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root/cvsroot/UserCode/MitAna/DataTree/interface/Electron.h
Revision: 1.16
Committed: Sat Sep 6 18:03:23 2008 UTC (16 years, 8 months ago) by sixie
Content type: text/plain
Branch: MAIN
Changes since 1.15: +4 -7 lines
Log Message:
Remove functions to calculate isolation for electrons. This functionality was moved to a separate class

File Contents

# User Rev Content
1 bendavid 1.1 //--------------------------------------------------------------------------------------------------
2 sixie 1.16 // $Id: Electron.h,v 1.15 2008/08/22 09:55:40 sixie Exp $
3 bendavid 1.1 //
4 paus 1.3 // Electron
5 bendavid 1.1 //
6     // Details to be worked out...
7     //
8 sixie 1.13 // Authors: C.Loizides, J.Bendavid, S.Xie
9 bendavid 1.1 //--------------------------------------------------------------------------------------------------
10    
11 loizides 1.6 #ifndef DATATREE_ELECTRON_H
12     #define DATATREE_ELECTRON_H
13    
14 sixie 1.13 #include "MitAna/DataTree/interface/SuperCluster.h"
15 bendavid 1.11 #include "MitAna/DataTree/interface/ChargedParticle.h"
16 loizides 1.6
17 bendavid 1.1 namespace mithep
18     {
19 bendavid 1.11 class Electron : public ChargedParticle
20 bendavid 1.1 {
21     public:
22     Electron() {}
23     ~Electron() {}
24    
25 sixie 1.14 const Track *BestTrk() const;
26     const Track *GsfTrk() const;
27     const Track *TrackerTrk() const;
28     const SuperCluster *SCluster() const;
29     FourVector Mom() const;
30     const Track *Trk() const { return BestTrk(); }
31     Double_t E() const {return SCluster()->Energy(); }
32    
33 sixie 1.13 Double_t Mass() const { return 0.51099892e-3; }
34     Double_t ESuperClusterOverP() const { return fESuperClusterOverP; }
35     Double_t ESeedClusterOverPout() const { return fESeedClusterOverPout; }
36 sixie 1.15 Double_t ESeedClusterOverPIn() const;
37     Double_t PIn() const { return fPIn; }
38     Double_t POut() const { return fPOut; }
39 sixie 1.13 Double_t DeltaEtaSuperClusterTrackAtVtx() const { return fDeltaEtaSuperClTrkAtVtx; }
40     Double_t DeltaEtaSeedClusterTrackAtCalo() const { return fDeltaEtaSeedClTrkAtCalo; }
41     Double_t DeltaPhiSuperClusterTrackAtVtx() const { return fDeltaPhiSuperClTrkAtVtx; }
42     Double_t DeltaPhiSeedClusterTrackAtCalo() const { return fDeltaPhiSeedClTrkAtCalo; }
43     Double_t HadronicOverEm() const { return fHadronicOverEm; }
44     Double_t IsEnergyScaleCorrected() const { return fIsEnergyScaleCorrected; }
45     Double_t IsMomentumCorrected() const { return fIsMomentumCorrected; }
46     Double_t NumberOfClusters() const { return fNumberOfClusters; }
47     Double_t Classification() const { return fClassification; }
48     Double_t E33() const { return fE33; }
49     Double_t E55() const { return fE55; }
50     Double_t CovEtaEta() const { return fCovEtaEta; }
51     Double_t CovEtaPhi() const { return fCovEtaPhi; }
52     Double_t CovPhiPhi() const { return fCovPhiPhi; }
53     Double_t CaloIsolation() const { return fCaloIsolation; }
54 sixie 1.16 Double_t CaloTowerIsolation() const { return fCaloTowerIsolation; }
55 sixie 1.13 Double_t TrackIsolation() const { return fTrackIsolation; }
56 sixie 1.15 Double_t PassLooseID() const { return fPassLooseID; }
57     Double_t PassTightID() const { return fPassTightID; }
58     Double_t IDLikelihood() const { return fIDLikelihood; }
59 sixie 1.13
60     void SetGsfTrk(Track* t) { fGsfTrackRef = t; }
61     void SetTrackerTrk(Track* t) { fTrackerTrackRef = t; }
62     void SetSuperCluster(SuperCluster* sc) { fSuperClusterRef = sc; }
63     void SetESuperClusterOverP(Double_t x) { fESuperClusterOverP = x; }
64     void SetESeedClusterOverPout(Double_t x) { fESeedClusterOverPout = x; }
65 sixie 1.15 void SetPIn(Double_t PIn) { fPIn = PIn; }
66     void SetPOut(Double_t POut) { fPOut = POut; }
67 sixie 1.13 void SetDeltaEtaSuperClusterTrackAtVtx(Double_t x) { fDeltaEtaSuperClTrkAtVtx = x; }
68     void SetDeltaEtaSeedClusterTrackAtCalo(Double_t x) { fDeltaEtaSeedClTrkAtCalo = x; }
69     void SetDeltaPhiSuperClusterTrackAtVtx(Double_t x) { fDeltaPhiSuperClTrkAtVtx = x; }
70     void SetDeltaPhiSeedClusterTrackAtCalo(Double_t x) { fDeltaPhiSeedClTrkAtCalo = x; }
71     void SetHadronicOverEm(Double_t x) { fHadronicOverEm = x; }
72     void SetIsEnergyScaleCorrected(Double_t x) { fIsEnergyScaleCorrected = x; }
73     void SetIsMomentumCorrected(Double_t x) { fIsMomentumCorrected = x; }
74     void SetNumberOfClusters(Double_t x) { fNumberOfClusters = x; }
75     void SetClassification(Double_t x) { fClassification = x; }
76     void SetE33(Double_t E33) { fE33 = E33; }
77     void SetE55(Double_t E55) { fE55 = E55; }
78     void SetCovEtaEta(Double_t CovEtaEta) { fCovEtaEta = CovEtaEta; }
79     void SetCovEtaPhi(Double_t CovEtaPhi) { fCovEtaPhi = CovEtaPhi; }
80     void SetCovPhiPhi(Double_t CovPhiPhi) { fCovPhiPhi = CovPhiPhi; }
81     void SetCaloIsolation(Double_t CaloIsolation) { fCaloIsolation = CaloIsolation; }
82 sixie 1.16 void SetCaloTowerIsolation(Double_t TowerIso) { fCaloTowerIsolation = TowerIso; }
83 sixie 1.13 void SetTrackIsolation(Double_t TrackIsolation) { fTrackIsolation = TrackIsolation;}
84 sixie 1.15 void SetPassLooseID(Double_t passLooseID) { fPassLooseID = passLooseID; }
85     void SetPassTightID(Double_t passTightID) { fPassTightID = passTightID; }
86     void SetIDLikelihood(Double_t likelihood) { fIDLikelihood = likelihood; }
87 sixie 1.13
88 loizides 1.8 protected:
89 loizides 1.9 TRef fGsfTrackRef; //global combined track reference
90     TRef fTrackerTrackRef; //tracker track reference
91 sixie 1.13 TRef fSuperClusterRef; //superCluster
92    
93     Double_t fESuperClusterOverP;
94     Double_t fESeedClusterOverPout;
95     Double_t fDeltaEtaSuperClTrkAtVtx;
96     Double_t fDeltaEtaSeedClTrkAtCalo;
97     Double_t fDeltaPhiSuperClTrkAtVtx;
98     Double_t fDeltaPhiSeedClTrkAtCalo;
99     Double_t fHadronicOverEm;
100     Double_t fIsEnergyScaleCorrected;
101     Double_t fIsMomentumCorrected;
102     Double_t fNumberOfClusters;
103     Double_t fClassification;
104     Double_t fSuperClusterPx;
105     Double_t fSuperClusterPy;
106     Double_t fSuperClusterPz;
107     Double_t fSuperClusterE;
108     Double_t fE33;
109     Double_t fE55;
110     Double_t fCovEtaEta;
111     Double_t fCovEtaPhi;
112     Double_t fCovPhiPhi;
113     Double_t fCaloIsolation;
114 sixie 1.16 Double_t fCaloTowerIsolation;
115 sixie 1.13 Double_t fTrackIsolation;
116 sixie 1.15 Double_t fPassLooseID;
117     Double_t fPassTightID;
118     Double_t fIDLikelihood;
119     Double_t fPIn;
120     Double_t fPOut;
121 sixie 1.13
122 loizides 1.7 ClassDef(Electron, 1) // Electron class
123 bendavid 1.1 };
124 loizides 1.4 }
125 loizides 1.8
126 loizides 1.9 //--------------------------------------------------------------------------------------------------
127 loizides 1.10 inline const mithep::Track *mithep::Electron::BestTrk() const
128 loizides 1.9 {
129 loizides 1.10 // Return "best" track.
130    
131     if (GsfTrk())
132     return GsfTrk();
133     else if (TrackerTrk())
134     return TrackerTrk();
135 loizides 1.9
136 loizides 1.10 return 0;
137 loizides 1.9 }
138    
139     //--------------------------------------------------------------------------------------------------
140 loizides 1.10 inline const mithep::Track *mithep::Electron::GsfTrk() const
141 loizides 1.9 {
142 loizides 1.10 // Return global combined track.
143 loizides 1.9
144 loizides 1.10 return static_cast<const Track*>(fGsfTrackRef.GetObject());
145 loizides 1.9 }
146    
147     //--------------------------------------------------------------------------------------------------
148 loizides 1.10 inline const mithep::Track *mithep::Electron::TrackerTrk() const
149 loizides 1.9 {
150 loizides 1.10 // Return tracker track.
151 loizides 1.9
152 loizides 1.10 return static_cast<const Track*>(fTrackerTrackRef.GetObject());
153 loizides 1.9 }
154 sixie 1.13 //--------------------------------------------------------------------------------------------------
155     inline const mithep::SuperCluster *mithep::Electron::SCluster() const
156     {
157     // Return Super cluster
158    
159     return static_cast<const SuperCluster*>(fSuperClusterRef.GetObject());
160     }
161 sixie 1.14
162     //-------------------------------------------------------------------------------------------------
163     inline mithep::FourVector mithep::Electron::Mom() const
164     {
165     // Return Momentum of the electron. We use the direction of the
166     // Track and the Energy of the Super Cluster
167    
168     double P = TMath::Sqrt( E()*E() - Mass()*Mass());
169     return FourVector(P*sin(Trk()->Theta())*cos(Trk()->Phi()),
170     P*sin(Trk()->Theta())*sin(Trk()->Phi()), P*cos(Trk()->Theta()), E());
171     }
172 sixie 1.15
173     inline Double_t mithep::Electron::ESeedClusterOverPIn() const
174     {
175     // Return Energy of the SuperCluster Seed Divided by the magnitude
176     // of the track momentum at the vertex
177    
178     return SCluster()->Seed()->Energy() / PIn();
179     }
180    
181    
182 loizides 1.8 #endif
183 sixie 1.15