177 lines
5.9 KiB
C++
177 lines
5.9 KiB
C++
/***************************************************************************
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* Copyright (c) 2020 sliptonic <shopinthewoods@gmail.com> *
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* *
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* This file is part of the FreeCAD CAx development system. *
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* *
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* This library is free software; you can redistribute it and/or *
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* modify it under the terms of the GNU Library General Public *
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* License as published by the Free Software Foundation; either *
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* version 2 of the License, or (at your option) any later version. *
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* *
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* This library 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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* GNU Library General Public License for more details. *
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* *
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* You should have received a copy of the GNU Library General Public *
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* License along with this library; see the file COPYING.LIB. If not, *
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* write to the Free Software Foundation, Inc., 59 Temple Place, *
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* Suite 330, Boston, MA 02111-1307, USA *
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* *
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***************************************************************************/
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#include "PreCompiled.h"
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#include "Base/Vector3D.h"
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#include "Base/VectorPy.h"
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#include "VoronoiVertexPy.h"
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#include "VoronoiVertexPy.cpp"
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#include "VoronoiEdgePy.h"
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using namespace Path;
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// returns a string which represents the object e.g. when printed in python
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std::string VoronoiVertexPy::representation() const
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{
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std::stringstream ss;
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ss.precision(5);
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ss << "VoronoiVertex(";
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VoronoiVertex* v = getVoronoiVertexPtr();
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if (v->isBound()) {
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ss << "[" << (v->ptr->x() / v->dia->getScale()) << ", "
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<< (v->ptr->y() / v->dia->getScale()) << "]";
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}
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ss << ")";
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return ss.str();
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}
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PyObject* VoronoiVertexPy::PyMake(struct _typeobject*, PyObject*, PyObject*) // Python wrapper
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{
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// create a new instance of VoronoiVertexPy and the Twin object
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return new VoronoiVertexPy(new VoronoiVertex);
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}
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// constructor method
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int VoronoiVertexPy::PyInit(PyObject* args, PyObject* /*kwd*/)
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{
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if (!PyArg_ParseTuple(args, "")) {
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PyErr_SetString(PyExc_RuntimeError, "no arguments accepted");
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return -1;
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}
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return 0;
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}
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PyObject* VoronoiVertexPy::richCompare(PyObject* lhs, PyObject* rhs, int op)
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{
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PyObject* cmp = (op == Py_EQ) ? Py_False : Py_True;
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if (PyObject_TypeCheck(lhs, &VoronoiVertexPy::Type)
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&& PyObject_TypeCheck(rhs, &VoronoiVertexPy::Type) && (op == Py_EQ || op == Py_NE)) {
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const VoronoiVertex* vl = static_cast<VoronoiVertexPy*>(lhs)->getVoronoiVertexPtr();
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const VoronoiVertex* vr = static_cast<VoronoiVertexPy*>(rhs)->getVoronoiVertexPtr();
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if (vl->index == vr->index && vl->dia == vr->dia) {
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cmp = (op == Py_EQ) ? Py_True : Py_False;
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}
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}
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Py_INCREF(cmp);
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return cmp;
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}
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const Voronoi::voronoi_diagram_type::vertex_type* getVertexFromPy(VoronoiVertexPy* v,
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bool throwIfNotBound = true)
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{
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auto self = v->getVoronoiVertexPtr();
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if (self->isBound()) {
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return self->ptr;
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}
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if (throwIfNotBound) {
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throw Py::TypeError("Vertex not bound to voronoi diagram");
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}
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return nullptr;
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}
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VoronoiVertex* getVoronoiVertexFromPy(const VoronoiVertexPy* v, PyObject* args = nullptr)
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{
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VoronoiVertex* self = v->getVoronoiVertexPtr();
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if (!self->isBound()) {
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throw Py::TypeError("Vertex not bound to voronoi diagram");
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}
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if (args && !PyArg_ParseTuple(args, "")) {
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throw Py::RuntimeError("No arguments accepted");
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}
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return self;
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}
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Py::Long VoronoiVertexPy::getIndex() const
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{
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VoronoiVertex* v = getVoronoiVertexPtr();
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if (v->isBound()) {
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return Py::Long(v->dia->index(v->ptr));
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}
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return Py::Long(-1);
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}
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Py::Long VoronoiVertexPy::getColor() const
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{
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VoronoiVertex* v = getVoronoiVertexPtr();
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if (v->isBound()) {
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Voronoi::color_type color = v->ptr->color() & Voronoi::ColorMask;
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return Py::Long(PyLong_FromSize_t(color));
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}
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return Py::Long(0);
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}
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void VoronoiVertexPy::setColor(Py::Long color)
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{
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getVertexFromPy(this)->color(long(color) & Voronoi::ColorMask);
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}
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Py::Float VoronoiVertexPy::getX() const
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{
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VoronoiVertex* v = getVoronoiVertexFromPy(this);
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return Py::Float(v->ptr->x() / v->dia->getScale());
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}
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Py::Float VoronoiVertexPy::getY() const
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{
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VoronoiVertex* v = getVoronoiVertexFromPy(this);
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return Py::Float(v->ptr->y() / v->dia->getScale());
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}
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Py::Object VoronoiVertexPy::getIncidentEdge() const
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{
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VoronoiVertex* v = getVoronoiVertexFromPy(this);
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return Py::asObject(new VoronoiEdgePy(new VoronoiEdge(v->dia, v->ptr->incident_edge())));
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}
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PyObject* VoronoiVertexPy::toPoint(PyObject* args) const
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{
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double z = 0.0;
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if (!PyArg_ParseTuple(args, "|d", &z)) {
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throw Py::RuntimeError("single argument of type double accepted");
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}
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VoronoiVertex* v = getVoronoiVertexPtr();
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if (v->isBound()) {
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return new Base::VectorPy(new Base::Vector3d(v->ptr->x() / v->dia->getScale(),
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v->ptr->y() / v->dia->getScale(),
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z));
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}
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Py_INCREF(Py_None);
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return Py_None;
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}
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// custom attributes get/set
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PyObject* VoronoiVertexPy::getCustomAttributes(const char* /*attr*/) const
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{
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return nullptr;
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}
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int VoronoiVertexPy::setCustomAttributes(const char* /*attr*/, PyObject* /*obj*/)
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{
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return 0;
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}
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