/[PAMELA software]/DarthVader/ToFLevel2/src/ToFCore.cpp
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Contents of /DarthVader/ToFLevel2/src/ToFCore.cpp

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Revision 1.54 - (show annotations) (download)
Mon Jul 28 15:42:09 2014 UTC (10 years, 7 months ago) by mocchiut
Branch: MAIN
Changes since 1.53: +5 -5 lines
Tracker-new bug + OrbitalInfo warnings fixed

1 // // C/C++ headers //
2 #include <fstream>
3 #include <string.h>
4 #include <iomanip>
5 //
6 // ROOT headers
7 //
8 #include <TTree.h>
9 #include <TClassEdit.h>
10 #include <TObject.h>
11 #include <TList.h>
12 #include <TArrayI.h>
13 #include <TSystem.h>
14 #include <TSystemDirectory.h>
15 #include <TString.h>
16 #include <TFile.h>
17 #include <TClass.h>
18 #include <TCanvas.h>
19 #include <TH1.h>
20 #include <TH1F.h>
21 #include <TH2D.h>
22 #include <TLatex.h>
23 #include <TPad.h>
24 #include <TSQLServer.h>
25 #include <TSQLRow.h>
26 #include <TSQLResult.h>
27 #include <TClonesArray.h>
28 //
29 // RunInfo header
30 //
31 #include <RunInfo.h>
32 //
33 // YODA headers
34 //
35 #include <PamelaRun.h>
36 //#include <physics/trigger/TriggerEvent.h>
37 #include <physics/tof/TofEvent.h>
38 //
39 // This program headers
40 //
41 #include <ToFCore.h>
42 #include <ToFLevel2.h>
43 #include <ToFVerl2.h>
44 //
45 //
46 // Declaration of the core fortran routines
47 //
48 #define tofl2com tofl2com_
49 extern "C" int tofl2com();
50 #define toftrk toftrk_
51 extern "C" int toftrk();
52 #define rdtofcal rdtofcal_
53 //extern "C" int rdtofcal(char [], int *);
54 extern "C" int rdtofcal(const char *, int *);
55
56 //
57 // Tracker classes headers and definitions
58 //
59 #include <TrkLevel2.h>
60 #include <ExtTrack.h> // new tracking code
61 //
62 using namespace std;
63 //
64 //
65 // CORE ROUTINE
66 //
67 //
68 int ToFCore(UInt_t run, TFile *file, GL_TABLES *glt, Int_t ToFargc, char *ToFargv[]){
69 //
70 //
71 // Set these to true to have a very verbose output.
72 //
73 Bool_t verbose = false;
74 Bool_t debug = false;
75 //
76 Bool_t l1only = false;
77 //
78 Bool_t deltree = false;
79 //
80 //
81 TString processFolder = Form("ToFFolder_%u",run);
82 if ( ToFargc > 0 ){
83 Int_t i = 0;
84 while ( i < ToFargc ){
85 if ( !strcmp(ToFargv[i],"-processFolder") ) {
86 if ( ToFargc < i+1 ){
87 throw -3;
88 };
89 processFolder = (TString)ToFargv[i+1];
90 i++;
91 };
92 if ( !strcmp(ToFargv[i],"-v") || !strcmp(ToFargv[i],"--verbose") ) {
93 verbose = true;
94 };
95 if ( !strcmp(ToFargv[i],"-g") || !strcmp(ToFargv[i],"--debug") ) {
96 verbose = true;
97 debug = true;
98 };
99 if ( !strcmp(ToFargv[i],"--level1-only") ) {
100 l1only = true;
101 }
102 if ( !strcmp(ToFargv[i],"--delete-tree") ) {
103 deltree = true;
104 }
105 i++;
106 };
107 };
108 //
109 //
110 // Output directory is the working directoy.
111 //
112 const char* outdir = gSystem->DirName(gSystem->DirName(file->GetPath()));
113 //
114 // Variables for level2
115 //
116 TTree *tracker = 0;
117 TTree *trigger = 0;
118 TTree *toft = 0;
119 UInt_t nevents = 0;
120 Long64_t maxsize = 10000000000LL;
121 TTree::SetMaxTreeSize(maxsize);
122 //
123 // variables needed to reprocess data
124 //
125 TString tofversion;
126 ItoRunInfo *runinfo = 0;
127 TArrayI *runlist = 0;
128 TTree *toftclone = 0;
129 Bool_t reproc = false;
130 Bool_t reprocall = false;
131 UInt_t nobefrun = 0;
132 UInt_t noaftrun = 0;
133 UInt_t numbofrun = 0;
134 stringstream ftmpname;
135 TString fname;
136 UInt_t totfileentries = 0;
137 UInt_t idRun = 0;
138 //
139 // variables needed to handle error signals
140 //
141 Int_t code = 0;
142 Int_t sgnl;
143 //
144 // tof level2 classes
145 //
146 ToFLevel2 *tof = new ToFLevel2();
147 ToFLevel2 *tofclone = new ToFLevel2();
148 ToFdEdx *tofdedx = new ToFdEdx();
149 //
150 // tracker level2 variables
151 //
152 TrkLevel2 *trk = new TrkLevel2();
153 Int_t nevtrkl2 = 0;
154 //
155 // trigger level2 variables
156 //
157 TrigLevel2 *trg = new TrigLevel2();
158 Int_t nevtrgl2 = 0;
159 //
160 // define variables for opening and reading level0 file
161 //
162 TFile *l0File = 0;
163 TTree *l0tr = 0;
164 TBranch *l0head = 0;
165 // TBranch *l0trig = 0;
166 TBranch *l0tof = 0;
167 pamela::EventHeader *eh = 0;
168 pamela::PscuHeader *ph = 0;
169 // pamela::trigger::TriggerEvent *trig = 0;
170 pamela::tof::TofEvent *tofEvent = 0;
171 //
172 // Define other basic variables
173 //
174 UInt_t procev = 0;
175 stringstream file2;
176 stringstream file3;
177 stringstream qy;
178 Int_t itr = -1;
179 Int_t totevent = 0;
180 UInt_t atime = 0;
181 UInt_t re = 0;
182 UInt_t jumped = 0;
183 //
184 // Working filename
185 //
186 TString outputfile;
187 stringstream name;
188 name.str("");
189 name << outdir << "/";
190 //
191 // temporary file and folder
192 //
193 TFile *tempfile = 0;
194 TTree *temptof = 0;
195 stringstream tempname;
196 stringstream toffolder;
197 Bool_t myfold = false;
198 tempname.str("");
199 tempname << outdir;
200 tempname << "/" << processFolder.Data();
201 toffolder.str("");
202 toffolder << tempname.str().c_str();
203 tempname << "/toftree_run";
204 tempname << run << ".root";
205 UInt_t totnorun = 0;
206 //
207 // variables needed to load magnetic field maps
208 //
209 Int_t ntrkentry = 0;
210 Int_t npmtentry = 0;
211 UInt_t tttrkpar1 = 0;
212 Bool_t trkpar1 = true;
213 UInt_t tttofpar1 = 0;
214 Bool_t tofpar1 = true;
215 //
216 // DB classes
217 //
218 GL_ROOT *glroot = new GL_ROOT();
219 GL_PARAM *glparam = new GL_PARAM();
220 GL_TIMESYNC *dbtime = 0;
221 //
222 // declaring external output and input structures
223 //
224 extern struct ToFInput tofinput_;
225 extern struct ToFOutput tofoutput_;
226 //
227 // WM variables perform dE/dx II order corrections
228 //
229 //Float_t dedx_corr_m[100][48],dedx_corr[48];
230 Double_t mtime[100],t1,t2,tm;
231 //Float_t yhelp1,yhelp2,slope,inter,thelp1,thelp2;
232
233 //RC variables for new dEdx II order correction (10th reduction)
234 Float_t Heyhelp1,Heyhelp2,Heslope,Heinter,thelp1,thelp2;
235 Float_t pyhelp1,pyhelp2,pslope,pinter;
236 Float_t dedx_Hepeak[48],dedx_ppeak[48];
237 Float_t dedx_Hepeak_m[100][48],dedx_ppeak_m[100][48];
238 Float_t inter_dedx[48],slope_dedx[48];
239
240 Float_t xmean1,xwidth1;
241 Int_t ical,ii,wj,jj;
242 Float_t xleft=0;
243 Float_t xright=0;
244 Float_t yleft=0;
245 Float_t yright=0;
246
247 Int_t warning = 0;
248 int a=0, b=0;
249
250 //
251 // Let's start!
252 //
253 //
254 // As a first thing we must check what we have to do: if run = 0 we must process all events in the file has been passed
255 // if run != 0 we must process only that run but first we have to check if the tree ToF already exist in the file
256 // if it exists we are reprocessing data and we must delete that entries, if not we must create it.
257 //
258 if ( run == 0 ) reproc = true;
259 //
260 //
261 // Output file is "outputfile"
262 //
263 if ( !file->IsOpen() ){
264 if ( verbose ) printf(" ToF - ERROR: cannot open file for writing\n");
265 throw -301;
266 };
267
268 //
269 // Delete tree if requested
270 //
271 if ( deltree ){
272 TTree *T = (TTree*)file->Get("ToF");
273 if ( T ){
274 if ( verbose ) printf(" ToF - REMOVING ToF TTree \n");
275 T->Delete("all");
276 }
277 }
278
279 //
280 // Does it contain the Tracker tree?
281 //
282 //
283 TClonesArray *tcNucleiTrk = NULL;
284 TClonesArray *tcExtNucleiTrk = NULL;
285 TClonesArray *tcExtTrk = NULL;
286 TClonesArray *ttofNucleiTrk = NULL;
287 TClonesArray *ttofExtNucleiTrk = NULL;
288 TClonesArray *ttofExtTrk = NULL;
289 Bool_t hasNucleiTrk = false;
290 Bool_t hasExtNucleiTrk = false;
291 Bool_t hasExtTrk = false;
292 if ( !l1only ){
293 tracker = (TTree*)file->Get("Tracker");
294 if ( !tracker ) {
295 if ( verbose ) printf(" TOF - ERROR: no tracker tree\n");
296 code = -302;
297 goto closeandexit;
298 }
299 //
300 // get tracker level2 data pointer
301 //
302 // tracker->SetMaxVirtualSize(2500000000LL); // EM residual Tracker-new tree in level2 files when NEVENTS is big
303 tracker->SetBranchAddress("TrkLevel2",&trk);
304 nevtrkl2 = tracker->GetEntries();
305 //
306 // Look for extended tracking algorithm
307 //
308 if ( verbose ) printf("Look for extended and nuclei tracking algorithms\n");
309 // Nuclei tracking algorithm
310 Int_t checkAlgo = 0;
311 tcNucleiTrk = new TClonesArray("TrkTrack");
312 checkAlgo = tracker->SetBranchAddress("TrackNuclei",&tcNucleiTrk);
313 if ( !checkAlgo ){
314 if ( verbose ) printf(" Nuclei tracking algorithm branch found! :D \n");
315 hasNucleiTrk = true;
316 } else {
317 if ( verbose ) printf(" Nuclei tracking algorithm branch not found :( !\n");
318 printf(" ok, this is not a problem (it depends on tracker settings) \n");
319 delete tcNucleiTrk;
320 }
321 // Nuclei tracking algorithm using calorimeter points
322 tcExtNucleiTrk = new TClonesArray("ExtTrack");
323 checkAlgo = tracker->SetBranchAddress("RecoveredTrackNuclei",&tcExtNucleiTrk);
324 if ( !checkAlgo ){
325 if ( verbose ) printf(" Recovered nuclei tracking algorithm branch found! :D \n");
326 hasExtNucleiTrk = true;
327 } else {
328 if ( verbose ) printf(" Recovered nuclei tracking algorithm branch not found :( !\n");
329 printf(" ok, this is not a problem (it depends on tracker settings) \n");
330 delete tcExtNucleiTrk;
331 }
332 // Tracking algorithm using calorimeter points
333 tcExtTrk = new TClonesArray("ExtTrack");
334 checkAlgo = tracker->SetBranchAddress("RecoveredTrack",&tcExtTrk);
335 if ( !checkAlgo ){
336 if ( verbose ) printf(" Recovered track algorithm branch found! :D \n");
337 hasExtTrk = true;
338 } else {
339 if ( verbose ) printf(" Recovered track algorithm branch not found :( !\n");
340 printf(" ok, this is not a problem (it depends on tracker settings) \n");
341 delete tcExtTrk;
342 }
343 }
344 //
345 // Does it contain the Trigger tree?
346 //
347 trigger = (TTree*)file->Get("Trigger");
348 if ( !trigger ) {
349 if ( verbose ) printf(" TOF - ERROR: no trigger tree\n");
350 code = -302;
351 goto closeandexit;
352 };
353 //
354 // get trigger level2 data pointer
355 //
356 // trigger->SetMaxVirtualSize(2500000000LL); // EM residual Tracker-new tree in level2 files when NEVENTS is big
357 trigger->SetBranchAddress("TrigLevel2",&trg);
358 nevtrgl2 = trigger->GetEntries();
359
360 //
361 // Retrieve GL_RUN variables from the level2 file
362 //
363 tofversion = ToFInfo(false); // we should decide how to handle versioning system
364 //
365 // create an interface to RunInfo called "runinfo"
366 //
367 // ItoRunInfo= interface with RunInfo and GL_RUN
368 runinfo = new ItoRunInfo(file);
369 //
370 // open "Run" tree in level2 file, if not existing return an error (sngl != 0)
371 //
372 sgnl = 0;
373 sgnl = runinfo->Update(run, "TOF",tofversion);
374 if ( sgnl ){
375 if ( verbose ) printf(" TOF - ERROR: RunInfo exited with non-zero status\n");
376 code = sgnl;
377 goto closeandexit;
378 } else {
379 sgnl = 0;
380 };
381 //
382 // number of events in the file BEFORE the first event of our run
383 //
384 nobefrun = runinfo->GetFirstEntry();
385 //
386 // total number of events in the file
387 //
388 totfileentries = runinfo->GetFileEntries();
389 //
390 // first file entry AFTER the last event of our run
391 //
392 noaftrun = runinfo->GetLastEntry() + 1;
393 //
394 // number of run to be processed
395 //
396 numbofrun = runinfo->GetNoRun();
397 totnorun = runinfo->GetRunEntries();
398 //
399 // Try to access the ToF tree in the file, if it exists we are reprocessing data if not we are processing a new run
400 //
401 toftclone = (TTree*)file->Get("ToF");
402 //
403 if ( !toftclone ){
404 //
405 // tree does not exist, we are not reprocessing
406 //
407 reproc = false;
408 if ( run == 0 && verbose ) printf(" ToF - WARNING: you are reprocessing data but ToF tree does not exist!\n");
409 if ( runinfo->IsReprocessing() && run != 0 && verbose ) printf(" ToF - WARNING: it seems you are not reprocessing data but ToF\n versioning information already exists in RunInfo.\n");
410
411 } else {
412 //
413 // tree exists, we are reprocessing data. Are we reprocessing a single run or all the file?
414 //
415 // toftclone->SetMaxVirtualSize(2500000000LL); // EM residual Tracker-new tree in level2 files when NEVENTS is big
416 toftclone->SetAutoSave(900000000000000LL);
417 reproc = true;
418 //
419 // update versioning information
420 //
421 if ( verbose ) printf("\n Preparing the pre-processing...\n");
422 //
423 if ( run == 0 || totnorun == 1 ){
424 //
425 // we are reprocessing all the file
426 // if we are reprocessing everything we don't need to copy any old event and we can just work with the new tree and delete the old one immediately
427 //
428 reprocall = true;
429 //
430 if ( verbose ) printf("\n ToF - WARNING: Reprocessing all runs\n");
431 //
432 } else {
433 //
434 // we are reprocessing a single run, we must copy to the new tree the events in the file which preceed the first event of the run
435 //
436 reprocall = false;
437 //
438 if ( verbose ) printf("\n ToF - WARNING: Reprocessing run number %u \n",run);
439 //
440 // copying old tree to a new file
441 //
442 gSystem->MakeDirectory(toffolder.str().c_str());
443 myfold = true;
444 tempfile = new TFile(tempname.str().c_str(),"RECREATE");
445 temptof = toftclone->CloneTree(-1,"fast");
446 temptof->SetName("ToF-old");
447 tempfile->Write();
448 tempfile->Close();
449 }
450 //
451 // Delete the old tree from old file and memory
452 //
453 toftclone->Delete("all");
454 //
455 if ( verbose ) printf(" ...done!\n");
456 //
457 };
458 //
459 // create ToF detector tree toft
460 //
461 file->cd();
462 toft = new TTree("ToF-new","PAMELA Level2 ToF data");
463 // toft->SetMaxVirtualSize(2500000000LL); // EM residual Tracker-new tree in level2 files when NEVENTS is big
464 toft->SetAutoSave(900000000000000LL);
465 tof->Set();//ELENA **TEMPORANEO?**
466 toft->Branch("ToFLevel2","ToFLevel2",&tof);
467 //
468 // create new branches for new tracking algorithms
469 //
470 if ( hasNucleiTrk ){
471 ttofNucleiTrk = new TClonesArray("ToFTrkVar",1);
472 toft->Branch("TrackNuclei",&ttofNucleiTrk);
473 }
474 if ( hasExtNucleiTrk ){
475 ttofExtNucleiTrk = new TClonesArray("ToFTrkVar",1);
476 toft->Branch("RecoveredTrackNuclei",&ttofExtNucleiTrk);
477 }
478 if ( hasExtTrk ){
479 ttofExtTrk = new TClonesArray("ToFTrkVar",1);
480 toft->Branch("RecoveredTrack",&ttofExtTrk);
481 }
482
483 //
484 if ( reproc && !reprocall ){
485 //
486 // open new file and retrieve all tree informations
487 //
488 tempfile = new TFile(tempname.str().c_str(),"READ");
489 toftclone = (TTree*)tempfile->Get("ToF-old");
490 // toftclone->SetMaxVirtualSize(2500000000LL); // EM residual Tracker-new tree in level2 files when NEVENTS is big
491 toftclone->SetAutoSave(900000000000000LL);
492 if ( !l1only ) toftclone->SetBranchAddress("ToFLevel2",&tofclone);
493 //
494 if ( nobefrun > 0 ){
495 if ( verbose ) printf("\n Pre-processing: copying events from the old tree before the processed run\n");
496 if ( verbose ) printf(" Copying %u events in the file which are before the beginning of the run %u \n",nobefrun,run);
497 if ( verbose ) printf(" Start copying at event number 0, end copying at event number %u \n",nobefrun);
498 for (UInt_t j = 0; j < nobefrun; j++){
499 //
500 if ( toftclone->GetEntry(j) <= 0 ) throw -36;
501 //
502 // copy tofclone to tof
503 //
504 tof->Clear();
505 if ( !l1only ) memcpy(&tof,&tofclone,sizeof(tofclone));
506 //
507 // Fill entry in the new tree
508 //
509 if ( !l1only ) toft->Fill();
510 //
511 };
512 if ( verbose ) printf(" Finished successful copying!\n");
513 };
514 };
515 //
516 // Get the list of run to be processed, if only one run has to be processed the list will contain one entry only.
517 //
518 runlist = runinfo->GetRunList();
519 //
520 // Loop over the run to be processed
521 //
522 for (UInt_t irun=0; irun < numbofrun; irun++){
523 //
524 // retrieve the first run ID to be processed using the RunInfo list
525 //
526 idRun = runlist->At(irun);
527 if ( verbose ) printf("\n\n\n ####################################################################### \n");
528 if ( verbose ) printf(" PROCESSING RUN NUMBER %u \n",idRun);
529 if ( verbose ) printf(" ####################################################################### \n\n\n");
530 //
531 runinfo->ID_ROOT_L0 = 0;
532 //
533 // store in the runinfo class the GL_RUN variables for our run
534 //
535 sgnl = 0;
536 sgnl = runinfo->GetRunInfo(idRun);
537 if ( sgnl ){
538 if ( verbose ) printf(" TOF - ERROR: RunInfo exited with non-zero status\n");
539 code = sgnl;
540 goto closeandexit;
541 } else {
542 sgnl = 0;
543 };
544 //
545 // now you can access that variables using the RunInfo class this way runinfo->ID_ROOT_L0
546 //
547 if ( runinfo->ID_ROOT_L0 == 0 ){
548 if ( verbose ) printf("\n TOF - ERROR: no run with ID_RUN = %u \n\n Exiting... \n\n",idRun);
549 code = -5;
550 goto closeandexit;
551 };
552 //
553 // prepare the timesync for the db
554 //
555 TString host = glt->CGetHost();
556 TString user = glt->CGetUser();
557 TString psw = glt->CGetPsw();
558 TSQLServer *dbc = TSQLServer::Connect(host.Data(),user.Data(),psw.Data());
559 if ( !dbc->IsConnected() ) throw -314;
560 stringstream myquery;
561 myquery.str("");
562 myquery << "SET time_zone='+0:00'";
563 delete dbc->Query(myquery.str().c_str());
564 dbtime = new GL_TIMESYNC(runinfo->ID_ROOT_L0,"ID",dbc);
565 //
566 // Search in the DB the path and name of the LEVEL0 file to be processed.
567 //
568 // if ( !dbc->IsConnected() ) throw -314;
569 glroot->Query_GL_ROOT(runinfo->ID_ROOT_L0,dbc);
570 //
571 ftmpname.str("");
572 ftmpname << glroot->PATH.Data() << "/";
573 ftmpname << glroot->NAME.Data();
574 fname = ftmpname.str().c_str();
575 //
576 // print out informations
577 //
578 totevent = runinfo->NEVENTS;
579 if ( verbose ) printf("\n LEVEL0 data file: %s \n",fname.Data());
580 if ( verbose ) printf(" RUN HEADER absolute time is: %u \n",runinfo->RUNHEADER_TIME);
581 if ( verbose ) printf(" RUN TRAILER absolute time is: %u \n",runinfo->RUNTRAILER_TIME);
582 if ( verbose ) printf(" %i events to be processed for run %u: from %i to %i \n\n",totevent,idRun,runinfo->EV_FROM,runinfo->EV_FROM+totevent);
583 //
584 // if ( !totevent ) goto closeandexit;
585 //
586 // Open Level0 file
587 //
588 if ( l0File ) l0File->Close();
589 l0File = new TFile(fname.Data());
590 if ( !l0File ) {
591 if ( verbose ) printf(" TOF - ERROR: problems opening Level0 file\n");
592 code = -6;
593 goto closeandexit;
594 };
595 l0tr = (TTree*)l0File->Get("Physics");
596 if ( !l0tr ) {
597 if ( verbose ) printf(" TOF - ERROR: no Physics tree in Level0 file\n");
598 l0File->Close();
599 code = -7;
600 goto closeandexit;
601 };
602 l0head = l0tr->GetBranch("Header");
603 if ( !l0head ) {
604 if ( verbose ) printf(" TOF - ERROR: no Header branch in Level0 tree\n");
605 l0File->Close();
606 code = -8;
607 goto closeandexit;
608 };
609 // l0trig = l0tr->GetBranch("Trigger");
610 // if ( !l0trig ) {
611 // if ( verbose ) printf(" TOF - ERROR: no Trigger branch in Level0 tree\n");
612 // l0File->Close();
613 // code = -300;
614 // goto closeandexit;
615 // };
616 l0tof = l0tr->GetBranch("Tof");
617 if ( !l0tof ) {
618 if ( verbose ) printf(" TOF - ERROR: no ToF branch in Level0 tree\n");
619 l0File->Close();
620 code = -303;
621 goto closeandexit;
622 };
623 //
624 // l0tr->SetBranchAddress("Trigger", &trig);
625 l0tr->SetBranchAddress("Tof", &tofEvent);
626 l0tr->SetBranchAddress("Header", &eh);
627 //
628 nevents = l0tof->GetEntries();
629 //
630 if ( nevents < 1 && totevent ) {
631 if ( verbose ) printf(" TOF - ERROR: Level0 file is empty\n\n");
632 l0File->Close();
633 code = -11;
634 goto closeandexit;
635 };
636 //
637 if ( runinfo->EV_TO > nevents-1 && totevent ) {
638 if ( verbose ) printf(" TOF - ERROR: too few entries in the registry tree\n");
639 l0File->Close();
640 code = -12;
641 goto closeandexit;
642 };
643 //
644 // Check if we have to load parameter files (or calibration associated to runs and not to events)
645 //
646 // for example let's assume that we could have different magnetic field maps for different runs:
647 //
648 if ( !l1only ){
649 if ( trkpar1 || ( tttrkpar1 != 0 && tttrkpar1 < runinfo->RUNHEADER_TIME ) ){
650 trkpar1 = false;
651 // read from DB infos about Magnetic filed maps
652 // if ( !dbc->IsConnected() ) throw -314;
653 glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,1,dbc); // parameters stored in DB in GL_PRAM table
654 tttrkpar1 = glparam->TO_TIME;
655 // ----------------------------
656 // Read the magnetic field
657 // ----------------------------
658 if ( verbose ) printf(" Reading magnetic field maps: \n");
659 trk->LoadField(glparam->PATH+glparam->NAME);
660 if ( verbose ) printf("\n");
661 }
662 }
663 //
664 // variable to save information about the tof calibration used
665 //
666 Bool_t defcal = true;
667 //
668 if ( tofpar1 || ( tttofpar1 != 0 && tttofpar1 < runinfo->RUNHEADER_TIME ) ){
669 tofpar1 = false;
670 //
671 // if ( !dbc->IsConnected() ) throw -314;
672 Int_t error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,201,dbc); // parameters stored in DB in GL_PRAM table
673 if ( error<0 ) {
674 code = error;
675 goto closeandexit;
676 };
677 //
678 if ( verbose ) printf(" Reading ToF parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
679 //
680 if ( (UInt_t)glparam->TO_TIME != (UInt_t)4294967295UL ) defcal = false;
681 //
682 tttofpar1 = glparam->TO_TIME;
683 Int_t nlen = (Int_t)(glparam->PATH+glparam->NAME).Length();
684 // rdtofcal((char *)(glparam->PATH+glparam->NAME).Data(),&nlen);
685 rdtofcal((const char *)(glparam->PATH+glparam->NAME).Data(),&nlen);
686 //
687 };
688 //
689 Int_t error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,204,dbc); // parameters stored in DB in GL_PRAM table
690 if ( error<0 ) {
691 code = error;
692 goto closeandexit;
693 };
694 //
695 if ( verbose ) printf(" Reading ToF attenuation parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
696 tofdedx->ReadParAtt((glparam->PATH+glparam->NAME).Data());
697
698 //
699 error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,205,dbc); // parameters stored in DB in GL_PRAM table
700 if ( error<0 ) {
701 code = error;
702 goto closeandexit;
703 };
704 //
705 if ( verbose ) printf(" Reading ToF desaturation on position parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
706 tofdedx->ReadParPos((glparam->PATH+glparam->NAME).Data());
707
708 //
709 error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,206,dbc); // parameters stored in DB in GL_PRAM table
710 if ( error<0 ) {
711 code = error;
712 goto closeandexit;
713 };
714 //
715 if ( verbose ) printf(" Reading ToF BetheBloch parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
716 tofdedx->ReadParBBneg((glparam->PATH+glparam->NAME).Data());
717
718 //
719 error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,207,dbc); // parameters stored in DB in GL_PRAM table
720 if ( error<0 ) {
721 code = error;
722 goto closeandexit;
723 };
724 //
725 if ( verbose ) printf(" Reading ToF Bethe-Bloch parameter file for beta gt1: %s \n",(glparam->PATH+glparam->NAME).Data());
726 tofdedx->ReadParBBpos((glparam->PATH+glparam->NAME).Data());
727
728 //
729 error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,208,dbc); // parameters stored in DB in GL_PRAM table
730 if ( error<0 ) {
731 code = error;
732 goto closeandexit;
733 };
734 //
735 if ( verbose ) printf(" Reading ToF desaturation on beta parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
736 tofdedx->ReadParDesatBB((glparam->PATH+glparam->NAME).Data());
737
738
739 tofdedx->CheckConnectors(runinfo->RUNHEADER_TIME,glparam,dbc);
740
741 //
742 // WM reading parameter file for dE/dx II order corrections
743 //
744 //memset(dedx_corr_m,0,100*48*sizeof(Float_t));
745 //memset(dedx_corr,0,48*sizeof(Float_t));
746 //memset(mtime,0,100*sizeof(Double_t));
747
748 //
749 // RC reading parameter file for new dE/dx II order correction (10th red)
750 //
751 memset(dedx_Hepeak_m,0,100*48*sizeof(Float_t));
752 memset(dedx_ppeak_m,0,100*48*sizeof(Float_t));
753 memset(dedx_Hepeak,0,48*sizeof(Float_t));
754 memset(dedx_ppeak,0,48*sizeof(Float_t));
755 memset(mtime,0,100*sizeof(Double_t));
756
757 //
758 // Query the DB to get the file
759 //
760 error=glparam->Query_GL_PARAM(runinfo->RUNHEADER_TIME,203,dbc); // parameters stored in DB in GL_PRAM table
761 if ( error<0 ) {
762 code = error;
763 goto closeandexit;
764 };
765 //
766 if ( verbose ) printf(" Reading ToF dE/dx II order correction parameter file: %s \n",(glparam->PATH+glparam->NAME).Data());
767 //
768 ical=0; // counter set to zero if first-time reading
769 //-----------------------------------------------------------
770 // Here I read the dEdx_korr parameters
771 //-----------------------------------------------------------
772 jj=0;
773 ifstream fin((glparam->PATH+glparam->NAME).Data());
774 UInt_t window = 200000;
775 Bool_t first = true;
776 Bool_t last = true;
777 //Float_t sdedx_corr_m[48];
778 //memset(sdedx_corr_m,0,48*sizeof(Float_t));
779
780 Float_t sdedx_Hepeak_m[48];
781 memset(sdedx_Hepeak_m,0,48*sizeof(Float_t));
782 Float_t sdedx_ppeak_m[48];
783 memset(sdedx_ppeak_m,0,48*sizeof(Float_t));
784
785 Double_t stm = 0;
786 while ( !fin.eof() ){
787 stm = tm;
788 // if ( jj > 0 ) memcpy(sdedx_corr_m,dedx_corr_m[jj-1],48*sizeof(Float_t)); // BUG sdedx should be the previous in time not the previous saved [absurd dE/dx for 8th reduction March and > March 2008 data - fixed on 2009/02/04
789 fin>>t1>>tm>>t2;
790 if ( verbose ) cout << setiosflags(ios::fixed) << setw(10) << setprecision(3) << tm << endl;
791 if ( (tm >= (runinfo->RUNHEADER_TIME-window) && tm <= (runinfo->RUNTRAILER_TIME+window)) || (tm > (runinfo->RUNTRAILER_TIME+window) && last) ){
792 if ( first ){
793 mtime[jj]=stm;
794 jj++;
795 if ( jj >= 100 ){
796 code = -318;
797 goto closeandexit;
798 };
799 };
800 mtime[jj]=tm;
801 };
802 for (ii=0; ii<48;ii++){
803 fin>>wj>>xmean1>>xwidth1;
804 if ( (tm >= (runinfo->RUNHEADER_TIME-window) && tm <= (runinfo->RUNTRAILER_TIME+window)) || (tm > (runinfo->RUNTRAILER_TIME+window) && last) ){
805 if ( first ){
806 //dedx_corr_m[jj-1][ii]=sdedx_corr_m[ii];
807
808 dedx_Hepeak_m[jj-1][ii]=sdedx_Hepeak_m[ii];
809 dedx_ppeak_m[jj-1][ii]=sdedx_ppeak_m[ii];
810 };
811 //dedx_corr_m[jj][ii]=xmean1;
812
813 dedx_Hepeak_m[jj][ii]=xmean1;
814 dedx_ppeak_m[jj][ii]=xwidth1;
815 };
816 //sdedx_corr_m[ii]=xmean1; // BUG sdedx should be the previous in time not the previous saved [absurd dE/dx for 8th reduction March and > March 2008 data - fixed on 2009/02/04
817 sdedx_Hepeak_m[ii]=xmean1;
818 sdedx_ppeak_m[ii]=xwidth1;
819
820 };
821 if ( (tm >= (runinfo->RUNHEADER_TIME-window) && tm <= (runinfo->RUNTRAILER_TIME+window)) || (tm > (runinfo->RUNTRAILER_TIME+window) && last)){
822 if ( first ) first = false;
823 if ( tm > (runinfo->RUNTRAILER_TIME+window) ) last = false;
824 jj++;
825 };
826 if ( jj >= 100 ){
827 code = -318;
828 goto closeandexit;
829 };
830 };
831 //
832 fin.close();
833 // this is a possible bug...
834 // Bool_t ff = false;
835 // while ( runinfo->RUNHEADER_TIME > mtime[ical] && ical < 100 ) {
836 // ical = ical+1;
837 // ff = true;
838 // };
839 while ( (mtime[ical] > runinfo->RUNHEADER_TIME || runinfo->RUNHEADER_TIME > mtime[ical+1] ) && ical < 99 ) {
840 ical = ical+1;
841 // ff = true;
842 };
843 // if ( ff ) ical = ical-1;
844 if ( verbose ) cout<<"rh time "<<runinfo->RUNHEADER_TIME<<" rt time "<<runinfo->RUNTRAILER_TIME<<" limit low "<<mtime[ical]<<" limit up "<<mtime[ical+1]<<" ical "<<ical<< " jj " << jj<< endl;
845 if ( ical < 0 || ical >= 98 ){
846 code = -315;
847 goto closeandexit;
848 };
849 //
850 // run over all the events of the run
851 //
852 if ( verbose ) printf("\n Ready to start! \n\n Processed events: \n\n");
853 //
854 if ( dbc ){
855 dbc->Close();
856 delete dbc;
857 dbc = 0;
858 };
859 //
860 jumped = 0;
861 //
862 for ( re = runinfo->EV_FROM; re < (runinfo->EV_FROM+runinfo->NEVENTS); re++){
863 // for ( re = runinfo->EV_FROM; re < (runinfo->EV_FROM+100); re++){ // QUIIIIIII
864 //
865 if ( procev%1000 == 0 && procev > 0 && verbose ) printf(" %iK \n",procev/1000);
866 //
867 if ( l0head->GetEntry(re) <= 0 ) throw -36;
868 //
869 // absolute time of this event
870 //
871 ph = eh->GetPscuHeader();
872 atime = dbtime->DBabsTime(ph->GetOrbitalTime());
873 //
874 tof->Clear();
875 Int_t pmt_id = 0;
876 ToFPMT *t_pmt = new ToFPMT();
877 if(!(tof->PMT))tof->PMT = new TClonesArray("ToFPMT",12); //ELENA
878 TClonesArray &tpmt = *tof->PMT;
879 ToFTrkVar *t_tof = new ToFTrkVar();
880 if(!(tof->ToFTrk))tof->ToFTrk = new TClonesArray("ToFTrkVar",2); //ELENA
881 TClonesArray &t = *tof->ToFTrk;
882 //
883 // paranoid check
884 //
885 if ( atime > (runinfo->RUNTRAILER_TIME+1) || atime < (runinfo->RUNHEADER_TIME-1) ) {
886 if ( verbose ) printf(" TOF - WARNING: event at time outside the run time window, skipping it\n");
887 jumped++;
888 goto jumpev;
889 };
890 //
891 // retrieve tracker informations, the LEVEL2 entry which correspond to our event will be "itr"
892 //
893 if ( !reprocall ){
894 itr = nobefrun + (re - runinfo->EV_FROM -jumped);
895 } else {
896 itr = runinfo->GetFirstEntry() + (re - runinfo->EV_FROM -jumped);
897 };
898 if ( !l1only ){
899 if ( itr > nevtrkl2 ){ // nevtrkl2 tracker entry number
900 if ( verbose ) printf(" TOF - ERROR: no tracker events with entry = %i in Level2 file\n",itr);
901 l0File->Close();
902 code = -313;
903 goto closeandexit;
904 }
905 }
906 if ( itr > nevtrgl2 ){ // nevtrgl2 trigger entry number
907 if ( verbose ) printf(" TOF - ERROR: no trigger events with entry = %i in Level2 file\n",itr);
908 l0File->Close();
909 code = -319;
910 goto closeandexit;
911 }
912 //
913 if ( !l1only ){
914 trk->Clear();
915 //
916 // Clones array must be cleared before going on
917 //
918 if ( hasNucleiTrk ){
919 tcNucleiTrk->Delete();
920 ttofNucleiTrk->Delete();
921 }
922 if ( hasExtNucleiTrk ){
923 tcExtNucleiTrk->Delete();
924 ttofExtNucleiTrk->Delete();
925 }
926 if ( hasExtTrk ){
927 tcExtTrk->Delete();
928 ttofExtTrk->Delete();
929 }
930 }
931 trg->Clear();
932 //
933 if ( !l1only && tracker->GetEntry(itr) <= 0 ) throw -36;
934 if ( trigger->GetEntry(itr) <= 0 ) throw -36;
935 ///
936 //
937 if ( l0tof->GetEntry(re) <= 0 ) throw -36;
938 // if ( l0trig->GetEntry(re) <= 0 ) throw -36;
939 ///
940 //
941 procev++;
942 //
943 // start processing
944 //
945 // dE/dx II order correction: check time limits and interpolate time correction
946 //==================================================================
947 //== if time is outside time limits:
948 //==================================================================
949 if ( atime<mtime[ical] || atime>mtime[ical+1] ){
950 if ( verbose ) cout<<"Checking Time Limits!"<<endl;
951 ical=0;
952 while ( ( mtime[ical] > atime || atime > mtime[ical+1]) && ical < 99 ){
953 ical = ical+1;
954 }
955 //
956 if ( ical < 0 || ical >= 98 ){
957 code = -317;
958 goto closeandexit;
959 };
960 if ( verbose ) cout<<"abs time "<<atime<<" limit low "<<mtime[ical]<<" limit up "<<mtime[ical+1]<<" ical "<<ical<<endl;
961 };
962 //==================================================================
963 //== interpolate betwen time limits
964 //==================================================================
965 thelp1 = mtime[ical];
966 thelp2 = mtime[ical+1];
967 for (ii=0; ii<48;ii++) {
968
969 Heyhelp1 = fabs(dedx_Hepeak_m[ical][ii]);
970 if ( Heyhelp1 < 0.1 ) Heyhelp1 = 4.;
971 Heyhelp2 = fabs(dedx_Hepeak_m[ical+1][ii]);
972 if ( Heyhelp2 < 0.1 ) Heyhelp2 = 4.;
973 Heslope = (Heyhelp2-Heyhelp1)/(thelp2-thelp1);
974 Heinter = Heyhelp1 - Heslope*thelp1;
975 dedx_Hepeak[ii] = Heslope*atime + Heinter;
976
977 pyhelp1 = fabs(dedx_ppeak_m[ical][ii]);
978 if ( pyhelp1 < 0.1 ) pyhelp1 = 1.;
979 pyhelp2 = fabs(dedx_ppeak_m[ical+1][ii]);
980 if ( pyhelp2 < 0.1 ) pyhelp2 = 1.;
981 pslope = (pyhelp2-pyhelp1)/(thelp2-thelp1);
982 pinter = pyhelp1 - pslope*thelp1;
983 dedx_ppeak[ii] = pslope*atime + pinter;
984
985 if(dedx_Hepeak[ii]>dedx_ppeak[ii])slope_dedx[ii]=3./(dedx_Hepeak[ii]-dedx_ppeak[ii]);
986 else slope_dedx[ii]=4.;
987 if(dedx_Hepeak[ii]>dedx_ppeak[ii])inter_dedx[ii]=1.-(slope_dedx[ii]*dedx_ppeak[ii]);
988 else inter_dedx[ii]=0.;
989
990 if ( fabs(dedx_ppeak[ii]) <= 1e-15 ){
991 if ( verbose ) printf("ii %i pslope %f atime %u pinter %f dedx_ppeak %f \n",ii,pslope,atime,pinter,dedx_ppeak[ii]);
992 if ( verbose ) printf("ical %i pyhelp2 %f pyhelp1 %f thelp2 %f thelp1 %f \n",ical,pyhelp2,pyhelp1,thelp2,thelp1);
993 code = -316;
994 goto closeandexit;
995 }
996 }
997 //================================================================
998 //================================================================
999
1000 //
1001 // Here we will use some procedure to calibrate our data and put some kind of informations in the cinput structure
1002 //
1003 for (Int_t gg=0; gg<4;gg++){
1004 for (Int_t hh=0; hh<12;hh++){
1005 tofinput_.tdc[hh][gg] = (0xFFF & tofEvent->tdc[gg][hh]); // exclude warning bits
1006 tofinput_.adc[hh][gg] = (0xFFF & tofEvent->adc[gg][hh]); // exclude warning bits
1007 }
1008 }
1009 //
1010 tofdedx->Init(tofEvent);
1011 warning = 0;
1012 //
1013 for (Int_t hh=0; hh<5;hh++){
1014 tofinput_.patterntrig[hh]=trg->patterntrig[hh];
1015 }
1016 //
1017 // Here we have calibrated data, ready to be passed to the FORTRAN routine which will extract common and track-related variables.
1018 //
1019 npmtentry = 0;
1020 //
1021 ntrkentry = 0;
1022 //
1023 // Calculate tracks informations from ToF alone
1024 //
1025 tofl2com();
1026 //
1027 memcpy(tof->tof_j_flag,tofoutput_.tof_j_flag,6*sizeof(Int_t));
1028 //
1029 if ( !l1only ){
1030 //
1031 t_tof->trkseqno = -1;
1032 //
1033 // and now we must copy from the output structure to the level2 class:
1034 //
1035 t_tof->npmttdc = 0;
1036 //
1037 for (Int_t hh=0; hh<12;hh++){
1038 for (Int_t kk=0; kk<4;kk++){
1039 if ( tofoutput_.tofmask[hh][kk] != 0 ){
1040 pmt_id = tof->GetPMTid(kk,hh);
1041 t_tof->pmttdc.AddAt(pmt_id,t_tof->npmttdc);
1042 t_tof->tdcflag.AddAt(tofoutput_.tdcflagtof[hh][kk],t_tof->npmttdc); // gf: Jan 09/07
1043 t_tof->npmttdc++;
1044 };
1045 };
1046 };
1047 for (Int_t kk=0; kk<13;kk++){
1048 t_tof->beta[kk] = tofoutput_.betatof_a[kk];
1049 }
1050 //
1051 //
1052 memcpy(t_tof->xtofpos,tofoutput_.xtofpos,sizeof(t_tof->xtofpos));
1053 memcpy(t_tof->ytofpos,tofoutput_.ytofpos,sizeof(t_tof->ytofpos));
1054 memcpy(t_tof->xtr_tof,tofoutput_.xtr_tof,sizeof(t_tof->xtr_tof));
1055 memcpy(t_tof->ytr_tof,tofoutput_.ytr_tof,sizeof(t_tof->ytr_tof));
1056 //
1057 {
1058 Float_t xtof_temp[6]={100.,100.,100.,100.,100.,100.};
1059 Float_t ytof_temp[6]={100.,100.,100.,100.,100.,100.};
1060
1061 if(t_tof->xtofpos[0]<100. && t_tof->ytofpos[0]<100.){
1062 xtof_temp[1]=t_tof->xtofpos[0];
1063 ytof_temp[0]=t_tof->ytofpos[0];
1064 }else if(t_tof->xtofpos[0]>=100. && t_tof->ytofpos[0]<100.){
1065 ytof_temp[0]=t_tof->ytofpos[0];
1066 tof->GetPaddleGeometry(0,(Int_t)log2(tof->tof_j_flag[0]),xleft, xright, yleft, yright);
1067 xtof_temp[1]=xleft+2.55;
1068 }else if(t_tof->ytofpos[0]>=100. && t_tof->xtofpos[0]<100.){
1069 xtof_temp[1]=t_tof->xtofpos[0];
1070 tof->GetPaddleGeometry(1,(Int_t)log2(tof->tof_j_flag[1]),xleft, xright, yleft, yright);
1071 ytof_temp[0]=yleft+2.75;
1072 }
1073
1074 if(t_tof->xtofpos[1]<100. && t_tof->ytofpos[1]<100.){
1075 xtof_temp[2]=t_tof->xtofpos[1];
1076 ytof_temp[3]=t_tof->ytofpos[1];
1077 }else if(t_tof->xtofpos[1]>=100. && t_tof->ytofpos[1]<100.){
1078 ytof_temp[3]=t_tof->ytofpos[1];
1079 tof->GetPaddleGeometry(3,(Int_t)log2(tof->tof_j_flag[3]),xleft, xright, yleft, yright);
1080 xtof_temp[2]=xleft+4.5;
1081 }else if(t_tof->ytofpos[1]>=100. && t_tof->xtofpos[1]<100.){
1082 xtof_temp[2]=t_tof->xtofpos[1];
1083 tof->GetPaddleGeometry(2,(Int_t)log2(tof->tof_j_flag[2]),xleft, xright, yleft, yright);
1084 ytof_temp[3]=yleft+3.75;
1085 }
1086
1087 if(t_tof->xtofpos[2]<100. && t_tof->ytofpos[2]<100.){
1088 xtof_temp[5]=t_tof->xtofpos[2];
1089 ytof_temp[4]=t_tof->ytofpos[2];
1090 }else if(t_tof->xtofpos[2]>=100. && t_tof->ytofpos[2]<100.){
1091 ytof_temp[4]=t_tof->ytofpos[2];
1092 tof->GetPaddleGeometry(4,(Int_t)log2(tof->tof_j_flag[4]),xleft, xright, yleft, yright);
1093 xtof_temp[5]=xleft+3;
1094 }else if(t_tof->ytofpos[2]>=100. && t_tof->xtofpos[2]<100.){
1095 xtof_temp[5]=t_tof->xtofpos[2];
1096 tof->GetPaddleGeometry(5,(Int_t)log2(tof->tof_j_flag[5]),xleft, xright, yleft, yright);
1097 ytof_temp[4]=yleft+2.5;
1098 }
1099 //
1100 tofdedx->Process(atime,t_tof->beta[12], (Float_t *)xtof_temp,(Float_t *)ytof_temp);
1101 t_tof->npmtadc = 0;
1102 for (Int_t hh=0; hh<12;hh++){
1103 for (Int_t kk=0; kk<4;kk++){
1104 pmt_id = tof->GetPMTid(kk,hh);
1105 Int_t Iplane=-1;
1106 Int_t Ipaddle=-1;
1107 tof->GetPMTPaddle(pmt_id, Iplane, Ipaddle);
1108 tof->GetPaddleGeometry(Iplane,Ipaddle,xleft,xright,yleft,yright);
1109 if (tofEvent->tdc[kk][hh] < 4095 || tofEvent->adc[kk][hh] < 4095 || tofinput_.tdc[hh][kk] < 4095 || tofinput_.adc[hh][kk] < 4095 ) {
1110 if ( tofdedx->GetdEdx_pmt(pmt_id)>-1. && (inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)) > 0. &&((xtof_temp[Iplane]>=xleft&&xtof_temp[Iplane]<=xright) || (ytof_temp[Iplane]>=yleft&&ytof_temp[Iplane]<=yright)) ){
1111
1112 t_tof->dedx.AddAt((inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),t_tof->npmtadc);// RC new dE/dx II order correction
1113
1114 t_tof->pmtadc.AddAt(pmt_id,t_tof->npmtadc);
1115 t_tof->adcflag.AddAt(0,t_tof->npmtadc); // gf: Jan 09/07
1116 t_tof->npmtadc++;
1117 }
1118 }
1119 }
1120 }
1121 }
1122 new(t[ntrkentry]) ToFTrkVar(*t_tof);
1123 ntrkentry++;
1124 t_tof->Clear();
1125 t_pmt->Clear();
1126 //
1127 for (Int_t gg=0; gg<4;gg++){
1128 for (Int_t hh=0; hh<12;hh++){
1129 // new WM
1130 if ( tofoutput_.tdc_c[hh][gg] < 4095 || (0xFFF & tofEvent->adc[gg][hh]) < 4095 || (0xFFF & tofEvent->tdc[gg][hh]) < 4095 ){
1131 t_pmt->pmt_id = tof->GetPMTid(gg,hh);
1132 t_pmt->tdc_tw = tofoutput_.tdc_c[hh][gg];
1133 t_pmt->adc = (Float_t)(0xFFF & tofEvent->adc[gg][hh]);
1134 t_pmt->tdc = (Float_t)(0xFFF & tofEvent->tdc[gg][hh]);
1135 t_pmt->l0flag_adc = (Float_t)(tofEvent->adc[gg][hh]>>12);
1136 t_pmt->l0flag_tdc = (Float_t)(tofEvent->tdc[gg][hh]>>12);
1137 if ( t_pmt->l0flag_adc || t_pmt->l0flag_tdc ) warning |= 1 << 0;
1138 //
1139 new(tpmt[npmtentry]) ToFPMT(*t_pmt);
1140 npmtentry++;
1141 t_pmt->Clear();
1142 }
1143 }
1144 }
1145 //
1146 if ( debug ) printf(" ATIME %u re %u \n",atime,(UInt_t)re);
1147 //
1148 // Calculate track-related variables
1149 //
1150
1151 //
1152 // Run over tracks - standard algorithm
1153 //
1154 for(Int_t nt=0; nt < trk->ntrk(); nt++){
1155 //
1156 TrkTrack *ptt = trk->GetStoredTrack(nt);
1157 //
1158 // Copy the alpha vector in the input structure
1159 //
1160 for (Int_t e = 0; e < 5 ; e++){
1161 tofinput_.al_pp[e] = ptt->al[e];
1162 }
1163 // new input for 9th reduction: tracker dEdx
1164 tofinput_.trkmip = ptt->GetDEDX();
1165 //
1166 // Get tracker related variables for this track
1167 //
1168 toftrk();
1169 //
1170 // Copy values in the class from the structure (we need to use a temporary class to store variables).
1171 //
1172 t_tof->npmttdc = 0;
1173 for (Int_t hh=0; hh<12;hh++){
1174 for (Int_t kk=0; kk<4;kk++){
1175 if ( tofoutput_.tofmask[hh][kk] != 0 ){
1176 pmt_id = tof->GetPMTid(kk,hh);
1177 t_tof->pmttdc.AddAt(pmt_id,t_tof->npmttdc);
1178 t_tof->tdcflag.AddAt(tofoutput_.tdcflag[hh][kk],t_tof->npmttdc); // gf: Jan 09/07
1179 t_tof->npmttdc++;
1180 }
1181 }
1182 }
1183 for (Int_t kk=0; kk<13;kk++){
1184 t_tof->beta[kk] = tofoutput_.beta_a[kk];
1185 }
1186 memcpy(t_tof->xtofpos,tofoutput_.xtofpos,sizeof(t_tof->xtofpos));
1187 memcpy(t_tof->ytofpos,tofoutput_.ytofpos,sizeof(t_tof->ytofpos));
1188 memcpy(t_tof->xtr_tof,tofoutput_.xtr_tof,sizeof(t_tof->xtr_tof));
1189 memcpy(t_tof->ytr_tof,tofoutput_.ytr_tof,sizeof(t_tof->ytr_tof));
1190 //
1191 tofdedx->Process(atime,t_tof->beta[12], (Float_t *)t_tof->xtr_tof,(Float_t *)t_tof->ytr_tof);
1192 t_tof->npmtadc = 0;
1193 for (Int_t hh=0; hh<12;hh++){
1194 for (Int_t kk=0; kk<4;kk++){
1195 pmt_id = tof->GetPMTid(kk,hh);
1196 Int_t Iplane=-1;
1197 Int_t Ipaddle=-1;
1198 Int_t IpaddleT=-1;
1199 tof->GetPMTPaddle(pmt_id, Iplane, Ipaddle);
1200 IpaddleT=tof->GetPaddleIdOfTrack(t_tof->xtr_tof[Iplane],t_tof->ytr_tof[Iplane], Iplane,0.0);
1201 if ( debug ) printf(" 1nt %i pmt_id %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,pmt_id,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1202 if (tofEvent->tdc[kk][hh] < 4095 || tofEvent->adc[kk][hh] < 4095 || tofinput_.tdc[hh][kk] < 4095 || tofinput_.adc[hh][kk] < 4095 ) {
1203 if ( tofdedx->GetdEdx_pmt(pmt_id) > -1. && (inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)) > 0. && Ipaddle==IpaddleT ){
1204 t_tof->dedx.AddAt((inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),t_tof->npmtadc);// RC new dE/dx II order correction
1205 if ( debug ) printf(" 2nt %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1206 t_tof->pmtadc.AddAt(pmt_id,t_tof->npmtadc);
1207 t_tof->adcflag.AddAt(0,t_tof->npmtadc); // gf: Jan 09/07
1208 t_tof->npmtadc++;
1209 }
1210 }
1211 }
1212 }
1213 //
1214 // Store the tracker track number in order to be sure to have shyncronized data during analysis
1215 //
1216 t_tof->trkseqno = nt;
1217 //
1218 // create a new object for this event with track-related variables
1219 //
1220 new(t[ntrkentry]) ToFTrkVar(*t_tof);
1221 ntrkentry++;
1222 t_tof->Clear();
1223 //
1224 } // loop on all the tracks
1225 //
1226 // Code for extended tracking algorithm:
1227 //
1228 //
1229 // Run over tracks - nuclei algorithm
1230 //
1231 if ( hasNucleiTrk ){
1232 Int_t ttentry = 0;
1233 for(Int_t nt=0; nt < tcNucleiTrk->GetEntries(); nt++){
1234 //
1235 TrkTrack *ptt = (TrkTrack*)(tcNucleiTrk->At(nt));
1236 //
1237 // Copy the alpha vector in the input structure
1238 //
1239 for (Int_t e = 0; e < 5 ; e++){
1240 tofinput_.al_pp[e] = ptt->al[e];
1241 }
1242 // new input for 9th reduction: tracker dEdx
1243 tofinput_.trkmip = ptt->GetDEDX();
1244 //
1245 // Get tracker related variables for this track
1246 //
1247 toftrk();
1248 //
1249 // Copy values in the class from the structure (we need to use a temporary class to store variables).
1250 //
1251 t_tof->npmttdc = 0;
1252 for (Int_t hh=0; hh<12;hh++){
1253 for (Int_t kk=0; kk<4;kk++){
1254 if ( tofoutput_.tofmask[hh][kk] != 0 ){
1255 pmt_id = tof->GetPMTid(kk,hh);
1256 t_tof->pmttdc.AddAt(pmt_id,t_tof->npmttdc);
1257 t_tof->tdcflag.AddAt(tofoutput_.tdcflag[hh][kk],t_tof->npmttdc); // gf: Jan 09/07
1258 t_tof->npmttdc++;
1259 }
1260 }
1261 }
1262 for (Int_t kk=0; kk<13;kk++){
1263 t_tof->beta[kk] = tofoutput_.beta_a[kk];
1264 }
1265 memcpy(t_tof->xtofpos,tofoutput_.xtofpos,sizeof(t_tof->xtofpos));
1266 memcpy(t_tof->ytofpos,tofoutput_.ytofpos,sizeof(t_tof->ytofpos));
1267 memcpy(t_tof->xtr_tof,tofoutput_.xtr_tof,sizeof(t_tof->xtr_tof));
1268 memcpy(t_tof->ytr_tof,tofoutput_.ytr_tof,sizeof(t_tof->ytr_tof));
1269 //
1270 tofdedx->Process(atime,t_tof->beta[12], (Float_t *)t_tof->xtr_tof,(Float_t *)t_tof->ytr_tof);
1271 t_tof->npmtadc = 0;
1272 for (Int_t hh=0; hh<12;hh++){
1273 for (Int_t kk=0; kk<4;kk++){
1274 pmt_id = tof->GetPMTid(kk,hh);
1275 Int_t Iplane=-1;
1276 Int_t Ipaddle=-1;
1277 Int_t IpaddleT=-1;
1278 tof->GetPMTPaddle(pmt_id, Iplane, Ipaddle);
1279 IpaddleT=tof->GetPaddleIdOfTrack(t_tof->xtr_tof[Iplane],t_tof->ytr_tof[Iplane], Iplane,0.0);
1280 if ( debug ) printf(" 1nt %i pmt_id %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,pmt_id,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1281 if (tofEvent->tdc[kk][hh] < 4095 || tofEvent->adc[kk][hh] < 4095 || tofinput_.tdc[hh][kk] < 4095 || tofinput_.adc[hh][kk] < 4095 ) {
1282 if ( tofdedx->GetdEdx_pmt(pmt_id) > -1. && (inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)) > 0. && Ipaddle==IpaddleT ){
1283 t_tof->dedx.AddAt((inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),t_tof->npmtadc);// RC new dE/dx II order correction
1284 if ( debug ) printf(" 2nt %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1285 t_tof->pmtadc.AddAt(pmt_id,t_tof->npmtadc);
1286 t_tof->adcflag.AddAt(0,t_tof->npmtadc); // gf: Jan 09/07
1287 t_tof->npmtadc++;
1288 }
1289 }
1290 }
1291 }
1292 //
1293 // Store the tracker track number in order to be sure to have shyncronized data during analysis
1294 //
1295 t_tof->trkseqno = nt;
1296 //
1297 // create a new object for this event with track-related variables
1298 //
1299 TClonesArray &tt1 = *ttofNucleiTrk;
1300 new(tt1[ttentry]) ToFTrkVar(*t_tof);
1301 ttentry++;
1302 t_tof->Clear();
1303 //
1304 } // loop on all the tracks, nuclei algorithm
1305 }
1306 //
1307 // Run over tracks - extended nuclei algorithm
1308 //
1309 if ( hasExtNucleiTrk ){
1310 Int_t ttentry = 0;
1311 for(Int_t nt=0; nt < tcExtNucleiTrk->GetEntries(); nt++){
1312 //
1313 ExtTrack *ptt = (ExtTrack*)(tcExtNucleiTrk->At(nt));
1314 //
1315 // Copy the alpha vector in the input structure
1316 //
1317 for (Int_t e = 0; e < 5 ; e++){
1318 tofinput_.al_pp[e] = ptt->al[e];
1319 }
1320 // new input for 9th reduction: tracker dEdx
1321 tofinput_.trkmip = ptt->GetDEDX();
1322 //
1323 // Get tracker related variables for this track
1324 //
1325 toftrk();
1326 //
1327 // Copy values in the class from the structure (we need to use a temporary class to store variables).
1328 //
1329 t_tof->npmttdc = 0;
1330 for (Int_t hh=0; hh<12;hh++){
1331 for (Int_t kk=0; kk<4;kk++){
1332 if ( tofoutput_.tofmask[hh][kk] != 0 ){
1333 pmt_id = tof->GetPMTid(kk,hh);
1334 t_tof->pmttdc.AddAt(pmt_id,t_tof->npmttdc);
1335 t_tof->tdcflag.AddAt(tofoutput_.tdcflag[hh][kk],t_tof->npmttdc); // gf: Jan 09/07
1336 t_tof->npmttdc++;
1337 }
1338 }
1339 }
1340 for (Int_t kk=0; kk<13;kk++){
1341 t_tof->beta[kk] = tofoutput_.beta_a[kk];
1342 }
1343 memcpy(t_tof->xtofpos,tofoutput_.xtofpos,sizeof(t_tof->xtofpos));
1344 memcpy(t_tof->ytofpos,tofoutput_.ytofpos,sizeof(t_tof->ytofpos));
1345 memcpy(t_tof->xtr_tof,tofoutput_.xtr_tof,sizeof(t_tof->xtr_tof));
1346 memcpy(t_tof->ytr_tof,tofoutput_.ytr_tof,sizeof(t_tof->ytr_tof));
1347 //
1348 tofdedx->Process(atime,t_tof->beta[12], (Float_t *)t_tof->xtr_tof,(Float_t *)t_tof->ytr_tof);
1349 t_tof->npmtadc = 0;
1350 for (Int_t hh=0; hh<12;hh++){
1351 for (Int_t kk=0; kk<4;kk++){
1352 pmt_id = tof->GetPMTid(kk,hh);
1353 Int_t Iplane=-1;
1354 Int_t Ipaddle=-1;
1355 Int_t IpaddleT=-1;
1356 tof->GetPMTPaddle(pmt_id, Iplane, Ipaddle);
1357 IpaddleT=tof->GetPaddleIdOfTrack(t_tof->xtr_tof[Iplane],t_tof->ytr_tof[Iplane], Iplane,0.0);
1358 if ( debug ) printf(" 1nt %i pmt_id %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,pmt_id,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1359 if (tofEvent->tdc[kk][hh] < 4095 || tofEvent->adc[kk][hh] < 4095 || tofinput_.tdc[hh][kk] < 4095 || tofinput_.adc[hh][kk] < 4095 ) {
1360 if ( tofdedx->GetdEdx_pmt(pmt_id) > -1. && (inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)) > 0. && Ipaddle==IpaddleT ){
1361 t_tof->dedx.AddAt((inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),t_tof->npmtadc);// RC new dE/dx II order correction
1362 if ( debug ) printf(" 2nt %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1363 t_tof->pmtadc.AddAt(pmt_id,t_tof->npmtadc);
1364 t_tof->adcflag.AddAt(0,t_tof->npmtadc); // gf: Jan 09/07
1365 t_tof->npmtadc++;
1366 }
1367 }
1368 }
1369 }
1370 //
1371 // Store the tracker track number in order to be sure to have shyncronized data during analysis
1372 //
1373 t_tof->trkseqno = nt;
1374 //
1375 // create a new object for this event with track-related variables
1376 //
1377 TClonesArray &tt2 = *ttofExtNucleiTrk;
1378 new(tt2[ttentry]) ToFTrkVar(*t_tof);
1379 ttentry++;
1380 t_tof->Clear();
1381 //
1382 } // loop on all the tracks, extended nuclei algorithm
1383 }
1384 //
1385 // Run over tracks - extended algorithm
1386 //
1387 if ( hasExtTrk ){
1388 Int_t ttentry = 0;
1389 for(Int_t nt=0; nt < tcExtTrk->GetEntries(); nt++){
1390 //
1391 ExtTrack *ptt = (ExtTrack*)(tcExtTrk->At(nt));
1392 //
1393 // Copy the alpha vector in the input structure
1394 //
1395 for (Int_t e = 0; e < 5 ; e++){
1396 tofinput_.al_pp[e] = ptt->al[e];
1397 }
1398 // new input for 9th reduction: tracker dEdx
1399 tofinput_.trkmip = ptt->GetDEDX();
1400 //
1401 // Get tracker related variables for this track
1402 //
1403 toftrk();
1404 //
1405 // Copy values in the class from the structure (we need to use a temporary class to store variables).
1406 //
1407 t_tof->npmttdc = 0;
1408 for (Int_t hh=0; hh<12;hh++){
1409 for (Int_t kk=0; kk<4;kk++){
1410 if ( tofoutput_.tofmask[hh][kk] != 0 ){
1411 pmt_id = tof->GetPMTid(kk,hh);
1412 t_tof->pmttdc.AddAt(pmt_id,t_tof->npmttdc);
1413 t_tof->tdcflag.AddAt(tofoutput_.tdcflag[hh][kk],t_tof->npmttdc); // gf: Jan 09/07
1414 t_tof->npmttdc++;
1415 }
1416 }
1417 }
1418 for (Int_t kk=0; kk<13;kk++){
1419 t_tof->beta[kk] = tofoutput_.beta_a[kk];
1420 }
1421 memcpy(t_tof->xtofpos,tofoutput_.xtofpos,sizeof(t_tof->xtofpos));
1422 memcpy(t_tof->ytofpos,tofoutput_.ytofpos,sizeof(t_tof->ytofpos));
1423 memcpy(t_tof->xtr_tof,tofoutput_.xtr_tof,sizeof(t_tof->xtr_tof));
1424 memcpy(t_tof->ytr_tof,tofoutput_.ytr_tof,sizeof(t_tof->ytr_tof));
1425 //
1426 tofdedx->Process(atime,t_tof->beta[12], (Float_t *)t_tof->xtr_tof,(Float_t *)t_tof->ytr_tof);
1427 t_tof->npmtadc = 0;
1428 for (Int_t hh=0; hh<12;hh++){
1429 for (Int_t kk=0; kk<4;kk++){
1430 pmt_id = tof->GetPMTid(kk,hh);
1431 Int_t Iplane=-1;
1432 Int_t Ipaddle=-1;
1433 Int_t IpaddleT=-1;
1434 tof->GetPMTPaddle(pmt_id, Iplane, Ipaddle);
1435 IpaddleT=tof->GetPaddleIdOfTrack(t_tof->xtr_tof[Iplane],t_tof->ytr_tof[Iplane], Iplane,0.0);
1436 if ( debug ) printf(" 1nt %i pmt_id %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,pmt_id,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1437 if (tofEvent->tdc[kk][hh] < 4095 || tofEvent->adc[kk][hh] < 4095 || tofinput_.tdc[hh][kk] < 4095 || tofinput_.adc[hh][kk] < 4095 ) {
1438 if ( tofdedx->GetdEdx_pmt(pmt_id) > -1. && (inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)) > 0. && Ipaddle==IpaddleT ){
1439 t_tof->dedx.AddAt((inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),t_tof->npmtadc);// RC new dE/dx II order correction
1440 if ( debug ) printf(" 2nt %i npmtadc %i dedx %f dedx slope %f dedx inter %f\n",nt,t_tof->npmtadc,(inter_dedx[pmt_id]+slope_dedx[pmt_id]*tofdedx->GetdEdx_pmt(pmt_id)),inter_dedx[pmt_id],slope_dedx[pmt_id]);
1441 t_tof->pmtadc.AddAt(pmt_id,t_tof->npmtadc);
1442 t_tof->adcflag.AddAt(0,t_tof->npmtadc); // gf: Jan 09/07
1443 t_tof->npmtadc++;
1444 }
1445 }
1446 }
1447 }
1448 //
1449 // Store the tracker track number in order to be sure to have shyncronized data during analysis
1450 //
1451 t_tof->trkseqno = nt;
1452 //
1453 // create a new object for this event with track-related variables
1454 //
1455 TClonesArray &tt3 = *ttofExtTrk;
1456 new(tt3[ttentry]) ToFTrkVar(*t_tof);
1457 ttentry++;
1458 t_tof->Clear();
1459 //
1460 } // loop on all the tracks, extended algorithm
1461 }
1462
1463 } // if !l1only
1464 //
1465 tof->unpackError = tofEvent->unpackError;
1466
1467 a = 0;
1468 b = 0;
1469 if ( !tof->checkPMTpatternPMThit(trg, a, b) ) warning |= 1 << 1;
1470 if ( !tof->checkPMTpmttrig(trg) ) warning |= 1 << 2;
1471 if ( !trg->checkPMTpatterntrig() ) warning |= 1 << 3;
1472 tof->unpackWarning = warning;
1473
1474 if ( defcal ){
1475 tof->default_calib = 1;
1476 } else {
1477 tof->default_calib = 0;
1478 }
1479 //
1480 // Fill the rootple
1481 //
1482 toft->Fill();
1483 //
1484 //
1485 //
1486 delete t_tof;
1487 //
1488 //
1489 //
1490 jumpev:
1491 if ( !debug ) debug = false;
1492 //
1493 }
1494 //
1495 // Here you may want to clear some variables before processing another run
1496 //
1497 delete dbtime;
1498 } // process all the runs
1499 //
1500 if ( verbose ) printf("\n Finished processing data \n");
1501 //
1502 closeandexit:
1503 //
1504 // we have finished processing the run(s). If we processed a single run now we must copy all the events after our run from the old tree to the new one and delete the old tree.
1505 //
1506 if ( !reprocall && reproc && code >= 0 ){
1507 if ( totfileentries > noaftrun ){
1508 if ( verbose ) printf("\n Post-processing: copying events from the old tree after the processed run\n");
1509 if ( verbose ) printf(" Copying %i events in the file which are after the end of the run %i \n",(int)(totfileentries-noaftrun),(int)run);
1510 if ( verbose ) printf(" Start copying at event number %i end copying at event number %i \n",(int)noaftrun,(int)totfileentries);
1511 for (UInt_t j = noaftrun; j < totfileentries; j++ ){
1512 //
1513 // Get entry from old tree
1514 //
1515 if ( toftclone->GetEntry(j) <= 0 ) throw -36;
1516 //
1517 // copy tofclone to tof
1518 //
1519 tof->Clear();
1520 if ( !l1only ) memcpy(&tof,&tofclone,sizeof(tofclone));
1521 //
1522 // Fill entry in the new tree
1523 //
1524 if ( !l1only ) toft->Fill();
1525 };
1526 if ( verbose ) printf(" Finished successful copying!\n");
1527 };
1528 };
1529 //
1530 // Close files, delete old tree(s), write and close level2 file
1531 //
1532 if ( l0File ) l0File->Close();
1533 if ( tempfile ) tempfile->Close();
1534 if ( myfold ) gSystem->Unlink(tempname.str().c_str());
1535 //
1536 if ( code < 0 && verbose ) printf("\n TOF - ERROR: an error occurred, try to save anyway...\n");
1537 if ( verbose ) printf("\n Writing and closing rootple\n");
1538 if ( toft ) toft->SetName("ToF");
1539 if ( file ){
1540 file->cd();
1541 if ( toft ) toft->Write(0, TObject::kOverwrite); // 10RED bug fixed
1542 };
1543 //
1544 if ( myfold ) gSystem->Unlink(toffolder.str().c_str());
1545 //
1546 // the end
1547 //
1548 if ( tcNucleiTrk ){
1549 tcNucleiTrk->Delete();
1550 delete tcNucleiTrk;
1551 tcNucleiTrk = NULL;
1552 }
1553 if ( tcExtNucleiTrk ){
1554 tcExtNucleiTrk->Delete();
1555 delete tcExtNucleiTrk;
1556 tcExtNucleiTrk = NULL;
1557 }
1558 if ( tcExtTrk ){
1559 tcExtTrk->Delete();
1560 delete tcExtTrk;
1561 tcExtTrk = NULL;
1562 }
1563 //
1564 if ( verbose ) printf("\n Exiting...\n");
1565 //
1566 if ( tofdedx ) delete tofdedx;
1567 if ( glroot ) delete glroot;
1568 if ( glparam ) delete glparam;
1569 if ( runinfo ) runinfo->Close();
1570 if ( runinfo ) delete runinfo;
1571 //
1572 if ( code < 0 ) throw code;
1573 return(code);
1574 }

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