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Automatic upgrade of OCCT code by command "occt_upgrade . -nocdl": - WOK-generated header files from inc and sources from drv are moved to src - CDL files removed - All packages are converted to nocdlpack
194 lines
6.9 KiB
C++
194 lines
6.9 KiB
C++
// Created on: 1997-09-11
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// Created by: Roman BORISOV
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// Copyright (c) 1997-1999 Matra Datavision
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// Copyright (c) 1999-2014 OPEN CASCADE SAS
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//
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// This file is part of Open CASCADE Technology software library.
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//
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// This library is free software; you can redistribute it and/or modify it under
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// the terms of the GNU Lesser General Public License version 2.1 as published
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// by the Free Software Foundation, with special exception defined in the file
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// OCCT_LGPL_EXCEPTION.txt. Consult the file LICENSE_LGPL_21.txt included in OCCT
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// distribution for complete text of the license and disclaimer of any warranty.
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//
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// Alternatively, this file may be used under the terms of Open CASCADE
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// commercial license or contractual agreement.
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#include <Adaptor2d_HCurve2d.hxx>
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#include <AdvApprox_ApproxAFunction.hxx>
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#include <AdvApprox_PrefAndRec.hxx>
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#include <Geom2d_BSplineCurve.hxx>
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#include <Geom2d_Curve.hxx>
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#include <Geom2dAdaptor_HCurve.hxx>
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#include <Geom2dConvert_ApproxCurve.hxx>
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#include <gp_Pnt2d.hxx>
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#include <gp_Vec2d.hxx>
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#include <Precision.hxx>
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#include <Standard_OutOfRange.hxx>
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#include <TColgp_Array1OfPnt2d.hxx>
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#include <TColStd_HArray1OfReal.hxx>
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//=======================================================================
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//class : Geom2dConvert_ApproxCurve_Eval
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//purpose: evaluator class for approximation
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//=======================================================================
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class Geom2dConvert_ApproxCurve_Eval : public AdvApprox_EvaluatorFunction
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{
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public:
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Geom2dConvert_ApproxCurve_Eval (const Handle(Adaptor2d_HCurve2d)& theFunc,
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Standard_Real First, Standard_Real Last)
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: fonct(theFunc) { StartEndSav[0] = First; StartEndSav[1] = Last; }
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virtual void Evaluate (Standard_Integer *Dimension,
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Standard_Real StartEnd[2],
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Standard_Real *Parameter,
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Standard_Integer *DerivativeRequest,
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Standard_Real *Result, // [Dimension]
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Standard_Integer *ErrorCode);
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private:
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Handle(Adaptor2d_HCurve2d) fonct;
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Standard_Real StartEndSav[2];
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};
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void Geom2dConvert_ApproxCurve_Eval::Evaluate (Standard_Integer *Dimension,
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Standard_Real StartEnd[2],
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Standard_Real *Param, // Parameter at which evaluation
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Standard_Integer *Order, // Derivative Request
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Standard_Real *Result,// [Dimension]
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Standard_Integer *ErrorCode)
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{
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*ErrorCode = 0;
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Standard_Real par = *Param;
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// Dimension is incorrect
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if (*Dimension!=2) {
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*ErrorCode = 1;
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}
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// Parameter is incorrect
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if ( par < StartEnd[0] || par > StartEnd[1] ) {
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*ErrorCode = 2;
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}
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if(StartEnd[0] != StartEndSav[0] || StartEnd[1]!= StartEndSav[1])
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{
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fonct = fonct->Trim(StartEnd[0],StartEnd[1],Precision::PConfusion());
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StartEndSav[0]=StartEnd[0];
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StartEndSav[1]=StartEnd[1];
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}
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gp_Pnt2d pnt;
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gp_Vec2d v1, v2;
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switch (*Order) {
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case 0:
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pnt = fonct->Value(par);
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Result[0] = pnt.X();
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Result[1] = pnt.Y();
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break;
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case 1:
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fonct->D1(par, pnt, v1);
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Result[0] = v1.X();
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Result[1] = v1.Y();
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break;
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case 2:
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fonct->D2(par, pnt, v1, v2);
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Result[0] = v2.X();
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Result[1] = v2.Y();
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break;
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default:
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Result[0] = Result[1] = 0.;
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*ErrorCode = 3;
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break;
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}
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}
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Geom2dConvert_ApproxCurve::Geom2dConvert_ApproxCurve(const Handle(Geom2d_Curve)& Curve,const Standard_Real Tol2d,const GeomAbs_Shape Order,const Standard_Integer MaxSegments,const Standard_Integer MaxDegree)
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{
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Handle(Geom2dAdaptor_HCurve) HCurve = new Geom2dAdaptor_HCurve (Curve);
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Approximate(HCurve, Tol2d, Order, MaxSegments, MaxDegree);
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}
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Geom2dConvert_ApproxCurve::Geom2dConvert_ApproxCurve(const Handle(Adaptor2d_HCurve2d)& Curve,
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const Standard_Real Tol2d,
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const GeomAbs_Shape Order,
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const Standard_Integer MaxSegments,
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const Standard_Integer MaxDegree)
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{
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Approximate(Curve, Tol2d, Order, MaxSegments, MaxDegree);
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}
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void Geom2dConvert_ApproxCurve::Approximate(const Handle(Adaptor2d_HCurve2d)& theCurve,
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const Standard_Real theTol2d,
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const GeomAbs_Shape theOrder,
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const Standard_Integer theMaxSegments,
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const Standard_Integer theMaxDegree)
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{
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// Initialisation of input parameters of AdvApprox
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Standard_Integer Num1DSS=0, Num2DSS=1, Num3DSS=0;
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Handle(TColStd_HArray1OfReal) OneDTolNul, ThreeDTolNul;
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Handle(TColStd_HArray1OfReal) TwoDTol = new TColStd_HArray1OfReal(1,Num2DSS);
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TwoDTol->Init(theTol2d);
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Standard_Real First = theCurve->FirstParameter();
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Standard_Real Last = theCurve->LastParameter();
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Standard_Integer NbInterv_C2 = theCurve->NbIntervals(GeomAbs_C2);
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TColStd_Array1OfReal CutPnts_C2(1, NbInterv_C2+1);
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theCurve->Intervals(CutPnts_C2,GeomAbs_C2);
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Standard_Integer NbInterv_C3 = theCurve->NbIntervals(GeomAbs_C3);
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TColStd_Array1OfReal CutPnts_C3(1, NbInterv_C3+1);
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theCurve->Intervals(CutPnts_C3,GeomAbs_C3);
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AdvApprox_PrefAndRec CutTool(CutPnts_C2,CutPnts_C3);
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myMaxError = 0;
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Geom2dConvert_ApproxCurve_Eval ev (theCurve, First, Last);
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AdvApprox_ApproxAFunction aApprox (Num1DSS, Num2DSS, Num3DSS,
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OneDTolNul, TwoDTol, ThreeDTolNul,
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First, Last, theOrder,
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theMaxDegree, theMaxSegments,
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ev, CutTool);
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myIsDone = aApprox.IsDone();
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myHasResult = aApprox.HasResult();
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if (myHasResult) {
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TColgp_Array1OfPnt2d Poles(1,aApprox.NbPoles());
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aApprox.Poles2d(1,Poles);
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Handle(TColStd_HArray1OfReal) Knots = aApprox.Knots();
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Handle(TColStd_HArray1OfInteger) Mults = aApprox.Multiplicities();
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Standard_Integer Degree = aApprox.Degree();
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myBSplCurve = new Geom2d_BSplineCurve(Poles, Knots->Array1(), Mults->Array1(), Degree);
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myMaxError = aApprox.MaxError(2, 1);
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}
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}
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Handle(Geom2d_BSplineCurve) Geom2dConvert_ApproxCurve::Curve() const
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{
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return myBSplCurve;
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}
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Standard_Boolean Geom2dConvert_ApproxCurve::IsDone() const
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{
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return myIsDone;
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}
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Standard_Boolean Geom2dConvert_ApproxCurve::HasResult() const
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{
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return myHasResult;
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}
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Standard_Real Geom2dConvert_ApproxCurve::MaxError() const
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{
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return myMaxError;
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}
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void Geom2dConvert_ApproxCurve::Dump(Standard_OStream& o) const
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{
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o << "******* Dump of ApproxCurve *******" << endl;
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o << "******* Error " << MaxError() << endl;
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}
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