]> git.uio.no Git - u/mrichter/AliRoot.git/blame - PWGGA/CaloTrackCorrelations/AliAnaInsideClusterInvariantMass.h
move common switchs and settings declared by each analysis to base class:Calo name...
[u/mrichter/AliRoot.git] / PWGGA / CaloTrackCorrelations / AliAnaInsideClusterInvariantMass.h
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992b14a7 1#ifndef ALIANAINSIDECLUSTERINVARIANTMASS_H
2#define ALIANAINSIDECLUSTERINVARIANTMASS_H
3/* Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
4 * See cxx source for full Copyright notice */
992b14a7 5
6//_________________________________________________________________________
7//
8// Split clusters with some criteria and calculate invariant mass
9// to identify them as pi0 or conversion
10//
11//
83351853 12//-- Author: Gustavo Conesa (LPSC-Grenoble)
992b14a7 13//_________________________________________________________________________
14
15
16// --- ROOT system ---
17class TList ;
18class TObjString;
19class TLorentzVector;
20
21// --- ANALYSIS system ---
5c46c992 22class AliAODCaloCluster;
23
745913ae 24#include "AliAnaCaloTrackCorrBaseClass.h"
992b14a7 25
745913ae 26class AliAnaInsideClusterInvariantMass : public AliAnaCaloTrackCorrBaseClass {
992b14a7 27
28 public:
3c1d9afb 29
992b14a7 30 AliAnaInsideClusterInvariantMass() ; // default ctor
31 virtual ~AliAnaInsideClusterInvariantMass() { ; } //virtual dtor
992b14a7 32
b94e038e 33 void CheckLocalMaximaMCOrigin(AliVCluster* cluster, Int_t mcindex, Int_t noverlaps,
34 Float_t e1, Float_t e2, Float_t mass);
b583134f 35 //, Float_t m02, TLorentzVector l1, TLorentzVector l2);
b2e375c7 36
992b14a7 37 TObjString * GetAnalysisCuts();
38
39 TList * GetCreateOutputObjects();
dbe09c26 40
4914e781 41 void GetMCIndex(AliVCluster * cluster, Int_t & mcindex, Int_t & mcTag);
b2e375c7 42
b94e038e 43 void GetMCPrimaryKine(AliVCluster* cluster, Int_t mcindex, Int_t mcTag, Bool_t matched,
0186b6a2 44 Float_t & eprim, Float_t & asymGen, Float_t & angleGen, Int_t & noverlaps );
b2e375c7 45
b94e038e 46 void FillAngleHistograms(Int_t nMax, Bool_t matched, Int_t mcindex,
47 Float_t en, Float_t e1 , Float_t e2,
48 Float_t angle, Float_t mass, Float_t anglePrim,
49 Float_t m02, Float_t asym, Int_t pid, Int_t noverlaps);
b2e375c7 50
b94e038e 51 void FillArmenterosHistograms(Int_t nMax, Int_t ebin, Int_t mcindex,
52 Float_t pi0E, TLorentzVector g1, TLorentzVector g2,
53 Float_t m02, Int_t pid);
cb99fa55 54
b94e038e 55 void FillThetaStarHistograms(Int_t nMax, Bool_t matched, Int_t mcindex,
56 Float_t pi0E, TLorentzVector g1, TLorentzVector g2,
57 Float_t m02, Int_t pid);
29555e96 58
b94e038e 59 void FillEBinHistograms(Int_t ebin, Int_t nMax, Int_t mcindex, Float_t splitFrac,
60 Float_t mass, Float_t asym, Float_t l0);
61
62 void FillMCHistograms(Float_t en, Float_t e1 , Float_t e2,
63 Int_t ebin, Int_t mcindex,Int_t noverlaps,
64 Float_t l0, Float_t mass,
65 Int_t nMax, Bool_t matched,
66 Float_t splitFrac, Float_t asym,
67 Float_t eprim, Float_t asymGen);
68
69 void FillMCOverlapHistograms(Float_t en, Float_t enprim,
70 Int_t nc, Float_t mass, Float_t l0,
71 Float_t asym, Float_t splitFrac,
72 Int_t nlm, Int_t ebin, Bool_t matched,
73 Int_t mcindex, Int_t noverlaps);
74
75 void FillSSWeightHistograms(AliVCluster *cluster, Int_t nlm, Int_t absId1, Int_t absId2);
76
77 void FillSSExtraHistograms(AliVCluster *cluster, Int_t nMax,
78 Bool_t matched, Int_t mcindex,
79 Float_t mass , Int_t ebin);
4914e781 80
ff6aa4ce 81 void FillNLMDiffCutHistograms(AliVCluster *cluster, AliVCaloCells *cells, Bool_t matched);
82
b94e038e 83 void FillNCellHistograms(Int_t ncells, Float_t energy, Int_t nMax,
84 Bool_t matched, Int_t mcindex,
85 Float_t mass , Float_t l0);
b2e375c7 86
b94e038e 87 void FillTrackMatchingHistograms(AliVCluster * cluster,Int_t nMax, Int_t mcindex);
dbe09c26 88
b94e038e 89 void FillHistograms1(Float_t en, Float_t e1, Float_t e2,
90 Int_t nMax, Float_t mass, Float_t l0,
91 Float_t eta, Float_t phi,
92 Bool_t matched, Int_t mcindex);
1253480f 93
94
b94e038e 95 void FillHistograms2(Float_t en, Float_t eprim,
96 Float_t e1, Float_t e2, Int_t nMax,
97 Float_t mass, Float_t l0,
98 Bool_t matched, Int_t mcindex);
99
100 void FillIdPi0Histograms(Float_t en, Float_t e1, Float_t e2,
101 Int_t nc, Int_t nMax, Float_t t12diff,
102 Float_t mass, Float_t l0,
103 Float_t eta, Float_t phi,
104 Bool_t matched, Int_t mcindex);
105
106 void FillIdEtaHistograms(Float_t en, Float_t e1, Float_t e2,
107 Int_t nc, Int_t nMax, Float_t t12diff,
108 Float_t mass, Float_t l0,
109 Float_t eta, Float_t phi,
110 Bool_t matched, Int_t mcindex);
111
112 void FillIdConvHistograms(Float_t en, Int_t nMax, Float_t asym,
113 Float_t mass, Float_t l0,
114 Bool_t matched, Int_t mcindex);
1253480f 115
992b14a7 116 void Init();
117
118 void InitParameters();
1253480f 119
120 void MakeAnalysisFillHistograms() ;
121
71e3889f 122 void Print(const Option_t * opt) const;
1253480f 123
71e3889f 124 void SetMinNCells(Int_t cut) { fMinNCells = cut ; }
2cb134fb 125
126 void SetMinBadChannelDistance(Float_t cut) { fMinBadDist = cut ; }
992b14a7 127
09a5b22d 128 void SetWCorrectionParameter(Int_t i, Float_t p = 0.07) { if( i<2 ) fWSimu[i] = p; }
8edbd100 129
883411b2 130 void SwitchOnFillAngleHistograms() { fFillAngleHisto = kTRUE ; }
131 void SwitchOffFillAngleHistograms() { fFillAngleHisto = kFALSE ; }
cb99fa55 132
133 void SwitchOnFillArmenterosHistograms() { fFillArmenterosHisto = kTRUE ; }
134 void SwitchOffFillArmenterosHistograms() { fFillArmenterosHisto = kFALSE ; }
135
29555e96 136 void SwitchOnFillThetaStarHistograms() { fFillThetaStarHisto = kTRUE ; }
137 void SwitchOffFillThetaStarHistograms() { fFillThetaStarHisto = kFALSE ; }
138
883411b2 139 void SwitchOnFillExtraSSHistograms() { fFillSSExtraHisto = kTRUE ; }
140 void SwitchOffFillExtraSSHistograms() { fFillSSExtraHisto = kFALSE ; }
1253480f 141
142 void SwitchOnFillHighMultHistograms() { fFillHighMultHisto = kTRUE ; }
143 void SwitchOffFillHighMultHistograms() { fFillHighMultHisto = kFALSE ; }
144
145 void SwitchOnFillIdConvHistograms() { fFillIdConvHisto = kTRUE ; }
146 void SwitchOffFillIdConvHistograms() { fFillIdConvHisto = kFALSE ; }
8e81c2cf 147
1253480f 148 void SwitchOnFillIdEtaHistograms() { fFillIdEtaHisto = kTRUE ; }
149 void SwitchOffFillIdEtaHistograms() { fFillIdEtaHisto = kFALSE ; }
150
8edbd100 151 void SwitchOnFillTMHistograms() { fFillTMHisto = kTRUE ; }
152 void SwitchOffFillTMHistograms() { fFillTMHisto = kFALSE ; }
153
8e81c2cf 154 void SwitchOnFillTMResidualHistograms() { fFillTMResidualHisto = kTRUE ; }
155 void SwitchOffFillTMResidualHistograms() { fFillTMResidualHisto = kFALSE ; }
156
b2e375c7 157 void SwitchOnFillMCPrimaryHistograms() { fFillMCHisto = kTRUE ; }
158 void SwitchOffFillMCPrimaryHistograms() { fFillMCHisto = kFALSE ; }
2a77f6f4 159
19391b8c 160 void SwitchOnFillSSWeightHistograms() { fFillSSWeightHisto = kTRUE ; }
161 void SwitchOffFillSSWeightHistograms() { fFillSSWeightHisto = kFALSE ; }
162
ff6aa4ce 163 void SwitchOnFillNLMDiffCutsHistograms() { fFillNLMDiffCutHisto = kTRUE ; }
164 void SwitchOffFillNLMDiffCutsHistograms() { fFillNLMDiffCutHisto = kFALSE ; }
165
19391b8c 166 void SwitchOnFillEbinHistograms() { fFillEbinHisto = kTRUE ; }
167 void SwitchOffFillEbinHistograms() { fFillEbinHisto = kFALSE ; }
dbe09c26 168
b2e375c7 169 void SwitchOnFillMCOverlapHistograms() { fFillMCOverlapHisto = kTRUE ; }
170 void SwitchOffFillMCOverlapHistograms() { fFillMCOverlapHisto = kFALSE ; }
4914e781 171
172 void SwitchOnFillNCellHistograms() { fFillNCellHisto = kTRUE ; }
173 void SwitchOffFillNCellHistograms() { fFillNCellHisto = kFALSE ; }
b2e375c7 174
1253480f 175 void SwitchOnSplitClusterDistToBad() { fCheckSplitDistToBad = kTRUE ; }
176 void SwitchOffSplitClusterDistToBad() { fCheckSplitDistToBad = kFALSE ; }
177
ff6aa4ce 178 void SetNWeightForShowerShape(Int_t n) { fSSWeightN = n ; }
179 void SetWeightForShowerShape(Int_t i, Float_t v)
5cd814a9 180 { if (i < 20) fSSWeight[i] = v ; }
dbe09c26 181
ff6aa4ce 182 void SetNumberOfNLocMaxSettings(Int_t n) { fNLMSettingN = n ; }
183 void SetNLocMaxMinE (Int_t i, Float_t v) { if (i < 5) fNLMMinE [i] = v ; }
184 void SetNLocMaxMinDiff(Int_t i, Float_t v) { if (i < 5) fNLMMinDiff[i] = v ; }
185
186
187 void SetNECellCutForShowerShape(Int_t n) { fSSECellCutN = n ; }
188 void SetECellCutForShowerShape(Int_t i, Float_t v)
5cd814a9 189 { if (i < 20) fSSECellCut[i] = v ; }
19391b8c 190
1253480f 191
19391b8c 192 void RecalculateClusterShowerShapeParametersWithCellCut(const AliEMCALGeometry * geom, AliVCaloCells* cells, AliVCluster * cluster,
193 Float_t & l0, Float_t & l1,
194 Float_t & disp, Float_t & dEta, Float_t & dPhi,
195 Float_t & sEta, Float_t & sPhi, Float_t & sEtaPhi,Float_t eCellMin = 0.);
196
2a77f6f4 197
992b14a7 198 //For histograms
cb99fa55 199 enum mcTypes { kmcPhoton = 1, kmcConversion = 2, kmcPi0 = 3, kmcPi0Conv = 4,
200 kmcEta = 5, kmcHadron = 6 };
992b14a7 201
202 private:
203
3c1d9afb 204 Int_t fMinNCells ; // Study clusters with ncells larger than cut
205 Float_t fMinBadDist ; // Minimal distance to bad channel to accept cluster
b2e375c7 206 Float_t fHistoECut ; // Fixed E cut for some histograms
1253480f 207 Bool_t fCheckSplitDistToBad; // Check the distance to bad channel and to EMCal borders of split clusters
243c2909 208
883411b2 209 Bool_t fFillAngleHisto; // Fill splitted clusters angle histograms
8edbd100 210 Bool_t fFillTMHisto ; // Fill track matching histos,
8e81c2cf 211 Bool_t fFillTMResidualHisto ; // Fill track matching histos, residuals
212 Bool_t fFillSSExtraHisto ; // Fill shower shape extra histos
74e3eb22 213 Bool_t fFillMCHisto ; // Fill MC energy fraction histos
dbe09c26 214 Bool_t fFillSSWeightHisto ; // Fill weigth histograms
ff6aa4ce 215 Bool_t fFillNLMDiffCutHisto ; // Fill NLM histograms for different settings
19391b8c 216 Bool_t fFillEbinHisto ; // Fill E bin histograms
b2e375c7 217 Bool_t fFillMCOverlapHisto ; // Fill MC particles overlap histograms
4914e781 218 Bool_t fFillNCellHisto ; // Fill n cells in cluster dependent histograms
1253480f 219 Bool_t fFillIdConvHisto ; // Fill histograms for clusters identified as conversion
220 Bool_t fFillIdEtaHisto ; // Fill histograms for clusters identified as Eta
221 Bool_t fFillHighMultHisto; // Fill centrality/event plane histograms
cb99fa55 222 Bool_t fFillArmenterosHisto; // Fill armenteros type histo
29555e96 223 Bool_t fFillThetaStarHisto; // Fill cosThetaStar histos
1253480f 224
5cd814a9 225 Float_t fSSWeight[20]; // List of weights to test
19391b8c 226 Int_t fSSWeightN; // Total number of weights to test
227
5cd814a9 228 Float_t fSSECellCut[20]; // List of cell min energy cuts to test
19391b8c 229 Int_t fSSECellCutN; // Total number of cell min energy cuts to test
ff6aa4ce 230
231 Float_t fNLMMinE [5]; // List of local maxima min energy
232 Float_t fNLMMinDiff[5]; // List of local maxima min difference cell energy
233 Int_t fNLMSettingN; // Total number of NLM settings to test
dbe09c26 234
09a5b22d 235 Float_t fWSimu[2]; // Constant and slope of the linear correction factor for the shower
236 // shape weight in simulation, about 1-0.07*w
8edbd100 237
992b14a7 238 //Histograms
239
c7e9a4e9 240 TH2F * fhMassNLocMax1[7][2] ; //! Split Inv Mass vs cluster E, NLM=1, different MC particle types, track matching on/off
241 TH2F * fhMassNLocMax2[7][2] ; //! Split Inv Mass vs cluster E, NLM=2, different MC particle types, track matching on/off
242 TH2F * fhMassNLocMaxN[7][2] ; //! Split Inv Mass vs cluster E, NLM>2, different MC particle types, track matching on/off
5c46c992 243
c7e9a4e9 244 TH2F * fhMassSplitENLocMax1[7][2] ; //! Split Inv Mass vs E1+E2, NLM=1, different MC particle types, track matching on/off
245 TH2F * fhMassSplitENLocMax2[7][2] ; //! Split Inv Mass vs E1+E2, NLM=2, different MC particle types, track matching on/off
246 TH2F * fhMassSplitENLocMaxN[7][2] ; //! Split Inv Mass vs E1+E2, NLM>2, different MC particle types, track matching on/off
247
cb99fa55 248 TH2F * fhAsymNLocMax1[7][2] ; //! Asymmetry of 2 highest energy cells when 1 local max vs E, 1-6 for different MC particle types
249 TH2F * fhAsymNLocMax2[7][2] ; //! Asymmetry of 2 cells local maxima vs E, 1-6 for different MC particle types
250 TH2F * fhAsymNLocMaxN[7][2] ; //! Asymmetry of >2 cells local maxima vs E, 1-6 for different MC particle types
251
e671adc2 252 TH2F * fhSplitEFractionvsAsyNLocMax1[2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 1 vs |A|
253 TH2F * fhSplitEFractionvsAsyNLocMax2[2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 2 vs |A|
254 TH2F * fhSplitEFractionvsAsyNLocMaxN[2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima > 2 vs |A|
cb99fa55 255
2c36e041 256 TH2F * fhMassAsyCutNLocMax1 ; //! Mass(E) asym selection, not matched, Mass of split clusters, NLM = 1
257 TH2F * fhMassAsyCutNLocMax2 ; //! Mass(E) asym selection, not matched, Mass of split clusters, NLM = 1
258 TH2F * fhMassAsyCutNLocMaxN ; //! Mass(E) asym selection, not matched, Mass of split clusters, NLM > 2
cb99fa55 259
2c36e041 260 TH2F * fhM02AsyCutNLocMax1 ; //! M02(E) asym selection, not matched, M02, NLM = 1
261 TH2F * fhM02AsyCutNLocMax2 ; //! M02(E) asym selection, not matched, M02, NLM = 2
262 TH2F * fhM02AsyCutNLocMaxN ; //! M02(E) asym selection, not matched, M02, NLM > 2
e671adc2 263
2c36e041 264 TH2F * fhMassM02CutNLocMax1 ; //! Mass(E) M02 selection, not matched, Mass of split clusters, NLM = 1
265 TH2F * fhMassM02CutNLocMax2 ; //! Mass(E) M02 selection, not matched, Mass of split clusters, NLM = 1
266 TH2F * fhMassM02CutNLocMaxN ; //! Mass(E) M02 selection, not matched, Mass of split clusters, NLM > 2
2a77f6f4 267
2c36e041 268 TH2F * fhAsymM02CutNLocMax1 ; //! Asym(E) M02 selection, not matched, energy asymmetry of split clusters, NLM = 1
269 TH2F * fhAsymM02CutNLocMax2 ; //! Asym(E) M02 selection, not matched, energy asymmetry of split clusters, NLM = 2
270 TH2F * fhAsymM02CutNLocMaxN ; //! Asym(E) M02 selection, not matched, energy asymmetry of split clusters, NLM > 2
271
272 TH2F * fhMassEnCutNLocMax1 ; //! Mass(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
273 TH2F * fhMassEnCutNLocMax2 ; //! Mass(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
274 TH2F * fhMassEnCutNLocMaxN ; //! Mass(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM > 2
275
276 TH2F * fhM02EnCutNLocMax1 ; //! M02(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
277 TH2F * fhM02EnCutNLocMax2 ; //! M02(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
278 TH2F * fhM02EnCutNLocMaxN ; //! M02(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM > 2
279
280 TH2F * fhAsymEnCutNLocMax1 ; //! Asym(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
281 TH2F * fhAsymEnCutNLocMax2 ; //! Asym(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
282 TH2F * fhAsymEnCutNLocMaxN ; //! Asym(E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM > 2
a6d3b0a8 283
284 TH2F * fhSplitEFracEnCutNLocMax1 ; //! Split E fraction (E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
285 TH2F * fhSplitEFracEnCutNLocMax2 ; //! Split E fraction (E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM = 1
286 TH2F * fhSplitEFracEnCutNLocMaxN ; //! Split E fraction (E) E sub-cluster cut selection, not matched, Mass of split clusters, NLM > 2
e671adc2 287
77cadd95 288 TH2F * fhMassSplitECutNLocMax1 ; //! 85% of split energy, not matched, Mass of split clusters, NLM = 1
289 TH2F * fhMassSplitECutNLocMax2 ; //! 85% of split energy, not matched, Mass of split clusters, NLM = 1
290 TH2F * fhMassSplitECutNLocMaxN ; //! 85% of split energy, not matched, Mass of split clusters, NLM > 2
667432ef 291
cb99fa55 292 TH2F * fhMassM02NLocMax1[7][2] ; //! Mass of splitted clusters when 1 local max vs M02, for E > 8 GeV, 1-6 for different MC particle types
293 TH2F * fhMassM02NLocMax2[7][2] ; //! Mass of splitted clusters when 2 local max vs M02, for E > 8 GeV, 1-6 for different MC particle types
294 TH2F * fhMassM02NLocMaxN[7][2] ; //! Mass of splitted clusters when >2 local max vs M02, for E > 8 GeV, 1-6 for different MC particle types
0137016b 295
b8eb40fc 296 TH2F * fhMassM02NLocMax1Ebin[4] ; //! Mass of splitted clusters when 1 local max vs M02, 4 E bins, neutral clusters
297 TH2F * fhMassM02NLocMax2Ebin[4] ; //! Mass of splitted clusters when 2 local max vs M02, 4 E bins, neutral clusters
298 TH2F * fhMassM02NLocMaxNEbin[4] ; //! Mass of splitted clusters when >2 local max vs M02, 4 E bins, neutral clusters
299
300 TH2F * fhMassAsyNLocMax1Ebin[4] ; //! Mass of Mass of splitted clusters when 1 local max vs asymmetry, 4 E bins, neutral clusters
301 TH2F * fhMassAsyNLocMax2Ebin[4] ; //! Mass of Mass of splitted clusters when 2 local max vs asymmetry, 4 E bins, neutral clusters
302 TH2F * fhMassAsyNLocMaxNEbin[4] ; //! Mass of Mass of splitted clusters when >2 local max vs asymmetry, 4 E bins, neutral clusters
303
304 TH2F * fhAsyMCGenRecoNLocMax1EbinPi0[4] ; //! Generated vs reconstructed asymmetry of splitted clusters from pi0 when 1 local max, 4 E bins, neutral clusters
305 TH2F * fhAsyMCGenRecoNLocMax2EbinPi0[4] ; //! Generated vs reconstructed asymmetry of splitted clusters from pi0 when 2 local max, 4 E bins, neutral clusters
306 TH2F * fhAsyMCGenRecoNLocMaxNEbinPi0[4] ; //! Generated vs reconstructed asymmetry of splitted clusters from pi0 when >2 local max, 4 E bins, neutral clusters
7b686344 307
b583134f 308 TH2F * fhAsyMCGenRecoDiffMCPi0[3]; //! reconstructed-generated asymmetry of splitted clusters vs E from pi0, for 3 NLM cases
309 TH2F * fhAsyMCGenRecoDiffMCPi0Conv[3]; //! reconstructed-generated asymmetry of splitted clusters vs E from converted pi0, for 3 NLM cases
310
cb99fa55 311 TH2F * fhMassDispEtaNLocMax1[7][2] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, for E > 8 GeV, 1-6 for different MC particle types
312 TH2F * fhMassDispEtaNLocMax2[7][2] ; //! Mass of 2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
313 TH2F * fhMassDispEtaNLocMaxN[7][2] ; //! Mass of >2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
d2655d46 314
e671adc2 315 TH2F * fhMassDispEtaNLocMax1Ebin[4] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, 4 E bins, neutral clusters
316 TH2F * fhMassDispEtaNLocMax2Ebin[4] ; //! Mass of 2 cells local maxima, vs M02, 4 E bins, neutral clusters
317 TH2F * fhMassDispEtaNLocMaxNEbin[4] ; //! Mass of >2 cells local maxima, vs M02, 4 E bins, neutral clusters
d2655d46 318
cb99fa55 319 TH2F * fhMassDispPhiNLocMax1[7][2] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, for E > 8 GeV, 1-6 for different MC particle types
320 TH2F * fhMassDispPhiNLocMax2[7][2] ; //! Mass of 2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
321 TH2F * fhMassDispPhiNLocMaxN[7][2] ; //! Mass of >2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
d2655d46 322
e671adc2 323 TH2F * fhMassDispPhiNLocMax1Ebin[4] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, 4 E bins, neutral clusters
324 TH2F * fhMassDispPhiNLocMax2Ebin[4] ; //! Mass of 2 cells local maxima, vs M02, 4 E bins, neutral clusters
325 TH2F * fhMassDispPhiNLocMaxNEbin[4] ; //! Mass of >2 cells local maxima, vs M02, 4 E bins, neutral clusters
d2655d46 326
cb99fa55 327 TH2F * fhMassDispAsyNLocMax1[7][2] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, for E > 8 GeV, 1-6 for different MC particle types
328 TH2F * fhMassDispAsyNLocMax2[7][2] ; //! Mass of 2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
329 TH2F * fhMassDispAsyNLocMaxN[7][2] ; //! Mass of >2 cells local maxima, vs M02, for E > 8 GeV, 1-6 for different MC particle types
d2655d46 330
e671adc2 331 TH2F * fhMassDispAsyNLocMax1Ebin[4] ; //! Mass of 2 highest energy cells when 1 local max, vs M02, 4 E bins, neutral clusters
332 TH2F * fhMassDispAsyNLocMax2Ebin[4] ; //! Mass of 2 cells local maxima, vs M02, 4 E bins, neutral clusters
333 TH2F * fhMassDispAsyNLocMaxNEbin[4] ; //! Mass of >2 cells local maxima, vs M02, 4 E bins, neutral clusters
d2655d46 334
cb99fa55 335 TH2F * fhNLocMax [7][2] ; //! Number of maxima in cluster vs E, 1-6 for different MC particle types
336 TH2F * fhNLocMaxM02Cut[7][2] ; //! Number of maxima in cluster vs E, 1-6 for different MC particle types, after SS cut
29555e96 337 TH2F * fhNLocMaxIdPi0 [7][2] ; //! Number of maxima in cluster vs E, 1-6 for different MC particle types, after pi0 selection
5c46c992 338
cb99fa55 339 TH2F * fhSplitClusterENLocMax[7][2] ; //! Number of maxima in cluster vs E of splitted clusters, 1-6 for different MC particle types
340 TH2F * fhSplitClusterEPi0NLocMax[7][2] ; //! Number of maxima in cluster vs E of splitted clusters when cluster id as pi0, 1-6 for different MC particle types
29555e96 341
342 TH2F * fhLM1NLocMax [7][2] ; //! Split cluster 1 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types
343 TH2F * fhLM1NLocMaxM02Cut[7][2] ; //! Split cluster 1 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types, after SS cut
344 TH2F * fhLM1NLocMaxIdPi0 [7][2] ; //! Split cluster 1 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types, pi0 selection
345
346 TH2F * fhLM2NLocMax [7][2] ; //! Split cluster 2 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types
347 TH2F * fhLM2NLocMaxM02Cut[7][2] ; //! Split cluster 2 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types, after SS cut
348 TH2F * fhLM2NLocMaxIdPi0 [7][2] ; //! Split cluster 2 E distribution vs Number of maxima in cluster vs E, 1-6 for different MC particle types, pi0 selection
cc909e6f 349
cb99fa55 350 TH2F * fhM02NLocMax1 [7][2] ; //! M02 vs E for N max in cluster = 1, 1-6 for different MC particle types
351 TH2F * fhM02NLocMax2 [7][2] ; //! M02 vs E for N max in cluster = 2, 1-6 for different MC particle types
352 TH2F * fhM02NLocMaxN [7][2] ; //! M02 vs E for N max in cluster > 2, 1-6 for different MC particle types
8e81c2cf 353
e671adc2 354 TH2F * fhMCAsymM02NLocMax1MCPi0Ebin[4] ; //! M02 vs decay asymmetry for N max in cluster = 1, for 4 energy bins
355 TH2F * fhMCAsymM02NLocMax2MCPi0Ebin[4] ; //! M02 vs decay asymmetry for N max in cluster = 2, for 4 energy bins
356 TH2F * fhMCAsymM02NLocMaxNMCPi0Ebin[4] ; //! M02 vs decay asymmetry for N max in cluster > 2, for 4 energy bins
8e81c2cf 357
cb99fa55 358 TH2F * fhMCGenFracNLocMax1[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types
359 TH2F * fhMCGenFracNLocMax2[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types
360 TH2F * fhMCGenFracNLocMaxN[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types
4914e781 361
cb99fa55 362 TH2F * fhMCGenFracNLocMax1NoOverlap[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types, no overlap found
363 TH2F * fhMCGenFracNLocMax2NoOverlap[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types, no overlap found
364 TH2F * fhMCGenFracNLocMaxNNoOverlap[7][2] ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types, no overlap found
4914e781 365
b8eb40fc 366 TH2F * fhMCGenFracAfterCutsNLocMax1MCPi0 ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 1, MCPi0 after M02 and asymmetry cut
367 TH2F * fhMCGenFracAfterCutsNLocMax2MCPi0 ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster = 2, MCPi0, after M02 and asymmetry cut
368 TH2F * fhMCGenFracAfterCutsNLocMaxNMCPi0 ; //! E generated particle / E reconstructed vs E reconstructed for N max in cluster > 2, MCPi0, after M02 and asymmetry cut
667432ef 369
cb99fa55 370 TH2F * fhMCGenSplitEFracNLocMax1[7][2] ; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types
371 TH2F * fhMCGenSplitEFracNLocMax2[7][2] ; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types
372 TH2F * fhMCGenSplitEFracNLocMaxN[7][2] ; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types
667432ef 373
cb99fa55 374 TH2F * fhMCGenSplitEFracNLocMax1NoOverlap[7][2];//! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types, no overlap
375 TH2F * fhMCGenSplitEFracNLocMax2NoOverlap[7][2];//! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types, no overlap
376 TH2F * fhMCGenSplitEFracNLocMaxNNoOverlap[7][2];//! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types, no overlap
4914e781 377
667432ef 378 TH2F * fhMCGenSplitEFracAfterCutsNLocMax1MCPi0; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types
379 TH2F * fhMCGenSplitEFracAfterCutsNLocMax2MCPi0; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types
380 TH2F * fhMCGenSplitEFracAfterCutsNLocMaxNMCPi0; //! E generated particle / E1+E2 reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types
bb2d339b 381
cb99fa55 382 TH2F * fhMCGenEFracvsSplitEFracNLocMax1[7][2] ; //! E generated particle / E reconstructed vs E1+E2 reconstructed / E reconstructed for N max in cluster = 1, MC pi0
383 TH2F * fhMCGenEFracvsSplitEFracNLocMax2[7][2] ; //! E generated particle / E reconstructed vs E1+E2 reconstructed / E reconstructed for N max in cluster = 2, MC pi0
384 TH2F * fhMCGenEFracvsSplitEFracNLocMaxN[7][2] ; //! E generated particle / E reconstructed vs E1+E2 reconstructed / E reconstructed for N max in cluster > 2, MC pi0
bb2d339b 385
cb99fa55 386 TH2F * fhMCGenEvsSplitENLocMax1[7][2] ; //! E generated particle vs E1+E2 for N max in cluster = 1, 1-6 for different MC particle types
387 TH2F * fhMCGenEvsSplitENLocMax2[7][2] ; //! E generated particle vs E1+E2 for N max in cluster = 2, 1-6 for different MC particle types
388 TH2F * fhMCGenEvsSplitENLocMaxN[7][2] ; //! E generated particle vs E1+E2 for N max in cluster > 2, 1-6 for different MC particle types
bb2d339b 389
cb99fa55 390 TH2F * fhMCGenFracNLocMaxEbin[7][4] ; //! NLM vs E generated particle / E reconstructed vs E reconstructed 1-6 for different MC particle types, not matched to track
391 TH2F * fhMCGenFracNLocMaxEbinMatched[7][4] ; //! NLM vs E generated particle / E reconstructed vs E reconstructed 1-6 for different MC particle types, matched to track
53f2c382 392
cb99fa55 393 TH2F * fhM02MCGenFracNLocMax1Ebin[7][4] ; //! M02 vs E generated particle / E reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types, not track matched
394 TH2F * fhM02MCGenFracNLocMax2Ebin[7][4] ; //! M02 vs E generated particle / E reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types, not track matched
395 TH2F * fhM02MCGenFracNLocMaxNEbin[7][4] ; //! M02 vs E generated particle / E reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types, not track matched
8e81c2cf 396
cb99fa55 397 TH2F * fhMassMCGenFracNLocMax1Ebin[7][4] ; //! Mass vs E generated particle / E reconstructed vs E reconstructed for N max in cluster = 1, 1-6 for different MC particle types, not track matched
398 TH2F * fhMassMCGenFracNLocMax2Ebin[7][4] ; //! Mass vs E generated particle / E reconstructed vs E reconstructed for N max in cluster = 2, 1-6 for different MC particle types, not track matched
399 TH2F * fhMassMCGenFracNLocMaxNEbin[7][4] ; //! Mass vs E generated particle / E reconstructed vs E reconstructed for N max in cluster > 2, 1-6 for different MC particle types, not track matched
8e81c2cf 400
cb99fa55 401 TH2F * fhNCellNLocMax1[7][2] ; //! n cells in cluster vs E for N max in cluster = 1, 1-6 for different MC particle types
402 TH2F * fhNCellNLocMax2[7][2] ; //! n cells in cluster vs E for N max in cluster = 2, 1-6 for different MC particle types
403 TH2F * fhNCellNLocMaxN[7][2] ; //! n cells in cluster vs E for N max in cluster > 2, 1-6 for different MC particle types
992b14a7 404
4914e781 405 TH2F * fhNCellMassEHighNLocMax1MCPi0 ; //! n cells in cluster vs mass for high energy clusters, for N max in cluster = 1, for MC pi0
406 TH2F * fhNCellM02EHighNLocMax1MCPi0 ; //! n cells in cluster vs m02 for high energy clusters, for N max in cluster = 1, for MC pi0
407 TH2F * fhNCellMassELowNLocMax1MCPi0 ; //! n cells in cluster vs mass for low energy clusters, for N max in cluster = 1, for MC pi0
408 TH2F * fhNCellM02ELowNLocMax1MCPi0 ; //! n cells in cluster vs m02 for low energy clusters, for N max in cluster = 1, for MC pi0
409
410 TH2F * fhNCellMassEHighNLocMax2MCPi0 ; //! n cells in cluster vs mass for high energy clusters, for N max in cluster = 2, for MC pi0
411 TH2F * fhNCellM02EHighNLocMax2MCPi0 ; //! n cells in cluster vs m02 for high energy clusters, for N max in cluster = 2, for MC pi0
412 TH2F * fhNCellMassELowNLocMax2MCPi0 ; //! n cells in cluster vs mass for low energy clusters, for N max in cluster = 2, for MC pi0
413 TH2F * fhNCellM02ELowNLocMax2MCPi0 ; //! n cells in cluster vs m02 for low energy clusters, for N max in cluster = 2, for MC pi0
414
415 TH2F * fhNCellMassEHighNLocMaxNMCPi0 ; //! n cells in cluster vs mass for high energy clusters, for N max in cluster > 2, for MC pi0
416 TH2F * fhNCellM02EHighNLocMaxNMCPi0 ; //! n cells in cluster vs m02 for high energy clusters, for N max in cluster > 2, for MC pi0
417 TH2F * fhNCellMassELowNLocMaxNMCPi0 ; //! n cells in cluster vs mass for low energy clusters, for N max in cluster > 2, for MC pi0
418 TH2F * fhNCellM02ELowNLocMaxNMCPi0 ; //! n cells in cluster vs m02 for low energy clusters, for N max in cluster > 2, for MC pi0
419
cb99fa55 420 TH2F * fhM02Pi0NLocMax1[7][2] ; //! M02 for Mass around pi0, N Local Maxima = 1
421 TH2F * fhM02EtaNLocMax1[7][2] ; //! M02 for Mass around eta, N Local Maxima = 1
422 TH2F * fhM02ConNLocMax1[7][2] ; //! M02 for Mass around close to 0, N Local Maxima = 1
c8710850 423
cb99fa55 424 TH2F * fhM02Pi0NLocMax2[7][2] ; //! M02 for Mass around pi0, N Local Maxima = 2
425 TH2F * fhM02EtaNLocMax2[7][2] ; //! M02 for Mass around eta, N Local Maxima = 2
426 TH2F * fhM02ConNLocMax2[7][2] ; //! M02 for Mass around close to 0, N Local Maxima = 2
5c46c992 427
cb99fa55 428 TH2F * fhM02Pi0NLocMaxN[7][2] ; //! M02 for Mass around pi0, N Local Maxima > 2
429 TH2F * fhM02EtaNLocMaxN[7][2] ; //! M02 for Mass around eta, N Local Maxima > 2
430 TH2F * fhM02ConNLocMaxN[7][2] ; //! M02 for Mass around close to 0, N Local Maxima > 2
fc01318e 431
cb99fa55 432 TH2F * fhMassPi0NLocMax1[7][2] ; //! Mass for selected pi0, N Local Maxima = 1
433 TH2F * fhMassEtaNLocMax1[7][2] ; //! Mass for selected around eta, N Local Maxima = 1
434 TH2F * fhMassConNLocMax1[7][2] ; //! Mass for selected around close to 0, N Local Maxima = 1
e671adc2 435
cb99fa55 436 TH2F * fhMassPi0NLocMax2[7][2] ; //! Mass for selected around pi0, N Local Maxima = 2
437 TH2F * fhMassEtaNLocMax2[7][2] ; //! Mass for selected around eta, N Local Maxima = 2
438 TH2F * fhMassConNLocMax2[7][2] ; //! Mass for selected around close to 0, N Local Maxima = 2
bb2d339b 439
cb99fa55 440 TH2F * fhMassPi0NLocMaxN[7][2] ; //! Mass for selected around pi0, N Local Maxima > 2
441 TH2F * fhMassEtaNLocMaxN[7][2] ; //! Mass for selected around eta, N Local Maxima > 2
442 TH2F * fhMassConNLocMaxN[7][2] ; //! Mass for selected around close to 0, N Local Maxima > 2
bb2d339b 443
cb99fa55 444 TH2F * fhNCellPi0NLocMax1[7][2] ; //! n cells for selected around pi0, N Local Maxima = 1
445 TH2F * fhNCellEtaNLocMax1[7][2] ; //! n cells for selected around eta, N Local Maxima = 1
446 TH2F * fhNCellPi0NLocMax2[7][2] ; //! n cells for selected around pi0, N Local Maxima = 2
447 TH2F * fhNCellEtaNLocMax2[7][2] ; //! n cells for selected around eta, N Local Maxima = 2
448 TH2F * fhNCellPi0NLocMaxN[7][2] ; //! n cells for selected around pi0, N Local Maxima > 2
449 TH2F * fhNCellEtaNLocMaxN[7][2] ; //! n cells for selected around eta, N Local Maxima > 2
450
c7e9a4e9 451 TH2F * fhMassAfterCutsNLocMax1[7][2] ; //! Mass after M02, asymmetry cuts for MC part, N Local Maxima = 1
452 TH2F * fhMassAfterCutsNLocMax2[7][2] ; //! Mass after M02, asymmetry cuts for MC part, N Local Maxima = 2
453 TH2F * fhMassAfterCutsNLocMaxN[7][2] ; //! Mass after M02, asymmetry cuts for MC part, N Local Maxima > 2
454
455 TH2F * fhMassSplitEAfterCutsNLocMax1[7][2] ; //! Split Inv Mass vs E1+E2, NLM=1, after M02, asymmetry cuts, different MC particle types, track matching on/off
456 TH2F * fhMassSplitEAfterCutsNLocMax2[7][2] ; //! Split Inv Mass vs E1+E2, NLM=2, after M02, asymmetry cuts, different MC particle types, track matching on/off
457 TH2F * fhMassSplitEAfterCutsNLocMaxN[7][2] ; //! Split Inv Mass vs E1+E2, NLM>2, after M02, asymmetry cuts, different MC particle types, track matching on/off
458
459 TH2F * fhMassSplitEPi0NLocMax1[7][2] ; //! Split Inv Mass vs E1+E2, NLM=1, after pi0 selection, different MC particle types, track matching on/off
460 TH2F * fhMassSplitEPi0NLocMax2[7][2] ; //! Split Inv Mass vs E1+E2, NLM=2, after pi0 selection, different MC particle types, track matching on/off
461 TH2F * fhMassSplitEPi0NLocMaxN[7][2] ; //! Split Inv Mass vs E1+E2, NLM>2, after pi0 selection, different MC particle types, track matching on/off
167f2534 462
cb99fa55 463 TH2F * fhAsyPi0NLocMax1[7][2] ; //! Asy for Mass around pi0, N Local Maxima = 1
464 TH2F * fhAsyEtaNLocMax1[7][2] ; //! Asy for Mass around eta, N Local Maxima = 1
465 TH2F * fhAsyConNLocMax1[7][2] ; //! Asy for Mass around close to 0, N Local Maxima = 1
bb2d339b 466
cb99fa55 467 TH2F * fhAsyPi0NLocMax2[7][2] ; //! Asy for Mass around pi0, N Local Maxima = 2
468 TH2F * fhAsyEtaNLocMax2[7][2] ; //! Asy for Mass around eta, N Local Maxima = 2
469 TH2F * fhAsyConNLocMax2[7][2] ; //! Asy for Mass around close to 0, N Local Maxima = 2
fc01318e 470
cb99fa55 471 TH2F * fhAsyPi0NLocMaxN[7][2] ; //! Asy for Mass around pi0, N Local Maxima > 2
472 TH2F * fhAsyEtaNLocMaxN[7][2] ; //! Asy for Mass around eta, N Local Maxima > 2
473 TH2F * fhAsyConNLocMaxN[7][2] ; //! Asy for Mass around close to 0, N Local Maxima > 2
e671adc2 474
cb99fa55 475 TH2F * fhSplitEFractionNLocMax1[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 1
476 TH2F * fhSplitEFractionNLocMax2[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 2
477 TH2F * fhSplitEFractionNLocMaxN[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima > 2
667432ef 478
cb99fa55 479 TH2F * fhSplitEFractionAfterCutsNLocMax1[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 1, after M02 and asymmetry cut
480 TH2F * fhSplitEFractionAfterCutsNLocMax2[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima = 2, after M02 and asymmetry cut
481 TH2F * fhSplitEFractionAfterCutsNLocMaxN[7][2] ; //! sum of splitted cluster energy / cluster energy for N Local Maxima > 2, after M02 and asymmetry cut
667432ef 482
cb99fa55 483 TH2F * fhMassSplitEFractionNLocMax1Ebin[7][4] ; //! Mass vs sum of splitted cluster energy / cluster energy for N max in cluster = 1, 1-6 for different MC particle types, not track matched
484 TH2F * fhMassSplitEFractionNLocMax2Ebin[7][4] ; //! Mass vs sum of splitted cluster energy / cluster energy for N max in cluster = 2, 1-6 for different MC particle types, not track matched
485 TH2F * fhMassSplitEFractionNLocMaxNEbin[7][4] ; //! Mass vs sum of splitted cluster energy / cluster energy for N max in cluster > 2, 1-6 for different MC particle types, not track matched
5094c724 486
0186b6a2 487 TH2F * fhAnglePairNLocMax1[7][2] ; //! pair opening angle vs E
488 TH2F * fhAnglePairNLocMax2[7][2] ; //! pair opening angle vs E
489 TH2F * fhAnglePairNLocMaxN[7][2] ; //! pair opening angle vs E
c8710850 490
29555e96 491 TH2F * fhAnglePairAfterCutsNLocMax1[7][2] ; //! pair opening angle vs E
492 TH2F * fhAnglePairAfterCutsNLocMax2[7][2] ; //! pair opening angle vs E
493 TH2F * fhAnglePairAfterCutsNLocMaxN[7][2] ; //! pair opening angle vs E
494
495 TH2F * fhAnglePairPi0NLocMax1[7][2] ; //! pair opening angle vs E
496 TH2F * fhAnglePairPi0NLocMax2[7][2] ; //! pair opening angle vs E
497 TH2F * fhAnglePairPi0NLocMaxN[7][2] ; //! pair opening angle vs E
498
0186b6a2 499 TH2F * fhAnglePairMassNLocMax1[7][2] ; //! pair opening angle vs Mass for E > 7 GeV
500 TH2F * fhAnglePairMassNLocMax2[7][2] ; //! pair opening angle vs Mass for E > 7 GeV
501 TH2F * fhAnglePairMassNLocMaxN[7][2] ; //! pair opening angle vs Mass for E > 7 GeV
d261ae67 502
503 TH2F * fhAnglePairM02NLocMax1[7][2] ; //! pair opening angle vs M02 for E > 7 GeV
504 TH2F * fhAnglePairM02NLocMax2[7][2] ; //! pair opening angle vs M02 for E > 7 GeV
505 TH2F * fhAnglePairM02NLocMaxN[7][2] ; //! pair opening angle vs M02 for E > 7 GeV
0186b6a2 506
507 TH2F * fhAnglePairPrimPi0RecoNLocMax1; //! pair opening angle pi0 generated/reconstructed vs E
508 TH2F * fhAnglePairPrimPi0RecoNLocMax2; //! pair opening angle pi0 generated/reconstructed vs E
509 TH2F * fhAnglePairPrimPi0RecoNLocMaxN; //! pair opening angle pi0 generated/reconstructed vs E
510
29555e96 511 TH2F * fhAnglePairPrimPi0vsRecoNLocMax1; //! pair opening angle pi0 generated vs reconstructed
512 TH2F * fhAnglePairPrimPi0vsRecoNLocMax2; //! pair opening angle pi0 generated vs reconstructed
513 TH2F * fhAnglePairPrimPi0vsRecoNLocMaxN; //! pair opening angle pi0 generated vs reconstructed
514
4e5a94c5 515 TH2F * fhAnglePairOverM02NLocMax1[7][2]; //! pair opening angle / m02 vs E, NLM=1
516 TH2F * fhAnglePairOverM02NLocMax2[7][2]; //! pair opening angle / m02 vs E, NLM=2
517 TH2F * fhAnglePairOverM02NLocMaxN[7][2]; //! pair opening angle / m02 vs E, NLM=N
518
519 TH2F * fhAnglePairOverM02NLocMax1Overlap0[7][2];//! pair opening angle / m02 vs E, NLM=1
520 TH2F * fhAnglePairOverM02NLocMax2Overlap0[7][2];//! pair opening angle / m02 vs E, NLM=2
521 TH2F * fhAnglePairOverM02NLocMaxNOverlap0[7][2];//! pair opening angle / m02 vs E, NLM=N
522
523 TH2F * fhAnglePairPrimPi0OverM02NLocMax1; //! pair opening angle / m02 vs E, NLM=1, prim pi0
524 TH2F * fhAnglePairPrimPi0OverM02NLocMax2; //! pair opening angle / m02 vs E, NLM=2, prim pi0
525 TH2F * fhAnglePairPrimPi0OverM02NLocMaxN; //! pair opening angle / m02 vs E, NLM=N, prim pi0
526
29555e96 527 TH2F * fhArmNLocMax1[7][4] ; //! Armenteros of 2 highest energy cells when 1 local max vs E, 1-6 for different MC particle types
528 TH2F * fhArmNLocMax2[7][4] ; //! Armenteros of 2 cells local maxima vs E, 1-6 for different MC particle types
529 TH2F * fhArmNLocMaxN[7][4] ; //! Armenteros of >2 cells local maxima vs E, 1-6 for different MC particle types
530
531 TH2F * fhArmAfterCutsNLocMax1[7][4] ; //! Armenteros after M02, asymmetry cuts for pi0, N Local Maxima = 1
532 TH2F * fhArmAfterCutsNLocMax2[7][4] ; //! Armenteros after M02, asymmetry cuts for pi0, N Local Maxima = 2
533 TH2F * fhArmAfterCutsNLocMaxN[7][4] ; //! Armenteros after M02, asymmetry cuts for pi0, N Local Maxima > 2
534
535 TH2F * fhArmPi0NLocMax1[7][4] ; //! Armenteros for selected pi0, N Local Maxima = 1
536 TH2F * fhArmPi0NLocMax2[7][4] ; //! Armenteros for selected pi0, N Local Maxima = 2
537 TH2F * fhArmPi0NLocMaxN[7][4] ; //! Armenteros for selected pi0, N Local Maxima > 2
538
539 TH2F * fhCosThStarNLocMax1[7][2] ; //! cos(theta^star) vs E, NLM=1
540 TH2F * fhCosThStarNLocMax2[7][2] ; //! cos(theta^star) vs E, NLM=2
541 TH2F * fhCosThStarNLocMaxN[7][2] ; //! cos(theta^star) vs E, NLM>2
542
543 TH2F * fhCosThStarAfterCutsNLocMax1[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry cuts, NLM=1
544 TH2F * fhCosThStarAfterCutsNLocMax2[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry cuts, NLM=2
545 TH2F * fhCosThStarAfterCutsNLocMaxN[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry cuts, NLM>2
546
547 TH2F * fhCosThStarPi0NLocMax1[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry and pi0 mass cuts, NLM=1
548 TH2F * fhCosThStarPi0NLocMax2[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry and pi0 mass cuts, NLM=2
549 TH2F * fhCosThStarPi0NLocMaxN[7][2] ; //! cos(theta^star) vs E, after M02, asymmetry and pi0 mass cuts, NLM>2
c8710850 550
cb99fa55 551 TH2F * fhTrackMatchedDEtaNLocMax1[7] ; //! Eta distance between track and cluster vs cluster E, 1 local maximum
552 TH2F * fhTrackMatchedDPhiNLocMax1[7] ; //! Phi distance between track and cluster vs cluster E, 1 local maximum
553 TH2F * fhTrackMatchedDEtaNLocMax2[7] ; //! Eta distance between track and cluster vs cluster E, 2 local maximum
554 TH2F * fhTrackMatchedDPhiNLocMax2[7] ; //! Phi distance between track and cluster vs cluster E, 2 local maximum
555 TH2F * fhTrackMatchedDEtaNLocMaxN[7] ; //! Eta distance between track and cluster vs cluster E, more than 2 local maximum
556 TH2F * fhTrackMatchedDPhiNLocMaxN[7] ; //! Phi distance between track and cluster vs cluster E, more than 2 local maximum
557
558 TH2F * fhTrackMatchedDEtaNLocMax1Pos[7] ; //! Eta distance between track and cluster vs cluster E, 1 local maximum
559 TH2F * fhTrackMatchedDPhiNLocMax1Pos[7] ; //! Phi distance between track and cluster vs cluster E, 1 local maximum
560 TH2F * fhTrackMatchedDEtaNLocMax2Pos[7] ; //! Eta distance between track and cluster vs cluster E, 2 local maximum
561 TH2F * fhTrackMatchedDPhiNLocMax2Pos[7] ; //! Phi distance between track and cluster vs cluster E, 2 local maximum
562 TH2F * fhTrackMatchedDEtaNLocMaxNPos[7] ; //! Eta distance between track and cluster vs cluster E, more than 2 local maximum
563 TH2F * fhTrackMatchedDPhiNLocMaxNPos[7] ; //! Phi distance between track and cluster vs cluster E, more than 2 local maximum
564
565 TH2F * fhTrackMatchedDEtaNLocMax1Neg[7] ; //! Eta distance between track and cluster vs cluster E, 1 local maximum
566 TH2F * fhTrackMatchedDPhiNLocMax1Neg[7] ; //! Phi distance between track and cluster vs cluster E, 1 local maximum
567 TH2F * fhTrackMatchedDEtaNLocMax2Neg[7] ; //! Eta distance between track and cluster vs cluster E, 2 local maximum
568 TH2F * fhTrackMatchedDPhiNLocMax2Neg[7] ; //! Phi distance between track and cluster vs cluster E, 2 local maximum
569 TH2F * fhTrackMatchedDEtaNLocMaxNNeg[7] ; //! Eta distance between track and cluster vs cluster E, more than 2 local maximum
570 TH2F * fhTrackMatchedDPhiNLocMaxNNeg[7] ; //! Phi distance between track and cluster vs cluster E, more than 2 local maximum
b2e375c7 571
1253480f 572 TH2F * fhCentralityPi0NLocMax1 ; //! Centrality for selected pi0, N Local Maxima = 1
573 TH2F * fhCentralityEtaNLocMax1 ; //! Centrality for selected eta, N Local Maxima = 1
574 TH2F * fhCentralityPi0NLocMax2 ; //! Centrality for selected pi0, N Local Maxima = 2
575 TH2F * fhCentralityEtaNLocMax2 ; //! Centrality for selected eta, N Local Maxima = 2
576 TH2F * fhCentralityPi0NLocMaxN ; //! Centrality for selected pi0, N Local Maxima > 2
577 TH2F * fhCentralityEtaNLocMaxN ; //! Centrality for selected eta, N Local Maxima > 2
c8710850 578
579 TH2F * fhEventPlanePi0NLocMax1 ; //! Event plane for selected pi0, N Local Maxima = 1
580 TH2F * fhEventPlaneEtaNLocMax1 ; //! Event plane for selected eta, N Local Maxima = 1
581 TH2F * fhEventPlanePi0NLocMax2 ; //! Event plane for selected pi0, N Local Maxima = 2
582 TH2F * fhEventPlaneEtaNLocMax2 ; //! Event plane for selected eta, N Local Maxima = 2
583 TH2F * fhEventPlanePi0NLocMaxN ; //! Event plane for selected pi0, N Local Maxima > 2
584 TH2F * fhEventPlaneEtaNLocMaxN ; //! Event plane for selected eta, N Local Maxima > 2
585
9554fc65 586 TH2F * fhClusterEtaPhiNLocMax1 ; //! Eta vs Phi of clusters with N Local Maxima = 1, E > 8 GeV
587 TH2F * fhClusterEtaPhiNLocMax2 ; //! Eta vs Phi of clusters with N Local Maxima = 2, E > 8 GeV
588 TH2F * fhClusterEtaPhiNLocMaxN ; //! Eta vs Phi of clusters with N Local Maxima > 2, E > 8 GeV
589 TH2F * fhPi0EtaPhiNLocMax1 ; //! Eta vs Phi of pi0's with N Local Maxima = 1, E > 8 GeV
590 TH2F * fhPi0EtaPhiNLocMax2 ; //! Eta vs Phi of pi0's with N Local Maxima = 2, E > 8 GeV
591 TH2F * fhPi0EtaPhiNLocMaxN ; //! Eta vs Phi of pi0's with N Local Maxima > N, E > 8 GeV
592 TH2F * fhEtaEtaPhiNLocMax1 ; //! Eta vs Phi of eta's with N Local Maxima = 1, E > 8 GeV
593 TH2F * fhEtaEtaPhiNLocMax2 ; //! Eta vs Phi of eta's with N Local Maxima = 2, E > 8 GeV
594 TH2F * fhEtaEtaPhiNLocMaxN ; //! Eta vs Phi of eta's with N Local Maxima > N, E > 8 GeV
595
dbe09c26 596 TH2F * fhPi0CellE[3] ; //! pi0's energy vs cluster cell energy with NLM = 1, = 2, > 2
597 TH2F * fhPi0CellEFrac[3] ; //! pi0's energy vs cluster cell energy fraction with NLM = 1, = 2, > 2
598 TH2F * fhPi0CellLogEFrac[3] ; //! pi0's energy vs cluster log cell energy fraction with NLM = 1, = 2, > 2
19391b8c 599 TH2F * fhPi0CellEMaxEMax2Frac [3]; //! pi0's energy vs fraction of 2 main maxima energy with NLM = 1, = 2, > 2
600 TH2F * fhPi0CellEMaxClusterFrac [3]; //! pi0's energy vs energy fraction of main LM and cluster energy with NLM = 1, = 2, > 2
601 TH2F * fhPi0CellEMax2ClusterFrac[3]; //! pi0's energy vs energy fraction of second LM and cluster energy with NLM = 1, = 2, > 2
602 TH2F * fhPi0CellEMaxFrac [3]; //! pi0's energy vs energy fraction of main LM and cluster cell energy with NLM = 1, = 2, > 2
603 TH2F * fhPi0CellEMax2Frac [3]; //! pi0's energy vs energy fraction of second LM and cluster cell energy with NLM = 1, = 2, > 2
604
5cd814a9 605 TH2F * fhM02WeightPi0[3][20] ; //! M02 for selected pi0 with different weight, with NLM = 1, = 2, > 2
606 TH2F * fhM02ECellCutPi0[3][20] ; //! M02 for selected pi0 with different cut on cell energy, with NLM = 1, = 2, > 2
dbe09c26 607
a1fd1b69 608 TH2F * fhPi0EPairDiffTimeNLM1; //! E vs Pair of clusters time difference vs E, for selected pi0, NLM=1
609 TH2F * fhPi0EPairDiffTimeNLM2; //! E vs Pair of clusters time difference vs E, for selected pi0, NLM=2
610 TH2F * fhPi0EPairDiffTimeNLMN; //! E vs Pair of clusters time difference vs E, for selected pi0, NLM>2
611 TH2F * fhEtaEPairDiffTimeNLM1; //! E vs Pair of clusters time difference vs E, for selected eta, NLM=1
612 TH2F * fhEtaEPairDiffTimeNLM2; //! E vs Pair of clusters time difference vs E, for selected eta, NLM=2
613 TH2F * fhEtaEPairDiffTimeNLMN; //! E vs Pair of clusters time difference vs E, for selected eta, NLM>2
614
cb99fa55 615 TH2F * fhMCEM02Overlap0[3][7]; //! E vs M02 for different MC origin, no other MC particles contributes, neutral cluster
616 TH2F * fhMCEM02Overlap1[3][7]; //! E vs M02 for different MC origin, 1 other MC particles contributes, neutral cluster
617 TH2F * fhMCEM02OverlapN[3][7]; //! E vs M02 for different MC origin, N other MC particles contributes, neutral cluster
618 TH2F * fhMCEM02Overlap0Match[3][7]; //! E vs M02 for different MC origin, no other MC particles contributes, charged cluster
619 TH2F * fhMCEM02Overlap1Match[3][7]; //! E vs M02 for different MC origin, 1 other MC particles contributes, charged cluster
620 TH2F * fhMCEM02OverlapNMatch[3][7]; //! E vs M02 for different MC origin, N other MC particles contributes, charged cluster
621
622 TH2F * fhMCEMassOverlap0[3][7]; //! E vs Mass for different MC origin, no other MC particles contributes, neutral cluster
623 TH2F * fhMCEMassOverlap1[3][7]; //! E vs Mass for different MC origin, 1 other MC particles contributes, neutral cluster
624 TH2F * fhMCEMassOverlapN[3][7]; //! E vs Mass for different MC origin, N other MC particles contributes, neutral cluster
625 TH2F * fhMCEMassOverlap0Match[3][7]; //! E vs Mass for different MC origin, no other MC particles contributes, charged cluster
626 TH2F * fhMCEMassOverlap1Match[3][7]; //! E vs Mass for different MC origin, 1 other MC particles contributes, charged cluster
627 TH2F * fhMCEMassOverlapNMatch[3][7]; //! E vs Mass for different MC origin, N other MC particles contributes, charged cluster
628
629 TH2F * fhMCESplitEFracOverlap0[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, no other MC particles contributes, neutral cluster
630 TH2F * fhMCESplitEFracOverlap1[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, 1 other MC particles contributes, neutral cluster
631 TH2F * fhMCESplitEFracOverlapN[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, N other MC particles contributes, neutral cluster
632 TH2F * fhMCESplitEFracOverlap0Match[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, no other MC particles contributes, charged cluster
633 TH2F * fhMCESplitEFracOverlap1Match[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, 1 other MC particles contributes, charged cluster
634 TH2F * fhMCESplitEFracOverlapNMatch[3][7]; //! E vs sum of splitted cluster energy / cluster energy for different MC origin, N other MC particles contributes, charged cluster
635
636 TH2F * fhMCEAsymOverlap0[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, no other MC particles contributes, neutral cluster
637 TH2F * fhMCEAsymOverlap1[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, 1 other MC particles contributes, neutral cluster
638 TH2F * fhMCEAsymOverlapN[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, N other MC particles contributes, neutral cluster
639 TH2F * fhMCEAsymOverlap0Match[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, no other MC particles contributes, charged cluster
640 TH2F * fhMCEAsymOverlap1Match[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, 1 other MC particles contributes, charged cluster
641 TH2F * fhMCEAsymOverlapNMatch[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, N other MC particles contributes, charged cluster
642
643 TH2F * fhMCENCellOverlap0[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, no other MC particles contributes, neutral cluster
644 TH2F * fhMCENCellOverlap1[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, 1 other MC particles contributes, neutral cluster
645 TH2F * fhMCENCellOverlapN[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, N other MC particles contributes, neutral cluster
646 TH2F * fhMCENCellOverlap0Match[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, no other MC particles contributes, charged cluster
647 TH2F * fhMCENCellOverlap1Match[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, 1 other MC particles contributes, charged cluster
648 TH2F * fhMCENCellOverlapNMatch[3][7]; //! E vs sum of splitted cluster energy asymmetry for different MC origin, N other MC particles contributes, charged cluster
649
650 TH2F * fhMCEEpriOverlap0[3][7]; //! E reco vs primary for different MC origin, no other MC particles contributes, neutral cluster
651 TH2F * fhMCEEpriOverlap1[3][7]; //! E reco vs primary for different MC origin, 1 other MC particles contributes, neutral cluster
652 TH2F * fhMCEEpriOverlapN[3][7]; //! E reco vs primary for different MC origin, N other MC particles contributes, neutral cluster
653 TH2F * fhMCEEpriOverlap0Match[3][7]; //! E reco vs primary for different MC origin, no other MC particles contributes, charged cluster
654 TH2F * fhMCEEpriOverlap1Match[3][7]; //! E reco vs primary for different MC origin, 1 other MC particles contributes, charged cluster
655 TH2F * fhMCEEpriOverlapNMatch[3][7]; //! E reco vs primary for different MC origin, N other MC particles contributes, charged cluster
656
657 TH2F * fhMCEEpriOverlap0IdPi0[3][7]; //! E reco vs primary for different MC origin, no other MC particles contributes, neutral cluster, neutral clusters id as pi0
658 TH2F * fhMCEEpriOverlap1IdPi0[3][7]; //! E reco vs primary for different MC origin, 1 other MC particles contributes, neutral cluster, neutral clusters id as pi0
659 TH2F * fhMCEEpriOverlapNIdPi0[3][7]; //! E reco vs primary for different MC origin, 1 other MC particles contributes, neutral cluster, neutral clusters is as pi0
cc909e6f 660
b2e375c7 661 TH2F * fhMCPi0MassM02Overlap0[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, no other MC particles contributes, neutral cluster, 4 E bins
662 TH2F * fhMCPi0MassM02Overlap1[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, 1 other MC particles contributes, neutral cluster, 4 E bins
663 TH2F * fhMCPi0MassM02OverlapN[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, N other MC particles contributes, neutral cluster, 4 E bins
664 TH2F * fhMCPi0MassM02Overlap0Match[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, no other MC particles contributes, charged cluster, 4 E bins
665 TH2F * fhMCPi0MassM02Overlap1Match[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, 1 other MC particles contributes, charged cluster, 4 E bins
666 TH2F * fhMCPi0MassM02OverlapNMatch[3][4]; //! MC Pi0 M02 vs Mass for different MC origin, N other MC particles contributes, charged cluster, 4 E bins
667
cb99fa55 668 TH2F * fhMCENOverlaps[3][7]; //! E vs number of Overlaps in MC, neutral cluster
669 TH2F * fhMCENOverlapsMatch[3][7]; //! E vs number of Overlaps in MC, charged cluster
b2e375c7 670
671 TH2F * fhMCPi0HighNLMPair; //! E vs NLM when cluster originated in pi0 merging and highest energy local maxima correspond to 2 photons
672 TH2F * fhMCPi0LowNLMPair; //! E vs NLM when cluster originated in pi0 merging and a pair of local maxima except highest energy correspond to 2 photons
673 TH2F * fhMCPi0AnyNLMPair; //! E vs NLM when cluster originated in pi0 merging and a both highest energy pairs and other pairs correspond to 2 photons
674 TH2F * fhMCPi0NoneNLMPair; //! E vs NLM when cluster originated in pi0 merging and a both no NLM corresponds to the photons
b2e375c7 675 // No match between highest energy local maxima and highest energy MC particle
676 TH2F * fhMCPi0HighNLMPairNoMCMatch; //! E vs NLM when cluster originated in pi0 merging and highest energy local maxima correspond to 2 photons
677 TH2F * fhMCPi0LowNLMPairNoMCMatch; //! E vs NLM when cluster originated in pi0 merging and a pair of local maxima except highest energy correspond to 2 photons
678 TH2F * fhMCPi0AnyNLMPairNoMCMatch; //! E vs NLM when cluster originated in pi0 merging and a both highest energy pairs and other pairs correspond to 2 photons
679 TH2F * fhMCPi0NoneNLMPairNoMCMatch; //! E vs NLM when cluster originated in pi0 merging and a both no NLM corresponds to the photons
36769d30 680
681 TH2F * fhMCPi0HighNLMPairOverlap; //! E vs NLM when cluster originated in pi0 merging and highest energy local maxima correspond to 2 photons, overlap
682 TH2F * fhMCPi0LowNLMPairOverlap; //! E vs NLM when cluster originated in pi0 merging and a pair of local maxima except highest energy correspond to 2 photons, overlap
683 TH2F * fhMCPi0AnyNLMPairOverlap; //! E vs NLM when cluster originated in pi0 merging and a both highest energy pairs and other pairs correspond to 2 photons, overlap
684 TH2F * fhMCPi0NoneNLMPairOverlap; //! E vs NLM when cluster originated in pi0 merging and a both no NLM corresponds to the photons, overlap
685 // No match between highest energy local maxima and highest energy MC particle
686 TH2F * fhMCPi0HighNLMPairNoMCMatchOverlap; //! E vs NLM when cluster originated in pi0 merging and highest energy local maxima correspond to 2 photons, overlap
687 TH2F * fhMCPi0LowNLMPairNoMCMatchOverlap; //! E vs NLM when cluster originated in pi0 merging and a pair of local maxima except highest energy correspond to 2 photons, overlap
688 TH2F * fhMCPi0AnyNLMPairNoMCMatchOverlap; //! E vs NLM when cluster originated in pi0 merging and a both highest energy pairs and other pairs correspond to 2 photons, overlap
689 TH2F * fhMCPi0NoneNLMPairNoMCMatchOverlap; //! E vs NLM when cluster originated in pi0 merging and a both no NLM corresponds to the photons, overlap
690
83351853 691 TH2F * fhMCPi0DecayPhotonHitHighLM; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
692 TH2F * fhMCPi0DecayPhotonAdjHighLM; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
693 TH2F * fhMCPi0DecayPhotonHitOtherLM; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
694 TH2F * fhMCPi0DecayPhotonAdjOtherLM; //! E vs NLM when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
36769d30 695 TH2F * fhMCPi0DecayPhotonAdjacent; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit adjacen cells, not 2 LM
83351853 696 TH2F * fhMCPi0DecayPhotonHitNoLM; //! E vs NLM when cluster originated in pi0 merging and MC photon decay do not hit the cell local maximas
b2e375c7 697
36769d30 698 TH2F * fhMCPi0DecayPhotonHitHighLMOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the cell local maxima, overlap
699 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
700 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
701 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
702 TH2F * fhMCPi0DecayPhotonAdjacentOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay hit adjacen cells, not 2 LM, overlap
703 TH2F * fhMCPi0DecayPhotonHitNoLMOverlap; //! E vs NLM when cluster originated in pi0 merging and MC photon decay do not hit the cell local maximas, overlap
704
b583134f 705 TH2F * fhMCPi0DecayPhotonHitHighLMDiffELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
706 TH2F * fhMCPi0DecayPhotonAdjHighLMDiffELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
707 TH2F * fhMCPi0DecayPhotonHitOtherLMDiffELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
708 TH2F * fhMCPi0DecayPhotonAdjOtherLMDiffELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
709
710 TH2F * fhMCPi0DecayPhotonHitHighLMOverlapDiffELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
711 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlapDiffELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
712 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlapDiffELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
713 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlapDiffELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
714
715 TH2F * fhMCPi0DecayPhotonHitHighLMDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
716 TH2F * fhMCPi0DecayPhotonAdjHighLMDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
717 TH2F * fhMCPi0DecayPhotonHitOtherLMDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
718 TH2F * fhMCPi0DecayPhotonAdjOtherLMDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
719
720 TH2F * fhMCPi0DecayPhotonHitHighLMOverlapDiffELM2[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
721 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlapDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
722 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlapDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
723 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlapDiffELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
29555e96 724
725
726 TH2F * fhMCPi0DecayPhotonHitHighLMDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
727 TH2F * fhMCPi0DecayPhotonAdjHighLMDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
728 TH2F * fhMCPi0DecayPhotonHitOtherLMDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
729 TH2F * fhMCPi0DecayPhotonAdjOtherLMDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
730
731 TH2F * fhMCPi0DecayPhotonHitHighLMOverlapDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
732 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlapDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
733 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlapDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
734 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlapDiffELM1vsELM1[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
735
736 TH2F * fhMCPi0DecayPhotonHitHighLMDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
737 TH2F * fhMCPi0DecayPhotonAdjHighLMDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
738 TH2F * fhMCPi0DecayPhotonHitOtherLMDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
739 TH2F * fhMCPi0DecayPhotonAdjOtherLMDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
740
741 TH2F * fhMCPi0DecayPhotonHitHighLMOverlapDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit cluster when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
742 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlapDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
743 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlapDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
744 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlapDiffELM2vsELM2[3]; //! E vs Ephoton-Esplit when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
745
b583134f 746
747 TH2F * fhMCPi0DecayPhotonHitHighLMMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the cell local maxima
748 TH2F * fhMCPi0DecayPhotonAdjHighLMMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima
749 TH2F * fhMCPi0DecayPhotonHitOtherLMMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high
750 TH2F * fhMCPi0DecayPhotonAdjOtherLMMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high
751 TH2F * fhMCPi0DecayPhotonAdjacentMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit adjacen cells, not 2 LM
752 TH2F * fhMCPi0DecayPhotonHitNoLMMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay do not hit the cell local maximas
753
754 TH2F * fhMCPi0DecayPhotonHitHighLMOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the cell local maxima, overlap
755 TH2F * fhMCPi0DecayPhotonAdjHighLMOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the adjacent cell local maxima, overlap
756 TH2F * fhMCPi0DecayPhotonHitOtherLMOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit the cell local maximas, not high, overlap
757 TH2F * fhMCPi0DecayPhotonAdjOtherLMOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay do not hit the adjacent cell local maximas, not high, overlap
758 TH2F * fhMCPi0DecayPhotonAdjacentOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay hit adjacen cells, not 2 LM, overlap
759 TH2F * fhMCPi0DecayPhotonHitNoLMOverlapMass[3]; //! E vs Mass when cluster originated in pi0 merging and MC photon decay do not hit the cell local maximas, overlap
760
761
b2e375c7 762 TH2F * fhMCEOverlapType; //! what particles overlap with pi0, neutral clusters
763 TH2F * fhMCEOverlapTypeMatch; //! what particles overlap with pi0, charged clusters
dbe09c26 764
ce49dd72 765 TH2F * fhMassBadDistClose[3]; //! split mass of clusters with second LM close to bad channel
766 TH2F * fhM02BadDistClose[3]; //! m02 of clusters with second LM close to bad channel
767 TH2F * fhMassOnBorder[3]; //! split mass of clusters with second LM on EMCAL border
768 TH2F * fhM02OnBorder[3]; //! m02 of clusters with second LM close to EMCAL border
ce49dd72 769
ff6aa4ce 770
771 TH2F * fhNLocMaxDiffCut [5][5] [2] ; //! Number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks
772 TH2F * fhM02NLocMaxDiffCut[5][5][3][2] ; //! M02 for 3 kinds of number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks
58a18c5d 773 TH2F * fhMassNLocMaxDiffCut[5][5][3][2] ; //! Mass for 3 kinds of number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks
ff6aa4ce 774
58a18c5d 775 TH2F * fhNLocMaxDiffCutPi0 [5][5] [2] ; //! Number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks, cluster selected as pi0
776 TH2F * fhM02NLocMaxDiffCutPi0[5][5][3][2] ; //! M02 for 3 kinds of number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks, cluster selected as pi0
777 TH2F * fhMassNLocMaxDiffCutPi0[5][5][3][2] ; //! M02 for 3 kinds of number of maxima for different values of min Loc Max value and min difference between cells, matched/unmatched with tracks
ff6aa4ce 778
2a77f6f4 779 AliAnaInsideClusterInvariantMass( const AliAnaInsideClusterInvariantMass & split) ; // cpy ctor
780 AliAnaInsideClusterInvariantMass & operator = (const AliAnaInsideClusterInvariantMass & split) ; // cpy assignment
992b14a7 781
5cd814a9 782 ClassDef(AliAnaInsideClusterInvariantMass,30)
992b14a7 783
784} ;
785
786#endif //ALIANAINSIDECLUSTERINVARIANTMASS_H
787
788
789