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// |
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// Electron |
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// |
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// Details to be worked out... |
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// This class holds information about reconstructed electrons from CMSSW. |
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// |
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// Authors: C.Loizides, J.Bendavid |
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// Authors: C.Loizides, J.Bendavid, S.Xie |
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//-------------------------------------------------------------------------------------------------- |
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#ifndef DATATREE_ELECTRON_H |
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#define DATATREE_ELECTRON_H |
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#ifndef MITANA_DATATREE_ELECTRON_H |
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#define MITANA_DATATREE_ELECTRON_H |
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|
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#include "MitAna/DataTree/interface/Lepton.h" |
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#include "MitAna/DataTree/interface/SuperCluster.h" |
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#include "MitAna/DataTree/interface/ChargedParticle.h" |
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#include "MitAna/DataCont/interface/Ref.h" |
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namespace mithep |
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{ |
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class Electron : public Lepton |
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class Electron : public ChargedParticle |
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{ |
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public: |
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Electron() {} |
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~Electron() {} |
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|
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const Track *GetGsfTrack() const; |
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const Track *GetTrackerTrack() const; |
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const Track *GetTrack() const; |
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Double_t Mass() const { return 0.51099892e-3; } |
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|
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void SetGsfTrack(Track* t) { fGsfTrackRef = t; } |
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void SetTrackerTrack(Track* t) { fTrackerTrackRef = t; } |
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|
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Electron() : |
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fCharge(-99), fScPixCharge(0), |
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fESuperClusterOverP(0), fESeedClusterOverPout(0), fDeltaEtaSuperClTrkAtVtx(0), |
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fDeltaEtaSeedClTrkAtCalo(0), fDeltaPhiSuperClTrkAtVtx(0), |
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fDeltaPhiSeedClTrkAtCalo(0), fFBrem(0), fHadronicOverEm(0), fHcalDepth1OverEcal(0), |
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fHcalDepth2OverEcal(0), fNumberOfClusters(0), fE15(0), fE25Max(0), |
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fE55(0), fCovEtaEta(0), fCoviEtaiEta(0), |
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fCaloIsolation(0), fHcalJurassicIsolation(0), |
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fHcalDepth1TowerSumEtDr04(0), fHcalDepth2TowerSumEtDr04(0), |
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fEcalJurassicIsolation(0), fTrackIsolationDr04(0), fCaloTowerIsolation(0), |
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fHcalDepth1TowerSumEtDr03(0), fHcalDepth2TowerSumEtDr03(0), |
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fEcalRecHitSumEtDr03(0), fTrackIsolation(0), fPassLooseID(0), |
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fPassTightID(0), fIDLikelihood(0), fPIn(0), fPOut(0), fFracSharedHits(0), |
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fMva(0), fD0PV(0), fD0PVErr(0), fIp3dPV(0), fIp3dPVErr(0), |
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fD0PVBS(0), fD0PVBSErr(0), fIp3dPVBS(0), fIp3dPVBSErr(0), |
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fD0PVCkf(0), fD0PVCkfErr(0), fIp3dPVCkf(0), fIp3dPVCkfErr(0), |
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fD0PVBSCkf(0), fD0PVBSCkfErr(0), fIp3dPVBSCkf(0), fIp3dPVBSCkfErr(0), |
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fD0PVUB(0), fD0PVUBErr(0), fIp3dPVUB(0), fIp3dPVUBErr(0), |
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fD0PVUBBS(0), fD0PVUBBSErr(0), fIp3dPVUBBS(0), fIp3dPVUBBSErr(0), |
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fD0PVUBCkf(0), fD0PVUBCkfErr(0), fIp3dPVUBCkf(0), fIp3dPVUBCkfErr(0), |
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fD0PVUBBSCkf(0), fD0PVUBBSCkfErr(0), fIp3dPVUBBSCkf(0), fIp3dPVUBBSCkfErr(0), |
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fGsfPVCompatibility(0), fGsfPVBSCompatibility(0), |
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fGsfPVCompatibilityMatched(0), fGsfPVBSCompatibilityMatched(0), |
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fConvPartnerDCotTheta(0), fConvPartnerDist(0), fConvPartnerRadius(0), |
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fPFChargedHadronIso(0), fPFNeutralHadronIso(0), fPFPhotonIso(0), |
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fConvFlag(0), fIsEnergyScaleCorrected(0), fIsMomentumCorrected(0), |
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fClassification(0), fIsEB(), fIsEE(0), fIsEBEEGap(0), fIsEBEtaGap(0), |
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fIsEBPhiGap(0), fIsEEDeeGap(0), fIsEERingGap(0), |
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fIsEcalDriven(0), fIsTrackerDriven(0), fMatchesVertexConversion(0) {} |
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|
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const Track *BestTrk() const; |
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Double_t D0PV() const { return fD0PV; } |
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Double_t D0PVErr() const { return fD0PVErr; } |
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Double_t D0PVSignificance() const { return fD0PV/fD0PVErr; } |
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Double_t Ip3dPV() const { return fIp3dPV; } |
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Double_t Ip3dPVErr() const { return fIp3dPVErr; } |
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Double_t Ip3dPVSignificance() const { return fIp3dPV/fIp3dPVErr; } |
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Double_t D0PVBS() const { return fD0PVBS; } |
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Double_t D0PVBSErr() const { return fD0PVBSErr; } |
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Double_t D0PVBSSignificance() const { return fD0PVBS/fD0PVBSErr; } |
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Double_t Ip3dPVBS() const { return fIp3dPVBS; } |
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Double_t Ip3dPVBSErr() const { return fIp3dPVBSErr; } |
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Double_t Ip3dPVBSSignificance() const { return fIp3dPVBS/fIp3dPVBSErr; } |
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Double_t D0PVCkf() const { return fD0PVCkf; } |
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Double_t D0PVCkfErr() const { return fD0PVCkfErr; } |
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Double_t D0PVCkfSignificance() const { return fD0PVCkf/fD0PVCkfErr; } |
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Double_t Ip3dPVCkf() const { return fIp3dPVCkf; } |
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Double_t Ip3dPVCkfErr() const { return fIp3dPVCkfErr; } |
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Double_t Ip3dPVCkfSignificance() const { return fIp3dPVCkf/fIp3dPVCkfErr; } |
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Double_t D0PVBSCkf() const { return fD0PVBSCkf; } |
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Double_t D0PVBSCkfErr() const { return fD0PVBSCkfErr; } |
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Double_t D0PVBSCkfSignificance() const { return fD0PVBSCkf/fD0PVBSCkfErr; } |
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Double_t Ip3dPVBSCkf() const { return fIp3dPVBSCkf; } |
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Double_t Ip3dPVBSCkfErr() const { return fIp3dPVBSCkfErr; } |
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Double_t Ip3dPVBSCkfSignificance() const { return fIp3dPVBSCkf/fIp3dPVBSCkfErr; } |
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Double_t D0PVUB() const { return fD0PVUB; } |
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Double_t D0PVUBErr() const { return fD0PVUBErr; } |
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Double_t D0PVUBSignificance() const { return fD0PVUB/fD0PVUBErr; } |
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Double_t Ip3dPVUB() const { return fIp3dPVUB; } |
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Double_t Ip3dPVUBErr() const { return fIp3dPVUBErr; } |
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Double_t Ip3dPVUBSignificance() const { return fIp3dPVUB/fIp3dPVUBErr; } |
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Double_t D0PVUBBS() const { return fD0PVUBBS; } |
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Double_t D0PVUBBSErr() const { return fD0PVUBBSErr; } |
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Double_t D0PVUBBSSignificance() const { return fD0PVUBBS/fD0PVUBBSErr; } |
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Double_t Ip3dPVUBBS() const { return fIp3dPVUBBS; } |
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Double_t Ip3dPVUBBSErr() const { return fIp3dPVUBBSErr; } |
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Double_t Ip3dPVUBBSSignificance() const { return fIp3dPVUBBS/fIp3dPVUBBSErr; } |
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Double_t D0PVUBCkf() const { return fD0PVUBCkf; } |
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Double_t D0PVUBCkfErr() const { return fD0PVUBCkfErr; } |
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Double_t D0PVUBCkfSignificance() const { return fD0PVUBCkf/fD0PVUBCkfErr; } |
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Double_t Ip3dPVUBCkf() const { return fIp3dPVUBCkf; } |
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Double_t Ip3dPVUBCkfErr() const { return fIp3dPVUBCkfErr; } |
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Double_t Ip3dPVUBCkfSignificance() const { return fIp3dPVUBCkf/fIp3dPVUBCkfErr; } |
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Double_t D0PVUBBSCkf() const { return fD0PVUBBSCkf; } |
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Double_t D0PVUBBSCkfErr() const { return fD0PVUBBSCkfErr; } |
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Double_t D0PVUBBSCkfSignificance() const { return fD0PVUBBSCkf/fD0PVUBBSCkfErr; } |
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Double_t Ip3dPVUBBSCkf() const { return fIp3dPVUBBSCkf; } |
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Double_t Ip3dPVUBBSCkfErr() const { return fIp3dPVUBBSCkfErr; } |
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Double_t Ip3dPVUBBSCkfSignificance() const { return fIp3dPVUBBSCkf/fIp3dPVUBBSCkfErr; } |
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Double_t GsfPVCompatibility() const { return fGsfPVCompatibility; } |
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Double_t GsfPVBSCompatibility() const { return fGsfPVBSCompatibility; } |
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Double_t GsfPVCompatibilityMatched() const { return fGsfPVCompatibilityMatched; } |
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Double_t GsfPVBSCompatibilityMatched() const { return fGsfPVBSCompatibilityMatched; } |
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Double_t ConvPartnerDCotTheta() const { return fConvPartnerDCotTheta; } |
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Double_t ConvPartnerDist() const { return fConvPartnerDist; } |
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Double_t ConvPartnerRadius() const { return fConvPartnerRadius; } |
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Int_t ConvFlag() const { return fConvFlag; } |
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Double_t CaloIsolation() const { return fCaloIsolation; } // *DEPRECATED* |
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Int_t Classification() const { return fClassification; } |
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Double_t CovEtaEta() const { return fCovEtaEta; } |
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Double_t CoviEtaiEta() const { return fCoviEtaiEta; } |
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Double_t DeltaEtaSuperClusterTrackAtVtx() const { return fDeltaEtaSuperClTrkAtVtx; } |
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Double_t DeltaEtaSeedClusterTrackAtCalo() const { return fDeltaEtaSeedClTrkAtCalo; } |
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Double_t DeltaPhiSuperClusterTrackAtVtx() const { return fDeltaPhiSuperClTrkAtVtx; } |
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Double_t DeltaPhiSeedClusterTrackAtCalo() const { return fDeltaPhiSeedClTrkAtCalo; } |
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Double_t E15() const { return fE15; } |
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Double_t E25Max() const { return fE25Max; } |
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Double_t E55() const { return fE55; } |
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Double_t ESuperClusterOverP() const { return fESuperClusterOverP; } |
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Double_t ESeedClusterOverPout() const { return fESeedClusterOverPout; } |
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Double_t EEleClusterOverPout() const { return fEEleClusterOverPout; } |
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Double_t ESeedClusterOverPIn() const; |
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Double_t FBrem() const { return fFBrem; } |
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Double_t FBremOld() const { return (PIn() - POut())/PIn(); } |
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Double_t FracSharedHits() const { return fFracSharedHits; } |
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const Track *GsfTrk() const { return fGsfTrackRef.Obj(); } |
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Double_t HadronicOverEm() const { return fHadronicOverEm; } |
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Double_t HcalDepth1OverEcal() const { return fHcalDepth1OverEcal; } |
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Double_t HcalDepth2OverEcal() const { return fHcalDepth2OverEcal; } |
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Bool_t HasGsfTrk() const { return fGsfTrackRef.IsValid(); } |
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Bool_t HasTrackerTrk() const { return fTrackerTrackRef.IsValid(); } |
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Bool_t HasSuperCluster() const { return fSuperClusterRef.IsValid(); } |
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Double_t HcalIsolation() const { return fHcalJurassicIsolation; } // *DEPRECATED* |
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Double_t IDLikelihood() const { return fIDLikelihood; } |
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Bool_t IsEnergyScaleCorrected() const { return fIsEnergyScaleCorrected; } |
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Bool_t IsMomentumCorrected() const { return fIsMomentumCorrected; } |
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Bool_t IsEB() const { return fIsEB; } |
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Bool_t IsEE() const { return fIsEE; } |
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Bool_t IsEBEEGap() const { return fIsEBEEGap; } |
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Bool_t IsEBEtaGap() const { return fIsEBEtaGap; } |
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Bool_t IsEBPhiGap() const { return fIsEBPhiGap; } |
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Bool_t IsEEDeeGap() const { return fIsEEDeeGap; } |
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Bool_t IsEERingGap() const { return fIsEERingGap; } |
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Bool_t IsEcalDriven() const { return fIsEcalDriven; } |
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Bool_t IsTrackerDriven() const { return fIsTrackerDriven; } |
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Double_t Mva() const { return fMva; } |
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Double_t NumberOfClusters() const { return fNumberOfClusters; } |
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EObjType ObjType() const { return kElectron; } |
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Double_t PassLooseID() const { return fPassLooseID; } |
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Double_t PassTightID() const { return fPassTightID; } |
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Double_t PIn() const { return fPIn; } |
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Double_t POut() const { return fPOut; } |
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const SuperCluster *SCluster() const { return fSuperClusterRef.Obj(); } |
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Double_t ScPixCharge() const { return fScPixCharge; } |
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|
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Double_t EcalRecHitIsoDr04() const { return fEcalJurassicIsolation; } |
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Double_t HcalTowerSumEtDr04() const { return HcalDepth1TowerSumEtDr04() + |
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HcalDepth2TowerSumEtDr04(); } |
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Double_t HcalDepth1TowerSumEtDr04() const { return fHcalDepth1TowerSumEtDr04; } |
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Double_t HcalDepth2TowerSumEtDr04() const { return fHcalDepth2TowerSumEtDr04; } |
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Double_t TrackIsolationDr04() const { return fTrackIsolationDr04; } |
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Double_t EcalRecHitIsoDr03() const { return fEcalRecHitSumEtDr03; } |
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Double_t HcalTowerSumEtDr03() const { return fCaloTowerIsolation; } |
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Double_t HcalDepth1TowerSumEtDr03() const { return fHcalDepth1TowerSumEtDr03; } |
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Double_t HcalDepth2TowerSumEtDr03() const { return fHcalDepth2TowerSumEtDr03; } |
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Double_t TrackIsolationDr03() const { return fTrackIsolation; } |
169 |
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Double_t PFChargedHadronIso() const { return fPFChargedHadronIso; } |
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Double_t PFNeutralHadronIso() const { return fPFNeutralHadronIso; } |
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Double_t PFPhotonIso() const { return fPFPhotonIso; } |
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Bool_t MatchesVertexConversion() const { return fMatchesVertexConversion; } |
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UInt_t NAmbiguousGsfTracks() const { return fAmbiguousGsfTracks.Entries(); } |
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Bool_t HasAmbiguousGsfTrack(const Track *t) const { return fAmbiguousGsfTracks.HasObject(t); } |
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const Track *AmbiguousGsfTrack(UInt_t i) const { return fAmbiguousGsfTracks.At(i); } |
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Int_t CTFTrkNLayersWithMeasurement() const { return fCTFTrkNLayersWithMeasurement; } |
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|
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void AddAmbiguousGsfTrack(const Track *t) { fAmbiguousGsfTracks.Add(t); } |
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void SetCharge(Char_t x) { fCharge = x; ClearCharge(); } |
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void SetScPixCharge(Char_t x) { fScPixCharge = x; } |
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void SetD0PV(Double_t x) { fD0PV = x; } |
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void SetD0PVErr(Double_t x) { fD0PVErr = x; } |
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void SetIp3dPV(Double_t x) { fIp3dPV = x; } |
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void SetIp3dPVErr(Double_t x) { fIp3dPVErr = x; } |
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void SetD0PVBS(Double_t x) { fD0PVBS = x; } |
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void SetD0PVBSErr(Double_t x) { fD0PVBSErr = x; } |
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void SetIp3dPVBS(Double_t x) { fIp3dPVBS = x; } |
188 |
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void SetIp3dPVBSErr(Double_t x) { fIp3dPVBSErr = x; } |
189 |
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void SetD0PVCkf(Double_t x) { fD0PVCkf = x; } |
190 |
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void SetD0PVCkfErr(Double_t x) { fD0PVCkfErr = x; } |
191 |
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void SetIp3dPVCkf(Double_t x) { fIp3dPVCkf = x; } |
192 |
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void SetIp3dPVCkfErr(Double_t x) { fIp3dPVCkfErr = x; } |
193 |
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void SetD0PVBSCkf(Double_t x) { fD0PVBSCkf = x; } |
194 |
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void SetD0PVBSCkfErr(Double_t x) { fD0PVBSCkfErr = x; } |
195 |
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void SetIp3dPVBSCkf(Double_t x) { fIp3dPVBSCkf = x; } |
196 |
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void SetIp3dPVBSCkfErr(Double_t x) { fIp3dPVBSCkfErr = x; } |
197 |
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void SetD0PVUB(Double_t x) { fD0PVUB = x; } |
198 |
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void SetD0PVUBErr(Double_t x) { fD0PVUBErr = x; } |
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void SetIp3dPVUB(Double_t x) { fIp3dPVUB = x; } |
200 |
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void SetIp3dPVUBErr(Double_t x) { fIp3dPVUBErr = x; } |
201 |
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void SetD0PVUBBS(Double_t x) { fD0PVUBBS = x; } |
202 |
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void SetD0PVUBBSErr(Double_t x) { fD0PVUBBSErr = x; } |
203 |
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void SetIp3dPVUBBS(Double_t x) { fIp3dPVUBBS = x; } |
204 |
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void SetIp3dPVUBBSErr(Double_t x) { fIp3dPVUBBSErr = x; } |
205 |
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void SetD0PVUBCkf(Double_t x) { fD0PVUBCkf = x; } |
206 |
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void SetD0PVUBCkfErr(Double_t x) { fD0PVUBCkfErr = x; } |
207 |
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void SetIp3dPVUBCkf(Double_t x) { fIp3dPVUBCkf = x; } |
208 |
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void SetIp3dPVUBCkfErr(Double_t x) { fIp3dPVUBCkfErr = x; } |
209 |
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void SetD0PVUBBSCkf(Double_t x) { fD0PVUBBSCkf = x; } |
210 |
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void SetD0PVUBBSCkfErr(Double_t x) { fD0PVUBBSCkfErr = x; } |
211 |
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void SetIp3dPVUBBSCkf(Double_t x) { fIp3dPVUBBSCkf = x; } |
212 |
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void SetIp3dPVUBBSCkfErr(Double_t x) { fIp3dPVUBBSCkfErr = x; } |
213 |
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void SetGsfPVCompatibility(Double_t x) { fGsfPVCompatibility = x; } |
214 |
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void SetGsfPVBSCompatibility(Double_t x) { fGsfPVBSCompatibility = x; } |
215 |
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void SetGsfPVCompatibilityMatched(Double_t x) { fGsfPVCompatibilityMatched = x; } |
216 |
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void SetGsfPVBSCompatibilityMatched(Double_t x) { fGsfPVBSCompatibilityMatched = x; } |
217 |
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void SetConvPartnerDCotTheta(Double_t x) { fConvPartnerDCotTheta = x; } |
218 |
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void SetConvPartnerDist(Double_t x) { fConvPartnerDist = x; } |
219 |
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void SetConvPartnerRadius(Double_t x) { fConvPartnerRadius = x; } |
220 |
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void SetConvFlag(Int_t n) { fConvFlag = n; } |
221 |
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void SetClassification(Int_t x) { fClassification = x; } |
222 |
> |
void SetCovEtaEta(Double_t x) { fCovEtaEta = x; } |
223 |
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void SetCoviEtaiEta(Double_t x) { fCoviEtaiEta = x; } |
224 |
> |
void SetDeltaEtaSuperClusterTrackAtVtx(Double_t x) |
225 |
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{ fDeltaEtaSuperClTrkAtVtx = x; } |
226 |
> |
void SetDeltaEtaSeedClusterTrackAtCalo(Double_t x) |
227 |
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{ fDeltaEtaSeedClTrkAtCalo = x; } |
228 |
> |
void SetDeltaPhiSuperClusterTrackAtVtx(Double_t x) |
229 |
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{ fDeltaPhiSuperClTrkAtVtx = x; } |
230 |
> |
void SetDeltaPhiSeedClusterTrackAtCalo(Double_t x) |
231 |
> |
{ fDeltaPhiSeedClTrkAtCalo = x; } |
232 |
> |
void SetE15(Double_t x) { fE15 = x; } |
233 |
> |
void SetE25Max(Double_t x) { fE25Max = x; } |
234 |
> |
void SetE55(Double_t x) { fE55 = x; } |
235 |
> |
void SetESeedClusterOverPout(Double_t x) { fESeedClusterOverPout = x; } |
236 |
> |
void SetEEleClusterOverPout(Double_t x) { fEEleClusterOverPout = x; } |
237 |
> |
void SetESuperClusterOverP(Double_t x) { fESuperClusterOverP = x; } |
238 |
> |
void SetFBrem(Double_t x) { fFBrem = x; } |
239 |
> |
void SetFracSharedHits(Double_t x) { fFracSharedHits = x; } |
240 |
> |
void SetGsfTrk(const Track* t) |
241 |
> |
{ fGsfTrackRef = t; ClearCharge(); } |
242 |
> |
void SetHadronicOverEm(Double_t x) { fHadronicOverEm = x; } |
243 |
> |
void SetHcalDepth1OverEcal(Double_t x) { fHcalDepth1OverEcal = x; } |
244 |
> |
void SetHcalDepth2OverEcal(Double_t x) { fHcalDepth2OverEcal = x; } |
245 |
> |
void SetIDLikelihood(Double_t x) { fIDLikelihood = x; } |
246 |
> |
void SetIsEnergyScaleCorrected(Bool_t x) { fIsEnergyScaleCorrected = x; } |
247 |
> |
void SetIsMomentumCorrected(Bool_t x) { fIsMomentumCorrected = x; } |
248 |
> |
void SetNumberOfClusters(Double_t x) { fNumberOfClusters = x; } |
249 |
> |
void SetPIn(Double_t pIn) { fPIn = pIn; } |
250 |
> |
void SetPOut(Double_t pOut) { fPOut = pOut; } |
251 |
> |
void SetPassLooseID(Double_t passLooseID) { fPassLooseID = passLooseID; } |
252 |
> |
void SetPassTightID(Double_t passTightID) { fPassTightID = passTightID; } |
253 |
> |
void SetPtEtaPhi(Double_t pt, Double_t eta, Double_t phi); |
254 |
> |
void SetSuperCluster(const SuperCluster* sc) |
255 |
> |
{ fSuperClusterRef = sc; } |
256 |
> |
void SetTrackerTrk(const Track* t) |
257 |
> |
{ fTrackerTrackRef = t; ClearCharge(); } |
258 |
> |
void SetConvPartnerTrk(const Track *t) |
259 |
> |
{ fConvPartnerTrackRef = t; } |
260 |
> |
void SetEcalRecHitIsoDr04(Double_t x) { fEcalJurassicIsolation = x; } |
261 |
> |
void SetHcalDepth1TowerSumEtDr04(Double_t x) { fHcalDepth1TowerSumEtDr04 = x; } |
262 |
> |
void SetHcalDepth2TowerSumEtDr04(Double_t x) { fHcalDepth2TowerSumEtDr04 = x; } |
263 |
> |
void SetTrackIsolationDr04(Double_t x) { fTrackIsolationDr04 = x; } |
264 |
> |
void SetEcalRecHitIsoDr03(Double_t x) { fEcalRecHitSumEtDr03 = x; } |
265 |
> |
void SetHcalTowerSumEtDr03(Double_t x) { fCaloTowerIsolation = x; } |
266 |
> |
void SetHcalDepth1TowerSumEtDr03(Double_t x) { fHcalDepth1TowerSumEtDr03 = x; } |
267 |
> |
void SetHcalDepth2TowerSumEtDr03(Double_t x) { fHcalDepth2TowerSumEtDr03 = x; } |
268 |
> |
void SetTrackIsolationDr03(Double_t x) { fTrackIsolation = x; } |
269 |
> |
void SetPFChargedHadronIso(Double_t x) { fPFChargedHadronIso = x; } |
270 |
> |
void SetPFNeutralHadronIso(Double_t x) { fPFNeutralHadronIso = x; } |
271 |
> |
void SetPFPhotonIso(Double_t x) { fPFPhotonIso = x; } |
272 |
> |
void SetMva(Double_t x) { fMva = x; } |
273 |
> |
void SetIsEB(Bool_t b) { fIsEB = b; } |
274 |
> |
void SetIsEE(Bool_t b) { fIsEE = b; } |
275 |
> |
void SetIsEBEEGap(Bool_t b) { fIsEBEEGap = b; } |
276 |
> |
void SetIsEBEtaGap(Bool_t b) { fIsEBEtaGap = b; } |
277 |
> |
void SetIsEBPhiGap(Bool_t b) { fIsEBPhiGap = b; } |
278 |
> |
void SetIsEEDeeGap(Bool_t b) { fIsEEDeeGap = b; } |
279 |
> |
void SetIsEERingGap(Bool_t b) { fIsEERingGap = b; } |
280 |
> |
void SetIsEcalDriven(Bool_t b) { fIsEcalDriven = b; } |
281 |
> |
void SetIsTrackerDriven(Bool_t b) { fIsTrackerDriven = b; } |
282 |
> |
void SetMatchesVertexConversion(Bool_t b) { fMatchesVertexConversion = b; } |
283 |
> |
void SetConversionXYZ(Double_t x, Double_t y, Double_t z) |
284 |
> |
{ fConvPosition.SetXYZ(x,y,z); } |
285 |
> |
void SetCTFTrkNLayersWithMeasurement(Int_t x){ fCTFTrkNLayersWithMeasurement = x; } |
286 |
> |
|
287 |
> |
|
288 |
> |
const Track *TrackerTrk() const { return fTrackerTrackRef.Obj(); } |
289 |
> |
const Track *Trk() const { return BestTrk(); } |
290 |
> |
const Track *ConvPartnerTrk() const { return fConvPartnerTrackRef.Obj(); } |
291 |
> |
|
292 |
> |
// Some structural tools |
293 |
> |
void Mark(UInt_t i=1) const; |
294 |
> |
|
295 |
|
protected: |
296 |
< |
TRef fGsfTrackRef; //global combined track reference |
297 |
< |
TRef fTrackerTrackRef; //tracker track reference |
298 |
< |
|
299 |
< |
ClassDef(Electron, 1) // Electron class |
296 |
> |
Double_t GetCharge() const; |
297 |
> |
Double_t GetMass() const { return 0.51099892e-3; } |
298 |
> |
void GetMom() const; |
299 |
> |
|
300 |
> |
Vect3C fMom; //stored three-momentum |
301 |
> |
Char_t fCharge; //stored charge - filled with -99 when reading old files |
302 |
> |
Char_t fScPixCharge; //charge from supercluster-pixel matching |
303 |
> |
Ref<Track> fGsfTrackRef; //gsf track reference |
304 |
> |
Ref<Track> fTrackerTrackRef; //tracker track reference |
305 |
> |
Ref<Track> fConvPartnerTrackRef; //conversion partner track reference |
306 |
> |
Ref<SuperCluster> fSuperClusterRef; //reference to SuperCluster |
307 |
> |
Double32_t fESuperClusterOverP; //[0,0,14]super cluster e over p ratio |
308 |
> |
Double32_t fESeedClusterOverPout; //[0,0,14]seed cluster e over p mom |
309 |
> |
Double32_t fDeltaEtaSuperClTrkAtVtx; //[0,0,14]delta eta of super cluster with trk |
310 |
> |
Double32_t fDeltaEtaSeedClTrkAtCalo; //[0,0,14]delta eta of seeed cluster with trk |
311 |
> |
Double32_t fDeltaPhiSuperClTrkAtVtx; //[0,0,14]delta phi of super cluster with trk |
312 |
> |
Double32_t fDeltaPhiSeedClTrkAtCalo; //[0,0,14]delta phi of seeed cluster with trk |
313 |
> |
Double32_t fFBrem; //[0,0,14]brem fraction |
314 |
> |
Double32_t fHadronicOverEm; //[0,0,14]hadronic over em fraction *DEPRECATED* |
315 |
> |
Double32_t fHcalDepth1OverEcal; //[0,0,14]hadronic over em fraction depth1 |
316 |
> |
Double32_t fHcalDepth2OverEcal; //[0,0,14]hadronic over em fraction depth2 |
317 |
> |
Double32_t fNumberOfClusters; //[0,0,14]number of associated clusters |
318 |
> |
Double32_t fE15; //[0,0,14]1x5 crystal energy |
319 |
> |
Double32_t fE25Max; //[0,0,14]2x5 crystal energy (max of two possible sums) |
320 |
> |
Double32_t fE55; //[0,0,14]5x5 crystal energy |
321 |
> |
Double32_t fCovEtaEta; //[0,0,14]variance eta-eta |
322 |
> |
Double32_t fCoviEtaiEta; //[0,0,14]covariance eta-eta (in crystals) |
323 |
> |
Double32_t fCaloIsolation; //[0,0,14](non-jura) ecal isolation based on rechits dR 0.3 *DEPRECATED* |
324 |
> |
Double32_t fHcalJurassicIsolation; //[0,0,14]hcal jura iso dR 0.4 *DEPRECATED* |
325 |
> |
Double32_t fHcalDepth1TowerSumEtDr04; //[0,0,14]hcal depth1 tower based isolation dR 0.4 |
326 |
> |
Double32_t fHcalDepth2TowerSumEtDr04; //[0,0,14]hcal depth2 tower based isolation dR 0.4 |
327 |
> |
Double32_t fEcalJurassicIsolation; //[0,0,14]ecal jura iso dR 0.4 *RENAMING* |
328 |
> |
Double32_t fTrackIsolationDr04; //[0,0,14]isolation based on tracks dR 0.4 |
329 |
> |
Double32_t fCaloTowerIsolation; //[0,0,14]hcal tower based isolation dR 0.3 *DEPRECATED* |
330 |
> |
Double32_t fHcalDepth1TowerSumEtDr03; //[0,0,14]hcal depth1 tower based isolation dR 0.3 |
331 |
> |
Double32_t fHcalDepth2TowerSumEtDr03; //[0,0,14]hcal depth2 tower based isolation dR 0.3 |
332 |
> |
Double32_t fEcalRecHitSumEtDr03; //[0,0,14]ecal jura iso dR 0.3 |
333 |
> |
Double32_t fTrackIsolation; //[0,0,14]isolation based on tracks dR 0.3 *RENAMING* |
334 |
> |
Double32_t fPassLooseID; //[0,0,14]pass loose id |
335 |
> |
Double32_t fPassTightID; //[0,0,14]pass tight id |
336 |
> |
Double32_t fIDLikelihood; //[0,0,14]likelihood value |
337 |
> |
Double32_t fPIn; //[0,0,14]momentum at vtx |
338 |
> |
Double32_t fPOut; //[0,0,14]momentum at ecal surface |
339 |
> |
Double32_t fFracSharedHits; //[0,0,14]fraction of shared hits btw gsf and std. track |
340 |
> |
Double32_t fMva; //[0,0,14] pflow mva output |
341 |
> |
Double32_t fD0PV; //[0,0,14]transverse impact parameter to signal PV (gsf track) |
342 |
> |
Double32_t fD0PVErr; //[0,0,14]transverse impact parameter uncertainty to signal PV (gsf track) |
343 |
> |
Double32_t fIp3dPV; //[0,0,14]3d impact parameter to signal PV (gsf track) |
344 |
> |
Double32_t fIp3dPVErr; //[0,0,14]3d impact parameter uncertainty to signal PV (gsf track) |
345 |
> |
Double32_t fD0PVBS; //[0,0,14]transverse impact parameter to signal PV w/ bs constraint (gsf track) |
346 |
> |
Double32_t fD0PVBSErr; //[0,0,14]transverse impact parameter uncertainty to signal PV w/ bs constraint (gsf track) |
347 |
> |
Double32_t fIp3dPVBS; //[0,0,14]3d impact parameter to signal PV w/ bs constraint (gsf track) |
348 |
> |
Double32_t fIp3dPVBSErr; //[0,0,14]3d impact parameter uncertainty to signal PV w/ bs constraint (gsf track) |
349 |
> |
Double32_t fD0PVCkf; //[0,0,14]transverse impact parameter to signal PV (ckf track) |
350 |
> |
Double32_t fD0PVCkfErr; //[0,0,14]transverse impact parameter uncertainty to signal PV (ckf track) |
351 |
> |
Double32_t fIp3dPVCkf; //[0,0,14]3d impact parameter to signal PV (ckf track) |
352 |
> |
Double32_t fIp3dPVCkfErr; //[0,0,14]3d impact parameter uncertainty to signal PV (ckf track) |
353 |
> |
Double32_t fD0PVBSCkf; //[0,0,14]transverse impact parameter to signal PV w/ bs constraint (ckf track) |
354 |
> |
Double32_t fD0PVBSCkfErr; //[0,0,14]transverse impact parameter uncertainty to signal PV w/ bs constraint (ckf track) |
355 |
> |
Double32_t fIp3dPVBSCkf; //[0,0,14]3d impact parameter to signal PV w/ bs constraint (ckf track) |
356 |
> |
Double32_t fIp3dPVBSCkfErr; //[0,0,14]3d impact parameter uncertainty to signal PV w/ bs constraint (ckf track) |
357 |
> |
Double32_t fD0PVUB; //[0,0,14]transverse impact parameter to signal PVUB (gsf track) |
358 |
> |
Double32_t fD0PVUBErr; //[0,0,14]transverse impact parameter uncertainty to signal PVUB (gsf track) |
359 |
> |
Double32_t fIp3dPVUB; //[0,0,14]3d impact parameter to signal PVUB (gsf track) |
360 |
> |
Double32_t fIp3dPVUBErr; //[0,0,14]3d impact parameter uncertainty to signal PVUB (gsf track) |
361 |
> |
Double32_t fD0PVUBBS; //[0,0,14]transverse impact parameter to signal PVUB w/ bs constraint (gsf track) |
362 |
> |
Double32_t fD0PVUBBSErr; //[0,0,14]transverse impact parameter uncertainty to signal PVUB w/ bs constraint (gsf track) |
363 |
> |
Double32_t fIp3dPVUBBS; //[0,0,14]3d impact parameter to signal PVUB w/ bs constraint (gsf track) |
364 |
> |
Double32_t fIp3dPVUBBSErr; //[0,0,14]3d impact parameter uncertainty to signal PVUB w/ bs constraint (gsf track) |
365 |
> |
Double32_t fD0PVUBCkf; //[0,0,14]transverse impact parameter to signal PVUB (ckf track) |
366 |
> |
Double32_t fD0PVUBCkfErr; //[0,0,14]transverse impact parameter uncertainty to signal PVUB (ckf track) |
367 |
> |
Double32_t fIp3dPVUBCkf; //[0,0,14]3d impact parameter to signal PVUB (ckf track) |
368 |
> |
Double32_t fIp3dPVUBCkfErr; //[0,0,14]3d impact parameter uncertainty to signal PVUB (ckf track) |
369 |
> |
Double32_t fD0PVUBBSCkf; //[0,0,14]transverse impact parameter to signal PVUB w/ bs constraint (ckf track) |
370 |
> |
Double32_t fD0PVUBBSCkfErr; //[0,0,14]transverse impact parameter uncertainty to signal PVUB w/ bs constraint (ckf track) |
371 |
> |
Double32_t fIp3dPVUBBSCkf; //[0,0,14]3d impact parameter to signal PVUB w/ bs constraint (ckf track) |
372 |
> |
Double32_t fIp3dPVUBBSCkfErr; //[0,0,14]3d impact parameter uncertainty to signal PVUB w/ bs constraint (ckf track) |
373 |
> |
Double32_t fGsfPVCompatibility; //[0,0,14]gsf compatibility with signal PV |
374 |
> |
Double32_t fGsfPVBSCompatibility; //[0,0,14]gsf compatibility with signal PV w/ bs constraint |
375 |
> |
Double32_t fGsfPVCompatibilityMatched; //[0,0,14]gsf compatibility with signal PV (matching ckf track excluded from vertex) |
376 |
> |
Double32_t fGsfPVBSCompatibilityMatched; //[0,0,14]gsf compatibility with signal PV w/ bs constraint (matching ckf track excluded from vertex) |
377 |
> |
Double32_t fConvPartnerDCotTheta; //[0,0,14]delta cot theta to nearest conversion partner track |
378 |
> |
Double32_t fConvPartnerDist; //[0,0,14]distance in x-y plane to nearest conversion partner track |
379 |
> |
Double32_t fConvPartnerRadius; //[0,0,14]radius of helix intersection with conversion partner track |
380 |
> |
Double32_t fPFChargedHadronIso; //[0,0,14]pf isolation, charged hadrons |
381 |
> |
Double32_t fPFNeutralHadronIso; //[0,0,14]pf isolation, neutral hadrons |
382 |
> |
Double32_t fPFPhotonIso; //[0,0,14]pf isolation, photons |
383 |
> |
Int_t fConvFlag; //conversion flag indicating which track combination was used |
384 |
> |
Vect3C fConvPosition; |
385 |
> |
Bool_t fIsEnergyScaleCorrected; //class dependent escale correction |
386 |
> |
Bool_t fIsMomentumCorrected; //class dependent E-p combination |
387 |
> |
Int_t fClassification; //classification (see GsfElectron.h) |
388 |
> |
Bool_t fIsEB; //is ECAL barrel |
389 |
> |
Bool_t fIsEE; //is ECAL Endcap |
390 |
> |
Bool_t fIsEBEEGap; //is in barrel-endcap gap |
391 |
> |
Bool_t fIsEBEtaGap; //is in EB eta module gap |
392 |
> |
Bool_t fIsEBPhiGap; //is in EB phi module gap |
393 |
> |
Bool_t fIsEEDeeGap; //is in EE dee gap |
394 |
> |
Bool_t fIsEERingGap; //is in EE ring gap |
395 |
> |
Bool_t fIsEcalDriven; //is std. egamma electron |
396 |
> |
Bool_t fIsTrackerDriven; //is pflow track-seeded electron |
397 |
> |
Bool_t fMatchesVertexConversion; |
398 |
> |
RefArray<Track> fAmbiguousGsfTracks; //ambiguous gsf tracks for this electron |
399 |
> |
Double_t fEEleClusterOverPout; //energy of the electron cluster |
400 |
> |
Int_t fCTFTrkNLayersWithMeasurement; //number of tracker layers from associated ctf trk |
401 |
> |
|
402 |
> |
ClassDef(Electron, 13) // Electron class |
403 |
|
}; |
404 |
|
} |
405 |
|
|
406 |
|
//-------------------------------------------------------------------------------------------------- |
407 |
< |
inline const mithep::Track *mithep::Electron::GetGsfTrack() const |
407 |
> |
inline void mithep::Electron::Mark(UInt_t ib) const |
408 |
|
{ |
409 |
< |
// Return global combined track. |
409 |
> |
// mark myself |
410 |
> |
mithep::DataObject::Mark(ib); |
411 |
> |
// mark my dependencies if they are there |
412 |
> |
if (fSuperClusterRef.IsValid()) |
413 |
> |
fSuperClusterRef.Obj()->Mark(ib); |
414 |
> |
if (fGsfTrackRef.IsValid()) |
415 |
> |
fGsfTrackRef.Obj()->Mark(ib); |
416 |
> |
if (fTrackerTrackRef.IsValid()) |
417 |
> |
fTrackerTrackRef.Obj()->Mark(ib); |
418 |
> |
if (fConvPartnerTrackRef.IsValid()) |
419 |
> |
fConvPartnerTrackRef.Obj()->Mark(ib); |
420 |
> |
fAmbiguousGsfTracks.Mark(ib); |
421 |
> |
} |
422 |
> |
|
423 |
> |
//-------------------------------------------------------------------------------------------------- |
424 |
> |
inline const mithep::Track *mithep::Electron::BestTrk() const |
425 |
> |
{ |
426 |
> |
// Return "best" track. |
427 |
|
|
428 |
< |
return static_cast<const Track*>(fGsfTrackRef.GetObject()); |
428 |
> |
if (HasGsfTrk()) |
429 |
> |
return GsfTrk(); |
430 |
> |
else if (HasTrackerTrk()) |
431 |
> |
return TrackerTrk(); |
432 |
> |
|
433 |
> |
return 0; |
434 |
|
} |
435 |
|
|
436 |
|
//-------------------------------------------------------------------------------------------------- |
437 |
< |
inline const mithep::Track *mithep::Electron::GetTrackerTrack() const |
437 |
> |
inline Double_t mithep::Electron::GetCharge() const |
438 |
|
{ |
439 |
< |
// Return tracker track. |
439 |
> |
// Return stored charge, unless it is set to invalid (-99), |
440 |
> |
// in that case get charge from track as before |
441 |
> |
|
442 |
> |
if (fCharge==-99) |
443 |
> |
return mithep::ChargedParticle::GetCharge(); |
444 |
> |
else |
445 |
> |
return fCharge; |
446 |
|
|
53 |
– |
return static_cast<const Track*>(fTrackerTrackRef.GetObject()); |
447 |
|
} |
448 |
|
|
449 |
|
//-------------------------------------------------------------------------------------------------- |
450 |
< |
inline const mithep::Track *mithep::Electron::GetTrack() const |
450 |
> |
inline void mithep::Electron::GetMom() const |
451 |
|
{ |
452 |
< |
// Return "best" track. |
452 |
> |
// Get momentum of the electron. We use an explicitly stored three vector, with the pdg mass, |
453 |
> |
// since the momentum vector may be computed non-trivially in cmssw |
454 |
> |
|
455 |
> |
fCachedMom.SetCoordinates(fMom.Rho(),fMom.Eta(),fMom.Phi(),GetMass()); |
456 |
> |
} |
457 |
|
|
458 |
< |
if (GetGsfTrack()) |
459 |
< |
return GetGsfTrack(); |
460 |
< |
else if (GetTrackerTrack()) |
461 |
< |
return GetTrackerTrack(); |
458 |
> |
//------------------------------------------------------------------------------------------------- |
459 |
> |
inline Double_t mithep::Electron::ESeedClusterOverPIn() const |
460 |
> |
{ |
461 |
> |
// Return energy of the SuperCluster seed divided by the magnitude |
462 |
> |
// of the track momentum at the vertex. |
463 |
> |
|
464 |
> |
return SCluster()->Seed()->Energy() / PIn(); |
465 |
> |
} |
466 |
|
|
467 |
< |
return 0; |
467 |
> |
//------------------------------------------------------------------------------------------------- |
468 |
> |
inline void mithep::Electron::SetPtEtaPhi(Double_t pt, Double_t eta, Double_t phi) |
469 |
> |
{ |
470 |
> |
// Set three-vector |
471 |
> |
|
472 |
> |
fMom.Set(pt,eta,phi); |
473 |
> |
ClearMom(); |
474 |
|
} |
475 |
|
#endif |