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Changes for report #69974: Virtual class for calorimeter analysis objects
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0c5b726e 1/**************************************************************************
2 * Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
3 * *
4 * Author: The ALICE Off-line Project. *
5 * Contributors are mentioned in the code where appropriate. *
6 * *
7 * Permission to use, copy, modify and distribute this software and its *
8 * documentation strictly for non-commercial purposes is hereby granted *
9 * without fee, provided that the above copyright notice appears in all *
10 * copies and that both the copyright notice and this permission notice *
11 * appear in the supporting documentation. The authors make no claims *
12 * about the suitability of this software for any purpose. It is *
13 * provided "as is" without express or implied warranty. *
14 **************************************************************************/
15
16//_________________________________________________________________________
17// AliAODCaloCluster extension for EMCAL to recalculate cluster
18// parameters in case of recalibration.
19// Copy-paste from methods in AliEMCALRecPoint.
20//*--
21//*-- Author: Dmitri Peressounko (RRC KI) for PHOS
22//*-- Adapted for EMCAL: Gustavo Conesa (INFN-LNF)
23
24// --- ROOT system ---
25#include "TVector3.h"
26#include "TMath.h"
27
28// --- Standard library ---
29
30// --- AliRoot header files ---
31#include "AliLog.h"
32#include "AliEMCALGeometry.h"
33#include "AliEMCALPID.h"
34#include "AliEMCALAodCluster.h"
35#include "AliEMCALCalibData.h"
36#include "AliAODCaloCells.h"
37
38ClassImp(AliEMCALAodCluster)
39
40//____________________________________________________________________________
41AliEMCALAodCluster::AliEMCALAodCluster() :
42 AliAODCaloCluster(),fRecalibrated(0)
43{
44 // ctor
45}
46//____________________________________________________________________________
47AliEMCALAodCluster::AliEMCALAodCluster(const AliAODCaloCluster & clu) :
48 AliAODCaloCluster(clu),fRecalibrated(0)
49{
50 // cpy ctor
51}
52
53//____________________________________________________________________________
54AliEMCALAodCluster::~AliEMCALAodCluster()
55{
56 // dtor
57}
58//____________________________________________________________________________
59void AliEMCALAodCluster::Recalibrate(AliEMCALCalibData * calibData, AliAODCaloCells *emcCells, TString emcalGeoName){
60 //If not done yet, apply recalibration coefficients to energies list
61 //NOTE that after recalibration fCellsAmpFraction contains not FRACTION but FULL energy
62
63 if(fRecalibrated)
64 return ;
65
66 if(!calibData)
67 return ;
68
69 AliEMCALGeometry * emcalgeo = AliEMCALGeometry::GetInstance(emcalGeoName) ;
70 if(!emcalgeo)
71 AliFatal("AliEMCALGeometry was not constructed\n") ;
72
73 Double32_t * cellsAmpFraction = GetCellsAmplitudeFraction();
74 Int_t iSupMod = -1;
75 Int_t iTower = -1;
76 Int_t iIphi = -1;
77 Int_t iIeta = -1;
78 Int_t iphi = -1;
79 Int_t ieta = -1;
80
81 for(Int_t i=0; i < GetNCells(); i++){
82
83 //Get from the absid the supermodule, tower and eta/phi numbers
84 emcalgeo->GetCellIndex(GetCellAbsId(i),iSupMod,iTower,iIphi,iIeta);
85 //Gives SuperModule and Tower numbers
86 emcalgeo->GetCellPhiEtaIndexInSModule(iSupMod,iTower,
87 iIphi, iIeta,iphi,ieta);
88
89 Double_t energy = emcCells->GetCellAmplitude(GetCellAbsId(i)) ;
60ea57cf 90 //AliDebug(2,Form("Recalibrate: cell %f, calib %f, fraction %f\n",energy,calibData->GetADCchannel(iSupMod,ieta,iphi),cellsAmpFraction[i]));
91 if(cellsAmpFraction[i]< 1e-4) cellsAmpFraction[i] = 1; //Unfolding off, took all the cell energy
0c5b726e 92 cellsAmpFraction[i]*=energy*calibData->GetADCchannel(iSupMod,ieta,iphi);
93 }
94
95 SetCellsAmplitudeFraction(cellsAmpFraction);
96 fRecalibrated=kTRUE;
97}
98//____________________________________________________________________________
99void AliEMCALAodCluster::EvalAll(Float_t logWeight, TString geoname){
100 //If recalibrated - recalculate all cluster parameters
101 if(!fRecalibrated)
102 return ;
103 //printf("EvalAll e org %f\n",E());
104 EvalEnergy() ; //Energy should be evaluated first
105 //printf("EvalAll e2 %f\n",E());
106 EvalPositionAndShowerShape(logWeight, geoname) ;
107 //printf("EvalAll e3 %f\n",E());
108 EvalPID() ; //Should be evaluated after energy and shower shape recalculation
109 //printf("EvalAll e4 %f\n",E());
110}
111//____________________________________________________________________________
112void AliEMCALAodCluster::EvalEnergy(){
113 //Evaluate energy
114 if(!fRecalibrated) // no need to recalibrate
115 return ;
116
117 Float_t energy=0. ;
118 for(Int_t iDigit=0; iDigit < GetNCells(); iDigit++) {
119 energy+=GetCellAmplitudeFraction(iDigit) ;
120 }
121 //printf("EvalEnergy: e %f\n", energy);
122 SetE(energy);
123
124
125}
126////____________________________________________________________________________
127//void AliEMCALAodCluster::EnergyCorrection(AliEMCALPID * pid){
128// //apply nonlinearity correction same as in AliEMCALPID.
129// SetE(pid->GetCalibratedEnergy(E())) ;
130//}
131
132//____________________________________________________________________________
133void AliEMCALAodCluster::EvalPID(){
134
135 //re-evaluate identification parameters
136// pid->CalculatePID(E(),GetDispersion(),GetEmcCpvDistance(),GetTOF(),GetPID()) ;
137// pid->CalculatePID(E(),GetDispersion(),GetM20(),GetM02(),GetEmcCpvDistance(),GetTOF(),GetPID()) ;
138
139 //With bayesian
140 AliEMCALPID *pid = new AliEMCALPID(kFALSE);
141 pid->SetLowFluxParam(); // Need to be fixed
142 Float_t pidlist[AliPID::kSPECIESN+1];
143 for(Int_t i = 0; i < AliPID::kSPECIESN+1; i++) pidlist[i] = pid->GetPIDFinal(i);
144 SetPIDFromESD(pidlist);
145
146}
147
148//____________________________________________________________________________
149void AliEMCALAodCluster::EvalPositionAndShowerShape(Float_t logWeight, TString emcalGeoName)
150{
151 // Calculates new center of gravity in the local EMCAL-module coordinates
152 // and tranfers into global ALICE coordinates
153 // Calculates Dispersion and main axis
154 if(!fRecalibrated) // no need to recalibrate
155 return ;
156
157 Int_t nstat = 0;
158 Float_t wtot = 0. ;
159
0c5b726e 160 Int_t iSupMod = -1;
161 Int_t iTower = -1;
162 Int_t iIphi = -1;
163 Int_t iIeta = -1;
164 Int_t iphi = -1;
165 Int_t ieta = -1;
166 Double_t etai = -1.;
167 Double_t phii = -1.;
168
169 Double_t clXYZ[3] ={0.,0.,0.};
170 Double_t xyzi[3] ={0.,0.,0.};
171
172 Double_t d = 0.;
173 Double_t dxx = 0.;
174 Double_t dzz = 0.;
175 Double_t dxz = 0.;
176 Double_t xmean = 0.;
177 Double_t zmean = 0.;
178
179 AliEMCALGeometry * emcalgeo = AliEMCALGeometry::GetInstance(emcalGeoName) ;
180 if(!emcalgeo)
181 AliFatal("AliEMCALGeometry was not constructed\n") ;
182
60ea57cf 183 Double_t dist = TmaxInCm(E(),0);
0c5b726e 184 for(Int_t iDigit=0; iDigit < GetNCells(); iDigit++) {
7cfcebd3 185
0c5b726e 186 //Get from the absid the supermodule, tower and eta/phi numbers
187 emcalgeo->GetCellIndex(GetCellAbsId(iDigit),iSupMod,iTower,iIphi,iIeta);
7cfcebd3 188 emcalgeo->RelPosCellInSModule(GetCellAbsId(iDigit), dist, xyzi[0], xyzi[1], xyzi[2]);
0c5b726e 189 emcalgeo->GetCellPhiEtaIndexInSModule(iSupMod,iTower,iIphi,iIeta, iphi,ieta);
190
191 Double_t ei = GetCellAmplitudeFraction(iDigit) ;
192 if (E() > 0 && ei > 0) {
193 Float_t w = ei;
194 if(logWeight > 0) w = TMath::Max( 0., logWeight + TMath::Log(ei/E()) ) ;
195 etai=(Double_t)ieta;
196 phii=(Double_t)iphi;
197 if(w > 0.0) {
198 wtot += w ;
199 nstat++;
200 for(Int_t i = 0; i < 3; i++ ) clXYZ[i] += (w*xyzi[i]);
201
202 //Shower shape
203 dxx += w * etai * etai ;
204 xmean+= w * etai ;
205 dzz += w * phii * phii ;
206 zmean+= w * phii ;
207 dxz += w * etai * phii ;
208 }
209 }
210 else
211 AliError(Form("Wrong energy %f and/or amplitude %f\n", ei, E()));
212 }
213
214 //Normalize to the weight
215 if (wtot > 0) {
216 for(Int_t i=0; i<3; i++ ) clXYZ[i] /= wtot;
217 xmean /= wtot ;
218 zmean /= wtot ;
219 }
220 else
221 AliError(Form("Wrong weight %f\n", wtot));
222
223 //Put cluster position in the global system
224 TVector3 gpos ;
225 emcalgeo->GetGlobal(clXYZ, gpos, iSupMod);
226
c8fe2783 227 SetPositionAt(gpos[0],0) ;
228 SetPositionAt(gpos[1],1) ;
229 SetPositionAt(gpos[2],2) ;
0c5b726e 230
231 //Calculate dispersion
232 for(Int_t iDigit=0; iDigit < GetNCells(); iDigit++) {
233 //Get from the absid the supermodule, tower and eta/phi numbers
234 emcalgeo->GetCellIndex(GetCellAbsId(iDigit),iSupMod,iTower,iIphi,iIeta);
235 emcalgeo->GetCellPhiEtaIndexInSModule(iSupMod,iTower,iIphi,iIeta, iphi,ieta);
236
237 Double_t ei=GetCellAmplitudeFraction(iDigit) ;
238 if (E() > 0 && ei > 0) {
239 Float_t w = ei;
240 if(logWeight > 0) w = TMath::Max( 0., logWeight + TMath::Log(ei/E()) ) ;
241 etai=(Double_t)ieta;
242 phii=(Double_t)iphi;
243 if(w > 0.0) d += w*((etai-xmean)*(etai-xmean)+(phii-zmean)*(phii-zmean));
244 }
245 else
246 AliError(Form("Wrong energy %f and/or amplitude %f\n", ei, E()));
247 }
248
249 //Normalize to the weigth and set shower shape parameters
250 if (wtot > 0 && nstat > 1) {
251 d /= wtot ;
252 dxx /= wtot ;
253 dzz /= wtot ;
254 dxz /= wtot ;
255 dxx -= xmean * xmean ;
256 dzz -= zmean * zmean ;
257 dxz -= xmean * zmean ;
258 SetM02(0.5 * (dxx + dzz) + TMath::Sqrt( 0.25 * (dxx - dzz) * (dxx - dzz) + dxz * dxz )) ;
259 SetM20(0.5 * (dxx + dzz) - TMath::Sqrt( 0.25 * (dxx - dzz) * (dxx - dzz) + dxz * dxz ));
260 }
261 else{
262 d=0. ;
263 SetM20(0.) ;
264 SetM02(0.) ;
265 }
266
267 if (d>=0)
268 SetDispersion(TMath::Sqrt(d)) ;
269 else
270 SetDispersion(0) ;
271
272}
273
274//_____________________________________________________________________
275Double_t AliEMCALAodCluster::TmaxInCm(const Double_t e , const Int_t key) const
276{
277 // e energy in GeV)
278 // key = 0(gamma, default)
279 // != 0(electron)
280 static Double_t ca = 4.82; // shower max parameter - first guess; ca=TMath::Log(1000./8.07)
281 static Double_t x0 = 1.23; // radiation lenght (cm)
282 static Double_t tmax = 0.; // position of electromagnetic shower max in cm
283
284 tmax = 0.0;
285 if(e>0.1) {
286 tmax = TMath::Log(e) + ca;
287 if (key==0) tmax += 0.5;
288 else tmax -= 0.5;
289 tmax *= x0; // convert to cm
290 }
291 return tmax;
292}
293