28 #include "TLorentzVector.h" 30 #include "TDatabasePDG.h" 33 #include "TObjArray.h" 34 #include "TDecompLU.h" 45 if (!(muon->PzAtDCA()!=0))
return kFALSE;
49 param -> SetNonBendingCoor(muon->XAtDCA());
50 param -> SetBendingCoor(muon->YAtDCA());
52 param -> SetNonBendingSlope(muon->PxAtDCA()/muon->PzAtDCA());
53 param -> SetBendingSlope(muon->PyAtDCA()/muon->PzAtDCA());
54 param -> SetInverseBendingMomentum( muon->Charge() * (1./muon->PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon->PyAtDCA()/muon->PzAtDCA(),2))) );
70 if (!(muon->
PzAtDCA()!=0))
return kFALSE;
74 param -> SetNonBendingCoor(muon->
XAtDCA());
75 param -> SetBendingCoor(muon->
YAtDCA());
79 param -> SetInverseBendingMomentum( muon->
Charge() * (1./muon->
PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon->
PyAtDCA()/muon->
PzAtDCA(),2))) );
85 Double_t massMu = TDatabasePDG::Instance()->GetParticle(
"mu-")->Mass();
86 Double_t energy = TMath::Sqrt(massMu*massMu + param->
Px()*param->
Px() + param->
Py()*param->
Py() + param->
Pz()*param->
Pz());
88 kinem.SetPxPyPzE(param->
Px(), param->
Py(), param->
Pz(), energy);
102 if (!(muon->
PzAtDCA()!=0))
return kFALSE;
106 param -> SetNonBendingCoor(muon->
XAtDCA());
107 param -> SetBendingCoor(muon->
YAtDCA());
111 param -> SetInverseBendingMomentum( muon->
Charge() * (1./muon->
PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon->
PyAtDCA()/muon->
PzAtDCA(),2))) );
119 Double_t massMu = TDatabasePDG::Instance()->GetParticle(
"mu-")->Mass();
120 Double_t energy = TMath::Sqrt(massMu*massMu + param->
Px()*param->
Px() + param->
Py()*param->
Py() + param->
Pz()*param->
Pz());
122 kinem.SetPxPyPzE(param->
Px(), param->
Py(), param->
Pz(), energy);
142 param -> SetNonBendingCoor(muon->
XAtDCA());
143 param -> SetBendingCoor(muon->
YAtDCA());
147 param -> SetInverseBendingMomentum( muon->
Charge() * (1./muon->
PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon->
PyAtDCA()/muon->
PzAtDCA(),2))) );
152 Double_t startPoint = 0.;
154 Double_t r[3]={0}, z[3]={startPoint-step, startPoint, startPoint+step};
156 TVector3 **points =
new TVector3*[2];
158 for (Int_t i=0; i<3; i++) {
161 points[1] =
new TVector3(xy[0],xy[1],z[i]);
163 for (Int_t iMu=0; iMu<2; iMu++)
delete points[iMu];
166 Int_t researchDirection = 0;
168 if (r[0]>r[1] && r[1]>r[2]) researchDirection = +1;
169 else if (r[0]<r[1] && r[1]<r[2]) researchDirection = -1;
170 else if (r[0]<r[1] && r[1]>r[2]) {
171 printf(
"E-AliMFTAnalysisTools::ExtrapAODMuonToXY: Point of closest approach cannot be found (no minima)\n");
177 while (TMath::Abs(researchDirection)>0.5) {
179 if (researchDirection>0) {
182 z[2] = z[1]+researchDirection*step;
187 z[0] = z[1]+researchDirection*step;
189 if (TMath::Abs(z[0])>900.) {
190 printf(
"E-AliMFTAnalysisTools::ExtrapAODMuonToXY: Point of closest approach cannot be found (no minima in the fiducial region)\n");
196 for (Int_t i=0; i<3; i++) {
199 points[1] =
new TVector3(xy[0],xy[1],z[i]);
201 for (Int_t iMu=0; iMu<2; iMu++)
delete points[iMu];
205 if (r[0]>r[1] && r[1]>r[2]) researchDirection = +1;
206 else if (r[0]<r[1] && r[1]<r[2]) researchDirection = -1;
216 for (Int_t i=0; i<3; i++) {
219 points[1] =
new TVector3(xy[0],xy[1],z[i]);
221 for (Int_t iMu=0; iMu<2; iMu++)
delete points[iMu];
223 if (r[0]<r[1]) z[1] = z[0];
224 else if (r[2]<r[1]) z[1] = z[2];
230 Double_t xyMuon[2] = {0};
241 Double_t xy[2] = {0};
244 offset = TMath::Sqrt((xv-xy[0])*(xv-xy[0]) + (yv-xy[1])*(yv-xy[1]));
253 Double_t smearOffsetX, Double_t smearOffsetY, Double_t &offset) {
257 Double_t xy[2] = {0};
260 xy[0] = gRandom->Gaus(xy[0], smearOffsetX);
261 xy[1] = gRandom->Gaus(xy[1], smearOffsetY);
263 offset = TMath::Sqrt((xv-xy[0])*(xv-xy[0]) + (yv-xy[1])*(yv-xy[1]));
273 Double_t xy[2] = {xv, yv};
275 TLorentzVector kinem(0,0,0,0);
280 offset = TMath::Abs(zFinal - zv);
290 Double_t xy[2] = {0};
291 TLorentzVector kinem(0,0,0,0);
297 covCoordinates(0,0) = cov(0,0);
298 covCoordinates(0,1) = cov(0,2);
299 covCoordinates(1,0) = cov(2,0);
300 covCoordinates(1,1) = cov(2,2);
302 if (covCoordinates.Determinant() < covCoordinates.GetTol())
return kFALSE;
304 if (TDecompLU::InvertLU(covCoordinates,covCoordinates.GetTol(),0)) {
306 TMatrixD covCoordinatesInverse = covCoordinates;
307 Double_t dX = xy[0] - xv;
308 Double_t
dY = xy[1] - yv;
310 offset = TMath::Sqrt(0.5*(dX*dX*covCoordinatesInverse(0,0) +
311 dY*dY*covCoordinatesInverse(1,1) +
312 2.*dX*dY*covCoordinatesInverse(0,1)));
325 Double_t xDimu, Double_t yDimu,
326 Double_t mDimu, Double_t ptDimu) {
332 Double_t decayLengthXY = TMath::Sqrt((xVtx-xDimu)*(xVtx-xDimu)+(yVtx-yDimu)*(yVtx-yDimu));
333 return (decayLengthXY * mDimu/ptDimu)/TMath::Ccgs()*1E12;
344 Double_t mDimu, Double_t pzDimu) {
350 Double_t decayLengthZ = zDimu - zVtx;
351 return (decayLengthZ * mDimu/pzDimu)/TMath::Ccgs()*1E12;
366 Bool_t result =
CalculatePCA(muons, pca, pcaQuality, kinem);
376 const Int_t nMuons = muons->GetEntriesFast();
378 printf(
"W-AliMFTAnalysisTools::CalculatePCA: number of muons not valid\n");
382 Double_t fXPointOfClosestApproach=0, fYPointOfClosestApproach=0, fZPointOfClosestApproach=0;
389 for (Int_t iMu=0; iMu<nMuons; iMu++) {
391 if (TMath::Abs(muon[iMu]->PzAtDCA())<1.e-6) {
392 for(Int_t i=0;i<iMu;i++)
delete param[i];
396 param[iMu] -> SetNonBendingCoor(muon[iMu]->XAtDCA());
397 param[iMu] -> SetBendingCoor(muon[iMu]->YAtDCA());
399 param[iMu] -> SetNonBendingSlope(muon[iMu]->PxAtDCA()/muon[iMu]->PzAtDCA());
400 param[iMu] -> SetBendingSlope(muon[iMu]->PyAtDCA()/muon[iMu]->PzAtDCA());
401 param[iMu] -> SetInverseBendingMomentum( muon[iMu]->Charge() * (1./muon[iMu]->PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon[iMu]->PyAtDCA()/muon[iMu]->PzAtDCA(),2))) );
407 Double_t startPoint = 0.;
409 Double_t r[3]={0}, z[3]={startPoint-step, startPoint, startPoint+step};
413 for (Int_t i=0; i<3; i++) {
414 for (Int_t iMu=0; iMu<nMuons; iMu++) {
420 points[iMu] =
new TVector3(param[iMu]->GetNonBendingCoor(),param[iMu]->GetBendingCoor(),z[i]);
423 for (Int_t iMu=0; iMu<nMuons; iMu++)
delete points[iMu];
426 Int_t researchDirection = 0;
428 if (r[0]>r[1] && r[1]>r[2]) researchDirection = +1;
429 else if (r[0]<r[1] && r[1]<r[2]) researchDirection = -1;
430 else if (r[0]<r[1] && r[1]>r[2]) {
431 printf(
"E-AliMFTAnalysisTools::CalculatePCA: Point of closest approach cannot be found for dimuon (no minima)\n");
432 for (Int_t iMu=0;iMu<nMuons;iMu++)
delete param[iMu];
437 while (TMath::Abs(researchDirection)>0.5) {
439 if (researchDirection>0) {
442 z[2] = z[1]+researchDirection*step;
447 z[0] = z[1]+researchDirection*step;
449 if (TMath::Abs(z[0])>900.) {
450 printf(
"E-AliMFTAnalysisTools::CalculatePCA: Point of closest approach cannot be found for dimuon (no minima in the fiducial region)\n");
451 for (Int_t iMu=0;iMu<nMuons;iMu++)
delete param[iMu];
456 for (Int_t i=0; i<3; i++) {
457 for (Int_t iMu=0; iMu<nMuons; iMu++) {
459 points[iMu] =
new TVector3(param[iMu]->GetNonBendingCoor(),param[iMu]->GetBendingCoor(),z[i]);
462 for (Int_t iMu=0;iMu<nMuons;iMu++)
delete points[iMu];
465 if (r[0]>r[1] && r[1]>r[2]) researchDirection = +1;
466 else if (r[0]<r[1] && r[1]<r[2]) researchDirection = -1;
478 for (Int_t i=0; i<3; i++) {
479 for (Int_t iMu=0; iMu<nMuons; iMu++) {
481 points[iMu] =
new TVector3(param[iMu]->GetNonBendingCoor(),param[iMu]->GetBendingCoor(),z[i]);
484 for (Int_t iMu=0;iMu<nMuons;iMu++)
delete points[iMu];
487 if (r[0]<r[1]) z[1] = z[0];
488 else if (r[2]<r[1]) z[1] = z[2];
502 fZPointOfClosestApproach = z[1];
503 fXPointOfClosestApproach = 0.;
504 fYPointOfClosestApproach = 0.;
505 for (Int_t iMu=0; iMu<nMuons; iMu++) {
510 fXPointOfClosestApproach /= Double_t(nMuons);
511 fYPointOfClosestApproach /= Double_t(nMuons);
513 pca[0] = fXPointOfClosestApproach;
514 pca[1] = fYPointOfClosestApproach;
515 pca[2] = fZPointOfClosestApproach;
519 Double_t pTot[3] = {0};
521 Double_t massMu = TDatabasePDG::Instance()->GetParticle(
"mu-")->Mass();
522 for (Int_t iMu=0; iMu<nMuons; iMu++) {
523 pTot[0] += param[iMu]->
Px();
524 pTot[1] += param[iMu]->
Py();
525 pTot[2] += param[iMu]->
Pz();
526 ene += TMath::Sqrt(massMu*massMu + param[iMu]->Px()*param[iMu]->Px() + param[iMu]->Py()*param[iMu]->Py() + param[iMu]->Pz()*param[iMu]->Pz());
529 kinem.SetPxPyPzE(pTot[0], pTot[1], pTot[2], ene);
533 Double_t
sum=0.,squareSum=0.;
534 for (Int_t iMu=0; iMu<nMuons; iMu++) {
535 Double_t wOffset = 0;
536 if (!
GetAODMuonWeightedOffset(muon[iMu],fXPointOfClosestApproach, fYPointOfClosestApproach, fZPointOfClosestApproach, wOffset)) {
537 for(Int_t jMu=0;jMu<nMuons;jMu++)
delete param[jMu];
541 Double_t
f = TMath::Exp(-0.5 * wOffset);
545 if (sum > 0.) pcaQuality = (sum-squareSum/
sum) / (nMuons-1);
546 else pcaQuality = 0.;
548 for(Int_t iMu=0;iMu<nMuons;iMu++)
delete param[iMu];
559 printf(
"W-AliMFTAnalysisTools::GetDistanceBetweenPoints: number of points not valid\n");
563 if (nPoints<2)
return 0.;
564 if (nPoints<3)
return TMath::Sqrt( (points[0]->X()-points[1]->X()) * (points[0]->X()-points[1]->X()) +
565 (points[0]->Y()-points[1]->Y()) * (points[0]->Y()-points[1]->Y()) );
570 Int_t startID[nEdgesMax] = {0};
571 Int_t stopID[nEdgesMax] = {0};
572 Double_t edgeLength[nEdgesMax] = {0};
577 for (Int_t i=0; i<nPoints-1; i++) {
578 for (Int_t j=i+1; j<nPoints; j++) {
579 edgeLength[nEdges] = TMath::Sqrt( (points[i]->X()-points[j]->X()) * (points[i]->X()-points[j]->X()) +
580 (points[i]->Y()-points[j]->Y()) * (points[i]->Y()-points[j]->Y()) +
581 (points[i]->Z()-points[j]->Z()) * (points[i]->Z()-points[j]->Z()) );
593 for (Int_t iEdge=0; iEdge<nEdges-1; iEdge++) {
594 min = edgeLength[iEdge];
596 for (Int_t j=iEdge+1; j<nEdges; j++) {
597 if (edgeLength[j]<min) {
605 Double_t edgeLengthMin = edgeLength[iMin];
606 Int_t startIDmin = startID[iMin];
607 Int_t stopIDmin = stopID[iMin];
609 edgeLength[iMin] = edgeLength[iEdge];
610 startID[iMin] = startID[iEdge];
611 stopID[iMin] = stopID[iEdge];
613 edgeLength[iEdge] = edgeLengthMin;
614 startID[iEdge] = startIDmin;
615 stopID[iEdge] = stopIDmin;
623 Double_t length = 0.;
624 for (Int_t i=0; i<nEdges; i++) {
625 if (!(pointStatus[startID[i]] && pointStatus[stopID[i]])) {
626 pointStatus[startID[i]] = kTRUE;
627 pointStatus[stopID[i]] = kTRUE;
628 length += edgeLength[i];
649 covAOD[0] = covMUON(0,0);
651 covAOD[1] = covMUON(1,0);
652 covAOD[2] = covMUON(1,1);
654 covAOD[3] = covMUON(2,0);
655 covAOD[4] = covMUON(2,1);
656 covAOD[5] = covMUON(2,2);
658 covAOD[6] = covMUON(3,0);
659 covAOD[7] = covMUON(3,1);
660 covAOD[8] = covMUON(3,2);
661 covAOD[9] = covMUON(3,3);
663 covAOD[10] = covMUON(4,0);
664 covAOD[11] = covMUON(4,1);
665 covAOD[12] = covMUON(4,2);
666 covAOD[13] = covMUON(4,3);
667 covAOD[14] = covMUON(4,4);
682 Double_t covAOD[21] = {0};
683 muon -> GetCovarianceXYZPxPyPz(covAOD);
687 covMUON(0,0) = covAOD[0];
689 covMUON(1,0) = covAOD[1];
690 covMUON(1,1) = covAOD[2];
692 covMUON(2,0) = covAOD[3];
693 covMUON(2,1) = covAOD[4];
694 covMUON(2,2) = covAOD[5];
696 covMUON(3,0) = covAOD[6];
697 covMUON(3,1) = covAOD[7];
698 covMUON(3,2) = covAOD[8];
699 covMUON(3,3) = covAOD[9];
701 covMUON(4,0) = covAOD[10];
702 covMUON(4,1) = covAOD[11];
703 covMUON(4,2) = covAOD[12];
704 covMUON(4,3) = covAOD[13];
705 covMUON(4,4) = covAOD[14];
726 Int_t partCounter = 0;
728 Int_t nGenHeaders = genHeaders->GetEntries();
730 for (Int_t i=0; i<nGenHeaders; i++){
732 TString genName = gh->GetName();
734 if (label>=partCounter && label<(partCounter+nPart))
return genName;
735 partCounter += nPart;
749 Int_t label = TMath::Abs(track->
GetLabel());
754 while (nameGen.IsWhitespace()) {
757 printf(
"AliMFTAnalysisTools::GetTrackPrimaryGenerator - BREAK: No valid AliAODMCParticle at label %i\n",label);
761 if (motherLabel < 0) {
762 printf(
"AliMFTAnalysisTools::GetTrackPrimaryGenerator - BREAK: Reached primary particle without valid mother\n");
783 if (nameGen.IsWhitespace() || nameGen.Contains(
"ijing"))
return kFALSE;
793 if (!(muon->
PzAtDCA()!=0))
return kFALSE;
797 Double_t deltaVtx[3] = {0};
798 for (Int_t i=0; i<3; i++) deltaVtx[i] = vtxInitial[i] - vtxFinal[i];
800 param -> SetNonBendingCoor(muon->
XAtDCA());
801 param -> SetBendingCoor(muon->
YAtDCA());
805 param -> SetInverseBendingMomentum( muon->
Charge() * (1./muon->
PzAtDCA()) / (TMath::Sqrt(1+TMath::Power(muon->
PyAtDCA()/muon->
PzAtDCA(),2))) );
824 Double_t origin[3] = {0,0,0};
834 pdgCode = TMath::Abs(pdgCode/100);
835 if (pdgCode>9) pdgCode /= 10;
836 if (pdgCode == 4 )
return kTRUE;
845 pdgCode = TMath::Abs(pdgCode/100);
846 if (pdgCode>9) pdgCode /= 10;
847 if (pdgCode == 5)
return kTRUE;
856 Int_t
id = pdgCode%100000;
857 return (!((
id-
id%10)%110));
virtual Int_t GetMother() const
static const Double_t fPrecisionPointOfClosestApproach
precision (along z) for the research of the point of closest approach for a dimuon ...
printf("Chi2/npoints = %f\n", TMath::Sqrt(chi2/npoints))
Double_t GetBendingCoor() const
return bending coordinate (cm)
void Add(AliMUONVStore &destStore, const AliMUONVStore &srcStore)
static const Int_t fNMaxPlanes
Track parameters in ALICE dimuon spectrometer.
AliAODTrack * GetMu(Int_t imu=0) const
AliVParticle realisation for MC Particles in the AOD.
static const Double_t fZEvalKinem
void SetPxPyPzAtDCA(Double_t pX, Double_t pY, Double_t pZ)
static const Int_t fNMaxMuonsForPCA
AliAODDimuon: a class for AODs for the MUON Arm of the ALICE Experiment.
virtual Short_t Charge() const
Double_t GetNonBendingCoor() const
return non bending coordinate (cm)
void SetXYAtDCA(Double_t x, Double_t y)
const TMatrixD & GetCovariances() const
AOD track implementation of AliVTrack.
class TMatrixT< Double_t > TMatrixD