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b0f5e3fc 1/**************************************************************************
2 * Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
3 * *
4 * Author: The ALICE Off-line Project. *
5 * Contributors are mentioned in the code where appropriate. *
6 * *
7 * Permission to use, copy, modify and distribute this software and its *
8 * documentation strictly for non-commercial purposes is hereby granted *
9 * without fee, provided that the above copyright notice appears in all *
10 * copies and that both the copyright notice and this permission notice *
11 * appear in the supporting documentation. The authors make no claims *
12 * about the suitability of this software for any purpose. It is *
13 * provided "as is" without express or implied warranty. *
14 **************************************************************************/
5c5273c2 15
88cb7938 16/* $Id$ */
b0f5e3fc 17
4ae5bbc4 18#include <Riostream.h>
b0f5e3fc 19#include <stdlib.h>
20#include <stdio.h>
29e923a3 21#include <cstring>
1ca7869b 22
ece86d9a 23#include <TCanvas.h>
24#include <TF1.h>
1ca7869b 25#include <TH1.h>
26#include <TFile.h>
e939a978 27#include <TRandom.h>
a1e17193 28#include <TROOT.h>
e8189707 29#include "AliITS.h"
e8189707 30#include "AliITSMapA2.h"
e8189707 31#include "AliITSRawData.h"
f77f13c8 32#include "AliITSdigitSPD.h"
33#include "AliITSetfSDD.h"
f77f13c8 34#include "AliITSmodule.h"
bee7f138 35#include "AliITShit.h"
f77f13c8 36#include "AliITSpList.h"
fcf95fc7 37#include "AliITSCalibrationSDD.h"
1ca7869b 38#include "AliITSsimulationSDD.h"
f77f13c8 39#include "AliLog.h"
40#include "AliRun.h"
b0f5e3fc 41
b0f5e3fc 42ClassImp(AliITSsimulationSDD)
43////////////////////////////////////////////////////////////////////////
8ba39da9 44// Version: 0 //
45// Written by Piergiorgio Cerello //
46// November 23 1999 //
47// //
48// AliITSsimulationSDD is the simulation of SDDs. //
49////////////////////////////////////////////////////////////////////////
50
8a33ae9e 51//______________________________________________________________________
aacedc3e 52AliITSsimulationSDD::AliITSsimulationSDD():
53AliITSsimulation(),
54fITS(0),
55fHitMap2(0),
56fHitSigMap2(0),
57fHitNoiMap2(0),
aacedc3e 58fElectronics(0),
59fInZR(0),
60fInZI(0),
61fOutZR(0),
62fOutZI(0),
63fAnodeFire(0),
64fHis(0),
aacedc3e 65fFlag(kFALSE),
aacedc3e 66fCrosstalkFlag(kFALSE),
67fDoFFT(1),
68fNofMaps(0),
69fMaxNofSamples(0),
70fScaleSize(0){
71 // Default constructor
aacedc3e 72 SetPerpendTracksFlag();
73 SetCrosstalkFlag();
74 SetDoFFT();
b0f5e3fc 75}
8a33ae9e 76//______________________________________________________________________
7537d03c 77AliITSsimulationSDD::AliITSsimulationSDD(const AliITSsimulationSDD &source) :
78 AliITSsimulation(source),
79fITS(source.fITS),
80fHitMap2(source.fHitMap2),
81fHitSigMap2(source.fHitSigMap2),
82fHitNoiMap2(source.fHitNoiMap2),
7537d03c 83fElectronics(source.fElectronics),
84fInZR(source.fInZR),
85fInZI(source.fInZI),
86fOutZR(source.fOutZR),
87fOutZI(source.fOutZI),
88fAnodeFire(source.fAnodeFire),
89fHis(source.fHis),
7537d03c 90fFlag(source.fFlag),
7537d03c 91fCrosstalkFlag(source.fCrosstalkFlag),
92fDoFFT(source.fDoFFT),
93fNofMaps(source.fNofMaps),
94fMaxNofSamples(source.fMaxNofSamples),
95fScaleSize(source.fScaleSize){
aacedc3e 96 // Copy constructor to satify Coding roules only.
8a33ae9e 97
b0f5e3fc 98}
8a33ae9e 99//______________________________________________________________________
d2f55a22 100AliITSsimulationSDD& AliITSsimulationSDD::operator=(const AliITSsimulationSDD &src){
101 // Assignment operator to satify Coding roules only.
102
103 if(this==&src) return *this;
104 Error("AliITSsimulationSDD","Not allowed to make a = with "
105 "AliITSsimulationSDD Using default creater instead");
106 return *this ;
107}
85f5e9c2 108/*
d2f55a22 109//______________________________________________________________________
5402d9ca 110AliITSsimulation& AliITSsimulationSDD::operator=(const AliITSsimulation &src){
aacedc3e 111 // Assignment operator to satify Coding roules only.
8a33ae9e 112
aacedc3e 113 if(this==&src) return *this;
114 Error("AliITSsimulationSSD","Not allowed to make a = with "
115 "AliITSsimulationSDD Using default creater instead");
116 return *this ;
b0f5e3fc 117}
85f5e9c2 118*/
8a33ae9e 119//______________________________________________________________________
8ba39da9 120AliITSsimulationSDD::AliITSsimulationSDD(AliITSDetTypeSim* dettyp):
121AliITSsimulation(dettyp),
aacedc3e 122fITS(0),
123fHitMap2(0),
124fHitSigMap2(0),
125fHitNoiMap2(0),
aacedc3e 126fElectronics(0),
127fInZR(0),
128fInZI(0),
129fOutZR(0),
130fOutZI(0),
131fAnodeFire(0),
132fHis(0),
aacedc3e 133fFlag(kFALSE),
aacedc3e 134fCrosstalkFlag(kFALSE),
135fDoFFT(1),
136fNofMaps(0),
137fMaxNofSamples(0),
138fScaleSize(0){
f45f6658 139 // Default Constructor
140 Init();
c7a4dac0 141}
142//______________________________________________________________________
aacedc3e 143void AliITSsimulationSDD::Init(){
144 // Standard Constructor
145
dee45d79 146 AliITSsegmentationSDD* seg = (AliITSsegmentationSDD*)GetSegmentationModel(1);
147 fScaleSize = ScaleFourier(seg);
aacedc3e 148 SetPerpendTracksFlag();
149 SetCrosstalkFlag();
150 SetDoFFT();
aacedc3e 151
cd2a0045 152 AliITSSimuParam* simpar = fDetType->GetSimuParam();
8ba39da9 153 fpList = new AliITSpList( seg->Npz(),
154 fScaleSize*seg->Npx() );
155 fHitSigMap2 = new AliITSMapA2(seg,fScaleSize,1);
156 fHitNoiMap2 = new AliITSMapA2(seg,fScaleSize,1);
aacedc3e 157 fHitMap2 = fHitSigMap2;
158
8ba39da9 159 fNofMaps = seg->Npz();
160 fMaxNofSamples = seg->Npx();
aacedc3e 161 fAnodeFire = new Bool_t [fNofMaps];
43217ad9 162
8ba39da9 163 Float_t sddWidth = seg->Dz();
f6b6d58e 164 Float_t anodePitch = seg->Dpz(0);
165 Double_t timeStep = (Double_t)seg->Dpx(0);
aacedc3e 166
167 if(anodePitch*(fNofMaps/2) > sddWidth) {
a72dbdfe 168 AliWarning(Form("Too many anodes %d or too big pitch %f ",
169 fNofMaps/2,anodePitch));
aacedc3e 170 } // end if
b0f5e3fc 171
b0f5e3fc 172
aacedc3e 173 fElectronics = new AliITSetfSDD(timeStep/fScaleSize,
cd2a0045 174 simpar->GetSDDElectronics());
b0f5e3fc 175
aacedc3e 176
aacedc3e 177 fITS = (AliITS*)gAlice->GetModule("ITS");
20f3f947 178
aacedc3e 179 fInZR = new Double_t [fScaleSize*fMaxNofSamples];
180 fInZI = new Double_t [fScaleSize*fMaxNofSamples];
181 fOutZR = new Double_t [fScaleSize*fMaxNofSamples];
182 fOutZI = new Double_t [fScaleSize*fMaxNofSamples];
b0f5e3fc 183}
8a33ae9e 184//______________________________________________________________________
b0f5e3fc 185AliITSsimulationSDD::~AliITSsimulationSDD() {
aacedc3e 186 // destructor
187
188 // delete fpList;
189 delete fHitSigMap2;
190 delete fHitNoiMap2;
aacedc3e 191 delete fElectronics;
192
193 fITS = 0;
194
195 if (fHis) {
196 fHis->Delete();
197 delete fHis;
198 } // end if fHis
aacedc3e 199 if(fInZR) delete [] fInZR;
200 if(fInZI) delete [] fInZI;
201 if(fOutZR) delete [] fOutZR;
202 if(fOutZI) delete [] fOutZI;
203 if(fAnodeFire) delete [] fAnodeFire;
b0f5e3fc 204}
8a33ae9e 205//______________________________________________________________________
50d05d7b 206void AliITSsimulationSDD::InitSimulationModule( Int_t module, Int_t event ) {
aacedc3e 207 // create maps to build the lists of tracks for each summable digit
208 fModule = module;
209 fEvent = event;
210 ClearMaps();
211 memset(fAnodeFire,0,sizeof(Bool_t)*fNofMaps);
50d05d7b 212}
213//______________________________________________________________________
214void AliITSsimulationSDD::ClearMaps() {
aacedc3e 215 // clear maps
216 fpList->ClearMap();
217 fHitSigMap2->ClearMap();
218 fHitNoiMap2->ClearMap();
50d05d7b 219}
20f3f947 220//______________________________________________________________________
221void AliITSsimulationSDD::FastFourierTransform(Double_t *real,
222 Double_t *imag,Int_t direction) {
223 // Do a Fast Fourier Transform
224
225 Int_t samples = fElectronics->GetSamples();
226 Int_t l = (Int_t) ((log((Float_t) samples)/log(2.))+0.5);
227 Int_t m1 = samples;
228 Int_t m = samples/2;
229 Int_t m2 = samples/m1;
230 Int_t i,j,k;
231 for(i=1; i<=l; i++) {
232 for(j=0; j<samples; j += m1) {
233 Int_t p = 0;
234 for(k=j; k<= j+m-1; k++) {
235 Double_t wsr = fElectronics->GetWeightReal(p);
236 Double_t wsi = fElectronics->GetWeightImag(p);
237 if(direction == -1) wsi = -wsi;
238 Double_t xr = *(real+k+m);
239 Double_t xi = *(imag+k+m);
240 *(real+k+m) = wsr*(*(real+k)-xr) - wsi*(*(imag+k)-xi);
241 *(imag+k+m) = wsr*(*(imag+k)-xi) + wsi*(*(real+k)-xr);
242 *(real+k) += xr;
243 *(imag+k) += xi;
244 p += m2;
245 } // end for k
246 } // end for j
247 m1 = m;
248 m /= 2;
249 m2 += m2;
250 } // end for i
20f3f947 251 for(j=0; j<samples; j++) {
252 Int_t j1 = j;
253 Int_t p = 0;
254 Int_t i1;
255 for(i1=1; i1<=l; i1++) {
256 Int_t j2 = j1;
257 j1 /= 2;
258 p = p + p + j2 - j1 - j1;
259 } // end for i1
260 if(p >= j) {
261 Double_t xr = *(real+j);
262 Double_t xi = *(imag+j);
263 *(real+j) = *(real+p);
264 *(imag+j) = *(imag+p);
265 *(real+p) = xr;
266 *(imag+p) = xi;
267 } // end if p>=j
268 } // end for j
269 if(direction == -1) {
270 for(i=0; i<samples; i++) {
271 *(real+i) /= samples;
272 *(imag+i) /= samples;
273 } // end for i
274 } // end if direction == -1
275 return;
276}
277
50d05d7b 278//______________________________________________________________________
aacedc3e 279void AliITSsimulationSDD::SDigitiseModule(AliITSmodule *mod,Int_t md,Int_t ev){
280 // digitize module using the "slow" detector simulator creating
281 // summable digits.
282
283 TObjArray *fHits = mod->GetHits();
284 Int_t nhits = fHits->GetEntriesFast();
285 if( !nhits ) return;
286
287 InitSimulationModule( md, ev );
5683bd96 288 HitsToAnalogDigits( mod ); // fills fHitMap2 which is = fHitSigmap2
289 ChargeToSignal( fModule,kFALSE,kTRUE ); // - Process signal adding gain without adding noise
aacedc3e 290 fHitMap2 = fHitNoiMap2; // - Swap to noise map
5683bd96 291 ChargeToSignal( fModule,kTRUE,kFALSE ); // - Process only noise
aacedc3e 292 fHitMap2 = fHitSigMap2; // - Return to signal map
293 WriteSDigits();
294 ClearMaps();
50d05d7b 295}
296//______________________________________________________________________
aacedc3e 297Bool_t AliITSsimulationSDD::AddSDigitsToModule(TClonesArray *pItemArray,
298 Int_t mask ) {
299 // Add Summable digits to module maps.
cd2a0045 300 AliITSSimuParam* simpar = fDetType->GetSimuParam();
aacedc3e 301 Int_t nItems = pItemArray->GetEntries();
cd2a0045 302 Double_t maxadc = simpar->GetSDDMaxAdc();
aacedc3e 303 Bool_t sig = kFALSE;
48058160 304
aacedc3e 305 // cout << "Adding "<< nItems <<" SDigits to module " << fModule << endl;
306 for( Int_t i=0; i<nItems; i++ ) {
307 AliITSpListItem * pItem = (AliITSpListItem *)(pItemArray->At( i ));
308 if( pItem->GetModule() != fModule ) {
309 Error( "AliITSsimulationSDD","Error reading, SDigits module "
310 "%d != current module %d: exit",
311 pItem->GetModule(), fModule );
312 return sig;
313 } // end if
314
315 if(pItem->GetSignal()>0.0 ) sig = kTRUE;
43217ad9 316
aacedc3e 317 fpList->AddItemTo( mask, pItem ); // Add SignalAfterElect + noise
318 AliITSpListItem * pItem2 = fpList->GetpListItem( pItem->GetIndex() );
319 Double_t sigAE = pItem2->GetSignalAfterElect();
320 if( sigAE >= maxadc ) sigAE = maxadc-1; // avoid overflow signal
321 Int_t ia;
322 Int_t it;
323 fpList->GetMapIndex( pItem->GetIndex(), ia, it );
324 fHitMap2->SetHit( ia, it, sigAE );
325 fAnodeFire[ia] = kTRUE;
326 }
327 return sig;
48058160 328}
50d05d7b 329//______________________________________________________________________
330void AliITSsimulationSDD::FinishSDigitiseModule() {
aacedc3e 331 // digitize module using the "slow" detector simulator from
332 // the sum of summable digits.
333 FinishDigits() ;
334 ClearMaps();
c7a4dac0 335}
336//______________________________________________________________________
b0f5e3fc 337void AliITSsimulationSDD::DigitiseModule(AliITSmodule *mod,Int_t md,Int_t ev){
aacedc3e 338 // create maps to build the lists of tracks for each digit
b0f5e3fc 339
aacedc3e 340 TObjArray *fHits = mod->GetHits();
341 Int_t nhits = fHits->GetEntriesFast();
8a33ae9e 342
aacedc3e 343 InitSimulationModule( md, ev );
20f3f947 344 if( !nhits ) return;
48058160 345
aacedc3e 346 HitsToAnalogDigits( mod );
5683bd96 347 ChargeToSignal( fModule,kTRUE,kTRUE ); // process signal + noise
aacedc3e 348
349 for( Int_t i=0; i<fNofMaps; i++ ) {
350 for( Int_t j=0; j<fMaxNofSamples; j++ ) {
351 Int_t jdx = j*fScaleSize;
352 Int_t index = fpList->GetHitIndex( i, j );
353 AliITSpListItem pItemTmp2( fModule, index, 0. );
354 // put the fScaleSize analog digits in only one
355 for( Int_t ik=0; ik<fScaleSize; ik++ ) {
356 AliITSpListItem *pItemTmp = fpList->GetpListItem( i, jdx+ik );
357 if( pItemTmp == 0 ) continue;
358 pItemTmp2.Add( pItemTmp );
359 }
360 fpList->DeleteHit( i, j );
361 fpList->AddItemTo( 0, &pItemTmp2 );
362 }
48058160 363 }
aacedc3e 364 FinishDigits();
365 ClearMaps();
c7a4dac0 366}
367//______________________________________________________________________
50d05d7b 368void AliITSsimulationSDD::FinishDigits() {
aacedc3e 369 // introduce the electronics effects and do zero-suppression if required
8a33ae9e 370
8ba39da9 371 if( fCrosstalkFlag ) ApplyCrosstalk(fModule);
50d05d7b 372
f45f6658 373 AliITSCalibrationSDD* res = (AliITSCalibrationSDD*)GetCalibrationModel(fModule);
253e68a0 374 Bool_t isZeroSupp = res->GetZeroSupp();
375 if (isZeroSupp) Compress2D();
20f3f947 376 else StoreAllDigits();
c7a4dac0 377}
378//______________________________________________________________________
50d05d7b 379void AliITSsimulationSDD::HitsToAnalogDigits( AliITSmodule *mod ) {
aacedc3e 380 // create maps to build the lists of tracks for each digit
8ba39da9 381 AliITSsegmentationSDD* seg = (AliITSsegmentationSDD*)GetSegmentationModel(1);
f45f6658 382 AliITSCalibrationSDD* res = (AliITSCalibrationSDD*)GetCalibrationModel(fModule);
cd2a0045 383 AliITSSimuParam* simpar = fDetType->GetSimuParam();
8ba39da9 384 TObjArray *hits = mod->GetHits();
bee7f138 385 Int_t nhits = hits->GetEntriesFast();
386
387 // Int_t arg[6] = {0,0,0,0,0,0};
388 Int_t nofAnodes = fNofMaps/2;
389 Double_t sddLength = seg->Dx();
bee7f138 390 Double_t anodePitch = seg->Dpz(0);
391 Double_t timeStep = seg->Dpx(0);
392 Double_t driftSpeed ; // drift velocity (anode dependent)
393 Double_t nanoampToADC = simpar->GetSDDMaxAdc()/simpar->GetSDDDynamicRange(); // maxadc/topValue;
394 Double_t cHloss = simpar->GetSDDChargeLoss();
395 Float_t dfCoeff, s1;
396 simpar->GetSDDDiffCoeff(dfCoeff,s1); // Signal 2d Shape
397 Double_t eVpairs = simpar->GetGeVToCharge()*1.0E9; // 3.6 eV by def.
398 Double_t nsigma = simpar->GetNSigmaIntegration(); //
399 Int_t nlookups = simpar->GetGausNLookUp(); //
400 Float_t jitter = simpar->GetSDDJitterError(); //
401
402 // Piergiorgio's part (apart for few variables which I made float
403 // when i thought that can be done
404 // Fill detector maps with GEANT hits
405 // loop over hits in the module
406
407 const Float_t kconv = 1.0e+6; // GeV->KeV
408 Int_t itrack = 0;
409 Int_t iWing; // which detector wing/side.
410 Int_t ii,kk,ka,kt; // loop indexs
411 Int_t ia,it,index; // sub-pixel integration indexies
412 Int_t iAnode; // anode number.
413 Int_t timeSample; // time buckett.
414 Int_t anodeWindow; // anode direction charge integration width
415 Int_t timeWindow; // time direction charge integration width
416 Int_t jamin,jamax; // anode charge integration window
417 Int_t jtmin,jtmax; // time charge integration window
418 Int_t nsplitAn; // the number of splits in anode and time windows
419 Int_t nsplitTb; // the number of splits in anode and time windows
420 Int_t nOfSplits; // number of times track length is split into
421 Float_t nOfSplitsF; // Floating point version of nOfSplits.
422 Float_t kkF; // Floating point version of loop index kk.
423 Double_t pathInSDD; // Track length in SDD.
424 Double_t drPath; // average position of track in detector. in microns
425 Double_t drTime; // Drift time
426 Double_t avDrft; // x position of path length segment in cm.
427 Double_t avAnode; // Anode for path length segment in Anode number (float)
428 Double_t zAnode; // Floating point anode number.
429 Double_t driftPath; // avDrft in microns.
430 Double_t width; // width of signal at anodes.
431 Double_t depEnergy; // Energy deposited in this GEANT step.
432 Double_t xL[3],dxL[3]; // local hit coordinates and diff.
433 Double_t sigA; // sigma of signal at anode.
434 Double_t sigT; // sigma in time/drift direction for track segment
435 Double_t aStep,aConst; // sub-pixel size and offset anode
436 Double_t tStep,tConst; // sub-pixel size and offset time
437 Double_t amplitude; // signal amplitude for track segment in nanoAmpere
438 Double_t chargeloss; // charge loss for track segment.
439 Double_t anodeAmplitude; // signal amplitude in anode direction
440 Double_t aExpo; // exponent of Gaussian anode direction
441 Double_t timeAmplitude; // signal amplitude in time direction
442 Double_t tExpo; // exponent of Gaussian time direction
443 Double_t tof; // Time of flight in ns of this step.
444
445 for(ii=0; ii<nhits; ii++) {
446 if(!mod->LineSegmentL(ii,xL[0],dxL[0],xL[1],dxL[1],xL[2],dxL[2],
447 depEnergy,itrack)) continue;
448 Float_t xloc=xL[0];
449 if(xloc>0) iWing=0; // left side, carlos channel 0
450 else iWing=1; // right side
cd2a0045 451
bee7f138 452 Float_t zloc=xL[2]+0.5*dxL[2];
453 zAnode=seg->GetAnodeFromLocal(xloc,zloc); // anode number in the range 0.-511.
454 driftSpeed = res->GetDriftSpeedAtAnode(zAnode);
455 if(timeStep*fMaxNofSamples < sddLength/driftSpeed) {
a72dbdfe 456 AliWarning("Time Interval > Allowed Time Interval");
bee7f138 457 }
458 depEnergy *= kconv;
459 if (!depEnergy) {
460 AliDebug(1,
461 Form("fTrack = %d hit=%d module=%d This particle has passed without losing energy!",
462 itrack,ii,mod->GetIndex()));
463 continue;
f6b6d58e 464 // continue if the particle did not lose energy
465 // passing through detector
bee7f138 466 } // end if !depEnergy
467
468 tof=0.;
469 AliITShit* h=(AliITShit*)hits->At(ii);
470 if(h) tof=h->GetTOF()*1E9;
a72dbdfe 471 AliDebug(1,Form("TOF for hit %d on mod %d (particle %d)=%g",ii,fModule,h->Track(),tof));
bee7f138 472
473 xL[0] += 0.0001*gRandom->Gaus( 0, jitter ); //
474 pathInSDD = TMath::Sqrt(dxL[0]*dxL[0]+dxL[1]*dxL[1]+dxL[2]*dxL[2]);
475
476 if (fFlag && pathInSDD) { depEnergy *= (0.03/pathInSDD); }
477 drPath = TMath::Abs(10000.*(dxL[0]+2.*xL[0])*0.5);
478 drPath = sddLength-drPath;
479 if(drPath < 0) {
480 AliDebug(1, // this should be fixed at geometry level
481 Form("negative drift path drPath=%e sddLength=%e dxL[0]=%e xL[0]=%e",
482 drPath,sddLength,dxL[0],xL[0]));
483 continue;
484 } // end if drPath < 0
485
486 // Compute number of segments to brake step path into
487 drTime = drPath/driftSpeed; // Drift Time
488 sigA = TMath::Sqrt(2.*dfCoeff*drTime+s1*s1);// Sigma along the anodes
489 // calcuate the number of time the path length should be split into.
490 nOfSplits = (Int_t) (1. + 10000.*pathInSDD/sigA);
491 if(fFlag) nOfSplits = 1;
492
493 // loop over path segments, init. some variables.
494 depEnergy /= nOfSplits;
495 nOfSplitsF = (Float_t) nOfSplits;
496 Float_t theAverage=0.,theSteps=0.;
497 for(kk=0;kk<nOfSplits;kk++) { // loop over path segments
498 kkF = (Float_t) kk + 0.5;
499 avDrft = xL[0]+dxL[0]*kkF/nOfSplitsF;
500 avAnode = xL[2]+dxL[2]*kkF/nOfSplitsF;
501 theSteps+=1.;
502 theAverage+=avAnode;
503 zAnode = seg->GetAnodeFromLocal(avDrft,avAnode);
504 driftSpeed = res->GetDriftSpeedAtAnode(zAnode);
505 driftPath = TMath::Abs(10000.*avDrft);
506 driftPath = sddLength-driftPath;
507 if(driftPath < 0) {
f6b6d58e 508 AliDebug(1, // this should be fixed at geometry level
bee7f138 509 Form("negative drift path driftPath=%e sddLength=%e avDrft=%e dxL[0]=%e xL[0]=%e",
510 driftPath,sddLength,avDrft,dxL[0],xL[0]));
511 continue;
512 } // end if driftPath < 0
513 drTime = driftPath/driftSpeed; // drift time for segment.
514 // Sigma along the anodes for track segment.
515 sigA = TMath::Sqrt(2.*dfCoeff*drTime+s1*s1);
516 sigT = sigA/driftSpeed;
517
518 drTime+=tof; // take into account Time Of Flight from production point
a72dbdfe 519 timeSample = (Int_t) (fScaleSize*drTime/timeStep + 1.001); // time bin in range 1-256 !!!
bee7f138 520 if(zAnode>nofAnodes) zAnode-=nofAnodes; // to have the anode number between 0. and 256.
a72dbdfe 521 iAnode = (Int_t) (1.001+zAnode); // iAnode in range 1-256 !!!!
bee7f138 522
f6b6d58e 523 // Peak amplitude in nanoAmpere
bee7f138 524 amplitude = fScaleSize*160.*depEnergy/
525 (timeStep*eVpairs*2.*acos(-1.));
526 chargeloss = 1.-cHloss*driftPath/1000.;
527 amplitude *= chargeloss;
528 width = 2.*nsigma/(nlookups-1);
529 // Spread the charge
530 nsplitAn = 4;
531 nsplitTb=4;
532 aStep = anodePitch/(nsplitAn*sigA);
533 aConst = zAnode*anodePitch/sigA;
534 tStep = timeStep/(nsplitTb*fScaleSize*sigT);
535 tConst = drTime/sigT;
536 // Define SDD window corresponding to the hit
537 anodeWindow = (Int_t)(nsigma*sigA/anodePitch+1);
538 timeWindow = (Int_t) (fScaleSize*nsigma*sigT/timeStep+1.);
539 jamin = (iAnode - anodeWindow - 2)*nsplitAn+1;
bee7f138 540 if(jamin <= 0) jamin = 1;
a72dbdfe 541 if(jamin > nofAnodes*nsplitAn){
542 AliDebug(1,Form("Energy deposition completely outside anode acceptance: anode min=%d",jamin));
543 continue;
544 }
545 jamax = (iAnode + anodeWindow + 2)*nsplitAn;
546 if(jamax > nofAnodes*nsplitAn) jamax = nofAnodes*nsplitAn;
547 if(jamax <=0){
548 AliDebug(1,Form("Energy deposition completely outside anode acceptance: anode max=%d",jamax));
549 continue;
550 }
bee7f138 551 jtmin = (Int_t)(timeSample-timeWindow-2)*nsplitTb+1;
bee7f138 552 if(jtmin <= 0) jtmin = 1;
a72dbdfe 553 if(jtmin > fScaleSize*fMaxNofSamples*nsplitTb){
554 AliDebug(1,Form("Energy deposition completely outside time acceptance: time sample min=%d tof=%f",jtmin,tof));
555 continue;
556 }
557 jtmax = (Int_t)(timeSample+timeWindow+2)*nsplitTb;
558 if(jtmax > fScaleSize*fMaxNofSamples*nsplitTb) jtmax = fScaleSize*fMaxNofSamples*nsplitTb;
559 if(jtmax <= 0){
560 AliDebug(1,Form("Energy deposition completely outside time acceptance: time sample max=%d tof=%f",jtmax,tof));
561 continue;
562 }
563
bee7f138 564 // Spread the charge in the anode-time window
565 for(ka=jamin; ka <=jamax; ka++) {
566 ia = (ka-1)/nsplitAn + 1;
567 if(ia <= 0) ia=1;
568 if(ia > nofAnodes) ia = nofAnodes;
569 aExpo = (aStep*(ka-0.5)-aConst);
570 if(TMath::Abs(aExpo) > nsigma) anodeAmplitude = 0.;
571 else {
572 Int_t theBin = (Int_t) ((aExpo+nsigma)/width+0.5);
573 anodeAmplitude = amplitude*simpar->GetGausLookUp(theBin);
574 }
575 // index starts from 0
576 index = iWing*nofAnodes+ia-1;
577 if(anodeAmplitude){
578 for(kt=jtmin; kt<=jtmax; kt++) {
579 it = (kt-1)/nsplitTb+1; // it starts from 1
580 if(it<=0) it=1;
581 if(it>fScaleSize*fMaxNofSamples)
582 it = fScaleSize*fMaxNofSamples;
583 tExpo = (tStep*(kt-0.5)-tConst);
584 if(TMath::Abs(tExpo) > nsigma) timeAmplitude = 0.;
585 else {
586 Int_t theBin = (Int_t) ((tExpo+nsigma)/width+0.5);
587 timeAmplitude = anodeAmplitude*simpar->GetGausLookUp(theBin)*aStep*tStep;
588 }
589 timeAmplitude *= nanoampToADC;
590 // ListOfFiredCells(arg,timeAmplitude,alst,padr);
591 Double_t charge = timeAmplitude;
592 charge += fHitMap2->GetSignal(index,it-1);
593 fHitMap2->SetHit(index, it-1, charge);
594 fpList->AddSignal(index,it-1,itrack,ii-1,
595 mod->GetIndex(),timeAmplitude);
596 fAnodeFire[index] = kTRUE;
597 } // end loop over time in window
598 } // end if anodeAmplitude
599 } // loop over anodes in window
600 } // end loop over "sub-hits"
601 } // end loop over hits
b0f5e3fc 602}
aacedc3e 603
b0f5e3fc 604//____________________________________________
83ec5e27 605void AliITSsimulationSDD::AddDigit( Int_t i, Int_t j, Int_t signalc, Int_t signale) {
20f3f947 606 // Adds a Digit.
607 Int_t size = AliITSdigit::GetNTracks();
608
609 Int_t digits[3];
610 Int_t * tracks = new Int_t[size];
611 Int_t * hits = new Int_t[size];
612 Float_t phys;
613 Float_t * charges = new Float_t[size];
614
615 digits[0] = i;
616 digits[1] = j;
83ec5e27 617 digits[2] = signalc;
20f3f947 618
619 AliITSpListItem *pItem = fpList->GetpListItem( i, j );
620 if( pItem == 0 ) {
621 phys = 0.0;
622 for( Int_t l=0; l<size; l++ ) {
623 tracks[l] = 0;
624 hits[l] = 0;
625 charges[l] = 0.0;
50d05d7b 626 }
20f3f947 627 } else {
628 Int_t idtrack = pItem->GetTrack( 0 );
629 if( idtrack >= 0 ) phys = pItem->GetSignal();
630 else phys = 0.0;
631
632 for( Int_t l=0; l<size; l++ ) if(l<pItem->GetMaxKept()) {
633 tracks[l] = pItem->GetTrack( l );
634 hits[l] = pItem->GetHit( l );
635 charges[l] = pItem->GetSignal( l );
636 }else{
637 tracks[l] = -3;
638 hits[l] = -1;
639 charges[l] = 0.0;
640 }// end for if
641 }
50d05d7b 642
83ec5e27 643 fITS->AddSimDigit( 1, phys, digits, tracks, hits, charges, signale );
20f3f947 644 delete [] tracks;
645 delete [] hits;
646 delete [] charges;
aacedc3e 647}
8a33ae9e 648//______________________________________________________________________
5683bd96 649void AliITSsimulationSDD::ChargeToSignal(Int_t mod,Bool_t bAddNoise, Bool_t bAddGain) {
650 // add baseline, noise, gain, electronics and ADC saturation effects
651 // apply dead channels
652
5683bd96 653 AliITSCalibrationSDD* res = (AliITSCalibrationSDD*)GetCalibrationModel(mod);
5683bd96 654 Double_t baseline=0;
655 Double_t noise=0;
656 Double_t gain=0;
657 Float_t contrib=0;
658 Int_t i,k,kk;
cd2a0045 659 AliITSSimuParam* simpar = fDetType->GetSimuParam();
660 Float_t maxadc = simpar->GetSDDMaxAdc();
aebba721 661 Int_t nGroup=fScaleSize;
662 if(res->IsAMAt20MHz()){
663 nGroup=fScaleSize/2;
664 }
5683bd96 665
666 for (i=0;i<fNofMaps;i++) {
667 if( !fAnodeFire[i] ) continue;
668 baseline = res->GetBaseline(i);
669 noise = res->GetNoise(i);
cf8425ac 670 gain = res->GetChannelGain(i)/fDetType->GetAverageGainSDD();
eefec958 671 if(res->IsBad()) gain=0.;
13a2b50d 672 if( res->IsChipBad(res->GetChip(i)) )gain=0.;
5683bd96 673 for(k=0; k<fScaleSize*fMaxNofSamples; k++) {
674 fInZR[k] = fHitMap2->GetSignal(i,k);
675 if(bAddGain) fInZR[k]*=gain;
676 if( bAddNoise ) {
677 contrib = (baseline + noise*gRandom->Gaus());
678 fInZR[k] += contrib;
679 }
680 fInZI[k] = 0.;
681 } // end for k
b27af87f 682 if(!fDoFFT) {
5683bd96 683 for(k=0; k<fMaxNofSamples; k++) {
684 Double_t newcont = 0.;
685 Double_t maxcont = 0.;
686 for(kk=0;kk<fScaleSize;kk++) {
687 newcont = fInZR[fScaleSize*k+kk];
688 if(newcont > maxcont) maxcont = newcont;
689 } // end for kk
690 newcont = maxcont;
691 if (newcont >= maxadc) newcont = maxadc -1;
692 if(newcont >= baseline){
693 Warning("","newcont=%d>=baseline=%d",newcont,baseline);
694 } // end if
695 // back to analog: ?
696 fHitMap2->SetHit(i,k,newcont);
697 } // end for k
698 }else{
20f3f947 699 FastFourierTransform(&fInZR[0],&fInZI[0],1);
5683bd96 700 for(k=0; k<fScaleSize*fMaxNofSamples; k++) {
701 Double_t rw = fElectronics->GetTraFunReal(k);
702 Double_t iw = fElectronics->GetTraFunImag(k);
703 fOutZR[k] = fInZR[k]*rw - fInZI[k]*iw;
704 fOutZI[k] = fInZR[k]*iw + fInZI[k]*rw;
705 } // end for k
20f3f947 706 FastFourierTransform(&fOutZR[0],&fOutZI[0],-1);
5683bd96 707 for(k=0; k<fMaxNofSamples; k++) {
708 Double_t newcont1 = 0.;
709 Double_t maxcont1 = 0.;
aebba721 710 for(kk=0;kk<nGroup;kk++) {
5683bd96 711 newcont1 = fOutZR[fScaleSize*k+kk];
712 if(newcont1 > maxcont1) maxcont1 = newcont1;
713 } // end for kk
714 newcont1 = maxcont1;
715 if (newcont1 >= maxadc) newcont1 = maxadc -1;
716 fHitMap2->SetHit(i,k,newcont1);
717 } // end for k
718 }
719 } // end for i loop over anodes
720 return;
50d05d7b 721}
5683bd96 722
50d05d7b 723//______________________________________________________________________
8ba39da9 724void AliITSsimulationSDD::ApplyCrosstalk(Int_t mod) {
aacedc3e 725 // function add the crosstalk effect to signal
726 // temporal function, should be checked...!!!
8ba39da9 727
aacedc3e 728 // create and inizialice crosstalk map
729 Float_t* ctk = new Float_t[fNofMaps*fMaxNofSamples+1];
730 if( ctk == NULL ) {
a72dbdfe 731 Error( "ApplyCrosstalk", "no memory for temporal map: exit " );
aacedc3e 732 return;
733 }
734 memset( ctk, 0, sizeof(Float_t)*(fNofMaps*fMaxNofSamples+1) );
f45f6658 735 AliITSCalibrationSDD* calibr = (AliITSCalibrationSDD*)GetCalibrationModel(mod);
aacedc3e 736 for( Int_t z=0; z<fNofMaps; z++ ) {
f45f6658 737 Double_t baseline = calibr->GetBaseline(z);
aacedc3e 738 Bool_t on = kFALSE;
739 Int_t tstart = 0;
740 Int_t tstop = 0;
741 Int_t nTsteps = 0;
50d05d7b 742
aacedc3e 743 for( Int_t l=0; l<fMaxNofSamples; l++ ) {
744 Float_t fadc = (Float_t)fHitMap2->GetSignal( z, l );
745 if( fadc > baseline ) {
746 if( on == kFALSE && l<fMaxNofSamples-4 ) {
747 Float_t fadc1 = (Float_t)fHitMap2->GetSignal( z, l+1 );
748 if( fadc1 < fadc ) continue;
749 on = kTRUE;
750 nTsteps = 0;
751 tstart = l;
752 }
753 nTsteps++;
754 }
755 else { // end fadc > baseline
756 if( on == kTRUE ) {
757 if( nTsteps > 2 ) {
758 tstop = l;
759 // make smooth derivative
760 Float_t* dev = new Float_t[fMaxNofSamples+1];
761 memset( dev, 0, sizeof(Float_t)*(fMaxNofSamples+1) );
762 if( ctk == NULL ) {
763 Error( "ApplyCrosstalk",
a72dbdfe 764 "no memory for temporal array: exit " );
aacedc3e 765 return;
766 }
767 for( Int_t i=tstart; i<tstop; i++ ) {
768 if( i > 2 && i < fMaxNofSamples-2 )
769 dev[i] = -0.2*fHitMap2->GetSignal( z,i-2 )
770 -0.1*fHitMap2->GetSignal( z,i-1 )
771 +0.1*fHitMap2->GetSignal( z,i+1 )
772 +0.2*fHitMap2->GetSignal( z,i+2 );
773 }
50d05d7b 774
aacedc3e 775 // add crosstalk contribution to neibourg anodes
776 for( Int_t i=tstart; i<tstop; i++ ) {
777 Int_t anode = z - 1;
778 Int_t i1 = (Int_t)((i-tstart)*.61+tstart+0.5); //
779 Float_t ctktmp = -dev[i1] * 0.25;
780 if( anode > 0 ) {
781 ctk[anode*fMaxNofSamples+i] += ctktmp;
782 }
783 anode = z + 1;
784 if( anode < fNofMaps ) {
785 ctk[anode*fMaxNofSamples+i] += ctktmp;
786 }
787 }
788 delete [] dev;
50d05d7b 789
aacedc3e 790 } // if( nTsteps > 2 )
791 on = kFALSE;
792 } // if( on == kTRUE )
793 } // else
794 }
3d2c9d72 795 }
50d05d7b 796
aacedc3e 797 for( Int_t a=0; a<fNofMaps; a++ )
798 for( Int_t t=0; t<fMaxNofSamples; t++ ) {
799 Float_t signal = fHitMap2->GetSignal(a,t)+ctk[a*fMaxNofSamples+t];
800 fHitMap2->SetHit( a, t, signal );
801 }
802
803 delete [] ctk;
50d05d7b 804}
f45f6658 805
8a33ae9e 806//______________________________________________________________________
807Int_t AliITSsimulationSDD::Convert10to8(Int_t signal) const {
aacedc3e 808 // To the 10 to 8 bit lossive compression.
809 // code from Davide C. and Albert W.
810
811 if (signal < 128) return signal;
812 if (signal < 256) return (128+((signal-128)>>1));
813 if (signal < 512) return (192+((signal-256)>>3));
814 if (signal < 1024) return (224+((signal-512)>>4));
815 return 0;
b0f5e3fc 816}
8a33ae9e 817//______________________________________________________________________
83ec5e27 818Int_t AliITSsimulationSDD::Convert8to10(Int_t signal) const {
819 // Decompression from 8 to 10 bit
820
821 if (signal < 0 || signal > 255) {
822 AliWarning(Form("Signal value %d out of range",signal));
823 return 0;
824 } // end if signal <0 || signal >255
825
826 if (signal < 128) return signal;
827 if (signal < 192) {
828 if (TMath::Odd(signal)) return (128+((signal-128)<<1));
829 else return (128+((signal-128)<<1)+1);
830 } // end if signal < 192
831 if (signal < 224) {
832 if (TMath::Odd(signal)) return (256+((signal-192)<<3)+3);
833 else return (256+((signal-192)<<3)+4);
834 } // end if signal < 224
835 if (TMath::Odd(signal)) return (512+((signal-224)<<4)+7);
836 return (512+((signal-224)<<4)+8);
837}
838//______________________________________________________________________
b0f5e3fc 839void AliITSsimulationSDD::Compress2D(){
20f3f947 840 // 2D zero-suppression algorithm as described in ALICE-INT-1999-28 V10
841 AliITSCalibrationSDD* res = (AliITSCalibrationSDD*)GetCalibrationModel(fModule);
20f3f947 842 for (Int_t iWing=0; iWing<2; iWing++) {
843 Int_t tL=res->GetZSLowThreshold(iWing);
844 Int_t tH=res->GetZSHighThreshold(iWing);
845 for (Int_t i=0; i<fNofMaps/2; i++) {
846 Int_t ian=i+iWing*fNofMaps/2;
847 if( !fAnodeFire[ian] ) continue;
848 for (Int_t itb=0; itb<fMaxNofSamples; itb++) {
8343dab6 849 Int_t nLow=0, nHigh=0;
20f3f947 850 Float_t cC=fHitMap2->GetSignal(ian,itb);
851 if(cC<=tL) continue;
8343dab6 852 nLow++; // cC is greater than tL
853 if(cC>tH) nHigh++;
20f3f947 854 // N
855 // Get "quintuple": WCE
856 // S
857 Float_t wW=0.;
858 if(itb>0) wW=fHitMap2->GetSignal(ian,itb-1);
8343dab6 859 if(wW>tL) nLow++;
860 if(wW>tH) nHigh++;
20f3f947 861 Float_t eE=0.;
862 if(itb<fMaxNofSamples-1) eE=fHitMap2->GetSignal(ian,itb+1);
8343dab6 863 if(eE>tL) nLow++;
864 if(eE>tH) nHigh++;
20f3f947 865 Float_t nN=0.;
866 if(i<(fNofMaps/2-1)) nN=fHitMap2->GetSignal(ian+1,itb);
8343dab6 867 if(nN>tL) nLow++;
868 if(nN>tH) nHigh++;
20f3f947 869 Float_t sS=0.;
870 if(i>0) sS=fHitMap2->GetSignal(ian-1,itb);
8343dab6 871 if(sS>tL) nLow++;
872 if(sS>tH) nHigh++;
873
ad98389f 874 if(nLow>=2 && nHigh>=1){
83ec5e27 875 Int_t signal=(Int_t)cC;
876 Int_t signalc = Convert10to8(signal);
877 Int_t signale = Convert8to10(signalc);
878 signalc-=tL; // subtract low threshold after 10 to 8 bit compression
e55354a4 879 if(signalc>=4) AddDigit(ian,itb,signalc,signale); // store C
20f3f947 880 }
881 }
882 }
883 }
b0f5e3fc 884}
8ba39da9 885
aacedc3e 886
8a33ae9e 887//______________________________________________________________________
b0f5e3fc 888void AliITSsimulationSDD::StoreAllDigits(){
fa4f0f62 889 // store digits for non-zero-suppressed data
890 for (Int_t ian=0; ian<fNofMaps; ian++) {
891 for (Int_t itb=0; itb<fMaxNofSamples; itb++){
892 Int_t signal=(Int_t)(fHitMap2->GetSignal(ian,itb));
893 Int_t signalc = Convert10to8(signal);
894 Int_t signale = Convert8to10(signalc);
895 AddDigit(ian,itb,signalc,signale);
896 }
897 }
b0f5e3fc 898}
8a33ae9e 899//______________________________________________________________________
ece86d9a 900void AliITSsimulationSDD::CreateHistograms(Int_t scale){
aacedc3e 901 // Creates histograms of maps for debugging
902 Int_t i;
903
904 fHis=new TObjArray(fNofMaps);
905 for (i=0;i<fNofMaps;i++) {
906 TString sddName("sdd_");
907 Char_t candNum[4];
908 sprintf(candNum,"%d",i+1);
909 sddName.Append(candNum);
910 fHis->AddAt(new TH1F(sddName.Data(),"SDD maps",scale*fMaxNofSamples,
911 0.,(Float_t) scale*fMaxNofSamples), i);
912 } // end for i
b0f5e3fc 913}
8a33ae9e 914//______________________________________________________________________
ece86d9a 915void AliITSsimulationSDD::FillHistograms(){
aacedc3e 916 // fill 1D histograms from map
8a33ae9e 917
aacedc3e 918 if (!fHis) return;
8a33ae9e 919
aacedc3e 920 for( Int_t i=0; i<fNofMaps; i++) {
921 TH1F *hist =(TH1F *)fHis->UncheckedAt(i);
922 Int_t nsamples = hist->GetNbinsX();
923 for( Int_t j=0; j<nsamples; j++) {
924 Double_t signal=fHitMap2->GetSignal(i,j);
925 hist->Fill((Float_t)j,signal);
926 } // end for j
927 } // end for i
ece86d9a 928}
8a33ae9e 929//______________________________________________________________________
b0f5e3fc 930void AliITSsimulationSDD::ResetHistograms(){
aacedc3e 931 // Reset histograms for this detector
932 Int_t i;
8a33ae9e 933
aacedc3e 934 for (i=0;i<fNofMaps;i++ ) {
935 if (fHis->At(i)) ((TH1F*)fHis->At(i))->Reset();
936 } // end for i
b0f5e3fc 937}
8a33ae9e 938//______________________________________________________________________
b0f5e3fc 939TH1F *AliITSsimulationSDD::GetAnode(Int_t wing, Int_t anode) {
aacedc3e 940 // Fills a histogram from a give anode.
8a33ae9e 941
aacedc3e 942 if (!fHis) return 0;
8a33ae9e 943
aacedc3e 944 if(wing <=0 || wing > 2) {
945 Warning("GetAnode","Wrong wing number: %d",wing);
946 return NULL;
947 } // end if wing <=0 || wing >2
948 if(anode <=0 || anode > fNofMaps/2) {
949 Warning("GetAnode","Wrong anode number: %d",anode);
950 return NULL;
951 } // end if ampde <=0 || andoe > fNofMaps/2
8a33ae9e 952
aacedc3e 953 Int_t index = (wing-1)*fNofMaps/2 + anode-1;
954 return (TH1F*)(fHis->At(index));
b0f5e3fc 955}
8a33ae9e 956//______________________________________________________________________
b0f5e3fc 957void AliITSsimulationSDD::WriteToFile(TFile *hfile) {
aacedc3e 958 // Writes the histograms to a file
b0f5e3fc 959
aacedc3e 960 if (!fHis) return;
8a33ae9e 961
aacedc3e 962 hfile->cd();
963 Int_t i;
964 for(i=0; i<fNofMaps; i++) fHis->At(i)->Write(); //fAdcs[i]->Write();
965 return;
b0f5e3fc 966}
8a33ae9e 967//______________________________________________________________________
50d05d7b 968void AliITSsimulationSDD::WriteSDigits(){
aacedc3e 969 // Fills the Summable digits Tree
970 static AliITS *aliITS = (AliITS*)gAlice->GetModule("ITS");
971
972 for( Int_t i=0; i<fNofMaps; i++ ) {
973 if( !fAnodeFire[i] ) continue;
f6b6d58e 974 for( Int_t j=0; j<fMaxNofSamples; j++ ) {
aacedc3e 975 Double_t sig = fHitMap2->GetSignal( i, j );
976 if( sig > 0.2 ) {
977 Int_t jdx = j*fScaleSize;
978 Int_t index = fpList->GetHitIndex( i, j );
979 AliITSpListItem pItemTmp2( fModule, index, 0. );
980 // put the fScaleSize analog digits in only one
981 for( Int_t ik=0; ik<fScaleSize; ik++ ) {
982 AliITSpListItem *pItemTmp = fpList->GetpListItem(i,jdx+ik);
983 if( pItemTmp == 0 ) continue;
984 pItemTmp2.Add( pItemTmp );
985 }
986 pItemTmp2.AddSignalAfterElect( fModule, index, sig );
987 pItemTmp2.AddNoise(fModule,index,fHitNoiMap2->GetSignal(i,j));
988 aliITS->AddSumDigit( pItemTmp2 );
989 } // end if (sig > 0.2)
990 }
48058160 991 }
aacedc3e 992 return;
b0f5e3fc 993}
8a33ae9e 994//______________________________________________________________________
d2f55a22 995void AliITSsimulationSDD::PrintStatus() const {
aacedc3e 996 // Print SDD simulation Parameters
997
998 cout << "**************************************************" << endl;
999 cout << " Silicon Drift Detector Simulation Parameters " << endl;
1000 cout << "**************************************************" << endl;
1001 cout << "Flag for Perpendicular tracks: " << (Int_t) fFlag << endl;
aacedc3e 1002 cout << "Flag to switch off electronics: " << (Int_t) fDoFFT << endl;
20f3f947 1003 cout << "Number of Anodes used: " << fNofMaps << endl;
aacedc3e 1004 cout << "Number of Time Samples: " << fMaxNofSamples << endl;
1005 cout << "Scale size factor: " << fScaleSize << endl;
1006 cout << "**************************************************" << endl;
44a312c3 1007}