50 #if !defined(G4GEOM_USE_UGENERICTRAP)
76 const G4int G4GenericTrap::fgkNofVertices = 8;
77 const G4double G4GenericTrap::fgkTolerance = 1E-3;
82 const std::vector<G4TwoVector>& vertices )
84 fRebuildPolyhedron(false),
101 G4String errorDescription =
"InvalidSetup in \" ";
102 errorDescription +=
name;
103 errorDescription +=
"\"";
109 if (
G4int(vertices.size()) != fgkNofVertices )
111 G4Exception(
"G4GenericTrap::G4GenericTrap()",
"GeomSolids0002",
119 G4Exception(
"G4GenericTrap::G4GenericTrap()",
"GeomSolids0002",
125 if(CheckOrder(vertices))
127 for (
G4int i=0; i<fgkNofVertices; ++i) {fVertices.push_back(vertices[i]);}
131 for (
G4int i=0; i <4; ++i) {fVertices.push_back(vertices[3-i]);}
132 for (
G4int i=0; i <4; ++i) {fVertices.push_back(vertices[7-i]);}
137 for (
G4int j=0; j < 2; j++)
139 for (
G4int i=1; i<4; ++i)
142 length = (fVertices[k]-fVertices[k-1]).mag();
145 std::ostringstream message;
146 message <<
"Length segment is too small." <<
G4endl
147 <<
"Distance between " << fVertices[k-1] <<
" and "
148 << fVertices[k] <<
" is only " << length <<
" mm !";
149 G4Exception(
"G4GenericTrap::G4GenericTrap()",
"GeomSolids1001",
150 JustWarning, message,
"Vertices will be collapsed.");
151 fVertices[k]=fVertices[k-1];
158 for(
G4int i=0; i<4; i++) { fTwist[i]=0.; }
159 fIsTwisted = ComputeIsTwisted();
169 if ( !fIsTwisted ) { fTessellatedSolid = CreateTessellatedSolid(); }
177 fRebuildPolyhedron(false),
179 halfCarTolerance(0.),
183 fTessellatedSolid(0),
199 delete fTessellatedSolid;
206 fRebuildPolyhedron(false), fpPolyhedron(0),
207 halfCarTolerance(rhs.halfCarTolerance),
208 fDz(rhs.fDz), fVertices(rhs.fVertices),
209 fIsTwisted(rhs.fIsTwisted), fTessellatedSolid(0),
210 fMinBBoxVector(rhs.fMinBBoxVector), fMaxBBoxVector(rhs.fMaxBBoxVector),
211 fVisSubdivisions(rhs.fVisSubdivisions),
212 fSurfaceArea(rhs.fSurfaceArea), fCubicVolume(rhs.fCubicVolume)
214 for (
size_t i=0; i<4; ++i) { fTwist[i] = rhs.fTwist[i]; }
216 if (rhs.fTessellatedSolid && !fIsTwisted )
217 { fTessellatedSolid = CreateTessellatedSolid(); }
227 if (
this == &rhs) {
return *
this; }
235 halfCarTolerance = rhs.halfCarTolerance;
236 fDz = rhs.fDz; fVertices = rhs.fVertices;
237 fIsTwisted = rhs.fIsTwisted; fTessellatedSolid = 0;
238 fMinBBoxVector = rhs.fMinBBoxVector; fMaxBBoxVector = rhs.fMaxBBoxVector;
239 fVisSubdivisions = rhs.fVisSubdivisions;
240 fSurfaceArea = rhs.fSurfaceArea; fCubicVolume = rhs.fCubicVolume;
242 for (
size_t i=0; i<4; ++i) { fTwist[i] = rhs.fTwist[i]; }
244 if (rhs.fTessellatedSolid && !fIsTwisted )
245 {
delete fTessellatedSolid; fTessellatedSolid = CreateTessellatedSolid(); }
257 const std::vector<G4TwoVector>& poly)
const
263 for (
G4int i = 0; i < 4; i++)
267 cross = (p.
x()-poly[i].x())*(poly[j].y()-poly[i].y())-
268 (p.
y()-poly[i].y())*(poly[j].
x()-poly[i].x());
270 len2=(poly[i]-poly[j]).mag2();
273 if(cross*cross<=len2*halfCarTolerance*halfCarTolerance)
282 if (poly[j].
x() > poly[i].x())
291 if ( p.
x() > poly[iMax].x()+halfCarTolerance
292 || p.
x() < poly[iMin].x()-halfCarTolerance )
297 if (poly[j].y() > poly[i].y())
307 if ( p.
y() > poly[iMax].y()+halfCarTolerance
308 || p.
y() < poly[iMin].y()-halfCarTolerance )
313 if ( poly[iMax].
x() != poly[iMin].x() )
315 test = (p.
x()-poly[iMin].x())/(poly[iMax].
x()-poly[iMin].x())
316 * (poly[iMax].y()-poly[iMin].y())+poly[iMin].y();
325 if( (test>=(poly[iMin].y()-halfCarTolerance))
326 && (test<=(poly[iMax].y()+halfCarTolerance)) )
335 else if (cross<0.) {
return kOutside; }
347 if ( (std::fabs(p.
x()-poly[0].x())+std::fabs(p.
y()-poly[0].y())) > halfCarTolerance )
362 if ( fTessellatedSolid )
364 return fTessellatedSolid->
Inside(p);
369 std::vector<G4TwoVector> xy;
371 if (std::fabs(p.
z()) <= fDz+halfCarTolerance)
376 for (
G4int i=0; i<4; i++)
378 xy.push_back(fVertices[i+4]+cf*( fVertices[i]-fVertices[i+4]));
381 innew=InsidePolygone(p,xy);
385 if(std::fabs(p.
z()) > fDz-halfCarTolerance) { innew=
kSurface; }
399 if ( fTessellatedSolid )
406 p0, p1, p2, r1, r2, r3, r4;
407 G4int noSurfaces = 0;
411 distz = fDz-std::fabs(p.
z());
412 if (distz < halfCarTolerance)
428 std:: vector<G4TwoVector> vertices;
430 for (
G4int i=0; i<4; i++)
432 vertices.push_back(fVertices[i+4]+cf*(fVertices[i]-fVertices[i+4]));
437 for (
G4int q=0; q<4; q++)
456 p2=
G4ThreeVector(fVertices[(q+1)%4].
x(),fVertices[(q+1)%4].y(),-fDz);
460 p2=
G4ThreeVector(fVertices[(q+1)%4+4].
x(),fVertices[(q+1)%4+4].y(),fDz);
463 lnorm = (p1-p0).cross(p2-p0);
464 lnorm = lnorm.
unit();
465 if(zPlusSide) { lnorm=-lnorm; }
474 G4double proj=(p-p0).dot(p2-p0)/normP;
475 if(proj<0) { proj=0; }
476 if(proj>normP) { proj=normP; }
482 r1=r1+proj*(r2-r1)/normP;
483 r3=r3+proj*(r4-r3)/normP;
490 distxy=std::fabs((p0-p).dot(lnorm));
491 if ( distxy<halfCarTolerance )
497 sumnorm=sumnorm+lnorm;
511 if ( noSurfaces == 0 )
514 G4Exception(
"G4GenericTrap::SurfaceNormal(p)",
"GeomSolids1002",
520 else if ( noSurfaces == 1 ) { ; }
521 else { sumnorm = sumnorm.unit(); }
529 const G4int ipl )
const
534 if ( fTessellatedSolid )
550 u=fVertices[i+4]+cf*(fVertices[i]-fVertices[i+4]);
551 v=fVertices[j+4]+cf*(fVertices[j]-fVertices[j+4]);
557 if (std::fabs(distz)<halfCarTolerance)
572 if ( std::fabs(p.
z()+fDz) > halfCarTolerance )
581 lnorm=-(p1-p0).cross(p2-p0);
582 if (distz>-halfCarTolerance) { lnorm=-lnorm.
unit(); }
583 else { lnorm=lnorm.
unit(); }
592 G4double proj=(p-p0).dot(p2-p0)/normP;
593 if (proj<0) { proj=0; }
594 if (proj>normP) { proj=normP; }
600 r1=r1+proj*(r2-r1)/normP;
601 r3=r3+proj*(r4-r3)/normP;
615 const G4int ipl)
const
627 xa=fVertices[ipl].x();
628 ya=fVertices[ipl].y();
629 xb=fVertices[ipl+4].x();
630 yb=fVertices[ipl+4].y();
633 xd=fVertices[4+j].x();
634 yd=fVertices[4+j].y();
651 G4double a = (dtx*v.
y()-dty*v.
x()+(tx1*ty2-tx2*ty1)*v.
z())*v.
z();
652 G4double b = dxs*v.
y()-dys*v.
x()+(dtx*p.
y()-dty*p.
x()+ty2*xs1-ty1*xs2
653 + tx1*ys2-tx2*ys1)*v.
z();
665 if (q>-halfCarTolerance)
667 if (q<halfCarTolerance)
669 if (NormalToPlane(p,ipl).dot(v)<=0)
678 if (std::fabs(zi)<fDz)
686 zi = (xp-x1)*(xp-x2)+(yp-y1)*(yp-y2);
687 if (zi<=halfCarTolerance) {
return q; }
695 if (a>0) { q=0.5*(-b-std::sqrt(d))/a; }
696 else { q=0.5*(-b+std::sqrt(d))/a; }
700 if (q>-halfCarTolerance)
702 if(q<halfCarTolerance)
704 if (NormalToPlane(p,ipl).
dot(v)<=0)
710 if (a>0) { q=0.5*(-b+std::sqrt(d))/a; }
711 else { q=0.5*(-b-std::sqrt(d))/a; }
712 if (q<=halfCarTolerance) {
return kInfinity; }
718 if (std::fabs(zi)<fDz)
726 zi = (xp-x1)*(xp-x2)+(yp-y1)*(yp-y2);
727 if (zi<=halfCarTolerance) {
return q; }
730 if (a>0) { q=0.5*(-b+std::sqrt(d))/a; }
731 else { q=0.5*(-b-std::sqrt(d))/a; }
735 if (q>-halfCarTolerance)
737 if(q<halfCarTolerance)
739 if (NormalToPlane(p,ipl).
dot(v)<=0)
745 if (a>0) { q=0.5*(-b-std::sqrt(d))/a; }
746 else { q=0.5*(-b+std::sqrt(d))/a; }
747 if (q<=halfCarTolerance) {
return kInfinity; }
753 if (std::fabs(zi)<fDz)
761 zi = (xp-x1)*(xp-x2)+(yp-y1)*(yp-y2);
762 if (zi<=halfCarTolerance) {
return q; }
775 if ( fTessellatedSolid )
789 dist[i]=DistToPlane(p, v, i);
795 if (std::fabs(p.
z())>fDz-halfCarTolerance)
802 dist[4] = (fDz-p.
z())/v.
z();
806 dist[4] = (-fDz-p.
z())/v.
z();
808 if (dist[4]<-halfCarTolerance)
814 if(dist[4]<halfCarTolerance)
818 if (n.
dot(v)<0) { dist[4]=0.; }
829 if (dist[i] < distmin) { distmin = dist[i]; }
832 if (distmin<halfCarTolerance) { distmin=0.; }
844 if ( fTessellatedSolid )
851 if(safz<0) { safz=0; }
857 for (iseg=0; iseg<4; iseg++)
859 safxy = SafetyToFace(p,iseg);
860 if (safxy>safe) { safe=safxy; }
879 norm=NormalToPlane(p,iseg);
880 safe = (p-p1).dot(norm);
901 if ( (std::fabs(xa-xc)+std::fabs(ya-yc)) < halfCarTolerance )
903 xc=fVertices[j+4].x();
904 yc=fVertices[j+4].y();
910 if ( (std::fabs(xb-xc)+std::fabs(yb-yc)) < halfCarTolerance )
917 G4double c=(xb-xa)*(yc-ya)-(xc-xa)*(yb-ya);
923 t=-(a*p.
x()+b*p.
y()+c*p.
z()+d)/t;
925 if ( (t<halfCarTolerance) && (t>-halfCarTolerance) )
950 if ( fTessellatedSolid )
952 return fTessellatedSolid->
DistanceToOut(p, v, calcNorm, validNorm, n);
957 G4bool lateral_cross =
false;
958 ESide side = kUndefined;
960 if (calcNorm) { *validNorm=
true; }
964 distmin=(-fDz-p.
z())/v.
z();
971 distmin = (fDz-p.
z())/v.
z();
981 for (
G4int ipl=0; ipl<4; ipl++)
984 xa=fVertices[ipl].x();
985 ya=fVertices[ipl].y();
986 xb=fVertices[ipl+4].x();
987 yb=fVertices[ipl+4].y();
990 xd=fVertices[4+j].x();
991 yd=fVertices[4+j].y();
993 if ( ((std::fabs(xb-xd)+std::fabs(yb-yd))<halfCarTolerance)
994 || ((std::fabs(xa-xc)+std::fabs(ya-yc))<halfCarTolerance) )
996 G4double q=DistToTriangle(p,v,ipl) ;
997 if ( (q>=0) && (q<distmin) )
1018 G4double a = (dtx*v.
y()-dty*v.
x()+(tx1*ty2-tx2*ty1)*v.
z())*v.
z();
1019 G4double b = dxs*v.
y()-dys*v.
x()+(dtx*p.
y()-dty*p.
x()+ty2*xs1-ty1*xs2
1020 + tx1*ys2-tx2*ys1)*v.
z();
1021 G4double c=dxs*p.
y()-dys*p.
x()+xs1*ys2-xs2*ys1;
1031 if ((q > -halfCarTolerance) && (q < distmin))
1033 if (q < halfCarTolerance)
1035 if (NormalToPlane(p,ipl).dot(v)<0.) {
continue; }
1046 if (a > 0) { q=0.5*(-b-std::sqrt(d))/a; }
1047 else { q=0.5*(-b+std::sqrt(d))/a; }
1051 if (q > -halfCarTolerance )
1055 if(q < halfCarTolerance)
1057 if (NormalToPlane(p,ipl).
dot(v)<0.)
1059 if (a > 0) { q=0.5*(-b+std::sqrt(d))/a; }
1060 else { q=0.5*(-b-std::sqrt(d))/a; }
1061 if (( q > halfCarTolerance) && (q < distmin))
1064 lateral_cross =
true;
1071 lateral_cross =
true;
1077 if (a > 0) { q=0.5*(-b+std::sqrt(d))/a; }
1078 else { q=0.5*(-b-std::sqrt(d))/a; }
1082 if ((q > -halfCarTolerance) && (q < distmin))
1084 if (q < halfCarTolerance)
1086 if (NormalToPlane(p,ipl).
dot(v)<0.)
1088 if (a > 0) { q=0.5*(-b-std::sqrt(d))/a; }
1089 else { q=0.5*(-b+std::sqrt(d))/a; }
1090 if ( ( q > halfCarTolerance) && (q < distmin) )
1093 lateral_cross =
true;
1100 lateral_cross =
true;
1114 if (v.z()>0.) { i=4; }
1115 std::vector<G4TwoVector> xy;
1116 for (
G4int j=0; j<4; j++) { xy.push_back(fVertices[i+j]); }
1120 if (InsidePolygone(pt,xy)==
kOutside)
1131 if(v.z()>0) {side=kPZ;}
1142 *n=NormalToPlane(pt,0);
1145 *n=NormalToPlane(pt,1);
1148 *n=NormalToPlane(pt,2);
1151 *n=NormalToPlane(pt,3);
1161 std::ostringstream message;
1162 G4int oldprc = message.precision(16);
1163 message <<
"Undefined side for valid surface normal to solid." <<
G4endl
1165 <<
" p.x() = " << p.
x()/
mm <<
" mm" <<
G4endl
1166 <<
" p.y() = " << p.
y()/
mm <<
" mm" <<
G4endl
1167 <<
" p.z() = " << p.
z()/
mm <<
" mm" <<
G4endl
1168 <<
"Direction:" <<
G4endl
1169 <<
" v.x() = " << v.
x() <<
G4endl
1170 <<
" v.y() = " << v.
y() <<
G4endl
1171 <<
" v.z() = " << v.
z() <<
G4endl
1172 <<
"Proposed distance :" <<
G4endl
1173 <<
" distmin = " << distmin/
mm <<
" mm";
1174 message.precision(oldprc);
1175 G4Exception(
"G4GenericTrap::DistanceToOut(p,v,..)",
1181 if (distmin<halfCarTolerance) { distmin=0.; }
1192 if ( fTessellatedSolid )
1199 if (safz<0) { safz = 0; }
1204 for (
G4int iseg=0; iseg<4; iseg++)
1206 safxy = std::fabs(SafetyToFace(p,iseg));
1207 if (safxy < safe) { safe = safxy; }
1217 pMin = GetMinimumBBox();
1218 pMax = GetMaximumBBox();
1222 if (pMin.
x() >= pMax.
x() || pMin.
y() >= pMax.
y() || pMin.
z() >= pMax.
z())
1224 std::ostringstream message;
1225 message <<
"Bad bounding box (min >= max) for solid: "
1227 <<
"\npMin = " << pMin
1228 <<
"\npMax = " << pMax;
1249 #ifdef G4BBOX_EXTENT
1250 if (
true)
return bbox.
CalculateExtent(pAxis,pVoxelLimit,pTransform,pMin,pMax);
1254 return exist = (pMin < pMax) ?
true :
false;
1266 for (
G4int i=0; i<4; ++i)
1270 baseA[2*i].set(va.
x(),va.
y(),-dz);
1271 baseB[2*i].set(vb.
x(),vb.
y(), dz);
1273 for (
G4int i=0; i<4; ++i)
1275 G4int k1=2*i, k2=(2*i+2)%8;
1276 G4double ax = (baseA[k2].x()-baseA[k1].x());
1277 G4double ay = (baseA[k2].y()-baseA[k1].y());
1278 G4double bx = (baseB[k2].x()-baseB[k1].x());
1279 G4double by = (baseB[k2].y()-baseB[k1].y());
1281 baseA[k1+1] = (znorm < 0.0) ? baseA[k2] : baseA[k1];
1282 baseB[k1+1] = (znorm < 0.0) ? baseB[k1] : baseB[k2];
1285 std::vector<const G4ThreeVectorList *> polygons(2);
1286 polygons[0] = &baseA;
1287 polygons[1] = &baseB;
1312 G4int oldprc = os.precision(16);
1313 os <<
"-----------------------------------------------------------\n"
1314 <<
" *** Dump for solid - " <<
GetName() <<
" *** \n"
1315 <<
" =================================================== \n"
1317 <<
" half length Z: " << fDz/
mm <<
" mm \n"
1318 <<
" list of vertices:\n";
1320 for (
G4int i=0; i<fgkNofVertices; ++i )
1322 os << std::setw(5) <<
"#" << i
1323 <<
" vx = " << fVertices[i].x()/
mm <<
" mm"
1324 <<
" vy = " << fVertices[i].y()/
mm <<
" mm" <<
G4endl;
1326 os.precision(oldprc);
1337 if ( fTessellatedSolid )
1345 G4double rand,area,chose,cf,lambda0,lambda1,alfa,beta,zp;
1348 std::vector<G4ThreeVector> vertices;
1349 for (
G4int i=0; i<4;i++)
1351 vertices.push_back(
G4ThreeVector(fVertices[i].
x(),fVertices[i].y(),-fDz));
1353 for (
G4int i=4; i<8;i++)
1355 vertices.push_back(
G4ThreeVector(fVertices[i].
x(),fVertices[i].y(),fDz));
1360 G4double Surface0=GetFaceSurfaceArea(vertices[0],vertices[1],
1361 vertices[2],vertices[3]);
1362 G4double Surface1=GetFaceSurfaceArea(vertices[0],vertices[1],
1363 vertices[5],vertices[4]);
1364 G4double Surface2=GetFaceSurfaceArea(vertices[3],vertices[0],
1365 vertices[4],vertices[7]);
1366 G4double Surface3=GetFaceSurfaceArea(vertices[2],vertices[3],
1367 vertices[7],vertices[6]);
1368 G4double Surface4=GetFaceSurfaceArea(vertices[2],vertices[1],
1369 vertices[5],vertices[6]);
1370 G4double Surface5=GetFaceSurfaceArea(vertices[4],vertices[5],
1371 vertices[6],vertices[7]);
1373 area = Surface0+Surface1+Surface2+Surface3+Surface4+Surface5;
1376 if ( ( chose < Surface0)
1377 || ( chose > (Surface0+Surface1+Surface2+Surface3+Surface4)) )
1381 if(chose < Surface0)
1384 u = fVertices[ipl]; v = fVertices[j];
1385 w = fVertices[(ipl+3)%4];
1390 u = fVertices[ipl+4]; v = fVertices[j+4];
1391 w = fVertices[(ipl+3)%4+4];
1396 lambda0=alfa-lambda1;
1399 v = u+lambda0*v+lambda1*w;
1403 if (chose < Surface0+Surface1) { ipl=0; }
1404 else if (chose < Surface0+Surface1+Surface2) { ipl=1; }
1405 else if (chose < Surface0+Surface1+Surface2+Surface3) { ipl=2; }
1409 cf = 0.5*(fDz-zp)/fDz;
1410 u = fVertices[ipl+4]+cf*( fVertices[ipl]-fVertices[ipl+4]);
1411 v = fVertices[j+4]+cf*(fVertices[j]-fVertices[j+4]);
1423 if (fSurfaceArea == 0.0) {
1438 fSurfaceArea = GetFaceSurfaceArea(vertix0,vertix1,vertix2,vertix3)
1439 + GetFaceSurfaceArea(vertix1,vertix0,vertix4,vertix5)
1440 + GetFaceSurfaceArea(vertix2,vertix1,vertix5,vertix6)
1441 + GetFaceSurfaceArea(vertix3,vertix2,vertix6,vertix7)
1442 + GetFaceSurfaceArea(vertix0,vertix3,vertix7,vertix4)
1443 + GetFaceSurfaceArea(vertix7,vertix6,vertix5,vertix4);
1446 return fSurfaceArea;
1453 if (fCubicVolume == 0.0) {
1468 fCubicVolume = GetFaceCubicVolume(vertix0,vertix1,vertix2,vertix3)
1469 + GetFaceCubicVolume(vertix1,vertix0,vertix4,vertix5)
1470 + GetFaceCubicVolume(vertix2,vertix1,vertix5,vertix6)
1471 + GetFaceCubicVolume(vertix3,vertix2,vertix6,vertix7)
1472 + GetFaceCubicVolume(vertix0,vertix3,vertix7,vertix4)
1473 + GetFaceCubicVolume(vertix7,vertix6,vertix5,vertix4);
1476 return fCubicVolume;
1487 return (((p2-p0).cross(p3-p1)).mag()) / 2.;
1499 return (((p2-p0).cross(p3-p1)).dot(p0)) / 6.;
1504 G4bool G4GenericTrap::ComputeIsTwisted()
1511 G4int nv = fgkNofVertices/2;
1513 for (
G4int i=0; i<4; i++ )
1515 dx1 = fVertices[(i+1)%nv].
x()-fVertices[i].x();
1516 dy1 = fVertices[(i+1)%nv].y()-fVertices[i].y();
1517 if ( (dx1 == 0) && (dy1 == 0) ) {
continue; }
1519 dx2 = fVertices[nv+(i+1)%nv].
x()-fVertices[nv+i].x();
1520 dy2 = fVertices[nv+(i+1)%nv].y()-fVertices[nv+i].y();
1522 if ( dx2 == 0 && dy2 == 0 ) {
continue; }
1523 G4double twist_angle = std::fabs(dy1*dx2 - dx1*dy2);
1524 if ( twist_angle < fgkTolerance ) {
continue; }
1526 SetTwistAngle(i,twist_angle);
1530 twist_angle = std::acos( (dx1*dx2 + dy1*dy2)
1531 / (std::sqrt(dx1*dx1+dy1*dy1)
1532 * std::sqrt(dx2*dx2+dy2*dy2)) );
1536 std::ostringstream message;
1537 message <<
"Twisted Angle is bigger than 90 degrees - " <<
GetName()
1539 <<
" Potential problem of malformed Solid !" <<
G4endl
1540 <<
" TwistANGLE = " << twist_angle
1541 <<
"*rad for lateral plane N= " << i;
1542 G4Exception(
"G4GenericTrap::ComputeIsTwisted()",
"GeomSolids1002",
1552 G4bool G4GenericTrap::CheckOrder(
const std::vector<G4TwoVector>& vertices)
const
1557 G4bool clockwise_order=
true;
1562 for (
G4int i=0; i<4; i++)
1565 sum1 += vertices[i].x()*vertices[j].y() - vertices[j].x()*vertices[i].y();
1566 sum2 += vertices[i+4].x()*vertices[j+4].y()
1567 - vertices[j+4].x()*vertices[i+4].y();
1569 if (sum1*sum2 < -fgkTolerance)
1571 std::ostringstream message;
1572 message <<
"Lower/upper faces defined with opposite clockwise - "
1574 G4Exception(
"G4GenericTrap::CheckOrder()",
"GeomSolids0002",
1578 if ((sum1 > 0.)||(sum2 > 0.))
1580 std::ostringstream message;
1581 message <<
"Vertices must be defined in clockwise XY planes - "
1583 G4Exception(
"G4GenericTrap::CheckOrder()",
"GeomSolids1001",
1585 clockwise_order =
false;
1590 G4bool illegal_cross =
false;
1591 illegal_cross = IsSegCrossingZ(vertices[0],vertices[4],
1592 vertices[1],vertices[5]);
1596 illegal_cross = IsSegCrossingZ(vertices[2],vertices[6],
1597 vertices[3],vertices[7]);
1602 illegal_cross = IsSegCrossing(vertices[0],vertices[1],
1603 vertices[2],vertices[3]);
1607 illegal_cross = IsSegCrossing(vertices[0],vertices[3],
1608 vertices[1],vertices[2]);
1612 illegal_cross = IsSegCrossing(vertices[4],vertices[5],
1613 vertices[6],vertices[7]);
1617 illegal_cross = IsSegCrossing(vertices[4],vertices[7],
1618 vertices[5],vertices[6]);
1623 std::ostringstream message;
1624 message <<
"Malformed polygone with opposite sides - " <<
GetName();
1625 G4Exception(
"G4GenericTrap::CheckOrderAndSetup()",
1628 return clockwise_order;
1633 void G4GenericTrap::ReorderVertices(std::vector<G4ThreeVector>& vertices)
const
1637 std::vector<G4ThreeVector> oldVertices(vertices);
1639 for (
G4int i=0; i <
G4int(oldVertices.size()); ++i )
1641 vertices[i] = oldVertices[oldVertices.size()-1-i];
1655 G4double dx1,dx2,xm=0.,ym=0.,a1=0.,a2=0.,b1=0.,b2=0.;
1659 if( std::fabs(dx1) < fgkTolerance ) { stand1 =
true; }
1660 if( std::fabs(dx2) < fgkTolerance ) { stand2 =
true; }
1663 a1 = (b.
x()*a.
y()-a.
x()*b.
y())/dx1;
1668 a2 = (d.
x()*c.
y()-c.
x()*d.
y())/dx2;
1671 if (stand1 && stand2)
1675 if (std::fabs(a.
x()-c.
x())<fgkTolerance)
1679 if ( ((c.
y()-a.
y())*(c.
y()-b.
y())<-fgkTolerance)
1680 || ((d.
y()-a.
y())*(d.
y()-b.
y())<-fgkTolerance)
1681 || ((a.
y()-c.
y())*(a.
y()-d.
y())<-fgkTolerance)
1682 || ((b.
y()-c.
y())*(b.
y()-d.
y())<-fgkTolerance) ) {
return true; }
1705 if (std::fabs(b1-b2) < fgkTolerance)
1709 if (std::fabs(c.
y()-(a1+b1*c.
x())) > fgkTolerance) {
return false; }
1713 if ( ((c.
x()-a.
x())*(c.
x()-b.
x())<-fgkTolerance)
1714 || ((d.
x()-a.
x())*(d.
x()-b.
x())<-fgkTolerance)
1715 || ((a.
x()-c.
x())*(a.
x()-d.
x())<-fgkTolerance)
1716 || ((b.
x()-c.
x())*(b.
x()-d.
x())<-fgkTolerance) ) {
return true; }
1720 xm = (a1-a2)/(b2-b1);
1721 ym = (a1*b2-a2*b1)/(b2-b1);
1727 G4double check = (xm-a.
x())*(xm-b.
x())+(ym-a.
y())*(ym-b.
y());
1728 if (check > -fgkTolerance) {
return false; }
1729 check = (xm-c.
x())*(xm-d.
x())+(ym-c.
y())*(ym-d.
y());
1730 if (check > -fgkTolerance) {
return false; }
1763 (std::fabs((p4-p3).y()) <
kCarTolerance ) ) {
return false; }
1767 det = dv.
x()*v1.
y()*v2.
z()+dv.
y()*v1.
z()*v2.
x()
1768 - dv.
x()*v1.
z()*v2.
y()-dv.
y()*v1.
x()*v2.
z();
1772 temp1 = v1.
cross(v2);
1773 temp2 = (p2-p1).cross(v2);
1774 if (temp1.
dot(temp2) < 0) {
return false; }
1778 q = ((dv).cross(v2)).mag()/q;
1788 G4GenericTrap::MakeDownFacet(
const std::vector<G4ThreeVector>& fromVertices,
1795 if ( (fromVertices[ind1] == fromVertices[ind2]) ||
1796 (fromVertices[ind2] == fromVertices[ind3]) ||
1797 (fromVertices[ind1] == fromVertices[ind3]) ) {
return 0; }
1799 std::vector<G4ThreeVector> vertices;
1800 vertices.push_back(fromVertices[ind1]);
1801 vertices.push_back(fromVertices[ind2]);
1802 vertices.push_back(fromVertices[ind3]);
1806 G4ThreeVector cross=(vertices[1]-vertices[0]).cross(vertices[2]-vertices[1]);
1808 if ( cross.
z() > 0.0 )
1812 std::ostringstream message;
1813 message <<
"Vertices in wrong order - " <<
GetName();
1814 G4Exception(
"G4GenericTrap::MakeDownFacet",
"GeomSolids0002",
1824 G4GenericTrap::MakeUpFacet(
const std::vector<G4ThreeVector>& fromVertices,
1832 if ( (fromVertices[ind1] == fromVertices[ind2]) ||
1833 (fromVertices[ind2] == fromVertices[ind3]) ||
1834 (fromVertices[ind1] == fromVertices[ind3]) ) {
return 0; }
1836 std::vector<G4ThreeVector> vertices;
1837 vertices.push_back(fromVertices[ind1]);
1838 vertices.push_back(fromVertices[ind2]);
1839 vertices.push_back(fromVertices[ind3]);
1843 G4ThreeVector cross=(vertices[1]-vertices[0]).cross(vertices[2]-vertices[1]);
1845 if ( cross.
z() < 0.0 )
1849 std::ostringstream message;
1850 message <<
"Vertices in wrong order - " <<
GetName();
1851 G4Exception(
"G4GenericTrap::MakeUpFacet",
"GeomSolids0002",
1861 G4GenericTrap::MakeSideFacet(
const G4ThreeVector& downVertex0,
1869 if ( (downVertex0 == downVertex1) && (upVertex0 == upVertex1) )
1874 if ( downVertex0 == downVertex1 )
1879 if ( upVertex0 == upVertex1 )
1894 G4int nv = fgkNofVertices/2;
1895 std::vector<G4ThreeVector> downVertices;
1896 for (
G4int i=0; i<nv; i++ )
1899 fVertices[i].y(), -fDz));
1902 std::vector<G4ThreeVector> upVertices;
1903 for (
G4int i=nv; i<2*nv; i++ )
1906 fVertices[i].y(), fDz));
1912 = (downVertices[1]-downVertices[0]).cross(downVertices[2]-downVertices[1]);
1914 = (upVertices[1]-upVertices[0]).cross(upVertices[2]-upVertices[1]);
1915 if ( (cross.
z() > 0.0) || (cross1.
z() > 0.0) )
1917 ReorderVertices(downVertices);
1918 ReorderVertices(upVertices);
1924 facet = MakeDownFacet(downVertices, 0, 1, 2);
1925 if (facet) { tessellatedSolid->
AddFacet( facet ); }
1926 facet = MakeDownFacet(downVertices, 0, 2, 3);
1927 if (facet) { tessellatedSolid->
AddFacet( facet ); }
1928 facet = MakeUpFacet(upVertices, 0, 2, 1);
1929 if (facet) { tessellatedSolid->
AddFacet( facet ); }
1930 facet = MakeUpFacet(upVertices, 0, 3, 2);
1931 if (facet) { tessellatedSolid->
AddFacet( facet ); }
1935 for (
G4int i = 0; i < nv; ++i )
1937 G4int j = (i+1) % nv;
1938 facet = MakeSideFacet(downVertices[j], downVertices[i],
1939 upVertices[i], upVertices[j]);
1941 if ( facet ) { tessellatedSolid->
AddFacet( facet ); }
1946 return tessellatedSolid;
1951 void G4GenericTrap::ComputeBBox()
1956 minX = maxX = fVertices[0].x();
1957 minY = maxY = fVertices[0].y();
1959 for (
G4int i=1; i< fgkNofVertices; i++)
1961 if (minX>fVertices[i].
x()) { minX=fVertices[i].x(); }
1962 if (maxX<fVertices[i].
x()) { maxX=fVertices[i].x(); }
1963 if (minY>fVertices[i].y()) { minY=fVertices[i].y(); }
1964 if (maxY<fVertices[i].y()) { maxY=fVertices[i].y(); }
1976 if ( fTessellatedSolid )
2002 if ( fTessellatedSolid )
2018 if ( fTessellatedSolid )
2027 minVec.
y(), maxVec.
y(),
2028 minVec.
z(), maxVec.
z());
2037 if ( fTessellatedSolid )
2047 size_t nVertices, nFacets;
2049 G4int subdivisions=0;
2072 Dx = 0.5*(maxVec.
x()- minVec.
y());
2073 Dy = 0.5*(maxVec.
y()- minVec.
y());
2074 if (Dy > Dx) { Dx=Dy; }
2076 subdivisions=8*
G4int(maxTwist/(Dx*Dx*Dx)*fDz);
2077 if (subdivisions<4) { subdivisions=4; }
2078 if (subdivisions>30) { subdivisions=30; }
2081 G4int sub4=4*subdivisions;
2082 nVertices = 8+subdivisions*4;
2083 nFacets = 6+subdivisions*4;
2092 fVertices[i].y(),-fDz));
2094 for( i=0;i<subdivisions;i++)
2096 for(
G4int j=0;j<4;j++)
2098 G4TwoVector u=fVertices[j]+cf*(i+1)*( fVertices[j+4]-fVertices[j]);
2105 fVertices[i].y(),fDz));
2111 for (i=0;i<subdivisions+1;i++)
2114 polyhedron->
AddFacet(5+is,8+is,4+is,1+is);
2115 polyhedron->
AddFacet(8+is,7+is,3+is,4+is);
2116 polyhedron->
AddFacet(7+is,6+is,2+is,3+is);
2117 polyhedron->
AddFacet(6+is,5+is,1+is,2+is);
2119 polyhedron->
AddFacet(5+sub4,6+sub4,7+sub4,8+sub4);
G4Polyhedron * GetPolyhedron() const
G4int GetVisSubdivisions() const
void SetSolidClosed(const G4bool t)
static constexpr double mm
G4GenericTrap(const G4String &name, G4double halfZ, const std::vector< G4TwoVector > &vertices)
static const G4double kInfinity
CLHEP::Hep3Vector G4ThreeVector
G4VisExtent GetExtent() const
virtual void DescribeYourselfTo(G4VGraphicsScene &scene) const
double dot(const Hep3Vector &) const
G4Polyhedron * fpPolyhedron
std::vector< ExP01TrackerHit * > a
virtual G4VisExtent GetExtent() const
virtual G4double GetCubicVolume()
G4bool CalculateExtent(const EAxis pAxis, const G4VoxelLimits &pVoxelLimit, const G4AffineTransform &pTransform, G4double &pmin, G4double &pmax) const
G4GeometryType GetEntityType() const
G4TwoVector GetVertex(G4int index) const
G4double GetZHalfLength() const
virtual void AddSolid(const G4Box &)=0
#define G4MUTEX_INITIALIZER
G4ThreeVector SurfaceNormal(const G4ThreeVector &p) const
G4double GetSurfaceArea()
G4ThreeVector GetPointOnSurface() const
virtual G4double DistanceToOut(const G4ThreeVector &p) const
G4GenericTrap & operator=(const G4GenericTrap &rhs)
virtual G4Polyhedron * CreatePolyhedron() const
virtual EInside Inside(const G4ThreeVector &p) const
std::ostream & StreamInfo(std::ostream &os) const
G4bool AddFacet(G4VFacet *aFacet)
G4double GetTwistAngle(G4int index) const
G4bool CalculateExtent(const EAxis pAxis, const G4VoxelLimits &pVoxelLimits, const G4Transform3D &pTransform3D, G4double &pMin, G4double &pMax) const
G4bool BoundingBoxVsVoxelLimits(const EAxis pAxis, const G4VoxelLimits &pVoxelLimits, const G4Transform3D &pTransform3D, G4double &pMin, G4double &pMax) const
G4double DistanceToOut(const G4ThreeVector &p, const G4ThreeVector &v, const G4bool calcNorm=false, G4bool *validNorm=0, G4ThreeVector *n=0) const
G4double GetCubicVolume()
virtual G4double DistanceToIn(const G4ThreeVector &p, const G4ThreeVector &v) const
std::vector< G4ThreeVector > G4ThreeVectorList
void Extent(G4ThreeVector &pMin, G4ThreeVector &pMax) const
void AddVertex(const G4ThreeVector &v)
EInside Inside(const G4ThreeVector &p) const
void G4Exception(const char *originOfException, const char *exceptionCode, G4ExceptionSeverity severity, const char *comments)
virtual G4Polyhedron * GetPolyhedron() const
G4Polyhedron * CreatePolyhedron() const
static G4int GetNumberOfRotationSteps()
void AddFacet(const G4int iv1, const G4int iv2, const G4int iv3, const G4int iv4=0)
G4VSolid & operator=(const G4VSolid &rhs)
G4int GetNumberOfRotationStepsAtTimeOfCreation() const
static constexpr double pi
Hep3Vector cross(const Hep3Vector &) const
G4double DistanceToIn(const G4ThreeVector &p, const G4ThreeVector &v) const
virtual G4double GetSurfaceArea()
virtual G4ThreeVector GetPointOnSurface() const
G4bool fRebuildPolyhedron
virtual G4ThreeVector SurfaceNormal(const G4ThreeVector &p) const
void DescribeYourselfTo(G4VGraphicsScene &scene) const