]> git.uio.no Git - u/mrichter/AliRoot.git/blame - TRD/AliTRDtrackerV1.cxx
Added debug streamer steering from Marian and new tracklet fit from Alex
[u/mrichter/AliRoot.git] / TRD / AliTRDtrackerV1.cxx
CommitLineData
e4f2f73d 1/**************************************************************************
972ef65e 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**************************************************************************/
e4f2f73d 15
16/* $Id$ */
17
18///////////////////////////////////////////////////////////////////////////////
19// //
20// Track finder //
21// //
22// Authors: //
23// Alex Bercuci <A.Bercuci@gsi.de> //
24// Markus Fasel <M.Fasel@gsi.de> //
25// //
26///////////////////////////////////////////////////////////////////////////////
27
e4f2f73d 28#include <TBranch.h>
bb56afff 29#include <TDirectory.h>
e4f2f73d 30#include <TLinearFitter.h>
e4f2f73d 31#include <TTree.h>
32#include <TClonesArray.h>
e4f2f73d 33#include <TTreeStream.h>
eb2b4f91 34#include <TGeoMatrix.h>
35#include <TGeoManager.h>
e4f2f73d 36
37#include "AliLog.h"
fac58f00 38#include "AliMathBase.h"
e4f2f73d 39#include "AliESDEvent.h"
bb56afff 40#include "AliGeomManager.h"
e4f2f73d 41#include "AliRieman.h"
42#include "AliTrackPointArray.h"
43
e4f2f73d 44#include "AliTRDgeometry.h"
45#include "AliTRDpadPlane.h"
e4f2f73d 46#include "AliTRDcalibDB.h"
e4f2f73d 47#include "AliTRDReconstructor.h"
48#include "AliTRDCalibraFillHisto.h"
e4f2f73d 49#include "AliTRDrecoParam.h"
bb56afff 50
51#include "AliTRDcluster.h"
828c6f80 52#include "AliTRDdigitsParam.h"
e4f2f73d 53#include "AliTRDseedV1.h"
0906e73e 54#include "AliTRDtrackV1.h"
bb56afff 55#include "AliTRDtrackerV1.h"
56#include "AliTRDtrackerDebug.h"
57#include "AliTRDtrackingChamber.h"
58#include "AliTRDchamberTimeBin.h"
59
e4f2f73d 60ClassImp(AliTRDtrackerV1)
903326c1 61ClassImp(AliTRDtrackerV1::AliTRDLeastSquare)
62ClassImp(AliTRDtrackerV1::AliTRDtrackFitterRieman)
eb38ed55 63
2f4384e6 64AliTRDtrackerV1::ETRDtrackerV1BetheBloch AliTRDtrackerV1::fgBB = AliTRDtrackerV1::kGeant;
d76231c8 65Double_t AliTRDtrackerV1::fgTopologicQA[kNConfigs] = {
6e39bde4 66 0.5112, 0.5112, 0.5112, 0.0786, 0.0786,
41702fec 67 0.0786, 0.0786, 0.0579, 0.0579, 0.0474,
68 0.0474, 0.0408, 0.0335, 0.0335, 0.0335
e165b64b 69};
70const Double_t AliTRDtrackerV1::fgkX0[kNPlanes] = {
71 300.2, 312.8, 325.4, 338.0, 350.6, 363.2};
952051c5 72// Number of Time Bins/chamber should be also stored independently by the traker
73// (also in AliTRDReconstructor) in oder to be able to run HLT. Fix TODO
2985ffcb 74Int_t AliTRDtrackerV1::fgNTimeBins = 0;
4d6aee34 75AliRieman* AliTRDtrackerV1::fgRieman = NULL;
76TLinearFitter* AliTRDtrackerV1::fgTiltedRieman = NULL;
77TLinearFitter* AliTRDtrackerV1::fgTiltedRiemanConstrained = NULL;
e4f2f73d 78
79//____________________________________________________________________
33ab3872 80AliTRDtrackerV1::AliTRDtrackerV1(const AliTRDReconstructor *rec)
41702fec 81 :AliTracker()
4d6aee34 82 ,fkReconstructor(NULL)
9e85cb05 83 ,fkRecoParam(NULL)
4d6aee34 84 ,fGeom(NULL)
85 ,fClusters(NULL)
86 ,fTracklets(NULL)
87 ,fTracks(NULL)
b1135f96 88 ,fTracksESD(NULL)
41702fec 89 ,fSieveSeeding(0)
9dcc64cc 90 ,fEventInFile(-1)
e4f2f73d 91{
41702fec 92 //
93 // Default constructor.
94 //
eb2b4f91 95
96 SetReconstructor(rec); // initialize reconstructor
97
98 // initialize geometry
99 if(!AliGeomManager::GetGeometry()){
100 AliFatal("Could not get geometry.");
101 }
102 fGeom = new AliTRDgeometry();
103 fGeom->CreateClusterMatrixArray();
4d6aee34 104 TGeoHMatrix *matrix = NULL;
eb2b4f91 105 Double_t loc[] = {0., 0., 0.};
106 Double_t glb[] = {0., 0., 0.};
107 for(Int_t ily=kNPlanes; ily--;){
e165b64b 108 Int_t ism = 0;
109 while(!(matrix = fGeom->GetClusterMatrix(AliTRDgeometry::GetDetector(ily, 2, ism)))) ism++;
110 if(!matrix){
111 AliError(Form("Could not get transformation matrix for layer %d. Use default.", ily));
112 fR[ily] = fgkX0[ily];
eb2b4f91 113 continue;
114 }
115 matrix->LocalToMaster(loc, glb);
116 fR[ily] = glb[0]+ AliTRDgeometry::AnodePos()-.5*AliTRDgeometry::AmThick() - AliTRDgeometry::DrThick();
117 }
118
eb2b4f91 119 // initialize cluster containers
053767a4 120 for (Int_t isector = 0; isector < AliTRDgeometry::kNsector; isector++) new(&fTrSec[isector]) AliTRDtrackingSector(fGeom, isector);
3a039a31 121
eb2b4f91 122 // initialize arrays
123 memset(fTrackQuality, 0, kMaxTracksStack*sizeof(Double_t));
124 memset(fSeedLayer, 0, kMaxTracksStack*sizeof(Int_t));
125 memset(fSeedTB, 0, kNSeedPlanes*sizeof(AliTRDchamberTimeBin*));
b1135f96 126 fTracksESD = new TClonesArray("AliESDtrack", 2*kMaxTracksStack);
ddfbc51a 127 fTracksESD->SetOwner();
eb38ed55 128}
129
e4f2f73d 130//____________________________________________________________________
131AliTRDtrackerV1::~AliTRDtrackerV1()
132{
41702fec 133 //
134 // Destructor
135 //
d2eba04b 136
4d6aee34 137 if(fgRieman) delete fgRieman; fgRieman = NULL;
138 if(fgTiltedRieman) delete fgTiltedRieman; fgTiltedRieman = NULL;
139 if(fgTiltedRiemanConstrained) delete fgTiltedRiemanConstrained; fgTiltedRiemanConstrained = NULL;
d611c74f 140 for(Int_t isl =0; isl<kNSeedPlanes; isl++) if(fSeedTB[isl]) delete fSeedTB[isl];
b1135f96 141 if(fTracksESD){ fTracksESD->Delete(); delete fTracksESD; }
41702fec 142 if(fTracks) {fTracks->Delete(); delete fTracks;}
143 if(fTracklets) {fTracklets->Delete(); delete fTracklets;}
d2eba04b 144 if(IsClustersOwner() && fClusters) {
145 AliInfo(Form("tracker[%p] removing %d own clusters @ %p", (void*)this, fClusters->GetEntries(), (void*)fClusters));
48f8adf3 146 fClusters->Delete(); delete fClusters;
147 }
41702fec 148 if(fGeom) delete fGeom;
e4f2f73d 149}
150
151//____________________________________________________________________
152Int_t AliTRDtrackerV1::Clusters2Tracks(AliESDEvent *esd)
153{
41702fec 154 //
155 // Steering stand alone tracking for full TRD detector
156 //
157 // Parameters :
158 // esd : The ESD event. On output it contains
159 // the ESD tracks found in TRD.
160 //
161 // Output :
162 // Number of tracks found in the TRD detector.
163 //
164 // Detailed description
165 // 1. Launch individual SM trackers.
166 // See AliTRDtrackerV1::Clusters2TracksSM() for details.
167 //
168
9e85cb05 169 if(!fkRecoParam){
3a039a31 170 AliError("Reconstruction configuration not initialized. Call first AliTRDReconstructor::SetRecoParam().");
41702fec 171 return 0;
172 }
173
174 //AliInfo("Start Track Finder ...");
175 Int_t ntracks = 0;
053767a4 176 for(int ism=0; ism<AliTRDgeometry::kNsector; ism++){
41702fec 177 // for(int ism=1; ism<2; ism++){
178 //AliInfo(Form("Processing supermodule %i ...", ism));
179 ntracks += Clusters2TracksSM(ism, esd);
180 }
980d5a2a 181 AliInfo(Form("Number of tracks: !TRDin[%d]", ntracks));
41702fec 182 return ntracks;
e4f2f73d 183}
184
0906e73e 185
186//_____________________________________________________________________________
eb38ed55 187Bool_t AliTRDtrackerV1::GetTrackPoint(Int_t index, AliTrackPoint &p) const
0906e73e 188{
41702fec 189 //AliInfo(Form("Asking for tracklet %d", index));
190
84eab75a 191 // reset position of the point before using it
192 p.SetXYZ(0., 0., 0.);
2f7514a6 193 AliTRDseedV1 *tracklet = GetTracklet(index);
194 if (!tracklet) return kFALSE;
84eab75a 195
41702fec 196 // get detector for this tracklet
e165b64b 197 Int_t det = tracklet->GetDetector();
198 Int_t sec = fGeom->GetSector(det);
199 Double_t alpha = (sec+.5)*AliTRDgeometry::GetAlpha(),
200 sinA = TMath::Sin(alpha),
201 cosA = TMath::Cos(alpha);
41702fec 202 Double_t local[3];
e165b64b 203 local[0] = tracklet->GetX();
204 local[1] = tracklet->GetY();
205 local[2] = tracklet->GetZ();
41702fec 206 Double_t global[3];
e165b64b 207 fGeom->RotateBack(det, local, global);
208
209 Double_t cov2D[3]; Float_t cov[6];
210 tracklet->GetCovAt(local[0], cov2D);
211 cov[0] = cov2D[0]*sinA*sinA;
212 cov[1] =-cov2D[0]*sinA*cosA;
213 cov[2] =-cov2D[1]*sinA;
214 cov[3] = cov2D[0]*cosA*cosA;
215 cov[4] = cov2D[1]*cosA;
216 cov[5] = cov2D[2];
217 // store the global position of the tracklet and its covariance matrix in the track point
218 p.SetXYZ(global[0],global[1],global[2], cov);
41702fec 219
220 // setting volume id
e165b64b 221 AliGeomManager::ELayerID iLayer = AliGeomManager::ELayerID(AliGeomManager::kTRD1+fGeom->GetLayer(det));
222 Int_t modId = fGeom->GetSector(det) * AliTRDgeometry::kNstack + fGeom->GetStack(det);
41702fec 223 UShort_t volid = AliGeomManager::LayerToVolUID(iLayer, modId);
224 p.SetVolumeID(volid);
225
226 return kTRUE;
0906e73e 227}
228
eb38ed55 229//____________________________________________________________________
230TLinearFitter* AliTRDtrackerV1::GetTiltedRiemanFitter()
231{
41702fec 232 if(!fgTiltedRieman) fgTiltedRieman = new TLinearFitter(4, "hyp4");
233 return fgTiltedRieman;
eb38ed55 234}
0906e73e 235
eb38ed55 236//____________________________________________________________________
237TLinearFitter* AliTRDtrackerV1::GetTiltedRiemanFitterConstraint()
238{
41702fec 239 if(!fgTiltedRiemanConstrained) fgTiltedRiemanConstrained = new TLinearFitter(2, "hyp2");
240 return fgTiltedRiemanConstrained;
eb38ed55 241}
41702fec 242
eb38ed55 243//____________________________________________________________________
244AliRieman* AliTRDtrackerV1::GetRiemanFitter()
245{
fac58f00 246 if(!fgRieman) fgRieman = new AliRieman(AliTRDseedV1::kNtb * AliTRDgeometry::kNlayer);
41702fec 247 return fgRieman;
eb38ed55 248}
41702fec 249
0906e73e 250//_____________________________________________________________________________
251Int_t AliTRDtrackerV1::PropagateBack(AliESDEvent *event)
252{
2a3191bb 253// Propagation of ESD tracks from TPC to TOF detectors and building of the TRD track. For building
254// a TRD track an ESD track is used as seed. The informations obtained on the TRD track (measured points,
255// covariance, PID, etc.) are than used to update the corresponding ESD track.
256// Each track seed is first propagated to the geometrical limit of the TRD detector.
257// Its prolongation is searched in the TRD and if corresponding clusters are found tracklets are
258// constructed out of them (see AliTRDseedV1::AttachClusters()) and the track is updated.
259// Otherwise the ESD track is left unchanged.
260//
261// The following steps are performed:
262// 1. Selection of tracks based on the variance in the y-z plane.
263// 2. Propagation to the geometrical limit of the TRD volume. If track propagation fails the AliESDtrack::kTRDStop is set.
264// 3. Prolongation inside the fiducial volume (see AliTRDtrackerV1::FollowBackProlongation()) and marking
265// the following status bits:
266// - AliESDtrack::kTRDin - if the tracks enters the TRD fiducial volume
267// - AliESDtrack::kTRDStop - if the tracks fails propagation
268// - AliESDtrack::kTRDbackup - if the tracks fulfills chi2 conditions and qualify for refitting
269// 4. Writting to friends, PID, MC label, quality etc. Setting status bit AliESDtrack::kTRDout.
270// 5. Propagation to TOF. If track propagation fails the AliESDtrack::kTRDStop is set.
271//
272
e3d45279 273 if(!fClusters || !fClusters->GetEntriesFast()){
274 AliInfo("No TRD clusters");
275 return 0;
276 }
2a3191bb 277 AliTRDCalibraFillHisto *calibra = AliTRDCalibraFillHisto::Instance(); // Calibration monitor
e3d45279 278 if (!calibra) AliInfo("Could not get Calibra instance");
c6f7c6cb 279 if (!fgNTimeBins) fgNTimeBins = fkReconstructor->GetNTimeBins();
828c6f80 280
eb2b4f91 281 // Define scalers
88987d18 282 Int_t nFound = 0, // number of tracks found
283 nBacked = 0, // number of tracks backed up for refit
284 nSeeds = 0, // total number of ESD seeds
285 nTRDseeds= 0, // number of seeds in the TRD acceptance
286 nTPCseeds= 0; // number of TPC seeds
41702fec 287 Float_t foundMin = 20.0;
88987d18 288
289 Float_t *quality = NULL;
290 Int_t *index = NULL;
9dcc64cc 291 fEventInFile = event->GetEventNumberInFile();
eb2b4f91 292 nSeeds = event->GetNumberOfTracks();
293 // Sort tracks according to quality
294 // (covariance in the yz plane)
295 if(nSeeds){
88987d18 296 quality = new Float_t[nSeeds];
297 index = new Int_t[4*nSeeds];
298 for (Int_t iSeed = nSeeds; iSeed--;) {
d611c74f 299 AliESDtrack *seed = event->GetTrack(iSeed);
300 Double_t covariance[15];
301 seed->GetExternalCovariance(covariance);
88987d18 302 quality[iSeed] = covariance[0] + covariance[2];
d611c74f 303 }
88987d18 304 TMath::Sort(nSeeds, quality, index,kFALSE);
41702fec 305 }
88987d18 306
eb2b4f91 307 // Propagate all seeds
41702fec 308 Int_t expectedClr;
309 AliTRDtrackV1 track;
88987d18 310 for (Int_t iSeed = 0; iSeed < nSeeds; iSeed++) {
311
312 // Get the seeds in sorted sequence
313 AliESDtrack *seed = event->GetTrack(index[iSeed]);
314 Float_t p4 = seed->GetC(seed->GetBz());
315
316 // Check the seed status
317 ULong_t status = seed->GetStatus();
318 if ((status & AliESDtrack::kTRDout) != 0) continue;
319 if ((status & AliESDtrack::kTPCout)){
320 AliDebug(3, Form("Prolongate seed[%2d] which is TPC.", iSeed));
321 // set steering parameters for TPC
322 //fkRecoParam->SetTrackParam(kTPC);
323/* } else {
324 if ((status & AliESDtrack::kITSout)){
325 AliDebug(3, Form("Prolongate seed[%2d] which is ITS.", iSeed));
326 // set steering parameters for ITS
327 //fkRecoParam->SetTrackParam(kITS);
328 // rotate
329 Float_t globalToTracking = AliTRDgeometry::GetAlpha()*(Int_t(seed->GetAlpha()/AliTRDgeometry::GetAlpha()) + (seed->GetAlpha()>0. ? 0.5 : -0.5));
330 if(!seed->Rotate(globalToTracking)) continue;
331 } else continue;*/
332 } else continue;
333
334 // Propagate to the entrance in the TRD mother volume
335 track.~AliTRDtrackV1();
336 new(&track) AliTRDtrackV1(*seed);
337 if(AliTRDgeometry::GetXtrdBeg() > (AliTRDReconstructor::GetMaxStep() + track.GetX()) && !PropagateToX(track, AliTRDgeometry::GetXtrdBeg(), AliTRDReconstructor::GetMaxStep())){
338 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
339 continue;
340 }
341 if(!AdjustSector(&track)){
342 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
343 continue;
344 }
345 if(TMath::Abs(track.GetSnp()) > AliTRDReconstructor::GetMaxSnp()) {
346 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
347 continue;
348 }
349 nTPCseeds++;
350 AliDebug(2, Form("TRD propagate TPC seed[%d] = %d.", iSeed, index[iSeed]));
351 // store track status at TRD entrance
352 seed->UpdateTrackParams(&track, AliESDtrack::kTRDbackup);
353
354 // prepare track and do propagation in the TRD
355 track.SetReconstructor(fkReconstructor);
356 track.SetKink(Bool_t(seed->GetKinkIndex(0)));
357 track.SetPrimary(status & AliESDtrack::kTPCin);
358 expectedClr = FollowBackProlongation(track);
359 // check if track entered the TRD fiducial volume
360 if(track.GetTrackIn()){
361 seed->UpdateTrackParams(&track, AliESDtrack::kTRDin);
362 nTRDseeds++;
363 }
364 // check if track was stopped in the TRD
365 if (expectedClr<0){
366 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
367 continue;
368 } else {
369 nFound++;
370 // compute PID
371 track.CookPID();
372 //compute MC label
373 track.CookLabel(1. - AliTRDReconstructor::GetLabelFraction());
374 // update calibration references using this track
375 if(calibra->GetHisto2d()) calibra->UpdateHistogramsV1(&track);
41702fec 376 // save calibration object
2c7f43b6 377 if (fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 0 || AliTRDReconstructor::GetStreamLevel()>0 ) {
224f357f 378 AliTRDtrackV1 *calibTrack = new AliTRDtrackV1(track);
379 calibTrack->SetOwner();
380 seed->AddCalibObject(calibTrack);
381 }
88987d18 382 //update ESD track
383 seed->UpdateTrackParams(&track, AliESDtrack::kTRDout);
384 track.UpdateESDtrack(seed);
385 }
4b5b4c5b 386
88987d18 387 // Make backup for back propagation
388 if ((TMath::Abs(track.GetC(track.GetBz()) - p4) / TMath::Abs(p4) < 0.2) || (track.Pt() > 0.8)) {
389 Int_t foundClr = track.GetNumberOfClusters();
390 if (foundClr >= foundMin) {
391 //if(track.GetBackupTrack()) UseClusters(track.GetBackupTrack());
4b5b4c5b 392
88987d18 393 // Sign only gold tracks
394 if (track.GetChi2() / track.GetNumberOfClusters() < 4) {
395 //if ((seed->GetKinkIndex(0) == 0) && (track.Pt() < 1.5)) UseClusters(&track);
396 }
397 Bool_t isGold = kFALSE;
398
399 // Full gold track
400 if (track.GetChi2() / track.GetNumberOfClusters() < 5) {
401 if (track.GetBackupTrack()) seed->UpdateTrackParams(track.GetBackupTrack(),AliESDtrack::kTRDbackup);
402 nBacked++;
403 isGold = kTRUE;
404 }
405
406 // Almost gold track
407 if ((!isGold) && (track.GetNCross() == 0) && (track.GetChi2() / track.GetNumberOfClusters() < 7)) {
408 //seed->UpdateTrackParams(track, AliESDtrack::kTRDbackup);
409 if (track.GetBackupTrack()) seed->UpdateTrackParams(track.GetBackupTrack(),AliESDtrack::kTRDbackup);
410 nBacked++;
411 isGold = kTRUE;
412 }
413
414 if ((!isGold) && (track.GetBackupTrack())) {
415 if ((track.GetBackupTrack()->GetNumberOfClusters() > foundMin) && ((track.GetBackupTrack()->GetChi2()/(track.GetBackupTrack()->GetNumberOfClusters()+1)) < 7)) {
416 seed->UpdateTrackParams(track.GetBackupTrack(),AliESDtrack::kTRDbackup);
4b5b4c5b 417 nBacked++;
418 isGold = kTRUE;
419 }
41702fec 420 }
41702fec 421 }
88987d18 422 }
423
424 // Propagation to the TOF
425 if(!(seed->GetStatus()&AliESDtrack::kTRDStop)) {
426 Int_t sm = track.GetSector();
427 // default value in case we have problems with the geometry.
428 Double_t xtof = 371.;
429 //Calculate radial position of the beginning of the TOF
430 //mother volume. In order to avoid mixing of the TRD
431 //and TOF modules some hard values are needed. This are:
432 //1. The path to the TOF module.
433 //2. The width of the TOF (29.05 cm)
434 //(with the help of Annalisa de Caro Mar-17-2009)
435 if(gGeoManager){
436 gGeoManager->cd(Form("/ALIC_1/B077_1/BSEGMO%d_1/BTOF%d_1", sm, sm));
437 TGeoHMatrix *m = NULL;
438 Double_t loc[]={0., 0., -.5*29.05}, glob[3];
439
440 if((m=gGeoManager->GetCurrentMatrix())){
441 m->LocalToMaster(loc, glob);
442 xtof = TMath::Sqrt(glob[0]*glob[0]+glob[1]*glob[1]);
4b5b4c5b 443 }
41702fec 444 }
88987d18 445 if(xtof > (AliTRDReconstructor::GetMaxStep() + track.GetX()) && !PropagateToX(track, xtof, AliTRDReconstructor::GetMaxStep())){
446 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
447 continue;
448 }
449 if(!AdjustSector(&track)){
450 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
451 continue;
452 }
453 if(TMath::Abs(track.GetSnp()) > AliTRDReconstructor::GetMaxSnp()){
454 seed->UpdateTrackParams(&track, AliESDtrack::kTRDStop);
455 continue;
456 }
457 //seed->UpdateTrackParams(&track, AliESDtrack::kTRDout);
458 // TODO obsolete - delete
459 seed->SetTRDQuality(track.StatusForTOF());
41702fec 460 }
88987d18 461 seed->SetTRDBudget(track.GetBudget(0));
41702fec 462 }
88987d18 463 if(index) delete [] index;
464 if(quality) delete [] quality;
41702fec 465
88987d18 466 AliInfo(Form("Number of seeds: TPCout[%d] TRDin[%d]", nTPCseeds, nTRDseeds));
467 AliInfo(Form("Number of tracks: TRDout[%d] TRDbackup[%d]", nFound, nBacked));
d4cf71ca 468
d611c74f 469 // run stand alone tracking
4d6aee34 470 if (fkReconstructor->IsSeeding()) Clusters2Tracks(event);
41702fec 471
472 return 0;
0906e73e 473}
474
475
476//____________________________________________________________________
477Int_t AliTRDtrackerV1::RefitInward(AliESDEvent *event)
478{
41702fec 479 //
480 // Refits tracks within the TRD. The ESD event is expected to contain seeds
481 // at the outer part of the TRD.
482 // The tracks are propagated to the innermost time bin
483 // of the TRD and the ESD event is updated
484 // Origin: Thomas KUHR (Thomas.Kuhr@cern.ch)
485 //
486
487 Int_t nseed = 0; // contor for loaded seeds
488 Int_t found = 0; // contor for updated TRD tracks
489
490
e3d45279 491 if(!fClusters || !fClusters->GetEntriesFast()){
492 AliInfo("No TRD clusters");
493 return 0;
494 }
41702fec 495 AliTRDtrackV1 track;
496 for (Int_t itrack = 0; itrack < event->GetNumberOfTracks(); itrack++) {
497 AliESDtrack *seed = event->GetTrack(itrack);
050875b0 498 ULong_t status = seed->GetStatus();
88987d18 499
050875b0 500 new(&track) AliTRDtrackV1(*seed);
41702fec 501 if (track.GetX() < 270.0) {
502 seed->UpdateTrackParams(&track, AliESDtrack::kTRDbackup);
503 continue;
504 }
88987d18 505
506 // reject tracks which failed propagation in the TRD or
507 // are produced by the TRD stand alone tracker
508 if(!(status & AliESDtrack::kTRDout)) continue;
509 if(!(status & AliESDtrack::kTRDin)) continue;
510 nseed++;
41702fec 511
512 track.ResetCovariance(50.0);
513
514 // do the propagation and processing
515 Bool_t kUPDATE = kFALSE;
88987d18 516 Double_t xTPC = 250.0;
41702fec 517 if(FollowProlongation(track)){
e3cf3d02 518 // Update the friend track
2c7f43b6 519 if (fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 0 || AliTRDReconstructor::GetStreamLevel()>0 ){
4d6aee34 520 TObject *o = NULL; Int_t ic = 0;
521 AliTRDtrackV1 *calibTrack = NULL;
e3cf3d02 522 while((o = seed->GetCalibObject(ic++))){
523 if(!(calibTrack = dynamic_cast<AliTRDtrackV1*>(o))) continue;
a310e49b 524 calibTrack->SetTrackOut(&track);
e3cf3d02 525 }
41702fec 526 }
a310e49b 527
528 // Prolongate to TPC
88987d18 529 if (PropagateToX(track, xTPC, AliTRDReconstructor::GetMaxStep())) { // -with update
a310e49b 530 seed->UpdateTrackParams(&track, AliESDtrack::kTRDrefit);
531 found++;
532 kUPDATE = kTRUE;
533 }
e3cf3d02 534 }
41702fec 535
536 // Prolongate to TPC without update
537 if(!kUPDATE) {
538 AliTRDtrackV1 tt(*seed);
88987d18 539 if (PropagateToX(tt, xTPC, AliTRDReconstructor::GetMaxStep())) seed->UpdateTrackParams(&tt, AliESDtrack::kTRDbackup);
41702fec 540 }
541 }
980d5a2a 542 AliInfo(Form("Number of seeds: TRDout[%d]", nseed));
543 AliInfo(Form("Number of tracks: TRDrefit[%d]", found));
41702fec 544
545 return 0;
0906e73e 546}
547
0906e73e 548//____________________________________________________________________
549Int_t AliTRDtrackerV1::FollowProlongation(AliTRDtrackV1 &t)
550{
41702fec 551 // Extrapolates the TRD track in the TPC direction.
552 //
553 // Parameters
554 // t : the TRD track which has to be extrapolated
555 //
556 // Output
557 // number of clusters attached to the track
558 //
559 // Detailed description
560 //
561 // Starting from current radial position of track <t> this function
562 // extrapolates the track through the 6 TRD layers. The following steps
563 // are being performed for each plane:
564 // 1. prepare track:
565 // a. get plane limits in the local x direction
566 // b. check crossing sectors
567 // c. check track inclination
568 // 2. search tracklet in the tracker list (see GetTracklet() for details)
569 // 3. evaluate material budget using the geo manager
570 // 4. propagate and update track using the tracklet information.
571 //
572 // Debug level 2
573 //
574
575 Int_t nClustersExpected = 0;
e3cf3d02 576 for (Int_t iplane = kNPlanes; iplane--;) {
17896e82 577 Int_t index(-1);
41702fec 578 AliTRDseedV1 *tracklet = GetTracklet(&t, iplane, index);
17896e82 579 AliDebug(2, Form("Tracklet[%p] ly[%d] idx[%d]", (void*)tracklet, iplane, index));
41702fec 580 if(!tracklet) continue;
980d5a2a 581 if(!tracklet->IsOK()){
582 AliDebug(1, Form("Tracklet Det[%d] !OK", tracklet->GetDetector()));
583 continue;
584 }
e3cf3d02 585 Double_t x = tracklet->GetX();//GetX0();
41702fec 586 // reject tracklets which are not considered for inward refit
88987d18 587 if(x > t.GetX()+AliTRDReconstructor::GetMaxStep()) continue;
588
41702fec 589 // append tracklet to track
590 t.SetTracklet(tracklet, index);
591
952051c5 592 if (x < (t.GetX()-AliTRDReconstructor::GetMaxStep()) && !PropagateToX(t, x+AliTRDReconstructor::GetMaxStep(), AliTRDReconstructor::GetMaxStep())) break;
41702fec 593 if (!AdjustSector(&t)) break;
594
595 // Start global position
596 Double_t xyz0[3];
597 t.GetXYZ(xyz0);
598
599 // End global position
600 Double_t alpha = t.GetAlpha(), y, z;
601 if (!t.GetProlongation(x,y,z)) break;
602 Double_t xyz1[3];
603 xyz1[0] = x * TMath::Cos(alpha) - y * TMath::Sin(alpha);
604 xyz1[1] = x * TMath::Sin(alpha) + y * TMath::Cos(alpha);
605 xyz1[2] = z;
606
51a23065 607 Double_t length = TMath::Sqrt(
608 (xyz0[0]-xyz1[0])*(xyz0[0]-xyz1[0]) +
609 (xyz0[1]-xyz1[1])*(xyz0[1]-xyz1[1]) +
610 (xyz0[2]-xyz1[2])*(xyz0[2]-xyz1[2])
611 );
612 if(length>0.){
613 // Get material budget
614 Double_t param[7];
615 if(AliTracker::MeanMaterialBudget(xyz0, xyz1, param)<=0.) break;
616 Double_t xrho= param[0]*param[4];
617 Double_t xx0 = param[1]; // Get mean propagation parameters
618
619 // Propagate and update
620 t.PropagateTo(x, xx0, xrho);
621 if (!AdjustSector(&t)) break;
622 }
e3cf3d02 623
b72f4eaf 624 Double_t cov[3]; tracklet->GetCovAt(x, cov);
625 Double_t p[2] = { tracklet->GetY(), tracklet->GetZ()};
626 Double_t chi2 = ((AliExternalTrackParam)t).GetPredictedChi2(p, cov);
ef867f55 627 if (chi2 < 1e+10 && ((AliExternalTrackParam&)t).Update(p, cov)){
628 // Register info to track
629 t.SetNumberOfClusters();
630 t.UpdateChi2(chi2);
41702fec 631 nClustersExpected += tracklet->GetN();
632 }
633 }
634
2c7f43b6 635 if(fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 1 || AliTRDReconstructor::GetStreamLevel()>1){
41702fec 636 Int_t index;
51a23065 637 for(int iplane=0; iplane<AliTRDgeometry::kNlayer; iplane++){
41702fec 638 AliTRDseedV1 *tracklet = GetTracklet(&t, iplane, index);
639 if(!tracklet) continue;
640 t.SetTracklet(tracklet, index);
641 }
642
a2fbb6ec 643 if(fkReconstructor->IsDebugStreaming()){
644 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
645 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
646 AliTRDtrackV1 track(t);
647 track.SetOwner();
648 cstreamer << "FollowProlongation"
649 << "EventNumber=" << eventNumber
650 << "ncl=" << nClustersExpected
651 << "track.=" << &track
652 << "\n";
653 }
41702fec 654 }
41702fec 655 return nClustersExpected;
0906e73e 656
657}
658
659//_____________________________________________________________________________
660Int_t AliTRDtrackerV1::FollowBackProlongation(AliTRDtrackV1 &t)
661{
afa21247 662// Extrapolates/Build the TRD track in the TOF direction.
663//
664// Parameters
665// t : the TRD track which has to be extrapolated
666//
667// Output
668// number of clusters attached to the track
669//
670// Starting from current radial position of track <t> this function
671// extrapolates the track through the 6 TRD layers. The following steps
672// are being performed for each plane:
673// 1. Propagate track to the entrance of the next chamber:
674// - get chamber limits in the radial direction
675// - check crossing sectors
676// - check track inclination
677// - check track prolongation against boundary conditions (see exclusion boundaries on AliTRDgeometry::IsOnBoundary())
678// 2. Build tracklet (see AliTRDseed::AttachClusters() for details) for this layer if needed. If only
679// Kalman filter is needed and tracklets are already linked to the track this step is skipped.
680// 3. Fit tracklet using the information from the Kalman filter.
681// 4. Propagate and update track at reference radial position of the tracklet.
682// 5. Register tracklet with the tracker and track; update pulls monitoring.
683//
684// Observation
2a3191bb 685// 1. During the propagation a bit map is filled detailing the status of the track in each TRD chamber. The following errors are being registered for each tracklet:
686// - AliTRDtrackV1::kProlongation : track prolongation failed
687// - AliTRDtrackV1::kPropagation : track prolongation failed
688// - AliTRDtrackV1::kAdjustSector : failed during sector crossing
689// - AliTRDtrackV1::kSnp : too large bending
690// - AliTRDtrackV1::kTrackletInit : fail to initialize tracklet
691// - AliTRDtrackV1::kUpdate : fail to attach clusters or fit the tracklet
692// - AliTRDtrackV1::kUnknown : anything which is not covered before
afa21247 693// 2. By default the status of the track before first TRD update is saved.
694//
695// Debug level 2
696//
697// Author
698// Alexandru Bercuci <A.Bercuci@gsi.de>
699//
41702fec 700
eb2b4f91 701 Int_t n = 0;
702 Double_t driftLength = .5*AliTRDgeometry::AmThick() + AliTRDgeometry::DrThick();
4d6aee34 703 AliTRDtrackingChamber *chamber = NULL;
41702fec 704
9e85cb05 705 Int_t debugLevel = fkReconstructor->IsDebugStreaming() ? fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) : 0;
2c7f43b6 706 if ( AliTRDReconstructor::GetStreamLevel()>0) debugLevel= AliTRDReconstructor::GetStreamLevel();
7c3eecb8 707 TTreeSRedirector *cstreamer = fkReconstructor->IsDebugStreaming() ? fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker) : 0x0;
708
36574ea4 709 Bool_t kStoreIn(kTRUE), // toggel store track params. at TRD entry
68f9b6bd 710 kStandAlone(kFALSE), // toggle tracker awarness of stand alone seeding
711 kUseTRD(fkRecoParam->IsOverPtThreshold(t.Pt()));// use TRD measurment to update Kalman
712
713 Int_t startLayer(0);
4d6aee34 714 AliTRDseedV1 tracklet, *ptrTracklet = NULL;
68f9b6bd 715 // Special case for stand alone tracking
716 // - store all tracklets found by seeding
717 // - start propagation from first tracklet found
181d2c97 718 AliTRDseedV1 *tracklets[kNPlanes];
719 memset(tracklets, 0, sizeof(AliTRDseedV1 *) * kNPlanes);
68f9b6bd 720 for(Int_t ip(kNPlanes); ip--;){
721 if(!(tracklets[ip] = t.GetTracklet(ip))) continue;
181d2c97 722 t.UnsetTracklet(ip);
68f9b6bd 723 if(tracklets[ip]->IsOK()) startLayer=ip;
724 kStandAlone = kTRUE;
0b559d95 725 kUseTRD = kTRUE;
181d2c97 726 }
68f9b6bd 727 AliDebug(4, Form("SA[%c] Start[%d]\n"
728 " [0]idx[%d] traklet[%p]\n"
729 " [1]idx[%d] traklet[%p]\n"
730 " [2]idx[%d] traklet[%p]\n"
731 " [3]idx[%d] traklet[%p]\n"
732 " [4]idx[%d] traklet[%p]\n"
733 " [5]idx[%d] traklet[%p]"
734 , kStandAlone?'y':'n', startLayer
735 , t.GetTrackletIndex(0), (void*)tracklets[0]
736 , t.GetTrackletIndex(1), (void*)tracklets[1]
737 , t.GetTrackletIndex(2), (void*)tracklets[2]
738 , t.GetTrackletIndex(3), (void*)tracklets[3]
739 , t.GetTrackletIndex(4), (void*)tracklets[4]
740 , t.GetTrackletIndex(5), (void*)tracklets[5]));
e3cf3d02 741
053767a4 742 // Loop through the TRD layers
4d6aee34 743 TGeoHMatrix *matrix = NULL;
3e860707 744 Double_t x(0.), y(0.), z(0.);
68f9b6bd 745 for (Int_t ily=startLayer, sm=-1, stk=-1, det=-1; ily < AliTRDgeometry::kNlayer; ily++) {
1bd708e3 746 AliDebug(2, Form("Propagate to x[%d] = %7.2f", ily, fR[ily]));
747
eb2b4f91 748 // rough estimate of the entry point
749 if (!t.GetProlongation(fR[ily], y, z)){
88987d18 750 n=-1;
34b5e42d 751 t.SetErrStat(AliTRDtrackV1::kProlongation);
1bd708e3 752 AliDebug(4, Form("Failed Rough Prolongation to ly[%d] x[%7.2f] y[%7.2f] z[%7.2f]", ily, fR[ily], y, z));
eb2b4f91 753 break;
754 }
41702fec 755
eb2b4f91 756 // find sector / stack / detector
757 sm = t.GetSector();
758 // TODO cross check with y value !
759 stk = fGeom->GetStack(z, ily);
760 det = stk>=0 ? AliTRDgeometry::GetDetector(ily, stk, sm) : -1;
4d6aee34 761 matrix = det>=0 ? fGeom->GetClusterMatrix(det) : NULL;
eb2b4f91 762
763 // check if supermodule/chamber is installed
764 if( !fGeom->GetSMstatus(sm) ||
765 stk<0. ||
766 fGeom->IsHole(ily, stk, sm) ||
767 !matrix ){
1bd708e3 768 AliDebug(4, Form("Missing Geometry ly[%d]. Guess radial position", ily));
eb2b4f91 769 // propagate to the default radial position
952051c5 770 if(fR[ily] > (AliTRDReconstructor::GetMaxStep() + t.GetX()) && !PropagateToX(t, fR[ily], AliTRDReconstructor::GetMaxStep())){
88987d18 771 n=-1;
34b5e42d 772 t.SetErrStat(AliTRDtrackV1::kPropagation);
1bd708e3 773 AliDebug(4, "Failed Propagation [Missing Geometry]");
41702fec 774 break;
775 }
eb2b4f91 776 if(!AdjustSector(&t)){
88987d18 777 n=-1;
34b5e42d 778 t.SetErrStat(AliTRDtrackV1::kAdjustSector);
1bd708e3 779 AliDebug(4, "Failed Adjust Sector [Missing Geometry]");
eb2b4f91 780 break;
781 }
952051c5 782 if(TMath::Abs(t.GetSnp()) > AliTRDReconstructor::GetMaxSnp()){
88987d18 783 n=-1;
34b5e42d 784 t.SetErrStat(AliTRDtrackV1::kSnp);
1bd708e3 785 AliDebug(4, "Failed Max Snp [Missing Geometry]");
eb2b4f91 786 break;
787 }
34b5e42d 788 t.SetErrStat(AliTRDtrackV1::kGeometry, ily);
41702fec 789 continue;
790 }
e3cf3d02 791
eb2b4f91 792 // retrieve rotation matrix for the current chamber
793 Double_t loc[] = {AliTRDgeometry::AnodePos()- driftLength, 0., 0.};
794 Double_t glb[] = {0., 0., 0.};
795 matrix->LocalToMaster(loc, glb);
88987d18 796 AliDebug(3, Form("Propagate to det[%3d] x_anode[%7.2f] (%f %f)", det, glb[0]+driftLength, glb[1], glb[2]));
eb2b4f91 797
798 // Propagate to the radial distance of the current layer
952051c5 799 x = glb[0] - AliTRDReconstructor::GetMaxStep();
800 if(x > (AliTRDReconstructor::GetMaxStep() + t.GetX()) && !PropagateToX(t, x, AliTRDReconstructor::GetMaxStep())){
88987d18 801 n=-1;
34b5e42d 802 t.SetErrStat(AliTRDtrackV1::kPropagation);
88987d18 803 AliDebug(4, Form("Failed Initial Propagation to x[%7.2f]", x));
eb2b4f91 804 break;
805 }
806 if(!AdjustSector(&t)){
88987d18 807 n=-1;
34b5e42d 808 t.SetErrStat(AliTRDtrackV1::kAdjustSector);
1bd708e3 809 AliDebug(4, "Failed Adjust Sector Start");
eb2b4f91 810 break;
811 }
952051c5 812 if(TMath::Abs(t.GetSnp()) > AliTRDReconstructor::GetMaxSnp()) {
88987d18 813 n=-1;
34b5e42d 814 t.SetErrStat(AliTRDtrackV1::kSnp);
952051c5 815 AliDebug(4, Form("Failed Max Snp[%f] MaxSnp[%f]", t.GetSnp(), AliTRDReconstructor::GetMaxSnp()));
eb2b4f91 816 break;
817 }
4d6aee34 818 Bool_t doRecalculate = kFALSE;
eb2b4f91 819 if(sm != t.GetSector()){
820 sm = t.GetSector();
4d6aee34 821 doRecalculate = kTRUE;
eb2b4f91 822 }
823 if(stk != fGeom->GetStack(z, ily)){
824 stk = fGeom->GetStack(z, ily);
4d6aee34 825 doRecalculate = kTRUE;
eb2b4f91 826 }
4d6aee34 827 if(doRecalculate){
eb2b4f91 828 det = AliTRDgeometry::GetDetector(ily, stk, sm);
829 if(!(matrix = fGeom->GetClusterMatrix(det))){
34b5e42d 830 t.SetErrStat(AliTRDtrackV1::kGeometry, ily);
1bd708e3 831 AliDebug(4, Form("Failed Geometry Matrix ly[%d]", ily));
eb2b4f91 832 continue;
833 }
834 matrix->LocalToMaster(loc, glb);
952051c5 835 x = glb[0] - AliTRDReconstructor::GetMaxStep();
eb2b4f91 836 }
837
838 // check if track is well inside fiducial volume
952051c5 839 if (!t.GetProlongation(x+AliTRDReconstructor::GetMaxStep(), y, z)) {
88987d18 840 n=-1;
34b5e42d 841 t.SetErrStat(AliTRDtrackV1::kProlongation);
952051c5 842 AliDebug(4, Form("Failed Prolongation to x[%7.2f] y[%7.2f] z[%7.2f]", x+AliTRDReconstructor::GetMaxStep(), y, z));
eb2b4f91 843 break;
844 }
845 if(fGeom->IsOnBoundary(det, y, z, .5)){
34b5e42d 846 t.SetErrStat(AliTRDtrackV1::kBoundary, ily);
1bd708e3 847 AliDebug(4, "Failed Track on Boundary");
eb2b4f91 848 continue;
849 }
b1957d3c 850
eb2b4f91 851 ptrTracklet = tracklets[ily];
852 if(!ptrTracklet){ // BUILD TRACKLET
1bd708e3 853 AliDebug(3, Form("Building tracklet det[%d]", det));
eb2b4f91 854 // check data in supermodule
855 if(!fTrSec[sm].GetNChambers()){
34b5e42d 856 t.SetErrStat(AliTRDtrackV1::kNoClusters, ily);
88987d18 857 AliDebug(4, "Failed NoClusters");
eb2b4f91 858 continue;
859 }
860 if(fTrSec[sm].GetX(ily) < 1.){
34b5e42d 861 t.SetErrStat(AliTRDtrackV1::kNoClusters, ily);
88987d18 862 AliDebug(4, "Failed NoX");
eb2b4f91 863 continue;
864 }
865
866 // check data in chamber
867 if(!(chamber = fTrSec[sm].GetChamber(stk, ily))){
34b5e42d 868 t.SetErrStat(AliTRDtrackV1::kNoClusters, ily);
88987d18 869 AliDebug(4, "Failed No Detector");
eb2b4f91 870 continue;
871 }
9e85cb05 872 if(chamber->GetNClusters() < fgNTimeBins*fkRecoParam ->GetFindableClusters()){
34b5e42d 873 t.SetErrStat(AliTRDtrackV1::kNoClusters, ily);
88987d18 874 AliDebug(4, "Failed Not Enough Clusters in Detector");
eb2b4f91 875 continue;
876 }
877 // build tracklet
4d8f1bd9 878 tracklet.~AliTRDseedV1();
eb2b4f91 879 ptrTracklet = new(&tracklet) AliTRDseedV1(det);
4d6aee34 880 ptrTracklet->SetReconstructor(fkReconstructor);
eb2b4f91 881 ptrTracklet->SetKink(t.IsKink());
2eb10c34 882 ptrTracklet->SetPrimary(t.IsPrimary());
eb2b4f91 883 ptrTracklet->SetPadPlane(fGeom->GetPadPlane(ily, stk));
829e9a79 884 //set first approximation of radial position of anode wire corresponding to middle chamber y=0, z=0
885 // the uncertainty is given by the actual position of the tracklet (y,z) and chamber inclination
eb2b4f91 886 ptrTracklet->SetX0(glb[0]+driftLength);
4d8f1bd9 887 if(!ptrTracklet->Init(&t)){
88987d18 888 n=-1;
34b5e42d 889 t.SetErrStat(AliTRDtrackV1::kTrackletInit);
1bd708e3 890 AliDebug(4, "Failed Tracklet Init");
eb2b4f91 891 break;
892 }
803dc399 893 // Select attachment base on track to B field sign not only track charge which is buggy
894 // mark kFALSE same sign tracks and kTRUE opposite sign tracks
895 // A.Bercuci 3.11.2011
896 Float_t prod(t.GetBz()*t.Charge());
897 if(!ptrTracklet->AttachClusters(chamber, kTRUE, prod<0.?kTRUE:kFALSE, fEventInFile)){
34b5e42d 898 t.SetErrStat(AliTRDtrackV1::kNoAttach, ily);
7c3eecb8 899 if(debugLevel>3){
900 AliTRDseedV1 trackletCp(*ptrTracklet);
901 UChar_t status(t.GetStatusTRD(ily));
9dcc64cc 902 (*cstreamer) << "FollowBackProlongation4"
7c3eecb8 903 <<"status=" << status
904 <<"tracklet.=" << &trackletCp
905 << "\n";
906 }
1bd708e3 907 AliDebug(4, "Failed Attach Clusters");
eb2b4f91 908 continue;
909 }
88987d18 910 AliDebug(3, Form("Number of Clusters in Tracklet: %d", ptrTracklet->GetN()));
911 if(ptrTracklet->GetN() < fgNTimeBins*fkRecoParam->GetFindableClusters()){
34b5e42d 912 t.SetErrStat(AliTRDtrackV1::kNoClustersTracklet, ily);
7c3eecb8 913 if(debugLevel>3){
914 AliTRDseedV1 trackletCp(*ptrTracklet);
915 UChar_t status(t.GetStatusTRD(ily));
9dcc64cc 916 (*cstreamer) << "FollowBackProlongation4"
7c3eecb8 917 <<"status=" << status
918 <<"tracklet.=" << &trackletCp
919 << "\n";
920 }
88987d18 921 AliDebug(4, "Failed N Clusters Attached");
eb2b4f91 922 continue;
923 }
924 ptrTracklet->UpdateUsed();
0217fcd0 925 } else AliDebug(2, Form("Use external tracklet ly[%d]", ily));
eb2b4f91 926 // propagate track to the radial position of the tracklet
68f9b6bd 927
829e9a79 928 // fit tracklet in the local chamber coordinate system
2eb10c34 929 // tilt correction options
930 // 0 : no correction
931 // 2 : pseudo tilt correction
829e9a79 932 if(!ptrTracklet->FitRobust(fGeom->GetPadPlane(ily, stk))){
34b5e42d 933 t.SetErrStat(AliTRDtrackV1::kNoFit, ily);
1bd708e3 934 AliDebug(4, "Failed Tracklet Fit");
eb2b4f91 935 continue;
936 }
829e9a79 937 // Calculate tracklet position in tracking coordinates
938 // A.Bercuci 27.11.2013
939 ptrTracklet->SetXYZ(matrix);
940
eb2b4f91 941 x = ptrTracklet->GetX(); //GetX0();
952051c5 942 if(x > (AliTRDReconstructor::GetMaxStep() + t.GetX()) && !PropagateToX(t, x, AliTRDReconstructor::GetMaxStep())) {
88987d18 943 n=-1;
34b5e42d 944 t.SetErrStat(AliTRDtrackV1::kPropagation);
1bd708e3 945 AliDebug(4, Form("Failed Propagation to Tracklet x[%7.2f]", x));
eb2b4f91 946 break;
947 }
948 if(!AdjustSector(&t)) {
88987d18 949 n=-1;
34b5e42d 950 t.SetErrStat(AliTRDtrackV1::kAdjustSector);
1bd708e3 951 AliDebug(4, "Failed Adjust Sector");
eb2b4f91 952 break;
41702fec 953 }
952051c5 954 if(TMath::Abs(t.GetSnp()) > AliTRDReconstructor::GetMaxSnp()) {
88987d18 955 n=-1;
34b5e42d 956 t.SetErrStat(AliTRDtrackV1::kSnp);
952051c5 957 AliDebug(4, Form("Failed Max Snp[%f] MaxSnp[%f]", t.GetSnp(), AliTRDReconstructor::GetMaxSnp()));
eb2b4f91 958 break;
959 }
b72f4eaf 960 Double_t cov[3]; ptrTracklet->GetCovAt(x, cov);
961 Double_t p[2] = { ptrTracklet->GetY(), ptrTracklet->GetZ()};
962 Double_t chi2 = ((AliExternalTrackParam)t).GetPredictedChi2(p, cov);
2c7f43b6 963 /*
bb298b3b 964 AliInfo(Form("Pl:%d X:%+e : %+e P: %+e %+e Cov:%+e %+e %+e -> dXY: %+e %+e | chi2:%.2f pT:%.2f alp:%.3f",
965 ily,x,t.GetX(),p[0],p[1],cov[0],cov[1],cov[2],
966 p[0]-t.GetY(),p[1]-t.GetZ(),
967 chi2,t.Pt()*t.Charge(),t.GetAlpha()));
2c7f43b6 968 */
969
970 if(fkReconstructor->IsDebugStreaming()){
971 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
972 // TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
973 AliExternalTrackParam param0(t);
974 AliExternalTrackParam param1(t);
975 param1.Update(p, cov);
976 TVectorD vcov(3,cov);
977 TVectorD vpar(3,p);
978 (*cstreamer) << "FollowBackProlongationInfo"
979 << "EventNumber=" << eventNumber
980 << "chi2="<<chi2
981 << "iplane="<<ily
982 << "vcov.="<<&vcov
983 << "vpar.="<<&vpar
984 << "tracklet.=" << ptrTracklet
985 << "param0.=" << &param0
986 << "param1.=" << &param1
987 << "\n";
988 }
bb298b3b 989
6e39bde4 990 // update Kalman with the TRD measurement
bb298b3b 991 if(chi2>10){ // RS
992 // if(chi2>1e+10){ // TODO
34b5e42d 993 t.SetErrStat(AliTRDtrackV1::kChi2, ily);
7c3eecb8 994 if(debugLevel > 2){
995 UChar_t status(t.GetStatusTRD());
996 AliTRDseedV1 trackletCp(*ptrTracklet);
997 AliTRDtrackV1 trackCp(t);
998 trackCp.SetOwner();
9dcc64cc 999 (*cstreamer) << "FollowBackProlongation3"
7c3eecb8 1000 << "status=" << status
1001 << "tracklet.=" << &trackletCp
1002 << "track.=" << &trackCp
1003 << "\n";
1004 }
1bd708e3 1005 AliDebug(4, Form("Failed Chi2[%f]", chi2));
eb2b4f91 1006 continue;
1007 }
68d29486 1008 if(fkReconstructor->IsDebugStreaming()){
1009 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
1010 // TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
1011 AliExternalTrackParam param0(t);
1012 AliExternalTrackParam param1(t);
1013 param1.Update(p, cov);
1014 TVectorD vcov(3,cov);
1015 TVectorD vpar(3,p);
1016 (*cstreamer) << "FollowBackProlongationInfo"
1017 << "EventNumber=" << eventNumber
1018 << "chi2="<<chi2
1019 << "iplane="<<ily
1020 << "vcov.="<<&vcov
1021 << "vpar.="<<&vpar
1022 << "tracklet.=" << ptrTracklet
1023 << "param0.=" << &param0
1024 << "param1.=" << &param1
1025 << "\n";
1026 }
1027
88987d18 1028 // mark track as entering the FIDUCIAL volume of TRD
1029 if(kStoreIn){
1030 t.SetTrackIn();
1031 kStoreIn = kFALSE;
1032 }
ef867f55 1033 if(kUseTRD){
1034 if(!((AliExternalTrackParam&)t).Update(p, cov)) {
88987d18 1035 n=-1;
34b5e42d 1036 t.SetErrStat(AliTRDtrackV1::kUpdate);
ef867f55 1037 if(debugLevel > 2){
1038 UChar_t status(t.GetStatusTRD());
1039 AliTRDseedV1 trackletCp(*ptrTracklet);
1040 AliTRDtrackV1 trackCp(t);
1041 trackCp.SetOwner();
9dcc64cc 1042 (*cstreamer) << "FollowBackProlongation3"
ef867f55 1043 << "status=" << status
1044 << "tracklet.=" << &trackletCp
1045 << "track.=" << &trackCp
1046 << "\n";
1047 }
1048 AliDebug(4, Form("Failed Track Update @ y[%7.2f] z[%7.2f] s2y[%f] s2z[%f] covyz[%f]", p[0], p[1], cov[0], cov[2], cov[1]));
1049 break;
7c3eecb8 1050 }
eb2b4f91 1051 }
68f9b6bd 1052 if(!kStandAlone) ptrTracklet->UseClusters();
b72f4eaf 1053 // fill residuals ?!
1054 AliTracker::FillResiduals(&t, p, cov, ptrTracklet->GetVolumeId());
1055
eb2b4f91 1056
4d8f1bd9 1057 // register tracklet with the tracker and track
803dc399 1058 // Save inside the tracklet the track parameters BEFORE track update.
1059 // Commented out their overwriting AFTER track update
1060 // A.Bercuci 3.11.2011
1061 //ptrTracklet->Update(&t);
eb2b4f91 1062 ptrTracklet = SetTracklet(ptrTracklet);
17896e82 1063 Int_t index(fTracklets->GetEntriesFast()-1);
1064 t.SetTracklet(ptrTracklet, index);
ef867f55 1065 // Register info to track
1066 t.SetNumberOfClusters();
1067 t.UpdateChi2(chi2);
1068
eb2b4f91 1069 n += ptrTracklet->GetN();
17896e82 1070 AliDebug(2, Form("Setting Tracklet[%d] @ Idx[%d]", ily, index));
eb2b4f91 1071
41702fec 1072 // Reset material budget if 2 consecutive gold
eb2b4f91 1073// if(ilayer>0 && t.GetTracklet(ilayer-1) && ptrTracklet->GetN() + t.GetTracklet(ilayer-1)->GetN() > 20) t.SetBudget(2, 0.);
41702fec 1074
1075 // Make backup of the track until is gold
b453ef55 1076 Int_t failed(0);
68f9b6bd 1077 if(!kStandAlone && (failed = t.MakeBackupTrack())) AliDebug(2, Form("Failed backup on cut[%d]", failed));
9e85cb05 1078
053767a4 1079 } // end layers loop
eb2b4f91 1080 //printf("clusters[%d] chi2[%f] x[%f] status[%d ", n, t.GetChi2(), t.GetX(), t.GetStatusTRD());
1081 //for(int i=0; i<6; i++) printf("%d ", t.GetStatusTRD(i)); printf("]\n");
41702fec 1082
9dcc64cc 1083 if(n && debugLevel > 1){
1084 //Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
eb2b4f91 1085 AliTRDtrackV1 track(t);
1086 track.SetOwner();
9dcc64cc 1087 (*cstreamer) << "FollowBackProlongation2"
1088 << "EventNumber=" << fEventInFile
eb2b4f91 1089 << "track.=" << &track
41702fec 1090 << "\n";
1091 }
1092
eb2b4f91 1093 return n;
0906e73e 1094}
1095
eb38ed55 1096//_________________________________________________________________________
4d6aee34 1097Float_t AliTRDtrackerV1::FitRieman(AliTRDseedV1 *tracklets, Double_t *chi2, Int_t *const planes){
41702fec 1098 //
1099 // Fits a Riemann-circle to the given points without tilting pad correction.
1100 // The fit is performed using an instance of the class AliRieman (equations
1101 // and transformations see documentation of this class)
1102 // Afterwards all the tracklets are Updated
1103 //
1104 // Parameters: - Array of tracklets (AliTRDseedV1)
1105 // - Storage for the chi2 values (beginning with direction z)
1106 // - Seeding configuration
1107 // Output: - The curvature
1108 //
1109 AliRieman *fitter = AliTRDtrackerV1::GetRiemanFitter();
1110 fitter->Reset();
1111 Int_t allplanes[] = {0, 1, 2, 3, 4, 5};
1112 Int_t *ppl = &allplanes[0];
1113 Int_t maxLayers = 6;
1114 if(planes){
1115 maxLayers = 4;
1116 ppl = planes;
1117 }
1118 for(Int_t il = 0; il < maxLayers; il++){
1119 if(!tracklets[ppl[il]].IsOK()) continue;
e3cf3d02 1120 fitter->AddPoint(tracklets[ppl[il]].GetX0(), tracklets[ppl[il]].GetYfit(0), tracklets[ppl[il]].GetZfit(0),1,10);
41702fec 1121 }
1122 fitter->Update();
1123 // Set the reference position of the fit and calculate the chi2 values
1124 memset(chi2, 0, sizeof(Double_t) * 2);
1125 for(Int_t il = 0; il < maxLayers; il++){
1126 // Reference positions
1127 tracklets[ppl[il]].Init(fitter);
1128
1129 // chi2
1130 if((!tracklets[ppl[il]].IsOK()) && (!planes)) continue;
1131 chi2[0] += tracklets[ppl[il]].GetChi2Y();
1132 chi2[1] += tracklets[ppl[il]].GetChi2Z();
1133 }
1134 return fitter->GetC();
eb38ed55 1135}
1136
1137//_________________________________________________________________________
1138void AliTRDtrackerV1::FitRieman(AliTRDcluster **seedcl, Double_t chi2[2])
1139{
41702fec 1140 //
1141 // Performs a Riemann helix fit using the seedclusters as spacepoints
1142 // Afterwards the chi2 values are calculated and the seeds are updated
1143 //
1144 // Parameters: - The four seedclusters
1145 // - The tracklet array (AliTRDseedV1)
1146 // - The seeding configuration
1147 // - Chi2 array
1148 //
1149 // debug level 2
1150 //
1151 AliRieman *fitter = AliTRDtrackerV1::GetRiemanFitter();
1152 fitter->Reset();
a3743898 1153 for(Int_t i = 0; i < 4; i++){
a3743898 1154 fitter->AddPoint(seedcl[i]->GetX(), seedcl[i]->GetY(), seedcl[i]->GetZ(), 1., 10.);
1155 }
41702fec 1156 fitter->Update();
1157
1158
1159 // Update the seed and calculated the chi2 value
1160 chi2[0] = 0; chi2[1] = 0;
1161 for(Int_t ipl = 0; ipl < kNSeedPlanes; ipl++){
1162 // chi2
1163 chi2[0] += (seedcl[ipl]->GetZ() - fitter->GetZat(seedcl[ipl]->GetX())) * (seedcl[ipl]->GetZ() - fitter->GetZat(seedcl[ipl]->GetX()));
1164 chi2[1] += (seedcl[ipl]->GetY() - fitter->GetYat(seedcl[ipl]->GetX())) * (seedcl[ipl]->GetY() - fitter->GetYat(seedcl[ipl]->GetX()));
1165 }
eb38ed55 1166}
1167
1168
1169//_________________________________________________________________________
1170Float_t AliTRDtrackerV1::FitTiltedRiemanConstraint(AliTRDseedV1 *tracklets, Double_t zVertex)
1171{
41702fec 1172 //
1173 // Fits a helix to the clusters. Pad tilting is considered. As constraint it is
1174 // assumed that the vertex position is set to 0.
1175 // This method is very usefull for high-pt particles
1176 // Basis for the fit: (x - x0)^2 + (y - y0)^2 - R^2 = 0
1177 // x0, y0: Center of the circle
1178 // Measured y-position: ymeas = y - tan(phiT)(zc - zt)
1179 // zc: center of the pad row
1180 // Equation which has to be fitted (after transformation):
1181 // a + b * u + e * v + 2*(ymeas + tan(phiT)(z - zVertex))*t = 0
1182 // Transformation:
1183 // t = 1/(x^2 + y^2)
1184 // u = 2 * x * t
1185 // v = 2 * x * tan(phiT) * t
1186 // Parameters in the equation:
1187 // a = -1/y0, b = x0/y0, e = dz/dx
1188 //
1189 // The Curvature is calculated by the following equation:
1190 // - curv = a/Sqrt(b^2 + 1) = 1/R
1191 // Parameters: - the 6 tracklets
1192 // - the Vertex constraint
1193 // Output: - the Chi2 value of the track
1194 //
1195 // debug level 5
1196 //
1197
1198 TLinearFitter *fitter = GetTiltedRiemanFitterConstraint();
1199 fitter->StoreData(kTRUE);
1200 fitter->ClearPoints();
4d6aee34 1201 AliTRDcluster *cl = NULL;
41702fec 1202
1203 Float_t x, y, z, w, t, error, tilt;
1204 Double_t uvt[2];
1205 Int_t nPoints = 0;
053767a4 1206 for(Int_t ilr = 0; ilr < AliTRDgeometry::kNlayer; ilr++){
1207 if(!tracklets[ilr].IsOK()) continue;
8d2bec9e 1208 for(Int_t itb = 0; itb < AliTRDseedV1::kNclusters; itb++){
053767a4 1209 if(!tracklets[ilr].IsUsable(itb)) continue;
e7542a7e 1210 if(!(cl = tracklets[ilr].GetClusters(itb))) continue;
1742f24c 1211 if(!cl->IsInChamber()) continue;
41702fec 1212 x = cl->GetX();
1213 y = cl->GetY();
1214 z = cl->GetZ();
053767a4 1215 tilt = tracklets[ilr].GetTilt();
41702fec 1216 // Transformation
1217 t = 1./(x * x + y * y);
1218 uvt[0] = 2. * x * t;
1219 uvt[1] = 2. * x * t * tilt ;
1220 w = 2. * (y + tilt * (z - zVertex)) * t;
78b7d24c 1221 error = 2. * TMath::Sqrt(cl->GetSigmaY2()+tilt*tilt*cl->GetSigmaZ2()) * t;
41702fec 1222 fitter->AddPoint(uvt, w, error);
1223 nPoints++;
1224 }
1225 }
e17f4785 1226 fitter->Eval();
41702fec 1227
1228 // Calculate curvature
1229 Double_t a = fitter->GetParameter(0);
1230 Double_t b = fitter->GetParameter(1);
1231 Double_t curvature = a/TMath::Sqrt(b*b + 1);
1232
ce42378b 1233 Float_t chi2track = 0.0;
1234 if (nPoints > 0) {
1235 chi2track = fitter->GetChisquare()/Double_t(nPoints);
1236 }
41702fec 1237 for(Int_t ip = 0; ip < AliTRDtrackerV1::kNPlanes; ip++)
68f9b6bd 1238 tracklets[ip].SetC(curvature, 1);
1239
1240 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>3) printf("D-AliTRDtrackerV1::FitTiltedRiemanConstraint: Chi2[%f] C[%5.2e] pt[%8.3f]\n", chi2track, curvature, GetBz()*kB2C/curvature);
41702fec 1241
a2fbb6ec 1242/* if(fkReconstructor->GetRecoParam()->GetStreamLevel(AliTRDrecoParam::kTracker()) >= 5){
41702fec 1243 //Linear Model on z-direction
1244 Double_t xref = CalculateReferenceX(tracklets); // Relative to the middle of the stack
1245 Double_t slope = fitter->GetParameter(2);
1246 Double_t zref = slope * xref;
1247 Float_t chi2Z = CalculateChi2Z(tracklets, zref, slope, xref);
1248 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
1249 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
4d6aee34 1250 TTreeSRedirector &treeStreamer = *fkReconstructor->GetDebugStream(AliTRDReconstructor::kTracker);
41702fec 1251 treeStreamer << "FitTiltedRiemanConstraint"
1252 << "EventNumber=" << eventNumber
1253 << "CandidateNumber=" << candidateNumber
1254 << "Curvature=" << curvature
1255 << "Chi2Track=" << chi2track
1256 << "Chi2Z=" << chi2Z
1257 << "zref=" << zref
1258 << "\n";
3a039a31 1259 }*/
41702fec 1260 return chi2track;
eb38ed55 1261}
1262
1263//_________________________________________________________________________
1264Float_t AliTRDtrackerV1::FitTiltedRieman(AliTRDseedV1 *tracklets, Bool_t sigError)
1265{
41702fec 1266 //
1267 // Performs a Riemann fit taking tilting pad correction into account
1268 // The equation of a Riemann circle, where the y position is substituted by the
1269 // measured y-position taking pad tilting into account, has to be transformed
1270 // into a 4-dimensional hyperplane equation
1271 // Riemann circle: (x-x0)^2 + (y-y0)^2 -R^2 = 0
1272 // Measured y-Position: ymeas = y - tan(phiT)(zc - zt)
1273 // zc: center of the pad row
1274 // zt: z-position of the track
1275 // The z-position of the track is assumed to be linear dependent on the x-position
1276 // Transformed equation: a + b * u + c * t + d * v + e * w - 2 * (ymeas + tan(phiT) * zc) * t = 0
1277 // Transformation: u = 2 * x * t
1278 // v = 2 * tan(phiT) * t
1279 // w = 2 * tan(phiT) * (x - xref) * t
1280 // t = 1 / (x^2 + ymeas^2)
1281 // Parameters: a = -1/y0
1282 // b = x0/y0
1283 // c = (R^2 -x0^2 - y0^2)/y0
1284 // d = offset
1285 // e = dz/dx
1286 // If the offset respectively the slope in z-position is impossible, the parameters are fixed using
1287 // results from the simple riemann fit. Afterwards the fit is redone.
1288 // The curvature is calculated according to the formula:
1289 // curv = a/(1 + b^2 + c*a) = 1/R
1290 //
1291 // Paramters: - Array of tracklets (connected to the track candidate)
1292 // - Flag selecting the error definition
1293 // Output: - Chi2 values of the track (in Parameter list)
1294 //
1295 TLinearFitter *fitter = GetTiltedRiemanFitter();
1296 fitter->StoreData(kTRUE);
1297 fitter->ClearPoints();
1298 AliTRDLeastSquare zfitter;
4d6aee34 1299 AliTRDcluster *cl = NULL;
41702fec 1300
1301 Double_t xref = CalculateReferenceX(tracklets);
6e39bde4 1302 Double_t x, y, z, t, tilt, dx, w, we, erry, errz;
1303 Double_t uvt[4], sumPolY[5], sumPolZ[3];
1304 memset(sumPolY, 0, sizeof(Double_t) * 5);
1305 memset(sumPolZ, 0, sizeof(Double_t) * 3);
41702fec 1306 Int_t nPoints = 0;
1307 // Containers for Least-square fitter
1308 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1309 if(!tracklets[ipl].IsOK()) continue;
ed15ef4f 1310 tilt = tracklets[ipl].GetTilt();
8d2bec9e 1311 for(Int_t itb = 0; itb < AliTRDseedV1::kNclusters; itb++){
41702fec 1312 if(!(cl = tracklets[ipl].GetClusters(itb))) continue;
1742f24c 1313 if(!cl->IsInChamber()) continue;
c79857d5 1314 if (!tracklets[ipl].IsUsable(itb)) continue;
41702fec 1315 x = cl->GetX();
1316 y = cl->GetY();
1317 z = cl->GetZ();
41702fec 1318 dx = x - xref;
1319 // Transformation
1320 t = 1./(x*x + y*y);
1321 uvt[0] = 2. * x * t;
1322 uvt[1] = t;
1323 uvt[2] = 2. * tilt * t;
1324 uvt[3] = 2. * tilt * dx * t;
1325 w = 2. * (y + tilt*z) * t;
1326 // error definition changes for the different calls
1327 we = 2. * t;
78b7d24c 1328 we *= sigError ? TMath::Sqrt(cl->GetSigmaY2()+tilt*tilt*cl->GetSigmaZ2()) : 0.2;
41702fec 1329 fitter->AddPoint(uvt, w, we);
1330 zfitter.AddPoint(&x, z, static_cast<Double_t>(TMath::Sqrt(cl->GetSigmaZ2())));
6e39bde4 1331 // adding points for covariance matrix estimation
1332 erry = 1./(TMath::Sqrt(cl->GetSigmaY2()) + 0.1); // 0.1 is a systematic error (due to misalignment and miscalibration)
1333 erry *= erry;
1334 errz = 1./cl->GetSigmaZ2();
1335 for(Int_t ipol = 0; ipol < 5; ipol++){
1336 sumPolY[ipol] += erry;
1337 erry *= x;
1338 if(ipol < 3){
1339 sumPolZ[ipol] += errz;
1340 errz *= x;
1341 }
1342 }
41702fec 1343 nPoints++;
1344 }
1345 }
c08b1cc7 1346 if (fitter->Eval()) return 1.e10;
41702fec 1347 zfitter.Eval();
1348
1349 Double_t offset = fitter->GetParameter(3);
1350 Double_t slope = fitter->GetParameter(4);
1351
1352 // Linear fitter - not possible to make boundaries
1353 // Do not accept non possible z and dzdx combinations
1354 Bool_t acceptablez = kTRUE;
1355 Double_t zref = 0.0;
1356 for (Int_t iLayer = 0; iLayer < kNPlanes; iLayer++) {
1357 if(!tracklets[iLayer].IsOK()) continue;
1358 zref = offset + slope * (tracklets[iLayer].GetX0() - xref);
e3cf3d02 1359 if (TMath::Abs(tracklets[iLayer].GetZfit(0) - zref) > tracklets[iLayer].GetPadLength() * 0.5 + 1.0)
41702fec 1360 acceptablez = kFALSE;
1361 }
1362 if (!acceptablez) {
1363 Double_t dzmf = zfitter.GetFunctionParameter(1);
1364 Double_t zmf = zfitter.GetFunctionValue(&xref);
1365 fgTiltedRieman->FixParameter(3, zmf);
1366 fgTiltedRieman->FixParameter(4, dzmf);
e17f4785 1367 fitter->Eval();
41702fec 1368 fitter->ReleaseParameter(3);
1369 fitter->ReleaseParameter(4);
1370 offset = fitter->GetParameter(3);
1371 slope = fitter->GetParameter(4);
1372 }
1373
1374 // Calculate Curvarture
1375 Double_t a = fitter->GetParameter(0);
1376 Double_t b = fitter->GetParameter(1);
1377 Double_t c = fitter->GetParameter(2);
1378 Double_t curvature = 1.0 + b*b - c*a;
68f9b6bd 1379 if (curvature > 0.0) curvature = a / TMath::Sqrt(curvature);
41702fec 1380
1381 Double_t chi2track = fitter->GetChisquare()/Double_t(nPoints);
1382
6e39bde4 1383 // Prepare error calculation
1384 TMatrixD covarPolY(3,3);
1385 covarPolY(0,0) = sumPolY[0]; covarPolY(1,1) = sumPolY[2]; covarPolY(2,2) = sumPolY[4];
1386 covarPolY(0,1) = covarPolY(1,0) = sumPolY[1];
1387 covarPolY(0,2) = covarPolY(2,0) = sumPolY[2];
1388 covarPolY(2,1) = covarPolY(1,2) = sumPolY[3];
1389 covarPolY.Invert();
1390 TMatrixD covarPolZ(2,2);
1391 covarPolZ(0,0) = sumPolZ[0]; covarPolZ(1,1) = sumPolZ[2];
1392 covarPolZ(1,0) = covarPolZ(0,1) = sumPolZ[1];
1393 covarPolZ.Invert();
1394
41702fec 1395 // Update the tracklets
d2eba04b 1396 Double_t dy, dz;
6e39bde4 1397 Double_t cov[15];
1398 memset(cov, 0, sizeof(Double_t) * 15);
41702fec 1399 for(Int_t iLayer = 0; iLayer < AliTRDtrackerV1::kNPlanes; iLayer++) {
1400
1401 x = tracklets[iLayer].GetX0();
d2eba04b 1402// x1 = x - xref;
41702fec 1403 y = 0;
1404 z = 0;
1405 dy = 0;
1406 dz = 0;
6e39bde4 1407 memset(cov, 0, sizeof(Double_t) * 3);
1408 TMatrixD transform(3,3);
1409 transform(0,0) = 1;
1410 transform(0,1) = x;
1411 transform(0,2) = x*x;
1412 transform(1,1) = 1;
1413 transform(1,2) = x;
1414 transform(2,2) = 1;
1415 TMatrixD covariance(transform, TMatrixD::kMult, covarPolY);
1416 covariance *= transform.T();
1417 TMatrixD transformZ(2,2);
1418 transformZ(0,0) = transformZ(1,1) = 1;
1419 transformZ(0,1) = x;
1420 TMatrixD covarZ(transformZ, TMatrixD::kMult, covarPolZ);
1421 covarZ *= transformZ.T();
41702fec 1422 // y: R^2 = (x - x0)^2 + (y - y0)^2
1423 // => y = y0 +/- Sqrt(R^2 - (x - x0)^2)
1424 // R = Sqrt() = 1/Curvature
1425 // => y = y0 +/- Sqrt(1/Curvature^2 - (x - x0)^2)
1426 Double_t res = (x * a + b); // = (x - x0)/y0
1427 res *= res;
1428 res = 1.0 - c * a + b * b - res; // = (R^2 - (x - x0)^2)/y0^2
1429 if (res >= 0) {
1430 res = TMath::Sqrt(res);
1431 y = (1.0 - res) / a;
1432 }
6e39bde4 1433 cov[0] = covariance(0,0);
1434 cov[2] = covarZ(0,0);
1435 cov[1] = 0.;
41702fec 1436
1437 // dy: R^2 = (x - x0)^2 + (y - y0)^2
1438 // => y = +/- Sqrt(R^2 - (x - x0)^2) + y0
1439 // => dy/dx = (x - x0)/Sqrt(R^2 - (x - x0)^2)
1440 // Curvature: cr = 1/R = a/Sqrt(1 + b^2 - c*a)
1441 // => dy/dx = (x - x0)/(1/(cr^2) - (x - x0)^2)
1442 Double_t x0 = -b / a;
1443 if (-c * a + b * b + 1 > 0) {
1444 if (1.0/(curvature * curvature) - (x - x0) * (x - x0) > 0.0) {
6e39bde4 1445 Double_t yderiv = (x - x0) / TMath::Sqrt(1.0/(curvature * curvature) - (x - x0) * (x - x0));
1446 if (a < 0) yderiv *= -1.0;
1447 dy = yderiv;
41702fec 1448 }
1449 }
1450 z = offset + slope * (x - xref);
1451 dz = slope;
1452 tracklets[iLayer].SetYref(0, y);
1453 tracklets[iLayer].SetYref(1, dy);
1454 tracklets[iLayer].SetZref(0, z);
1455 tracklets[iLayer].SetZref(1, dz);
1456 tracklets[iLayer].SetC(curvature);
6e39bde4 1457 tracklets[iLayer].SetCovRef(cov);
41702fec 1458 tracklets[iLayer].SetChi2(chi2track);
1459 }
68f9b6bd 1460 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>3) printf("D-AliTRDtrackerV1::FitTiltedRieman: Chi2[%f] C[%5.2e] pt[%8.3f]\n", chi2track, curvature, GetBz()*kB2C/curvature);
41702fec 1461
a2fbb6ec 1462/* if(fkReconstructor->GetRecoParam()->GetStreamLevel(AliTRDrecoParam::kTracker) >=5){
1463 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
41702fec 1464 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
1465 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
1466 Double_t chi2z = CalculateChi2Z(tracklets, offset, slope, xref);
1467 cstreamer << "FitTiltedRieman0"
1468 << "EventNumber=" << eventNumber
1469 << "CandidateNumber=" << candidateNumber
1470 << "xref=" << xref
1471 << "Chi2Z=" << chi2z
1472 << "\n";
3a039a31 1473 }*/
41702fec 1474 return chi2track;
eb38ed55 1475}
1476
3b57a3f7 1477
9e333711 1478//____________________________________________________________________
6e4d4425 1479Double_t AliTRDtrackerV1::FitLine(const AliTRDtrackV1 *track, AliTRDseedV1 *tracklets, Bool_t err, Int_t np, AliTrackPoint *points)
9e333711 1480{
4d6aee34 1481 //
1482 // Fit track with a staight line
1483 // Fills an AliTrackPoint array with np points
1484 // Function should be used to refit tracks when no magnetic field was on
1485 //
9e333711 1486 AliTRDLeastSquare yfitter, zfitter;
4d6aee34 1487 AliTRDcluster *cl = NULL;
9e333711 1488
4d6aee34 1489 AliTRDseedV1 work[kNPlanes], *tracklet = NULL;
9e333711 1490 if(!tracklets){
1491 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1492 if(!(tracklet = track->GetTracklet(ipl))) continue;
1493 if(!tracklet->IsOK()) continue;
1494 new(&work[ipl]) AliTRDseedV1(*tracklet);
1495 }
1496 tracklets = &work[0];
1497 }
1498
1499 Double_t xref = CalculateReferenceX(tracklets);
1500 Double_t x, y, z, dx, ye, yr, tilt;
1501 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1502 if(!tracklets[ipl].IsOK()) continue;
1503 for(Int_t itb = 0; itb < fgNTimeBins; itb++){
1504 if(!(cl = tracklets[ipl].GetClusters(itb))) continue;
1505 if (!tracklets[ipl].IsUsable(itb)) continue;
1506 x = cl->GetX();
1507 z = cl->GetZ();
1508 dx = x - xref;
1509 zfitter.AddPoint(&dx, z, static_cast<Double_t>(TMath::Sqrt(cl->GetSigmaZ2())));
1510 }
1511 }
1512 zfitter.Eval();
1513 Double_t z0 = zfitter.GetFunctionParameter(0);
1514 Double_t dzdx = zfitter.GetFunctionParameter(1);
1515 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1516 if(!tracklets[ipl].IsOK()) continue;
1517 for(Int_t itb = 0; itb < fgNTimeBins; itb++){
1518 if(!(cl = tracklets[ipl].GetClusters(itb))) continue;
1519 if (!tracklets[ipl].IsUsable(itb)) continue;
1520 x = cl->GetX();
1521 y = cl->GetY();
1522 z = cl->GetZ();
1523 tilt = tracklets[ipl].GetTilt();
1524 dx = x - xref;
1525 yr = y + tilt*(z - z0 - dzdx*dx);
1526 // error definition changes for the different calls
1527 ye = tilt*TMath::Sqrt(cl->GetSigmaZ2());
1528 ye += err ? tracklets[ipl].GetSigmaY() : 0.2;
1529 yfitter.AddPoint(&dx, yr, ye);
1530 }
1531 }
1532 yfitter.Eval();
1533 Double_t y0 = yfitter.GetFunctionParameter(0);
1534 Double_t dydx = yfitter.GetFunctionParameter(1);
1535 Double_t chi2 = 0.;//yfitter.GetChisquare()/Double_t(nPoints);
1536
1537 //update track points array
1538 if(np && points){
1539 Float_t xyz[3];
1540 for(int ip=0; ip<np; ip++){
1541 points[ip].GetXYZ(xyz);
1542 xyz[1] = y0 + dydx * (xyz[0] - xref);
1543 xyz[2] = z0 + dzdx * (xyz[0] - xref);
1544 points[ip].SetXYZ(xyz);
1545 }
1546 }
1547 return chi2;
1548}
1549
1550
3b57a3f7 1551//_________________________________________________________________________
6e4d4425 1552Double_t AliTRDtrackerV1::FitRiemanTilt(const AliTRDtrackV1 *track, AliTRDseedV1 *tracklets, Bool_t sigError, Int_t np, AliTrackPoint *points)
3b57a3f7 1553{
0fa1a8ee 1554//
1555// Performs a Riemann fit taking tilting pad correction into account
1556//
1557// Paramters: - Array of tracklets (connected to the track candidate)
1558// - Flag selecting the error definition
1559// Output: - Chi2 values of the track (in Parameter list)
1560//
1561// The equations which has to be solved simultaneously are:
1562// BEGIN_LATEX
1563// R^{2} = (x-x_{0})^{2} + (y^{*}-y_{0})^{2}
1564// y^{*} = y - tg(h)(z - z_{t})
1565// z_{t} = z_{0}+dzdx*(x-x_{r})
1566// END_LATEX
1567// with (x, y, z) the coordinate of the cluster, (x_0, y_0, z_0) the coordinate of the center of the Riemann circle,
1568// R its radius, x_r a constant refrence radial position in the middle of the TRD stack and dzdx the slope of the
1569// track in the x-z plane. Using the following transformations
1570// BEGIN_LATEX
1571// t = 1 / (x^{2} + y^{2})
1572// u = 2 * x * t
1573// v = 2 * tan(h) * t
1574// w = 2 * tan(h) * (x - x_{r}) * t
1575// END_LATEX
1576// One gets the following linear equation
1577// BEGIN_LATEX
1578// a + b * u + c * t + d * v + e * w = 2 * (y + tg(h) * z) * t
1579// END_LATEX
1580// where the coefficients have the following meaning
1581// BEGIN_LATEX
1582// a = -1/y_{0}
1583// b = x_{0}/y_{0}
1584// c = (R^{2} -x_{0}^{2} - y_{0}^{2})/y_{0}
1585// d = z_{0}
1586// e = dz/dx
1587// END_LATEX
1588// The error calculation for the free term is thus
1589// BEGIN_LATEX
1590// #sigma = 2 * #sqrt{#sigma^{2}_{y} + (tilt corr ...) + tg^{2}(h) * #sigma^{2}_{z}} * t
1591// END_LATEX
1592//
1593// From this simple model one can compute chi^2 estimates and a rough approximation of pt from the curvature according
1594// to the formula:
1595// BEGIN_LATEX
1596// C = 1/R = a/(1 + b^{2} + c*a)
1597// END_LATEX
1598//
1599// Authors
1600// M.Ivanov <M.Ivanov@gsi.de>
1601// A.Bercuci <A.Bercuci@gsi.de>
1602// M.Fasel <M.Fasel@gsi.de>
1603
41702fec 1604 TLinearFitter *fitter = GetTiltedRiemanFitter();
1605 fitter->StoreData(kTRUE);
1606 fitter->ClearPoints();
1607 AliTRDLeastSquare zfitter;
4d6aee34 1608 AliTRDcluster *cl = NULL;
3b57a3f7 1609
4d6aee34 1610 AliTRDseedV1 work[kNPlanes], *tracklet = NULL;
3b57a3f7 1611 if(!tracklets){
1612 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1613 if(!(tracklet = track->GetTracklet(ipl))) continue;
1614 if(!tracklet->IsOK()) continue;
1615 new(&work[ipl]) AliTRDseedV1(*tracklet);
1616 }
1617 tracklets = &work[0];
1618 }
1619
41702fec 1620 Double_t xref = CalculateReferenceX(tracklets);
68f9b6bd 1621 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>3) printf("D-AliTRDtrackerV1::FitRiemanTilt:\nx0[(0)%6.2f (1)%6.2f (2)%6.2f (3)%6.2f (4)%6.2f (5)%6.2f] xref[%6.2f]", tracklets[0].GetX0(), tracklets[1].GetX0(), tracklets[2].GetX0(), tracklets[3].GetX0(), tracklets[4].GetX0(), tracklets[5].GetX0(), xref);
41702fec 1622 Double_t x, y, z, t, tilt, dx, w, we;
1623 Double_t uvt[4];
1624 Int_t nPoints = 0;
1625 // Containers for Least-square fitter
1626 for(Int_t ipl = 0; ipl < kNPlanes; ipl++){
1627 if(!tracklets[ipl].IsOK()) continue;
8d2bec9e 1628 for(Int_t itb = 0; itb < AliTRDseedV1::kNclusters; itb++){
41702fec 1629 if(!(cl = tracklets[ipl].GetClusters(itb))) continue;
352cef8f 1630 //if (!tracklets[ipl].IsUsable(itb)) continue;
41702fec 1631 x = cl->GetX();
1632 y = cl->GetY();
1633 z = cl->GetZ();
1634 tilt = tracklets[ipl].GetTilt();
1635 dx = x - xref;
1636 // Transformation
1637 t = 1./(x*x + y*y);
1638 uvt[0] = 2. * x * t;
1639 uvt[1] = t;
1640 uvt[2] = 2. * tilt * t;
1641 uvt[3] = 2. * tilt * dx * t;
1642 w = 2. * (y + tilt*z) * t;
1643 // error definition changes for the different calls
1644 we = 2. * t;
f29f13a6 1645 we *= sigError ? TMath::Sqrt(cl->GetSigmaY2()) : 0.2;
41702fec 1646 fitter->AddPoint(uvt, w, we);
1647 zfitter.AddPoint(&x, z, static_cast<Double_t>(TMath::Sqrt(cl->GetSigmaZ2())));
1648 nPoints++;
1649 }
1650 }
aec26713 1651 if(fitter->Eval()) return 1.E10;
1652
41702fec 1653 Double_t z0 = fitter->GetParameter(3);
1654 Double_t dzdx = fitter->GetParameter(4);
3b57a3f7 1655
1656
1657 // Linear fitter - not possible to make boundaries
1658 // Do not accept non possible z and dzdx combinations
1659 Bool_t accept = kTRUE;
1660 Double_t zref = 0.0;
1661 for (Int_t iLayer = 0; iLayer < kNPlanes; iLayer++) {
1662 if(!tracklets[iLayer].IsOK()) continue;
1663 zref = z0 + dzdx * (tracklets[iLayer].GetX0() - xref);
e3cf3d02 1664 if (TMath::Abs(tracklets[iLayer].GetZfit(0) - zref) > tracklets[iLayer].GetPadLength() * 0.5 + 1.0)
3b57a3f7 1665 accept = kFALSE;
1666 }
1667 if (!accept) {
41702fec 1668 zfitter.Eval();
3b57a3f7 1669 Double_t dzmf = zfitter.GetFunctionParameter(1);
1670 Double_t zmf = zfitter.GetFunctionValue(&xref);
1671 fitter->FixParameter(3, zmf);
1672 fitter->FixParameter(4, dzmf);
e17f4785 1673 fitter->Eval();
3b57a3f7 1674 fitter->ReleaseParameter(3);
1675 fitter->ReleaseParameter(4);
1676 z0 = fitter->GetParameter(3); // = zmf ?
1677 dzdx = fitter->GetParameter(4); // = dzmf ?
1678 }
1679
1680 // Calculate Curvature
1681 Double_t a = fitter->GetParameter(0);
1682 Double_t b = fitter->GetParameter(1);
1683 Double_t c = fitter->GetParameter(2);
1684 Double_t y0 = 1. / a;
1685 Double_t x0 = -b * y0;
a015e406 1686 Double_t tmp = y0*y0 + x0*x0 - c*y0;
1687 if(tmp<=0.) return 1.E10;
4d6aee34 1688 Double_t radius = TMath::Sqrt(tmp);
1689 Double_t curvature = 1.0 + b*b - c*a;
1690 if (curvature > 0.0) curvature = a / TMath::Sqrt(curvature);
3b57a3f7 1691
1692 // Calculate chi2 of the fit
1693 Double_t chi2 = fitter->GetChisquare()/Double_t(nPoints);
68f9b6bd 1694 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>3) printf("D-AliTRDtrackerV1::FitRiemanTilt:x0[%6.2f] y0[%6.2f] R[%6.2f] chi2[%f]\n", x0, y0, radius, chi2);
3b57a3f7 1695
1696 // Update the tracklets
1697 if(!track){
1698 for(Int_t ip = 0; ip < kNPlanes; ip++) {
1699 x = tracklets[ip].GetX0();
4d6aee34 1700 tmp = radius*radius-(x-x0)*(x-x0);
a015e406 1701 if(tmp <= 0.) continue;
1702 tmp = TMath::Sqrt(tmp);
3b57a3f7 1703
1704 // y: R^2 = (x - x0)^2 + (y - y0)^2
1705 // => y = y0 +/- Sqrt(R^2 - (x - x0)^2)
1706 tracklets[ip].SetYref(0, y0 - (y0>0.?1.:-1)*tmp);
1707 // => dy/dx = (x - x0)/Sqrt(R^2 - (x - x0)^2)
1708 tracklets[ip].SetYref(1, (x - x0) / tmp);
1709 tracklets[ip].SetZref(0, z0 + dzdx * (x - xref));
1710 tracklets[ip].SetZref(1, dzdx);
4d6aee34 1711 tracklets[ip].SetC(curvature);
3b57a3f7 1712 tracklets[ip].SetChi2(chi2);
1713 }
1714 }
3b57a3f7 1715 //update track points array
1716 if(np && points){
1717 Float_t xyz[3];
1718 for(int ip=0; ip<np; ip++){
1719 points[ip].GetXYZ(xyz);
4d6aee34 1720 xyz[1] = TMath::Abs(xyz[0] - x0) > radius ? 100. : y0 - (y0>0.?1.:-1.)*TMath::Sqrt((radius-(xyz[0]-x0))*(radius+(xyz[0]-x0)));
3b57a3f7 1721 xyz[2] = z0 + dzdx * (xyz[0] - xref);
1722 points[ip].SetXYZ(xyz);
1723 }
1724 }
1725
3b57a3f7 1726 return chi2;
1727}
1728
1729
1bf51039 1730//____________________________________________________________________
e17f4785 1731Double_t AliTRDtrackerV1::FitKalman(AliTRDtrackV1 *track, AliTRDseedV1 * const tracklets, Bool_t up, Int_t np, AliTrackPoint *points)
1bf51039 1732{
1733// Kalman filter implementation for the TRD.
1734// It returns the positions of the fit in the array "points"
1735//
1736// Author : A.Bercuci@gsi.de
1737
3cfaffa4 1738 // printf("Start track @ x[%f]\n", track->GetX());
1bf51039 1739
1740 //prepare marker points along the track
1741 Int_t ip = np ? 0 : 1;
1742 while(ip<np){
1743 if((up?-1:1) * (track->GetX() - points[ip].GetX()) > 0.) break;
1744 //printf("AliTRDtrackerV1::FitKalman() : Skip track marker x[%d] = %7.3f. Before track start ( %7.3f ).\n", ip, points[ip].GetX(), track->GetX());
1745 ip++;
1746 }
1747 //if(points) printf("First marker point @ x[%d] = %f\n", ip, points[ip].GetX());
1748
1749
d8069611 1750 AliTRDseedV1 tracklet;
1751 AliTRDseedV1 *ptrTracklet = NULL;
1bf51039 1752
1753 //Loop through the TRD planes
1754 for (Int_t jplane = 0; jplane < kNPlanes; jplane++) {
1755 // GET TRACKLET OR BUILT IT
1756 Int_t iplane = up ? jplane : kNPlanes - 1 - jplane;
1757 if(tracklets){
e17f4785 1758 if(!(ptrTracklet = &tracklets[iplane])) continue;
1bf51039 1759 }else{
1760 if(!(ptrTracklet = track->GetTracklet(iplane))){
4d6aee34 1761 /*AliTRDtrackerV1 *tracker = NULL;
a2fbb6ec 1762 if(!(tracker = dynamic_cast<AliTRDtrackerV1*>( AliTRDrecoParam:Tracker()))) continue;
1bf51039 1763 ptrTracklet = new(&tracklet) AliTRDseedV1(iplane);
1764 if(!tracker->MakeTracklet(ptrTracklet, track)) */
1765 continue;
1766 }
1767 }
1768 if(!ptrTracklet->IsOK()) continue;
1769
1770 Double_t x = ptrTracklet->GetX0();
1771
1772 while(ip < np){
1773 //don't do anything if next marker is after next update point.
952051c5 1774 if((up?-1:1) * (points[ip].GetX() - x) - AliTRDReconstructor::GetMaxStep() < 0) break;
1775 if(((up?-1:1) * (points[ip].GetX() - track->GetX()) < 0) && !PropagateToX(*track, points[ip].GetX(), AliTRDReconstructor::GetMaxStep())) return -1.;
1bf51039 1776
1777 Double_t xyz[3]; // should also get the covariance
3cfaffa4 1778 track->GetXYZ(xyz);
1779 track->Global2LocalPosition(xyz, track->GetAlpha());
1780 points[ip].SetXYZ(xyz[0], xyz[1], xyz[2]);
1bf51039 1781 ip++;
1782 }
3cfaffa4 1783 // printf("plane[%d] tracklet[%p] x[%f]\n", iplane, ptrTracklet, x);
1bf51039 1784
3cfaffa4 1785 // Propagate closer to the next update point
952051c5 1786 if(((up?-1:1) * (x - track->GetX()) + AliTRDReconstructor::GetMaxStep() < 0) && !PropagateToX(*track, x + (up?-1:1)*AliTRDReconstructor::GetMaxStep(), AliTRDReconstructor::GetMaxStep())) return -1.;
1bf51039 1787
1788 if(!AdjustSector(track)) return -1;
952051c5 1789 if(TMath::Abs(track->GetSnp()) > AliTRDReconstructor::GetMaxSnp()) return -1;
1bf51039 1790
1791 //load tracklet to the tracker and the track
1792/* Int_t index;
1793 if((index = FindTracklet(ptrTracklet)) < 0){
1794 ptrTracklet = SetTracklet(&tracklet);
1795 index = fTracklets->GetEntriesFast()-1;
1796 }
1797 track->SetTracklet(ptrTracklet, index);*/
1798
1799
1800 // register tracklet to track with tracklet creation !!
1801 // PropagateBack : loaded tracklet to the tracker and update index
1802 // RefitInward : update index
1803 // MakeTrack : loaded tracklet to the tracker and update index
1804 if(!tracklets) track->SetTracklet(ptrTracklet, -1);
1805
1806
1807 //Calculate the mean material budget along the path inside the chamber
1808 Double_t xyz0[3]; track->GetXYZ(xyz0);
1809 Double_t alpha = track->GetAlpha();
1810 Double_t xyz1[3], y, z;
1811 if(!track->GetProlongation(x, y, z)) return -1;
1812 xyz1[0] = x * TMath::Cos(alpha) - y * TMath::Sin(alpha);
1813 xyz1[1] = +x * TMath::Sin(alpha) + y * TMath::Cos(alpha);
1814 xyz1[2] = z;
fbe11be7 1815 if(TMath::Abs(xyz0[0] - xyz1[0]) < 1e-3 && TMath::Abs(xyz0[1] - xyz1[1]) < 1e-3) continue; // check wheter we are at the same global x position
1bf51039 1816 Double_t param[7];
3cfaffa4 1817 if(AliTracker::MeanMaterialBudget(xyz0, xyz1, param) <=0.) break;
1bf51039 1818 Double_t xrho = param[0]*param[4]; // density*length
1819 Double_t xx0 = param[1]; // radiation length
1820
1821 //Propagate the track
1822 track->PropagateTo(x, xx0, xrho);
1823 if (!AdjustSector(track)) break;
1824
1825 //Update track
b72f4eaf 1826 Double_t cov[3]; ptrTracklet->GetCovAt(x, cov);
1827 Double_t p[2] = { ptrTracklet->GetY(), ptrTracklet->GetZ()};
1828 Double_t chi2 = ((AliExternalTrackParam*)track)->GetPredictedChi2(p, cov);
ef867f55 1829 if(chi2<1e+10) ((AliExternalTrackParam*)track)->Update(p, cov);
1bf51039 1830 if(!up) continue;
1831
1832 //Reset material budget if 2 consecutive gold
1833 if(iplane>0 && track->GetTracklet(iplane-1) && ptrTracklet->GetN() + track->GetTracklet(iplane-1)->GetN() > 20) track->SetBudget(2, 0.);
1834 } // end planes loop
1835
1836 // extrapolation
1837 while(ip < np){
952051c5 1838 if(((up?-1:1) * (points[ip].GetX() - track->GetX()) < 0) && !PropagateToX(*track, points[ip].GetX(), AliTRDReconstructor::GetMaxStep())) return -1.;
1bf51039 1839
1840 Double_t xyz[3]; // should also get the covariance
3cfaffa4 1841 track->GetXYZ(xyz);
1842 track->Global2LocalPosition(xyz, track->GetAlpha());
1843 points[ip].SetXYZ(xyz[0], xyz[1], xyz[2]);
1bf51039 1844 ip++;
1845 }
1846
1847 return track->GetChi2();
1848}
3b57a3f7 1849
eb38ed55 1850//_________________________________________________________________________
d8069611 1851Float_t AliTRDtrackerV1::CalculateChi2Z(const AliTRDseedV1 *tracklets, Double_t offset, Double_t slope, Double_t xref)
eb38ed55 1852{
41702fec 1853 //
1854 // Calculates the chi2-value of the track in z-Direction including tilting pad correction.
1855 // A linear dependence on the x-value serves as a model.
1856 // The parameters are related to the tilted Riemann fit.
1857 // Parameters: - Array of tracklets (AliTRDseedV1) related to the track candidate
1858 // - the offset for the reference x
1859 // - the slope
1860 // - the reference x position
1861 // Output: - The Chi2 value of the track in z-Direction
1862 //
1863 Float_t chi2Z = 0, nLayers = 0;
053767a4 1864 for (Int_t iLayer = 0; iLayer < AliTRDgeometry::kNlayer; iLayer++) {
41702fec 1865 if(!tracklets[iLayer].IsOK()) continue;
1866 Double_t z = offset + slope * (tracklets[iLayer].GetX0() - xref);
e3cf3d02 1867 chi2Z += TMath::Abs(tracklets[iLayer].GetZfit(0) - z);
41702fec 1868 nLayers++;
1869 }
1870 chi2Z /= TMath::Max((nLayers - 3.0),1.0);
1871 return chi2Z;
eb38ed55 1872}
1873
bccda319 1874//_____________________________________________________________________________
1875Int_t AliTRDtrackerV1::PropagateToX(AliTRDtrackV1 &t, Double_t xToGo, Double_t maxStep)
1876{
41702fec 1877 //
1878 // Starting from current X-position of track <t> this function
829e9a79 1879 // extrapolates the track up to radial position <xToGo> in steps of <maxStep>.
41702fec 1880 // Returns 1 if track reaches the plane, and 0 otherwise
1881 //
bccda319 1882
41702fec 1883 // Current track X-position
15a2657d 1884 Double_t xpos = t.GetX()/*,
1885 mass = t.GetMass()*/;
bccda319 1886
41702fec 1887 // Direction: inward or outward
1888 Double_t dir = (xpos < xToGo) ? 1.0 : -1.0;
bccda319 1889
952051c5 1890 while (((xToGo - xpos) * dir) > AliTRDReconstructor::GetEpsilon()) {
2f4384e6 1891// printf("to go %f\n", (xToGo - xpos) * dir);
41702fec 1892 Double_t xyz0[3];
1893 Double_t xyz1[3];
1894 Double_t param[7];
1895 Double_t x;
1896 Double_t y;
1897 Double_t z;
bccda319 1898
41702fec 1899 // The next step size
1900 Double_t step = dir * TMath::Min(TMath::Abs(xToGo-xpos),maxStep);
bccda319 1901
41702fec 1902 // Get the global position of the starting point
1903 t.GetXYZ(xyz0);
bccda319 1904
41702fec 1905 // X-position after next step
1906 x = xpos + step;
bccda319 1907
41702fec 1908 // Get local Y and Z at the X-position of the next step
3352b455 1909 if(t.GetProlongation(x,y,z)<0) return 0; // No prolongation possible
bccda319 1910
41702fec 1911 // The global position of the end point of this prolongation step
1912 xyz1[0] = x * TMath::Cos(t.GetAlpha()) - y * TMath::Sin(t.GetAlpha());
1913 xyz1[1] = +x * TMath::Sin(t.GetAlpha()) + y * TMath::Cos(t.GetAlpha());
1914 xyz1[2] = z;
bccda319 1915
41702fec 1916 // Calculate the mean material budget between start and
1917 // end point of this prolongation step
83dea92e 1918 if(AliTracker::MeanMaterialBudget(xyz0, xyz1, param)<=0.) return 0;
2f4384e6 1919
41702fec 1920 // Propagate the track to the X-position after the next step
9c87a076 1921 if (!t.PropagateTo(x, param[1], param[0]*param[4])) return 0;
bccda319 1922
15a2657d 1923/* // Correct for mean material budget
2f4384e6 1924 Double_t dEdx(0.),
1d26da6d 1925 bg(TMath::Abs(t.GetP()/mass));
2f4384e6 1926 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>=3){
1927 const char *pn[] = {"rho", "x/X0", "<A>", "<Z>", "L", "<Z/A>", "Nb"};
1928 printf("D-AliTRDtrackerV1::PropagateTo(): x[%6.2f] bg[%6.2f]\n", xpos, bg);
1929 printf(" param :: %s[%e] %s[%e] %s[%e] %s[%e] %s[%e] %s[%e] %s[%e]\n"
1930 , pn[0], param[0]
1931 , pn[1], param[1]
1932 , pn[2], param[2]
1933 , pn[3], param[3]
1934 , pn[4], param[4]
1935 , pn[5], param[5]
1936 , pn[6], param[6]);
1937 }
1938 switch(fgBB){
1939 case kSolid:
1940 dEdx = AliExternalTrackParam::BetheBlochSolid(bg);
1941 break;
1942 case kGas:
1943 dEdx = AliExternalTrackParam::BetheBlochGas(bg);
1944 break;
1945 case kGeant:
1946 { // mean exitation energy (GeV)
1947 Double_t mee = ((param[3] < 13.) ? (12. * param[3] + 7.) : (9.76 * param[3] + 58.8 * TMath::Power(param[3],-0.19))) * 1.e-9;
1948 Double_t mZA = param[5]>1.e-5?param[5]:(param[3]/param[2]);
1949 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>=3) printf("D-AliTRDtrackerV1::PropagateTo(): Mee[%e] <Z/A>[%e]\n", mee, mZA);
1950 // protect against failed calculation of rho in MeanMaterialBudget()
1951 dEdx = AliExternalTrackParam::BetheBlochGeant(bg, param[0]>1.e-6?param[0]:2.33, 0.2, 3., mee, mZA);
1952 }
1953 break;
1954 }
1955 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")>=2) printf("D-AliTRDtrackerV1::PropagateTo(): dEdx(bg=%e, m=%e)= %e[GeV/cm]\n", bg, mass, dEdx);
1956 if (!t.CorrectForMeanMaterialdEdx(param[1], dir*param[0]*param[4], mass, dEdx)) return 0;
15a2657d 1957*/
41702fec 1958 // Rotate the track if necessary
e7542a7e 1959 if(!AdjustSector(&t)) return 0;
bccda319 1960
41702fec 1961 // New track X-position
1962 xpos = t.GetX();
bccda319 1963
41702fec 1964 }
bccda319 1965
41702fec 1966 return 1;
bccda319 1967
1968}
1969
eb38ed55 1970//_____________________________________________________________________________
e7542a7e 1971Bool_t AliTRDtrackerV1::ReadClusters(TTree *clusterTree)
eb38ed55 1972{
41702fec 1973 //
1974 // Reads AliTRDclusters from the file.
1975 // The names of the cluster tree and branches
1976 // should match the ones used in AliTRDclusterizer::WriteClusters()
1977 //
1978
1979 Int_t nsize = Int_t(clusterTree->GetTotBytes() / (sizeof(AliTRDcluster)));
1980 TObjArray *clusterArray = new TObjArray(nsize+1000);
1981
1982 TBranch *branch = clusterTree->GetBranch("TRDcluster");
1983 if (!branch) {
1984 AliError("Can't get the branch !");
e7542a7e 1985 return kFALSE;
41702fec 1986 }
1987 branch->SetAddress(&clusterArray);
d2eba04b 1988
41702fec 1989 if(!fClusters){
9e85cb05 1990 Float_t nclusters = fkRecoParam->GetNClusters();
4d6aee34 1991 if(fkReconstructor->IsHLT()) nclusters /= AliTRDgeometry::kNsector;
e7542a7e 1992 fClusters = new TClonesArray("AliTRDcluster", Int_t(nclusters));
1993 fClusters->SetOwner(kTRUE);
d2eba04b 1994 SetClustersOwner();
1995 AliInfo(Form("Tracker owning clusters @ %p", (void*)fClusters));
41702fec 1996 }
1997
1998 // Loop through all entries in the tree
1999 Int_t nEntries = (Int_t) clusterTree->GetEntries();
2000 Int_t nbytes = 0;
2001 Int_t ncl = 0;
4d6aee34 2002 AliTRDcluster *c = NULL;
41702fec 2003 for (Int_t iEntry = 0; iEntry < nEntries; iEntry++) {
2004 // Import the tree
2005 nbytes += clusterTree->GetEvent(iEntry);
2006
2007 // Get the number of points in the detector
2008 Int_t nCluster = clusterArray->GetEntriesFast();
2009 for (Int_t iCluster = 0; iCluster < nCluster; iCluster++) {
2010 if(!(c = (AliTRDcluster *) clusterArray->UncheckedAt(iCluster))) continue;
41702fec 2011 new((*fClusters)[ncl++]) AliTRDcluster(*c);
2012 delete (clusterArray->RemoveAt(iCluster));
2013 }
41702fec 2014 }
2015 delete clusterArray;
2016
e7542a7e 2017 return kTRUE;
eb38ed55 2018}
2019
2020//_____________________________________________________________________________
2021Int_t AliTRDtrackerV1::LoadClusters(TTree *cTree)
2022{
41702fec 2023 //
66f6bfd9 2024 // Fills clusters into TRD tracking sectors
41702fec 2025 //
41702fec 2026
9e85cb05 2027 fkRecoParam = fkReconstructor->GetRecoParam(); // load reco param for this event
2028
d2eba04b 2029// if(!fkReconstructor->IsWritingClusters()) AliInfo(Form("IsWritingClusters[%c]", fkReconstructor->IsWritingClusters()?'y':'n'));
2030 if(!(fClusters = AliTRDReconstructor::GetClusters())){
2031 AliWarning("Clusters unavailable from TRD reconstructor. Trying reading from tree ...");
48f8adf3 2032 } else {
e7542a7e 2033 if(!ReadClusters(cTree)) {
d2eba04b 2034 AliError("Reading clusters from tree failed.");
66f6bfd9 2035 return 1;
2036 }
2037 }
66f6bfd9 2038
48f8adf3 2039 if(!fClusters || !fClusters->GetEntriesFast()){
66f6bfd9 2040 AliInfo("No TRD clusters");
41702fec 2041 return 1;
d2eba04b 2042 } else AliInfo(Form("Using :: clusters[%d] onl.tracklets[%d] onl.tracks[%d]",
2043 fClusters?fClusters->GetEntriesFast():0,
2044 AliTRDReconstructor::GetTracklets()?AliTRDReconstructor::GetTracklets()->GetEntriesFast():0,
2045 AliTRDReconstructor::GetTracks()?AliTRDReconstructor::GetTracks()->GetEntriesFast():0));
66f6bfd9 2046
66f6bfd9 2047 BuildTrackingContainers();
2048
66f6bfd9 2049 return 0;
2050}
2051
2052//_____________________________________________________________________________
4d6aee34 2053Int_t AliTRDtrackerV1::LoadClusters(TClonesArray * const clusters)
66f6bfd9 2054{
2055 //
2056 // Fills clusters into TRD tracking sectors
2057 // Function for use in the HLT
2058
2059 if(!clusters || !clusters->GetEntriesFast()){
2060 AliInfo("No TRD clusters");
41702fec 2061 return 1;
d2eba04b 2062 } else AliInfo(Form("Using :: external.clusters[%d]", clusters->GetEntriesFast()));
2063
41702fec 2064
66f6bfd9 2065 fClusters = clusters;
66f6bfd9 2066
9e85cb05 2067 fkRecoParam = fkReconstructor->GetRecoParam(); // load reco param for this event
66f6bfd9 2068 BuildTrackingContainers();
2069
66f6bfd9 2070 return 0;
2071}
2072
2073
2074//____________________________________________________________________
2075Int_t AliTRDtrackerV1::BuildTrackingContainers()
2076{
2077// Building tracking containers for clusters
2078
c79857d5 2079 Int_t nin(0), ncl(fClusters->GetEntriesFast());
2080 while (ncl--) {
2081 AliTRDcluster *c = (AliTRDcluster *) fClusters->UncheckedAt(ncl);
41702fec 2082 if(c->IsInChamber()) nin++;
4226b195 2083 if(fkReconstructor->IsHLT()) c->SetRPhiMethod(AliTRDcluster::kCOG);
41702fec 2084 Int_t detector = c->GetDetector();
2085 Int_t sector = fGeom->GetSector(detector);
053767a4 2086 Int_t stack = fGeom->GetStack(detector);
2087 Int_t layer = fGeom->GetLayer(detector);
41702fec 2088
0b559d95 2089 fTrSec[sector].GetChamber(stack, layer, kTRUE)->InsertCluster(c, ncl);
41702fec 2090 }
b0a48c4d 2091
053767a4 2092 for(int isector =0; isector<AliTRDgeometry::kNsector; isector++){
41702fec 2093 if(!fTrSec[isector].GetNChambers()) continue;
c79857d5 2094 fTrSec[isector].Init(fkReconstructor);
41702fec 2095 }
66f6bfd9 2096
2097 return nin;
eb38ed55 2098}
2099
2100
66f6bfd9 2101
0906e73e 2102//____________________________________________________________________
172b6f82 2103void AliTRDtrackerV1::UnloadClusters()
0906e73e 2104{
d4cf71ca 2105//
2106// Clears the arrays of clusters and tracks. Resets sectors and timebins
2107// If option "force" is also set the containers are also deleted. This is useful
2108// in case of HLT
2109
2110 if(fTracks){
2111 fTracks->Delete();
4d6aee34 2112 if(HasRemoveContainers()){delete fTracks; fTracks = NULL;}
d4cf71ca 2113 }
2114 if(fTracklets){
2115 fTracklets->Delete();
4d6aee34 2116 if(HasRemoveContainers()){delete fTracklets; fTracklets = NULL;}
d4cf71ca 2117 }
d2eba04b 2118 if(fClusters && IsClustersOwner()){
2119 AliInfo(Form("tracker[%p] clearing %d own clusters @ %p", (void*)this, fClusters->GetEntries(), (void*)fClusters));
2120 fClusters->Delete();
2121//
2122// // save clusters array in the reconstructor for further use.
2123// if(!fkReconstructor->IsWritingClusters()){
2124// AliTRDReconstructor::SetClusters(fClusters);
2125// SetClustersOwner(kFALSE);
2126// } else AliTRDReconstructor::SetClusters(NULL);
48f8adf3 2127 }
0906e73e 2128
053767a4 2129 for (int i = 0; i < AliTRDgeometry::kNsector; i++) fTrSec[i].Clear();
0906e73e 2130
41702fec 2131 // Increment the Event Number
2132 AliTRDtrackerDebug::SetEventNumber(AliTRDtrackerDebug::GetEventNumber() + 1);
eb38ed55 2133}
0906e73e 2134
fac58f00 2135// //____________________________________________________________________
2136// void AliTRDtrackerV1::UseClusters(const AliKalmanTrack *t, Int_t) const
2137// {
2138// const AliTRDtrackV1 *track = dynamic_cast<const AliTRDtrackV1*>(t);
2139// if(!track) return;
2140//
4d6aee34 2141// AliTRDseedV1 *tracklet = NULL;
fac58f00 2142// for(Int_t ily=AliTRDgeometry::kNlayer; ily--;){
2143// if(!(tracklet = track->GetTracklet(ily))) continue;
4d6aee34 2144// AliTRDcluster *c = NULL;
8d2bec9e 2145// for(Int_t ic=AliTRDseed::kNclusters; ic--;){
fac58f00 2146// if(!(c=tracklet->GetClusters(ic))) continue;
2147// c->Use();
2148// }
2149// }
2150// }
2151//
b1957d3c 2152
eb38ed55 2153//_____________________________________________________________________________
4d6aee34 2154Bool_t AliTRDtrackerV1::AdjustSector(AliTRDtrackV1 *const track)
eb38ed55 2155{
41702fec 2156 //
2157 // Rotates the track when necessary
2158 //
2159
2160 Double_t alpha = AliTRDgeometry::GetAlpha();
2161 Double_t y = track->GetY();
2162 Double_t ymax = track->GetX()*TMath::Tan(0.5*alpha);
3cfaffa4 2163
41702fec 2164 if (y > ymax) {
2165 if (!track->Rotate( alpha)) {
2166 return kFALSE;
2167 }
2168 }
2169 else if (y < -ymax) {
2170 if (!track->Rotate(-alpha)) {
2171 return kFALSE;
2172 }
2173 }
2174
2175 return kTRUE;
0906e73e 2176
2177}
2178
eb38ed55 2179
0906e73e 2180//____________________________________________________________________
33ab3872 2181AliTRDseedV1* AliTRDtrackerV1::GetTracklet(const AliTRDtrackV1 *const track, Int_t p, Int_t &idx)
0906e73e 2182{
41702fec 2183 // Find tracklet for TRD track <track>
2184 // Parameters
2185 // - track
2186 // - sector
2187 // - plane
2188 // - index
2189 // Output
2190 // tracklet
2191 // index
2192 // Detailed description
2193 //
2194 idx = track->GetTrackletIndex(p);
17896e82 2195 AliTRDseedV1 *tracklet = (idx<0) ? NULL : (AliTRDseedV1*)fTracklets->UncheckedAt(idx);
41702fec 2196
2197 return tracklet;
0906e73e 2198}
2199
2200//____________________________________________________________________
4d6aee34 2201AliTRDseedV1* AliTRDtrackerV1::SetTracklet(const AliTRDseedV1 * const tracklet)
0906e73e 2202{
41702fec 2203 // Add this tracklet to the list of tracklets stored in the tracker
2204 //
2205 // Parameters
2206 // - tracklet : pointer to the tracklet to be added to the list
2207 //
2208 // Output
2209 // - the index of the new tracklet in the tracker tracklets list
2210 //
2211 // Detailed description
2212 // Build the tracklets list if it is not yet created (late initialization)
2213 // and adds the new tracklet to the list.
2214 //
2215 if(!fTracklets){
053767a4 2216 fTracklets = new TClonesArray("AliTRDseedV1", AliTRDgeometry::Nsector()*kMaxTracksStack);
41702fec 2217 fTracklets->SetOwner(kTRUE);
2218 }
2219 Int_t nentries = fTracklets->GetEntriesFast();
2220 return new ((*fTracklets)[nentries]) AliTRDseedV1(*tracklet);
972ef65e 2221}
2222
d20df6fc 2223//____________________________________________________________________
4d6aee34 2224AliTRDtrackV1* AliTRDtrackerV1::SetTrack(const AliTRDtrackV1 * const track)
d20df6fc 2225{
2226 // Add this track to the list of tracks stored in the tracker
2227 //
2228 // Parameters
2229 // - track : pointer to the track to be added to the list
2230 //
2231 // Output
2232 // - the pointer added
2233 //
2234 // Detailed description
2235 // Build the tracks list if it is not yet created (late initialization)
2236 // and adds the new track to the list.
2237 //
2238 if(!fTracks){
053767a4 2239 fTracks = new TClonesArray("AliTRDtrackV1", AliTRDgeometry::Nsector()*kMaxTracksStack);
d20df6fc 2240 fTracks->SetOwner(kTRUE);
2241 }
2242 Int_t nentries = fTracks->GetEntriesFast();
2243 return new ((*fTracks)[nentries]) AliTRDtrackV1(*track);
2244}
2245
2246
0906e73e 2247
e4f2f73d 2248//____________________________________________________________________
eb38ed55 2249Int_t AliTRDtrackerV1::Clusters2TracksSM(Int_t sector, AliESDEvent *esd)
e4f2f73d 2250{
41702fec 2251 //
2252 // Steer tracking for one SM.
2253 //
2254 // Parameters :
2255 // sector : Array of (SM) propagation layers containing clusters
2256 // esd : The current ESD event. On output it contains the also
2257 // the ESD (TRD) tracks found in this SM.
2258 //
2259 // Output :
2260 // Number of tracks found in this TRD supermodule.
2261 //
2262 // Detailed description
2263 //
2264 // 1. Unpack AliTRDpropagationLayers objects for each stack.
2265 // 2. Launch stack tracking.
2266 // See AliTRDtrackerV1::Clusters2TracksStack() for details.
2267 // 3. Pack results in the ESD event.
2268 //
2269
41702fec 2270 Int_t nTracks = 0;
2271 Int_t nChambers = 0;
4d6aee34 2272 AliTRDtrackingChamber **stack = NULL, *chamber = NULL;
053767a4 2273 for(int istack = 0; istack<AliTRDgeometry::kNstack; istack++){
41702fec 2274 if(!(stack = fTrSec[sector].GetStack(istack))) continue;
2275 nChambers = 0;
053767a4 2276 for(int ilayer=0; ilayer<AliTRDgeometry::kNlayer; ilayer++){
2277 if(!(chamber = stack[ilayer])) continue;
9e85cb05 2278 if(chamber->GetNClusters() < fgNTimeBins * fkRecoParam->GetFindableClusters()) continue;
41702fec 2279 nChambers++;
053767a4 2280 //AliInfo(Form("sector %d stack %d layer %d clusters %d", sector, istack, ilayer, chamber->GetNClusters()));
41702fec 2281 }
2282 if(nChambers < 4) continue;
2283 //AliInfo(Form("Doing stack %d", istack));
b1135f96 2284 nTracks += Clusters2TracksStack(stack, fTracksESD);
41702fec 2285 }
050875b0 2286 if(nTracks) AliDebug(2, Form("Number of tracks: SM_%02d[%d]", sector, nTracks));
2287
352cef8f 2288 for(int itrack=0; itrack<nTracks; itrack++){
2289 AliESDtrack *esdTrack((AliESDtrack*)(fTracksESD->operator[](itrack)));
2290 Int_t id = esd->AddTrack(esdTrack);
2291
2292 // set ESD id to stand alone TRD tracks
2c7f43b6 2293 if (fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 0 || AliTRDReconstructor::GetStreamLevel()>0 ){
352cef8f 2294 esdTrack=esd->GetTrack(id);
2295 TObject *o(NULL); Int_t ic(0);
2296 AliTRDtrackV1 *calibTrack(NULL);
2297 while((o = esdTrack->GetCalibObject(ic++))){
2298 if(!(calibTrack = dynamic_cast<AliTRDtrackV1*>(o))) continue;
2299 calibTrack->SetESDid(esdTrack->GetID());
2300 break;
2301 }
2302 }
2303 }
41702fec 2304
2305 // Reset Track and Candidate Number
2306 AliTRDtrackerDebug::SetCandidateNumber(0);
2307 AliTRDtrackerDebug::SetTrackNumber(0);
b1135f96 2308
2309 // delete ESD tracks in the array
2310 fTracksESD->Delete();
41702fec 2311 return nTracks;
e4f2f73d 2312}
2313
2314//____________________________________________________________________
4d6aee34 2315Int_t AliTRDtrackerV1::Clusters2TracksStack(AliTRDtrackingChamber **stack, TClonesArray * const esdTrackList)
e4f2f73d 2316{
41702fec 2317 //
2318 // Make tracks in one TRD stack.
2319 //
2320 // Parameters :
2321 // layer : Array of stack propagation layers containing clusters
2322 // esdTrackList : Array of ESD tracks found by the stand alone tracker.
2323 // On exit the tracks found in this stack are appended.
2324 //
2325 // Output :
2326 // Number of tracks found in this stack.
2327 //
2328 // Detailed description
2329 //
2330 // 1. Find the 3 most useful seeding chambers. See BuildSeedingConfigs() for details.
2331 // 2. Steer AliTRDtrackerV1::MakeSeeds() for 3 seeding layer configurations.
2332 // See AliTRDtrackerV1::MakeSeeds() for more details.
2333 // 3. Arrange track candidates in decreasing order of their quality
2334 // 4. Classify tracks in 5 categories according to:
2335 // a) number of layers crossed
2336 // b) track quality
2337 // 5. Sign clusters by tracks in decreasing order of track quality
2338 // 6. Build AliTRDtrack out of seeding tracklets
2339 // 7. Cook MC label
2340 // 8. Build ESD track and register it to the output list
2341 //
2342
4d6aee34 2343 AliTRDtrackingChamber *chamber = NULL;
2344 AliTRDtrackingChamber **ci = NULL;
41702fec 2345 AliTRDseedV1 sseed[kMaxTracksStack*6]; // to be initialized
2346 Int_t pars[4]; // MakeSeeds parameters
2347
2348 //Double_t alpha = AliTRDgeometry::GetAlpha();
2349 //Double_t shift = .5 * alpha;
2350 Int_t configs[kNConfigs];
2351
fac58f00 2352 // Purge used clusters from the containers
2353 ci = &stack[0];
2354 for(Int_t ic = kNPlanes; ic--; ci++){
2355 if(!(*ci)) continue;
2356 (*ci)->Update();
2357 }
2358
41702fec 2359 // Build initial seeding configurations
2360 Double_t quality = BuildSeedingConfigs(stack, configs);
2c7f43b6 2361 if(fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 10 || AliTRDReconstructor::GetStreamLevel()>10){
41702fec 2362 AliInfo(Form("Plane config %d %d %d Quality %f"
2363 , configs[0], configs[1], configs[2], quality));
2364 }
d931f2aa 2365
41702fec 2366
2367 // Initialize contors
2368 Int_t ntracks, // number of TRD track candidates
2369 ntracks1, // number of registered TRD tracks/iter
2370 ntracks2 = 0; // number of all registered TRD tracks in stack
2371 fSieveSeeding = 0;
d931f2aa 2372
2373 // Get stack index
fac58f00 2374 Int_t ic = 0; ci = &stack[0];
2375 while(ic<kNPlanes && !(*ci)){ic++; ci++;}
2376 if(!(*ci)) return ntracks2;
2377 Int_t istack = fGeom->GetStack((*ci)->GetDetector());
d931f2aa 2378
41702fec 2379 do{
2380 // Loop over seeding configurations
2381 ntracks = 0; ntracks1 = 0;
0b559d95 2382 for (Int_t iconf = 0; iconf<fkRecoParam->GetNumberOfSeedConfigs(); iconf++) {
41702fec 2383 pars[0] = configs[iconf];
2384 pars[1] = ntracks;
d931f2aa 2385 pars[2] = istack;
41702fec 2386 ntracks = MakeSeeds(stack, &sseed[6*ntracks], pars);
6e39bde4 2387 //AliInfo(Form("Number of Tracks after iteration step %d: %d\n", iconf, ntracks));
41702fec 2388 if(ntracks == kMaxTracksStack) break;
2389 }
980d5a2a 2390 AliDebug(2, Form("Candidate TRD tracks %d in iteration %d.", ntracks, fSieveSeeding));
41702fec 2391 if(!ntracks) break;
2392
2393 // Sort the seeds according to their quality
41f024fb 2394 Int_t sort[kMaxTracksStack+1];
41702fec 2395 TMath::Sort(ntracks, fTrackQuality, sort, kTRUE);
68f9b6bd 2396 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1") > 2){
2397 AliDebug(3, "Track candidates classification:");
2398 for (Int_t it(0); it < ntracks; it++) {
2399 Int_t jt(sort[it]);
2400 printf(" %2d idx[%d] Quality[%e]\n", it, jt, fTrackQuality[jt]);
2401 }
2402 }
41702fec 2403
2404 // Initialize number of tracks so far and logic switches
2405 Int_t ntracks0 = esdTrackList->GetEntriesFast();
2406 Bool_t signedTrack[kMaxTracksStack];
2407 Bool_t fakeTrack[kMaxTracksStack];
2408 for (Int_t i=0; i<ntracks; i++){
2409 signedTrack[i] = kFALSE;
2410 fakeTrack[i] = kFALSE;
2411 }
2412 //AliInfo("Selecting track candidates ...");
2413
2414 // Sieve clusters in decreasing order of track quality
68f9b6bd 2415 Int_t jSieve(0), rejectedCandidates(0);
41702fec 2416 do{
41702fec 2417 // Check track candidates
68f9b6bd 2418 rejectedCandidates=0;
41702fec 2419 for (Int_t itrack = 0; itrack < ntracks; itrack++) {
804bb02e 2420 Int_t trackIndex = sort[itrack];
2421 if (signedTrack[trackIndex] || fakeTrack[trackIndex]) continue;
41702fec 2422
804bb02e 2423 // Calculate track parameters from tracklets seeds
804bb02e 2424 Int_t ncl = 0;
2425 Int_t nused = 0;
2426 Int_t nlayers = 0;
2427 Int_t findable = 0;
2428 for (Int_t jLayer = 0; jLayer < kNPlanes; jLayer++) {
2429 Int_t jseed = kNPlanes*trackIndex+jLayer;
68f9b6bd 2430 sseed[jseed].UpdateUsed();
804bb02e 2431 if(!sseed[jseed].IsOK()) continue;
68f9b6bd 2432 // check if primary candidate
f29f13a6 2433 if (TMath::Abs(sseed[jseed].GetYref(0) / sseed[jseed].GetX0()) < 0.158) findable++;
68f9b6bd 2434 ncl += sseed[jseed].GetN();
804bb02e 2435 nused += sseed[jseed].GetNUsed();
2436 nlayers++;
804bb02e 2437 }
2438
f29f13a6 2439 // Filter duplicated tracks
2440 if (nused > 30){
68f9b6bd 2441 AliDebug(4, Form("REJECTED : %d idx[%d] quality[%e] tracklets[%d] usedClusters[%d]", itrack, trackIndex, fTrackQuality[trackIndex], nlayers, nused));
f29f13a6 2442 fakeTrack[trackIndex] = kTRUE;
2443 continue;
2444 }
5ef88e00 2445 if (ncl>0 && Float_t(nused)/ncl >= .25){
68f9b6bd 2446 AliDebug(4, Form("REJECTED : %d idx[%d] quality[%e] tracklets[%d] usedClusters[%d] used/ncl[%f]", itrack, trackIndex, fTrackQuality[trackIndex], nlayers, nused, Float_t(nused)/ncl));
f29f13a6 2447 fakeTrack[trackIndex] = kTRUE;
2448 continue;
2449 }
41702fec 2450
68f9b6bd 2451 AliDebug(4, Form("Candidate[%d] Quality[%e] Tracklets[%d] Findable[%d] Ncl[%d] Nused[%d]", trackIndex, fTrackQuality[trackIndex], nlayers, findable, ncl, nused));
2452
f29f13a6 2453 // Classify tracks
2454 Bool_t skip = kFALSE;
2455 switch(jSieve){
68f9b6bd 2456 case 0: // select 6 tracklets primary tracks, good quality
2457 if(nlayers > findable || nlayers < kNPlanes) {skip = kTRUE; break;}
f29f13a6 2458 if(TMath::Log(1.E-9+fTrackQuality[trackIndex]) < -5.){skip = kTRUE; break;}
2459 break;
2460
68f9b6bd 2461 case 1: // select shorter primary tracks, good quality
e7542a7e 2462 //if(findable<4){skip = kTRUE; break;}
f29f13a6 2463 if(nlayers < findable){skip = kTRUE; break;}
2464 if(TMath::Log(1.E-9+fTrackQuality[trackIndex]) < -4.){skip = kTRUE; break;}
2465 break;
2466
68f9b6bd 2467 case 2: // select 6 tracklets secondary tracks
2468 if(nlayers < kNPlanes) { skip = kTRUE; break;}
f29f13a6 2469 if (TMath::Log(1.E-9+fTrackQuality[trackIndex]) < -6.0){skip = kTRUE; break;}
2470 break;
2471
68f9b6bd 2472 case 3: // select shorter tracks, good quality
2473 if (nlayers<4){skip = kTRUE; break;}
f29f13a6 2474 if (TMath::Log(1.E-9+fTrackQuality[trackIndex]) < -5.){skip = kTRUE; break;}
2475 break;
2476
68f9b6bd 2477 case 4: // select anything with at least 4 tracklets
2478 if (nlayers<4){skip = kTRUE; break;}
f29f13a6 2479 //if (TMath::Log(1.E-9+fTrackQuality[trackIndex]) - nused/(nlayers-3.0) < -15.0){skip = kTRUE; break;}
2480 break;
2481 }
2482 if(skip){
68f9b6bd 2483 rejectedCandidates++;
5ef88e00 2484 AliDebug(4, Form("REJECTED : %d idx[%d] quality[%e] tracklets[%d] usedClusters[%d]", itrack, trackIndex, fTrackQuality[trackIndex], nlayers, nused));
f29f13a6 2485 continue;
5ef88e00 2486 } else AliDebug(4, Form("ACCEPTED : %d idx[%d] quality[%e] tracklets[%d] usedClusters[%d]", itrack, trackIndex, fTrackQuality[trackIndex], nlayers, nused));
2487
f29f13a6 2488 signedTrack[trackIndex] = kTRUE;
2489
68f9b6bd 2490 AliTRDseedV1 *lseed =&sseed[trackIndex*kNPlanes];
2491 AliTRDtrackV1 *track = MakeTrack(lseed);
2492 if(!track){
2493 AliDebug(1, "Track building failed.");
2494 continue;
2495 } else {
2496 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1") > 1){
2497 Int_t ich = 0; while(!(chamber = stack[ich])) ich++;
2498 AliDebug(2, Form("Track pt=%7.2fGeV/c SM[%2d] Done.", track->Pt(), fGeom->GetSector(chamber->GetDetector())));
2499 }
2500 }
f29f13a6 2501
9e85cb05 2502 if(fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 1 && fkReconstructor->IsDebugStreaming()){
eb2b4f91 2503 //AliInfo(Form("Track %d [%d] nlayers %d trackQuality = %e nused %d, yref = %3.3f", itrack, trackIndex, nlayers, fTrackQuality[trackIndex], nused, trackParams[1]));
f29f13a6 2504
f29f13a6 2505 AliTRDseedV1 *dseed[6];
b82b4de1 2506 for(Int_t iseed = AliTRDgeometry::kNlayer; iseed--;) dseed[iseed] = new AliTRDseedV1(lseed[iseed]);
f29f13a6 2507
2508 //Int_t eventNrInFile = esd->GetEventNumberInFile();
f29f13a6 2509 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
2510 Int_t trackNumber = AliTRDtrackerDebug::GetTrackNumber();
2511 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
a2fbb6ec 2512 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
f29f13a6 2513 cstreamer << "Clusters2TracksStack"
68f9b6bd 2514 << "EventNumber=" << eventNumber
2515 << "TrackNumber=" << trackNumber
2516 << "CandidateNumber=" << candidateNumber
2517 << "Iter=" << fSieveSeeding
2518 << "Like=" << fTrackQuality[trackIndex]
2519 << "S0.=" << dseed[0]
2520 << "S1.=" << dseed[1]
2521 << "S2.=" << dseed[2]
2522 << "S3.=" << dseed[3]
2523 << "S4.=" << dseed[4]
2524 << "S5.=" << dseed[5]
2525 << "Ncl=" << ncl
2526 << "NLayers=" << nlayers
2527 << "Findable=" << findable
2528 << "NUsed=" << nused
f29f13a6 2529 << "\n";
2530 }
d877f55f 2531
68f9b6bd 2532
f29f13a6 2533 AliESDtrack *esdTrack = new ((*esdTrackList)[ntracks0++]) AliESDtrack();
2534 esdTrack->UpdateTrackParams(track, AliESDtrack::kTRDout);
2535 esdTrack->SetLabel(track->GetLabel());
2536 track->UpdateESDtrack(esdTrack);
2537 // write ESD-friends if neccessary
2c7f43b6 2538 if (fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 0 || AliTRDReconstructor::GetStreamLevel()>0 ){
f29f13a6 2539 AliTRDtrackV1 *calibTrack = new AliTRDtrackV1(*track);
2540 calibTrack->SetOwner();
2541 esdTrack->AddCalibObject(calibTrack);
2542 }
2543 ntracks1++;
2544 AliTRDtrackerDebug::SetTrackNumber(AliTRDtrackerDebug::GetTrackNumber() + 1);
41702fec 2545 }
2546
2547 jSieve++;
68f9b6bd 2548 } while(jSieve<5 && rejectedCandidates); // end track candidates sieve
41702fec 2549 if(!ntracks1) break;
2550
2551 // increment counters
2552 ntracks2 += ntracks1;
4302c900 2553
4d6aee34 2554 if(fkReconstructor->IsHLT()) break;
41702fec 2555 fSieveSeeding++;
2556
2557 // Rebuild plane configurations and indices taking only unused clusters into account
2558 quality = BuildSeedingConfigs(stack, configs);
4d6aee34 2559 if(quality < 1.E-7) break; //fkReconstructor->GetRecoParam() ->GetPlaneQualityThreshold()) break;
41702fec 2560
2561 for(Int_t ip = 0; ip < kNPlanes; ip++){
2562 if(!(chamber = stack[ip])) continue;
c79857d5 2563 chamber->Build(fGeom);//Indices(fSieveSeeding);
41702fec 2564 }
2565
2c7f43b6 2566 if(fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 10 || AliTRDReconstructor::GetStreamLevel()>10){
41702fec 2567 AliInfo(Form("Sieve level %d Plane config %d %d %d Quality %f", fSieveSeeding, configs[0], configs[1], configs[2], quality));
2568 }
2569 } while(fSieveSeeding<10); // end stack clusters sieve
2570
2571
2572
2573 //AliInfo(Form("Registered TRD tracks %d in stack %d.", ntracks2, pars[1]));
2574
2575 return ntracks2;
e4f2f73d 2576}
2577
2578//___________________________________________________________________
eb38ed55 2579Double_t AliTRDtrackerV1::BuildSeedingConfigs(AliTRDtrackingChamber **stack, Int_t *configs)
e4f2f73d 2580{
41702fec 2581 //
2582 // Assign probabilities to chambers according to their
2583 // capability of producing seeds.
2584 //
2585 // Parameters :
2586 //
2587 // layers : Array of stack propagation layers for all 6 chambers in one stack
2588 // configs : On exit array of configuration indexes (see GetSeedingConfig()
2589 // for details) in the decreasing order of their seeding probabilities.
2590 //
2591 // Output :
2592 //
2593 // Return top configuration quality
2594 //
2595 // Detailed description:
2596 //
2597 // To each chamber seeding configuration (see GetSeedingConfig() for
2598 // the list of all configurations) one defines 2 quality factors:
2599 // - an apriori topological quality (see GetSeedingConfig() for details) and
2600 // - a data quality based on the uniformity of the distribution of
2601 // clusters over the x range (time bins population). See CookChamberQA() for details.
2602 // The overall chamber quality is given by the product of this 2 contributions.
2603 //
2604
eb2b4f91 2605 Double_t chamberQ[kNPlanes];memset(chamberQ, 0, kNPlanes*sizeof(Double_t));
4d6aee34 2606 AliTRDtrackingChamber *chamber = NULL;
41702fec 2607 for(int iplane=0; iplane<kNPlanes; iplane++){
2608 if(!(chamber = stack[iplane])) continue;
2609 chamberQ[iplane] = (chamber = stack[iplane]) ? chamber->GetQuality() : 0.;
2610 }
2611
eb2b4f91 2612 Double_t tconfig[kNConfigs];memset(tconfig, 0, kNConfigs*sizeof(Double_t));
2613 Int_t planes[] = {0, 0, 0, 0};
41702fec 2614 for(int iconf=0; iconf<kNConfigs; iconf++){
2615 GetSeedingConfig(iconf, planes);
2616 tconfig[iconf] = fgTopologicQA[iconf];
2617 for(int iplane=0; iplane<4; iplane++) tconfig[iconf] *= chamberQ[planes[iplane]];
2618 }
2619
2620 TMath::Sort((Int_t)kNConfigs, tconfig, configs, kTRUE);
0b559d95 2621 // AliInfo(Form("q[%d] = %f", configs[0], tconfig[configs[0]]));
41702fec 2622 // AliInfo(Form("q[%d] = %f", configs[1], tconfig[configs[1]]));
2623 // AliInfo(Form("q[%d] = %f", configs[2], tconfig[configs[2]]));
2624
2625 return tconfig[configs[0]];
e4f2f73d 2626}
2627
2628//____________________________________________________________________
e17f4785 2629Int_t AliTRDtrackerV1::MakeSeeds(AliTRDtrackingChamber **stack, AliTRDseedV1 * const sseed, const Int_t * const ipar)
e4f2f73d 2630{
afa21247 2631//
2a3191bb 2632// Seed tracklets and build candidate TRD tracks. The procedure is used during barrel tracking to account for tracks which are
2633// either missed by TPC prolongation or conversions inside the TRD volume.
2634// For stand alone tracking the procedure is used to estimate all tracks measured by TRD.
afa21247 2635//
2636// Parameters :
2637// layers : Array of stack propagation layers containing clusters
2638// sseed : Array of empty tracklet seeds. On exit they are filled.
2639// ipar : Control parameters:
2640// ipar[0] -> seeding chambers configuration
2641// ipar[1] -> stack index
2642// ipar[2] -> number of track candidates found so far
2643//
2644// Output :
2645// Number of tracks candidates found.
2646//
2647// The following steps are performed:
2648// 1. Build seeding layers by collapsing all time bins from each of the four seeding chambers along the
2649// radial coordinate. See AliTRDtrackingChamber::GetSeedingLayer() for details. The chambers selection for seeding
2650// is described in AliTRDtrackerV1::Clusters2TracksStack().
2651// 2. Using the seeding clusters from the seeding layer (step 1) build combinatorics using the following algorithm:
2652// - for each seeding cluster in the lower seeding layer find
2653// - all seeding clusters in the upper seeding layer inside a road defined by a given phi angle. The angle
2654// is calculated on the minimum pt of tracks from vertex accesible to the stand alone tracker.
2655// - for each pair of two extreme seeding clusters select middle upper cluster using roads defined externally by the
2656// reco params
2657// - select last seeding cluster as the nearest to the linear approximation of the track described by the first three
2658// seeding clusters.
2659// The implementation of road calculation and cluster selection can be found in the functions AliTRDchamberTimeBin::BuildCond()
2660// and AliTRDchamberTimeBin::GetClusters().
2661// 3. Helix fit of the seeding clusters set. (see AliTRDtrackerFitter::FitRieman(AliTRDcluster**)). No tilt correction is
2662// performed at this level
2663// 4. Initialize seeding tracklets in the seeding chambers.
2664// 5. *Filter 0* Chi2 cut on the Y and Z directions. The threshold is set externally by the reco params.
2665// 6. Attach (true) clusters to seeding tracklets (see AliTRDseedV1::AttachClusters()) and fit tracklet (see
2666// AliTRDseedV1::Fit()). The number of used clusters used by current seeds should not exceed ... (25).
2667// 7. *Filter 1* Check if all 4 seeding tracklets are correctly constructed.
2668// 8. Helix fit of the clusters from the seeding tracklets with tilt correction. Refit tracklets using the new
2669// approximation of the track.
2670// 9. *Filter 2* Calculate likelihood of the track. (See AliTRDtrackerV1::CookLikelihood()). The following quantities are
2671// checked against the Riemann fit:
2672// - position resolution in y
2673// - angular resolution in the bending plane
2674// - likelihood of the number of clusters attached to the tracklet
2675// 10. Extrapolation of the helix fit to the other 2 chambers *non seeding* chambers:
2676// - Initialization of extrapolation tracklets with the fit parameters
2677// - Attach clusters to extrapolated tracklets
2678// - Helix fit of tracklets
2679// 11. Improve seeding tracklets quality by reassigning clusters based on the last parameters of the track
2680// See AliTRDtrackerV1::ImproveSeedQuality() for details.
2681// 12. Helix fit of all 6 seeding tracklets and chi2 calculation
2682// 13. Hyperplane fit and track quality calculation. See AliTRDtrackerFitter::FitHyperplane() for details.
2683// 14. Cooking labels for tracklets. Should be done only for MC
2684// 15. Register seeds.
2685//
2686// Authors:
2687// Marian Ivanov <M.Ivanov@gsi.de>
2688// Alexandru Bercuci <A.Bercuci@gsi.de>
2689// Markus Fasel <M.Fasel@gsi.de>
41702fec 2690
4d6aee34 2691 AliTRDtrackingChamber *chamber = NULL;
2692 AliTRDcluster *c[kNSeedPlanes] = {NULL, NULL, NULL, NULL}; // initilize seeding clusters
e17f4785 2693 AliTRDseedV1 *cseed = &sseed[0]; // initialize tracklets for first track
41702fec 2694 Int_t ncl, mcl; // working variable for looping over clusters
2695 Int_t index[AliTRDchamberTimeBin::kMaxClustersLayer], jndex[AliTRDchamberTimeBin::kMaxClustersLayer];
2696 // chi2 storage
2697 // chi2[0] = tracklet chi2 on the Z direction
2698 // chi2[1] = tracklet chi2 on the R direction
2699 Double_t chi2[4];
2700
afa21247 2701 // this should be data member of AliTRDtrack TODO
d2eba04b 2702// Double_t seedQuality[kMaxTracksStack];
41702fec 2703
2704 // unpack control parameters
2705 Int_t config = ipar[0];
2706 Int_t ntracks = ipar[1];
d931f2aa 2707 Int_t istack = ipar[2];
41702fec 2708 Int_t planes[kNSeedPlanes]; GetSeedingConfig(config, planes);
afa21247 2709 Int_t planesExt[kNPlanes-kNSeedPlanes]; GetExtrapolationConfig(config, planesExt);
be24510a 2710
2711
41702fec 2712 // Init chambers geometry
41702fec 2713 Double_t hL[kNPlanes]; // Tilting angle
2714 Float_t padlength[kNPlanes]; // pad lenghts
dd8059a8 2715 Float_t padwidth[kNPlanes]; // pad widths
4d6aee34 2716 AliTRDpadPlane *pp = NULL;
41702fec 2717 for(int iplane=0; iplane<kNPlanes; iplane++){
2718 pp = fGeom->GetPadPlane(iplane, istack);
bb79ccd5 2719 hL[iplane] = TMath::Tan(TMath::DegToRad()*pp->GetTiltingAngle());
41702fec 2720 padlength[iplane] = pp->GetLengthIPad();
dd8059a8 2721 padwidth[iplane] = pp->GetWidthIPad();
41702fec 2722 }
2723
eb2b4f91 2724 // Init anode wire position for chambers
e165b64b 2725 Double_t x0[kNPlanes], // anode wire position
eb2b4f91 2726 driftLength = .5*AliTRDgeometry::AmThick() - AliTRDgeometry::DrThick(); // drift length
4d6aee34 2727 TGeoHMatrix *matrix = NULL;
eb2b4f91 2728 Double_t loc[] = {AliTRDgeometry::AnodePos(), 0., 0.};
2729 Double_t glb[] = {0., 0., 0.};
2730 AliTRDtrackingChamber **cIter = &stack[0];
a3743898 2731 for(int iLayer=0; iLayer<kNPlanes; iLayer++,cIter++){
eb2b4f91 2732 if(!(*cIter)) continue;
e165b64b 2733 if(!(matrix = fGeom->GetClusterMatrix((*cIter)->GetDetector()))){
e165b64b 2734 x0[iLayer] = fgkX0[iLayer];
e7542a7e 2735 continue;
e165b64b 2736 }
eb2b4f91 2737 matrix->LocalToMaster(loc, glb);
2738 x0[iLayer] = glb[0];
2739 }
2740
980d5a2a 2741 AliDebug(2, Form("Making seeds Stack[%d] Config[%d] Tracks[%d]...", istack, config, ntracks));
41702fec 2742
d931f2aa 2743 // Build seeding layers
d611c74f 2744 ResetSeedTB();
41702fec 2745 Int_t nlayers = 0;
41702fec 2746 for(int isl=0; isl<kNSeedPlanes; isl++){
2747 if(!(chamber = stack[planes[isl]])) continue;
4d6aee34 2748 if(!chamber->GetSeedingLayer(fSeedTB[isl], fGeom, fkReconstructor)) continue;
41702fec 2749 nlayers++;
41702fec 2750 }
eb2b4f91 2751 if(nlayers < kNSeedPlanes) return ntracks;
41702fec 2752
2753
2754 // Start finding seeds
2755 Double_t cond0[4], cond1[4], cond2[4];
2756 Int_t icl = 0;
d611c74f 2757 while((c[3] = (*fSeedTB[3])[icl++])){
41702fec 2758 if(!c[3]) continue;
d611c74f 2759 fSeedTB[0]->BuildCond(c[3], cond0, 0);
2760 fSeedTB[0]->GetClusters(cond0, index, ncl);
41702fec 2761 //printf("Found c[3] candidates 0 %d\n", ncl);
2762 Int_t jcl = 0;
2763 while(jcl<ncl) {
d611c74f 2764 c[0] = (*fSeedTB[0])[index[jcl++]];
41702fec 2765 if(!c[0]) continue;
2766 Double_t dx = c[3]->GetX() - c[0]->GetX();
afa21247 2767 Double_t dzdx = (c[3]->GetZ() - c[0]->GetZ())/dx;
2768 Double_t dydx = (c[3]->GetY() - c[0]->GetY())/dx;
2769 fSeedTB[1]->BuildCond(c[0], cond1, 1, dzdx, dydx);
d611c74f 2770 fSeedTB[1]->GetClusters(cond1, jndex, mcl);
41702fec 2771 //printf("Found c[0] candidates 1 %d\n", mcl);
2772
2773 Int_t kcl = 0;
2774 while(kcl<mcl) {
d611c74f 2775 c[1] = (*fSeedTB[1])[jndex[kcl++]];
2776 if(!c[1]) continue;
afa21247 2777 fSeedTB[2]->BuildCond(c[1], cond2, 2, dzdx, dydx);
d611c74f 2778 c[2] = fSeedTB[2]->GetNearestCluster(cond2);
2779 //printf("Found c[1] candidate 2 %p\n", c[2]);
2780 if(!c[2]) continue;
980d5a2a 2781
2782 AliDebug(3, Form("Seeding clusters\n 0[%6.3f %6.3f %6.3f]\n 1[%6.3f %6.3f %6.3f]\n 2[%6.3f %6.3f %6.3f]\n 3[%6.3f %6.3f %6.3f].",
2783 c[0]->GetX(), c[0]->GetY(), c[0]->GetZ(),
2784 c[1]->GetX(), c[1]->GetY(), c[1]->GetZ(),
2785 c[2]->GetX(), c[2]->GetY(), c[2]->GetZ(),
2786 c[3]->GetX(), c[3]->GetY(), c[3]->GetZ()));
d611c74f 2787
804bb02e 2788 for (Int_t il = 0; il < kNPlanes; il++) cseed[il].Reset();
41702fec 2789
d611c74f 2790 FitRieman(c, chi2);
2791
d931f2aa 2792 AliTRDseedV1 *tseed = &cseed[0];
bb2db46c 2793 cIter = &stack[0];
2794 for(int iLayer=0; iLayer<kNPlanes; iLayer++, tseed++, cIter++){
2795 Int_t det = (*cIter) ? (*cIter)->GetDetector() : -1;
eb2b4f91 2796 tseed->SetDetector(det);
43d6ad34 2797 tseed->SetTilt(hL[iLayer]);
2798 tseed->SetPadLength(padlength[iLayer]);
dd8059a8 2799 tseed->SetPadWidth(padwidth[iLayer]);
4d6aee34 2800 tseed->SetReconstructor(fkReconstructor);
eb2b4f91 2801 tseed->SetX0(det<0 ? fR[iLayer]+driftLength : x0[iLayer]);
d611c74f 2802 tseed->Init(GetRiemanFitter());
f29f13a6 2803 tseed->SetStandAlone(kTRUE);
d611c74f 2804 }
2805
2806 Bool_t isFake = kFALSE;
2c7f43b6 2807 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 2 && fkReconstructor->IsDebugStreaming())
2808 ||AliTRDReconstructor::GetStreamLevel()>=2 ){
d611c74f 2809 if (c[0]->GetLabel(0) != c[3]->GetLabel(0)) isFake = kTRUE;
2810 if (c[1]->GetLabel(0) != c[3]->GetLabel(0)) isFake = kTRUE;
2811 if (c[2]->GetLabel(0) != c[3]->GetLabel(0)) isFake = kTRUE;
2812
2813 Double_t xpos[4];
2814 for(Int_t l = 0; l < kNSeedPlanes; l++) xpos[l] = fSeedTB[l]->GetX();
2815 Float_t yref[4];
2816 for(int il=0; il<4; il++) yref[il] = cseed[planes[il]].GetYref(0);
2817 Int_t ll = c[3]->GetLabel(0);
2818 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
2819 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
2820 AliRieman *rim = GetRiemanFitter();
a2fbb6ec 2821 TTreeSRedirector &cs0 = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
d611c74f 2822 cs0 << "MakeSeeds0"
2823 <<"EventNumber=" << eventNumber
2824 <<"CandidateNumber=" << candidateNumber
2825 <<"isFake=" << isFake
2826 <<"config=" << config
2827 <<"label=" << ll
2828 <<"chi2z=" << chi2[0]
2829 <<"chi2y=" << chi2[1]
2830 <<"Y2exp=" << cond2[0]
2831 <<"Z2exp=" << cond2[1]
2832 <<"X0=" << xpos[0] //layer[sLayer]->GetX()
2833 <<"X1=" << xpos[1] //layer[sLayer + 1]->GetX()
2834 <<"X2=" << xpos[2] //layer[sLayer + 2]->GetX()
2835 <<"X3=" << xpos[3] //layer[sLayer + 3]->GetX()
2836 <<"yref0=" << yref[0]
2837 <<"yref1=" << yref[1]
2838 <<"yref2=" << yref[2]
2839 <<"yref3=" << yref[3]
2840 <<"c0.=" << c[0]
2841 <<"c1.=" << c[1]
2842 <<"c2.=" << c[2]
2843 <<"c3.=" << c[3]
2844 <<"Seed0.=" << &cseed[planes[0]]
2845 <<"Seed1.=" << &cseed[planes[1]]
2846 <<"Seed2.=" << &cseed[planes[2]]
2847 <<"Seed3.=" << &cseed[planes[3]]
2848 <<"RiemanFitter.=" << rim
2849 <<"\n";
2850 }
9e85cb05 2851 if(chi2[0] > fkRecoParam->GetChi2Z()/*7./(3. - sLayer)*//*iter*/){
980d5a2a 2852 AliDebug(3, Form("Filter on chi2Z [%f].", chi2[0]));
d611c74f 2853 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
2854 continue;
2855 }
9e85cb05 2856 if(chi2[1] > fkRecoParam->GetChi2Y()/*1./(3. - sLayer)*//*iter*/){
980d5a2a 2857 AliDebug(3, Form("Filter on chi2Y [%f].", chi2[1]));
d611c74f 2858 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
2859 continue;
2860 }
2861 //AliInfo("Passed chi2 filter.");
2862
2863 // try attaching clusters to tracklets
6e39bde4 2864 Int_t mlayers = 0;
980d5a2a 2865 AliTRDcluster *cl = NULL;
be24510a 2866 for(int iLayer=0; iLayer<kNSeedPlanes; iLayer++){
d611c74f 2867 Int_t jLayer = planes[iLayer];
980d5a2a 2868 Int_t nNotInChamber = 0;
f29f13a6 2869 if(!cseed[jLayer].AttachClusters(stack[jLayer], kTRUE)) continue;
980d5a2a 2870 if(/*fkReconstructor->IsHLT()*/kFALSE){
2871 cseed[jLayer].UpdateUsed();
2872 if(!cseed[jLayer].IsOK()) continue;
2873 }else{
2874 cseed[jLayer].Fit();
2875 cseed[jLayer].UpdateUsed();
2876 cseed[jLayer].ResetClusterIter();
2877 while((cl = cseed[jLayer].NextCluster())){
2878 if(!cl->IsInChamber()) nNotInChamber++;
2879 }
2880 //printf("clusters[%d], used[%d], not in chamber[%d]\n", cseed[jLayer].GetN(), cseed[jLayer].GetNUsed(), nNotInChamber);
2881 if(cseed[jLayer].GetN() - (cseed[jLayer].GetNUsed() + nNotInChamber) < 5) continue; // checking for Cluster which are not in chamber is a much stronger restriction on real data
2882 }
d611c74f 2883 mlayers++;
2884 }
be24510a 2885
2886 if(mlayers < kNSeedPlanes){
980d5a2a 2887 AliDebug(2, Form("Found only %d tracklets out of %d. Skip.", mlayers, kNSeedPlanes));
be24510a 2888 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
2889 continue;
2890 }
2891
2892 // temporary exit door for the HLT
4d6aee34 2893 if(fkReconstructor->IsHLT()){
be24510a 2894 // attach clusters to extrapolation chambers
2895 for(int iLayer=0; iLayer<kNPlanes-kNSeedPlanes; iLayer++){
2896 Int_t jLayer = planesExt[iLayer];
2897 if(!(chamber = stack[jLayer])) continue;
980d5a2a 2898 if(!cseed[jLayer].AttachClusters(chamber, kTRUE)) continue;
5f1ae1e7 2899 cseed[jLayer].Fit();
be24510a 2900 }
0b559d95 2901 //FitTiltedRiemanConstraint(&cseed[0], GetZ());
4302c900 2902 fTrackQuality[ntracks] = 1.; // dummy value
2903 ntracks++;
218ba867 2904 if(ntracks == kMaxTracksStack) return ntracks;
4302c900 2905 cseed += 6;
2906 continue;
2907 }
2908
be24510a 2909
f29f13a6 2910 // Update Seeds and calculate Likelihood
d611c74f 2911 // fit tracklets and cook likelihood
68f9b6bd 2912 Double_t chi2Vals[4];
2913 chi2Vals[0] = FitTiltedRieman(&cseed[0], kTRUE);
f29f13a6 2914 for(int iLayer=0; iLayer<kNSeedPlanes; iLayer++){
2915 Int_t jLayer = planes[iLayer];
2eb10c34 2916 cseed[jLayer].Fit(1);
f29f13a6 2917 }
91834b8d 2918 Double_t like = CookLikelihood(&cseed[0], planes); // to be checked
d611c74f 2919
9e85cb05 2920 if (TMath::Log(1.E-9 + like) < fkRecoParam->GetTrackLikelihood()){
980d5a2a 2921 AliDebug(3, Form("Filter on likelihood %f[%e].", TMath::Log(1.E-9 + like), like));
d611c74f 2922 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
2923 continue;
2924 }
2925 //AliInfo(Form("Passed likelihood %f[%e].", TMath::Log(1.E-9 + like), like));
2926
d2eba04b 2927 // book preliminry results
2928 //seedQuality[ntracks] = like;
d611c74f 2929 fSeedLayer[ntracks] = config;/*sLayer;*/
2930
2931 // attach clusters to the extrapolation seeds
980d5a2a 2932 Int_t elayers(0);
be24510a 2933 for(int iLayer=0; iLayer<kNPlanes-kNSeedPlanes; iLayer++){
2934 Int_t jLayer = planesExt[iLayer];
d611c74f 2935 if(!(chamber = stack[jLayer])) continue;
d611c74f 2936
2937 // fit extrapolated seed
2938 if ((jLayer == 0) && !(cseed[1].IsOK())) continue;
2939 if ((jLayer == 5) && !(cseed[4].IsOK())) continue;
2940 AliTRDseedV1 pseed = cseed[jLayer];
f29f13a6 2941 if(!pseed.AttachClusters(chamber, kTRUE)) continue;
2eb10c34 2942 pseed.Fit(1);
d611c74f 2943 cseed[jLayer] = pseed;
68f9b6bd 2944 chi2Vals[0] = FitTiltedRieman(cseed, kTRUE);
2eb10c34 2945 cseed[jLayer].Fit(1);
980d5a2a 2946 elayers++;
d611c74f 2947 }
2948
2949 // AliInfo("Extrapolation done.");
2950 // Debug Stream containing all the 6 tracklets
2c7f43b6 2951 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 2 && fkReconstructor->IsDebugStreaming())
2952 ||AliTRDReconstructor::GetStreamLevel()>=2){
a2fbb6ec 2953 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
d611c74f 2954 TLinearFitter *tiltedRieman = GetTiltedRiemanFitter();
2955 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
2956 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
2957 cstreamer << "MakeSeeds1"
2958 << "EventNumber=" << eventNumber
2959 << "CandidateNumber=" << candidateNumber
2960 << "S0.=" << &cseed[0]
2961 << "S1.=" << &cseed[1]
2962 << "S2.=" << &cseed[2]
2963 << "S3.=" << &cseed[3]
2964 << "S4.=" << &cseed[4]
2965 << "S5.=" << &cseed[5]
2966 << "FitterT.=" << tiltedRieman
2967 << "\n";
2968 }
2969
9e85cb05 2970 if(fkRecoParam->HasImproveTracklets()){
68f9b6bd 2971 if(!ImproveSeedQuality(stack, cseed, chi2Vals[0])){
980d5a2a 2972 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
68f9b6bd 2973 AliDebug(3, "ImproveSeedQuality() failed.");
980d5a2a 2974 }
d611c74f 2975 }
d611c74f 2976
68f9b6bd 2977 // do track fitting with vertex constraint
2978 if(fkRecoParam->IsVertexConstrained()) chi2Vals[1] = FitTiltedRiemanConstraint(&cseed[0], GetZ());
2979 else chi2Vals[1] = -1.;
2980 chi2Vals[2] = GetChi2Z(&cseed[0]);
2981 chi2Vals[3] = GetChi2Phi(&cseed[0]);
2982
2983 // calculate track quality
2984 fTrackQuality[ntracks] = CalculateTrackLikelihood(&chi2Vals[0]);
fac58f00 2985
2c7f43b6 2986 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 2 && fkReconstructor->IsDebugStreaming())
2987 ||AliTRDReconstructor::GetStreamLevel()>=2){
a2fbb6ec 2988 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
d611c74f 2989 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
2990 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
2991 TLinearFitter *fitterTC = GetTiltedRiemanFitterConstraint();
2992 TLinearFitter *fitterT = GetTiltedRiemanFitter();
91834b8d 2993 Int_t ncls = 0;
2994 for(Int_t iseed = 0; iseed < kNPlanes; iseed++){
2995 ncls += cseed[iseed].IsOK() ? cseed[iseed].GetN2() : 0;
2996 }
d611c74f 2997 cstreamer << "MakeSeeds2"
2998 << "EventNumber=" << eventNumber
2999 << "CandidateNumber=" << candidateNumber
3000 << "Chi2TR=" << chi2Vals[0]
3001 << "Chi2TC=" << chi2Vals[1]
3002 << "Nlayers=" << mlayers
91834b8d 3003 << "NClusters=" << ncls
d611c74f 3004 << "Like=" << like
3005 << "S0.=" << &cseed[0]
3006 << "S1.=" << &cseed[1]
3007 << "S2.=" << &cseed[2]
3008 << "S3.=" << &cseed[3]
3009 << "S4.=" << &cseed[4]
3010 << "S5.=" << &cseed[5]
d611c74f 3011 << "FitterT.=" << fitterT
3012 << "FitterTC.=" << fitterTC
3013 << "\n";
3014 }
68f9b6bd 3015 if(AliLog::GetDebugLevel("TRD", "AliTRDtrackerV1")){
3016 Double_t pt[]={0., 0.};
3017 for(Int_t il(0); il<kNPlanes; il++){
3018 if(!cseed[il].IsOK()) continue;
3019 pt[0] = GetBz()*kB2C/cseed[il].GetC();
3020 pt[1] = GetBz()*kB2C/cseed[il].GetC(1);
3021 break;
3022 }
3023 AliDebug(2, Form("Candidate[%2d] pt[%7.3f %7.3f] Q[%e]\n"
3024 " [0] x[%6.2f] n[%2d] nu[%d] OK[%c]\n"
3025 " [1] x[%6.2f] n[%2d] nu[%d] OK[%c]\n"
3026 " [2] x[%6.2f] n[%2d] nu[%d] OK[%c]\n"
3027 " [3] x[%6.2f] n[%2d] nu[%d] OK[%c]\n"
3028 " [4] x[%6.2f] n[%2d] nu[%d] OK[%c]\n"
3029 " [5] x[%6.2f] n[%2d] nu[%d] OK[%c]"
3030 , ntracks, pt[0], pt[1], fTrackQuality[ntracks]
3031 ,cseed[0].GetX(), cseed[0].GetN(), cseed[0].GetNUsed(), cseed[0].IsOK()?'y':'n'
3032 ,cseed[1].GetX(), cseed[1].GetN(), cseed[1].GetNUsed(), cseed[1].IsOK()?'y':'n'
3033 ,cseed[2].GetX(), cseed[2].GetN(), cseed[2].GetNUsed(), cseed[2].IsOK()?'y':'n'
3034 ,cseed[3].GetX(), cseed[3].GetN(), cseed[3].GetNUsed(), cseed[3].IsOK()?'y':'n'
3035 ,cseed[4].GetX(), cseed[4].GetN(), cseed[4].GetNUsed(), cseed[4].IsOK()?'y':'n'
3036 ,cseed[5].GetX(), cseed[5].GetN(), cseed[5].GetNUsed(), cseed[5].IsOK()?'y':'n'));
3037 }
d611c74f 3038 ntracks++;
3039 AliTRDtrackerDebug::SetCandidateNumber(AliTRDtrackerDebug::GetCandidateNumber() + 1);
3040 if(ntracks == kMaxTracksStack){
3041 AliWarning(Form("Number of seeds reached maximum allowed (%d) in stack.", kMaxTracksStack));
3042 return ntracks;
3043 }
3044 cseed += 6;
41702fec 3045 }
3046 }
3047 }
41702fec 3048
3049 return ntracks;
e4f2f73d 3050}
3051
3052//_____________________________________________________________________________
68f9b6bd 3053AliTRDtrackV1* AliTRDtrackerV1::MakeTrack(AliTRDseedV1 * const tracklet)
e4f2f73d 3054{
afa21247 3055//
3056// Build a TRD track out of tracklet candidates
3057//
3058// Parameters :
3059// seeds : array of tracklets
3060// params : array of track parameters as they are estimated by stand alone tracker. 7 elements.
3061// [0] - radial position of the track at reference point
3062// [1] - y position of the fit at [0]
3063// [2] - z position of the fit at [0]
3064// [3] - snp of the first tracklet
3065// [4] - tgl of the first tracklet
3066// [5] - curvature of the Riemann fit - 1/pt
3067// [6] - sector rotation angle
3068//
3069// Output :
3070// The TRD track.
3071//
3072// Initialize the TRD track based on the parameters of the fit and a parametric covariance matrix
3073// (diagonal with constant variance terms TODO - correct parameterization)
3074//
3075// In case of HLT just register the tracklets in the tracker and return values of the Riemann fit. For the
3076// offline case perform a full Kalman filter on the already found tracklets (see AliTRDtrackerV1::FollowBackProlongation()
3077// for details). Do also MC label calculation and PID if propagation successfully.
41702fec 3078
0b559d95 3079 if(fkReconstructor->IsHLT()) FitTiltedRiemanConstraint(tracklet, 0);
41702fec 3080 Double_t alpha = AliTRDgeometry::GetAlpha();
3081 Double_t shift = AliTRDgeometry::GetAlpha()/2.0;
41702fec 3082
68f9b6bd 3083 // find first good tracklet
3084 Int_t idx(0); while(idx<kNPlanes && !tracklet[idx].IsOK()) idx++;
3085 if(idx>2){ AliDebug(1, Form("Found suspect track start @ layer idx[%d]\n"
3086 " %c[0] x0[%f] n[%d] nu[%d] OK[%c]\n"
3087 " %c[1] x0[%f] n[%d] nu[%d] OK[%c]\n"
3088 " %c[2] x0[%f] n[%d] nu[%d] OK[%c]\n"
3089 " %c[3] x0[%f] n[%d] nu[%d] OK[%c]\n"
3090 " %c[4] x0[%f] n[%d] nu[%d] OK[%c]\n"
3091 " %c[5] x0[%f] n[%d] nu[%d] OK[%c]"
3092 ,idx
3093 ,idx==0?'*':' ', tracklet[0].GetX0(), tracklet[0].GetN(), tracklet[0].GetNUsed(), tracklet[0].IsOK()?'y':'n'
3094 ,idx==1?'*':' ', tracklet[1].GetX0(), tracklet[1].GetN(), tracklet[1].GetNUsed(), tracklet[1].IsOK()?'y':'n'
3095 ,idx==2?'*':' ', tracklet[2].GetX0(), tracklet[2].GetN(), tracklet[2].GetNUsed(), tracklet[2].IsOK()?'y':'n'
3096 ,idx==3?'*':' ', tracklet[3].GetX0(), tracklet[3].GetN(), tracklet[3].GetNUsed(), tracklet[3].IsOK()?'y':'n'
3097 ,idx==4?'*':' ', tracklet[4].GetX0(), tracklet[4].GetN(), tracklet[4].GetNUsed(), tracklet[4].IsOK()?'y':'n'
3098 ,idx==5?'*':' ', tracklet[5].GetX0(), tracklet[5].GetN(), tracklet[5].GetNUsed(), tracklet[5].IsOK()?'y':'n'));
3099 return NULL;
3100 }
3101
8def512c 3102 Double_t dx(5.);
3103 Double_t x(tracklet[idx].GetX0() - dx);
68f9b6bd 3104 // Build track parameters
3105 Double_t params[] = {
3106 tracklet[idx].GetYref(0) - dx*tracklet[idx].GetYref(1) // y
3107 ,tracklet[idx].GetZref(0) - dx*tracklet[idx].GetZref(1) // z
3108 ,TMath::Sin(TMath::ATan(tracklet[idx].GetYref(1))) // snp
3109 ,tracklet[idx].GetZref(1) / TMath::Sqrt(1. + tracklet[idx].GetYref(1) * tracklet[idx].GetYref(1)) // tgl
8def512c 3110 ,tracklet[idx].GetC(fkReconstructor->IsHLT()?1:0) // curvature -> 1/pt
68f9b6bd 3111 };
3112 Int_t sector(fGeom->GetSector(tracklet[idx].GetDetector()));
3113
3114 Double_t c[15];
afa21247 3115 c[ 0] = 0.2; // s^2_y
3116 c[ 1] = 0.0; c[ 2] = 2.0; // s^2_z
3117 c[ 3] = 0.0; c[ 4] = 0.0; c[ 5] = 0.02; // s^2_snp
3118 c[ 6] = 0.0; c[ 7] = 0.0; c[ 8] = 0.0; c[ 9] = 0.1; // s^2_tgl
68f9b6bd 3119 c[10] = 0.0; c[11] = 0.0; c[12] = 0.0; c[13] = 0.0; c[14] = params[4]*params[4]*0.01; // s^2_1/pt
3120
3121 AliTRDtrackV1 track(tracklet, params, c, x, sector*alpha+shift);
41702fec 3122
4d6aee34 3123 AliTRDseedV1 *ptrTracklet = NULL;
9887cc9f 3124
3125 // skip Kalman filter for HLT
5f1ae1e7 3126 if(/*fkReconstructor->IsHLT()*/kFALSE){
9887cc9f 3127 for (Int_t jLayer = 0; jLayer < AliTRDgeometry::kNlayer; jLayer++) {
3128 track.UnsetTracklet(jLayer);
68f9b6bd 3129 ptrTracklet = &tracklet[jLayer];
9887cc9f 3130 if(!ptrTracklet->IsOK()) continue;
5f1ae1e7 3131 if(TMath::Abs(ptrTracklet->GetYref(1) - ptrTracklet->GetYfit(1)) >= .2) continue; // check this condition with Marian
9887cc9f 3132 ptrTracklet = SetTracklet(ptrTracklet);
f29f13a6 3133 ptrTracklet->UseClusters();
91834b8d 3134 track.SetTracklet(ptrTracklet, fTracklets->GetEntriesFast()-1);
3135 }
d78d7df0 3136 AliTRDtrackV1 *ptrTrack = SetTrack(&track);
799e38d7 3137 ptrTrack->CookPID();
5f1ae1e7 3138 ptrTrack->CookLabel(.9);
4d6aee34 3139 ptrTrack->SetReconstructor(fkReconstructor);
d78d7df0 3140 return ptrTrack;
91834b8d 3141 }
393fda1c 3142
b1135f96 3143 // prevent the error message in AliTracker::MeanMaterialBudget: "start point out of geometry"
68f9b6bd 3144 if(TMath::Abs(track.GetX()) + TMath::Abs(track.GetY()) + TMath::Abs(track.GetZ()) > 10000) return NULL;
17e0e535 3145
d20df6fc 3146 track.ResetCovariance(1);
e79f8eb0 3147 Int_t nc = TMath::Abs(FollowBackProlongation(track));
2c7f43b6 3148 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) > 5 && fkReconstructor->IsDebugStreaming())
3149 ||AliTRDReconstructor::GetStreamLevel()>5){
393fda1c 3150 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
3151 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
3152 Double_t p[5]; // Track Params for the Debug Stream
68f9b6bd 3153 track.GetExternalParameters(x, p);
a2fbb6ec 3154 TTreeSRedirector &cs = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
393fda1c 3155 cs << "MakeTrack"
3156 << "EventNumber=" << eventNumber
3157 << "CandidateNumber=" << candidateNumber
3158 << "nc=" << nc
68f9b6bd 3159 << "X=" << x
393fda1c 3160 << "Y=" << p[0]
3161 << "Z=" << p[1]
3162 << "snp=" << p[2]
3163 << "tnd=" << p[3]
3164 << "crv=" << p[4]
68f9b6bd 3165 << "Yin=" << params[0]
3166 << "Zin=" << params[1]
3167 << "snpin=" << params[2]
3168 << "tndin=" << params[3]
3169 << "crvin=" << params[4]
393fda1c 3170 << "track.=" << &track
3171 << "\n";
3172 }
68f9b6bd 3173 if (nc < 30){
3174 UnsetTrackletsTrack(&track);
3175 return NULL;
3176 }
d20df6fc 3177 AliTRDtrackV1 *ptrTrack = SetTrack(&track);
4d6aee34 3178 ptrTrack->SetReconstructor(fkReconstructor);
48f8adf3 3179 ptrTrack->CookLabel(.9);
68f9b6bd 3180 for(Int_t il(kNPlanes); il--;){
3181 if(!(ptrTracklet = ptrTrack->GetTracklet(il))) continue;
3182 ptrTracklet->UseClusters();
3183 }
3184
d20df6fc 3185 // computes PID for track
3186 ptrTrack->CookPID();
3187 // update calibration references using this track
48f8adf3 3188 AliTRDCalibraFillHisto *calibra = AliTRDCalibraFillHisto::Instance();
e7542a7e 3189 if(!calibra){
3190 AliInfo("Could not get Calibra instance.");
3191 } else if(calibra->GetHisto2d()){
3192 calibra->UpdateHistogramsV1(ptrTrack);
48f8adf3 3193 }
d20df6fc 3194 return ptrTrack;
e4f2f73d 3195}
3196
0906e73e 3197
e4f2f73d 3198//____________________________________________________________________
68f9b6bd 3199Bool_t AliTRDtrackerV1::ImproveSeedQuality(AliTRDtrackingChamber **stack, AliTRDseedV1 *cseed, Double_t &chi2)
e4f2f73d 3200{
41702fec 3201 //
3202 // Sort tracklets according to "quality" and try to "improve" the first 4 worst
3203 //
3204 // Parameters :
3205 // layers : Array of propagation layers for a stack/supermodule
3206 // cseed : Array of 6 seeding tracklets which has to be improved
3207 //
f29f13a6 3208 // Output :
41702fec 3209 // cssed : Improved seeds
3210 //
3211 // Detailed description
3212 //
3213 // Iterative procedure in which new clusters are searched for each
3214 // tracklet seed such that the seed quality (see AliTRDseed::GetQuality())
3215 // can be maximized. If some optimization is found the old seeds are replaced.
3216 //
3217 // debug level: 7
3218 //
3219
3220 // make a local working copy
4d6aee34 3221 AliTRDtrackingChamber *chamber = NULL;
980d5a2a 3222 AliTRDseedV1 bseed[AliTRDgeometry::kNlayer];
3223
68f9b6bd 3224 Float_t quality(1.e3),
e7542a7e 3225 lQuality[AliTRDgeometry::kNlayer] = {1.e3, 1.e3, 1.e3, 1.e3, 1.e3, 1.e3};
980d5a2a 3226 Int_t rLayers(0);
3227 for(Int_t jLayer=AliTRDgeometry::kNlayer; jLayer--;){
3228 bseed[jLayer] = cseed[jLayer];
3229 if(!bseed[jLayer].IsOK()) continue;
3230 rLayers++;
3231 lQuality[jLayer] = bseed[jLayer].GetQuality(kTRUE);
3232 quality += lQuality[jLayer];
3233 }
ce42378b 3234 if (rLayers > 0) {
3235 quality /= rLayers;
3236 }
68f9b6bd 3237 AliDebug(2, Form("Start N[%d] Q[%f] chi2[%f]", rLayers, quality, chi2));
41702fec 3238
3239 for (Int_t iter = 0; iter < 4; iter++) {
980d5a2a 3240 // Try better cluster set
3241 Int_t nLayers(0); Float_t qualitynew(0.);
41f024fb 3242 Int_t indexes[4*AliTRDgeometry::kNlayer];
980d5a2a 3243 TMath::Sort(Int_t(AliTRDgeometry::kNlayer), lQuality, indexes, kFALSE);
3244 for(Int_t jLayer=AliTRDgeometry::kNlayer; jLayer--;) {
3245 Int_t bLayer = indexes[jLayer];
3246 bseed[bLayer].Reset("c");
41702fec 3247 if(!(chamber = stack[bLayer])) continue;
980d5a2a 3248 if(!bseed[bLayer].AttachClusters(chamber, kTRUE)) continue;
2eb10c34 3249 bseed[bLayer].Fit(1);
980d5a2a 3250 if(!bseed[bLayer].IsOK()) continue;
3251 nLayers++;
3252 lQuality[jLayer] = bseed[jLayer].GetQuality(kTRUE);
3253 qualitynew += lQuality[jLayer];
41702fec 3254 }
980d5a2a 3255 if(rLayers > nLayers){
3256 AliDebug(1, Form("Lost %d tracklets while improving.", rLayers-nLayers));
68f9b6bd 3257 return iter>0?kTRUE:kFALSE;
980d5a2a 3258 } else rLayers=nLayers;
68f9b6bd 3259 qualitynew /= rLayers;
980d5a2a 3260
68f9b6bd 3261 if(qualitynew > quality){
3262 AliDebug(4, Form("Quality[%f] worsen in iter[%d] to ref[%f].", qualitynew, iter, quality));
3263 return iter>0?kTRUE:kFALSE;
980d5a2a 3264 } else quality = qualitynew;
3265
3266 // try improve track parameters
68f9b6bd 3267 Float_t chi2new = FitTiltedRieman(bseed, kTRUE);
980d5a2a 3268 if(chi2new > chi2){
68f9b6bd 3269 AliDebug(4, Form("Chi2[%f] worsen in iter[%d] to ref[%f].", chi2new, iter, chi2));
3270 return iter>0?kTRUE:kFALSE;
980d5a2a 3271 } else chi2 = chi2new;
3272
3273 // store better tracklets
68f9b6bd 3274 for(Int_t jLayer=AliTRDgeometry::kNlayer; jLayer--;) cseed[jLayer]=bseed[jLayer];
3275 AliDebug(2, Form("Iter[%d] Q[%f] chi2[%f]", iter, quality, chi2));
980d5a2a 3276
41702fec 3277
2c7f43b6 3278 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 7 && fkReconstructor->IsDebugStreaming())
3279 ||AliTRDReconstructor::GetStreamLevel()>=7){
41702fec 3280 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
3281 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
3282 TLinearFitter *tiltedRieman = GetTiltedRiemanFitter();
a2fbb6ec 3283 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
41702fec 3284 cstreamer << "ImproveSeedQuality"
980d5a2a 3285 << "EventNumber=" << eventNumber
3286 << "CandidateNumber=" << candidateNumber
3287 << "Iteration=" << iter
68f9b6bd 3288 << "S0.=" << &cseed[0]
3289 << "S1.=" << &cseed[1]
3290 << "S2.=" << &cseed[2]
3291 << "S3.=" << &cseed[3]
3292 << "S4.=" << &cseed[4]
3293 << "S5.=" << &cseed[5]
980d5a2a 3294 << "FitterT.=" << tiltedRieman
3295 << "\n";
41702fec 3296 }
3297 } // Loop: iter
68f9b6bd 3298
3299 // we are sure that at least 4 tracklets are OK !
3300 return kTRUE;
e4f2f73d 3301}
3302
eb38ed55 3303//_________________________________________________________________________
68f9b6bd 3304Double_t AliTRDtrackerV1::CalculateTrackLikelihood(Double_t *chi2){
41702fec 3305 //
3306 // Calculates the Track Likelihood value. This parameter serves as main quality criterion for
3307 // the track selection
3308 // The likelihood value containes:
3309 // - The chi2 values from the both fitters and the chi2 values in z-direction from a linear fit
3310 // - The Sum of the Parameter |slope_ref - slope_fit|/Sigma of the tracklets
3311 // For all Parameters an exponential dependency is used
3312 //
3313 // Parameters: - Array of tracklets (AliTRDseedV1) related to the track candidate
3314 // - Array of chi2 values:
3315 // * Non-Constrained Tilted Riemann fit
3316 // * Vertex-Constrained Tilted Riemann fit
3317 // * z-Direction from Linear fit
3318 // Output: - The calculated track likelihood
3319 //
3320 // debug level 2
3321 //
41702fec 3322
68f9b6bd 3323 // Non-constrained Tilted Riemann
3324 Double_t likeChi2TR = TMath::Exp(-chi2[0] * 0.0078);
3325 // Constrained Tilted Riemann
3326 Double_t likeChi2TC(1.);
3327 if(chi2[1]>0.){
3328 likeChi2TC = TMath::Exp(-chi2[1] * 0.677);
3329 Double_t r = likeChi2TC/likeChi2TR;
3330 if(r>1.e2){;} // -> a primary track use TC
3331 else if(r<1.e2) // -> a secondary track use TR
3332 likeChi2TC =1.;
3333 else{;} // -> test not conclusive
3334 }
3335 // Chi2 only on Z direction
3336 Double_t likeChi2Z = TMath::Exp(-chi2[2] * 0.14);
3337 // Chi2 angular resolution
3338 Double_t likeChi2Phi= TMath::Exp(-chi2[3] * 3.23);
3339
3340 Double_t trackLikelihood = likeChi2Z * likeChi2TR * likeChi2TC * likeChi2Phi;
3341
3342 AliDebug(2, Form("Likelihood [%e]\n"
3343 " Rieman : chi2[%f] likelihood[%6.2e]\n"
3344 " Vertex : chi2[%f] likelihood[%6.2e]\n"
3345 " Z : chi2[%f] likelihood[%6.2e]\n"
3346 " Phi : chi2[%f] likelihood[%6.2e]"
3347 , trackLikelihood
3348 , chi2[0], likeChi2TR
3349 , chi2[1], likeChi2TC
3350 , chi2[2], likeChi2Z
3351 , chi2[3], likeChi2Phi
3352 ));
41702fec 3353
2c7f43b6 3354 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 2 && fkReconstructor->IsDebugStreaming())
3355 ||AliTRDReconstructor::GetStreamLevel()>=2){
41702fec 3356 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
3357 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
a2fbb6ec 3358 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
41702fec 3359 cstreamer << "CalculateTrackLikelihood0"
3360 << "EventNumber=" << eventNumber
3361 << "CandidateNumber=" << candidateNumber
3362 << "LikeChi2Z=" << likeChi2Z
3363 << "LikeChi2TR=" << likeChi2TR
3364 << "LikeChi2TC=" << likeChi2TC
f29f13a6 3365 << "LikeChi2Phi=" << likeChi2Phi
41702fec 3366 << "TrackLikelihood=" << trackLikelihood
3367 << "\n";
3368 }
6e39bde4 3369
41702fec 3370 return trackLikelihood;
e4f2f73d 3371}
3372
3373//____________________________________________________________________
91834b8d 3374Double_t AliTRDtrackerV1::CookLikelihood(AliTRDseedV1 *cseed, Int_t planes[4])
e4f2f73d 3375{
41702fec 3376 //
3377 // Calculate the probability of this track candidate.
3378 //
3379 // Parameters :
3380 // cseeds : array of candidate tracklets
3381 // planes : array of seeding planes (see seeding configuration)
3382 // chi2 : chi2 values (on the Z and Y direction) from the rieman fit of the track.
3383 //
3384 // Output :
3385 // likelihood value
3386 //
3387 // Detailed description
3388 //
3389 // The track quality is estimated based on the following 4 criteria:
3390 // 1. precision of the rieman fit on the Y direction (likea)
3391 // 2. chi2 on the Y direction (likechi2y)
3392 // 3. chi2 on the Z direction (likechi2z)
3393 // 4. number of attached clusters compared to a reference value
3394 // (see AliTRDrecoParam::fkFindable) (likeN)
3395 //
3396 // The distributions for each type of probabilities are given below as of
3397 // (date). They have to be checked to assure consistency of estimation.
3398 //
3399
3400 // ratio of the total number of clusters/track which are expected to be found by the tracker.
91834b8d 3401 Double_t chi2y = GetChi2Y(&cseed[0]);
3402 Double_t chi2z = GetChi2Z(&cseed[0]);
3403
8ae98148 3404 Float_t nclusters = 0.;
41702fec 3405 Double_t sumda = 0.;
3406 for(UChar_t ilayer = 0; ilayer < 4; ilayer++){
3407 Int_t jlayer = planes[ilayer];
3408 nclusters += cseed[jlayer].GetN2();
e3cf3d02 3409 sumda += TMath::Abs(cseed[jlayer].GetYfit(1) - cseed[jlayer].GetYref(1));
41702fec 3410 }
8ae98148 3411 nclusters *= .25;
3412
9e85cb05 3413 Double_t likea = TMath::Exp(-sumda * fkRecoParam->GetPhiSlope());
41702fec 3414 Double_t likechi2y = 0.0000000001;
9e85cb05 3415 if (fkReconstructor->IsCosmic() || chi2y < fkRecoParam->GetChi2YCut()) likechi2y += TMath::Exp(-TMath::Sqrt(chi2y) * fkRecoParam->GetChi2YSlope());
3416 Double_t likechi2z = TMath::Exp(-chi2z * fkRecoParam->GetChi2ZSlope());
3417 Double_t likeN = TMath::Exp(-(fkRecoParam->GetNMeanClusters() - nclusters) / fkRecoParam->GetNSigmaClusters());
41702fec 3418 Double_t like = likea * likechi2y * likechi2z * likeN;
3419
2c7f43b6 3420 if((fkRecoParam->GetStreamLevel(AliTRDrecoParam::kTracker) >= 2 && fkReconstructor->IsDebugStreaming())
3421 ||AliTRDReconstructor::GetStreamLevel()>=2){
41702fec 3422 Int_t eventNumber = AliTRDtrackerDebug::GetEventNumber();
3423 Int_t candidateNumber = AliTRDtrackerDebug::GetCandidateNumber();
4d6aee34 3424 Int_t nTracklets = 0; Float_t meanNcls = 0;
91834b8d 3425 for(Int_t iseed=0; iseed < kNPlanes; iseed++){
3426 if(!cseed[iseed].IsOK()) continue;
3427 nTracklets++;
4d6aee34 3428 meanNcls += cseed[iseed].GetN2();
91834b8d 3429 }
4d6aee34 3430 if(nTracklets) meanNcls /= nTracklets;
41702fec 3431 // The Debug Stream contains the seed
a2fbb6ec 3432 TTreeSRedirector &cstreamer = *fkReconstructor->GetDebugStream(AliTRDrecoParam::kTracker);
41702fec 3433 cstreamer << "CookLikelihood"
3434 << "EventNumber=" << eventNumber
3435 << "CandidateNumber=" << candidateNumber
3436 << "tracklet0.=" << &cseed[0]
3437 << "tracklet1.=" << &cseed[1]
3438 << "tracklet2.=" << &cseed[2]
3439 << "tracklet3.=" << &cseed[3]
3440 << "tracklet4.=" << &cseed[4]
3441 << "tracklet5.=" << &cseed[5]
3442 << "sumda=" << sumda
91834b8d 3443 << "chi2y=" << chi2y
3444 << "chi2z=" << chi2z
41702fec 3445 << "likea=" << likea
3446 << "likechi2y=" << likechi2y
3447 << "likechi2z=" << likechi2z
3448 << "nclusters=" << nclusters
3449 << "likeN=" << likeN
3450 << "like=" << like
4d6aee34 3451 << "meanncls=" << meanNcls
41702fec 3452 << "\n";
3453 }
3454
3455 return like;
e4f2f73d 3456}
3457
e4f2f73d 3458//____________________________________________________________________
0906e73e 3459void AliTRDtrackerV1::GetSeedingConfig(Int_t iconfig, Int_t planes[4])
e4f2f73d 3460{
41702fec 3461 //
3462 // Map seeding configurations to detector planes.
3463 //
3464 // Parameters :
3465 // iconfig : configuration index
3466 // planes : member planes of this configuration. On input empty.
3467 //
3468 // Output :
3469 // planes : contains the planes which are defining the configuration
3470 //
3471 // Detailed description
3472 //
3473 // Here is the list of seeding planes configurations together with
3474 // their topological classification:
3475 //
3476 // 0 - 5432 TQ 0
3477 // 1 - 4321 TQ 0
3478 // 2 - 3210 TQ 0
3479 // 3 - 5321 TQ 1
3480 // 4 - 4210 TQ 1
3481 // 5 - 5431 TQ 1
3482 // 6 - 4320 TQ 1
3483 // 7 - 5430 TQ 2
3484 // 8 - 5210 TQ 2
3485 // 9 - 5421 TQ 3
3486 // 10 - 4310 TQ 3
3487 // 11 - 5410 TQ 4
3488 // 12 - 5420 TQ 5
3489 // 13 - 5320 TQ 5
3490 // 14 - 5310 TQ 5
3491 //
3492 // The topologic quality is modeled as follows:
3493 // 1. The general model is define by the equation:
3494 // p(conf) = exp(-conf/2)
3495 // 2. According to the topologic classification, configurations from the same
3496 // class are assigned the agerage value over the model values.
3497 // 3. Quality values are normalized.
3498 //
3499 // The topologic quality distribution as function of configuration is given below:
3500 //Begin_Html
3501 // <img src="gif/topologicQA.gif">
3502 //End_Html
3503 //
3504
3505 switch(iconfig){
3506 case 0: // 5432 TQ 0
3507 planes[0] = 2;
3508 planes[1] = 3;
3509 planes[2] = 4;
3510 planes[3] = 5;
3511 break;
3512 case 1: // 4321 TQ 0
3513 planes[0] = 1;
3514 planes[1] = 2;
3515 planes[2] = 3;
3516 planes[3] = 4;
3517 break;
3518 case 2: // 3210 TQ 0
3519 planes[0] = 0;
3520 planes[1] = 1;
3521 planes[2] = 2;
3522 planes[3] = 3;
3523 break;
3524 case 3: // 5321 TQ 1
3525 planes[0] = 1;
3526 planes[1] = 2;
3527 planes[2] = 3;
3528 planes[3] = 5;
3529 break;
3530 case 4: // 4210 TQ 1
3531 planes[0] = 0;
3532 planes[1] = 1;
3533 planes[2] = 2;
3534 planes[3] = 4;
3535 break;
3536 case 5: // 5431 TQ 1
3537 planes[0] = 1;
3538 planes[1] = 3;
3539 planes[2] = 4;
3540 planes[3] = 5;
3541 break;
3542 case 6: // 4320 TQ 1
3543 planes[0] = 0;
3544 planes[1] = 2;
3545 planes[2] = 3;
3546 planes[3] = 4;
3547 break;
3548 case 7: // 5430 TQ 2
3549 planes[0] = 0;
3550 planes[1] = 3;
3551 planes[2] = 4;
3552 planes[3] = 5;
3553 break;
3554 case 8: // 5210 TQ 2
3555 planes[0] = 0;
3556 planes[1] = 1;
3557 planes[2] = 2;
3558 planes[3] = 5;
3559 break;
3560 case 9: // 5421 TQ 3
3561 planes[0] = 1;
3562 planes[1] = 2;
3563 planes[2] = 4;
3564 planes[3] = 5;
3565 break;
3566 case 10: // 4310 TQ 3
3567 planes[0] = 0;
3568 planes[1] = 1;
3569 planes[2] = 3;
3570 planes[3] = 4;
3571 break;
3572 case 11: // 5410 TQ 4
3573 planes[0] = 0;
3574 planes[1] = 1;
3575 planes[2] = 4;
3576 planes[3] = 5;
3577 break;
3578 case 12: // 5420 TQ 5
3579 planes[0] = 0;
3580 planes[1] = 2;
3581 planes[2] = 4;
3582 planes[3] = 5;
3583 break;
3584 case 13: // 5320 TQ 5
3585 planes[0] = 0;
3586 planes[1] = 2;
3587 planes[2] = 3;
3588 planes[3] = 5;
3589 break;
3590 case 14: // 5310 TQ 5
3591 planes[0] = 0;
3592 planes[1] = 1;
3593 planes[2] = 3;
3594 planes[3] = 5;
3595 break;
3596 }
e4f2f73d 3597}
3598
3599//____________________________________________________________________
0906e73e 3600void AliTRDtrackerV1::GetExtrapolationConfig(Int_t iconfig, Int_t planes[2])
e4f2f73d 3601{
41702fec 3602 //
3603 // Returns the extrapolation planes for a seeding configuration.
3604 //
3605 // Parameters :
3606 // iconfig : configuration index
3607 // planes : planes which are not in this configuration. On input empty.
3608 //
3609 // Output :
3610 // planes : contains the planes which are not in the configuration
3611 //
3612 // Detailed description
3613 //
3614
3615 switch(iconfig){
3616 case 0: // 5432 TQ 0
3617 planes[0] = 1;
3618 planes[1] = 0;
3619 break;
3620 case 1: // 4321 TQ 0
3621 planes[0] = 5;
3622 planes[1] = 0;
3623 break;
3624 case 2: // 3210 TQ 0
3625 planes[0] = 4;
3626 planes[1] = 5;
3627 break;
3628 case 3: // 5321 TQ 1
3629 planes[0] = 4;
3630 planes[1] = 0;
3631 break;
3632 case 4: // 4210 TQ 1
3633 planes[0] = 5;
3634 planes[1] = 3;
3635 break;
3636 case 5: // 5431 TQ 1
3637 planes[0] = 2;
3638 planes[1] = 0;
3639 break;
3640 case 6: // 4320 TQ 1
3641 planes[0] = 5;
3642 planes[1] = 1;
3643 break;
3644 case 7: // 5430 TQ 2
3645 planes[0] = 2;
3646 planes[1] = 1;
3647 break;
3648 case 8: // 5210 TQ 2
3649 planes[0] = 4;
3650 planes[1] = 3;
3651 break;
3652 case 9: // 5421 TQ 3
3653 planes[0] = 3;
3654 planes[1] = 0;
3655 break;
3656 case 10: // 4310 TQ 3
3657 planes[0] = 5;
3658 planes[1] = 2;
3659 break;
3660 case 11: // 5410 TQ 4
3661 planes[0] = 3;
3662 planes[1] = 2;
3663 break;
3664 case 12: // 5420 TQ 5
3665 planes[0] = 3;
3666 planes[1] = 1;
3667 break;
3668 case 13: // 5320 TQ 5
3669 planes[0] = 4;
3670 planes[1] = 1;
3671 break;
3672 case 14: // 5310 TQ 5
3673 planes[0] = 4;
3674 planes[1] = 2;
3675 break;
3676 }
e4f2f73d 3677}
eb38ed55 3678
3679//____________________________________________________________________
3680AliCluster* AliTRDtrackerV1::GetCluster(Int_t idx) const
3681{
971a356b 3682 if(!fClusters) return NULL;
41702fec 3683 Int_t ncls = fClusters->GetEntriesFast();
4d6aee34 3684 return idx >= 0 && idx < ncls ? (AliCluster*)fClusters->UncheckedAt(idx) : NULL;
eb38ed55 3685}
3686
3b57a3f7 3687//____________________________________________________________________
3688AliTRDseedV1* AliTRDtrackerV1::GetTracklet(Int_t idx) const
3689{
971a356b 3690 if(!fTracklets) return NULL;
41702fec 3691 Int_t ntrklt = fTracklets->GetEntriesFast();
4d6aee34 3692 return idx >= 0 && idx < ntrklt ? (AliTRDseedV1*)fTracklets->UncheckedAt(idx) : NULL;
3b57a3f7 3693}
3694
3695//____________________________________________________________________
3696AliKalmanTrack* AliTRDtrackerV1::GetTrack(Int_t idx) const
3697{
971a356b 3698 if(!fTracks) return NULL;
41702fec 3699 Int_t ntrk = fTracks->GetEntriesFast();
4d6aee34 3700 return idx >= 0 && idx < ntrk ? (AliKalmanTrack*)fTracks->UncheckedAt(idx) : NULL;
3b57a3f7 3701}
3702
6e39bde4 3703
eb38ed55 3704
fac58f00 3705// //_____________________________________________________________________________
3706// Int_t AliTRDtrackerV1::Freq(Int_t n, const Int_t *inlist
3707// , Int_t *outlist, Bool_t down)
3708// {
3709// //
3710// // Sort eleements according occurancy
3711// // The size of output array has is 2*n
3712// //
3713//
3714// if (n <= 0) {
3715// return 0;
3716// }
3717//
3718// Int_t *sindexS = new Int_t[n]; // Temporary array for sorting
3719// Int_t *sindexF = new Int_t[2*n];
3720// for (Int_t i = 0; i < n; i++) {
3721// sindexF[i] = 0;
3722// }
3723//
3724// TMath::Sort(n,inlist,sindexS,down);
3725//
3726// Int_t last = inlist[sindexS[0]];
3727// Int_t val = last;
3728// sindexF[0] = 1;
3729// sindexF[0+n] = last;
3730// Int_t countPos = 0;
3731//
3732// // Find frequency
3733// for (Int_t i = 1; i < n; i++) {
3734// val = inlist[sindexS[i]];
3735// if (last == val) {
3736// sindexF[countPos]++;
3737// }
3738// else {
3739// countPos++;
3740// sindexF[countPos+n] = val;
3741// sindexF[countPos]++;
3742// last = val;
3743// }
3744// }
3745// if (last == val) {
3746// countPos++;
3747// }
3748//
3749// // Sort according frequency
3750// TMath::Sort(countPos,sindexF,sindexS,kTRUE);
3751//
3752// for (Int_t i = 0; i < countPos; i++) {
3753// outlist[2*i ] = sindexF[sindexS[i]+n];
3754// outlist[2*i+1] = sindexF[sindexS[i]];
3755// }
3756//
3757// delete [] sindexS;
3758// delete [] sindexF;
3759//
3760// return countPos;
3761//
3762// }
bb56afff 3763
06b32d95 3764
d611c74f 3765//____________________________________________________________________
3766void AliTRDtrackerV1::ResetSeedTB()
3767{
3768// reset buffer for seeding time bin layers. If the time bin
3769// layers are not allocated this function allocates them
3770
3771 for(Int_t isl=0; isl<kNSeedPlanes; isl++){
3772 if(!fSeedTB[isl]) fSeedTB[isl] = new AliTRDchamberTimeBin();
3773 else fSeedTB[isl]->Clear();
3774 }
3775}
3776
e3cf3d02 3777
3778//_____________________________________________________________________________
4d6aee34 3779Float_t AliTRDtrackerV1::GetChi2Y(const AliTRDseedV1 * const tracklets) const
e3cf3d02 3780{
3781 // Calculates normalized chi2 in y-direction
3782 // chi2 = Sum chi2 / n_tracklets
3783
3784 Double_t chi2 = 0.; Int_t n = 0;
3785 for(Int_t ipl = kNPlanes; ipl--;){
3786 if(!tracklets[ipl].IsOK()) continue;
3787 chi2 += tracklets[ipl].GetChi2Y();
3788 n++;
3789 }
3790 return n ? chi2/n : 0.;
3791}
3792
bb56afff 3793//_____________________________________________________________________________
4d6aee34 3794Float_t AliTRDtrackerV1::GetChi2Z(const AliTRDseedV1 *const tracklets) const
bb56afff 3795{
91834b8d 3796 // Calculates normalized chi2 in z-direction
e3cf3d02 3797 // chi2 = Sum chi2 / n_tracklets
41702fec 3798
e3cf3d02 3799 Double_t chi2 = 0; Int_t n = 0;
3800 for(Int_t ipl = kNPlanes; ipl--;){
41702fec 3801 if(!tracklets[ipl].IsOK()) continue;
e3cf3d02 3802 chi2 += tracklets[ipl].GetChi2Z();
3803 n++;
41702fec 3804 }
e3cf3d02 3805 return n ? chi2/n : 0.;
bb56afff 3806}
8acca6a3 3807
68f9b6bd 3808//_____________________________________________________________________________
3809Float_t AliTRDtrackerV1::GetChi2Phi(const AliTRDseedV1 *const tracklets) const
3810{
3811 // Calculates normalized chi2 for angular resolution
3812 // chi2 = Sum chi2 / n_tracklets
3813
3814 Double_t chi2 = 0; Int_t n = 0;
3815 for (Int_t iLayer = 0; iLayer < kNPlanes; iLayer++) {
3816 if(!tracklets[iLayer].IsOK()) continue;
3817 chi2 += tracklets[iLayer].GetChi2Phi();
3818 n++;
3819 }
3820 return n ? chi2/n: 0.;
3821}
3822
6e39bde4 3823//____________________________________________________________________
4d6aee34 3824Float_t AliTRDtrackerV1::CalculateReferenceX(const AliTRDseedV1 *const tracklets){
6e39bde4 3825 //
3826 // Calculates the reference x-position for the tilted Rieman fit defined as middle
3827 // of the stack (middle between layers 2 and 3). For the calculation all the tracklets
3828 // are taken into account
3829 //
3830 // Parameters: - Array of tracklets(AliTRDseedV1)
3831 //
3832 // Output: - The reference x-position(Float_t)
3833 // Only kept for compatibility with the old code
3834 //
3835 Int_t nDistances = 0;
3836 Float_t meanDistance = 0.;
3837 Int_t startIndex = 5;
3838 for(Int_t il =5; il > 0; il--){
3839 if(tracklets[il].IsOK() && tracklets[il -1].IsOK()){
3840 Float_t xdiff = tracklets[il].GetX0() - tracklets[il -1].GetX0();
3841 meanDistance += xdiff;
3842 nDistances++;
3843 }
3844 if(tracklets[il].IsOK()) startIndex = il;
3845 }
3846 if(tracklets[0].IsOK()) startIndex = 0;
3847 if(!nDistances){
3848 // We should normally never get here
3849 Float_t xpos[2]; memset(xpos, 0, sizeof(Float_t) * 2);
3850 Int_t iok = 0, idiff = 0;
3851 // This attempt is worse and should be avoided:
3852 // check for two chambers which are OK and repeat this without taking the mean value
3853 // Strategy avoids a division by 0;
3854 for(Int_t il = 5; il >= 0; il--){
3855 if(tracklets[il].IsOK()){
3856 xpos[iok] = tracklets[il].GetX0();
3857 iok++;
3858 startIndex = il;
3859 }
3860 if(iok) idiff++; // to get the right difference;
3861 if(iok > 1) break;
3862 }
3863 if(iok > 1){
3864 meanDistance = (xpos[0] - xpos[1])/idiff;
3865 }
3866 else{
3867 // we have do not even have 2 layers which are OK? The we do not need to fit at all
3868 return 331.;
3869 }
3870 }
3871 else{
3872 meanDistance /= nDistances;
3873 }
3874 return tracklets[startIndex].GetX0() + (2.5 - startIndex) * meanDistance - 0.5 * (AliTRDgeometry::AmThick() + AliTRDgeometry::DrThick());
3875}
3876
3877//_____________________________________________________________________________
4d6aee34 3878Double_t AliTRDtrackerV1::FitTiltedRiemanV1(AliTRDseedV1 *const tracklets){
6e39bde4 3879 //
3880 // Track Fitter Function using the new class implementation of
3881 // the Rieman fit
3882 //
3883 AliTRDtrackFitterRieman fitter;
3884 fitter.SetRiemanFitter(GetTiltedRiemanFitter());
3885 fitter.Reset();
3886 for(Int_t il = 0; il < AliTRDgeometry::kNlayer; il++) fitter.SetTracklet(il, &tracklets[il]);
3887 Double_t chi2 = fitter.Eval();
3888 // Update the tracklets
3889 Double_t cov[15]; Double_t x0;
3890 memset(cov, 0, sizeof(Double_t) * 15);
3891 for(Int_t il = 0; il < AliTRDgeometry::kNlayer; il++){
3892 x0 = tracklets[il].GetX0();
3893 tracklets[il].SetYref(0, fitter.GetYat(x0));
3894 tracklets[il].SetZref(0, fitter.GetZat(x0));
3895 tracklets[il].SetYref(1, fitter.GetDyDxAt(x0));
3896 tracklets[il].SetZref(1, fitter.GetDzDx());
3897 tracklets[il].SetC(fitter.GetCurvature());
3898 fitter.GetCovAt(x0, cov);
3899 tracklets[il].SetCovRef(cov);
3900 tracklets[il].SetChi2(chi2);
3901 }
3902 return chi2;
3903}
3904
68f9b6bd 3905//____________________________________________________________________
3906void AliTRDtrackerV1::UnsetTrackletsTrack(const AliTRDtrackV1 * const track)
3907{
d8069611 3908// Remove tracklets from tracker list attached to "track"
68f9b6bd 3909 Int_t idx(-1);
3910 for(Int_t il(0); il<kNPlanes; il++){
3911 if((idx = track->GetTrackletIndex(il)) < 0) continue;
3912 delete (fTracklets->RemoveAt(idx));
3913 }
3914}
3915
3916
8acca6a3 3917///////////////////////////////////////////////////////
3918// //
3919// Resources of class AliTRDLeastSquare //
3920// //
3921///////////////////////////////////////////////////////
3922
3923//_____________________________________________________________________________
3924AliTRDtrackerV1::AliTRDLeastSquare::AliTRDLeastSquare(){
903326c1 3925//
3926// Constructor of the nested class AliTRDtrackFitterLeastSquare
3927//
3928// Fast solving linear regresion in 2D
0323ef61 3929// y=a + bx
903326c1 3930// The data members have the following meaning
0323ef61 3931// fParams[0] : a
3932// fParams[1] : b
903326c1 3933//
3934// fSums[0] : S
3935// fSums[1] : Sx
3936// fSums[2] : Sy
3937// fSums[3] : Sxy
3938// fSums[4] : Sxx
3939// fSums[5] : Syy
3940//
0323ef61 3941// fCovarianceMatrix[0] : s2a
3942// fCovarianceMatrix[1] : s2b
903326c1 3943// fCovarianceMatrix[2] : cov(ab)
3944
41702fec 3945 memset(fParams, 0, sizeof(Double_t) * 2);
341512a4 3946 memset(fSums, 0, sizeof(Double_t) * 6);
41702fec 3947 memset(fCovarianceMatrix, 0, sizeof(Double_t) * 3);
8acca6a3 3948
3949}
3950
3951//_____________________________________________________________________________
4d6aee34 3952void AliTRDtrackerV1::AliTRDLeastSquare::AddPoint(const Double_t *const x, Double_t y, Double_t sigmaY){
41702fec 3953 //
3954 // Adding Point to the fitter
3955 //
5f1ae1e7 3956
2ed81ab2 3957 Double_t weight = 1/(sigmaY > 1e-9 ? sigmaY : 1e-9);
3958 weight *= weight;
4d6aee34 3959 const Double_t &xpt = *x;
41702fec 3960 // printf("Adding point x = %f, y = %f, sigma = %f\n", xpt, y, sigmaY);
3961 fSums[0] += weight;
3962 fSums[1] += weight * xpt;
3963 fSums[2] += weight * y;
3964 fSums[3] += weight * xpt * y;
3965 fSums[4] += weight * xpt * xpt;
3966 fSums[5] += weight * y * y;
8acca6a3 3967}
3968
3969//_____________________________________________________________________________
4d6aee34 3970void AliTRDtrackerV1::AliTRDLeastSquare::RemovePoint(const Double_t *const x, Double_t y, Double_t sigmaY){
41702fec 3971 //
3972 // Remove Point from the sample
3973 //
5f1ae1e7 3974
2ed81ab2 3975 Double_t weight = 1/(sigmaY > 1e-9 ? sigmaY : 1e-9);
3976 weight *= weight;
4d6aee34 3977 const Double_t &xpt = *x;
41702fec 3978 fSums[0] -= weight;
3979 fSums[1] -= weight * xpt;
3980 fSums[2] -= weight * y;
3981 fSums[3] -= weight * xpt * y;
3982 fSums[4] -= weight * xpt * xpt;
3983 fSums[5] -= weight * y * y;
8acca6a3 3984}
3985
3986//_____________________________________________________________________________
903326c1 3987Bool_t AliTRDtrackerV1::AliTRDLeastSquare::Eval(){
41702fec 3988 //
3989 // Evaluation of the fit:
3990 // Calculation of the parameters
3991 // Calculation of the covariance matrix
3992 //
3993
903326c1 3994 Double_t det = fSums[0] * fSums[4] - fSums[1] *fSums[1];
d8069611 3995 if(TMath::Abs(det)<1.e-30) return kFALSE;
aec26713 3996
41702fec 3997 // for(Int_t isum = 0; isum < 5; isum++)
3998 // printf("fSums[%d] = %f\n", isum, fSums[isum]);
3999 // printf("denominator = %f\n", denominator);
903326c1 4000 fParams[0] = (fSums[2] * fSums[4] - fSums[1] * fSums[3])/det;
4001 fParams[1] = (fSums[0] * fSums[3] - fSums[1] * fSums[2])/det;
41702fec 4002 // printf("fParams[0] = %f, fParams[1] = %f\n", fParams[0], fParams[1]);
4003
4004 // Covariance matrix
0323ef61 4005 Double_t den = fSums[0]*fSums[4] - fSums[1]*fSums[1];
4006 fCovarianceMatrix[0] = fSums[4] / den;
4007 fCovarianceMatrix[1] = fSums[0] / den;
4008 fCovarianceMatrix[2] = -fSums[1] / den;
4009/* fCovarianceMatrix[0] = fSums[4] / fSums[0] - fSums[1] * fSums[1] / (fSums[0] * fSums[0]);
2ed81ab2 4010 fCovarianceMatrix[1] = fSums[5] / fSums[0] - fSums[2] * fSums[2] / (fSums[0] * fSums[0]);
0323ef61 4011 fCovarianceMatrix[2] = fSums[3] / fSums[0] - fSums[1] * fSums[2] / (fSums[0] * fSums[0]);*/
4012
4013
4014
903326c1 4015 return kTRUE;
8acca6a3 4016}
4017
46b6abd7 4018//_____________________________________________________________________________
4d6aee34 4019Double_t AliTRDtrackerV1::AliTRDLeastSquare::GetFunctionValue(const Double_t *const xpos) const {
41702fec 4020 //
4021 // Returns the Function value of the fitted function at a given x-position
4022 //
4023 return fParams[0] + fParams[1] * (*xpos);
46b6abd7 4024}
4025
4026//_____________________________________________________________________________
4027void AliTRDtrackerV1::AliTRDLeastSquare::GetCovarianceMatrix(Double_t *storage) const {
41702fec 4028 //
4029 // Copies the values of the covariance matrix into the storage
4030 //
4031 memcpy(storage, fCovarianceMatrix, sizeof(Double_t) * 3);
46b6abd7 4032}
4033
6e39bde4 4034//_____________________________________________________________________________
4035void AliTRDtrackerV1::AliTRDLeastSquare::Reset(){
4036 //
4037 // Reset the fitter
4038 //
4039 memset(fParams, 0, sizeof(Double_t) * 2);
4040 memset(fCovarianceMatrix, 0, sizeof(Double_t) * 3);
4041 memset(fSums, 0, sizeof(Double_t) * 6);
4042}
4043
4044///////////////////////////////////////////////////////
4045// //
4046// Resources of class AliTRDtrackFitterRieman //
4047// //
4048///////////////////////////////////////////////////////
4049
4050//_____________________________________________________________________________
4051AliTRDtrackerV1::AliTRDtrackFitterRieman::AliTRDtrackFitterRieman():
4052 fTrackFitter(NULL),
4053 fZfitter(NULL),
4054 fCovarPolY(NULL),
4055 fCovarPolZ(NULL),
4056 fXref(0.),
4057 fSysClusterError(0.)
4058{
4059 //
4060 // Default constructor
4061 //
4062 fZfitter = new AliTRDLeastSquare;
4063 fCovarPolY = new TMatrixD(3,3);
4064 fCovarPolZ = new TMatrixD(2,2);
4065 memset(fTracklets, 0, sizeof(AliTRDseedV1 *) * 6);
4066 memset(fParameters, 0, sizeof(Double_t) * 5);
4067 memset(fSumPolY, 0, sizeof(Double_t) * 5);
4068 memset(fSumPolZ, 0, sizeof(Double_t) * 2);
4069}
4070
4071//_____________________________________________________________________________
4072AliTRDtrackerV1::AliTRDtrackFitterRieman::~AliTRDtrackFitterRieman(){
4073 //
4074 // Destructor
4075 //
4076 if(fZfitter) delete fZfitter;
4077 if(fCovarPolY) delete fCovarPolY;
4078 if(fCovarPolZ) delete fCovarPolZ;
4079}
4080
4081//_____________________________________________________________________________
4082void AliTRDtrackerV1::AliTRDtrackFitterRieman::Reset(){
4083 //
4084 // Reset the Fitter
4085 //
4086 if(fTrackFitter){
4087 fTrackFitter->StoreData(kTRUE);
4088 fTrackFitter->ClearPoints();
4089 }
4090 if(fZfitter){
4091 fZfitter->Reset();
4092 }
4093 fXref = 0.;
4094 memset(fTracklets, 0, sizeof(AliTRDseedV1 *) * AliTRDgeometry::kNlayer);
4095 memset(fParameters, 0, sizeof(Double_t) * 5);
4096 memset(fSumPolY, 0, sizeof(Double_t) * 5);
4097 memset(fSumPolZ, 0, sizeof(Double_t) * 2);
4098 for(Int_t irow = 0; irow < fCovarPolY->GetNrows(); irow++)
4099 for(Int_t icol = 0; icol < fCovarPolY->GetNcols(); icol++){
4100 (*fCovarPolY)(irow, icol) = 0.;
4101 if(irow < 2 && icol < 2)
4102 (*fCovarPolZ)(irow, icol) = 0.;
4103 }
4104}
4105
4106//_____________________________________________________________________________
4107void AliTRDtrackerV1::AliTRDtrackFitterRieman::SetTracklet(Int_t itr, AliTRDseedV1 *tracklet){
4108 //
4109 // Add tracklet into the fitter
4110 //
4111 if(itr >= AliTRDgeometry::kNlayer) return;
4112 fTracklets[itr] = tracklet;
4113}
4114
4115//_____________________________________________________________________________
4116Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::Eval(){
4117 //
4118 // Perform the fit
4119 // 1. Apply linear transformation and store points in the fitter
4120 // 2. Evaluate the fit
4121 // 3. Check if the result of the fit in z-direction is reasonable
4122 // if not
4123 // 3a. Fix the parameters 3 and 4 with the results of a simple least
4124 // square fit
4125 // 3b. Redo the fit with the fixed parameters
4126 // 4. Store fit results (parameters and errors)
4127 //
4128 if(!fTrackFitter){
4129 return 1e10;
4130 }
4131 fXref = CalculateReferenceX();
4132 for(Int_t il = 0; il < AliTRDgeometry::kNlayer; il++) UpdateFitters(fTracklets[il]);
4133 if(!fTrackFitter->GetNpoints()) return 1e10;
4134 // perform the fit
4135 fTrackFitter->Eval();
4136 fZfitter->Eval();
4137 fParameters[3] = fTrackFitter->GetParameter(3);
4138 fParameters[4] = fTrackFitter->GetParameter(4);
4139 if(!CheckAcceptable(fParameters[3], fParameters[4])) {
4140 fTrackFitter->FixParameter(3, fZfitter->GetFunctionValue(&fXref));
4141 fTrackFitter->FixParameter(4, fZfitter->GetFunctionParameter(1));
4142 fTrackFitter->Eval();
4143 fTrackFitter->ReleaseParameter(3);
4144 fTrackFitter->ReleaseParameter(4);
4145 fParameters[3] = fTrackFitter->GetParameter(3);
4146 fParameters[4] = fTrackFitter->GetParameter(4);
4147 }
4148 // Update the Fit Parameters and the errors
4149 fParameters[0] = fTrackFitter->GetParameter(0);
4150 fParameters[1] = fTrackFitter->GetParameter(1);
4151 fParameters[2] = fTrackFitter->GetParameter(2);
4152
4153 // Prepare Covariance estimation
4154 (*fCovarPolY)(0,0) = fSumPolY[0]; (*fCovarPolY)(1,1) = fSumPolY[2]; (*fCovarPolY)(2,2) = fSumPolY[4];
4155 (*fCovarPolY)(1,0) = (*fCovarPolY)(0,1) = fSumPolY[1];
4156 (*fCovarPolY)(2,0) = (*fCovarPolY)(0,2) = fSumPolY[2];
4157 (*fCovarPolY)(2,1) = (*fCovarPolY)(1,2) = fSumPolY[3];
4158 fCovarPolY->Invert();
4159 (*fCovarPolZ)(0,0) = fSumPolZ[0]; (*fCovarPolZ)(1,1) = fSumPolZ[2];
4160 (*fCovarPolZ)(1,0) = (*fCovarPolZ)(0,1) = fSumPolZ[1];
4161 fCovarPolZ->Invert();
4162 return fTrackFitter->GetChisquare() / fTrackFitter->GetNpoints();
4163}
4164
4165//_____________________________________________________________________________
33ab3872 4166void AliTRDtrackerV1::AliTRDtrackFitterRieman::UpdateFitters(const AliTRDseedV1 * const tracklet){
6e39bde4 4167 //
4168 // Does the transformations and updates the fitters
4169 // The following transformation is applied
4170 //
4171 AliTRDcluster *cl = NULL;
4172 Double_t x, y, z, dx, t, w, we, yerr, zerr;
4173 Double_t uvt[4];
4174 if(!tracklet || !tracklet->IsOK()) return;
4175 Double_t tilt = tracklet->GetTilt();
4176 for(Int_t itb = 0; itb < AliTRDseedV1::kNclusters; itb++){
4177 if(!(cl = tracklet->GetClusters(itb))) continue;
4178 if(!cl->IsInChamber()) continue;
4179 if (!tracklet->IsUsable(itb)) continue;
4180 x = cl->GetX();
4181 y = cl->GetY();
4182 z = cl->GetZ();
4183 dx = x - fXref;
4184 // Transformation
4185 t = 1./(x*x + y*y);
4186 uvt[0] = 2. * x * t;
4187 uvt[1] = t;
4188 uvt[2] = 2. * tilt * t;
4189 uvt[3] = 2. * tilt * dx * t;
4190 w = 2. * (y + tilt*z) * t;
4191 // error definition changes for the different calls
4192 we = 2. * t;
4193 we *= TMath::Sqrt(cl->GetSigmaY2()+tilt*tilt*cl->GetSigmaZ2());
4194 // Update sums for error calculation
4195 yerr = 1./(TMath::Sqrt(cl->GetSigmaY2()) + fSysClusterError);
4196 yerr *= yerr;
4197 zerr = 1./cl->GetSigmaZ2();
4198 for(Int_t ipol = 0; ipol < 5; ipol++){
4199 fSumPolY[ipol] += yerr;
4200 yerr *= x;
4201 if(ipol < 3){
4202 fSumPolZ[ipol] += zerr;
4203 zerr *= x;
4204 }
4205 }
4206 fTrackFitter->AddPoint(uvt, w, we);
4207 fZfitter->AddPoint(&x, z, static_cast<Double_t>(TMath::Sqrt(cl->GetSigmaZ2())));
4208 }
4209}
4210
4211//_____________________________________________________________________________
4212Bool_t AliTRDtrackerV1::AliTRDtrackFitterRieman::CheckAcceptable(Double_t offset, Double_t slope){
4213 //
4214 // Check whether z-results are acceptable
4215 // Definition: Distance between tracklet fit and track fit has to be
4216 // less then half a padlength
4217 // Point of comparision is at the anode wire
4218 //
4219 Bool_t acceptablez = kTRUE;
4220 Double_t zref = 0.0;
4221 for (Int_t iLayer = 0; iLayer < kNPlanes; iLayer++) {
4222 if(!fTracklets[iLayer]->IsOK()) continue;
4223 zref = offset + slope * (fTracklets[iLayer]->GetX0() - fXref);
4224 if (TMath::Abs(fTracklets[iLayer]->GetZfit(0) - zref) > fTracklets[iLayer]->GetPadLength() * 0.5 + 1.0)
4225 acceptablez = kFALSE;
4226 }
4227 return acceptablez;
4228}
4229
4230//_____________________________________________________________________________
4231Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::GetYat(Double_t x) const {
4232 //
4233 // Calculate y position out of the track parameters
4234 // y: R^2 = (x - x0)^2 + (y - y0)^2
4235 // => y = y0 +/- Sqrt(R^2 - (x - x0)^2)
4236 // R = Sqrt() = 1/Curvature
4237 // => y = y0 +/- Sqrt(1/Curvature^2 - (x - x0)^2)
4238 //
4239 Double_t y = 0;
4240 Double_t disc = (x * fParameters[0] + fParameters[1]);
4241 disc = 1 - fParameters[0]*fParameters[2] + fParameters[1]*fParameters[1] - disc*disc;
4242 if (disc >= 0) {
4243 disc = TMath::Sqrt(disc);
4244 y = (1.0 - disc) / fParameters[0];
4245 }
4246 return y;
4247}
4248
4249//_____________________________________________________________________________
4250Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::GetZat(Double_t x) const {
4251 //
4252 // Return z position for a given x position
4253 // Simple linear function
4254 //
4255 return fParameters[3] + fParameters[4] * (x - fXref);
4256}
4257
4258//_____________________________________________________________________________
4259Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::GetDyDxAt(Double_t x) const {
4260 //
4261 // Calculate dydx at a given radial position out of the track parameters
4262 // dy: R^2 = (x - x0)^2 + (y - y0)^2
4263 // => y = +/- Sqrt(R^2 - (x - x0)^2) + y0
4264 // => dy/dx = (x - x0)/Sqrt(R^2 - (x - x0)^2)
4265 // Curvature: cr = 1/R = a/Sqrt(1 + b^2 - c*a)
4266 // => dy/dx = (x - x0)/(1/(cr^2) - (x - x0)^2)
4267 //
4268 Double_t x0 = -fParameters[1] / fParameters[0];
4269 Double_t curvature = GetCurvature();
4270 Double_t dy = 0;
4271 if (-fParameters[2] * fParameters[0] + fParameters[1] * fParameters[1] + 1 > 0) {
4272 if (1.0/(curvature * curvature) - (x - x0) * (x - x0) > 0.0) {
4273 Double_t yderiv = (x - x0) / TMath::Sqrt(1.0/(curvature * curvature) - (x - x0) * (x - x0));
4274 if (fParameters[0] < 0) yderiv *= -1.0;
4275 dy = yderiv;
4276 }
4277 }
4278 return dy;
4279}
4280
4281//_____________________________________________________________________________
4282Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::GetCurvature() const {
4283 //
4284 // Calculate track curvature
4285 //
4286 //
4287 Double_t curvature = 1.0 + fParameters[1]*fParameters[1] - fParameters[2]*fParameters[0];
4288 if (curvature > 0.0)
4289 curvature = fParameters[0] / TMath::Sqrt(curvature);
4290 return curvature;
4291}
4292
4293//_____________________________________________________________________________
4294void AliTRDtrackerV1::AliTRDtrackFitterRieman::GetCovAt(Double_t x, Double_t *cov) const {
4295 //
4296 // Error Definition according to gauss error propagation
4297 //
4298 TMatrixD transform(3,3);
4299 transform(0,0) = transform(1,1) = transform(2,2) = 1;
4300 transform(0,1) = transform(1,2) = x;
4301 transform(0,2) = x*x;
4302 TMatrixD covariance(transform, TMatrixD::kMult, *fCovarPolY);
4303 covariance *= transform.T();
4304 cov[0] = covariance(0,0);
4305 TMatrixD transformZ(2,2);
4306 transformZ(0,0) = transformZ(1,1) = 1;
4307 transformZ(0,1) = x;
4308 TMatrixD covarZ(transformZ, TMatrixD::kMult, *fCovarPolZ);
4309 covarZ *= transformZ.T();
4310 cov[1] = covarZ(0,0);
4311 cov[2] = 0;
4312}
4313
4314//____________________________________________________________________
4315Double_t AliTRDtrackerV1::AliTRDtrackFitterRieman::CalculateReferenceX(){
4316 //
4317 // Calculates the reference x-position for the tilted Rieman fit defined as middle
4318 // of the stack (middle between layers 2 and 3). For the calculation all the tracklets
4319 // are taken into account
4320 //
4321 // Parameters: - Array of tracklets(AliTRDseedV1)
4322 //
4323 // Output: - The reference x-position(Float_t)
4324 //
4325 Int_t nDistances = 0;
4326 Float_t meanDistance = 0.;
4327 Int_t startIndex = 5;
4328 for(Int_t il =5; il > 0; il--){
4329 if(fTracklets[il]->IsOK() && fTracklets[il -1]->IsOK()){
4330 Float_t xdiff = fTracklets[il]->GetX0() - fTracklets[il -1]->GetX0();
4331 meanDistance += xdiff;
4332 nDistances++;
4333 }
4334 if(fTracklets[il]->IsOK()) startIndex = il;
4335 }
4336 if(fTracklets[0]->IsOK()) startIndex = 0;
4337 if(!nDistances){
4338 // We should normally never get here
4339 Float_t xpos[2]; memset(xpos, 0, sizeof(Float_t) * 2);
4340 Int_t iok = 0, idiff = 0;
4341 // This attempt is worse and should be avoided:
4342 // check for two chambers which are OK and repeat this without taking the mean value
4343 // Strategy avoids a division by 0;
4344 for(Int_t il = 5; il >= 0; il--){
4345 if(fTracklets[il]->IsOK()){
4346 xpos[iok] = fTracklets[il]->GetX0();
4347 iok++;
4348 startIndex = il;
4349 }
4350 if(iok) idiff++; // to get the right difference;
4351 if(iok > 1) break;
4352 }
4353 if(iok > 1){
4354 meanDistance = (xpos[0] - xpos[1])/idiff;
4355 }
4356 else{
4357 // we have do not even have 2 layers which are OK? The we do not need to fit at all
4358 return 331.;
4359 }
4360 }
4361 else{
4362 meanDistance /= nDistances;
4363 }
4364 return fTracklets[startIndex]->GetX0() + (2.5 - startIndex) * meanDistance - 0.5 * (AliTRDgeometry::AmThick() + AliTRDgeometry::DrThick());
4365}