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1// -*- mode: C++ -*-
2#ifndef ALIESD_H
3#define ALIESD_H
4/* Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
5 * See cxx source for full Copyright notice */
6
7
8/* $Id$ */
9
10//-------------------------------------------------------------------------
11// Class AliESD
12// This is the class to deal with during the physical analysis of data
13//
14// Origin: Iouri Belikov, CERN, Jouri.Belikov@cern.ch
15//-------------------------------------------------------------------------
16
17#include <TClonesArray.h>
18#include <TObject.h>
19#include <TArrayF.h>
20
21#include "AliESDMuonTrack.h"
22#include "AliESDPmdTrack.h"
23#include "AliESDTrdTrack.h"
24#include "AliESDVertex.h"
25#include "AliESDcascade.h"
26#include "AliESDkink.h"
27#include "AliESDtrack.h"
28#include "AliESDHLTtrack.h"
29#include "AliESDCaloCluster.h"
30#include "AliESDv0.h"
31#include "AliESDFMD.h"
32#include "AliESDVZERO.h"
33#include "AliMultiplicity.h"
34#include "AliRawDataErrorLog.h"
35#include "AliESDACORDE.h"
36
37class AliESDfriend;
38
39class AliESD : public TObject {
40public:
41 AliESD();
42 AliESD(const AliESD&);
43 virtual ~AliESD();
44
45 void SetESDfriend(const AliESDfriend *f);
46 void GetESDfriend(AliESDfriend *f) const;
47
48 void SetEventNumberInFile(Int_t n) {fEventNumberInFile=n;}
49 void SetBunchCrossNumber(UShort_t n) {fBunchCrossNumber=n;}
50 void SetOrbitNumber(UInt_t n) {fOrbitNumber=n;}
51 void SetPeriodNumber(UInt_t n) {fPeriodNumber=n;}
52 void SetRunNumber(Int_t n) {fRunNumber=n;}
53 void SetTimeStamp(UInt_t timeStamp){fTimeStamp = timeStamp;}
54 void SetEventType(UInt_t eventType){fEventType = eventType;}
55 void SetTriggerMask(ULong64_t n) {fTriggerMask=n;}
56 void SetTriggerCluster(UChar_t n) {fTriggerCluster = n;}
57 void SetMagneticField(Float_t mf){fMagneticField = mf;}
58 Float_t GetMagneticField() const {return fMagneticField;}
59
60 AliESDtrack *GetTrack(Int_t i) const {
61 return (AliESDtrack *)fTracks.UncheckedAt(i);
62 }
63 AliESDHLTtrack *GetHLTConfMapTrack(Int_t i) const {
64 return (AliESDHLTtrack *)fHLTConfMapTracks.UncheckedAt(i);
65 }
66 AliESDHLTtrack *GetHLTHoughTrack(Int_t i) const {
67 return (AliESDHLTtrack *)fHLTHoughTracks.UncheckedAt(i);
68 }
69 AliESDMuonTrack *GetMuonTrack(Int_t i) const {
70 return (AliESDMuonTrack *)fMuonTracks.UncheckedAt(i);
71 }
72 AliESDPmdTrack *GetPmdTrack(Int_t i) const {
73 return (AliESDPmdTrack *)fPmdTracks.UncheckedAt(i);
74 }
75 AliESDTrdTrack *GetTrdTrack(Int_t i) const {
76 return (AliESDTrdTrack *)fTrdTracks.UncheckedAt(i);
77 }
78
79 Bool_t Clean(Float_t *cleanPars);
80 Bool_t RemoveKink(Int_t i);
81 Bool_t RemoveV0(Int_t i);
82 Bool_t RemoveTrack(Int_t i);
83
84 Int_t AddTrack(const AliESDtrack *t) {
85 AliESDtrack * track = new(fTracks[fTracks.GetEntriesFast()]) AliESDtrack(*t);track->SetID(fTracks.GetEntriesFast()-1);return track->GetID();
86 }
87 void AddHLTConfMapTrack(const AliESDHLTtrack *t) {
88 new(fHLTConfMapTracks[fHLTConfMapTracks.GetEntriesFast()]) AliESDHLTtrack(*t);
89 }
90 void AddHLTHoughTrack(const AliESDHLTtrack *t) {
91 new(fHLTHoughTracks[fHLTHoughTracks.GetEntriesFast()]) AliESDHLTtrack(*t);
92 }
93 void AddMuonTrack(const AliESDMuonTrack *t) {
94 new(fMuonTracks[fMuonTracks.GetEntriesFast()]) AliESDMuonTrack(*t);
95 }
96 void AddPmdTrack(const AliESDPmdTrack *t) {
97 new(fPmdTracks[fPmdTracks.GetEntriesFast()]) AliESDPmdTrack(*t);
98 }
99 void AddTrdTrack(const AliESDTrdTrack *t) {
100 new(fTrdTracks[fTrdTracks.GetEntriesFast()]) AliESDTrdTrack(*t);
101 }
102
103 AliESDv0 *GetV0(Int_t i) const {
104 return (AliESDv0 *)fV0s.UncheckedAt(i);
105 }
106 Int_t AddV0(const AliESDv0 *v);
107
108 AliESDcascade *GetCascade(Int_t i) const {
109 return (AliESDcascade *)fCascades.UncheckedAt(i);
110 }
111 void AddCascade(const AliESDcascade *c) {
112 new(fCascades[fCascades.GetEntriesFast()]) AliESDcascade(*c);
113 }
114
115 AliESDkink *GetKink(Int_t i) const {
116 return (AliESDkink *)fKinks.UncheckedAt(i);
117 }
118 Int_t AddKink(const AliESDkink *c) {
119 AliESDkink * kink = new(fKinks[fKinks.GetEntriesFast()]) AliESDkink(*c);
120 kink->SetID(fKinks.GetEntriesFast());
121 return fKinks.GetEntriesFast()-1;
122 }
123
124 AliESDCaloCluster *GetCaloCluster(Int_t i) const {
125 return (AliESDCaloCluster *)fCaloClusters.UncheckedAt(i);
126 }
127 Int_t AddCaloCluster(const AliESDCaloCluster *c) {
128 AliESDCaloCluster *clus = new(fCaloClusters[fCaloClusters.GetEntriesFast()]) AliESDCaloCluster(*c);
129 clus->SetID(fCaloClusters.GetEntriesFast()-1);
130 return fCaloClusters.GetEntriesFast()-1;
131 }
132
133 void AddPHOSTriggerPosition(TArrayF array) { fPHOSTriggerPosition = new TArrayF(array) ; }
134 void AddPHOSTriggerAmplitudes(TArrayF array) { fPHOSTriggerAmplitudes = new TArrayF(array) ; }
135 void AddEMCALTriggerPosition(TArrayF array) { fEMCALTriggerPosition = new TArrayF(array) ; }
136 void AddEMCALTriggerAmplitudes(TArrayF array){ fEMCALTriggerAmplitudes = new TArrayF(array) ; }
137
138 void SetVertex(const AliESDVertex *vertex) {
139 new (&fSPDVertex) AliESDVertex(*vertex);
140 }
141 const AliESDVertex *GetVertex() const {return &fSPDVertex;}
142
143 void SetMultiplicity(const AliMultiplicity *mul) {
144 new (&fSPDMult) AliMultiplicity(*mul);
145 }
146 const AliMultiplicity *GetMultiplicity() const {return &fSPDMult;}
147
148 void SetPrimaryVertex(const AliESDVertex *vertex) {
149 new (&fPrimaryVertex) AliESDVertex(*vertex);
150 }
151 const AliESDVertex *GetPrimaryVertex() const {return &fPrimaryVertex;}
152
153 void SetDiamond(const AliESDVertex *vertex);
154 Float_t GetDiamondX() const {return fDiamondXY[0];}
155 Float_t GetDiamondY() const {return fDiamondXY[1];}
156 Float_t GetSigma2DiamondX() const {return fDiamondCovXY[0];}
157 Float_t GetSigma2DiamondY() const {return fDiamondCovXY[2];}
158 void GetDiamondCovXY(Float_t cov[3]) const {
159 for(Int_t i=0;i<3;i++) cov[i]=fDiamondCovXY[i]; return;
160 }
161
162 Int_t GetEventNumberInFile() const {return fEventNumberInFile;}
163 UShort_t GetBunchCrossNumber() const {return fBunchCrossNumber;}
164 UInt_t GetOrbitNumber() const {return fOrbitNumber;}
165 UInt_t GetPeriodNumber() const {return fPeriodNumber;}
166 Int_t GetRunNumber() const {return fRunNumber;}
167 UInt_t GetTimeStamp() const { return fTimeStamp;}
168 UInt_t GetEventType() const { return fEventType;}
169 ULong64_t GetTriggerMask() const {return fTriggerMask;}
170 UChar_t GetTriggerCluster() const {return fTriggerCluster;}
171
172 Int_t GetNumberOfTracks() const {return fTracks.GetEntriesFast();}
173 Int_t GetNumberOfHLTConfMapTracks() const {return fHLTConfMapTracks.GetEntriesFast();}
174 Int_t GetNumberOfHLTHoughTracks() const {return fHLTHoughTracks.GetEntriesFast();}
175 Int_t GetNumberOfMuonTracks() const {return fMuonTracks.GetEntriesFast();}
176 Int_t GetNumberOfPmdTracks() const {return fPmdTracks.GetEntriesFast();}
177 Int_t GetNumberOfTrdTracks() const {return fTrdTracks.GetEntriesFast();}
178 Int_t GetNumberOfV0s() const {return fV0s.GetEntriesFast();}
179 Int_t GetNumberOfCascades() const {return fCascades.GetEntriesFast();}
180 Int_t GetNumberOfKinks() const {return fKinks.GetEntriesFast();}
181 Int_t GetNumberOfCaloClusters() const {return fCaloClusters.GetEntriesFast();}
182
183 Int_t GetNumberOfEMCALClusters() const {return fEMCALClusters;}
184 void SetNumberOfEMCALClusters(Int_t clus) {fEMCALClusters = clus;}
185 Int_t GetFirstEMCALCluster() const {return fFirstEMCALCluster;}
186 void SetFirstEMCALCluster(Int_t index) {fFirstEMCALCluster = index;}
187 TArrayF *GetEMCALTriggerPosition() const {return fEMCALTriggerPosition;}
188 TArrayF *GetEMCALTriggerAmplitudes() const {return fEMCALTriggerAmplitudes;}
189
190 Int_t GetNumberOfPHOSClusters() const {return fPHOSClusters;}
191 void SetNumberOfPHOSClusters(Int_t part) { fPHOSClusters = part ; }
192 void SetFirstPHOSCluster(Int_t index) { fFirstPHOSCluster = index ; }
193 Int_t GetFirstPHOSCluster() const { return fFirstPHOSCluster ; }
194 TArrayF *GetPHOSTriggerPosition() const {return fPHOSTriggerPosition;}
195 TArrayF *GetPHOSTriggerAmplitudes() const {return fPHOSTriggerAmplitudes;}
196
197
198 Double32_t GetT0zVertex() const {return fT0zVertex;}
199 void SetT0zVertex(Double32_t z) {fT0zVertex=z;}
200 Double32_t GetT0() const {return fT0timeStart;}
201 void SetT0(Double32_t timeStart) {fT0timeStart = timeStart;}
202 Float_t GetT0clock() const {return fT0clock;}
203 void SetT0clock(Float_t timeStart) {fT0clock = timeStart;}
204 Double32_t GetT0TOF(Int_t i) const {return fT0TOF[i];}
205 const Double32_t * GetT0TOF() const {return fT0TOF;}
206 void SetT0TOF(Int_t icase, Float_t time) { fT0TOF[icase] = time;}
207 Int_t GetT0Trig() const {return fT0trig;}
208 void SetT0Trig(Int_t tvdc) {fT0trig = tvdc;}
209 const Double32_t * GetT0time() const {return fT0time;}
210 void SetT0time(Double32_t time[24]) {
211 for (Int_t i=0; i<24; i++) fT0time[i] = time[i];
212 }
213 const Double32_t * GetT0amplitude() const {return fT0amplitude;}
214 void SetT0amplitude(Double32_t amp[24]) {
215 for (Int_t i=0; i<24; i++) fT0amplitude[i] = amp[i];
216 }
217
218 Float_t GetZDCN1Energy() const {return fZDCN1Energy;}
219 Float_t GetZDCP1Energy() const {return fZDCP1Energy;}
220 Float_t GetZDCN2Energy() const {return fZDCN2Energy;}
221 Float_t GetZDCP2Energy() const {return fZDCP2Energy;}
222 Float_t GetZDCEMEnergy() const {return fZDCEMEnergy;}
223 Int_t GetZDCParticipants() const {return fZDCParticipants;}
224 void SetZDC(Float_t n1Energy, Float_t p1Energy, Float_t emEnergy,
225 Float_t n2Energy, Float_t p2Energy, Int_t participants)
226 {fZDCN1Energy=n1Energy; fZDCP1Energy=p1Energy; fZDCEMEnergy=emEnergy;
227 fZDCN2Energy=n2Energy; fZDCP2Energy=p2Energy; fZDCParticipants=participants;}
228
229 void ResetV0s() { fV0s.Clear(); }
230 void ResetCascades() { fCascades.Clear(); }
231 void Reset();
232
233 void Print(Option_t *option="") const;
234
235 void SetFMDData(AliESDFMD * obj) { fESDFMD = new AliESDFMD(*obj); }
236 AliESDFMD *GetFMDData(){ return fESDFMD; }
237
238 void SetVZEROData(AliESDVZERO * obj) { fESDVZERO = new AliESDVZERO(*obj); }
239 AliESDVZERO *GetVZEROData(){ return fESDVZERO; }
240 void SetACORDEData(AliESDACORDE * obj){ fESDACORDE = new AliESDACORDE(*obj); }
241 AliESDACORDE *GetACORDEDAta(){ return fESDACORDE; }
242 AliRawDataErrorLog *GetErrorLog(Int_t i) const {
243 return (AliRawDataErrorLog *)fErrorLogs.UncheckedAt(i);
244 }
245 void AddRawDataErrorLog(const AliRawDataErrorLog *log) {
246 new(fErrorLogs[fErrorLogs.GetEntriesFast()]) AliRawDataErrorLog(*log);
247 }
248 Int_t GetNumberOfErrorLogs() const {return fErrorLogs.GetEntriesFast();}
249
250protected:
251 AliESD &operator=(const AliESD& source);
252
253 // Event Identification
254
255 Int_t fEventNumberInFile;// running Event count in the file
256 UShort_t fBunchCrossNumber;// Bunch Crossing Number
257 UInt_t fOrbitNumber; // Orbit Number
258 UInt_t fPeriodNumber; // Period Number
259 Int_t fRunNumber; // Run Number
260 UInt_t fTimeStamp; // Time stamp
261 UInt_t fEventType; // Type of Event
262 ULong64_t fTriggerMask; // Trigger Type (mask)
263 UChar_t fTriggerCluster; // Trigger cluster (mask)
264 Int_t fRecoVersion; // Version of reconstruction
265 Float_t fMagneticField; // Solenoid Magnetic Field in kG : for compatibility with AliMagF
266
267 Float_t fZDCN1Energy; // reconstructed energy in the neutron ZDC
268 Float_t fZDCP1Energy; // reconstructed energy in the proton ZDC
269 Float_t fZDCN2Energy; // reconstructed energy in the neutron ZDC
270 Float_t fZDCP2Energy; // reconstructed energy in the proton ZDC
271 Float_t fZDCEMEnergy; // reconstructed energy in the electromagnetic ZDC
272 Int_t fZDCParticipants; // number of participants estimated by the ZDC
273
274
275 Double32_t fT0zVertex; // vertex z position estimated by the T0
276 AliESDVertex fSPDVertex; // Primary vertex estimated by the SPD
277 AliESDVertex fPrimaryVertex; // Primary vertex estimated using ESD tracks
278 Float_t fDiamondXY[2]; // Interaction diamond (x,y) in RUN
279 Float_t fDiamondCovXY[3]; // Interaction diamond covariance (x,y) in RUN
280 AliMultiplicity fSPDMult; // SPD tracklet multiplicity
281
282 Float_t fT0clock; // backward compatibility
283 Double32_t fT0TOF[3]; // interaction time in ns ( A&C, A, C)
284 Double32_t fT0timeStart; // interaction time estimated by the T0
285 Int_t fT0trig; // T0 trigger signals
286 Double32_t fT0time[24]; // best TOF on each T0 PMT
287 Double32_t fT0amplitude[24]; // number of particles(MIPs) on each T0 PMT
288
289
290 TClonesArray fTracks; // ESD tracks
291 TClonesArray fHLTConfMapTracks;// HLT ESD tracks from Conformal Mapper method
292 TClonesArray fHLTHoughTracks; // HLT ESD tracks from Hough Transform method
293 TClonesArray fMuonTracks; // MUON ESD tracks
294 TClonesArray fPmdTracks; // PMD ESD tracks
295 TClonesArray fTrdTracks; // TRD ESD tracks (triggered)
296 TClonesArray fV0s; // V0 vertices
297 TClonesArray fCascades; // Cascade vertices
298 TClonesArray fKinks; // Kinks
299 TClonesArray fCaloClusters; // Calorimeter clusters for PHOS/EMCAL
300 Int_t fEMCALClusters; // Number of EMCAL clusters (subset of caloclusters)
301 Int_t fFirstEMCALCluster; // First EMCAL cluster in the fCaloClusters list
302 TArrayF *fEMCALTriggerPosition; ///(x,y,z of 2x2 and x,y,z of nxn) not position of centroid but of patch corner
303 TArrayF *fEMCALTriggerAmplitudes; //(2x2 max ampl, 2x2 amp out of patch, nxn max ampl, nxn amp out of patch)
304
305 Int_t fPHOSClusters; // Number of PHOS clusters (subset of caloclusters)
306 Int_t fFirstPHOSCluster; // First PHOS cluster in the fCaloClusters list
307 TArrayF *fPHOSTriggerPosition; //(x,y,z of 2x2 and x,y,z of nxn), not position of centroid but of patch corner
308 TArrayF *fPHOSTriggerAmplitudes; //(2x2 max ampl, 2x2 amp out of patch, nxn max ampl, nxn amp out of patch)
309
310 AliESDFMD *fESDFMD; // FMD object containing rough multiplicity
311 AliESDVZERO *fESDVZERO; // VZERO object containing rough multiplicity
312 AliESDACORDE *fESDACORDE; // ACORDE ESD object containing bit pattern
313
314 TClonesArray fErrorLogs; // Raw-data reading error messages
315
316 ClassDef(AliESD,23) //ESD class
317};
318#endif
319