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root/cvsroot/UserCode/MitAna/DataTree/interface/SuperCluster.h
Revision: 1.22
Committed: Fri Jul 15 17:23:50 2011 UTC (13 years, 9 months ago) by fabstoec
Content type: text/plain
Branch: MAIN
Changes since 1.21: +2 -1 lines
Log Message:
added R9() to SuperCluster

File Contents

# User Rev Content
1 sixie 1.1 //--------------------------------------------------------------------------------------------------
2 fabstoec 1.22 // $Id: SuperCluster.h,v 1.21 2010/09/20 12:09:15 bendavid Exp $
3 sixie 1.1 //
4     // SuperCluster
5     //
6 loizides 1.7 // This class holds the super cluster information.
7 sixie 1.1 //
8     // Authors: S.Xie
9     //--------------------------------------------------------------------------------------------------
10    
11 loizides 1.3 #ifndef MITANA_DATATREE_SUPERCLUSTER_H
12     #define MITANA_DATATREE_SUPERCLUSTER_H
13 sixie 1.1
14     #include <TMath.h>
15 loizides 1.11 #include "MitCommon/DataFormats/interface/Vect3C.h"
16 sixie 1.1 #include "MitAna/DataTree/interface/DataObject.h"
17     #include "MitAna/DataTree/interface/BasicCluster.h"
18 bendavid 1.18 #include "MitAna/DataTree/interface/CaloTower.h"
19 sixie 1.1 #include "MitAna/DataCont/interface/RefArray.h"
20 bendavid 1.8 #include "MitAna/DataCont/interface/Ref.h"
21 sixie 1.1
22     namespace mithep
23     {
24     class SuperCluster : public DataObject
25     {
26     public:
27 loizides 1.7 SuperCluster() : fEnergy(0), fEtaWidth(0), fPreshowerEnergy(0),
28     fPhiWidth(0), fRawEnergy(0) {}
29 sixie 1.1
30 sixie 1.16 void AddCluster(const BasicCluster *c) { fClusters.Add(c); }
31 bendavid 1.18 void AddTower(const CaloTower *t) { fCaloTowers.Add(t); }
32 sixie 1.16 const BasicCluster *Cluster(UInt_t i) const { return fClusters.At(i); }
33     UInt_t ClusterSize() const { return fClusters.Entries(); }
34     Int_t Compare(const TObject *o) const;
35     Double_t Energy() const { return fEnergy; }
36     Double_t Et() const;
37     Double_t Eta() const { return fPoint.Eta(); }
38 bendavid 1.20 Double_t AbsEta() const { return TMath::Abs(Eta()); }
39 sixie 1.16 Double_t EtaWidth() const { return fEtaWidth; }
40 bendavid 1.21 Bool_t HasSeed() const { return fSeedRef.IsValid(); }
41 bendavid 1.19 Bool_t HasTower(const CaloTower *t) const { return fCaloTowers.HasObject(t); }
42 sixie 1.16 Double_t HcalDepth1Energy() const { return fHcalDepth1Energy; }
43     Double_t HcalDepth2Energy() const { return fHcalDepth2Energy; }
44     Double_t HadDepth1OverEm() const { return fHcalDepth1Energy/fEnergy; }
45     Double_t HadDepth2OverEm() const { return fHcalDepth2Energy/fEnergy; }
46     Double_t HadOverEm() const { return (fHcalDepth1Energy+
47     fHcalDepth2Energy)/fEnergy; }
48     Bool_t IsSortable() const { return kTRUE; }
49     EObjType ObjType() const { return kSuperCluster; }
50 bendavid 1.18 UInt_t NTowers() const { return fCaloTowers.Entries(); }
51 sixie 1.16 Double_t Phi() const { return fPoint.Phi(); }
52     Double_t PhiWidth() const { return fPhiWidth; }
53     ThreeVectorC Point() const { return fPoint.V(); }
54     void Print(Option_t *opt="") const;
55     Double_t PreshowerEnergy() const { return fPreshowerEnergy; }
56     Double_t RawEnergy() const { return fRawEnergy; }
57     Double_t Rho() const { return fPoint.Rho(); }
58 fabstoec 1.22 Double_t R9() const { return fSeedRef.Obj()->E3x3()/fRawEnergy; }
59 sixie 1.16 const BasicCluster *Seed() const { return fSeedRef.Obj(); }
60 bendavid 1.18 const CaloTower *Tower(UInt_t i) const { return fCaloTowers.At(i); }
61 sixie 1.16 void SetEnergy(Double_t energy) { fEnergy = energy; }
62     void SetEtaWidth(Double_t etaWidth) { fEtaWidth = etaWidth; }
63     void SetPhiWidth(Double_t phiWidth) { fPhiWidth = phiWidth; }
64     void SetPreshowerEnergy(Double_t e) { fPreshowerEnergy = e; }
65     void SetRawEnergy(Double_t rawEnergy) { fRawEnergy = rawEnergy; }
66     void SetHcalDepth1Energy(Double_t x) { fHcalDepth1Energy = x; }
67     void SetHcalDepth2Energy(Double_t x) { fHcalDepth2Energy = x; }
68     void SetSeed(const BasicCluster *s) { fSeedRef = s; }
69     void SetXYZ(Double_t x, Double_t y, Double_t z) { fPoint.SetXYZ(x,y,z); }
70 sixie 1.1
71     protected:
72 sixie 1.16 Vect3C fPoint; //centroid Position
73     Double32_t fEnergy; //[0,0,14]super cluster energy
74     Double32_t fEtaWidth; //[0,0,14]width in Phi
75     Double32_t fPreshowerEnergy; //[0,0,14]energy in the preshower
76     Double32_t fPhiWidth; //[0,0,14]width in Phi
77     Double32_t fRawEnergy; //[0,0,14]super cluster raw energy
78     Double32_t fHcalDepth1Energy; //[0,0,14] hcal depth1 over ECAL energy
79     Double32_t fHcalDepth2Energy; //[0,0,14] hcal depth2 over ECAL energy
80     RefArray<BasicCluster> fClusters; //assigned basic clusters
81     Ref<BasicCluster> fSeedRef; //seed cluster
82 bendavid 1.18 RefArray<CaloTower> fCaloTowers; //calo towers (matched by detid)
83 sixie 1.1
84 bendavid 1.18 ClassDef(SuperCluster, 3) // Super cluster class
85 sixie 1.1 };
86     }
87 loizides 1.13
88     //--------------------------------------------------------------------------------------------------
89 sixie 1.14 inline Double_t mithep::SuperCluster::Et() const
90     {
91 loizides 1.15 // Return transverse energy.
92    
93 sixie 1.14 return fEnergy*fPoint.Rho()/fPoint.V().R();
94     }
95    
96     //--------------------------------------------------------------------------------------------------
97 loizides 1.13 inline Int_t mithep::SuperCluster::Compare(const TObject *o) const
98     {
99     // Default compare function for sorting according to transverse momentum.
100     // Returns -1 if this object is smaller than given object, 0 if objects are
101     // equal and 1 if this is larger than given object.
102    
103     const mithep::SuperCluster *s = dynamic_cast<const mithep::SuperCluster *>(o);
104     if (!s)
105     return 1;
106    
107     Double_t mye = Energy();
108     Double_t e = s->Energy();
109     if (mye>e)
110     return -1;
111     else if (e>mye)
112     return +1;
113     return 0;
114     }
115 sixie 1.1 #endif