/*************************************************************************** * Copyright (c) 2014 Abdullah Tahiri #endif #include "Geometry.h" #include #include #include "OCCError.h" #include #include using namespace Part; // returns a string which represents the object e.g. when printed in python std::string ArcOfConicPy::representation(void) const { return ""; } PyObject *ArcOfConicPy::PyMake(struct _typeobject *, PyObject *, PyObject *) // Python wrapper { // never create such objects with the constructor PyErr_SetString(PyExc_RuntimeError, "You cannot create an instance of the abstract class 'ArcOfConic'."); return 0; } // constructor method int ArcOfConicPy::PyInit(PyObject* /*args*/, PyObject* /*kwds*/) { return -1; } Py::Object ArcOfConicPy::getLocation(void) const { return Py::Vector(getGeomArcOfConicPtr()->getLocation()); } Py::Object ArcOfConicPy::getCenter(void) const { return Py::Vector(getGeomArcOfConicPtr()->getCenter()); } void ArcOfConicPy::setLocation(Py::Object arg) { PyObject* p = arg.ptr(); if (PyObject_TypeCheck(p, &(Base::VectorPy::Type))) { Base::Vector3d loc = static_cast(p)->value(); getGeomArcOfConicPtr()->setLocation(loc); } else if (PyObject_TypeCheck(p, &PyTuple_Type)) { Base::Vector3d loc = Base::getVectorFromTuple(p); getGeomArcOfConicPtr()->setLocation(loc); } else { std::string error = std::string("type must be 'Vector', not "); error += p->ob_type->tp_name; throw Py::TypeError(error); } } void ArcOfConicPy::setCenter(Py::Object arg) { PyObject* p = arg.ptr(); if (PyObject_TypeCheck(p, &(Base::VectorPy::Type))) { Base::Vector3d loc = static_cast(p)->value(); getGeomArcOfConicPtr()->setCenter(loc); } else if (PyObject_TypeCheck(p, &PyTuple_Type)) { Base::Vector3d loc = Base::getVectorFromTuple(p); getGeomArcOfConicPtr()->setCenter(loc); } else { std::string error = std::string("type must be 'Vector', not "); error += p->ob_type->tp_name; throw Py::TypeError(error); } } Py::Float ArcOfConicPy::getAngleXU(void) const { return Py::Float(getGeomArcOfConicPtr()->getAngleXU()); } void ArcOfConicPy::setAngleXU(Py::Float arg) { getGeomArcOfConicPtr()->setAngleXU((double)arg); } Py::Object ArcOfConicPy::getAxis(void) const { Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); gp_Ax1 axis = conic->Axis(); gp_Dir dir = axis.Direction(); return Py::Vector(Base::Vector3d(dir.X(), dir.Y(), dir.Z())); } void ArcOfConicPy::setAxis(Py::Object arg) { PyObject* p = arg.ptr(); Base::Vector3d val; if (PyObject_TypeCheck(p, &(Base::VectorPy::Type))) { val = static_cast(p)->value(); } else if (PyTuple_Check(p)) { val = Base::getVectorFromTuple(p); } else { std::string error = std::string("type must be 'Vector', not "); error += p->ob_type->tp_name; throw Py::TypeError(error); } Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); try { gp_Ax1 axis; axis.SetLocation(conic->Location()); axis.SetDirection(gp_Dir(val.x, val.y, val.z)); conic->SetAxis(axis); } catch (Standard_Failure) { throw Py::Exception("cannot set axis"); } } Py::Object ArcOfConicPy::getXAxis(void) const { Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); gp_Ax1 axis = conic->XAxis(); gp_Dir dir = axis.Direction(); return Py::Vector(Base::Vector3d(dir.X(), dir.Y(), dir.Z())); } void ArcOfConicPy::setXAxis(Py::Object arg) { PyObject* p = arg.ptr(); Base::Vector3d val; if (PyObject_TypeCheck(p, &(Base::VectorPy::Type))) { val = static_cast(p)->value(); } else if (PyTuple_Check(p)) { val = Base::getVectorFromTuple(p); } else { std::string error = std::string("type must be 'Vector', not "); error += p->ob_type->tp_name; throw Py::TypeError(error); } Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); try { gp_Ax2 pos; pos = conic->Position(); pos.SetXDirection(gp_Dir(val.x, val.y, val.z)); conic->SetPosition(pos); } catch (Standard_Failure) { throw Py::Exception("cannot set X axis"); } } Py::Object ArcOfConicPy::getYAxis(void) const { Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); gp_Ax1 axis = conic->YAxis(); gp_Dir dir = axis.Direction(); return Py::Vector(Base::Vector3d(dir.X(), dir.Y(), dir.Z())); } void ArcOfConicPy::setYAxis(Py::Object arg) { PyObject* p = arg.ptr(); Base::Vector3d val; if (PyObject_TypeCheck(p, &(Base::VectorPy::Type))) { val = static_cast(p)->value(); } else if (PyTuple_Check(p)) { val = Base::getVectorFromTuple(p); } else { std::string error = std::string("type must be 'Vector', not "); error += p->ob_type->tp_name; throw Py::TypeError(error); } Handle_Geom_TrimmedCurve trim = Handle_Geom_TrimmedCurve::DownCast (getGeomArcOfConicPtr()->handle()); Handle_Geom_Conic conic = Handle_Geom_Conic::DownCast(trim->BasisCurve()); try { gp_Ax2 pos; pos = conic->Position(); pos.SetYDirection(gp_Dir(val.x, val.y, val.z)); conic->SetPosition(pos); } catch (Standard_Failure) { throw Py::Exception("cannot set Y axis"); } } PyObject *ArcOfConicPy::getCustomAttributes(const char* ) const { return 0; } int ArcOfConicPy::setCustomAttributes(const char* , PyObject *) { return 0; }