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IfcOpenShell/src/ifcgeom/IfcGeomRepresentation.h
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2023-11-15 10:32:33 +01:00

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/********************************************************************************
* *
* 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 <http://www.gnu.org/licenses/>. *
* *
********************************************************************************/
#ifndef IFCGEOMREPRESENTATION_H
#define IFCGEOMREPRESENTATION_H
#include "../ifcgeom/ConversionSettings.h"
#include "../ifcgeom/ConversionResult.h"
#include <map>
namespace IfcGeom {
namespace Representation {
class IFC_GEOM_API Representation {
Representation(const Representation&); //N/A
Representation& operator =(const Representation&); //N/A
protected:
const ifcopenshell::geometry::Settings settings_;
const std::string entity_;
public:
explicit Representation(const ifcopenshell::geometry::Settings& settings, const std::string& entity)
: settings_(settings)
, entity_(entity)
{}
const ifcopenshell::geometry::Settings& settings() const { return settings_; }
const std::string& entity() const {
return entity_;
}
virtual ~Representation() {}
};
class IFC_GEOM_API BRep : public Representation {
private:
std::string id_;
const IfcGeom::ConversionResults shapes_;
BRep(const BRep& other);
BRep& operator=(const BRep& other);
public:
BRep(const ifcopenshell::geometry::Settings& settings, const std::string& entity, const std::string& id, const IfcGeom::ConversionResults& shapes)
: Representation(settings, entity)
, id_(id)
, shapes_(shapes)
{}
virtual ~BRep() {}
IfcGeom::ConversionResults::const_iterator begin() const { return shapes_.begin(); }
IfcGeom::ConversionResults::const_iterator end() const { return shapes_.end(); }
const IfcGeom::ConversionResults& shapes() const { return shapes_; }
const std::string& id() const { return id_; }
IfcGeom::ConversionResultShape* as_compound(bool force_meters = false) const;
bool calculate_volume(double&) const;
bool calculate_surface_area(double&) const;
bool calculate_projected_surface_area(const ifcopenshell::geometry::taxonomy::matrix4& ax, double& along_x, double& along_y, double& along_z) const;
int size() const { return shapes_.size(); }
const IfcGeom::ConversionResultShape* item(int i) const;
};
class IFC_GEOM_API Serialization : public Representation {
private:
std::string id_;
std::string brep_data_;
std::vector<double> surface_styles_;
std::vector<int> surface_style_ids_;
public:
const std::string& brep_data() const { return brep_data_; }
const std::vector<double>& surface_styles() const { return surface_styles_; }
const std::vector<int>& surface_style_ids() const { return surface_style_ids_; }
Serialization(const BRep& brep);
virtual ~Serialization() {}
const std::string& id() const { return id_; }
private:
Serialization();
Serialization(const Serialization&);
Serialization& operator=(const Serialization&);
};
class Triangulation : public Representation {
private:
// A nested pair of floats and a material index to be able to store an XYZ coordinate in a map.
// TODO: Make this a std::tuple when compilers add support for that.
typedef typename std::pair<double, std::pair<double, double> > Coordinate;
typedef typename std::pair<int, Coordinate> VertexKey;
typedef std::map<VertexKey, int> VertexKeyMap;
typedef std::pair<int, int> Edge;
std::string id_;
std::vector<double> _verts;
std::vector<int> _faces;
std::vector<int> _edges;
std::vector<double> _normals;
std::vector<double> uvs_;
std::vector<int> _material_ids;
std::vector<ifcopenshell::geometry::taxonomy::style> _materials;
size_t weld_offset_;
VertexKeyMap welds;
Triangulation(const ifcopenshell::geometry::Settings& settings, const std::string& entity)
: Representation(settings, entity)
, weld_offset_(0)
{}
public:
const std::string& id() const { return id_; }
const std::vector<double>& verts() const { return _verts; }
const std::vector<int>& faces() const { return _faces; }
const std::vector<int>& edges() const { return _edges; }
const std::vector<double>& normals() const { return _normals; }
std::vector<double>& uvs() { return uvs_; }
const std::vector<double>& uvs() const { return uvs_; }
const std::vector<int>& material_ids() const { return _material_ids; }
const std::vector<ifcopenshell::geometry::taxonomy::style>& materials() const { return _materials; }
Triangulation(const BRep& shape_model);
Triangulation(
const ifcopenshell::geometry::Settings& settings,
const std::string& entity,
const std::string& id,
const std::vector<double>& verts,
const std::vector<int>& faces,
const std::vector<int>& edges,
const std::vector<double>& normals,
const std::vector<double>& uvs,
const std::vector<int>& material_ids,
const std::vector<ifcopenshell::geometry::taxonomy::style>& materials
)
: Representation(settings, entity)
, id_(id)
, _verts(verts)
, _faces(faces)
, _edges(edges)
, _normals(normals)
, uvs_(uvs)
, _material_ids(material_ids)
, _materials(materials)
{}
virtual ~Triangulation() {}
/// Generates UVs for a single mesh using box projection.
/// @todo Very simple impl. Assumes that input vertices and normals match 1:1.
static std::vector<double> box_project_uvs(const std::vector<double> &vertices, const std::vector<double> &normals);
static Triangulation* empty(const ifcopenshell::geometry::Settings& settings) { return new Triangulation(settings, ""); }
/// Welds vertices that belong to different faces
int addVertex(int material_index, double X, double Y, double Z);
void addNormal(double X, double Y, double Z) {
_normals.push_back(X);
_normals.push_back(Y);
_normals.push_back(Z);
}
void addFace(int style, int i0, int i1, int i2) {
_faces.push_back(i0);
_faces.push_back(i1);
_faces.push_back(i2);
_material_ids.push_back(style);
}
void addEdge(int style, int i0, int i1) {
_edges.push_back(i0);
_edges.push_back(i1);
_material_ids.push_back(style);
}
void registerEdge(int i0, int i1) {
_edges.push_back(i0);
_edges.push_back(i1);
}
void addEdge(int n1, int n2, std::map<std::pair<int, int>, int>& edgecount, std::vector<std::pair<int, int> >& edges_temp);
void resetWelds() {
weld_offset_ += welds.size();
welds.clear();
}
private:
Triangulation();
Triangulation(const Triangulation&);
Triangulation& operator=(const Triangulation&);
};
}
}
#endif