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7ca4655f 1/**************************************************************************
eefb3acc 2 * Copyright(c) 2007-2009, ALICE Experiment at CERN, All rights reserved. *
7ca4655f 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
7284b2b2 16//_________________________________________________________________________
ac903f1b 17//
7284b2b2 18// Implementation of the ITS-SPD trackleter class
ac903f1b 19//
fa9ed8e9 20// It retrieves clusters in the pixels (theta and phi) and finds tracklets.
21// These can be used to extract charged particle multiplicity from the ITS.
ac903f1b 22//
fa9ed8e9 23// A tracklet consists of two ITS clusters, one in the first pixel layer and
24// one in the second. The clusters are associated if the differences in
25// Phi (azimuth) and Theta (polar angle) are within fiducial windows.
26// In case of multiple candidates the candidate with minimum
27// distance is selected.
968e8539 28//
fa9ed8e9 29// Two methods return the number of tracklets and the number of unassociated
7284b2b2 30// clusters (i.e. not used in any tracklet) in the first SPD layer
31// (GetNTracklets and GetNSingleClusters)
32//
33// The cuts on phi and theta depend on the interacting system (p-p or Pb-Pb)
34// and can be set via AliITSRecoParam class
35// (SetPhiWindow and SetThetaWindow)
ac903f1b 36//
7284b2b2 37// Origin: Tiziano Virgili
38//
39// Current support and development:
40// Domenico Elia, Maria Nicassio (INFN Bari)
41// Domenico.Elia@ba.infn.it, Maria.Nicassio@ba.infn.it
42//
43// Most recent updates:
44// - multiple association forbidden (fOnlyOneTrackletPerC2 = kTRUE)
f606f16a 45// - phi definition changed to ALICE convention (0,2*TMath::pi())
46// - cluster coordinates taken with GetGlobalXYZ()
9b373e9a 47// - fGeometry removed
48// - number of fired chips on the two layers
fa9ed8e9 49// - option to cut duplicates in the overlaps
7b116aa1 50// - options and fiducial cuts via AliITSRecoParam
fa9ed8e9 51// - move from DeltaZeta to DeltaTheta cut
52// - update to the new algorithm by Mariella and Jan Fiete
53// - store also DeltaTheta in the ESD
54// - less new and delete calls when creating the needed arrays
1f9831ab 55//
56// - RS: to decrease the number of new/deletes the clusters data are stored
57// not in float[6] attached to float**, but in 1-D array.
58// - RS: Clusters are sorted in Z in roder to have the same numbering as in the ITS reco
59// - RS: Clusters used by ESDtrack are flagged, this information is passed to AliMulitiplicity object
60// when storing the tracklets and single cluster info
d7c5c1e4 61// - MN: first MC label of single clusters stored
7284b2b2 62//_________________________________________________________________________
ac903f1b 63
7ca4655f 64#include <TClonesArray.h>
65#include <TH1F.h>
66#include <TH2F.h>
67#include <TTree.h>
1f9831ab 68#include <TBits.h>
69#include <TArrayI.h>
ac903f1b 70
7ca4655f 71#include "AliITSMultReconstructor.h"
7b116aa1 72#include "AliITSReconstructor.h"
9b373e9a 73#include "AliITSsegmentationSPD.h"
b51872de 74#include "AliITSRecPoint.h"
b21c1af0 75#include "AliITSRecPointContainer.h"
ac903f1b 76#include "AliITSgeom.h"
b21c1af0 77#include "AliITSgeomTGeo.h"
1f9831ab 78#include "AliITSDetTypeRec.h"
79#include "AliESDEvent.h"
80#include "AliESDVertex.h"
81#include "AliESDtrack.h"
82#include "AliMultiplicity.h"
ac903f1b 83#include "AliLog.h"
fa9ed8e9 84#include "TGeoGlobalMagField.h"
85#include "AliMagF.h"
6de485aa 86#include "AliESDv0.h"
87#include "AliV0.h"
88#include "AliKFParticle.h"
89#include "AliKFVertex.h"
ac903f1b 90
91//____________________________________________________________________
0762f3a8 92ClassImp(AliITSMultReconstructor)
ac903f1b 93
3ef75756 94
ac903f1b 95//____________________________________________________________________
7537d03c 96AliITSMultReconstructor::AliITSMultReconstructor():
1f9831ab 97fDetTypeRec(0),fESDEvent(0),fTreeRP(0),fUsedClusLay1(0),fUsedClusLay2(0),
7537d03c 98fClustersLay1(0),
99fClustersLay2(0),
7b116aa1 100fDetectorIndexClustersLay1(0),
101fDetectorIndexClustersLay2(0),
102fOverlapFlagClustersLay1(0),
103fOverlapFlagClustersLay2(0),
7537d03c 104fTracklets(0),
968e8539 105fSClusters(0),
7537d03c 106fNClustersLay1(0),
107fNClustersLay2(0),
108fNTracklets(0),
968e8539 109fNSingleCluster(0),
7537d03c 110fPhiWindow(0),
7284b2b2 111fThetaWindow(0),
fa9ed8e9 112fPhiShift(0),
7b116aa1 113fRemoveClustersFromOverlaps(0),
114fPhiOverlapCut(0),
115fZetaOverlapCut(0),
6de485aa 116//
117fCutPxDrSPDin(0.1),
118fCutPxDrSPDout(0.15),
119fCutPxDz(0.2),
120fCutDCArz(0.5),
121fCutMinElectronProbTPC(0.5),
122fCutMinElectronProbESD(0.1),
123fCutMinP(0.05),
124fCutMinRGamma(2.),
125fCutMinRK0(1.),
126fCutMinPointAngle(0.98),
127fCutMaxDCADauther(0.5),
128fCutMassGamma(0.03),
129fCutMassGammaNSigma(5.),
130fCutMassK0(0.03),
131fCutMassK0NSigma(5.),
132fCutChi2cGamma(2.),
133fCutChi2cK0(2.),
134fCutGammaSFromDecay(-10.),
135fCutK0SFromDecay(-10.),
136fCutMaxDCA(1.),
137//
7537d03c 138fHistOn(0),
139fhClustersDPhiAcc(0),
140fhClustersDThetaAcc(0),
7537d03c 141fhClustersDPhiAll(0),
142fhClustersDThetaAll(0),
7537d03c 143fhDPhiVsDThetaAll(0),
144fhDPhiVsDThetaAcc(0),
7537d03c 145fhetaTracklets(0),
146fhphiTracklets(0),
147fhetaClustersLay1(0),
148fhphiClustersLay1(0){
9b373e9a 149
150 fNFiredChips[0] = 0;
151 fNFiredChips[1] = 0;
3ef75756 152 // Method to reconstruct the charged particles multiplicity with the
153 // SPD (tracklets).
ac903f1b 154
ac903f1b 155 SetHistOn();
ac903f1b 156
7b116aa1 157 if(AliITSReconstructor::GetRecoParam()) {
7b116aa1 158 SetPhiWindow(AliITSReconstructor::GetRecoParam()->GetTrackleterPhiWindow());
7284b2b2 159 SetThetaWindow(AliITSReconstructor::GetRecoParam()->GetTrackleterThetaWindow());
fa9ed8e9 160 SetPhiShift(AliITSReconstructor::GetRecoParam()->GetTrackleterPhiShift());
7b116aa1 161 SetRemoveClustersFromOverlaps(AliITSReconstructor::GetRecoParam()->GetTrackleterRemoveClustersFromOverlaps());
162 SetPhiOverlapCut(AliITSReconstructor::GetRecoParam()->GetTrackleterPhiOverlapCut());
163 SetZetaOverlapCut(AliITSReconstructor::GetRecoParam()->GetTrackleterZetaOverlapCut());
6de485aa 164 //
165 SetCutPxDrSPDin(AliITSReconstructor::GetRecoParam()->GetMultCutPxDrSPDin());
166 SetCutPxDrSPDout(AliITSReconstructor::GetRecoParam()->GetMultCutPxDrSPDout());
167 SetCutPxDz(AliITSReconstructor::GetRecoParam()->GetMultCutPxDz());
168 SetCutDCArz(AliITSReconstructor::GetRecoParam()->GetMultCutDCArz());
169 SetCutMinElectronProbTPC(AliITSReconstructor::GetRecoParam()->GetMultCutMinElectronProbTPC());
170 SetCutMinElectronProbESD(AliITSReconstructor::GetRecoParam()->GetMultCutMinElectronProbESD());
171 SetCutMinP(AliITSReconstructor::GetRecoParam()->GetMultCutMinP());
172 SetCutMinRGamma(AliITSReconstructor::GetRecoParam()->GetMultCutMinRGamma());
173 SetCutMinRK0(AliITSReconstructor::GetRecoParam()->GetMultCutMinRK0());
174 SetCutMinPointAngle(AliITSReconstructor::GetRecoParam()->GetMultCutMinPointAngle());
175 SetCutMaxDCADauther(AliITSReconstructor::GetRecoParam()->GetMultCutMaxDCADauther());
176 SetCutMassGamma(AliITSReconstructor::GetRecoParam()->GetMultCutMassGamma());
177 SetCutMassGammaNSigma(AliITSReconstructor::GetRecoParam()->GetMultCutMassGammaNSigma());
178 SetCutMassK0(AliITSReconstructor::GetRecoParam()->GetMultCutMassK0());
179 SetCutMassK0NSigma(AliITSReconstructor::GetRecoParam()->GetMultCutMassK0NSigma());
180 SetCutChi2cGamma(AliITSReconstructor::GetRecoParam()->GetMultCutChi2cGamma());
181 SetCutChi2cK0(AliITSReconstructor::GetRecoParam()->GetMultCutChi2cK0());
182 SetCutGammaSFromDecay(AliITSReconstructor::GetRecoParam()->GetMultCutGammaSFromDecay());
183 SetCutK0SFromDecay(AliITSReconstructor::GetRecoParam()->GetMultCutK0SFromDecay());
184 SetCutMaxDCA(AliITSReconstructor::GetRecoParam()->GetMultCutMaxDCA());
185 //
7b116aa1 186 } else {
7b116aa1 187 SetPhiWindow();
7284b2b2 188 SetThetaWindow();
fa9ed8e9 189 SetPhiShift();
7b116aa1 190 SetRemoveClustersFromOverlaps();
191 SetPhiOverlapCut();
192 SetZetaOverlapCut();
6de485aa 193 //
194 SetCutPxDrSPDin();
195 SetCutPxDrSPDout();
196 SetCutPxDz();
197 SetCutDCArz();
198 SetCutMinElectronProbTPC();
199 SetCutMinElectronProbESD();
200 SetCutMinP();
201 SetCutMinRGamma();
202 SetCutMinRK0();
203 SetCutMinPointAngle();
204 SetCutMaxDCADauther();
205 SetCutMassGamma();
206 SetCutMassGammaNSigma();
207 SetCutMassK0();
208 SetCutMassK0NSigma();
209 SetCutChi2cGamma();
210 SetCutChi2cK0();
211 SetCutGammaSFromDecay();
212 SetCutK0SFromDecay();
213 SetCutMaxDCA();
7b116aa1 214 }
215
fa9ed8e9 216 fClustersLay1 = 0;
217 fClustersLay2 = 0;
218 fDetectorIndexClustersLay1 = 0;
219 fDetectorIndexClustersLay2 = 0;
220 fOverlapFlagClustersLay1 = 0;
221 fOverlapFlagClustersLay2 = 0;
222 fTracklets = 0;
223 fSClusters = 0;
ac903f1b 224
225 // definition of histograms
fa9ed8e9 226 Bool_t oldStatus = TH1::AddDirectoryStatus();
227 TH1::AddDirectory(kFALSE);
228
7284b2b2 229 fhClustersDPhiAcc = new TH1F("dphiacc", "dphi", 100,-0.1,0.1);
ddced3c8 230 fhClustersDThetaAcc = new TH1F("dthetaacc","dtheta",100,-0.1,0.1);
ddced3c8 231
7284b2b2 232 fhDPhiVsDThetaAcc = new TH2F("dphiVsDthetaAcc","",100,-0.1,0.1,100,-0.1,0.1);
ac903f1b 233
02a95988 234 fhClustersDPhiAll = new TH1F("dphiall", "dphi", 100,0.0,0.5);
7284b2b2 235 fhClustersDThetaAll = new TH1F("dthetaall","dtheta",100,0.0,0.5);
ddced3c8 236
7284b2b2 237 fhDPhiVsDThetaAll = new TH2F("dphiVsDthetaAll","",100,0.,0.5,100,0.,0.5);
ddced3c8 238
239 fhetaTracklets = new TH1F("etaTracklets", "eta", 100,-2.,2.);
f606f16a 240 fhphiTracklets = new TH1F("phiTracklets", "phi", 100, 0., 2*TMath::Pi());
ddced3c8 241 fhetaClustersLay1 = new TH1F("etaClustersLay1", "etaCl1", 100,-2.,2.);
f606f16a 242 fhphiClustersLay1 = new TH1F("phiClustersLay1", "phiCl1", 100, 0., 2*TMath::Pi());
fa9ed8e9 243
244 TH1::AddDirectory(oldStatus);
ac903f1b 245}
ddced3c8 246
3ef75756 247//______________________________________________________________________
1f9831ab 248AliITSMultReconstructor::AliITSMultReconstructor(const AliITSMultReconstructor &mr) :
249AliTrackleter(mr),
250fDetTypeRec(0),fESDEvent(0),fTreeRP(0),fUsedClusLay1(0),fUsedClusLay2(0),
251fClustersLay1(0),
252fClustersLay2(0),
253fDetectorIndexClustersLay1(0),
254fDetectorIndexClustersLay2(0),
255fOverlapFlagClustersLay1(0),
256fOverlapFlagClustersLay2(0),
257fTracklets(0),
258fSClusters(0),
259fNClustersLay1(0),
260fNClustersLay2(0),
261fNTracklets(0),
262fNSingleCluster(0),
263fPhiWindow(0),
264fThetaWindow(0),
265fPhiShift(0),
266fRemoveClustersFromOverlaps(0),
267fPhiOverlapCut(0),
268fZetaOverlapCut(0),
6de485aa 269//
270fCutPxDrSPDin(0.1),
271fCutPxDrSPDout(0.15),
272fCutPxDz(0.2),
273fCutDCArz(0.5),
274fCutMinElectronProbTPC(0.5),
275fCutMinElectronProbESD(0.1),
276fCutMinP(0.05),
277fCutMinRGamma(2.),
278fCutMinRK0(1.),
279fCutMinPointAngle(0.98),
280fCutMaxDCADauther(0.5),
281fCutMassGamma(0.03),
282fCutMassGammaNSigma(5.),
283fCutMassK0(0.03),
284fCutMassK0NSigma(5.),
285fCutChi2cGamma(2.),
286fCutChi2cK0(2.),
287fCutGammaSFromDecay(-10.),
288fCutK0SFromDecay(-10.),
289fCutMaxDCA(1.),
290//
1f9831ab 291fHistOn(0),
292fhClustersDPhiAcc(0),
293fhClustersDThetaAcc(0),
294fhClustersDPhiAll(0),
295fhClustersDThetaAll(0),
296fhDPhiVsDThetaAll(0),
297fhDPhiVsDThetaAcc(0),
298fhetaTracklets(0),
299fhphiTracklets(0),
300fhetaClustersLay1(0),
301fhphiClustersLay1(0)
302 {
303 // Copy constructor :!!! RS ATTENTION: old c-tor reassigned the pointers instead of creating a new copy -> would crash on delete
304 AliError("May not use");
3ef75756 305}
306
307//______________________________________________________________________
7537d03c 308AliITSMultReconstructor& AliITSMultReconstructor::operator=(const AliITSMultReconstructor& mr){
3ef75756 309 // Assignment operator
1f9831ab 310 if (this != &mr) {
311 this->~AliITSMultReconstructor();
312 new(this) AliITSMultReconstructor(mr);
313 }
3ef75756 314 return *this;
315}
316
317//______________________________________________________________________
318AliITSMultReconstructor::~AliITSMultReconstructor(){
319 // Destructor
1ba5b31c 320
321 // delete histograms
322 delete fhClustersDPhiAcc;
323 delete fhClustersDThetaAcc;
1ba5b31c 324 delete fhClustersDPhiAll;
325 delete fhClustersDThetaAll;
1ba5b31c 326 delete fhDPhiVsDThetaAll;
327 delete fhDPhiVsDThetaAcc;
1ba5b31c 328 delete fhetaTracklets;
329 delete fhphiTracklets;
330 delete fhetaClustersLay1;
331 delete fhphiClustersLay1;
1f9831ab 332 delete[] fUsedClusLay1;
333 delete[] fUsedClusLay2;
334 // delete arrays
fa9ed8e9 335 for(Int_t i=0; i<fNTracklets; i++)
1ba5b31c 336 delete [] fTracklets[i];
fa9ed8e9 337
338 for(Int_t i=0; i<fNSingleCluster; i++)
968e8539 339 delete [] fSClusters[i];
fa9ed8e9 340
1ba5b31c 341 delete [] fClustersLay1;
342 delete [] fClustersLay2;
7b116aa1 343 delete [] fDetectorIndexClustersLay1;
344 delete [] fDetectorIndexClustersLay2;
345 delete [] fOverlapFlagClustersLay1;
346 delete [] fOverlapFlagClustersLay2;
1ba5b31c 347 delete [] fTracklets;
968e8539 348 delete [] fSClusters;
ddced3c8 349}
ac903f1b 350
351//____________________________________________________________________
1f9831ab 352void AliITSMultReconstructor::Reconstruct(AliESDEvent* esd, TTree* treeRP)
d7c5c1e4 353{
6873ed43 354 if (!treeRP) { AliError(" Invalid ITS cluster tree !\n"); return; }
355 if (!esd) {AliError("ESDEvent is not available, use old reconstructor"); return;}
ac903f1b 356 // reset counters
1f9831ab 357 if (fMult) delete fMult; fMult = 0;
358 fNClustersLay1 = 0;
359 fNClustersLay2 = 0;
360 fNTracklets = 0;
361 fNSingleCluster = 0;
362 //
1f9831ab 363 fESDEvent = esd;
364 fTreeRP = treeRP;
365 //
366 // >>>> RS: this part is equivalent to former AliITSVertexer::FindMultiplicity
367 //
368 // see if there is a SPD vertex
369 Bool_t isVtxOK=kTRUE, isCosmics=kFALSE;
370 AliESDVertex* vtx = (AliESDVertex*)fESDEvent->GetPrimaryVertexSPD();
7fdf95b0 371 if (!vtx || vtx->GetNContributors()<1) isVtxOK = kFALSE;
1f9831ab 372 if (vtx && strstr(vtx->GetTitle(),"cosmics")) {
373 isVtxOK = kFALSE;
374 isCosmics = kTRUE;
375 }
376 //
377 if (!isVtxOK) {
378 if (!isCosmics) {
379 AliDebug(1,"Tracklets multiplicity not determined because the primary vertex was not found");
380 AliDebug(1,"Just counting the number of cluster-fired chips on the SPD layers");
381 }
382 vtx = 0;
383 }
f39a4c9c 384 if(vtx){
385 float vtxf[3] = {vtx->GetX(),vtx->GetY(),vtx->GetZ()};
386 FindTracklets(vtxf);
387 }
388 else {
389 FindTracklets(0);
390 }
1f9831ab 391 //
392 CreateMultiplicityObject();
393}
394
395//____________________________________________________________________
396void AliITSMultReconstructor::Reconstruct(TTree* clusterTree, Float_t* vtx, Float_t* /* vtxRes*/) {
397 //
398 // RS NOTE - this is old reconstructor invocation, to be used from VertexFinder
d7c5c1e4 399
1f9831ab 400 if (fMult) delete fMult; fMult = 0;
ac903f1b 401 fNClustersLay1 = 0;
402 fNClustersLay2 = 0;
403 fNTracklets = 0;
7284b2b2 404 fNSingleCluster = 0;
1f9831ab 405 //
406 if (!clusterTree) { AliError(" Invalid ITS cluster tree !\n"); return; }
407 //
408 fESDEvent = 0;
409 fTreeRP = clusterTree;
410 //
411 FindTracklets(vtx);
412 //
413}
7284b2b2 414
1f9831ab 415//____________________________________________________________________
416void AliITSMultReconstructor::FindTracklets(const Float_t *vtx)
417{
d7c5c1e4 418
419 // - calls LoadClusterArrays that finds the position of the clusters
420 // (in global coord)
421 // - convert the cluster coordinates to theta, phi (seen from the
422 // interaction vertex).
423 // - makes an array of tracklets
424 //
425 // After this method has been called, the clusters of the two layers
426 // and the tracklets can be retrieved by calling the Get'er methods.
427
428
1f9831ab 429 // Find tracklets converging to vertex
430 //
431 LoadClusterArrays(fTreeRP);
432 // flag clusters used by ESD tracks
6873ed43 433 if (fESDEvent) ProcessESDTracks();
1f9831ab 434
435 if (!vtx) return;
3ef75756 436
7284b2b2 437 const Double_t pi = TMath::Pi();
fa9ed8e9 438
439 // dPhi shift is field dependent
440 // get average magnetic field
441 Float_t bz = 0;
442 AliMagF* field = 0;
1f9831ab 443 if (TGeoGlobalMagField::Instance()) field = dynamic_cast<AliMagF*>(TGeoGlobalMagField::Instance()->GetField());
fa9ed8e9 444 if (!field)
445 {
446 AliError("Could not retrieve magnetic field. Assuming no field. Delta Phi shift will be deactivated in AliITSMultReconstructor.")
447 }
448 else
449 bz = TMath::Abs(field->SolenoidField());
450
451 const Double_t dPhiShift = fPhiShift / 5 * bz;
452 AliDebug(1, Form("Using phi shift of %f", dPhiShift));
453
454 const Double_t dPhiWindow2 = fPhiWindow * fPhiWindow;
455 const Double_t dThetaWindow2 = fThetaWindow * fThetaWindow;
456
7284b2b2 457 Int_t* partners = new Int_t[fNClustersLay2];
458 Float_t* minDists = new Float_t[fNClustersLay2];
459 Int_t* associatedLay1 = new Int_t[fNClustersLay1];
460 TArrayI** blacklist = new TArrayI*[fNClustersLay1];
461
462 for (Int_t i=0; i<fNClustersLay2; i++) {
463 partners[i] = -1;
464 minDists[i] = 2;
465 }
466 for (Int_t i=0; i<fNClustersLay1; i++)
467 associatedLay1[i] = 0;
468 for (Int_t i=0; i<fNClustersLay1; i++)
469 blacklist[i] = 0;
470
ac903f1b 471 // find the tracklets
472 AliDebug(1,"Looking for tracklets... ");
fa9ed8e9 473
ac903f1b 474 //###########################################################
475 // Loop on layer 1 : finding theta, phi and z
476 for (Int_t iC1=0; iC1<fNClustersLay1; iC1++) {
1f9831ab 477 float *clPar = GetClusterLayer1(iC1);
478 Float_t x = clPar[kClTh] - vtx[0];
479 Float_t y = clPar[kClPh] - vtx[1];
480 Float_t z = clPar[kClZ] - vtx[2];
ddced3c8 481
fa9ed8e9 482 Float_t r = TMath::Sqrt(x*x + y*y + z*z);
ac903f1b 483
1f9831ab 484 clPar[kClTh] = TMath::ACos(z/r); // Store Theta
485 clPar[kClPh] = TMath::Pi() + TMath::ATan2(-y,-x); // Store Phi
fa9ed8e9 486
ddced3c8 487 if (fHistOn) {
1f9831ab 488 Float_t eta = clPar[kClTh];
ddced3c8 489 eta= TMath::Tan(eta/2.);
490 eta=-TMath::Log(eta);
491 fhetaClustersLay1->Fill(eta);
1f9831ab 492 fhphiClustersLay1->Fill(clPar[kClPh]);
ddced3c8 493 }
96c2c35d 494 }
ac903f1b 495
496 // Loop on layer 2 : finding theta, phi and r
497 for (Int_t iC2=0; iC2<fNClustersLay2; iC2++) {
1f9831ab 498 float *clPar = GetClusterLayer2(iC2);
499 Float_t x = clPar[kClTh] - vtx[0];
500 Float_t y = clPar[kClPh] - vtx[1];
501 Float_t z = clPar[kClZ] - vtx[2];
ddced3c8 502
fa9ed8e9 503 Float_t r = TMath::Sqrt(x*x + y*y + z*z);
1f9831ab 504
505 clPar[kClTh] = TMath::ACos(z/r); // Store Theta
506 clPar[kClPh] = TMath::Pi() + TMath::ATan2(-y,-x); // Store Phi
ac903f1b 507 }
508
509 //###########################################################
7284b2b2 510 Int_t found = 1;
511 while (found > 0) {
7284b2b2 512 found = 0;
513
514 // Step1: find all tracklets allowing double assocation
515 // Loop on layer 1
516 for (Int_t iC1=0; iC1<fNClustersLay1; iC1++) {
517
d7c5c1e4 518 // already used ?
519 if (associatedLay1[iC1] != 0) continue;
ac903f1b 520
7284b2b2 521 found++;
522
523 // reset of variables for multiple candidates
524 Int_t iC2WithBestDist = -1; // reset
525 Double_t minDist = 2; // reset
1f9831ab 526 float* clPar1 = GetClusterLayer1(iC1);
527
7284b2b2 528 // Loop on layer 2
529 for (Int_t iC2=0; iC2<fNClustersLay2; iC2++) {
530
1f9831ab 531 float* clPar2 = GetClusterLayer2(iC2);
7284b2b2 532
533 if (blacklist[iC1]) {
534 Bool_t blacklisted = kFALSE;
1f9831ab 535 for (Int_t i=blacklist[iC1]->GetSize(); i--;) {
7284b2b2 536 if (blacklist[iC1]->At(i) == iC2) {
537 blacklisted = kTRUE;
538 break;
539 }
540 }
541 if (blacklisted) continue;
542 }
543
ac903f1b 544 // find the difference in angles
d7c5c1e4 545 Double_t dTheta = TMath::Abs(clPar2[kClTh] - clPar1[kClTh]);
1f9831ab 546 Double_t dPhi = TMath::Abs(clPar2[kClPh] - clPar1[kClPh]);
02a95988 547 // take into account boundary condition
7284b2b2 548 if (dPhi>pi) dPhi=2.*pi-dPhi;
fa9ed8e9 549
ddced3c8 550 if (fHistOn) {
7284b2b2 551 fhClustersDPhiAll->Fill(dPhi);
ddced3c8 552 fhClustersDThetaAll->Fill(dTheta);
ac903f1b 553 fhDPhiVsDThetaAll->Fill(dTheta, dPhi);
554 }
fa9ed8e9 555
556 dPhi -= dPhiShift;
557
7284b2b2 558 // make "elliptical" cut in Phi and Theta!
fa9ed8e9 559 Float_t d = dPhi*dPhi/dPhiWindow2 + dTheta*dTheta/dThetaWindow2;
7284b2b2 560
561 // look for the minimum distance: the minimum is in iC2WithBestDist
fa9ed8e9 562 if (d<1 && d<minDist) {
7284b2b2 563 minDist=d;
ddced3c8 564 iC2WithBestDist = iC2;
ac903f1b 565 }
7284b2b2 566 } // end of loop over clusters in layer 2
ac903f1b 567
7284b2b2 568 if (minDist<1) { // This means that a cluster in layer 2 was found that matches with iC1
569
570 if (minDists[iC2WithBestDist] > minDist) {
571 Int_t oldPartner = partners[iC2WithBestDist];
572 partners[iC2WithBestDist] = iC1;
573 minDists[iC2WithBestDist] = minDist;
574
575 // mark as assigned
576 associatedLay1[iC1] = 1;
577
578 if (oldPartner != -1) {
fa9ed8e9 579 // redo partner search for cluster in L0 (oldPartner), putting this one (iC2WithBestDist) on its blacklist
7284b2b2 580 if (blacklist[oldPartner] == 0) {
581 blacklist[oldPartner] = new TArrayI(1);
582 } else blacklist[oldPartner]->Set(blacklist[oldPartner]->GetSize()+1);
583
584 blacklist[oldPartner]->AddAt(iC2WithBestDist, blacklist[oldPartner]->GetSize()-1);
585
586 // mark as free
fa9ed8e9 587 associatedLay1[oldPartner] = 0;
7284b2b2 588 }
589 } else {
590 // try again to find a cluster without considering iC2WithBestDist
591 if (blacklist[iC1] == 0) {
592 blacklist[iC1] = new TArrayI(1);
593 }
fa9ed8e9 594 else
595 blacklist[iC1]->Set(blacklist[iC1]->GetSize()+1);
7284b2b2 596
597 blacklist[iC1]->AddAt(iC2WithBestDist, blacklist[iC1]->GetSize()-1);
598 }
de4c520e 599
7284b2b2 600 } else // cluster has no partner; remove
601 associatedLay1[iC1] = 2;
602 } // end of loop over clusters in layer 1
603 }
604
605 // Step2: store tracklets; remove used clusters
606 for (Int_t iC2=0; iC2<fNClustersLay2; iC2++) {
de4c520e 607
7284b2b2 608 if (partners[iC2] == -1) continue;
7b116aa1 609
7284b2b2 610 if (fRemoveClustersFromOverlaps) FlagClustersInOverlapRegions (partners[iC2],iC2);
611
aba7fa71 612
613 if (fOverlapFlagClustersLay1[partners[iC2]] || fOverlapFlagClustersLay2[iC2]) continue;
614
1f9831ab 615 float* clPar2 = GetClusterLayer2(iC2);
616 float* clPar1 = GetClusterLayer1(partners[iC2]);
617
618 Float_t* tracklet = fTracklets[fNTracklets] = new Float_t[kTrNPar]; // RS Add also the cluster id's
fa9ed8e9 619
7284b2b2 620 // use the theta from the clusters in the first layer
1f9831ab 621 tracklet[kTrTheta] = clPar1[kClTh];
7284b2b2 622 // use the phi from the clusters in the first layer
1f9831ab 623 tracklet[kTrPhi] = clPar1[kClPh];
7284b2b2 624 // store the difference between phi1 and phi2
1f9831ab 625 tracklet[kTrDPhi] = clPar1[kClPh] - clPar2[kClPh];
7284b2b2 626
627 // define dphi in the range [0,pi] with proper sign (track charge correlated)
1f9831ab 628 if (tracklet[kTrDPhi] > TMath::Pi()) tracklet[kTrDPhi] = tracklet[kTrDPhi]-2.*TMath::Pi();
629 if (tracklet[kTrDPhi] < -TMath::Pi()) tracklet[kTrDPhi] = tracklet[kTrDPhi]+2.*TMath::Pi();
7b116aa1 630
7284b2b2 631 // store the difference between theta1 and theta2
1f9831ab 632 tracklet[kTrDTheta] = clPar1[kClTh] - clPar2[kClTh];
7284b2b2 633
634 if (fHistOn) {
1f9831ab 635 fhClustersDPhiAcc->Fill(tracklet[kTrDPhi]);
636 fhClustersDThetaAcc->Fill(tracklet[kTrDTheta]);
637 fhDPhiVsDThetaAcc->Fill(tracklet[kTrDTheta],tracklet[kTrDPhi]);
ac903f1b 638 }
3ef75756 639
7284b2b2 640 // find label
641 // if equal label in both clusters found this label is assigned
642 // if no equal label can be found the first labels of the L1 AND L2 cluster are assigned
643 Int_t label1 = 0;
644 Int_t label2 = 0;
645 while (label2 < 3) {
1f9831ab 646 if ((Int_t) clPar1[kClMC0+label1] != -2 && (Int_t) clPar1[kClMC0+label1] == (Int_t) clPar2[kClMC0+label2])
7284b2b2 647 break;
648 label1++;
649 if (label1 == 3) {
650 label1 = 0;
651 label2++;
652 }
653 }
654 if (label2 < 3) {
1f9831ab 655 AliDebug(AliLog::kDebug, Form("Found label %d == %d for tracklet candidate %d\n", (Int_t) clPar1[kClMC0+label1], (Int_t) clPar1[kClMC0+label2], fNTracklets));
656 tracklet[kTrLab1] = clPar1[kClMC0+label1];
657 tracklet[kTrLab2] = clPar2[kClMC0+label2];
7284b2b2 658 } else {
1f9831ab 659 AliDebug(AliLog::kDebug, Form("Did not find label %d %d %d %d %d %d for tracklet candidate %d\n", (Int_t) clPar1[kClMC0], (Int_t) clPar1[kClMC1], (Int_t) clPar1[kClMC2], (Int_t) clPar2[kClMC0], (Int_t) clPar2[kClMC1], (Int_t) clPar2[kClMC2], fNTracklets));
660 tracklet[kTrLab1] = clPar1[kClMC0];
661 tracklet[kTrLab2] = clPar2[kClMC0];
7284b2b2 662 }
663
664 if (fHistOn) {
1f9831ab 665 Float_t eta = tracklet[kTrTheta];
7284b2b2 666 eta= TMath::Tan(eta/2.);
667 eta=-TMath::Log(eta);
668 fhetaTracklets->Fill(eta);
1f9831ab 669 fhphiTracklets->Fill(tracklet[kTrPhi]);
7284b2b2 670 }
1f9831ab 671 //
672 tracklet[kClID1] = partners[iC2];
673 tracklet[kClID2] = iC2;
674 //
7284b2b2 675 AliDebug(1,Form(" Adding tracklet candidate %d ", fNTracklets));
676 AliDebug(1,Form(" Cl. %d of Layer 1 and %d of Layer 2", partners[iC2], iC2));
677 fNTracklets++;
3ef75756 678
7284b2b2 679 associatedLay1[partners[iC2]] = 1;
680 }
681
682 // Delete the following else if you do not want to save Clusters!
683 // store the cluster
684 for (Int_t iC1=0; iC1<fNClustersLay1; iC1++) {
1f9831ab 685
686 float* clPar1 = GetClusterLayer1(iC1);
687
7284b2b2 688 if (associatedLay1[iC1]==2||associatedLay1[iC1]==0) {
1f9831ab 689 fSClusters[fNSingleCluster] = new Float_t[kClNPar];
690 fSClusters[fNSingleCluster][kSCTh] = clPar1[kClTh];
691 fSClusters[fNSingleCluster][kSCPh] = clPar1[kClPh];
d7c5c1e4 692 fSClusters[fNSingleCluster][kSCLab] = clPar1[kClMC0];
1f9831ab 693 fSClusters[fNSingleCluster][kSCID] = iC1;
de4c520e 694 AliDebug(1,Form(" Adding a single cluster %d (cluster %d of layer 1)",
7284b2b2 695 fNSingleCluster, iC1));
968e8539 696 fNSingleCluster++;
3ef75756 697 }
7284b2b2 698 }
699
700 delete[] partners;
701 delete[] minDists;
702
703 for (Int_t i=0; i<fNClustersLay1; i++)
704 if (blacklist[i])
705 delete blacklist[i];
706 delete[] blacklist;
707
ac903f1b 708 AliDebug(1,Form("%d tracklets found", fNTracklets));
709}
710
711//____________________________________________________________________
1f9831ab 712void AliITSMultReconstructor::CreateMultiplicityObject()
713{
714 // create AliMultiplicity object and store it in the ESD event
715 //
716 TBits fastOrFiredMap,firedChipMap;
717 if (fDetTypeRec) {
718 fastOrFiredMap = fDetTypeRec->GetFastOrFiredMap();
719 firedChipMap = fDetTypeRec->GetFiredChipMap(fTreeRP);
720 }
721 //
722 fMult = new AliMultiplicity(fNTracklets,fNSingleCluster,fNFiredChips[0],fNFiredChips[1],fastOrFiredMap);
723 fMult->SetFiredChipMap(firedChipMap);
724 AliITSRecPointContainer* rcont = AliITSRecPointContainer::Instance();
725 fMult->SetITSClusters(0,rcont->GetNClustersInLayer(1,fTreeRP));
726 for(Int_t kk=2;kk<=6;kk++) fMult->SetITSClusters(kk-1,rcont->GetNClustersInLayerFast(kk));
727 //
728 for (int i=fNTracklets;i--;) {
729 float* tlInfo = fTracklets[i];
34581d1e 730 fMult->SetTrackletData(i,tlInfo, fUsedClusLay1[int(tlInfo[kClID1])],fUsedClusLay2[int(tlInfo[kClID2])]);
1f9831ab 731 }
732 //
733 for (int i=fNSingleCluster;i--;) {
734 float* clInfo = fSClusters[i];
735 fMult->SetSingleClusterData(i,clInfo,fUsedClusLay1[int(clInfo[kSCID])]);
736 }
737 fMult->CompactBits();
738 //
739}
740
741
742//____________________________________________________________________
743void AliITSMultReconstructor::LoadClusterArrays(TTree* itsClusterTree)
744{
ac903f1b 745 // This method
746 // - gets the clusters from the cluster tree
747 // - convert them into global coordinates
748 // - store them in the internal arrays
9b373e9a 749 // - count the number of cluster-fired chips
1f9831ab 750 //
d7c5c1e4 751 // RS: This method was strongly modified wrt original. In order to have the same numbering
1f9831ab 752 // of clusters as in the ITS reco I had to introduce sorting in Z
753 // Also note that now the clusters data are stored not in float[6] attached to float**, but in 1-D array
ac903f1b 754
9b373e9a 755 AliDebug(1,"Loading clusters and cluster-fired chips ...");
ac903f1b 756
757 fNClustersLay1 = 0;
758 fNClustersLay2 = 0;
9b373e9a 759 fNFiredChips[0] = 0;
760 fNFiredChips[1] = 0;
ac903f1b 761
b21c1af0 762 AliITSsegmentationSPD seg;
9b373e9a 763
b21c1af0 764 AliITSRecPointContainer* rpcont=AliITSRecPointContainer::Instance();
765 TClonesArray* itsClusters=rpcont->FetchClusters(0,itsClusterTree);
766 if(!rpcont->IsSPDActive()){
767 AliWarning("No SPD rec points found, multiplicity not calculated");
768 return;
769 }
1f9831ab 770 //
fa9ed8e9 771 // count clusters
b21c1af0 772 // loop over the SPD subdetectors
1f9831ab 773 TObjArray clArr(100);
774 for (int il=0;il<2;il++) {
775 int nclLayer = 0;
776 int detMin = AliITSgeomTGeo::GetModuleIndex(il+1,1,1);
777 int detMax = AliITSgeomTGeo::GetModuleIndex(il+2,1,1);
778 for (int idt=detMin;idt<detMax;idt++) {
779 itsClusters=rpcont->UncheckedGetClusters(idt);
780 int nClusters = itsClusters->GetEntriesFast();
781 if (!nClusters) continue;
782 Int_t nClustersInChip[5] = {0,0,0,0,0};
783 while(nClusters--) {
784 AliITSRecPoint* cluster = (AliITSRecPoint*)itsClusters->UncheckedAt(nClusters);
785 if (!cluster) continue;
1aa4b2f2 786 clArr.AddAtAndExpand(cluster,nclLayer++);
1f9831ab 787 nClustersInChip[ seg.GetChipFromLocal(0,cluster->GetDetLocalZ()) ]++;
ac903f1b 788 }
1f9831ab 789 for(Int_t ifChip=5;ifChip--;) if (nClustersInChip[ifChip]) fNFiredChips[il]++;
9b373e9a 790 }
1f9831ab 791 // sort the clusters in Z (to have the same numbering as in ITS reco
792 Float_t *z = new Float_t[nclLayer];
793 Int_t * index = new Int_t[nclLayer];
794 for (int ic=0;ic<nclLayer;ic++) z[ic] = ((AliITSRecPoint*)clArr[ic])->GetZ();
795 TMath::Sort(nclLayer,z,index,kFALSE);
796 Float_t* clustersLay = new Float_t[nclLayer*kClNPar];
797 Int_t* detectorIndexClustersLay = new Int_t[nclLayer];
798 Bool_t* overlapFlagClustersLay = new Bool_t[nclLayer];
34581d1e 799 UInt_t* usedClusLay = new UInt_t[nclLayer];
1f9831ab 800 //
801 for (int ic=0;ic<nclLayer;ic++) {
802 AliITSRecPoint* cluster = (AliITSRecPoint*)clArr[index[ic]];
803 float* clPar = &clustersLay[ic*kClNPar];
804 //
805 cluster->GetGlobalXYZ( clPar );
806 detectorIndexClustersLay[ic] = cluster->GetDetectorIndex();
807 overlapFlagClustersLay[ic] = kFALSE;
808 usedClusLay[ic] = 0;
809 for (Int_t i=3;i--;) clPar[kClMC0+i] = cluster->GetLabel(i);
810 }
811 clArr.Clear();
812 delete[] z;
813 delete[] index;
814 //
815 if (il==0) {
816 fClustersLay1 = clustersLay;
817 fOverlapFlagClustersLay1 = overlapFlagClustersLay;
818 fDetectorIndexClustersLay1 = detectorIndexClustersLay;
819 fUsedClusLay1 = usedClusLay;
820 fNClustersLay1 = nclLayer;
821 }
822 else {
823 fClustersLay2 = clustersLay;
824 fOverlapFlagClustersLay2 = overlapFlagClustersLay;
825 fDetectorIndexClustersLay2 = detectorIndexClustersLay;
826 fUsedClusLay2 = usedClusLay;
827 fNClustersLay2 = nclLayer;
828 }
829 }
830 //
831 // no double association allowed
832 int nmaxT = TMath::Min(fNClustersLay1, fNClustersLay2);
833 fTracklets = new Float_t*[nmaxT];
834 fSClusters = new Float_t*[fNClustersLay1];
835 for (Int_t i=nmaxT;i--;) fTracklets[i] = 0;
836 //
ac903f1b 837 AliDebug(1,Form("(clusters in layer 1 : %d, layer 2: %d)",fNClustersLay1,fNClustersLay2));
9b373e9a 838 AliDebug(1,Form("(cluster-fired chips in layer 1 : %d, layer 2: %d)",fNFiredChips[0],fNFiredChips[1]));
839}
840//____________________________________________________________________
841void
842AliITSMultReconstructor::LoadClusterFiredChips(TTree* itsClusterTree) {
d7c5c1e4 843 // This method
9b373e9a 844 // - gets the clusters from the cluster tree
845 // - counts the number of (cluster)fired chips
846
847 AliDebug(1,"Loading cluster-fired chips ...");
848
849 fNFiredChips[0] = 0;
850 fNFiredChips[1] = 0;
851
d7c5c1e4 852 AliITSsegmentationSPD seg;
b21c1af0 853 AliITSRecPointContainer* rpcont=AliITSRecPointContainer::Instance();
854 TClonesArray* itsClusters=rpcont->FetchClusters(0,itsClusterTree);
855 if(!rpcont->IsSPDActive()){
856 AliWarning("No SPD rec points found, multiplicity not calculated");
857 return;
858 }
9b373e9a 859
9b373e9a 860 // loop over the its subdetectors
b21c1af0 861 Int_t nSPDmodules=AliITSgeomTGeo::GetModuleIndex(3,1,1);
862 for (Int_t iIts=0; iIts < nSPDmodules; iIts++) {
863 itsClusters=rpcont->UncheckedGetClusters(iIts);
9b373e9a 864 Int_t nClusters = itsClusters->GetEntriesFast();
865
866 // number of clusters in each chip of the current module
867 Int_t nClustersInChip[5] = {0,0,0,0,0};
868 Int_t layer = 0;
869
870 // loop over clusters
871 while(nClusters--) {
872 AliITSRecPoint* cluster = (AliITSRecPoint*)itsClusters->UncheckedAt(nClusters);
873
874 layer = cluster->GetLayer();
875 if (layer>1) continue;
876
877 // find the chip for the current cluster
878 Float_t locz = cluster->GetDetLocalZ();
b21c1af0 879 Int_t iChip = seg.GetChipFromLocal(0,locz);
9b373e9a 880 nClustersInChip[iChip]++;
881
882 }// end of cluster loop
883
884 // get number of fired chips in the current module
9b373e9a 885 for(Int_t ifChip=0; ifChip<5; ifChip++) {
886 if(nClustersInChip[ifChip] >= 1) fNFiredChips[layer]++;
887 }
888
889 } // end of its "subdetector" loop
890
b21c1af0 891
9b373e9a 892 AliDebug(1,Form("(cluster-fired chips in layer 1 : %d, layer 2: %d)",fNFiredChips[0],fNFiredChips[1]));
ac903f1b 893}
894//____________________________________________________________________
895void
896AliITSMultReconstructor::SaveHists() {
3ef75756 897 // This method save the histograms on the output file
898 // (only if fHistOn is TRUE).
ac903f1b 899
900 if (!fHistOn)
901 return;
902
ddced3c8 903 fhClustersDPhiAll->Write();
904 fhClustersDThetaAll->Write();
ac903f1b 905 fhDPhiVsDThetaAll->Write();
ddced3c8 906
907 fhClustersDPhiAcc->Write();
908 fhClustersDThetaAcc->Write();
ac903f1b 909 fhDPhiVsDThetaAcc->Write();
ddced3c8 910
911 fhetaTracklets->Write();
912 fhphiTracklets->Write();
913 fhetaClustersLay1->Write();
914 fhphiClustersLay1->Write();
ac903f1b 915}
7b116aa1 916
917//____________________________________________________________________
918void
919AliITSMultReconstructor::FlagClustersInOverlapRegions (Int_t iC1, Int_t iC2WithBestDist) {
920
921 Float_t distClSameMod=0.;
922 Float_t distClSameModMin=0.;
923 Int_t iClOverlap =0;
924 Float_t meanRadiusLay1 = 3.99335; // average radius inner layer
925 Float_t meanRadiusLay2 = 7.37935; // average radius outer layer;
926
927 Float_t zproj1=0.;
928 Float_t zproj2=0.;
929 Float_t deZproj=0.;
1f9831ab 930 Float_t* clPar1 = GetClusterLayer1(iC1);
931 Float_t* clPar2B = GetClusterLayer2(iC2WithBestDist);
7b116aa1 932 // Loop on inner layer clusters
933 for (Int_t iiC1=0; iiC1<fNClustersLay1; iiC1++) {
934 if (!fOverlapFlagClustersLay1[iiC1]) {
935 // only for adjacent modules
936 if ((TMath::Abs(fDetectorIndexClustersLay1[iC1]-fDetectorIndexClustersLay1[iiC1])==4)||
937 (TMath::Abs(fDetectorIndexClustersLay1[iC1]-fDetectorIndexClustersLay1[iiC1])==76)) {
1f9831ab 938 Float_t *clPar11 = GetClusterLayer1(iiC1);
939 Float_t dePhi=TMath::Abs(clPar11[kClPh]-clPar1[kClPh]);
7b116aa1 940 if (dePhi>TMath::Pi()) dePhi=2.*TMath::Pi()-dePhi;
941
1f9831ab 942 zproj1=meanRadiusLay1/TMath::Tan(clPar1[kClTh]);
943 zproj2=meanRadiusLay1/TMath::Tan(clPar11[kClTh]);
7b116aa1 944
945 deZproj=TMath::Abs(zproj1-zproj2);
946
947 distClSameMod = TMath::Sqrt(TMath::Power(deZproj/fZetaOverlapCut,2)+TMath::Power(dePhi/fPhiOverlapCut,2));
948 if (distClSameMod<=1.) fOverlapFlagClustersLay1[iiC1]=kTRUE;
949
950// if (distClSameMod<=1.) {
951// if (distClSameModMin==0. || distClSameMod<distClSameModMin) {
952// distClSameModMin=distClSameMod;
953// iClOverlap=iiC1;
954// }
955// }
956
957
958 } // end adjacent modules
959 }
960 } // end Loop on inner layer clusters
961
962// if (distClSameModMin!=0.) fOverlapFlagClustersLay1[iClOverlap]=kTRUE;
963
964 distClSameMod=0.;
965 distClSameModMin=0.;
966 iClOverlap =0;
967 // Loop on outer layer clusters
968 for (Int_t iiC2=0; iiC2<fNClustersLay2; iiC2++) {
969 if (!fOverlapFlagClustersLay2[iiC2]) {
970 // only for adjacent modules
1f9831ab 971 Float_t *clPar2 = GetClusterLayer2(iiC2);
7b116aa1 972 if ((TMath::Abs(fDetectorIndexClustersLay2[iC2WithBestDist]-fDetectorIndexClustersLay2[iiC2])==4) ||
973 (TMath::Abs(fDetectorIndexClustersLay2[iC2WithBestDist]-fDetectorIndexClustersLay2[iiC2])==156)) {
1f9831ab 974 Float_t dePhi=TMath::Abs(clPar2[kClPh]-clPar2B[kClPh]);
7b116aa1 975 if (dePhi>TMath::Pi()) dePhi=2.*TMath::Pi()-dePhi;
976
1f9831ab 977 zproj1=meanRadiusLay2/TMath::Tan(clPar2B[kClTh]);
978 zproj2=meanRadiusLay2/TMath::Tan(clPar2[kClTh]);
7b116aa1 979
980 deZproj=TMath::Abs(zproj1-zproj2);
981 distClSameMod = TMath::Sqrt(TMath::Power(deZproj/fZetaOverlapCut,2)+TMath::Power(dePhi/fPhiOverlapCut,2));
982 if (distClSameMod<=1.) fOverlapFlagClustersLay2[iiC2]=kTRUE;
983
984// if (distClSameMod<=1.) {
985// if (distClSameModMin==0. || distClSameMod<distClSameModMin) {
986// distClSameModMin=distClSameMod;
987// iClOverlap=iiC2;
988// }
989// }
990
991 } // end adjacent modules
992 }
993 } // end Loop on outer layer clusters
994
995// if (distClSameModMin!=0.) fOverlapFlagClustersLay2[iClOverlap]=kTRUE;
996
6b489238 997}
1f9831ab 998
999//____________________________________________________________________
1000void AliITSMultReconstructor::ProcessESDTracks()
1001{
1002 // Flag the clusters used by ESD tracks
1003 // Flag primary tracks to be used for multiplicity counting
1004 //
6873ed43 1005 if (!fESDEvent) return;
1f9831ab 1006 AliESDVertex* vtx = (AliESDVertex*)fESDEvent->GetPrimaryVertexTracks();
7fdf95b0 1007 if (!vtx || vtx->GetNContributors()<1) vtx = (AliESDVertex*)fESDEvent->GetPrimaryVertexSPD();
1008 if (!vtx || vtx->GetNContributors()<1) {
1f9831ab 1009 AliDebug(1,"No primary vertex: cannot flag primary tracks");
1010 return;
1011 }
1012 Int_t ntracks = fESDEvent->GetNumberOfTracks();
1013 for(Int_t itr=0; itr<ntracks; itr++) {
1014 AliESDtrack* track = fESDEvent->GetTrack(itr);
1015 if (!track->IsOn(AliESDtrack::kITSin)) continue; // use only tracks propagated in ITS to vtx
34581d1e 1016 FlagTrackClusters(itr);
6de485aa 1017 FlagIfSecondary(track,vtx);
1f9831ab 1018 }
6de485aa 1019 FlagV0s(vtx);
1f9831ab 1020 //
1021}
1022
1023//____________________________________________________________________
34581d1e 1024void AliITSMultReconstructor::FlagTrackClusters(Int_t id)
1f9831ab 1025{
1026 // RS: flag the SPD clusters of the track if it is useful for the multiplicity estimation
1027 //
b3e812ed 1028 const UInt_t kMaskL = 0x0000ffff;
1029 const UInt_t kMaskH = 0xffff0000;
1030 const UInt_t kMaxTrID = kMaskL - 1; // max possible track id
1031 if (UInt_t(id)>kMaxTrID) return;
34581d1e 1032 const AliESDtrack* track = fESDEvent->GetTrack(id);
1f9831ab 1033 Int_t idx[12];
1034 if ( track->GetITSclusters(idx)<3 ) return; // at least 3 clusters must be used in the fit
34581d1e 1035 UInt_t *uClus[2] = {fUsedClusLay1,fUsedClusLay2};
1036 //
1037 UInt_t mark = id+1;
1038 if (track->IsOn(AliESDtrack::kITSpureSA)) mark <<= 16;
1f9831ab 1039 //
1f9831ab 1040 for (int i=AliESDfriendTrack::kMaxITScluster;i--;) {
1041 // note: i>=6 is for extra clusters
1042 if (idx[i]<0) continue;
1043 int layID= (idx[i] & 0xf0000000) >> 28;
1044 if (layID>1) continue; // SPD only
1045 int clID = (idx[i] & 0x0fffffff);
b3e812ed 1046 //
1047 if ( track->IsOn(AliESDtrack::kITSpureSA) ) {
1048 if (uClus[layID][clID]&kMaskH) {
1049 AliWarning(Form("Tracks %5d and %5d share cluster %6d of lr%d",id,int(uClus[layID][clID]>>16)-1,clID,layID));
1050 uClus[layID][clID] &= kMaskL;
1051 }
1052 }
1053 else if (uClus[layID][clID]&kMaskL) {
1054 AliWarning(Form("Tracks %5d and %5d share cluster %6d of lr%d",id,int(uClus[layID][clID]&kMaskL)-1,clID,layID));
1055 uClus[layID][clID] &= kMaskH;
1056 }
1f9831ab 1057 uClus[layID][clID] |= mark;
1058 }
1059 //
1060}
1061
1062//____________________________________________________________________
6de485aa 1063void AliITSMultReconstructor::FlagIfSecondary(AliESDtrack* track, const AliVertex* vtx)
1f9831ab 1064{
1065 // RS: check if the track is primary and set the flag
6de485aa 1066 double cut = (track->HasPointOnITSLayer(0)||track->HasPointOnITSLayer(1)) ? fCutPxDrSPDin:fCutPxDrSPDout;
1067 float xz[2];
1068 track->GetDZ(vtx->GetX(),vtx->GetY(),vtx->GetZ(), fESDEvent->GetMagneticField(), xz);
1069 if (TMath::Abs(xz[0]*track->P())>cut || TMath::Abs(xz[1]*track->P())>fCutPxDz ||
1070 TMath::Abs(xz[0])>fCutDCArz || TMath::Abs(xz[1])>fCutDCArz)
1071 track->SetStatus(AliESDtrack::kMultSec);
1072 else track->ResetStatus(AliESDtrack::kMultSec);
1073}
1074
1075//____________________________________________________________________
1076void AliITSMultReconstructor::FlagV0s(const AliESDVertex *vtx)
1077{
1078 // flag tracks belonging to v0s
1079 //
1080 const double kK0Mass = 0.4976;
1081 //
1082 AliV0 pvertex;
1083 AliKFVertex vertexKF;
1084 AliKFParticle epKF0,epKF1,pipmKF0,piKF0,piKF1,gammaKF,k0KF;
1085 Double_t mass,massErr,chi2c;
1086 enum {kKFIni=BIT(14)};
1087 //
1088 double recVtx[3];
1089 float recVtxF[3];
1090 vtx->GetXYZ(recVtx);
1091 for (int i=3;i--;) recVtxF[i] = recVtx[i];
1092 //
1093 int ntracks = fESDEvent->GetNumberOfTracks();
1094 if (ntracks<2) return;
1095 //
1096 vertexKF.X() = recVtx[0];
1097 vertexKF.Y() = recVtx[1];
1098 vertexKF.Z() = recVtx[2];
1099 vertexKF.Covariance(0,0) = vtx->GetXRes()*vtx->GetXRes();
1100 vertexKF.Covariance(1,2) = vtx->GetYRes()*vtx->GetYRes();
1101 vertexKF.Covariance(2,2) = vtx->GetZRes()*vtx->GetZRes();
1102 //
1103 AliESDtrack *trc0,*trc1;
1104 for (int it0=0;it0<ntracks;it0++) {
1105 trc0 = fESDEvent->GetTrack(it0);
1106 if (trc0->IsOn(AliESDtrack::kMultInV0)) continue;
1107 if (!trc0->IsOn(AliESDtrack::kITSin)) continue;
1108 Bool_t isSAP = trc0->IsPureITSStandalone();
1109 Int_t q0 = trc0->Charge();
1110 Bool_t testGamma = CanBeElectron(trc0);
1111 epKF0.ResetBit(kKFIni);
1112 piKF0.ResetBit(kKFIni);
1113 double bestChi2=1e16;
1114 int bestID = -1;
1115 //
1116 for (int it1=it0+1;it1<ntracks;it1++) {
1117 trc1 = fESDEvent->GetTrack(it1);
1118 if (trc1->IsOn(AliESDtrack::kMultInV0)) continue;
1119 if (!trc1->IsOn(AliESDtrack::kITSin)) continue;
1120 if (trc1->IsPureITSStandalone() != isSAP) continue; // pair separately ITS_SA_Pure tracks and TPC/ITS+ITS_SA
1121 if ( (q0+trc1->Charge())!=0 ) continue; // don't pair like signs
1122 //
1123 pvertex.SetParamN(q0<0 ? *trc0:*trc1);
1124 pvertex.SetParamP(q0>0 ? *trc0:*trc1);
1125 pvertex.Update(recVtxF);
1126 if (pvertex.P()<fCutMinP) continue;
1127 if (pvertex.GetV0CosineOfPointingAngle()<fCutMinPointAngle) continue;
1128 if (pvertex.GetDcaV0Daughters()>fCutMaxDCADauther) continue;
1129 double d = pvertex.GetD(recVtx[0],recVtx[1],recVtx[2]);
1130 if (d>fCutMaxDCA) continue;
1131 double dx=recVtx[0]-pvertex.Xv(), dy=recVtx[1]-pvertex.Yv();
1132 double rv = TMath::Sqrt(dx*dx+dy*dy);
1133 //
1134 // check gamma conversion hypothesis ----------------------------------------------------------->>>
1135 Bool_t gammaOK = kFALSE;
1136 while (testGamma && CanBeElectron(trc1)) {
1137 if (rv<fCutMinRGamma) break;
1138 if (!epKF0.TestBit(kKFIni)) {
1139 new(&epKF0) AliKFParticle(*trc0,q0>0 ? kPositron:kElectron);
1140 epKF0.SetBit(kKFIni);
1141 }
1142 new(&epKF1) AliKFParticle(*trc1,q0<0 ? kPositron:kElectron);
1143 gammaKF.Initialize();
1144 gammaKF += epKF0;
1145 gammaKF += epKF1;
1146 gammaKF.SetProductionVertex(vertexKF);
1147 gammaKF.GetMass(mass,massErr);
1148 if (mass>fCutMassGamma || (massErr>0&&(mass>massErr*fCutMassGammaNSigma))) break;
1149 if (gammaKF.GetS()<fCutGammaSFromDecay) break;
1150 gammaKF.SetMassConstraint(0.,0.001);
1151 chi2c = (gammaKF.GetNDF()!=0) ? gammaKF.GetChi2()/gammaKF.GetNDF() : 1000;
1152 if (chi2c>fCutChi2cGamma) break;
1153 gammaOK = kTRUE;
1154 if (chi2c>bestChi2) break;
1155 bestChi2 = chi2c;
1156 bestID = it1;
1157 break;
1158 }
1159 if (gammaOK) continue;
1160 // check gamma conversion hypothesis -----------------------------------------------------------<<<
1161 // check K0 conversion hypothesis ----------------------------------------------------------->>>
1162 while (1) {
1163 if (rv<fCutMinRK0) break;
1164 if (!piKF0.TestBit(kKFIni)) {
1165 new(&piKF0) AliKFParticle(*trc0,q0>0 ? kPiPlus:kPiMinus);
1166 piKF0.SetBit(kKFIni);
1167 }
1168 new(&piKF1) AliKFParticle(*trc1,q0<0 ? kPiPlus:kPiMinus);
1169 k0KF.Initialize();
1170 k0KF += piKF0;
1171 k0KF += piKF1;
1172 k0KF.SetProductionVertex(vertexKF);
1173 k0KF.GetMass(mass,massErr);
1174 mass -= kK0Mass;
1175 if (TMath::Abs(mass)>fCutMassK0 || (massErr>0&&(abs(mass)>massErr*fCutMassK0NSigma))) break;
1176 if (k0KF.GetS()<fCutK0SFromDecay) break;
1177 k0KF.SetMassConstraint(kK0Mass,0.001);
1178 chi2c = (k0KF.GetNDF()!=0) ? k0KF.GetChi2()/k0KF.GetNDF() : 1000;
1179 if (chi2c>fCutChi2cK0) break;
1180 if (chi2c>bestChi2) break;
1181 bestChi2 = chi2c;
1182 bestID = it1;
1183 break;
1184 }
1185 // check K0 conversion hypothesis -----------------------------------------------------------<<<
1186 }
1187 //
1188 if (bestID>=0) {
1189 trc0->SetStatus(AliESDtrack::kMultInV0);
1190 fESDEvent->GetTrack(bestID)->SetStatus(AliESDtrack::kMultInV0);
1191 }
1192 }
1193 //
1194}
1195
1196//____________________________________________________________________
1197Bool_t AliITSMultReconstructor::CanBeElectron(const AliESDtrack* trc) const
1198{
1199 // check if the track can be electron
1200 Double_t pid[AliPID::kSPECIES];
1201 if (!trc->IsOn(AliESDtrack::kESDpid)) return kTRUE;
1202 trc->GetESDpid(pid);
1203 return (trc->IsOn(AliESDtrack::kTPCpid)) ?
1204 pid[AliPID::kElectron]>fCutMinElectronProbTPC :
1205 pid[AliPID::kElectron]>fCutMinElectronProbESD;
1206 //
1f9831ab 1207}