment segments
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//
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auto vertical_profile = new Schema::IfcAlignmentVertical(IfcParse::IfcGlobalId(), nullptr, std::string("Vertical Alignment"), boost::none, boost::none, nullptr, nullptr);
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file.addEntity(vertical_profile);
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auto nests_vertical_segments = new Schema::IfcRelNests(IfcParse::IfcGlobalId(), nullptr, boost::none, std::string("Nests vertical alignment segments with vertical alignment"), vertical_profile, vertical_segments);
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file.addEntity(nests_vertical_segments);
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//
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// Create profile view axis model representation for the vertical profile
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//
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// start by defining a gradient curve composed of the vertical curve segments and associated with the horizontal composite curve
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auto gradient_curve = new Schema::IfcGradientCurve(vertical_curve_segments, false, composite_curve, nullptr);
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file.addEntity(gradient_curve);
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// the gradient curve is a representation item
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typename aggregate_of<typename Schema::IfcRepresentationItem>::ptr profile_representation_items(new aggregate_of<typename Schema::IfcRepresentationItem>());
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profile_representation_items->push(gradient_curve);
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// create the axis representation
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auto axis3d_shape_representation = new Schema::IfcShapeRepresentation(axis_model_representation_subcontext, std::string("Axis"), std::string("Curve3D"), profile_representation_items);
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file.addEntity(axis3d_shape_representation);
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// create axis representations for each segment
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create_segment_representations(file, global_placement, axis_model_representation_subcontext, horizontal_curve_segments, horizontal_segments);
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create_segment_representations(file, global_placement, axis_model_representation_subcontext, vertical_curve_segments, vertical_segments);
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|
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//
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// Create the IfcAlignment
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//
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// the alignment has two representations, a plan view footprint and a 3d curve
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typename aggregate_of<typename Schema::IfcRepresentation>::ptr alignment_representations(new aggregate_of<typename Schema::IfcRepresentation>());
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alignment_representations->push(footprint_shape_representation); // 2D footprint
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alignment_representations->push(axis3d_shape_representation); // 3D curve
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|
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// create the alignment product definition
|
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auto alignment_product = new Schema::IfcProductDefinitionShape(std::string("Alignment Product Definition Shape"), boost::none, alignment_representations);
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|
|
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// create the alignment
|
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auto alignment = new Schema::IfcAlignment(IfcParse::IfcGlobalId(), nullptr, std::string("Example Alignment"), boost::none, boost::none, global_placement, alignment_product, boost::none);
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|
file.addEntity(alignment);
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|
|
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// Nest the IfcAlignmentHorizontal and IfcAlignmentVertical with the IfcAlignment to complete the business logic
|
|
// 4.1.4.4.1 Alignments nest horizontal and vertical layouts
|
|
// https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/concepts/Object_Composition/Nesting/Alignment_Layouts/content.html
|
|
typename aggregate_of<typename Schema::IfcObjectDefinition>::ptr alignment_layout_list(new aggregate_of<typename Schema::IfcObjectDefinition>());
|
|
alignment_layout_list->push(horizontal_alignment);
|
|
alignment_layout_list->push(vertical_profile);
|
|
|
|
auto nests_alignment_layouts = new Schema::IfcRelNests(IfcParse::IfcGlobalId(), nullptr, std::string("Nest horizontal and vertical alignment layouts with the alignment"), boost::none, alignment, alignment_layout_list);
|
|
file.addEntity(nests_alignment_layouts);
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|
|
|
// Define the relationship with the project
|
|
|
|
// IFC 4.1.4.1.1 "Every IfcAlignment must be related to IfcProject using the IfcRelAggregates relationship"
|
|
// https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/concepts/Object_Composition/Aggregation/Alignment_Aggregation_To_Project/content.html
|
|
// IfcProject <-> IfcRelAggregates <-> IfcAlignment
|
|
typename aggregate_of<typename Schema::IfcObjectDefinition>::ptr list_of_alignments_in_project(new aggregate_of<typename Schema::IfcObjectDefinition>());
|
|
list_of_alignments_in_project->push(alignment);
|
|
auto aggregate_alignments_with_project = new Schema::IfcRelAggregates(IfcParse::IfcGlobalId(), nullptr, std::string("Alignments in project"), boost::none, project, list_of_alignments_in_project);
|
|
file.addEntity(aggregate_alignments_with_project);
|
|
|
|
// Define the spatial structure of the alignment with respect to the site
|
|
|
|
// IFC 4.1.5.1 alignment is referenced in spatial structure of an IfcSpatialElement. In this case IfcSite is the highest level IfcSpatialElement
|
|
// https://standards.buildingsmart.org/IFC/RELEASE/IFC4_3/HTML/concepts/Object_Connectivity/Alignment_Spatial_Reference/content.html
|
|
// IfcSite <-> IfcRelReferencedInSpatialStructure <-> IfcAlignment
|
|
// This means IfcAlignment is not part of the IfcSite (it is not an aggregate component) but instead IfcAlignment is used within
|
|
// the IfcSite by reference. This implies an IfcAlignment can traverse many IfcSite instances within an IfcProject
|
|
typename Schema::IfcSpatialReferenceSelect::list::ptr list_alignments_referenced_in_site(new Schema::IfcSpatialReferenceSelect::list);
|
|
list_alignments_referenced_in_site->push(alignment);
|
|
|
|
// this alignment traverse 3 bridge sites.
|
|
for (int i = 1; i <= 3; i++) {
|
|
std::ostringstream os;
|
|
os << "Site of Bridge " << i;
|
|
auto site = file.addSite(project, nullptr);
|
|
site->setName(os.str());
|
|
|
|
std::ostringstream description;
|
|
description << "Alignments referenced into the spatial structure of Bridge Site " << i;
|
|
|
|
auto rel_referenced_in_spatial_structure = new Schema::IfcRelReferencedInSpatialStructure(IfcParse::IfcGlobalId(), nullptr, boost::none, description.str(), list_alignments_referenced_in_site, site);
|
|
file.addEntity(rel_referenced_in_spatial_structure);
|
|
}
|
|
|
|
// That's it - save the model to a file
|
|
std::ofstream ofs("FHWA_Bridge_Geometry_Alignment_Example.ifc");
|
|
ofs << file;
|
|
}
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