Beispiel #1
0
        /*
         *        INTERSECTIONS: (BCurve,LCurve)
         *            - lcurve is required non-degenerated
         *
         *        NOTES:        -    Curves are maximally reduced in AuxIntersectBL
         *                    -    Self/intersecting Bezier is NOT a reduction
         *                        from bezier
         */

        public static bool AuxIntersectBL(DegenD degen, LCurve lrs, ListInfoInters linters)
        {
            //    IMPORTANT (TODO):
            //    such intersection is NOT VALID for computation of ray's parity
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBL(degen,lrs)", "Null argument");
            }
            if (lrs.IsDegen)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBL(degen,lrs)", null);
            }
            if (lrs is SegD)
            {
                return(Inters.AuxIntersectBB(degen, lrs as SegD, null, null, linters));
            }

            LineD line = new LineD(lrs);
            Param param;
            VecD  pnt;

            if (!degen.Cp.Project(line, out param, out pnt))
            {
                return(false);
            }
            if (degen.Cp.Dist(pnt) < MConsts.EPS_DEC)
            {
                if (lrs.IsEvaluableStrict(param))
                {
                    IntersD0 inters = new IntersD0(Param.Degen, param, pnt, false);
                    linters.Add(inters);
                }
            }
            return(true);
        }
Beispiel #2
0
        public static bool AuxIntersectBB(DegenD degen, SegD seg,
                                          InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(degen,seg)", "Null argument");
            }

            // no reduction
            bool connectAB = ((icAB != null) && (icAB.IsConnect));

            if (connectAB)
            {
                return(true);
            }
            Param param;
            VecD  pnt;

            degen.Cp.Project(seg, out param, out pnt);
            if (degen.Cp.Dist(pnt) < MConsts.EPS_DEC)
            {
                IntersD0 inters = new IntersD0(Param.Degen, param, pnt, false);
                linters.Add(inters);
            }
            return(true);
        }
        public void CleanEndPointInters(bool connectAB, bool connectBA,
                                        int pozStart)
        {
            if ((!connectAB) && (!connectBA))
            {
                return;
            }
            for (int poz = pozStart; poz < this.linters.Count; poz++)
            {
                IntersD0 intersD0 = linters[poz] as IntersD0;
                if (intersD0 != null)
                {
                    if (!intersD0.IncludeBezSI)
                    {
                        intersD0.Ipi.Par(0).Round(0, 1);
                        intersD0.Ipi.Par(1).Round(0, 1);

                        bool toDelete = ((connectAB && (intersD0.Ipi.Par(0).Val == 1) && (intersD0.Ipi.Par(1).Val == 0)) ||
                                         (connectBA && (intersD0.Ipi.Par(0).Val == 0) && (intersD0.Ipi.Par(1).Val == 1)));
                        if (toDelete)
                        {
                            this.linters.RemoveAt(poz);
                            poz--;
                        }
                    }
                }
            }
        }
 public void CleanEndPointBezSI(VecD pnt, int pozStart)
 {
     for (int poz = pozStart; poz < this.linters.Count; poz++)
     {
         IntersD0 intersD0 = linters[poz] as IntersD0;
         if (intersD0 != null)
         {
             bool toDelete = (intersD0.PntInters == pnt);
             if (toDelete)
             {
                 this.linters.RemoveAt(poz);
                 poz--;
             }
         }
     }
 }
Beispiel #5
0
        public static bool AuxIntersectBB(DegenD degen, Bez2D bez,
                                          InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(degen,bez)", "Null argument");
            }

            // no reduction !!

            bool connectAB = ((icAB != null) && (icAB.IsConnect));
            bool connectBA = ((icBA != null) && (icBA.IsConnect));
            bool connect   = connectAB || connectBA;

            if (connect)
            {
                return(true);
            }

            // bbox check
            if (!bez.BBox.Contains(degen.Cp))
            {
                return(true);
            }

            Param[] pars;
            VecD    pnt;

            if (!degen.Cp.ProjectGeneral(bez, out pars, out pnt))
            {
                return(false);
            }
            if (degen.Cp.Dist(pnt) < MConsts.EPS_DEC)
            {
                Param parM;
                bool  isSelfInters = bez.IsSelfInters(out parM);
                for (int iPar = 0; iPar < pars.Length; iPar++)
                {
                    IntersD0 inters = new IntersD0(Param.Degen, pars[iPar], pnt, isSelfInters);
                    linters.Add(inters);
                }
            }
            return(true);
        }
Beispiel #6
0
 /*
  *        INTERSECTIONS: (BCurve,BCurve)
  *            - ORDER is IMPORTANT 
  *                order:    if infoConnect are not nulls, => 
  *                        it is supposed that curveA(1)=curveB(0)
  *
  *        NOTES:        -    InfoConnect are supposed to be CORRECT
  *                    -    Curves are maximally reduced in AuxIntersectBB
  *                    -    Self/intersecting Bezier is NOT a reduction
  *                        from bezier
  */
  
 
 public static bool AuxIntersectBB(DegenD degenA, DegenD degenB, 
     InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
 {
     if (linters==null)
     {
         throw new ExceptionGMath("Intersect","AuxIntersectBB(degen,degen)","Null argument");
     }
     bool connectAB = ((icAB!=null)&&(icAB.IsConnect));
     bool connectBA = ((icBA!=null)&&(icBA.IsConnect));
     bool connect = connectAB||connectBA;
     if (connect)  // connect,=> no "real" intersections
     {
         return true;
     }
     if (degenA.Cp==degenB.Cp) // coincide but are not known to be connected
     {
         IntersD0 inters=new IntersD0(Param.Degen,Param.Degen,
             0.5*(degenA.Cp+degenB.Cp),false);
         linters.Add(inters);
     }
     return true;
 }
Beispiel #7
0
        public bool IntersFromSupport(InfoInters intersSup, int indBez,
                                      out InfoInters[] intersBez)
        {
            /*
             *        ASSUMPTION: works for D0 intersections ONLY!!!
             */
            intersBez = null;
            if (intersSup == null)
            {
                return(true);
            }
            if (intersSup.Dim == InfoInters.TypeDim.Dim1)
            {
                throw new ExceptionGMath("Bez2D", "IntersFromSupport", "NOT IMPLEMENTED");
                //return false;
            }
            InfoParamInters ipiSup = (intersSup as IntersD0).Ipi;

            Param[] parsBez;
            if (!this.ParamFromSupport(ipiSup.Par(indBez), out parsBez))
            {
                return(false);
            }
            intersBez = new IntersD0[parsBez.Length];
            for (int iPar = 0; iPar < parsBez.Length; iPar++)
            {
                if (indBez == 0)
                {
                    intersBez[iPar] = new IntersD0(parsBez[iPar], ipiSup.Par(1),
                                                   (intersSup as IntersD0).PntInters, true);
                }
                else
                {
                    intersBez[iPar] = new IntersD0(ipiSup.Par(0), parsBez[iPar],
                                                   (intersSup as IntersD0).PntInters, true);
                }
            }
            return(true);
        }
Beispiel #8
0
        /*
         *        INTERSECTIONS: (BCurve,BCurve)
         *            - ORDER is IMPORTANT
         *                order:    if infoConnect are not nulls, =>
         *                        it is supposed that curveA(1)=curveB(0)
         *
         *        NOTES:        -    InfoConnect are supposed to be CORRECT
         *                    -    Curves are maximally reduced in AuxIntersectBB
         *                    -    Self/intersecting Bezier is NOT a reduction
         *                        from bezier
         */


        public static bool AuxIntersectBB(DegenD degenA, DegenD degenB,
                                          InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(degen,degen)", "Null argument");
            }
            bool connectAB = ((icAB != null) && (icAB.IsConnect));
            bool connectBA = ((icBA != null) && (icBA.IsConnect));
            bool connect   = connectAB || connectBA;

            if (connect)  // connect,=> no "real" intersections
            {
                return(true);
            }
            if (degenA.Cp == degenB.Cp) // coincide but are not known to be connected
            {
                IntersD0 inters = new IntersD0(Param.Degen, Param.Degen,
                                               0.5 * (degenA.Cp + degenB.Cp), false);
                linters.Add(inters);
            }
            return(true);
        }
Beispiel #9
0
 public static bool AuxIntersectBB(DegenD degen, SegD seg,
     InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
 {
     if (linters==null)
     {
         throw new ExceptionGMath("Intersect","AuxIntersectBB(degen,seg)","Null argument");
     }
 
     // no reduction
     bool connectAB = ((icAB!=null)&&(icAB.IsConnect));
     if (connectAB)
     {
         return true;
     }
     Param param;
     VecD pnt;
     degen.Cp.Project(seg,out param, out pnt);
     if (degen.Cp.Dist(pnt)<MConsts.EPS_DEC)
     {
         IntersD0 inters=new IntersD0(Param.Degen,param,pnt,false);
         linters.Add(inters);
     }
     return true;
 }
Beispiel #10
0
 public IntersD0(IntersD0 inters) :
     this(inters.Ipi.Par(0), inters.Ipi.Par(1), inters.PntInters,
          inters.IncludeBezSI)
 {
 }
Beispiel #11
0
        public static bool AuxIntersectBB(Bez2D bezA, Bez2D bezB,
            InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            // bezA and bezB are irreducable !!!

            bool connectAB = ((icAB!=null)&&(icAB.IsConnect));
            bool connectBA = ((icBA!=null)&&(icBA.IsConnect));
            if ((connectBA)&&(!connectAB))
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
            }
            bool connect = connectAB||connectBA;

            Param parM;
            bool isSelfIntersA=bezA.IsSelfInters(out parM);
            bool isSelfIntersB=bezB.IsSelfInters(out parM);
            
            if (isSelfIntersA||isSelfIntersB)
            {
                BCurve curveA=bezA;
                if (isSelfIntersA) 
                    curveA=bezA.SupportFlat();
                BCurve curveB=bezB;
                if (isSelfIntersB)
                    curveB=bezB.SupportFlat();
                int numIntersBefore=linters.Count;
                Inters.IntersectBB(curveA,curveB,null,null,linters);
                /*
                 *    CLEAN END-POINT if the curve does not return to it
                 */
                if ((connectAB)&&(!connectBA))
                {
                    bool coversA1=false;
                    bool coversB0=false;
                    if (isSelfIntersA)
                    {
                        coversA1=bezA.CoversEndPoint(false);
                    }
                    if (isSelfIntersB)
                    {
                        coversB0=bezB.CoversEndPoint(true);
                    }
                    if ((!coversA1)&&(!coversB0))
                    {
                        linters.CleanEndPointBezSI(bezA.End,numIntersBefore);
                    }
                }
                linters.ParamInvalidateBezSI(numIntersBefore);
                return true;
            }

            // test for 1-dimensional intersection of supports
            bool isB0OnA, isB2OnA;
            Param paramAInvB0, paramAInvB2;
            if (!bezB.Cp(0).InverseOn(bezA,out isB0OnA,out paramAInvB0)) 
                return false;
            if (!bezB.Cp(2).InverseOn(bezA,out isB2OnA,out paramAInvB2)) 
                return false;
            if ((isB0OnA)&&(isB2OnA))
            {
                bool areCoincide=true;
                Param par;
                for (int i=1;i<=3;i++)
                {
                    //    evaluate bezB at paramaters 1/4, 1/2, 3/4 and check
                    //    whether the points lie on bezA [-Infinity,Infinity]
                    VecD pnt=bezB.Evaluate(0.25*i);
                    if (!pnt.InverseOn(bezA,out areCoincide,out par)) 
                        return false;
                    if (!areCoincide) 
                        break;
                }
                if (areCoincide)
                {
                    Param.TypeParam typeB0 = bezA.ParamClassify(paramAInvB0);
                    Param.TypeParam typeB2 = bezA.ParamClassify(paramAInvB2);
                    int mult = (int)typeB0*(int)typeB2;
                    
                    if (mult==4)
                    {
                        return true; // no intersections
                    }
                    else if (mult==1)
                    {
                        // bezB is degenerated
                        throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                        //return false;
                    }
                    else if (mult==2) 
                    {
                        // 0-dimentional connection at the end point
                        if ((typeB0==Param.TypeParam.Start)&&
                            (typeB2==Param.TypeParam.Before)) 
                        {
                            if (connect) 
                            {
                                throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                                //return false;    
                            }
                            IntersD0 inters=new IntersD0(0,0,bezB.Start,false);
                            linters.Add(inters);
                            return true;
                        }
                        if ((typeB0==Param.TypeParam.Before)&&
                            (typeB2==Param.TypeParam.Start)) 
                        {
                            if (connect)
                            {
                                throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                                //return false;    
                            }
                            IntersD0 inters=new IntersD0(1,0,bezB.End,false);
                            linters.Add(inters);
                            return true;
                        }
                        if ((typeB0==Param.TypeParam.End)&&
                            (typeB2==Param.TypeParam.After))
                        {
                            if (!connect)
                            {
                                IntersD0 inters=new IntersD0(0,1,bezB.Start,false);
                                linters.Add(inters);
                                return true;
                            }
                            return true;
                        }
                        if ((typeB0==Param.TypeParam.After)&&
                            (typeB2==Param.TypeParam.End)) 
                        {
                            if (connect)
                            {
                                throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                                //return false;    
                            }
                            IntersD0 inters=new IntersD0(1,1,bezB.End,false);
                            linters.Add(inters);
                            return true;
                        }
                    }
                    else if (mult<=0)
                    {
                        InfoInters inters;
                        Inters.RefineIntersBBD1(bezA,bezB,out inters);
                        linters.Add(inters);
                        return true;
                    }
                    throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                    //return false;                        
                }
            }

            /*
             *        INTERSECTION IS 0-DIMENTIONAL AT MOST
             */ 
            VecD[] cfA, cfB;
            bezA.PowerCoeff(out cfA);
            bezB.PowerCoeff(out cfB);
        
            Param parA, parB;
            int numRootB;
            double[] rootsB;
            double kappa=cfA[2].Cross(cfA[1]);

            // bezA and bezB are non-degenerated and consequent
            if (connectAB)
            {
                if (bezA.End!=bezB.Start) 
                {
                    throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                    //return false;                        
                }                    

                if (connectBA)     
                {
                    // both ends are connected
                    if (bezA.Start!=bezB.End) 
                    {
                        throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                        //return false;                        
                    }                    
                        
                    if (icAB.IsTangent||icBA.IsTangent) 
                    {
                        // tangent connection - no additional intersections
                        return true;
                    }

                    double crossA2B2=cfA[2].Cross(cfB[2]);
                    double[] cfEqn=    { kappa*(kappa+2*crossA2B2+cfA[1].Cross(cfB[2])),
                                      -crossA2B2*(2*kappa+crossA2B2),
                                      crossA2B2*crossA2B2};
                    Equation.RootsReal(cfEqn[2],cfEqn[1],cfEqn[0],
                        out numRootB, out rootsB);
                    if (numRootB==Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                        //return false;                        
                    }
                    if (rootsB!=null)
                    {
                        for (int iRoot=0; iRoot<numRootB; iRoot++)
                        {
                            parB=rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA=1.0+
                                    parB.Val*(cfA[2].Cross(cfB[2])*parB.Val+
                                    cfA[2].Cross(cfB[1]))/kappa;
                                if (bezA.IsEvaluableStrict(parA) /*&& (parA!=1.)*/)
                                {
                                    IntersD0 inters=new IntersD0(parA,parB,
                                        0.5*(bezA.Evaluate(parA)+bezB.Evaluate(parB)),
                                        false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }
                    
                    return true;
                }

                // consequent Bezier with one connection
                if (icAB.IsTangent)  
                {
                    // tangent connection - at most 2 additional intersections
                    double[] cfEqn={kappa*(kappa-cfB[2].Cross(cfB[1])),
                                       2*cfA[2].Cross(cfB[2])*kappa,
                                       cfA[2].Cross(cfB[2])*cfA[2].Cross(cfB[2])};
                    Equation.RootsReal(cfEqn[2],cfEqn[1],cfEqn[0],
                        out numRootB, out rootsB);
                    if (numRootB==Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                        //return false;                        
                    }
                    if (rootsB!=null)
                    {
                        for (int iRoot=0; iRoot<numRootB; iRoot++)
                        {
                            parB=rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA=1+
                                    parB.Val*(cfA[2].Cross(cfB[2])*parB.Val+
                                    cfA[2].Cross(cfB[1]))/kappa;
                                if (bezA.IsEvaluableStrict(parA)/*&&(parA!=1)*/)
                                {
                                    IntersD0 inters=new IntersD0(parA,parB,
                                        0.5*(bezA.Evaluate(parA)+bezB.Evaluate(parB)),
                                        false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }
                    return true;
                }
                else 
                {
                    // non-tangent connection - at most 3 additional intersections
                    double[] cfEqn={kappa*(2*cfA[2].Cross(cfB[1])+cfA[1].Cross(cfB[1])),
                                       cfA[2].Cross(cfB[1])*cfA[2].Cross(cfB[1])+
                                       kappa*(2*cfA[2].Cross(cfB[2])+cfA[1].Cross(cfB[2])),
                                       2*cfA[2].Cross(cfB[2])*cfA[2].Cross(cfB[1]),
                                       cfA[2].Cross(cfB[2])*cfA[2].Cross(cfB[2])};
                    Equation.RootsReal(cfEqn[3],cfEqn[2],cfEqn[1],cfEqn[0],
                        out numRootB, out rootsB);
                    if (numRootB==Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                        //return false;                        
                    }
                    if (rootsB!=null)
                    {
                        for (int iRoot=0; iRoot<numRootB; iRoot++)
                        {
                            parB=rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA=1+
                                    parB.Val*(cfA[2].Cross(cfB[2])*parB+
                                    cfA[2].Cross(cfB[1]))/kappa;
                                if (bezA.IsEvaluableStrict(parA)/*&&(parA!=1)*/)
                                {
                                    IntersD0 inters=new IntersD0(parA,parB,
                                        0.5*(bezA.Evaluate(parA)+bezB.Evaluate(parB)),
                                        false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }
                    return true;
                }
            }

            // bezA and bezB are non-degenerated, non-consequent curves
            bool isSwappedAB=false;
            if (Math.Abs(cfA[2].Cross(cfA[1]))<Math.Abs(cfB[2].Cross(cfB[1])))
            {
                kappa = cfB[2].Cross(cfB[1]); 
                isSwappedAB = true;
                VecD tmp;
                for (int i=0; i<3; i++)
                {
                    tmp=cfA[i]; cfA[i]=cfB[i]; cfB[i]=tmp;
                }
            }
            double[] e={cfA[2].Cross(cfB[0]-cfA[0]),
                           cfA[2].Cross(cfB[1]),
                           cfA[2].Cross(cfB[2])};
            double[] f={(cfB[0]-cfA[0]).Cross(cfA[1]),
                           cfB[1].Cross(cfA[1]),
                           cfB[2].Cross(cfA[1])};
            Equation.RootsReal(e[2]*e[2], 
                2*e[2]*e[1], 
                e[1]*e[1]+2*e[2]*e[0]-kappa*f[2],
                2*e[1]*e[0]-kappa*f[1], 
                e[0]*e[0]-kappa*f[0],
                out numRootB, out rootsB);

            if (numRootB==Equation.NumRootInfinite)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(bez,bez)",null);
                //return false;                        
            }
            if (rootsB!=null)
            {
                for (int iRoot=0; iRoot<numRootB; iRoot++)
                {
                    parB=rootsB[iRoot];
                    parA=Equation.Evaluate(parB.Val, e[2], e[1], e[0])/kappa;        
                    if (isSwappedAB) 
                    {
                        Param parTmp; 
                        parTmp=parA; 
                        parA=parB; 
                        parB=parTmp;
                    }
                    if (bezA.IsEvaluableStrict(parA)&&bezB.IsEvaluableStrict(parB))
                    {
                        IntersD0 inters=new IntersD0(parA,parB,
                            0.5*(bezA.Evaluate(parA)+bezB.Evaluate(parB)),
                            false);
                        linters.Add(inters);
                    }
                }
            }
            return true;
        }
Beispiel #12
0
 public IntersD0(IntersD0 inters): 
     this(inters.Ipi.Par(0), inters.Ipi.Par(1), inters.PntInters,
     inters.IncludeBezSI)
 {
 }
Beispiel #13
0
 public bool IntersFromSupport(InfoInters intersSup, int indBez, 
     out InfoInters[] intersBez)
 {
     /*
      *        ASSUMPTION: works for D0 intersections ONLY!!!
      */
     intersBez=null;
     if (intersSup==null)
         return true;
     if (intersSup.Dim==InfoInters.TypeDim.Dim1)
     {
         throw new ExceptionGMath("Bez2D","IntersFromSupport","NOT IMPLEMENTED");
         //return false;
     }
     InfoParamInters ipiSup=(intersSup as IntersD0).Ipi;
     Param[] parsBez;
     if (!this.ParamFromSupport(ipiSup.Par(indBez), out parsBez))
         return false;
     intersBez=new IntersD0[parsBez.Length];
     for (int iPar=0; iPar<parsBez.Length; iPar++)
     {
         if (indBez==0)
         {
             intersBez[iPar]=new IntersD0(parsBez[iPar],ipiSup.Par(1),
                 (intersSup as IntersD0).PntInters, true);
         }
         else
         {
             intersBez[iPar]=new IntersD0(ipiSup.Par(0),parsBez[iPar],
                 (intersSup as IntersD0).PntInters, true);
         }
     }
     return true;
 }
Beispiel #14
0
        /*
         *        INTERSECT: (LCurve, LCurve)
         *                - both curves are supposed to be NON-DEGENERATED
         */

        public static bool IntersectLL(LCurve lrsA, LCurve lrsB,
                                       out InfoInters inters)
        {
            inters = null;
            if ((lrsA.IsDegen) || (lrsB.IsDegen))
            {
                throw new ExceptionGMath("Intersect", "IntersectLL(lrs,lrs)", null);
            }

            VecD   a0   = lrsA.Start;
            VecD   a1   = lrsA.End;
            VecD   b0   = lrsB.Start;
            VecD   b1   = lrsB.End;
            VecD   dirA = lrsA.DirTang;
            VecD   dirB = lrsB.DirTang;
            double det  = dirA.Cross(dirB);

            // lrsA and lrsB are not parallel
            if (Math.Abs(det) > MConsts.EPS_DEC)
            {
                double lenA = (a1 - a0).Norm;
                double lenB = (b1 - b0).Norm;
                VecD   diff = b0 - a0;
                Param  parA = (diff.Cross(dirB)) / (det * lenA);
                Param  parB = (diff.Cross(dirA)) / (det * lenB);
                if (lrsA.IsEvaluableStrict(parA) && lrsB.IsEvaluableStrict(parB))
                {
                    VecD pnt = 0.5 * (lrsA.Evaluate(parA) + lrsB.Evaluate(parB));
                    inters = new IntersD0(parA, parB, pnt, false);
                }
                return(true);
            }

            // lrsA and lrsB are parallel
            LineD lineB = new LineD(lrsB);
            Param paramBInvA0, paramBInvA1;
            VecD  pntProjA0, pntProjA1;

            a0.Project(lineB, out paramBInvA0, out pntProjA0);
            a1.Project(lineB, out paramBInvA1, out pntProjA1);
            double distA0 = a0.Dist(pntProjA0);
            double distA1 = a1.Dist(pntProjA1);

            if ((distA0 < MConsts.EPS_DEC) || (distA1 < MConsts.EPS_DEC))
            {
                // lrsA and lrsB are colinear
                Param.TypeParam typeA0 = lrsB.ParamClassify(paramBInvA0);
                Param.TypeParam typeA1 = lrsB.ParamClassify(paramBInvA1);
                int             mult   = (int)typeA0 * (int)typeA1;

                if (mult == 4)
                {
                    return(true);
                }
                else if (mult == 1)
                {
                    throw new ExceptionGMath("Intersect", "IntersectLL(lrs,lrs)", null); // lrsA is degenerated
                    //return false;
                }
                else if (mult == 2)
                {
                    if ((typeA0 == Param.TypeParam.Start) &&
                        (typeA1 == Param.TypeParam.Before))
                    {
                        inters = new IntersD0(0, 0, a0, false);
                    }
                    if ((typeA0 == Param.TypeParam.Before) &&
                        (typeA1 == Param.TypeParam.Start))
                    {
                        inters = new IntersD0(1, 0, a1, false);
                    }
                    if ((typeA0 == Param.TypeParam.End) &&
                        (typeA1 == Param.TypeParam.After))
                    {
                        inters = new IntersD0(0, 1, a0, false);
                    }
                    if ((typeA0 == Param.TypeParam.After) &&
                        (typeA1 == Param.TypeParam.End))
                    {
                        inters = new IntersD0(1, 1, a1, false);
                    }
                    return(true);
                }
                else if (mult <= 0)
                {
                    return(Inters.RefineIntersLLD1(lrsA, lrsB, out inters));
                }
            }

            return(true);
        }
Beispiel #15
0
        public static bool AuxIntersectBL(Bez2D bez, LCurve lrs, ListInfoInters linters)
        {
            // bezier is irreducable !!!
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBL(bez,lrs)", "Null argument");
            }
            if (lrs.IsDegen)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBL(bez,lrs)", null);
            }

            Param parM;

            if (bez.IsSelfInters(out parM))
            {
                if (parM.Val < 0)
                {
                    Bez2D bezRev          = bez.Reversed as Bez2D;
                    int   numIntersBefore = linters.Count;
                    if (!Inters.AuxIntersectBL(bezRev, lrs, linters))
                    {
                        return(false);
                    }
                    linters.ParamReverse(1, 0, numIntersBefore);
                    return(true);
                }
                SegD       support = bez.SupportFlat();
                InfoInters intersSup;
                if (!Inters.IntersectLL(support, lrs, out intersSup))
                {
                    return(false);
                }
                if (intersSup == null)
                {
                    return(true);
                }

                /*
                 *  convert parameters from support to Bezier
                 */
                // invalidate in case of D1 intersection
                if (intersSup.Dim == InfoInters.TypeDim.Dim1)
                {
                    (intersSup as IntersD1).ParamInvalidateBezSI();
                    linters.Add(intersSup);
                    return(true);
                }

                // write as 1 or 2 intersections with different parameters
                // in case of D0 intersections
                InfoInters[] intersBez;
                if (!bez.IntersFromSupport(intersSup, 0, out intersBez))
                {
                    return(false);
                }
                for (int iIntersBez = 0; iIntersBez < intersBez.Length; iIntersBez++)
                {
                    linters.Add(intersBez[iIntersBez]);
                }
                return(true);
            }

            // bezier is NOT self/intersecting
            VecD[] cfLrs, cfBez;
            lrs.PowerCoeff(out cfLrs);
            bez.PowerCoeff(out cfBez);
            VecD norm = lrs.DirNorm;
            VecD tang = lrs.DirTang;

            double[] roots;
            int      numRootBez;

            Equation.RootsReal(cfBez[2].Dot(norm),
                               cfBez[1].Dot(norm), (cfBez[0] - cfLrs[0]).Dot(norm),
                               out numRootBez, out roots);
            if (numRootBez == Equation.NumRootInfinite)
            {
                // bezier is irreducable,=> only D0 intersections are possible
                throw new ExceptionGMath("Intersect", "AuxIntersectBL(bez,lrs)", null);
                //return false;
            }
            for (int iRoot = 0; iRoot < numRootBez; iRoot++)
            {
                Param parBez = roots[iRoot];
                if (bez.IsEvaluableStrict(parBez))
                {
                    Param parLrs = Equation.Evaluate(parBez.Val,
                                                     cfBez[2].Dot(tang), cfBez[1].Dot(tang),
                                                     (cfBez[0] - cfLrs[0]).Dot(tang)) / (cfLrs[1].Dot(tang));
                    if (lrs.IsEvaluableStrict(parLrs))
                    {
                        IntersD0 inters = new IntersD0(parBez, parLrs,
                                                       0.5 * (lrs.Evaluate(parLrs.Val) + bez.Evaluate(parBez.Val)),
                                                       false);
                        linters.Add(inters);
                    }
                }
            }
            return(true);
        }
Beispiel #16
0
        /*
         *        INTERSECTIONS: (BCurve,LCurve)
         *            - lcurve is required non-degenerated
         *
         *        NOTES:        -    Curves are maximally reduced in AuxIntersectBL
         *                    -    Self/intersecting Bezier is NOT a reduction
         *                        from bezier
         */
    
        public static bool AuxIntersectBL(DegenD degen, LCurve lrs, ListInfoInters linters)
        {
            //    IMPORTANT (TODO): 
            //    such intersection is NOT VALID for computation of ray's parity
            if (linters==null)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBL(degen,lrs)","Null argument");
            }
            if (lrs.IsDegen)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBL(degen,lrs)",null);
            }
            if (lrs is SegD)
            {
                return Inters.AuxIntersectBB(degen, lrs as SegD, null, null, linters);
            }

            LineD line=new LineD(lrs);
            Param param;
            VecD  pnt;
            if (!degen.Cp.Project(line,out param,out pnt))
                return false;
            if (degen.Cp.Dist(pnt)<MConsts.EPS_DEC) 
            {
                if (lrs.IsEvaluableStrict(param))
                {
                    IntersD0 inters=new IntersD0(Param.Degen, param, pnt, false);
                    linters.Add(inters);
                }
            }
            return true;
        }
Beispiel #17
0
        public static bool AuxIntersectBL(Bez2D bez, LCurve lrs, ListInfoInters linters)
        {
            // bezier is irreducable !!!
            if (linters==null)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBL(bez,lrs)","Null argument");
            }
            if (lrs.IsDegen)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBL(bez,lrs)",null);
            }
        
            Param parM;
            if (bez.IsSelfInters(out parM))
            {
                if (parM.Val<0)
                {
                    Bez2D bezRev=bez.Reversed as Bez2D;
                    int numIntersBefore=linters.Count;
                    if (!Inters.AuxIntersectBL(bezRev,lrs,linters))
                        return false;
                    linters.ParamReverse(1,0,numIntersBefore);
                    return true;
                }
                SegD support=bez.SupportFlat();
                InfoInters intersSup;
                if (!Inters.IntersectLL(support, lrs, out intersSup))
                    return false;
                if (intersSup==null)
                    return true;
                /*
                 *  convert parameters from support to Bezier
                 */
                // invalidate in case of D1 intersection
                if (intersSup.Dim==InfoInters.TypeDim.Dim1)
                {
                    (intersSup as IntersD1).ParamInvalidateBezSI();
                    linters.Add(intersSup);
                    return true;
                }

                // write as 1 or 2 intersections with different parameters
                // in case of D0 intersections
                InfoInters[] intersBez;
                if (!bez.IntersFromSupport(intersSup,0,out intersBez))
                    return false;
                for (int iIntersBez=0; iIntersBez<intersBez.Length; iIntersBez++)
                {
                    linters.Add(intersBez[iIntersBez]);
                }
                return true;
            }

            // bezier is NOT self/intersecting
            VecD[] cfLrs, cfBez; 
            lrs.PowerCoeff(out cfLrs);
            bez.PowerCoeff(out cfBez);
            VecD norm=lrs.DirNorm;
            VecD tang=lrs.DirTang;
                
            double[] roots;
            int numRootBez;
            Equation.RootsReal(cfBez[2].Dot(norm), 
                cfBez[1].Dot(norm),(cfBez[0]-cfLrs[0]).Dot(norm),
                out numRootBez, out roots);
            if (numRootBez==Equation.NumRootInfinite)
            {
                // bezier is irreducable,=> only D0 intersections are possible
                throw new ExceptionGMath("Intersect","AuxIntersectBL(bez,lrs)",null);
                //return false;
            }
            for (int iRoot=0; iRoot<numRootBez; iRoot++)
            {
                Param parBez=roots[iRoot];
                if (bez.IsEvaluableStrict(parBez))
                {
                    Param parLrs=Equation.Evaluate(parBez.Val,
                        cfBez[2].Dot(tang), cfBez[1].Dot(tang),
                        (cfBez[0]-cfLrs[0]).Dot(tang))/(cfLrs[1].Dot(tang));
                    if (lrs.IsEvaluableStrict(parLrs))
                    {
                        IntersD0 inters=new IntersD0(parBez,parLrs,
                            0.5*(lrs.Evaluate(parLrs.Val)+bez.Evaluate(parBez.Val)),
                            false);
                        linters.Add(inters);
                    }
                }
            }
            return true;
        }
Beispiel #18
0
        public static bool AuxIntersectBB(SegD seg, Bez2D bez,
            InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            // both seg & bez are irreducable !!!
            if (linters==null)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(seg,bez)","Null argument");
            }
            
            bool connectAB = ((icAB!=null)&&(icAB.IsConnect));
            bool connectBA = ((icBA!=null)&&(icBA.IsConnect));
            if ((connectBA)&&(!connectAB)) 
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(seg,bez)",null);
                //return false;
            }
            bool connect=connectAB||connectBA;

            if (!connect)
            {
                int numIntersBefore=linters.Count;
                if (!Inters.AuxIntersectBL(bez,seg,linters))
                    return false;
                linters.ParamSwap(numIntersBefore);
                return true;
            }

            // bez and seg are connected, => connectAB=true
            Param parM;
            if (bez.IsSelfInters(out parM))
            {
                if (connectBA) // both ends are connected
                {
                    // parM!=Infinity - otherwise the seg is degenerated
                    double valM=parM.Val;
                    IntersD1 inters;
                    if (valM>1)
                    {
                        inters=new IntersD1(0,1,
                            1,1/(2*valM-1),seg,true);
                    }
                    else
                    {
                        inters=new IntersD1(0,1,
                            1,(2*valM)/(2*valM-1),seg,true);
                    }
                    linters.Add(inters);
                    return true;
                }
                if (icAB.IsTangent)
                {
                    return true; // no additional intersections
                }
                else
                {
                    SegD segSupp=bez.SupportFlat();
                    InfoInters inters;
                    if (!Inters.IntersectLL(seg,segSupp,out inters))
                        return false;
                    if (inters==null)
                        return true;
                    inters.ParamInvalidateBezSI();
                    int numIntersBefore=linters.Count;
                    linters.Add(inters);
                    /*
                     *    CLEAN END-POINT if the Bezier does not return to it
                     */
                    bool coversBezStart=bez.CoversEndPoint(true);
                    if (!coversBezStart)
                    {
                        linters.CleanEndPointBezSI(bez.Start,numIntersBefore);
                    }
                    return true;
                }
            }
            
            //    bezier is NOT self-intersecting
            if (connectBA)    
                return true;    // no additional intersections
            if (icAB.IsTangent)
                return true;    // no additional intersections
            
            //    seg & bez are connected and not-tangent,=>
            //    at most one additional point of intersection
            VecD[] cfSeg, cfBez; 
            seg.PowerCoeff(out cfSeg); 
            bez.PowerCoeff(out cfBez);
            VecD tang=(seg as LCurve).DirTang;
            VecD norm=(seg as LCurve).DirNorm;

            // connected but not-tangent: one
            double[] rootsBez;
            int numRootBez;
            Equation.RootsReal(cfBez[2].Dot(norm),cfBez[1].Dot(norm),
                    out numRootBez, out rootsBez); 
            if (numRootBez==Equation.NumRootInfinite)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(seg,bez)",null);
                //return false;
            }
            if (rootsBez==null)
                return true;
            Param parBez=rootsBez[0];
            if (bez.IsEvaluableStrict(parBez))
            {
                double valBez=parBez.Val;
                Param parSeg=1+valBez*(cfBez[2].Dot(tang)*valBez+cfBez[1].Dot(tang))/cfSeg[1].Dot(tang);
                if (seg.IsEvaluableStrict(parSeg)) // ??? && (parSeg!=1)
                {
                    IntersD0 inters=new IntersD0(parSeg,parBez,
                        0.5*(seg.Evaluate(parSeg)+bez.Evaluate(parBez)),false);
                    linters.Add(inters);
                }
            }
            return true;
        }
Beispiel #19
0
        public static bool AuxIntersectBB(DegenD degen, Bez2D bez,
            InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            if (linters==null)
            {
                throw new ExceptionGMath("Intersect","AuxIntersectBB(degen,bez)","Null argument");
            }
            
            // no reduction !!
            
            bool connectAB = ((icAB!=null)&&(icAB.IsConnect));
            bool connectBA = ((icBA!=null)&&(icBA.IsConnect));
            bool connect=connectAB||connectBA;
            if (connect)
            {
                return true;
            }

            // bbox check
            if (!bez.BBox.Contains(degen.Cp))
                return true;

            Param[] pars;
            VecD pnt;
            if (!degen.Cp.ProjectGeneral(bez,out pars, out pnt))
                return false;
            if (degen.Cp.Dist(pnt)<MConsts.EPS_DEC)
            {
                Param parM;
                bool isSelfInters=bez.IsSelfInters(out parM);
                for (int iPar=0; iPar<pars.Length; iPar++)
                {
                    IntersD0 inters=new IntersD0(Param.Degen,pars[iPar],pnt,isSelfInters);
                    linters.Add(inters);
                }
            }
            return true;
        }
Beispiel #20
0
        public static bool AuxIntersectBB(SegD seg, Bez2D bez,
                                          InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            // both seg & bez are irreducable !!!
            if (linters == null)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(seg,bez)", "Null argument");
            }

            bool connectAB = ((icAB != null) && (icAB.IsConnect));
            bool connectBA = ((icBA != null) && (icBA.IsConnect));

            if ((connectBA) && (!connectAB))
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(seg,bez)", null);
                //return false;
            }
            bool connect = connectAB || connectBA;

            if (!connect)
            {
                int numIntersBefore = linters.Count;
                if (!Inters.AuxIntersectBL(bez, seg, linters))
                {
                    return(false);
                }
                linters.ParamSwap(numIntersBefore);
                return(true);
            }

            // bez and seg are connected, => connectAB=true
            Param parM;

            if (bez.IsSelfInters(out parM))
            {
                if (connectBA) // both ends are connected
                {
                    // parM!=Infinity - otherwise the seg is degenerated
                    double   valM = parM.Val;
                    IntersD1 inters;
                    if (valM > 1)
                    {
                        inters = new IntersD1(0, 1,
                                              1, 1 / (2 * valM - 1), seg, true);
                    }
                    else
                    {
                        inters = new IntersD1(0, 1,
                                              1, (2 * valM) / (2 * valM - 1), seg, true);
                    }
                    linters.Add(inters);
                    return(true);
                }
                if (icAB.IsTangent)
                {
                    return(true); // no additional intersections
                }
                else
                {
                    SegD       segSupp = bez.SupportFlat();
                    InfoInters inters;
                    if (!Inters.IntersectLL(seg, segSupp, out inters))
                    {
                        return(false);
                    }
                    if (inters == null)
                    {
                        return(true);
                    }
                    inters.ParamInvalidateBezSI();
                    int numIntersBefore = linters.Count;
                    linters.Add(inters);

                    /*
                     *    CLEAN END-POINT if the Bezier does not return to it
                     */
                    bool coversBezStart = bez.CoversEndPoint(true);
                    if (!coversBezStart)
                    {
                        linters.CleanEndPointBezSI(bez.Start, numIntersBefore);
                    }
                    return(true);
                }
            }

            //    bezier is NOT self-intersecting
            if (connectBA)
            {
                return(true);    // no additional intersections
            }
            if (icAB.IsTangent)
            {
                return(true);    // no additional intersections
            }
            //    seg & bez are connected and not-tangent,=>
            //    at most one additional point of intersection
            VecD[] cfSeg, cfBez;
            seg.PowerCoeff(out cfSeg);
            bez.PowerCoeff(out cfBez);
            VecD tang = (seg as LCurve).DirTang;
            VecD norm = (seg as LCurve).DirNorm;

            // connected but not-tangent: one
            double[] rootsBez;
            int      numRootBez;

            Equation.RootsReal(cfBez[2].Dot(norm), cfBez[1].Dot(norm),
                               out numRootBez, out rootsBez);
            if (numRootBez == Equation.NumRootInfinite)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(seg,bez)", null);
                //return false;
            }
            if (rootsBez == null)
            {
                return(true);
            }
            Param parBez = rootsBez[0];

            if (bez.IsEvaluableStrict(parBez))
            {
                double valBez = parBez.Val;
                Param  parSeg = 1 + valBez * (cfBez[2].Dot(tang) * valBez + cfBez[1].Dot(tang)) / cfSeg[1].Dot(tang);
                if (seg.IsEvaluableStrict(parSeg)) // ??? && (parSeg!=1)
                {
                    IntersD0 inters = new IntersD0(parSeg, parBez,
                                                   0.5 * (seg.Evaluate(parSeg) + bez.Evaluate(parBez)), false);
                    linters.Add(inters);
                }
            }
            return(true);
        }
Beispiel #21
0
        /*
         *        INTERSECT: (LCurve, LCurve)
         *                - both curves are supposed to be NON-DEGENERATED
         */
        
        public static bool IntersectLL(LCurve lrsA, LCurve lrsB,
            out InfoInters inters)
        {
            inters=null;
            if ((lrsA.IsDegen)||(lrsB.IsDegen))
            {
                throw new ExceptionGMath("Intersect","IntersectLL(lrs,lrs)",null);
            }

            VecD a0=lrsA.Start;
            VecD a1=lrsA.End;
            VecD b0=lrsB.Start;
            VecD b1=lrsB.End;
            VecD dirA=lrsA.DirTang;
            VecD dirB=lrsB.DirTang;
            double det = dirA.Cross(dirB);

            // lrsA and lrsB are not parallel
            if (Math.Abs(det)>MConsts.EPS_DEC) 
            {
                double lenA = (a1-a0).Norm;
                double lenB = (b1-b0).Norm;
                VecD diff = b0-a0;
                Param parA = (diff.Cross(dirB))/(det*lenA);
                Param parB = (diff.Cross(dirA))/(det*lenB);
                if (lrsA.IsEvaluableStrict(parA)&&lrsB.IsEvaluableStrict(parB))
                {
                    VecD pnt = 0.5*(lrsA.Evaluate(parA)+lrsB.Evaluate(parB));
                    inters=new IntersD0(parA,parB,pnt,false);
                }
                return true;
            }

            // lrsA and lrsB are parallel
            LineD lineB=new LineD(lrsB);
            Param paramBInvA0, paramBInvA1;
            VecD pntProjA0, pntProjA1;
            a0.Project(lineB, out paramBInvA0, out pntProjA0);
            a1.Project(lineB, out paramBInvA1, out pntProjA1);
            double distA0=a0.Dist(pntProjA0);
            double distA1=a1.Dist(pntProjA1);

            if ((distA0<MConsts.EPS_DEC)||(distA1<MConsts.EPS_DEC))
            {
                // lrsA and lrsB are colinear
                Param.TypeParam typeA0=lrsB.ParamClassify(paramBInvA0);
                Param.TypeParam typeA1=lrsB.ParamClassify(paramBInvA1);
                int mult=(int)typeA0*(int)typeA1;

                if (mult==4)
                {
                    return true;
                }
                else if (mult==1) 
                {
                    throw new ExceptionGMath("Intersect","IntersectLL(lrs,lrs)",null); // lrsA is degenerated
                    //return false;
                }
                else if (mult==2)
                {
                    if ((typeA0==Param.TypeParam.Start)&&
                        (typeA1==Param.TypeParam.Before))
                    {
                        inters=new IntersD0(0,0,a0,false);
                    }
                    if ((typeA0==Param.TypeParam.Before)&&
                        (typeA1==Param.TypeParam.Start)) 
                    {
                        inters=new IntersD0(1,0,a1,false);
                    }
                    if ((typeA0==Param.TypeParam.End)&&
                        (typeA1==Param.TypeParam.After)) 
                    {
                        inters=new IntersD0(0,1,a0,false);
                    }
                    if ((typeA0==Param.TypeParam.After)&&
                        (typeA1==Param.TypeParam.End))
                    {
                        inters=new IntersD0(1,1,a1,false);
                    }
                    return true;
                }
                else if (mult<=0)
                {
                    return (Inters.RefineIntersLLD1(lrsA,lrsB,out inters));
                }
            }
            
            return true;
        }
Beispiel #22
0
        public static bool AuxIntersectBB(Bez2D bezA, Bez2D bezB,
                                          InfoConnect icAB, InfoConnect icBA, ListInfoInters linters)
        {
            // bezA and bezB are irreducable !!!

            bool connectAB = ((icAB != null) && (icAB.IsConnect));
            bool connectBA = ((icBA != null) && (icBA.IsConnect));

            if ((connectBA) && (!connectAB))
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
            }
            bool connect = connectAB || connectBA;

            Param parM;
            bool  isSelfIntersA = bezA.IsSelfInters(out parM);
            bool  isSelfIntersB = bezB.IsSelfInters(out parM);

            if (isSelfIntersA || isSelfIntersB)
            {
                BCurve curveA = bezA;
                if (isSelfIntersA)
                {
                    curveA = bezA.SupportFlat();
                }
                BCurve curveB = bezB;
                if (isSelfIntersB)
                {
                    curveB = bezB.SupportFlat();
                }
                int numIntersBefore = linters.Count;
                Inters.IntersectBB(curveA, curveB, null, null, linters);

                /*
                 *    CLEAN END-POINT if the curve does not return to it
                 */
                if ((connectAB) && (!connectBA))
                {
                    bool coversA1 = false;
                    bool coversB0 = false;
                    if (isSelfIntersA)
                    {
                        coversA1 = bezA.CoversEndPoint(false);
                    }
                    if (isSelfIntersB)
                    {
                        coversB0 = bezB.CoversEndPoint(true);
                    }
                    if ((!coversA1) && (!coversB0))
                    {
                        linters.CleanEndPointBezSI(bezA.End, numIntersBefore);
                    }
                }
                linters.ParamInvalidateBezSI(numIntersBefore);
                return(true);
            }

            // test for 1-dimensional intersection of supports
            bool  isB0OnA, isB2OnA;
            Param paramAInvB0, paramAInvB2;

            if (!bezB.Cp(0).InverseOn(bezA, out isB0OnA, out paramAInvB0))
            {
                return(false);
            }
            if (!bezB.Cp(2).InverseOn(bezA, out isB2OnA, out paramAInvB2))
            {
                return(false);
            }
            if ((isB0OnA) && (isB2OnA))
            {
                bool  areCoincide = true;
                Param par;
                for (int i = 1; i <= 3; i++)
                {
                    //    evaluate bezB at paramaters 1/4, 1/2, 3/4 and check
                    //    whether the points lie on bezA [-Infinity,Infinity]
                    VecD pnt = bezB.Evaluate(0.25 * i);
                    if (!pnt.InverseOn(bezA, out areCoincide, out par))
                    {
                        return(false);
                    }
                    if (!areCoincide)
                    {
                        break;
                    }
                }
                if (areCoincide)
                {
                    Param.TypeParam typeB0 = bezA.ParamClassify(paramAInvB0);
                    Param.TypeParam typeB2 = bezA.ParamClassify(paramAInvB2);
                    int             mult   = (int)typeB0 * (int)typeB2;

                    if (mult == 4)
                    {
                        return(true); // no intersections
                    }
                    else if (mult == 1)
                    {
                        // bezB is degenerated
                        throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                        //return false;
                    }
                    else if (mult == 2)
                    {
                        // 0-dimentional connection at the end point
                        if ((typeB0 == Param.TypeParam.Start) &&
                            (typeB2 == Param.TypeParam.Before))
                        {
                            if (connect)
                            {
                                throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                                //return false;
                            }
                            IntersD0 inters = new IntersD0(0, 0, bezB.Start, false);
                            linters.Add(inters);
                            return(true);
                        }
                        if ((typeB0 == Param.TypeParam.Before) &&
                            (typeB2 == Param.TypeParam.Start))
                        {
                            if (connect)
                            {
                                throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                                //return false;
                            }
                            IntersD0 inters = new IntersD0(1, 0, bezB.End, false);
                            linters.Add(inters);
                            return(true);
                        }
                        if ((typeB0 == Param.TypeParam.End) &&
                            (typeB2 == Param.TypeParam.After))
                        {
                            if (!connect)
                            {
                                IntersD0 inters = new IntersD0(0, 1, bezB.Start, false);
                                linters.Add(inters);
                                return(true);
                            }
                            return(true);
                        }
                        if ((typeB0 == Param.TypeParam.After) &&
                            (typeB2 == Param.TypeParam.End))
                        {
                            if (connect)
                            {
                                throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                                //return false;
                            }
                            IntersD0 inters = new IntersD0(1, 1, bezB.End, false);
                            linters.Add(inters);
                            return(true);
                        }
                    }
                    else if (mult <= 0)
                    {
                        InfoInters inters;
                        Inters.RefineIntersBBD1(bezA, bezB, out inters);
                        linters.Add(inters);
                        return(true);
                    }
                    throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                    //return false;
                }
            }

            /*
             *        INTERSECTION IS 0-DIMENTIONAL AT MOST
             */
            VecD[] cfA, cfB;
            bezA.PowerCoeff(out cfA);
            bezB.PowerCoeff(out cfB);

            Param parA, parB;
            int   numRootB;

            double[] rootsB;
            double   kappa = cfA[2].Cross(cfA[1]);

            // bezA and bezB are non-degenerated and consequent
            if (connectAB)
            {
                if (bezA.End != bezB.Start)
                {
                    throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                    //return false;
                }

                if (connectBA)
                {
                    // both ends are connected
                    if (bezA.Start != bezB.End)
                    {
                        throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                        //return false;
                    }

                    if (icAB.IsTangent || icBA.IsTangent)
                    {
                        // tangent connection - no additional intersections
                        return(true);
                    }

                    double   crossA2B2 = cfA[2].Cross(cfB[2]);
                    double[] cfEqn     = { kappa *(kappa + 2 * crossA2B2 + cfA[1].Cross(cfB[2])),
                                           -crossA2B2 * (2 * kappa + crossA2B2),
                                           crossA2B2 *crossA2B2 };
                    Equation.RootsReal(cfEqn[2], cfEqn[1], cfEqn[0],
                                       out numRootB, out rootsB);
                    if (numRootB == Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                        //return false;
                    }
                    if (rootsB != null)
                    {
                        for (int iRoot = 0; iRoot < numRootB; iRoot++)
                        {
                            parB = rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA = 1.0 +
                                       parB.Val * (cfA[2].Cross(cfB[2]) * parB.Val +
                                                   cfA[2].Cross(cfB[1])) / kappa;
                                if (bezA.IsEvaluableStrict(parA) /*&& (parA!=1.)*/)
                                {
                                    IntersD0 inters = new IntersD0(parA, parB,
                                                                   0.5 * (bezA.Evaluate(parA) + bezB.Evaluate(parB)),
                                                                   false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }

                    return(true);
                }

                // consequent Bezier with one connection
                if (icAB.IsTangent)
                {
                    // tangent connection - at most 2 additional intersections
                    double[] cfEqn = { kappa *(kappa - cfB[2].Cross(cfB[1])),
                                       2 * cfA[2].Cross(cfB[2]) * kappa,
                                       cfA[2].Cross(cfB[2]) * cfA[2].Cross(cfB[2]) };
                    Equation.RootsReal(cfEqn[2], cfEqn[1], cfEqn[0],
                                       out numRootB, out rootsB);
                    if (numRootB == Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                        //return false;
                    }
                    if (rootsB != null)
                    {
                        for (int iRoot = 0; iRoot < numRootB; iRoot++)
                        {
                            parB = rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA = 1 +
                                       parB.Val * (cfA[2].Cross(cfB[2]) * parB.Val +
                                                   cfA[2].Cross(cfB[1])) / kappa;
                                if (bezA.IsEvaluableStrict(parA) /*&&(parA!=1)*/)
                                {
                                    IntersD0 inters = new IntersD0(parA, parB,
                                                                   0.5 * (bezA.Evaluate(parA) + bezB.Evaluate(parB)),
                                                                   false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }
                    return(true);
                }
                else
                {
                    // non-tangent connection - at most 3 additional intersections
                    double[] cfEqn = { kappa *(2 * cfA[2].Cross(cfB[1]) + cfA[1].Cross(cfB[1])),
                                       cfA[2].Cross(cfB[1]) * cfA[2].Cross(cfB[1]) +
                                       kappa * (2 * cfA[2].Cross(cfB[2]) + cfA[1].Cross(cfB[2])),
                                       2 * cfA[2].Cross(cfB[2]) * cfA[2].Cross(cfB[1]),
                                       cfA[2].Cross(cfB[2]) * cfA[2].Cross(cfB[2]) };
                    Equation.RootsReal(cfEqn[3], cfEqn[2], cfEqn[1], cfEqn[0],
                                       out numRootB, out rootsB);
                    if (numRootB == Equation.NumRootInfinite)
                    {
                        throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                        //return false;
                    }
                    if (rootsB != null)
                    {
                        for (int iRoot = 0; iRoot < numRootB; iRoot++)
                        {
                            parB = rootsB[iRoot];
                            if (bezB.IsEvaluableStrict(parB))
                            {
                                parA = 1 +
                                       parB.Val * (cfA[2].Cross(cfB[2]) * parB +
                                                   cfA[2].Cross(cfB[1])) / kappa;
                                if (bezA.IsEvaluableStrict(parA) /*&&(parA!=1)*/)
                                {
                                    IntersD0 inters = new IntersD0(parA, parB,
                                                                   0.5 * (bezA.Evaluate(parA) + bezB.Evaluate(parB)),
                                                                   false);
                                    linters.Add(inters);
                                }
                            }
                        }
                    }
                    return(true);
                }
            }

            // bezA and bezB are non-degenerated, non-consequent curves
            bool isSwappedAB = false;

            if (Math.Abs(cfA[2].Cross(cfA[1])) < Math.Abs(cfB[2].Cross(cfB[1])))
            {
                kappa       = cfB[2].Cross(cfB[1]);
                isSwappedAB = true;
                VecD tmp;
                for (int i = 0; i < 3; i++)
                {
                    tmp = cfA[i]; cfA[i] = cfB[i]; cfB[i] = tmp;
                }
            }
            double[] e = { cfA[2].Cross(cfB[0] - cfA[0]),
                           cfA[2].Cross(cfB[1]),
                           cfA[2].Cross(cfB[2]) };
            double[] f = { (cfB[0] - cfA[0]).Cross(cfA[1]),
                           cfB[1].Cross(cfA[1]),
                           cfB[2].Cross(cfA[1]) };
            Equation.RootsReal(e[2] * e[2],
                               2 * e[2] * e[1],
                               e[1] * e[1] + 2 * e[2] * e[0] - kappa * f[2],
                               2 * e[1] * e[0] - kappa * f[1],
                               e[0] * e[0] - kappa * f[0],
                               out numRootB, out rootsB);

            if (numRootB == Equation.NumRootInfinite)
            {
                throw new ExceptionGMath("Intersect", "AuxIntersectBB(bez,bez)", null);
                //return false;
            }
            if (rootsB != null)
            {
                for (int iRoot = 0; iRoot < numRootB; iRoot++)
                {
                    parB = rootsB[iRoot];
                    parA = Equation.Evaluate(parB.Val, e[2], e[1], e[0]) / kappa;
                    if (isSwappedAB)
                    {
                        Param parTmp;
                        parTmp = parA;
                        parA   = parB;
                        parB   = parTmp;
                    }
                    if (bezA.IsEvaluableStrict(parA) && bezB.IsEvaluableStrict(parB))
                    {
                        IntersD0 inters = new IntersD0(parA, parB,
                                                       0.5 * (bezA.Evaluate(parA) + bezB.Evaluate(parB)),
                                                       false);
                        linters.Add(inters);
                    }
                }
            }
            return(true);
        }
Beispiel #23
0
        public bool RayParity(RayD ray, CParam parStartRay,
                              out MConsts.TypeParity typeParity)
        {
            /*
             *        ASSUMPTIONS
             *        INPUT:
             *            -    (parStartRay==null) is the ray does not start at
             *                the contour
             *        RETURN VALUE;
             *            -    (false) in case of real failure;
             *                (true)+(typeParity==Undef) in unclear cases
             *
             */
            typeParity = MConsts.TypeParity.Undef;
            ListInfoInters linters = new ListInfoInters();

            bool isStartIntersFound = false;

            for (int pozKnot = 0; pozKnot < this.NumKnot; pozKnot++)
            {
                BCurve curve = this.CurveByPoz(pozKnot);
                if (curve != null)
                {
                    Knot knot            = this.KnotByPoz(pozKnot);
                    int  numIntersBefore = linters.Count;
                    if (!Inters.IntersectBL(curve, ray, linters))
                    {
                        linters.ClearDestroy();
                        return(false);
                    }
                    int numIntersAfter = linters.Count;
                    if (numIntersAfter != numIntersBefore)
                    {
                        InfoInters inters;
                        if ((curve.IsDegen) || (curve.IsSelfInters(out inters)))
                        {
                            linters.ClearDestroy();
                            return(true);
                        }
                    }
                    bool isRayStartOnCurve = ((parStartRay != null) &&
                                              (parStartRay.IndKnot == knot.IndexKnot));

                    for (int iInters = numIntersBefore; iInters < numIntersAfter; iInters++)
                    {
                        InfoInters inters = linters[iInters] as InfoInters;
                        if (inters.Dim == InfoInters.TypeDim.Dim1)
                        {
                            linters.ClearDestroy();
                            return(true);
                        }
                        IntersD0 intersD0    = inters as IntersD0;
                        double   parValCurve = intersD0.Ipi.Par(0).Val;
                        double   parValRay   = intersD0.Ipi.Par(1).Val;
                        if (Math.Abs(parValRay) < MConsts.EPS_DEC)
                        {
                            if ((!isRayStartOnCurve) || (isRayStartOnCurve && isStartIntersFound))
                            {
                                linters.ClearDestroy();
                                return(true);
                            }
                            isStartIntersFound = true;
                        }
                        if ((Math.Abs(parValCurve) < MConsts.EPS_DEC_WEAK) ||
                            (Math.Abs(1.0 - parValCurve) < MConsts.EPS_DEC_WEAK))
                        {
                            linters.ClearDestroy();
                            return(true);
                        }

                        VecD dirTangCurve = curve.DirTang(parValCurve);
                        VecD dirTangRay   = (ray as LCurve).DirTang;
                        if ((dirTangCurve == null) || (dirTangRay == null))
                        {
                            linters.ClearDestroy();
                            return(true);
                        }
                        if (Math.Abs(dirTangRay.Cross(dirTangCurve)) < MConsts.EPS_DEC_WEAK)
                        {
                            linters.ClearDestroy();
                            return(true);
                        }
                    }
                    if ((isRayStartOnCurve) && (!isStartIntersFound))
                    {
                        linters.ClearDestroy();
                        return(true);
                    }
                }
            }
            int numIntersAll = (isStartIntersFound)? linters.Count - 1: linters.Count;

            typeParity = (numIntersAll % 2 == 0)? MConsts.TypeParity.Even: MConsts.TypeParity.Odd;
            linters.ClearDestroy();
            return(true);
        }