6 #include <TClonesArray.h> 10 #include <THnSparse.h> 13 #include <TLorentzVector.h> 19 #include <AliAnalysisDataSlot.h> 20 #include <AliAnalysisDataContainer.h> 22 #include "TMatrixDSym.h" 23 #include "TMatrixDSymEigen.h" 26 #include "AliVCluster.h" 27 #include "AliVTrack.h" 32 #include "AliMCEvent.h" 33 #include "AliGenPythiaEventHeader.h" 34 #include "AliAODMCHeader.h" 35 #include "AliMCEvent.h" 36 #include "AliAnalysisManager.h" 43 #include "AliAODEvent.h" 55 fMinFractionShared(0),
56 fJetShapeType(kGenShapes),
58 fJetSelection(kInclusive),
73 fangWindowRecoil(0.6),
83 fOneConstSelectOn(kFALSE),
95 fHLundIterativeInject(0x0),
97 fTreeObservableTagging(0x0),
103 fAddMedScatPtFrac(1),
108 for(
Int_t i=0;i<11;i++){
110 SetMakeGeneralHistograms(kTRUE);
111 DefineOutput(1, TList::Class());
112 DefineOutput(2, TTree::Class());
119 fMinFractionShared(0),
120 fJetShapeType(kGenShapes),
121 fJetShapeSub(kNoSub),
122 fJetSelection(kInclusive),
123 fPtThreshold(-9999.),
131 fAdditionalTracks(0),
135 fangWindowRecoil(0.6),
142 fCentSelectOn(kTRUE),
145 fOneConstSelectOn(kFALSE),
156 fHLundIterative(0x0),
157 fHLundIterativeInject(0x0),
159 fTreeObservableTagging(0x0),
165 fAddMedScatPtFrac(1),
171 for(
Int_t i=0;i<11;i++){
176 DefineOutput(1, TList::Class());
177 DefineOutput(2, TTree::Class());
202 Bool_t oldStatus = TH1::AddDirectoryStatus();
203 TH1::AddDirectory(oldStatus);
209 const char* nameoutput = GetOutputSlot(2)->GetContainer()->GetName();
216 fShapesVarNames[0] =
"partonCode";
217 fShapesVarNames[1] =
"ptJet";
218 fShapesVarNames[2] =
"ptDJet";
219 fShapesVarNames[3] =
"mJet";
220 fShapesVarNames[4] =
"nbOfConst";
221 fShapesVarNames[5] =
"angularity";
222 fShapesVarNames[6] =
"nitersd";
223 fShapesVarNames[7] =
"niterall";
224 fShapesVarNames[8] =
"weightPythia";
231 fShapesVarNames[9] =
"SDSymm";
232 fShapesVarNames[10] =
"scaledptJet";
291 cout<<
"looping over variables"<<endl;
296 fPhiJetCorr6=
new TH2F(
"fPhiJetCorr6",
"fPhiJetCorr6", 50, 0, 2*TMath::Pi(), 50, 0, 2*TMath::Pi());
298 fEtaJetCorr6=
new TH2F(
"fEtaJetCorr6",
"fEtaJetCorr6", 50, -1.5, 1.5, 50, -1.5, 1.5);
301 fPhiJetCorr7=
new TH2F(
"fPhiJetCorr7",
"fPhiJetCorr7", 50, 0, 2*TMath::Pi(), 50, 0, 2*TMath::Pi());
303 fEtaJetCorr7=
new TH2F(
"fEtaJetCorr7",
"fEtaJetCorr7", 50, -1.5, 1.5, 50, -1.5, 1.5);
306 fPtJetCorr=
new TH2F(
"fPtJetCorr",
"fPtJetCorr", 100, 0, 200, 100, 0, 200);
308 fPtJet=
new TH1F(
"fPtJet",
"fPtJet", 100, 0, 200);
311 fhpTjetpT=
new TH2F(
"fhpTjetpT",
"fhpTjetpT", 200, 0, 200, 200, 0, 200);
313 fhPt=
new TH1F(
"fhPt",
"fhPt", 200, 0, 200);
315 fhPhi=
new TH1F(
"fhPhi",
"fhPhi", 100, -TMath::Pi(), TMath::Pi());
321 const Int_t dimSpec = 6;
322 const Int_t nBinsSpec[6] = {50,50,10,3,22,10};
323 const Double_t lowBinSpec[6] = {0.0,-10, 0,0,0,0};
324 const Double_t hiBinSpec[6] = {5.0, 0,200,3,22,10};
326 "LundIterativePlot [log(1/theta),log(z*theta),pTjet,algo,partonFlavor,depth]",
327 dimSpec,nBinsSpec,lowBinSpec,hiBinSpec);
332 const Int_t dimSpecb = 4;
333 const Int_t nBinsSpecb[4] = {50,50,20,20};
334 const Double_t lowBinSpecb[4] = {0.0,-10, 0,0};
335 const Double_t hiBinSpecb[4] = {5.0, 0,200,200};
337 "LundIterativePlotInject [log(1/theta),log(z*theta),pTjet,algo]",
338 dimSpecb,nBinsSpecb,lowBinSpecb,hiBinSpecb);
342 fNbOfConstvspT=
new TH2F(
"fNbOfConstvspT",
"fNbOfConstvspT", 100, 0, 100, 200, 0, 200);
351 delete [] fShapesVarNames;
376 AliAODTrack *triggerHadron = 0x0;
383 if (triggerHadronLabel==-99999) {
389 TClonesArray *trackArrayAn = partContAn->GetArray();
390 triggerHadron =
static_cast<AliAODTrack*
>(trackArrayAn->At(triggerHadronLabel));
392 if (!triggerHadron) {
403 fhPt->Fill(triggerHadron->Pt());
408 jetCont->ResetCurrentID();
452 Float_t dRp1 = TMath::Sqrt(jp1 * jp1 + detap1 * detap1);
462 dRp1 = TMath::Sqrt(jp1 * jp1 + detap1 * detap1);
474 ptSubtracted= jet1->
Pt();
530 AliVParticle *vp1 = 0x0;
535 Printf(
"AliVParticle associated to constituent not found");
540 Double_t dr2 = (vp1->Eta()-jet->
Eta())*(vp1->Eta()-jet->
Eta()) + dphi*dphi;
542 num=num+vp1->Pt()*dr;
568 AliVParticle *vp1 = 0x0;
573 Printf(
"AliVParticle associated to constituent not found");
577 num=num+vp1->Pt()*vp1->Pt();
580 return TMath::Sqrt(num)/den;
590 return PTD(jet, jetContNb);
611 TVector3 ppJ1(pxjet, pyjet, pzjet);
612 TVector3 ppJ3(- pxjet* pzjet, - pyjet * pzjet, pxjet * pxjet + pyjet * pyjet);
614 TVector3 ppJ2(-pyjet, pxjet, 0);
616 AliVParticle *vp1 = 0x0;
621 Printf(
"AliVParticle associated to constituent not found");
625 TVector3 pp(vp1->Px(), vp1->Py(), vp1->Pz());
628 TVector3 pLong = pp.Dot(ppJ1) / ppJ1.Mag2() * ppJ1;
629 TVector3 pPerp = pp - pLong;
632 Float_t ppjX = pPerp.Dot(ppJ2);
633 Float_t ppjY = pPerp.Dot(ppJ3);
634 Float_t ppjT = TMath::Sqrt(ppjX * ppjX + ppjY * ppjY);
635 if(ppjT<=0)
return 0;
637 mxx += (ppjX * ppjX / ppjT);
638 myy += (ppjY * ppjY / ppjT);
639 mxy += (ppjX * ppjY / ppjT);
644 if(sump2==0)
return 0;
646 Double_t ele[4] = {mxx / sump2, mxy / sump2, mxy / sump2, myy / sump2};
647 TMatrixDSym m0(2,ele);
650 TMatrixDSymEigen m(m0);
652 TMatrixD evecm = m.GetEigenVectors();
653 eval = m.GetEigenValues();
657 if (eval[0] < eval[1]) jev = 1;
660 evec0 = TMatrixDColumn(evecm, jev);
663 TVector2 evec(compx, compy);
665 if(jev==1) circ=2*eval[0];
666 if(jev==0) circ=2*eval[1];
697 AliVParticle *vp1 = 0x0;
698 AliVParticle *vp2 = 0x0;
699 std::vector<int> ordindex;
704 if(ordindex.size()<2)
return -1;
708 Printf(
"AliVParticle associated to Leading constituent not found");
714 Printf(
"AliVParticle associated to Subleading constituent not found");
734 return LeSub(jet, jetContNb);
765 if(Reclusterer->AliEmcalJetFinder::Filter(Jet, JetCont, dVtx)){;}
779 Double_t SubJetiness_Denominator = 0;
783 if(Index==-999)
return -2;
784 SubJetiness_Numerator=(Reclusterer->
GetJet(Index)->
Pt());
785 SubJetiness_Denominator=Jet->
Pt();
786 return SubJetiness_Numerator/SubJetiness_Denominator;
798 AliVParticle *vp1 = 0x0;
803 Printf(
"AliVParticle associated to constituent not found");
808 Double_t dr2 = (vp1->Eta()-jet->
Eta())*(vp1->Eta()-jet->
Eta()) + dphi*dphi;
813 return num/jet->
Pt();
838 Int_t ArraySize =N+1;
841 for (
Int_t i=0; i<ArraySize; i++){
842 JetSorter->SetAt(0,i);
844 for (
Int_t i=0; i<ArraySize; i++){
845 JetIndexSorter->SetAt(0,i);
849 SubJet=Reclusterer->
GetJet(i);
850 if (Type==0) SortingVariable=SubJet->
Pt();
851 else if (Type==1) SortingVariable=SubJet->
E();
852 else if (Type==2) SortingVariable=SubJet->
M();
853 for (
Int_t j=0; j<N; j++){
854 if (SortingVariable>JetSorter->GetAt(j)){
855 for (
Int_t k=N-1; k>=j; k--){
856 JetSorter->SetAt(JetSorter->GetAt(k),k+1);
857 JetIndexSorter->SetAt(JetIndexSorter->GetAt(k),k+1);
859 JetSorter->SetAt(SortingVariable,j);
860 JetIndexSorter->SetAt(i,j);
865 if (!Index)
return JetSorter->GetAt(N-1);
866 else return JetIndexSorter->GetAt(N-1);
891 AliVParticle *vp1 = 0x0;
896 Printf(
"AliVParticle associated to constituent not found");
904 mxx += ppt*ppt*deta*deta;
905 myy += ppt*ppt*dphi*dphi;
906 mxy -= ppt*ppt*deta*TMath::Abs(dphi);
912 if(sump2==0)
return 0;
914 Double_t ele[4] = {mxx , mxy , mxy , myy };
915 TMatrixDSym m0(2,ele);
918 TMatrixDSymEigen m(m0);
920 TMatrixD evecm = m.GetEigenVectors();
921 eval = m.GetEigenValues();
925 if (eval[0] < eval[1]) jev = 1;
928 evec0 = TMatrixDColumn(evecm, jev);
931 TVector2 evec(compx, compy);
933 if(jev==1) sig=TMath::Sqrt(TMath::Abs(eval[0])/sump2);
934 if(jev==0) sig=TMath::Sqrt(TMath::Abs(eval[1])/sump2);
948 return Sigma2(jet, jetContNb);
962 AliVParticle *vp1 = 0x0;
963 std::vector<int> ordindex;
973 Printf(
"AliVParticle associated to Leading constituent not found");
977 if (nTFractions[0] <= 0.7*ptJet){
978 nTFractions[0] += vp1->Pt();
982 if (nTFractions[2] <= 0.8*ptJet){
983 nTFractions[2] += vp1->Pt();
987 if (nTFractions[4] <= 0.9*ptJet){
988 nTFractions[4] += vp1->Pt();
992 if (nTFractions[6] <= 0.95*ptJet){
993 nTFractions[6] += vp1->Pt();
1031 return JetFinder->
Nsubjettiness(Jet,JetCont,dVtx,N,Algorithm,0.2,Beta,Option,0,Beta_SD,ZCut,SoftDropOn);
1043 TClonesArray *tracksArray = partCont->GetArray();
1045 if(!partCont || !tracksArray)
return -99999;
1046 AliAODTrack *track = 0x0;
1051 Int_t triggers[100];
1052 for (
Int_t iTrigger=0; iTrigger<100; iTrigger++) triggers[iTrigger] = 0;
1055 for(
Int_t iTrack=0; iTrack <= tracksArray->GetEntriesFast(); iTrack++){
1060 if (!emcPart)
continue;
1061 if(TMath::Abs(emcPart->
Eta())>0.9)
continue;
1062 if (emcPart->
Pt()<0.15)
continue;
1064 if ((emcPart->
Pt() >= minpT) && (emcPart->
Pt()< maxpT)) {
1065 trackList->Add(emcPart);
1066 triggers[iTT] = iTrack;
1071 track =
static_cast<AliAODTrack*
>(tracksArray->At(iTrack));
1072 if (!track)
continue;
1073 if(TMath::Abs(track->Eta())>0.9)
continue;
1074 if (track->Pt()<0.15)
continue;
1075 if (!(track->TestFilterBit(768)))
continue;
1077 if ((track->Pt() >= minpT) && (track->Pt()< maxpT)) {
1078 trackList->Add(track);
1079 triggers[iTT] = iTrack;
1086 if (iTT == 0)
return -99999;
1087 Int_t nbRn = 0, index = 0 ;
1088 TRandom3* random =
new TRandom3(0);
1089 nbRn = random->Integer(iTT);
1091 index = triggers[nbRn];
1100 if (vphi < -1*TMath::Pi()) vphi += (2*TMath::Pi());
1101 else if (vphi > TMath::Pi()) vphi -= (2*TMath::Pi());
1102 if (mphi < -1*TMath::Pi()) mphi += (2*TMath::Pi());
1103 else if (mphi > TMath::Pi()) mphi -= (2*TMath::Pi());
1104 double dphi = mphi-vphi;
1105 if (dphi < -1*TMath::Pi()) dphi += (2*TMath::Pi());
1106 else if (dphi > TMath::Pi()) dphi -= (2*TMath::Pi());
1127 AliInfo(
"Terminate");
1128 AliAnalysisTaskSE::Terminate();
1132 AliError(
"fOutput not available");
1138 Printf(
"ERROR: fTreeObservableTagging not available");
1147 std::vector<fastjet::PseudoJet> fInputVectors;
1148 fInputVectors.clear();
1149 Double_t JetInvMass=0, PseudJetInvMass=0, TrackMom = 0, TrackEnergy = 0;
1150 fastjet::PseudoJet PseudoTracks;
1151 fastjet::PseudoJet MyJet;
1152 fastjet::PseudoJet PseudoTracksCMS;
1159 AliVParticle *fTrk = fJet->
TrackAt(i, fTrackCont->GetArray());
1160 if (!fTrk)
continue;
1161 JetInvMass += fTrk->M();
1163 PseudoTracks.reset(fTrk->Px(), fTrk->Py(), fTrk->Pz(),fTrk->E());
1164 TrackMom += TMath::Sqrt(TMath::Power(fTrk->Px(),2)+TMath::Power(fTrk->Py(),2)+TMath::Power(fTrk->Pz(),2));
1165 TrackEnergy += fTrk->E();
1166 PseudoTracks.set_user_index(fJet->
TrackAt(i)+100);
1167 PseudJetInvMass += PseudoTracks.m();
1168 fInputVectors.push_back(PseudoTracks);
1175 MyJet.reset(fJet->
Px(),fJet->
Py(),fJet->
Pz(),fJet->
E());
1183 Double_t ppx,ppy,ppz,kTscale,lim2o,lim1o;
1188 fTf1Kt=
new TF1(
"fTf1Kt",
"1/(x*x*x*x)",lim2,lim1);
1189 kTscale=
fTf1Kt->GetRandom();
1195 lim1o=kTscale/TMath::Sin(0.1);
1196 fTf1Omega=
new TF1(
"fTf1Omega",
"1/x",lim2o,lim1o);
1200 Double_t pptheta=TMath::ASin(sinpptheta);
1204 PseudoTracksCMS.reset(kTscale/TMath::Sqrt(2),kTscale/TMath::Sqrt(2),omega*TMath::Cos(pptheta),omega);
1206 fastjet::PseudoJet PseudoTracksLab=PseudoTracksCMS.boost(MyJet);
1208 fInputVectors.push_back(PseudoTracksLab);
1210 zeta=omega/fJet->
E();
1224 fastjet::JetDefinition fJetDef(fastjet::antikt_algorithm,
fJetRadius*2, static_cast<fastjet::RecombinationScheme>(0), fastjet::BestFJ30 );
1225 fastjet::contrib::Recluster *recluster;
1227 fastjet::ClusterSequence fClustSeqSA(fInputVectors, fJetDef);
1228 std::vector<fastjet::PseudoJet> fOutputJets;
1229 fOutputJets.clear();
1230 fOutputJets=fClustSeqSA.inclusive_jets(0);
1234 fastjet::contrib::SoftDrop softdrop(beta, zcut);
1236 softdrop.set_verbose_structure(kTRUE);
1237 fastjet::JetAlgorithm jetalgo(fastjet::cambridge_algorithm);
1238 if(ReclusterAlgo==2) jetalgo=fastjet::antikt_algorithm;
1239 if(ReclusterAlgo==1) jetalgo=fastjet::kt_algorithm;
1240 if(ReclusterAlgo==0) jetalgo=fastjet::cambridge_algorithm;
1242 recluster =
new fastjet::contrib::Recluster(jetalgo,1,
true);
1243 softdrop.set_reclustering(
true,recluster);
1244 fastjet::PseudoJet finaljet = softdrop(fOutputJets[0]);
1248 Int_t NGroomedBranches;
1249 SymParam=(finaljet.structure_of<fastjet::contrib::SoftDrop>().symmetry());
1250 Mu=(finaljet.structure_of<fastjet::contrib::SoftDrop>().mu());
1251 DeltaR=(finaljet.structure_of<fastjet::contrib::SoftDrop>().delta_R());
1252 NGroomedBranches=finaljet.structure_of<fastjet::contrib::SoftDrop>().dropped_count();
1253 GroomedPt=finaljet.perp();
1254 GroomedMass=finaljet.m();
1313 }
catch (fastjet::Error) {
1314 AliError(
" [w] FJ Exception caught.");
1321 if(recluster) {
delete recluster; recluster = NULL; }
1337 std::vector<fastjet::PseudoJet> fInputVectors;
1338 fInputVectors.clear();
1339 fastjet::PseudoJet PseudoTracks;
1340 fastjet::PseudoJet PseudoTracksLab;
1342 double lnpt_relinject=0;
1345 double zinject,angleinject,pptheta,sinpptheta,omega,omega2,angle2;
1347 Float_t pTscale=0., phiscale=0., thetascale=0., pXscale=0., pYscale=0., pZscale=0., pscale=0.;
1350 AliVParticle *fTrk = fJet->
TrackAt(i, fTrackCont->GetArray());
1351 if (!fTrk)
continue;
1353 pTscale =
xfraction*sqrt(pow(fTrk->Px(),2)+pow(fTrk->Py(),2));
1354 phiscale = fTrk->Phi();
1355 thetascale = 2.*TMath::ATan(TMath::Exp(-1.*(fTrk->Eta())));
1356 pXscale = pTscale * TMath::Cos(phiscale);
1357 pYscale = pTscale * TMath::Sin(phiscale);
1358 pZscale = pTscale/TMath::Tan(thetascale);
1359 pscale = TMath::Sqrt(pTscale*pTscale+pZscale*pZscale);
1360 PseudoTracks.reset(pXscale, pYscale, pZscale, pscale);
1362 else PseudoTracks.reset(fTrk->Px(), fTrk->Py(), fTrk->Pz(),fTrk->E());
1363 PseudoTracks.set_user_index(fJet->
TrackAt(i)+100);
1364 fInputVectors.push_back(PseudoTracks);
1369 TRandom3 rand1(0),rand2(0),rand3(0);
1370 Double_t randN1 = 0.4*0.4*rand1.Rndm();
1371 Double_t randN2 = 2*TMath::Pi()*rand2.Rndm();
1372 Double_t phi_rand = (fJet->
Phi())+TMath::Sqrt(randN1)*TMath::Sin(randN2);
1373 Double_t eta_rand = (fJet->
Eta())+TMath::Sqrt(randN1)*TMath::Cos(randN2);
1375 PseudoTracks.reset(fAddMedScatPt*TMath::Cos(phi_rand),fAddMedScatPt*TMath::Sin(phi_rand),fAddMedScatPt/TMath::Tan(eta_rand),fAddMedScatPt);
1377 fInputVectors.push_back(PseudoTracks);
1392 Double_t ppx,ppy,ppz,kTscale,lim2o,lim1o;
1397 fTf1Kt=
new TF1(
"fTf1Kt",
"1/(x*x*x*x)",lim2,lim1);
1398 kTscale=
fTf1Kt->GetRandom();
1404 lim1o=kTscale/TMath::Sin(0.1);
1405 fTf1Omega=
new TF1(
"fTf1Omega",
"1/x",lim2o,lim1o);
1407 sinpptheta=kTscale/omega;
1408 pptheta=TMath::ASin(sinpptheta);
1412 TLorentzVector pTrackCMS(kTscale/TMath::Sqrt(2),kTscale/TMath::Sqrt(2),omega*TMath::Cos(pptheta),omega);
1413 TVector3 MyJet(fJet->
Px(),fJet->
Py(),fJet->
Pz());
1414 TVector3 direction = MyJet.Unit();
1416 pTrackCMS.RotateUz(direction);
1419 PseudoTracksLab.reset(pTrackCMS.Px(),pTrackCMS.Py(),pTrackCMS.Pz(),pTrackCMS.E());
1423 omega2=PseudoTracksLab.perp();
1424 angle2=pTrackCMS.Angle(MyJet);
1426 fInputVectors.push_back(PseudoTracksLab);
1433 fastjet::JetAlgorithm jetalgo(fastjet::antikt_algorithm);
1434 if(ReclusterAlgo==0){ xflagalgo=0.5;
1435 jetalgo=fastjet::kt_algorithm ;}
1437 if(ReclusterAlgo==1){ xflagalgo=1.5;
1438 jetalgo=fastjet::cambridge_algorithm;}
1439 if(ReclusterAlgo==2){ xflagalgo=2.5;
1440 jetalgo=fastjet::antikt_algorithm;}
1442 fastjet::JetDefinition fJetDef(jetalgo, 1., static_cast<fastjet::RecombinationScheme>(0), fastjet::BestFJ30 );
1445 fastjet::ClusterSequence fClustSeqSA(fInputVectors, fJetDef);
1446 std::vector<fastjet::PseudoJet> fOutputJets;
1447 fOutputJets.clear();
1448 fOutputJets=fClustSeqSA.inclusive_jets(0);
1450 fastjet::PseudoJet jj;
1451 fastjet::PseudoJet j1;
1452 fastjet::PseudoJet j2;
1458 while(jj.has_parents(j1,j2)){
1460 if(j1.perp() < j2.perp())
swap(j1,j2);
1461 double delta_R=j1.delta_R(j2);
1462 double z=j2.perp()/(j1.perp()+j2.perp());
1463 double y =log(1.0/delta_R);
1464 double lnpt_rel=log(z*delta_R);
1469 if(nsd==1 && ReclusterAlgo==1)
fShapesVar[9]=z;
1470 Double_t LundEntries[6] = {y,lnpt_rel,fOutputJets[0].perp(),xflagalgo,partonFlavor,ndepth};
1474 if(ReclusterAlgo==1){
1478 if(fAdditionalTracks>0 && xflagAdded>0){
1479 zinject=omega2/fOutputJets[0].perp();
1482 yinject =log(1.0/angleinject);
1483 lnpt_relinject=log(zinject*angleinject);
1484 Double_t LundEntriesInject[4] = {yinject,lnpt_relinject,fOutputJets[0].perp(),fJet->
Pt()};
1488 }
catch (fastjet::Error) {
1489 AliError(
" [w] FJ Exception caught.");
void SetRadius(Double_t val)
Float_t GetSigma2(AliEmcalJet *jet, Int_t jetContNb=0)
Double_t GetFirstOrderSubtractedAngularity() const
Float_t GetJetMass(AliEmcalJet *jet, Int_t jetContNb=0)
void SetJetMinPt(Double_t val)
Double_t GetSecondOrderSubtractedSigma2() const
Float_t GetPartonEta6() const
AliJetContainer * GetJetContainer(Int_t i=0) const
Float_t GetPartonEta7() const
Double_t GetSecondOrderSubtractedConstituent() const
Double_t FjNSubJettiness(AliEmcalJet *Jet, Int_t JetContNb, Int_t N, Int_t Algorithm, Double_t Beta, Int_t Option, Double_t Beta_SD=0.0, Double_t ZCut=0.1, Int_t SoftDropOn=0)
Float_t GetPythiaEventWeight() const
void RecursiveParents(AliEmcalJet *fJet, AliJetContainer *fJetCont, Int_t ReclusterAlgo, Float_t PartonFlavor)
Float_t GetPartonPhi7() const
JetShapeType fJetShapeType
Double_t GetSecondOrderSubtractedpTD() const
Bool_t RetrieveEventObjects()
Double_t GetFirstOrderSubtractedLeSub() const
Float_t CoreFrac(AliEmcalJet *jet, Int_t jetContNb=0)
Float_t GetJetCircularity(AliEmcalJet *jet, Int_t jetContNb=0)
THnSparse * fHLundIterativeInject
Float_t GetJetpTD(AliEmcalJet *jet, Int_t jetContNb=0)
Int_t GetPartonFlag7() const
Container for particles within the EMCAL framework.
Float_t GetPartonPhi6() const
Int_t TrackAt(Int_t idx) const
Double_t GetFirstOrderSubtractedpTD() const
UShort_t GetNumberOfTracks() const
Float_t GetJetCoreFrac(AliEmcalJet *jet, Int_t jetContNb=0)
Double_t Nsubjettiness(AliEmcalJet *pJet, AliJetContainer *pContJets, Double_t dVtx[3], Int_t N, Int_t Algorithm, Double_t Radius, Double_t Beta, Int_t Option=0, Int_t Measure=0, Double_t Beta_SD=0, Double_t ZCut=0.1, Int_t SoftDropOn=0)
AliParticleContainer * GetParticleContainer(Int_t i=0) const
Get particle container attached to this task.
Double_t GetSecondOrderSubtractedLeSub() const
Int_t GetPartonFlag6() const
AliParticleContainer * GetParticleContainer() const
Double_t GetFirstOrderSubtractedConstituent() const
void SetRecombSheme(Int_t val)
void SetJetAlgorithm(Int_t val)
Float_t GetJetNumberOfConstituents(AliEmcalJet *jet, Int_t jetContNb=0)
Float_t fqhat
Random number generator.
Task to store and correlate the MC shapes.
TTree * fTreeObservableTagging
! Tree with tagging variables subtracted MC or true MC or raw
Double_t RelativePhi(Double_t mphi, Double_t vphi)
Bool_t Run()
Run function. This is the core function of the analysis and contains the user code. Therefore users have to implement this function.
Double_t GetSecondOrderSubtractedAngularity() const
Double_t GetSubjetFraction(AliEmcalJet *Jet, Int_t JetContNb, Double_t JetRadius, AliEmcalJetFinder *Reclusterer)
AliAnalysisTaskEmcalJetShapesMC()
AliEmcalJetFinder * Recluster(AliEmcalJet *Jet, Int_t JetContNb, Double_t JetRadius, Double_t SubJetRadius, Double_t SubJetMinPt, Int_t Algorithm, const char *Name)
Double_t fCent
!event centrality
Double_t GetSecondOrderSubtracted() const
Float_t PTD(AliEmcalJet *jet, Int_t jetContNb=0)
void SetJetMaxEta(Double_t val)
void Terminate(Option_t *option)
AliEmcalJet * GetNextAcceptJet()
TF1 * fTf1Kt
to generate omega according to BDMPS tail
Bool_t Data(TH1F *h, Double_t *rangefit, Bool_t writefit, Double_t &sgn, Double_t &errsgn, Double_t &bkg, Double_t &errbkg, Double_t &sgnf, Double_t &errsgnf, Double_t &sigmafit, Int_t &status)
Float_t GetJetAngularity(AliEmcalJet *jet, Int_t jetContNb=0)
Int_t SelectTrigger(Float_t minpT, Float_t maxpT)
AliEmcalJet * GetJet(Int_t index)
Enhanced TList-derived class that implements correct merging for pt_hard binned production.
Float_t Angularity(AliEmcalJet *jet, Int_t jetContNb=0)
Bool_t FillHistograms()
Function filling histograms.
Double_t GetFirstOrderSubtractedCircularity() const
JetSelectionType fJetSelection
Bool_t RetrieveEventObjects()
Retrieve common objects from event.
AliEmcalList * fOutput
!output list
THnSparse * fHLundIterative
Double_t SubJetOrdering(AliEmcalJet *Jet, AliEmcalJetFinder *Reclusterer, Int_t N, Int_t Type, Bool_t Index)
void NTValues(AliEmcalJet *jet, Int_t jetContNb, Float_t *nTFractions)
Double_t GetSecondOrderSubtractedCircularity() const
Double_t DeltaR(const AliVParticle *part1, const AliVParticle *part2)
Float_t GetJetLeSub(AliEmcalJet *jet, Int_t jetContNb=0)
void UserCreateOutputObjects()
Store some informaion about a Pythia eventThis class is used to store some information about a Pythia...
void SetMakeGeneralHistograms(Bool_t g)
Base task in the EMCAL jet framework.
Represent a jet reconstructed using the EMCal jet framework.
const AliEmcalPythiaInfo * GetPythiaInfo() const
Float_t Circularity(AliEmcalJet *jet, Int_t jetContNb=0)
void SoftDrop(AliEmcalJet *fJet, AliJetContainer *fJetCont, Double_t zcut, Double_t beta, Int_t ReclusterAlgo)
Declaration of class AliEmcalPythiaInfo.
virtual ~AliAnalysisTaskEmcalJetShapesMC()
void UserCreateOutputObjects()
Main initialization function on the worker.
Double_t GetFirstOrderSubtractedSigma2() const
Float_t Sigma2(AliEmcalJet *jet, Int_t jetContNb=0)
AliEmcalJetShapeProperties * GetShapeProperties() const
Float_t GetPartonPt7() const
Float_t LeSub(AliEmcalJet *jet, Int_t jetContNb=0)
Double_t fAddMedScatPtFrac
Double_t GetFirstOrderSubtracted() const
Container for jet within the EMCAL jet framework.
std::vector< int > GetPtSortedTrackConstituentIndexes(TClonesArray *tracks) const
Float_t GetPartonPt6() const