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df9db588 1#ifndef AliAODHeader_H
2#define AliAODHeader_H
3/* Copyright(c) 1998-2007, ALICE Experiment at CERN, All rights reserved. *
4 * See cxx source for full Copyright notice */
5
6/* $Id$ */
7
8//-------------------------------------------------------------------------
9ae2e5e6 9// AOD event header class
df9db588 10// Author: Markus Oldenburg, CERN
11//-------------------------------------------------------------------------
12
9ae2e5e6 13#include "AliVHeader.h"
df9db588 14#include "AliAODVertex.h"
a5f7aba4 15#include <TString.h>
f1c1d7c6 16#include "AliCentrality.h"
df9db588 17
1aa76f71 18class TGeoHMatrix;
27346f69 19class TString;
1aa76f71 20
f1c1d7c6 21
9ae2e5e6 22class AliAODHeader : public AliVHeader {
df9db588 23
24 public :
31fd97b2 25 AliAODHeader();
df9db588 26
abfce367 27 AliAODHeader(Int_t nRun, UShort_t nBunchX, UInt_t nOrbit, UInt_t nPeriod, const Char_t *title="");
31fd97b2 28 AliAODHeader(Int_t nRun,
29 UShort_t nBunchX,
30 UInt_t nOrbit,
89cf15db 31 UInt_t nPeriod,
31fd97b2 32 Int_t refMult,
33 Int_t refMultPos,
34 Int_t refMultNeg,
35 Double_t magField,
6b6f8d32 36 Double_t muonMagFieldScale,
37 Double_t cent,
38 Double_t n1Energy,
39 Double_t p1Energy,
40 Double_t n2Energy,
41 Double_t p2Energy,
a85132e7 42 Double_t *emEnergy,
31fd97b2 43 ULong64_t fTriggerMask,
44 UChar_t fTriggerCluster,
45 UInt_t fEventType,
fa8b0e56 46 const Char_t *title="",
47 Int_t nMuons=0,
48 Int_t nDimuons=0);
31fd97b2 49
df9db588 50 virtual ~AliAODHeader();
51 AliAODHeader(const AliAODHeader& evt);
52 AliAODHeader& operator=(const AliAODHeader& evt);
a5f7aba4 53
54 Int_t GetRunNumber() const { return fRunNumber;}
55 Int_t GetEventNumberESDFile() const { return fEventNumberESDFile;}
31fd97b2 56 UShort_t GetBunchCrossNumber() const { return fBunchCrossNumber; }
57 UInt_t GetOrbitNumber() const { return fOrbitNumber; }
89cf15db 58 UInt_t GetPeriodNumber() const { return fPeriodNumber; }
df9db588 59 ULong64_t GetTriggerMask() const { return fTriggerMask; }
60 UChar_t GetTriggerCluster() const { return fTriggerCluster; }
27346f69 61 TString GetFiredTriggerClasses()const { return fFiredTriggers;}
df9db588 62 UInt_t GetEventType() const { return fEventType; }
63 Double_t GetMagneticField() const { return fMagneticField; }
6b6f8d32 64 Double_t GetMuonMagFieldScale() const { return fMuonMagFieldScale; }
65
df9db588 66 Double_t GetCentrality() const { return fCentrality; }
6b6f8d32 67 Double_t GetZDCN1Energy() const { return fZDCN1Energy; }
68 Double_t GetZDCP1Energy() const { return fZDCP1Energy; }
69 Double_t GetZDCN2Energy() const { return fZDCN2Energy; }
70 Double_t GetZDCP2Energy() const { return fZDCP2Energy; }
a85132e7 71 Double_t GetZDCEMEnergy(Int_t i) const { return fZDCEMEnergy[i]; }
df9db588 72 Int_t GetRefMultiplicity() const { return fRefMult; }
73 Int_t GetRefMultiplicityPos() const { return fRefMultPos; }
74 Int_t GetRefMultiplicityNeg() const { return fRefMultNeg; }
fa8b0e56 75 Int_t GetNumberOfMuons() const { return fNMuons; }
76 Int_t GetNumberOfDimuons() const { return fNDimuons; }
ff254193 77
78 Double_t GetQTheta(UInt_t i) const;
79 UInt_t GetNQTheta() const { return (UInt_t)fNQTheta; }
613fc341 80
81 Double_t GetDiamondX() const {return fDiamondXY[0];}
82 Double_t GetDiamondY() const {return fDiamondXY[1];}
49fc2e2c 83 Double_t GetDiamondZ() const {return fDiamondZ;}
613fc341 84 Double_t GetSigma2DiamondX() const {return fDiamondCovXY[0];}
85 Double_t GetSigma2DiamondY() const {return fDiamondCovXY[2];}
49fc2e2c 86 Double_t GetSigma2DiamondZ() const {return fDiamondSig2Z;}
613fc341 87 void GetDiamondCovXY(Float_t cov[3]) const {
88 for(Int_t i=0;i<3;i++) cov[i]=fDiamondCovXY[i]; return;
89 }
a5f7aba4 90 UInt_t GetL0TriggerInputs() const {return fL0TriggerInputs;}
91 UInt_t GetL1TriggerInputs() const {return fL1TriggerInputs;}
92 UShort_t GetL2TriggerInputs() const {return fL2TriggerInputs;}
f1c1d7c6 93 AliCentrality* GetCentralityP() const { return fCentralityP; }
a5f7aba4 94
6b6f8d32 95
df9db588 96 void SetRunNumber(Int_t nRun) { fRunNumber = nRun; }
a5f7aba4 97 void SetEventNumberESDFile(Int_t n) { fEventNumberESDFile=n; }
31fd97b2 98 void SetBunchCrossNumber(UShort_t nBx) { fBunchCrossNumber = nBx; }
9ae2e5e6 99 void SetOrbitNumber(UInt_t nOr) { fOrbitNumber = nOr; }
100 void SetPeriodNumber(UInt_t nPer) { fPeriodNumber = nPer; }
df9db588 101 void SetTriggerMask(ULong64_t trigMsk) { fTriggerMask = trigMsk; }
27346f69 102 void SetFiredTriggerClasses(TString trig) { fFiredTriggers = trig;}
df9db588 103 void SetTriggerCluster(UChar_t trigClus) { fTriggerCluster = trigClus; }
104 void SetEventType(UInt_t evttype) { fEventType = evttype; }
105 void SetMagneticField(Double_t magFld) { fMagneticField = magFld; }
6b6f8d32 106 void SetMuonMagFieldScale(Double_t magFldScl){ fMuonMagFieldScale = magFldScl; }
107
f1c1d7c6 108 void SetCentrality(AliCentrality* cent) { fCentralityP = cent;
109 if (cent) fCentrality = cent->GetCentralityPercentile("V0M");}
6b6f8d32 110 void SetZDCN1Energy(Double_t n1Energy) { fZDCN1Energy = n1Energy; }
111 void SetZDCP1Energy(Double_t p1Energy) { fZDCP1Energy = p1Energy; }
112 void SetZDCN2Energy(Double_t n2Energy) { fZDCN2Energy = n2Energy; }
113 void SetZDCP2Energy(Double_t p2Energy) { fZDCP2Energy = p2Energy; }
a85132e7 114 void SetZDCEMEnergy(Double_t emEnergy1, Double_t emEnergy2)
115 { fZDCEMEnergy[0] = emEnergy1; fZDCEMEnergy[1] = emEnergy2;}
df9db588 116 void SetRefMultiplicity(Int_t refMult) { fRefMult = refMult; }
117 void SetRefMultiplicityPos(Int_t refMultPos) { fRefMultPos = refMultPos; }
118 void SetRefMultiplicityNeg(Int_t refMultNeg) { fRefMultNeg = refMultNeg; }
fa8b0e56 119 void SetNumberOfMuons(Int_t nMuons) { fNMuons = nMuons; }
120 void SetNumberOfDimuons(Int_t nDimuons) { fNDimuons = nDimuons; }
6b6f8d32 121
ff254193 122 void SetQTheta(Double_t *QTheta, UInt_t size = 5);
123 void RemoveQTheta();
124
613fc341 125 void SetDiamond(Float_t xy[2],Float_t cov[3]) {
11becff8 126 for(Int_t i=0;i<3;i++) {fDiamondCovXY[i] = cov[i];}
127 for(Int_t i=0;i<2;i++) {fDiamondXY[i] = xy[i] ;}
613fc341 128 }
49fc2e2c 129 void SetDiamondZ(Float_t z, Float_t sig2z){
130 fDiamondZ=z; fDiamondSig2Z=sig2z;
131 }
a5f7aba4 132 void SetL0TriggerInputs(UInt_t n) {fL0TriggerInputs=n;}
133 void SetL1TriggerInputs(UInt_t n) {fL1TriggerInputs=n;}
134 void SetL2TriggerInputs(UShort_t n) {fL2TriggerInputs=n;}
135 void SetESDFileName(TString name) {fESDFileName = name;}
df9db588 136 void Print(Option_t* option = "") const;
1aa76f71 137
138 void SetPHOSMatrix(TGeoHMatrix*matrix, Int_t i) {
139 if ((i >= 0) && (i < kNPHOSMatrix)) fPHOSMatrix[i] = matrix;
140 }
141 const TGeoHMatrix* GetPHOSMatrix(Int_t i) const {
142 return ((i >= 0) && (i < kNPHOSMatrix)) ? fPHOSMatrix[i] : NULL;
143 }
6b6f8d32 144
1aa76f71 145 void SetEMCALMatrix(TGeoHMatrix*matrix, Int_t i) {
146 if ((i >= 0) && (i < kNEMCALMatrix)) fEMCALMatrix[i] = matrix;
147 }
148 const TGeoHMatrix* GetEMCALMatrix(Int_t i) const {
149 return ((i >= 0) && (i < kNEMCALMatrix)) ? fEMCALMatrix[i] : NULL;
150 }
151
0c6c629b 152 UInt_t GetOfflineTrigger() { return fOfflineTrigger; }
153 void SetOfflineTrigger(UInt_t trigger) { fOfflineTrigger = trigger; }
a5f7aba4 154 TString GetESDFileName() {return fESDFileName;}
1aa76f71 155 enum {kNPHOSMatrix = 5};
156 enum {kNEMCALMatrix = 12};
6b6f8d32 157
df9db588 158 private :
6b6f8d32 159
160 Double32_t fMagneticField; // Solenoid Magnetic Field in kG
161 Double32_t fMuonMagFieldScale; // magnetic field scale of muon arm magnet
162 Double32_t fCentrality; // Centrality
163 Double32_t fZDCN1Energy; // reconstructed energy in the neutron1 ZDC
164 Double32_t fZDCP1Energy; // reconstructed energy in the proton1 ZDC
165 Double32_t fZDCN2Energy; // reconstructed energy in the neutron2 ZDC
166 Double32_t fZDCP2Energy; // reconstructed energy in the proton2 ZDC
a85132e7 167 Double32_t fZDCEMEnergy[2]; // reconstructed energy in the electromagnetic ZDCs
ff254193 168 Int_t fNQTheta; // number of QTheta elements
169 Double32_t *fQTheta; // [fNQTheta] values to store Lee-Yang-Zeros
6b6f8d32 170 ULong64_t fTriggerMask; // Trigger Type (mask)
27346f69 171 TString fFiredTriggers; // String with fired triggers
6b6f8d32 172 Int_t fRunNumber; // Run Number
173 Int_t fRefMult; // reference multiplicity
174 Int_t fRefMultPos; // reference multiplicity of positive particles
175 Int_t fRefMultNeg; // reference multiplicity of negative particles
fa8b0e56 176 Int_t fNMuons; // number of muons in the forward spectrometer
177 Int_t fNDimuons; // number of dimuons in the forward spectrometer
9333290e 178 UInt_t fEventType; // Type of Event
179 UInt_t fOrbitNumber; // Orbit Number
180 UInt_t fPeriodNumber; // Period Number
181 UShort_t fBunchCrossNumber; // BunchCrossingNumber
6b6f8d32 182 UChar_t fTriggerCluster; // Trigger cluster (mask)
613fc341 183 Double32_t fDiamondXY[2]; // Interaction diamond (x,y) in RUN
184 Double32_t fDiamondCovXY[3]; // Interaction diamond covariance (x,y) in RUN
49fc2e2c 185 Double32_t fDiamondZ; // Interaction diamond (z) in RUN
186 Double32_t fDiamondSig2Z; // Interaction diamond sigma^2 (z) in RUN
1aa76f71 187 TGeoHMatrix* fPHOSMatrix[kNPHOSMatrix]; //PHOS module position and orientation matrices
188 TGeoHMatrix* fEMCALMatrix[kNEMCALMatrix]; //EMCAL supermodule position and orientation matrices
0c6c629b 189 UInt_t fOfflineTrigger; // fired offline triggers for this event
a5f7aba4 190 TString fESDFileName; // ESD file name to which this event belongs
191 Int_t fEventNumberESDFile; // Event number in ESD file
192 UInt_t fL0TriggerInputs; // L0 Trigger Inputs (mask)
193 UInt_t fL1TriggerInputs; // L1 Trigger Inputs (mask)
194 UShort_t fL2TriggerInputs; // L2 Trigger Inputs (mask)
f1c1d7c6 195 AliCentrality* fCentralityP; // Pointer to full centrality information
196 ClassDef(AliAODHeader, 14);
df9db588 197};
198
199#endif