-// Copyright (C) 2007-2012 CEA/DEN, EDF R&D, OPEN CASCADE
+// Copyright (C) 2007-2014 CEA/DEN, EDF R&D, OPEN CASCADE
//
// Copyright (C) 2003-2007 OPEN CASCADE, EADS/CCR, LIP6, CEA/DEN,
// CEDRAT, EDF R&D, LEG, PRINCIPIA R&D, BUREAU VERITAS
// This library is free software; you can redistribute it and/or
// modify it under the terms of the GNU Lesser General Public
// License as published by the Free Software Foundation; either
-// version 2.1 of the License.
+// version 2.1 of the License, or (at your option) any later version.
//
// This library is distributed in the hope that it will be useful,
// but WITHOUT ANY WARRANTY; without even the implied warranty of
// See http://www.salome-platform.org/ or email : webmaster.salome@opencascade.com
//
-#ifdef WNT
+#ifdef WIN32
// E.A. : On windows with python 2.6, there is a conflict
// E.A. : between pymath.h and Standard_math.h which define
// E.A. : some same symbols : acosh, asinh, ...
#ifdef HAVE_FINITE
#undef HAVE_FINITE
#endif
-#include <Standard_Stream.hxx>
-
-#include <GEOMImpl_ICurvesOperations.hxx>
-#include <GEOMImpl_Types.hxx>
-
-#include <GEOM_Function.hxx>
-#include <GEOM_PythonDump.hxx>
-
-#include <GEOMImpl_PolylineDriver.hxx>
-#include <GEOMImpl_CircleDriver.hxx>
-#include <GEOMImpl_SplineDriver.hxx>
-#include <GEOMImpl_EllipseDriver.hxx>
-#include <GEOMImpl_ArcDriver.hxx>
-#include <GEOMImpl_SketcherDriver.hxx>
-#include <GEOMImpl_3DSketcherDriver.hxx>
-
-#include <GEOMImpl_IPolyline.hxx>
-#include <GEOMImpl_ICircle.hxx>
-#include <GEOMImpl_ISpline.hxx>
-#include <GEOMImpl_IEllipse.hxx>
-#include <GEOMImpl_IArc.hxx>
-#include <GEOMImpl_ISketcher.hxx>
-#include <GEOMImpl_I3DSketcher.hxx>
+
+#include "GEOMImpl_ICurvesOperations.hxx"
+#include "GEOMImpl_Types.hxx"
+
+#include "GEOM_Function.hxx"
+#include "GEOM_PythonDump.hxx"
+
+#include "GEOMImpl_PolylineDriver.hxx"
+#include "GEOMImpl_CircleDriver.hxx"
+#include "GEOMImpl_SplineDriver.hxx"
+#include "GEOMImpl_EllipseDriver.hxx"
+#include "GEOMImpl_ArcDriver.hxx"
+#include "GEOMImpl_ShapeDriver.hxx"
+#include "GEOMImpl_SketcherDriver.hxx"
+#include "GEOMImpl_3DSketcherDriver.hxx"
+
+#include "GEOMImpl_IPolyline.hxx"
+#include "GEOMImpl_IPolyline2D.hxx"
+#include "GEOMImpl_ICircle.hxx"
+#include "GEOMImpl_ISpline.hxx"
+#include "GEOMImpl_IEllipse.hxx"
+#include "GEOMImpl_IArc.hxx"
+#include "GEOMImpl_ISketcher.hxx"
+#include "GEOMImpl_I3DSketcher.hxx"
+#include "GEOMImpl_ICurveParametric.hxx"
+#include "GEOMImpl_IIsoline.hxx"
+#include "GEOMImpl_PolylineDumper.hxx"
#include <Basics_OCCTVersion.hxx>
#include "utilities.h"
#include <TDF_Tool.hxx>
+#include <TColStd_HArray1OfByte.hxx>
#include <TColStd_HArray1OfReal.hxx>
#include <Standard_Failure.hxx>
//Compute the Circle value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Circle driver failed");
return NULL;
//Compute the Circle value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Circle driver failed");
return NULL;
//Compute the Circle value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Circle driver failed");
return NULL;
//Compute the Ellipse value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Ellipse driver failed");
return NULL;
//Compute the Arc value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Arc driver failed");
return NULL;
//Compute the Arc value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
- SetErrorCode("Arc driver failed");
- return NULL;
+ SetErrorCode("Arc driver failed");
+ return NULL;
}
}
catch (Standard_Failure) {
//Compute the Arc value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Arc driver failed");
return NULL;
//Compute the Polyline value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Polyline driver failed");
return NULL;
GEOMImpl_ISpline aCI (aFunction);
- int aLen = thePoints.size();
- aCI.SetLength(aLen);
aCI.SetConstructorType(POINT_CONSTRUCTOR);
- int ind = 1;
+ Handle(TColStd_HSequenceOfTransient) aPoints = new TColStd_HSequenceOfTransient;
std::list<Handle(GEOM_Object)>::iterator it = thePoints.begin();
- for (; it != thePoints.end(); it++, ind++) {
+ for (; it != thePoints.end(); it++) {
Handle(GEOM_Function) aRefPnt = (*it)->GetLastFunction();
-
- if (aRefPnt.IsNull()) return NULL;
-
- aCI.SetPoint(ind, aRefPnt);
+ if (aRefPnt.IsNull()) {
+ SetErrorCode("NULL point for Besier curve");
+ return NULL;
+ }
+ aPoints->Append(aRefPnt);
}
+ aCI.SetPoints(aPoints);
aCI.SetIsClosed(theIsClosed);
//Compute the Spline value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Spline driver failed");
return NULL;
//Add a new Spline object
Handle(GEOM_Object) aSpline = GetEngine()->AddObject(GetDocID(), GEOM_SPLINE);
- //Add a new Spline function for creation a bezier curve relatively to points set
+ //Add a new Spline function for interpolation type
Handle(GEOM_Function) aFunction =
aSpline->AddFunction(GEOMImpl_SplineDriver::GetID(), SPLINE_INTERPOLATION);
if (aFunction.IsNull()) return NULL;
GEOMImpl_ISpline aCI (aFunction);
- int aLen = thePoints.size();
aCI.SetConstructorType(POINT_CONSTRUCTOR);
- aCI.SetLength(aLen);
- int ind = 1;
+ Handle(TColStd_HSequenceOfTransient) aPoints = new TColStd_HSequenceOfTransient;
std::list<Handle(GEOM_Object)>::iterator it = thePoints.begin();
- for (; it != thePoints.end(); it++, ind++) {
+ for (; it != thePoints.end(); it++) {
Handle(GEOM_Function) aRefPnt = (*it)->GetLastFunction();
-
- if (aRefPnt.IsNull()) return NULL;
-
- aCI.SetPoint(ind, aRefPnt);
+ if (aRefPnt.IsNull()) {
+ return NULL;
+ }
+ aPoints->Append(aRefPnt);
}
+ aCI.SetPoints(aPoints);
aCI.SetIsClosed(theIsClosed);
aCI.SetDoReordering(theDoReordering);
//Compute the Spline value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Spline driver failed");
return NULL;
return aSpline;
}
+
+//=============================================================================
+/*!
+ * MakeSplineInterpolWithTangents
+ */
+//=============================================================================
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakeSplineInterpolWithTangents
+ (std::list<Handle(GEOM_Object)> thePoints,
+ Handle(GEOM_Object) theFirstVec,
+ Handle(GEOM_Object) theLastVec)
+{
+ SetErrorCode(KO);
+
+ //Add a new Spline object
+ Handle(GEOM_Object) aSpline = GetEngine()->AddObject(GetDocID(), GEOM_SPLINE);
+
+ //Add a new Spline function for interpolation type
+ Handle(GEOM_Function) aFunction =
+ aSpline->AddFunction(GEOMImpl_SplineDriver::GetID(), SPLINE_INTERPOL_TANGENTS);
+ if (aFunction.IsNull()) return NULL;
+
+ //Check if the function is set correctly
+ if (aFunction->GetDriverGUID() != GEOMImpl_SplineDriver::GetID()) return NULL;
+
+ GEOMImpl_ISpline aCI (aFunction);
+
+ aCI.SetConstructorType(POINT_CONSTRUCTOR);
+
+ Handle(TColStd_HSequenceOfTransient) aPoints = new TColStd_HSequenceOfTransient;
+ std::list<Handle(GEOM_Object)>::iterator it = thePoints.begin();
+ for (; it != thePoints.end(); it++) {
+ Handle(GEOM_Function) aRefPnt = (*it)->GetLastFunction();
+ if (aRefPnt.IsNull()) {
+ SetErrorCode("NULL point for Interpolation");
+ return NULL;
+ }
+ aPoints->Append(aRefPnt);
+ }
+ aCI.SetPoints(aPoints);
+
+ Handle(GEOM_Function) aVec1 = theFirstVec->GetLastFunction();
+ Handle(GEOM_Function) aVec2 = theLastVec->GetLastFunction();
+
+ if (aVec1.IsNull() || aVec2.IsNull()) return NULL;
+
+ aCI.SetFirstVector(aVec1);
+ aCI.SetLastVector(aVec2);
+
+ //Compute the Spline value
+ try {
+ OCC_CATCH_SIGNALS;
+ if (!GetSolver()->ComputeFunction(aFunction)) {
+ SetErrorCode("Spline driver failed");
+ return NULL;
+ }
+ }
+ catch (Standard_Failure) {
+ Handle(Standard_Failure) aFail = Standard_Failure::Caught();
+ SetErrorCode(aFail->GetMessageString());
+ return NULL;
+ }
+
+ //Make a Python command
+ GEOM::TPythonDump pd (aFunction);
+ pd << aSpline << " = geompy.MakeInterpolWithTangents([";
+
+ it = thePoints.begin();
+ pd << (*it++);
+ while (it != thePoints.end()) {
+ pd << ", " << (*it++);
+ }
+ pd << "], " << theFirstVec << ", " << theLastVec << ")";
+
+ SetErrorCode(OK);
+ return aSpline;
+}
+
//=============================================================================
/*!
* MakeCurveParametric
Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakeCurveParametric
(const char* thexExpr, const char* theyExpr, const char* thezExpr,
double theParamMin, double theParamMax, double theParamStep,
- CurveType theCurveType,
+ CurveType theCurveType,
int theParamNbStep, bool theNewMethod)
{
TCollection_AsciiString aPyScript;
coords = PyObject_CallFunction(func,(char*)"(d, d, i)", theParamMin, theParamMax, theParamNbStep );
else
coords = PyObject_CallFunction(func,(char*)"(d, d, d)", theParamMin, theParamMax, theParamStep );
-
+
PyObject* new_stderr = NULL;
if (coords == NULL){
return NULL;
}
- Handle(TColStd_HArray1OfReal) aCoordsArray = new TColStd_HArray1OfReal (1, PyList_Size( coords ) * 3);
+ int lsize = PyList_Size( coords );
- if(PyList_Size( coords ) <= 0) {
+ if(lsize <= 0) {
SetErrorCode("Empty list of the points, please check input parameters !!!");
return NULL;
}
+ Handle(TColStd_HArray1OfReal) aCoordsArray = new TColStd_HArray1OfReal (1, lsize * 3);
+
int k=1;
- for ( Py_ssize_t i = 0; i< PyList_Size( coords ); ++i ) {
+ for ( Py_ssize_t i = 0; i < lsize; ++i ) {
PyObject* coord = PyList_GetItem( coords, i );
if (coord != NULL) {
for ( Py_ssize_t j = 0; j < PyList_Size(coord); ++j) {
GEOMImpl_IPolyline aCI (aFunction);
- aCI.SetLength(PyList_Size( coords ));
+ aCI.SetLength(lsize);
aCI.SetConstructorType(COORD_CONSTRUCTOR);
aCI.SetIsClosed(false);
aCI.SetCoordinates(aCoordsArray);
- aCurveType = "geompy.GEOM.Polyline";
+ aCurveType = "GEOM.Polyline";
break;
}
case Bezier: {
GEOMImpl_ISpline aCI (aFunction);
- aCI.SetLength(PyList_Size( coords ));
aCI.SetConstructorType(COORD_CONSTRUCTOR);
aCI.SetIsClosed(false);
aCI.SetCoordinates(aCoordsArray);
- aCurveType = "geompy.GEOM.Bezier";
+ aCurveType = "GEOM.Bezier";
break;
}
case Interpolation: {
GEOMImpl_ISpline aCI (aFunction);
aCI.SetConstructorType(COORD_CONSTRUCTOR);
- aCI.SetLength(PyList_Size( coords ));
aCI.SetIsClosed(false);
aCI.SetDoReordering(false);
aCI.SetCoordinates(aCoordsArray);
- aCurveType = "geompy.GEOM.Interpolation";
+ aCurveType = "GEOM.Interpolation";
break;
}
}
+ GEOMImpl_ICurveParametric aIP(aFunction);
+ aIP.SetExprX (thexExpr);
+ aIP.SetExprY (theyExpr);
+ aIP.SetExprZ (thezExpr);
+ aIP.SetParamMin (theParamMin);
+ aIP.SetParamMax (theParamMax);
+ if ( theNewMethod )
+ aIP.SetParamNbStep(theParamNbStep);
+ else
+ aIP.SetParamStep (theParamStep);
+
//Compute the Curve value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Curve driver failed !!!");
return NULL;
//Compute the Sketcher value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("Sketcher driver failed");
return NULL;
return aSketcher;
}
+//=============================================================================
+/*!
+ * MakeSketcherOnPlane
+ */
+//=============================================================================
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakeSketcherOnPlane
+ (const char* theCommand,
+ Handle(GEOM_Object) theWorkingPlane)
+{
+ SetErrorCode(KO);
+
+ if (!theCommand || strcmp(theCommand, "") == 0) return NULL;
+
+ //Add a new Sketcher object
+ Handle(GEOM_Object) aSketcher = GetEngine()->AddObject(GetDocID(), GEOM_SKETCHER);
+
+ //Add a new Sketcher function
+ Handle(GEOM_Function) aFunction =
+ aSketcher->AddFunction(GEOMImpl_SketcherDriver::GetID(), SKETCHER_PLANE);
+ if (aFunction.IsNull()) return NULL;
+
+ //Check if the function is set correctly
+ if (aFunction->GetDriverGUID() != GEOMImpl_SketcherDriver::GetID()) return NULL;
+
+ GEOMImpl_ISketcher aCI (aFunction);
+
+ TCollection_AsciiString aCommand((char*) theCommand);
+ aCI.SetCommand(aCommand);
+
+ Handle(GEOM_Function) aRefPlane = theWorkingPlane->GetLastFunction();
+ if (aRefPlane.IsNull()) return NULL;
+ aCI.SetWorkingPlane( aRefPlane );
+
+ //Compute the Sketcher value
+ try {
+ OCC_CATCH_SIGNALS;
+ if (!GetSolver()->ComputeFunction(aFunction)) {
+ SetErrorCode("Sketcher driver failed");
+ return NULL;
+ }
+ }
+ catch (Standard_Failure) {
+ Handle(Standard_Failure) aFail = Standard_Failure::Caught();
+ SetErrorCode(aFail->GetMessageString());
+ return NULL;
+ }
+
+ //Make a Python command
+ GEOM::TPythonDump (aFunction) << aSketcher << " = geompy.MakeSketcherOnPlane(\""
+ << aCommand.ToCString() << "\", " << theWorkingPlane << " )";
+
+ SetErrorCode(OK);
+ return aSketcher;
+}
+
+//=============================================================================
+/*!
+ * Make3DSketcherCommand
+ */
+//=============================================================================
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::Make3DSketcherCommand (const char* theCommand)
+{
+ SetErrorCode(KO);
+
+ if (!theCommand || strcmp(theCommand, "") == 0) return NULL;
+
+ //Add a new Sketcher object
+ Handle(GEOM_Object) aSketcher = GetEngine()->AddObject(GetDocID(), GEOM_3DSKETCHER);
+
+ //Add a new Sketcher function
+ Handle(GEOM_Function) aFunction =
+ aSketcher->AddFunction(GEOMImpl_3DSketcherDriver::GetID(), SKETCHER3D_COMMAND);
+ if (aFunction.IsNull()) return NULL;
+
+ //Check if the function is set correctly
+ if (aFunction->GetDriverGUID() != GEOMImpl_3DSketcherDriver::GetID()) return NULL;
+
+ GEOMImpl_I3DSketcher aCI (aFunction);
+
+ TCollection_AsciiString aCommand ((char*) theCommand);
+ aCI.SetCommand(aCommand);
+
+ //Compute the 3D Sketcher value
+ try {
+ OCC_CATCH_SIGNALS;
+ if (!GetSolver()->ComputeFunction(aFunction)) {
+ SetErrorCode("3D Sketcher driver failed");
+ return NULL;
+ }
+ }
+ catch (Standard_Failure) {
+ Handle(Standard_Failure) aFail = Standard_Failure::Caught();
+ SetErrorCode(aFail->GetMessageString());
+ return NULL;
+ }
+
+ //Make a Python command
+ GEOM::TPythonDump pd (aFunction);
+ pd << aSketcher << " = geompy.Make3DSketcherCommand(\"" << aCommand.ToCString() << "\")";
+
+ SetErrorCode(OK);
+ return aSketcher;
+}
+
//=============================================================================
/*!
* Make3DSketcher
//Add a new Sketcher function
Handle(GEOM_Function) aFunction =
- a3DSketcher->AddFunction(GEOMImpl_3DSketcherDriver::GetID(), GEOM_3DSKETCHER);
+ a3DSketcher->AddFunction(GEOMImpl_3DSketcherDriver::GetID(), SKETCHER3D_COORDS);
if (aFunction.IsNull()) return NULL;
//Check if the function is set correctly
//Compute the Sketcher value
try {
-#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
-#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
SetErrorCode("3D Sketcher driver failed");
return NULL;
//=============================================================================
/*!
- * MakeSketcherOnPlane
+ * MakeIsoline
*/
//=============================================================================
-Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakeSketcherOnPlane
- (const char* theCommand,
- Handle(GEOM_Object) theWorkingPlane)
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakeIsoline
+ (const Handle(GEOM_Object) &theFace,
+ const bool IsUIso,
+ const double theParameter)
{
SetErrorCode(KO);
- if (!theCommand || strcmp(theCommand, "") == 0) return NULL;
+ if (theFace.IsNull()) {
+ return NULL;
+ }
- //Add a new Sketcher object
- Handle(GEOM_Object) aSketcher = GetEngine()->AddObject(GetDocID(), GEOM_SKETCHER);
+ //Add a new Spline object
+ Handle(GEOM_Object) anIsoline =
+ GetEngine()->AddObject(GetDocID(), GEOM_ISOLINE);
- //Add a new Sketcher function
+ //Add a new Spline function for interpolation type
Handle(GEOM_Function) aFunction =
- aSketcher->AddFunction(GEOMImpl_SketcherDriver::GetID(), SKETCHER_PLANE);
- if (aFunction.IsNull()) return NULL;
+ anIsoline->AddFunction(GEOMImpl_ShapeDriver::GetID(), SHAPE_ISOLINE);
+
+ if (aFunction.IsNull()) {
+ return NULL;
+ }
//Check if the function is set correctly
- if (aFunction->GetDriverGUID() != GEOMImpl_SketcherDriver::GetID()) return NULL;
+ if (aFunction->GetDriverGUID() != GEOMImpl_ShapeDriver::GetID()) {
+ return NULL;
+ }
- GEOMImpl_ISketcher aCI (aFunction);
+ GEOMImpl_IIsoline aCI (aFunction);
+ Handle(GEOM_Function) aRefFace = theFace->GetLastFunction();
- TCollection_AsciiString aCommand((char*) theCommand);
- aCI.SetCommand(aCommand);
+ if (aRefFace.IsNull()) {
+ return NULL;
+ }
+
+ aCI.SetFace(aRefFace);
+ aCI.SetIsUIso(IsUIso);
+ aCI.SetParameter(theParameter);
+
+ //Compute the isoline curve
+ try {
+ OCC_CATCH_SIGNALS;
+ if (!GetSolver()->ComputeFunction(aFunction)) {
+ SetErrorCode("Shape driver failed");
+ return NULL;
+ }
+ }
+ catch (Standard_Failure) {
+ Handle(Standard_Failure) aFail = Standard_Failure::Caught();
+ SetErrorCode(aFail->GetMessageString());
+ return NULL;
+ }
+
+ //Make a Python command
+ GEOM::TPythonDump (aFunction) << anIsoline << " = geompy.MakeIsoline( "
+ << theFace << ", " << IsUIso << ", " << theParameter << " )";
+
+ SetErrorCode(OK);
+ return anIsoline;
+}
+
+//=============================================================================
+/*!
+ * MakePolyline2D
+ */
+//=============================================================================
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakePolyline2D
+ (const std::list <std::list <double> > &theCoords,
+ const Handle(TColStd_HArray1OfExtendedString) &theNames,
+ const Handle(TColStd_HArray1OfByte) &theTypes,
+ const Handle(TColStd_HArray1OfByte) &theCloseds,
+ const Handle(TColStd_HArray1OfReal) &theWorkingPlane)
+{
+ SetErrorCode(KO);
+
+ if (theCoords.empty() || theNames.IsNull() || theTypes.IsNull() ||
+ theCloseds.IsNull() || theWorkingPlane.IsNull()) {
+ return NULL;
+ }
+
+ // Add a new Polyline object
+ Handle(GEOM_Object) aResult =
+ GetEngine()->AddObject(GetDocID(), GEOM_POLYLINE2D);
+ Handle(GEOM_Function) aFunction = aResult->AddFunction
+ (GEOMImpl_PolylineDriver::GetID(), POLYLINE2D_PLN_COORDS);
+
+ if (aFunction.IsNull()) {
+ return NULL;
+ }
+
+ // Check if the function is set correctly
+ if (aFunction->GetDriverGUID() != GEOMImpl_PolylineDriver::GetID()) {
+ return NULL;
+ }
+
+ GEOMImpl_IPolyline2D aCI(aFunction);
+
+ aCI.SetCoords(theCoords);
+ aCI.SetNames(theNames);
+ aCI.SetTypes(theTypes);
+ aCI.SetClosedFlags(theCloseds);
+ aCI.SetWorkingPlaneDbls(theWorkingPlane);
+
+ // Compute the isoline curve
+ try {
+#if OCC_VERSION_LARGE > 0x06010000
+ OCC_CATCH_SIGNALS;
+#endif
+ if (!GetSolver()->ComputeFunction(aFunction)) {
+ SetErrorCode("Polyline driver failed");
+ return NULL;
+ }
+ }
+ catch (Standard_Failure) {
+ Handle(Standard_Failure) aFail = Standard_Failure::Caught();
+ SetErrorCode(aFail->GetMessageString());
+ return NULL;
+ }
+
+ //Make a Python command
+ GEOMImpl_PolylineDumper aDumper(theCoords, theNames, theTypes,
+ theCloseds, theWorkingPlane);
+
+ aDumper.Dump(aResult);
+
+ if (aDumper.IsDone() == Standard_False) {
+ SetErrorCode("Python dump failed");
+ return NULL;
+ }
+
+ SetErrorCode(OK);
+ return aResult;
+}
+
+//=============================================================================
+/*!
+ * MakePolyline2DOnPlane
+ */
+//=============================================================================
+Handle(GEOM_Object) GEOMImpl_ICurvesOperations::MakePolyline2DOnPlane
+ (const std::list <std::list <double> > &theCoords,
+ const Handle(TColStd_HArray1OfExtendedString) &theNames,
+ const Handle(TColStd_HArray1OfByte) &theTypes,
+ const Handle(TColStd_HArray1OfByte) &theCloseds,
+ const Handle(GEOM_Object) &theWorkingPlane)
+{
+ SetErrorCode(KO);
+
+ if (theCoords.empty() || theNames.IsNull() || theTypes.IsNull() ||
+ theCloseds.IsNull() || theWorkingPlane.IsNull()) {
+ return NULL;
+ }
+
+ //Add a new Polyline object
+ Handle(GEOM_Object) aResult =
+ GetEngine()->AddObject(GetDocID(), GEOM_POLYLINE2D);
+ Handle(GEOM_Function) aFunction = aResult->AddFunction
+ (GEOMImpl_PolylineDriver::GetID(), POLYLINE2D_PLN_OBJECT);
+
+ if (aFunction.IsNull()) {
+ return NULL;
+ }
+
+ //Check if the function is set correctly
+ if (aFunction->GetDriverGUID() != GEOMImpl_PolylineDriver::GetID()) {
+ return NULL;
+ }
Handle(GEOM_Function) aRefPlane = theWorkingPlane->GetLastFunction();
- if (aRefPlane.IsNull()) return NULL;
- aCI.SetWorkingPlane( aRefPlane );
- //Compute the Sketcher value
+ if (aRefPlane.IsNull()) {
+ return NULL;
+ }
+
+ GEOMImpl_IPolyline2D aCI(aFunction);
+
+ aCI.SetCoords(theCoords);
+ aCI.SetNames(theNames);
+ aCI.SetTypes(theTypes);
+ aCI.SetClosedFlags(theCloseds);
+ aCI.SetWorkingPlane(aRefPlane);
+
+ //Compute the isoline curve
try {
#if OCC_VERSION_LARGE > 0x06010000
OCC_CATCH_SIGNALS;
#endif
if (!GetSolver()->ComputeFunction(aFunction)) {
- SetErrorCode("Sketcher driver failed");
+ SetErrorCode("Polyline driver failed");
return NULL;
}
}
}
//Make a Python command
- GEOM::TPythonDump (aFunction) << aSketcher << " = geompy.MakeSketcherOnPlane(\""
- << aCommand.ToCString() << "\", " << theWorkingPlane << " )";
+ GEOMImpl_PolylineDumper aDumper(theCoords, theNames, theTypes,
+ theCloseds, theWorkingPlane);
+
+ aDumper.Dump(aResult);
+
+ if (aDumper.IsDone() == Standard_False) {
+ SetErrorCode("Python dump failed");
+ return NULL;
+ }
SetErrorCode(OK);
- return aSketcher;
+ return aResult;
}