Add approximate() method to B-spline surface class
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@ -677,9 +677,33 @@
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<UserDocu>Returns a reparametrized copy of this surface</UserDocu>
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</Documentation>
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</Methode>
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<Methode Name="approximate">
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<Documentation>
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<UserDocu>
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approximate(points, degMin, degMax, continuity, tol)
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approximate(zPoints, degMin, degMax, continuity, tol, X0, dX, Y0, dY)
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Replaces this B-Spline surface by approximating a set of points.
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continuity is an integer between 0 and 3
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</UserDocu>
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</Documentation>
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</Methode>
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<Methode Name="interpolate">
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<Documentation>
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<UserDocu>Replaces this B-Spline surface by interpolating a set of points.</UserDocu>
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<UserDocu>
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interpolate(points)
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interpolate(zpoints, X0, dX, Y0, dY)
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Replaces this B-Spline surface by interpolating a set of points.
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The resulting surface is of degree 3 and continuity C2.
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Arguments:
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a 2 dimensional array of vectors, that the surface passes through
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or
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a 2 dimensional array of floats with the z values,
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the x starting point X0 (float),
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the x increment dX (float),
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the y starting point Y0 and increment dY
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</UserDocu>
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</Documentation>
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</Methode>
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</PythonExport>
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@ -33,6 +33,7 @@
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# include <TColgp_Array2OfPnt.hxx>
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# include <Precision.hxx>
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# include <GeomAPI_PointsToBSplineSurface.hxx>
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# include <GeomAbs_Shape.hxx>
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#endif
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#include <Base/GeometryPyCXX.h>
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@ -43,6 +44,7 @@
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#include "BSplineSurfacePy.h"
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#include "BSplineSurfacePy.cpp"
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using namespace Part;
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// returns a string which represents the object e.g. when printed in python
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@ -1244,13 +1246,21 @@ PyObject* BSplineSurfacePy::reparametrize(PyObject * args)
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}
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}
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PyObject* BSplineSurfacePy::interpolate(PyObject *args)
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PyObject* BSplineSurfacePy::approximate(PyObject *args)
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{
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PyObject* obj;
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double tol3d = Precision::Approximation();
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PyObject* closed = Py_False;
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PyObject* t1=0; PyObject* t2=0;
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if (!PyArg_ParseTuple(args, "O!",&(PyList_Type), &obj))
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Standard_Integer degMin=0;
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Standard_Integer degMax=0;
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Standard_Integer continuity=0;
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Standard_Real tol3d = Precision::Approximation();
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Standard_Real X0=0;
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Standard_Real dX=0;
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Standard_Real Y0=0;
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Standard_Real dY=0;
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int len = PyTuple_GET_SIZE(args);
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if (!PyArg_ParseTuple(args, "O!iiid|dddd",&(PyList_Type), &obj, °Min, °Max, &continuity, &tol3d, &X0, &dX, &Y0, &dY))
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return 0;
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try {
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Py::List list(obj);
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@ -1258,6 +1268,8 @@ PyObject* BSplineSurfacePy::interpolate(PyObject *args)
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Py::List col(list.getItem(0));
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Standard_Integer lv = col.size();
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TColgp_Array2OfPnt interpolationPoints(1, lu, 1, lv);
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TColStd_Array2OfReal zPoints(1, lu, 1, lv);
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//Base::Console().Message("lu=%d, lv=%d\n", lu, lv);
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Standard_Integer index1 = 0;
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Standard_Integer index2 = 0;
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@ -1267,10 +1279,97 @@ PyObject* BSplineSurfacePy::interpolate(PyObject *args)
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Py::List row(*it1);
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for (Py::List::iterator it2 = row.begin(); it2 != row.end(); ++it2) {
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index2++;
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Py::Vector v(*it2);
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Base::Vector3d pnt = v.toVector();
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gp_Pnt newPoint(pnt.x,pnt.y,pnt.z);
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interpolationPoints.SetValue(index1, index2, newPoint);
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if(len == 5){
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Py::Vector v(*it2);
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Base::Vector3d pnt = v.toVector();
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gp_Pnt newPoint(pnt.x,pnt.y,pnt.z);
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interpolationPoints.SetValue(index1, index2, newPoint);
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}
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else {
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Standard_Real val = PyFloat_AsDouble((*it2).ptr());
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zPoints.SetValue(index1, index2, val);
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}
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}
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}
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if(continuity<0 || continuity>3){
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Standard_Failure::Raise("continuity must be between 0 and 3");
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}
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GeomAbs_Shape c;
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switch(continuity){
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case 0:
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c = GeomAbs_C0;
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case 1:
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c = GeomAbs_C1;
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case 2:
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c = GeomAbs_C2;
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case 3:
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c = GeomAbs_C3;
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}
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if (interpolationPoints.RowLength() < 2 || interpolationPoints.ColLength() < 2) {
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Standard_Failure::Raise("not enough points given");
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}
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GeomAPI_PointsToBSplineSurface surInterpolation;
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if(len == 5){
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surInterpolation.Init(interpolationPoints, degMin, degMax, c, tol3d);
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}
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else {
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surInterpolation.Init(zPoints, X0, dX, Y0, dY, degMin, degMax, c, tol3d);
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}
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Handle_Geom_BSplineSurface sur(surInterpolation.Surface());
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this->getGeomBSplineSurfacePtr()->setHandle(sur);
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Py_Return;
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}
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catch (Standard_Failure) {
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Handle_Standard_Failure e = Standard_Failure::Caught();
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std::string err = e->GetMessageString();
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if (err.empty()) err = e->DynamicType()->Name();
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PyErr_SetString(PyExc_Exception, err.c_str());
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return 0;
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}
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}
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PyObject* BSplineSurfacePy::interpolate(PyObject *args)
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{
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PyObject* obj;
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Standard_Real tol3d = Precision::Approximation();
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Standard_Real X0=0;
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Standard_Real dX=0;
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Standard_Real Y0=0;
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Standard_Real dY=0;
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int len = PyTuple_GET_SIZE(args);
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if (!PyArg_ParseTuple(args, "O!|dddd",&(PyList_Type), &obj, &X0, &dX, &Y0, &dY))
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return 0;
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try {
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Py::List list(obj);
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Standard_Integer lu = list.size();
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Py::List col(list.getItem(0));
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Standard_Integer lv = col.size();
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TColgp_Array2OfPnt interpolationPoints(1, lu, 1, lv);
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TColStd_Array2OfReal zPoints(1, lu, 1, lv);
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Standard_Integer index1 = 0;
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Standard_Integer index2 = 0;
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for (Py::List::iterator it1 = list.begin(); it1 != list.end(); ++it1) {
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index1++;
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index2=0;
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Py::List row(*it1);
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for (Py::List::iterator it2 = row.begin(); it2 != row.end(); ++it2) {
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index2++;
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if(len == 1){
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Py::Vector v(*it2);
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Base::Vector3d pnt = v.toVector();
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gp_Pnt newPoint(pnt.x,pnt.y,pnt.z);
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interpolationPoints.SetValue(index1, index2, newPoint);
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}
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else {
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Standard_Real val = PyFloat_AsDouble((*it2).ptr());
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zPoints.SetValue(index1, index2, val);
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}
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}
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}
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@ -1279,7 +1378,12 @@ PyObject* BSplineSurfacePy::interpolate(PyObject *args)
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}
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GeomAPI_PointsToBSplineSurface surInterpolation;
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surInterpolation.Interpolate (interpolationPoints);
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if(len == 1){
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surInterpolation.Interpolate (interpolationPoints);
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}
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else {
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surInterpolation.Interpolate(zPoints, X0, dX, Y0, dY);
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}
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Handle_Geom_BSplineSurface sur(surInterpolation.Surface());
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this->getGeomBSplineSurfacePtr()->setHandle(sur);
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Py_Return;
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