/[PAMELA software]/calo/flight/CaloEnergy/src/CaloEnergy.cpp
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Contents of /calo/flight/CaloEnergy/src/CaloEnergy.cpp

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Revision 1.14 - (show annotations) (download)
Fri Aug 21 07:06:37 2009 UTC (15 years, 3 months ago) by mocchiut
Branch: MAIN
Changes since 1.13: +2 -0 lines
Small feature added

1 #include <CaloEnergy.h>
2 #include <PamLevel2.h>
3
4 //--------------------------------------
5 /**
6 * Default constructor
7 */
8 CaloEnergy::CaloEnergy(){
9 Clear();
10 }
11
12 CaloEnergy::CaloEnergy(PamLevel2 *l2p){
13 //
14 Clear();
15 //
16 L2 = l2p;
17 //
18 if ( !L2->IsORB() ) printf(" WARNING: OrbitalInfo Tree is needed, the plugin could not work properly without it \n");
19 //
20 fSimu = false;
21 this->Set();
22 //
23 }
24
25 CaloEnergy::CaloEnergy(PamLevel2 *l2p, Bool_t simulation){
26 //
27 Clear();
28 //
29 L2 = l2p;
30 //
31 if ( !L2->IsORB() ) printf(" WARNING: OrbitalInfo Tree is needed, the plugin could not work properly without it \n");
32 //
33 fSimu = simulation;
34 this->Set();
35 //
36 }
37
38 void CaloEnergy::Delete(){
39 Clear();
40 delete this;
41 }
42
43 void CaloEnergy::UseLevel2(){
44 if ( clong ){
45 delete clong;
46 clong = new CaloLong(L2);
47 clong->SplitInto(0,22);
48 };
49 if ( cp ) delete cp;
50 cp = NULL;
51 }
52
53 void CaloEnergy::UseCaloPreSampler(){
54 //
55 // use the presampler setting forcefitmode to 1000 means to force the DV routine to find the track inside the calorimeter using the "shower" approach developed for electrons
56 //
57 if ( !cp ) cp = new CaloPreSampler(L2);
58 cp->SplitInto(0,22);
59 cp->SetForceFitMode(1000);
60 // cp->UseTracker(false);
61 // cp->ForceCaloFit();
62 // cp->SetDebug(true);
63 // cp->Process();
64 if ( clong ) clong->SetCaloLevel2Pointer(cp->GetLevel2Pointer());
65 }
66
67
68 void CaloEnergy::UseLongFit(){
69 fPl = 0;
70 fLong = true;
71 if ( !clong ){
72 clong = new CaloLong(L2);
73 if ( cp ) clong->SetCaloLevel2Pointer(cp->GetLevel2Pointer());
74 clong->SplitInto(0,22);
75 };
76 //
77 }
78
79 void CaloEnergy::Set(){
80 //
81 // set default values, NB default conversion factor for energy is just very approximated!
82 //
83 OBT = 0;
84 PKT = 0;
85 atime = 0;
86 sntr = "start";
87 //
88 AOBT = 0;
89 APKT = 0;
90 aatime = 0;
91 asntr = "start";
92 //
93 debug = false;
94 //
95 indep = false;
96 //
97 fAllpl = true;
98 fLong = false;
99 fPl = 1;
100 fRad = -1;
101 cp = NULL;
102 clong = NULL;
103 x0max = -1.;
104 //
105 multicol = false;
106 //
107 this->DefineGeometry();
108 fXosel =true;
109 fXesel = true;
110 fYosel = true;
111 fYesel = true;
112 fConv_rxe = 44.4;
113 fConv_rxo = 44.4;
114 fConv_ryo = 44.4;
115 fConv_rye = 44.4;
116 fXomin = 1000;
117 fXemin = 1000;
118 fYomin = 1000;
119 fYemin = 1000;
120 //
121 this->UseCaloPreSampler(); // use it by default, to go back to "standard" mode use CaloEnergy::UseLevel2().
122 //
123 }
124 void CaloEnergy::DefineGeometry(){
125 //
126 // Use CaloStrip to determine once the position of border strips for each section
127 //
128 // fM = 2. + 0.096; // real position from cbar BUG the 0.096 is already taken into account in the border calculation made by Giovanna
129 fM = 2. ; // real position from cbar
130 // fM1 = 2. - 0.122 - 0.096; // due to calculation of xe1 etc. BUG! this way we count from the silicon border not from the silicon sensitive area
131 fM1 = 2. - 0.122 - 0.096 + 0.096; // due to calculation of xe1 etc.
132 if ( fM1 < 0. ) fM1 = 0.;
133 //
134 CaloStrip *cs = new CaloStrip(fSimu);
135 //
136 // view y plane 0 strip 0
137 cs->Set(1,0,0);
138 xe1= cs->GetY();
139 // view y plane 0 strip 31
140 cs->Set(1,0,31);
141 xe2= cs->GetY();
142 // view y plane 0 strip 32
143 cs->Set(1,0,32);
144 xe3= cs->GetY();
145 // view y plane 0 strip 63
146 cs->Set(1,0,63);
147 xe4= cs->GetY();
148 // view y plane 0 strip 64
149 cs->Set(1,0,64);
150 xe5= cs->GetY();
151 // view y plane 0 strip 95
152 cs->Set(1,0,95);
153 xe6= cs->GetY();
154 // view x plane 0 strip 0
155 cs->Set(0,0,0);
156 yo1= cs->GetX();
157 // view x plane 0 strip 31
158 cs->Set(0,0,31);
159 yo2= cs->GetX();
160 // view x plane 0 strip 32
161 cs->Set(0,0,32);
162 yo3= cs->GetX();
163 // view x plane 0 strip 63
164 cs->Set(0,0,63);
165 yo4= cs->GetX();
166 // view x plane 0 strip 64
167 cs->Set(0,0,64);
168 yo5= cs->GetX();
169 // view x plane 0 strip 95
170 cs->Set(0,0,95);
171 yo6= cs->GetX();
172 // view y plane 1 strip 0
173 cs->Set(1,1,0);
174 xo1= cs->GetY();
175 // view y plane 1 strip 31
176 cs->Set(1,1,31);
177 xo2= cs->GetY();
178 // view y plane 1 strip 32
179 cs->Set(1,1,32);
180 xo3= cs->GetY();
181 // view y plane 1 strip 63
182 cs->Set(1,1,63);
183 xo4= cs->GetY();
184 // view y plane 1 strip 64
185 cs->Set(1,1,64);
186 xo5= cs->GetY();
187 // view y plane 1 strip 95
188 cs->Set(1,1,95);
189 xo6= cs->GetY();
190 // view x plane 1 strip 0
191 cs->Set(0,1,0);
192 ye1= cs->GetX();
193 // view x plane 1 strip 31
194 cs->Set(0,1,31);
195 ye2= cs->GetX();
196 // view x plane 1 strip 32
197 cs->Set(0,1,32);
198 ye3= cs->GetX();
199 // view x plane 1 strip 63
200 cs->Set(0,1,63);
201 ye4= cs->GetX();
202 // view x plane 1 strip 64
203 cs->Set(0,1,64);
204 ye5= cs->GetX();
205 // view x plane 1 strip 95
206 cs->Set(0,1,95);
207 ye6= cs->GetX();
208 //
209 for (Int_t p = 0; p<22; p ++){
210 for (Int_t v = 0; v<2; v++ ){
211 cs->Set(v,p,0);
212 trk_z[p][v]= cs->GetZ(); // Z coord for each plane
213 };
214 };
215 //
216 delete cs;
217 //
218 }
219
220 void CaloEnergy::Clear(){
221 //
222 // clear variables
223 //
224 fPartsel = false;
225 fSel = false;
226 fXosel = false;
227 fXesel = false;
228 fYosel = false;
229 fYesel = false;
230 fCount = 0.;
231 fEnergy = 0.;
232 fEnergyxe = 0.;
233 fEnergyxo = 0.;
234 fEnergyye = 0.;
235 fEnergyyo = 0.;
236 fMax_plane = 0;
237 fMax_planexo = 0;
238 fMax_planexe = 0;
239 fMax_planeyo = 0;
240 fMax_planeye = 0;
241 xomax_en= 0.;
242 xemax_en= 0.;
243 yomax_en= 0.;
244 yemax_en= 0.;
245 //
246 memset(enstrip,0,2*22*96*(sizeof(Float_t)));
247 en = 0.;
248 view = 0;
249 plane = 0;
250 strip = 0;
251 energyxe = 0.;
252 energyyo = 0.;
253 energyxo = 0.;
254 energyye = 0.;
255 fYoout = 0;
256 fYeout = 0;
257 fXoout = 0;
258 fXeout = 0;
259 fXEen_maxplane = 0.;
260 fXOen_maxplane = 0.;
261 fYEen_maxplane = 0.;
262 fYOen_maxplane = 0.;
263 memset(en_xep,0,11*sizeof(Float_t));
264 memset(en_yep,0,11*sizeof(Float_t));
265 memset(en_xop,0,11*sizeof(Float_t));
266 memset(en_yop,0,11*sizeof(Float_t));
267 //
268 fColumn = -1;
269 fColXE = -1;
270 fColXO = -1;
271 fColYE = -1;
272 fColYO = -1;
273 memset(encol,0,2*3*sizeof(Float_t));
274 entot[0] = 0.;
275 entot[1] = 0.;
276 //
277 }
278
279 void CaloEnergy::Print(){
280 //
281 printf("========================================================================\n");
282 printf(" OBT: %u PKT: %u ATIME: %u \n",OBT,PKT,atime);
283 printf(" fEnergy :.............. %f \n",fEnergy);
284 printf(" fMax_plane :........... %f \n",fMax_plane);
285 printf(" fMax_planexo :......... %i \n",fMax_planexo);
286 printf(" fMax_planexe :......... %i \n",fMax_planexe);
287 printf(" fMax_planeyo :......... %i \n",fMax_planeyo);
288 printf(" fMax_planeye :......... %i \n",fMax_planeye);
289 printf(" fCount :.............. %f \n",fCount);
290 printf(" fSel :.............. %i \n",fSel);
291 printf(" fPartsel:.............. %i \n",fPartsel);
292 printf(" fXesel :.............. %i \n",fXesel);
293 printf(" fXosel :.............. %i \n",fXosel);
294 printf(" fYesel :.............. %i \n",fYesel);
295 printf(" fYosel :.............. %i \n",fYosel);
296 printf(" fXemin :.............. %i \n",fXemin);
297 printf(" fXomin :.............. %i \n",fXomin);
298 printf(" fYemin :.............. %i \n",fYemin);
299 printf(" fYomin :.............. %i \n",fYomin);
300 printf(" fXeout :.............. %i \n",fXeout);
301 printf(" fXoout :.............. %i \n",fXoout);
302 printf(" fYeout :.............. %i \n",fYeout);
303 printf(" fYoout :.............. %i \n",fYoout);
304 printf(" fSimu :.............. %i \n",fSimu);
305 printf(" fM :.............. %f \n",fM);
306 printf(" fM1 :.............. %f \n",fM1);
307 printf(" fRad :.............. %i \n",fRad);
308 printf(" fPl :.............. %i \n",fPl);
309 printf(" fColumn :.............. %i \n",fColumn);
310 printf(" multicol:.............. %i \n",multicol);
311 printf(" encol x :.............. %f \n",this->GetEncol(0));
312 printf(" encol y :.............. %f \n",this->GetEncol(1));
313 printf(" entot x :.............. %f \n",this->GetEntot(0));
314 printf(" entot y :.............. %f \n",this->GetEntot(1));
315 printf(" fColXE :.............. %i \n",fColXE);
316 printf(" fColXO :.............. %i \n",fColXO);
317 printf(" fColYE :.............. %i \n",fColYE);
318 printf(" fColYO :.............. %i \n",fColYO);
319 printf(" fConv_rxe ............. %f \n",fConv_rxe);
320 printf(" fConv_rxo ............. %f \n",fConv_rxo);
321 printf(" fConv_ryo ............. %f \n",fConv_ryo);
322 printf(" fConv_rye ............. %f \n",fConv_rye);
323 printf(" fLong :.............. %i \n",fLong);
324 printf(" energyxe:.............. %f \n",energyxe);
325 printf(" energyxo:.............. %f \n",energyxo);
326 printf(" energyye:.............. %f \n",energyye);
327 printf(" energyyo:.............. %f \n",energyyo);
328 printf(" fXEen_maxplane:........ %f \n",fXEen_maxplane);
329 printf(" fXOen_maxplane:........ %f \n",fXOen_maxplane);
330 printf(" fYEen_maxplane:........ %f \n",fYEen_maxplane);
331 printf(" fYOen_maxplane:........ %f \n",fYOen_maxplane);
332 printf(" x0max :.............. %f \n",x0max);
333 printf(" debug :.............. %i \n",debug);
334
335 printf("========================================================================\n");
336 //
337 }
338
339 void CaloEnergy::SetMinimumContainment(TString section, Int_t plane){
340 section.ToUpper();
341 if ( section.Contains("XO") ) fXomin = plane;
342 if ( section.Contains("XE") ) fXemin = plane;
343 if ( section.Contains("YO") ) fYomin = plane;
344 if ( section.Contains("YE") ) fYemin = plane;
345 }
346
347 void CaloEnergy::SetMinimumContainment(Int_t plane){
348 this->SetMinimumContainment("XEXOYEYO",plane);
349 }
350
351 void CaloEnergy::SetConversionFactor(TString section, Float_t conv){
352 section.ToUpper();
353 if ( section.Contains("XO") ) fConv_rxo = conv;
354 if ( section.Contains("XE") ) fConv_rxe = conv;
355 if ( section.Contains("YO") ) fConv_ryo = conv;
356 if ( section.Contains("YE") ) fConv_rye = conv;
357 }
358
359 void CaloEnergy::SetConversionFactor(Float_t conv){
360 this->SetConversionFactor("XEXOYEYO",conv);
361 }
362
363 Int_t CaloEnergy::GetMinimumContainment(TString section){
364 section.ToUpper();
365 if ( section.Contains("XO") ) return(fXomin);
366 if ( section.Contains("XE") ) return(fXemin);
367 if ( section.Contains("YE") ) return(fYemin);
368 if ( section.Contains("YO") ) return(fYomin);
369 printf(" ERROR: section not recognized \n");
370 return(-1000);
371 }
372
373 Float_t CaloEnergy::GetConversionFactor(TString section){
374 section.ToUpper();
375 if ( section.Contains("XO") ) return(fConv_rxo);
376 if ( section.Contains("XE") ) return(fConv_rxe);
377 if ( section.Contains("YO") ) return(fConv_ryo);
378 if ( section.Contains("YE") ) return(fConv_rye);
379 printf(" ERROR: section not recognized \n");
380 return(-1000.);
381 }
382
383 Int_t CaloEnergy::GetMaxplane(TString section){
384 section.ToUpper();
385 if ( section.Contains("XO") ) return fMax_planexo;
386 if ( section.Contains("XE") ) return fMax_planexe;
387 if ( section.Contains("YO") ) return fMax_planeyo;
388 if ( section.Contains("YE") ) return fMax_planeye;
389 return(-1);
390 }
391
392 Int_t CaloEnergy::GetColumn(TString section){
393 section.ToUpper();
394 if ( section.Contains("XO") ) return fColXO;
395 if ( section.Contains("XE") ) return fColXE;
396 if ( section.Contains("YO") ) return fColYO;
397 if ( section.Contains("YE") ) return fColYE;
398 return(-1);
399 }
400
401 Float_t CaloEnergy::GetMipEnergyAtMaxplane(TString section){
402 printf(" WARNING: OBSOLETE METHOD, use GetMipEnergyAtMaxplane(TString) instead! \n");
403 return (this->GetEnergyAtMaxplane(section));
404 }
405
406 Float_t CaloEnergy::GetEnergyAtMaxplane(TString section){
407 section.ToUpper();
408 if ( section.Contains("XO") ) return xomax_en;
409 if ( section.Contains("XE") ) return xemax_en;
410 if ( section.Contains("YO") ) return yomax_en;
411 if ( section.Contains("YE") ) return yemax_en;
412 return(-1);
413 }
414
415 Float_t CaloEnergy::GetMaxEnergy(TString section){
416 printf(" WARNING: OBSOLETE METHOD, use GetMipEnergy(TString) instead! \n");
417 return (this->GetMipEnergy(section));
418 }
419
420 Float_t CaloEnergy::GetMipEnergy(TString section){
421 section.ToUpper();
422 if ( fLong ){
423 this->Process(section);
424 return fXOen_maxplane;
425 } else {
426 if ( section.Contains("XO") ) return fXOen_maxplane;
427 if ( section.Contains("XE") ) return fXEen_maxplane;
428 if ( section.Contains("YO") ) return fYOen_maxplane;
429 if ( section.Contains("YE") ) return fYEen_maxplane;
430 };
431 return(-1);
432 }
433
434 Float_t CaloEnergy::GetEncol(Int_t i){
435 if ( fColumn > -1 && (((fXesel || fXosel)&&i==1) || ((fYesel || fYosel)&&i==0)) ){
436 Int_t t = -1;
437 if ( i == 0 ){
438 if ( fColumn == 0 || fColumn == 3 || fColumn == 6 ) t = 0;
439 if ( fColumn == 1 || fColumn == 4 || fColumn == 7 ) t = 1;
440 if ( fColumn == 2 || fColumn == 5 || fColumn == 8 ) t = 2;
441 } else {
442 if ( fColumn == 0 || fColumn == 1 || fColumn == 2 ) t = 0;
443 if ( fColumn == 3 || fColumn == 4 || fColumn == 5 ) t = 1;
444 if ( fColumn == 6 || fColumn == 7 || fColumn == 8 ) t = 2;
445 };
446 if ( debug ) printf(" encol: i %i t %i encol %f \n",i,t,encol[i][t]);
447 return encol[i][t];
448 };
449 return(-1.);
450 }
451
452 Float_t CaloEnergy::GetMaxEnergy(){
453 printf(" WARNING: OBSOLETE METHOD, use GetMipEnergy() instead! \n");
454 return (this->GetMipEnergy());
455 }
456
457 Float_t CaloEnergy::GetMipEnergy(){
458 if ( fLong ){
459 if ( debug ) printf(" oh! call process! with asntr %s and sntr %s \n",asntr.Data(),sntr.Data());
460 this->Process(asntr);
461 };
462 return((fXEen_maxplane+fYOen_maxplane+fYEen_maxplane+fXOen_maxplane));
463 }
464
465
466 Bool_t CaloEnergy::IsInsideAcceptance(TString section){
467 //
468 // check if the event is inside the acceptance of the given section(s)
469 //
470 TString ntr = section;
471 if ( !L2 ){
472 printf(" ERROR: cannot find PamLevel2 object, use the correct constructor or check your program!\n");
473 printf(" ERROR: CaloEnergy variables not filled \n");
474 return false;
475 };
476 //
477 Bool_t newentry = false;
478 //
479 if ( L2->IsORB() ){
480 if ( L2->GetOrbitalInfo()->pkt_num != APKT || L2->GetOrbitalInfo()->OBT != AOBT || L2->GetOrbitalInfo()->absTime != aatime || strcmp(ntr.Data(),asntr.Data()) ){
481 newentry = true;
482 AOBT = L2->GetOrbitalInfo()->OBT;
483 APKT = L2->GetOrbitalInfo()->pkt_num;
484 aatime = L2->GetOrbitalInfo()->absTime;
485 asntr = ntr;
486 };
487 } else {
488 newentry = true;
489 };
490 //
491 // if we have already called this method for this event and no input changed then return fSel and exit
492 //
493 if ( !newentry ) return fSel;
494 //
495 // process the event
496 //
497 if ( debug ) printf(" ########## IsInsideAcceptance ######### \n");
498 //
499 // clear variables
500 //
501 this->Clear();
502 //
503 section.ToUpper();
504 //
505 // Count the number of section(s) given as input
506 //
507 Int_t fNumSec = Int_t(section.Contains("XO"))+Int_t(section.Contains("XE"))+Int_t(section.Contains("YO"))+Int_t(section.Contains("YE"));
508 if ( !fNumSec ){
509 printf(" ERROR: section must be XO or XE or YO or YE while it is %s \n",section.Data());
510 return false;
511 };
512 //
513 // If the presampler object exists then use the presampler output instead of the level2 output
514 //
515 CaloLevel2 *cl2 = NULL;
516 if ( cp ){
517 cl2 = cp->GetCaloLevel2();
518 } else {
519 cl2 = L2->GetCaloLevel2();
520 };
521 //
522 // get the energy for every strip of the calorimeter
523 //
524 for (Int_t ch=0; ch< L2->GetCaloLevel1()->istrip; ch++){
525 en = L2->GetCaloLevel1()->DecodeEstrip(ch,view,plane,strip);
526 enstrip[view][plane][strip]=en;
527 };
528 //
529 if ( debug && ((fM1+0.122-0.244*(Float_t)fRad) < 0.) ) printf("Error: (fM1+0.122-0.244*(Float_t)fRad) < 0. fM1 %f fRad %i %f \n",fM1,fRad,(fM1+0.122-0.244*(Float_t)fRad));
530 //
531 // sum energy plane by plane for each sections
532 //
533 Float_t fen_xep[11];
534 Float_t fen_xop[11];
535 Float_t fen_yep[11];
536 Float_t fen_yop[11];
537 memset(fen_xep,0,11*sizeof(Float_t));
538 memset(fen_xop,0,11*sizeof(Float_t));
539 memset(fen_yep,0,11*sizeof(Float_t));
540 memset(fen_yop,0,11*sizeof(Float_t));
541 //
542 for (Int_t i=0;i<11;i++){
543 for(strip=0; strip<96; strip++) {
544 fen_xep[i] += enstrip[1][2*i][strip];
545 fen_yop[i] += enstrip[0][2*i][strip];
546 fen_xop[i] += enstrip[1][(2*i)+1][strip];
547 fen_yep[i] += enstrip[0][(2*i)+1][strip];
548 if ( fRad < 0 ){
549 //
550 // run over all the strips of the plane
551 //
552 en_xep[i] += enstrip[1][2*i][strip];
553 en_yop[i] += enstrip[0][2*i][strip];
554 en_xop[i] += enstrip[1][(2*i)+1][strip];
555 en_yep[i] += enstrip[0][(2*i)+1][strip];
556 } else {
557 //
558 // use only the strips inside a cylinder of given radius fRad
559 //
560 if ( cl2->cibar[2*i][1] >= 1 && cl2->cibar[2*i][1] <= 96 &&
561 (strip >= (cl2->cibar[2*i][1]-1-fRad)) && (strip <= (cl2->cibar[2*i][1]-1+fRad)) ) en_xep[i] += enstrip[1][2*i][strip];
562
563 if ( cl2->cibar[2*i][0] >= 1 && cl2->cibar[2*i][0] <= 96 &&
564 (strip >= (cl2->cibar[2*i][0]-1-fRad)) && (strip <= (cl2->cibar[2*i][0]-1+fRad)) ) en_yop[i] += enstrip[0][2*i][strip];
565
566 if ( cl2->cibar[(2*i)+1][1] >= 1 && cl2->cibar[(2*i)+1][1] <= 96 &&
567 (strip >= (cl2->cibar[(2*i)+1][1]-1-fRad)) && (strip <= (cl2->cibar[(2*i)+1][1]-1+fRad)) ) en_xop[i] += enstrip[1][(2*i)+1][strip];
568
569 if ( cl2->cibar[(2*i)+1][0] >= 1 && cl2->cibar[(2*i)+1][0] <= 96 &&
570 (strip >= (cl2->cibar[(2*i)+1][0]-1-fRad)) && (strip <= (cl2->cibar[(2*i)+1][0]-1+fRad)) ) en_yep[i] += enstrip[0][(2*i)+1][strip];
571 };
572 };
573 if ( debug ) printf(" ex_xep[%i] %f cibar %i \n",i,en_xep[i],cl2->cibar[2*i][1]);
574 if ( debug ) printf(" ex_xop[%i] %f cibar %i \n",i,en_xop[i],cl2->cibar[(2*i)+1][1]);
575 if ( debug ) printf(" ex_yep[%i] %f cibar %i \n",i,en_yep[i],cl2->cibar[(2*i)+1][0]);
576 if ( debug ) printf(" ex_yop[%i] %f cibar %i \n",i,en_yop[i],cl2->cibar[2*i][0]);
577 energyxe += en_xep[i];
578 energyyo += en_yop[i];
579 energyxo += en_xop[i];
580 energyye += en_yep[i];
581 };
582 //
583 // Find the plane of maximum for each section
584 //
585 //
586 Int_t xen = 0;
587 Int_t yon = 0;
588 Int_t xon = 0;
589 Int_t yen = 0;
590 Float_t en = 0.;
591 //
592 if ( section.Contains("XE") ){
593 yon++;
594 xon++;
595 yen++;
596 for (Int_t ipl =0; ipl < 11; ipl ++) {
597 en = fen_xep[ipl];
598 if ( !fAllpl ) en = en_xep[ipl];
599 if(en > xemax_en) {
600 xemax_en = en;
601 fMax_planexe = ipl;
602 };
603 };
604 };
605 //
606 if ( section.Contains("YO") ){
607 xon++;
608 yen++;
609 for (Int_t ipl =0; ipl < 11; ipl ++) {
610 en = fen_yop[ipl];
611 if ( !fAllpl ) en = en_yop[ipl];
612 if(en > yomax_en) {
613 yomax_en = en;
614 fMax_planeyo = ipl;
615 };
616 };
617 };
618 //
619 if ( section.Contains("XO") ){
620 yen++;
621 for (Int_t ipl =0; ipl < 11; ipl ++) {
622 en = fen_xop[ipl];
623 if ( !fAllpl ) en = en_xop[ipl];
624 if(en > xomax_en) {
625 xomax_en = en;
626 fMax_planexo = ipl;
627 };
628 };
629 };
630 //
631 if ( section.Contains("YE") ){
632 for (Int_t ipl =0; ipl < 11; ipl ++) {
633 en = fen_yep[ipl];
634 if ( !fAllpl ) en = en_yep[ipl];
635 if(en > yemax_en) {
636 yemax_en = en;
637 fMax_planeye = ipl;
638 };
639 };
640 };
641 //
642 // the maximum is given externally as X0, convert it to plane and section
643 //
644 if ( x0max > 0. ){
645 if ( debug ) printf(" CALCULATE MAX PLANE GIVEN X0 ASSUMING PERPENDICULAR TRACK \n");
646 Int_t wpl = (Int_t)roundf(x0max/0.76);
647 Bool_t isY = false;
648 if ( ((x0max/0.76)-(Float_t)wpl) > 0. ) isY = true;
649 xomax_en = 0.;
650 yemax_en = 0.;
651 xemax_en = 0.;
652 yomax_en = 0.;
653 //
654 if ( !(wpl%2) ){
655 // 0, 2, 4, ...
656 if ( isY ){
657 if ( section.Contains("YO") ) yomax_en = 1000.;
658 if ( section.Contains("XE") ) xemax_en = 500.;
659 fMax_planeyo=wpl/2;
660 fMax_planexe=wpl/2;
661 if ( section.Contains("XO") ) xomax_en = 10.;
662 if ( section.Contains("YE") ) yemax_en = 5.;
663 } else {
664 if ( section.Contains("YO") ) yomax_en = 500.;
665 if ( section.Contains("XE") ) xemax_en = 1000.;
666 fMax_planeyo=wpl/2;
667 fMax_planexe=wpl/2;
668 if ( section.Contains("XO") ) xomax_en = 5.;
669 if ( section.Contains("YE") ) yemax_en = 10.;
670 };
671 } else {
672 // 1, 3, 5, ...
673 if ( isY ){
674 if ( section.Contains("YE") ) yemax_en = 1000.;
675 if ( section.Contains("XO") ) xomax_en = 500.;
676 fMax_planeye=(wpl-1)/2;
677 fMax_planexo=(wpl-1)/2;
678 if ( section.Contains("XE") ) xemax_en = 10.;
679 if ( section.Contains("YO") ) yomax_en = 5.;
680 } else {
681 if ( section.Contains("YE") ) yemax_en = 500.;
682 if ( section.Contains("XO") ) xomax_en = 1000.;
683 fMax_planeye=(wpl-1)/2;
684 fMax_planexo=(wpl-1)/2;
685 if ( section.Contains("XE") ) xemax_en = 5.;
686 if ( section.Contains("YO") ) yomax_en = 10.;
687 };
688 };
689 if ( debug ) printf(" x0max %f x0max/0.76 %f wpl %i isY %i yomax_en %f xemax_en %f yemax_en %f xomax_en %f fMaxplane %i %i %i %i\n",x0max,(x0max/0.76),wpl,isY,yomax_en,xemax_en,yemax_en,xomax_en,fMax_planeyo,fMax_planexe,fMax_planeye,fMax_planexo);
690 };
691 //
692 Int_t nPl = fPl;
693 //
694 // Set the maximum in case of coherent mode was selected
695 //
696 if ( !indep ){
697 nPl = 0;
698 if ( debug ) printf(" A: Check maximum, coherent mode: xoen %f yoen %f xeen %f yeen %f xomax %i yomax %i xemax %i yemax %i\n",xomax_en,yomax_en,xemax_en,yemax_en,fMax_planexo,fMax_planeyo,fMax_planexe,fMax_planeye);
699 Int_t nummod = 0;
700 Int_t numexpl = 0;
701 if ( xomax_en > xemax_en && xomax_en > yemax_en && xomax_en > yomax_en ){
702 //
703 // Section XO contains the maximum energy release per plane of the whole calorimeter
704 //
705 if ( debug ) printf(" XO is MAX %i %i %i %i\n",xen,yon,xon,yen);
706 //
707 // fMax_plane is the plane of maximum + number of additional dE/dx measurement counting planes from 0 to 43
708 //
709 fMax_plane = (fNumSec * fMax_planexo) +(Float_t)xon + fPl;
710 //
711 // nummod is the integer part of the number of modules in which the maximum is contained
712 //
713 nummod = (Int_t)(((Float_t)fMax_plane)/(Float_t)fNumSec);
714 //
715 // numexpl is the number of additional planes (0,1,2) inside the module
716 //
717 numexpl = (Int_t)((Float_t)fMax_plane-(Float_t)fNumSec*(Float_t)nummod);
718 //
719 };
720 if ( xemax_en > xomax_en && xemax_en > yemax_en && xemax_en > yomax_en ){
721 if ( debug ) printf(" XE is MAX %i %i %i %i\n",xen,yon,xon,yen);
722 fMax_plane = (fNumSec * fMax_planexe) +(Float_t)xen + fPl;
723 nummod = (Int_t)(((Float_t)fMax_plane)/(Float_t)fNumSec);
724 numexpl = (Int_t)((Float_t)fMax_plane-(Float_t)fNumSec*(Float_t)nummod);
725 //
726 };
727
728 if ( yemax_en > xomax_en && yemax_en > xemax_en && yemax_en > yomax_en ){
729 if ( debug ) printf(" YE is MAX %i %i %i %i\n",xen,yon,xon,yen);
730 fMax_plane = (fNumSec * fMax_planeye) +(Float_t)yen + fPl;
731 nummod = (Int_t)(((Float_t)fMax_plane)/(Float_t)fNumSec);
732 numexpl = (Int_t)((Float_t)fMax_plane-(Float_t)fNumSec*(Float_t)nummod);
733 //
734 };
735 if ( yomax_en > xemax_en && yomax_en > yemax_en && yomax_en > xomax_en ){
736 if ( debug ) printf(" YO is MAX %i %i %i %i\n",xen,yon,xon,yen);
737 fMax_plane = (fNumSec * fMax_planeyo) +(Float_t)yon + fPl;
738 nummod = (Int_t)(((Float_t)fMax_plane)/(Float_t)fNumSec);
739 numexpl = (Int_t)((Float_t)fMax_plane-(Float_t)fNumSec*(Float_t)nummod);
740 //
741 };
742 //
743 // find the plane up to which is necessary to integrate the energy for each section
744 //
745 Int_t a = 0;
746 Int_t b = 0;
747 Int_t c = 0;
748 if ( numexpl > xen ) a = 1;
749 if ( numexpl > yon ) b = 1;
750 if ( numexpl > xon ) c = 1;
751 fMax_planexe = nummod;
752 fMax_planeyo = nummod - 1 + a;
753 fMax_planexo = nummod - 1 + b;
754 fMax_planeye = nummod - 1 + c;
755 if ( debug ) printf(" fMax_plane %f nummod %i numexpl %i a %i b %i c %i \n",fMax_plane,nummod,numexpl,a,b,c);
756 if ( debug ) printf(" DONE: Check maximum, coherent mode: xoen %f yoen %f xeen %f yeen %f xomax %i yomax %i xemax %i yemax %i\n",xomax_en,yomax_en,xemax_en,yemax_en,fMax_planexo,fMax_planeyo,fMax_planexe,fMax_planeye);
757 };
758 //
759 // for each plane of the calorimeter find the position of the track in the direction along the strip (where we do not have a measurement from the selected plane) by looking at the plane above/below of the other view and extrapolating the trajectory to the given plane
760 //
761 //
762 Float_t tgx_cl2;
763 Float_t tgy_cl2;
764 tgx_cl2 = cl2->tanx[0];
765 tgy_cl2 = cl2->tany[0];
766 //
767 for (Int_t p=0; p<22; p++){
768 track_coordy[p][1] = cl2->cbar[p][1];
769 track_coordx[p][1] = cl2->cbar[p][0] - fabs(trk_z[p][1]-trk_z[p][0])*tgx_cl2;
770 // track_coordx[p][1] = cl2->cbar[p][0] + fabs(trk_z[p][1]-trk_z[p][0])*tgx_cl2;
771 track_coordx[p][0] = cl2->cbar[p][0];
772 track_coordy[p][0] = cl2->cbar[p][1] - fabs(trk_z[p][1]-trk_z[p][0])*tgy_cl2;
773 // track_coordy[p][0] = cl2->cbar[p][1] + fabs(trk_z[p][1]-trk_z[p][0])*tgy_cl2;
774 if ( debug ) printf(" p %i track_coordy[p][1] %f track_coordx[p][1] %f track_coordx[p][0] %f track_coordy[p][0] %f \n",p,track_coordy[p][1],track_coordx[p][1],track_coordx[p][0],track_coordy[p][0]);
775 };
776 //
777 if ( debug ) printf(" acceptance fNumSec %i tgx %f tgy %f\n",fNumSec,tgx_cl2,tgy_cl2);
778 //
779 if ( section.Contains("XO") ){
780 //
781 // find the column hit in the first plane
782 //
783 Int_t ix = -1;
784 Int_t iy = -1;
785 if ( track_coordx[(2*0)+1][1] >= (-12.054+fM) && track_coordx[(2*0)+1][1] <= (-4.246-fM) ) ix = 0;
786 if ( track_coordx[(2*0)+1][1] >= ( -4.004+fM) && track_coordx[(2*0)+1][1] <= ( 3.804-fM) ) ix = 1;
787 if ( track_coordx[(2*0)+1][1] >= ( 4.046+fM) && track_coordx[(2*0)+1][1] <= (11.854-fM) ) ix = 2;
788 if ( cl2->cbar[(2*0)+1][1] >= (xo1 + fM1) && cl2->cbar[(2*0)+1][1] <= (xo2 - fM1) ) iy = 0;
789 if ( cl2->cbar[(2*0)+1][1] >= (xo3 + fM1) && cl2->cbar[(2*0)+1][1] <= (xo4 - fM1) ) iy = 1;
790 if ( cl2->cbar[(2*0)+1][1] >= (xo5 + fM1) && cl2->cbar[(2*0)+1][1] <= (xo6 - fM1) ) iy = 2;
791 if ( ix > -1 && iy > -1 ) fColXO = ix + iy*3;
792 //
793 // check event is inside XO acceptance, if multicol is false (SingleColumn mode) then the track must be contained in a column.
794 //
795 for (Int_t i=0; i<11; i++) {
796 if ((
797 ( track_coordx[(2*i)+1][1] >= (-12.054+fM) && track_coordx[(2*i)+1][1] <= (-4.246-fM) && (ix == 0 || multicol) ) ||
798 ( track_coordx[(2*i)+1][1] >= ( -4.004+fM) && track_coordx[(2*i)+1][1] <= ( 3.804-fM) && (ix == 1 || multicol) ) ||
799 ( track_coordx[(2*i)+1][1] >= ( 4.046+fM) && track_coordx[(2*i)+1][1] <= (11.854-fM) && (ix == 2 || multicol) )
800 ) && (
801 ( cl2->cbar[(2*i)+1][1] >= (xo1 + fM1) && cl2->cbar[(2*i)+1][1] <= (xo2 - fM1) && (iy == 0 || multicol) ) ||
802 ( cl2->cbar[(2*i)+1][1] >= (xo3 + fM1) && cl2->cbar[(2*i)+1][1] <= (xo4 - fM1) && (iy == 1 || multicol) ) ||
803 ( cl2->cbar[(2*i)+1][1] >= (xo5 + fM1) && cl2->cbar[(2*i)+1][1] <= (xo6 - fM1) && (iy == 2 || multicol) )
804 )){
805 fXosel = true;
806 fXoout = i;
807 } else {
808 fXosel = false;
809 break;
810 };
811 };
812 //
813 // if it goes out of the acceptance BUT the plane up to which we are integrating the energy is contained then the event is "partially" contained
814 //
815 if ( !fXosel && fXoout >= fXomin && fXoout >= (Int_t)(fMax_planexo+nPl) ){
816 if ( debug ) printf(" XO: this event is only partially contained: fXoout %i fXomin %i fMax_planexo + nPl %i \n",fXoout,fXomin,(Int_t)(fMax_planexo+nPl));
817 fPartsel = true;
818 fXosel = true;
819 };
820 //
821 // event is contained (or partially contained) hence we can integrate energy up to the maximum and calculate the energy as measured by this section
822 //
823 if ( fXosel ){
824 for (Int_t iplm=0; iplm<=TMath::Min(10,(Int_t)(fMax_planexo+nPl)); iplm++){
825 fXOen_maxplane += en_xop[iplm];
826 if ( debug ) printf(" XO iplm %i fXOen_maxplane %f en_xop[iplm] %f\n",iplm,fXOen_maxplane,en_xop[iplm]);
827 };
828 fEnergyxo = fXOen_maxplane/fConv_rxo;
829 //
830 for (Int_t i=0;i<11;i++){
831 for(strip=0; strip<96; strip++) {
832 //
833 // run over all the strips of the plane
834 //
835 if ( strip >= 0 && strip < 32 ) encol[1][0] += enstrip[1][(2*i)+1][strip];
836 if ( strip >= 32 && strip < 64 ) encol[1][1] += enstrip[1][(2*i)+1][strip];
837 if ( strip >= 64 && strip < 96 ) encol[1][2] += enstrip[1][(2*i)+1][strip];
838 entot[1] += enstrip[1][(2*i)+1][strip];
839 //
840 };
841 };
842 };
843 };
844 //
845 if ( section.Contains("XE") ){
846 //
847 // find the column hit in the first plane
848 //
849 Int_t ix = -1;
850 Int_t iy = -1;
851 if ( track_coordx[(2*0)][1] >= (-11.854+fM) && track_coordx[(2*0)][1] <= (-4.046-fM) ) ix = 0;
852 if ( track_coordx[(2*0)][1] >= ( -3.804+fM) && track_coordx[(2*0)][1] <= ( 4.004-fM) ) ix = 1;
853 if ( track_coordx[(2*0)][1] >= ( 4.246+fM) && track_coordx[(2*0)][1] <= (12.054-fM) ) ix = 2;
854 if ( cl2->cbar[(2*0)][1] >= (xe1 + fM1) && cl2->cbar[(2*0)][1] <= (xe2 - fM1) ) iy = 0;
855 if ( cl2->cbar[(2*0)][1] >= (xe3 + fM1) && cl2->cbar[(2*0)][1] <= (xe4 - fM1) ) iy = 1;
856 if ( cl2->cbar[(2*0)][1] >= (xe5 + fM1) && cl2->cbar[(2*0)][1] <= (xe6 - fM1) ) iy = 2;
857 if ( ix > -1 && iy > -1 ) fColXE = ix + iy*3;
858 //
859 // check event is inside XO acceptance
860 //
861 for (Int_t i=0; i<11; i++) {
862 if ((
863 ( track_coordx[(2*i)][1] >= (-11.854+fM) && track_coordx[(2*i)][1] <= (-4.046-fM) && (ix == 0 || multicol) ) ||
864 ( track_coordx[(2*i)][1] >= ( -3.804+fM) && track_coordx[(2*i)][1] <= ( 4.004-fM) && (ix == 1 || multicol) ) ||
865 ( track_coordx[(2*i)][1] >= ( 4.246+fM) && track_coordx[(2*i)][1] <= (12.054-fM) && (ix == 2 || multicol) )
866 ) && (
867 ( cl2->cbar[(2*i)][1] >= (xe1 + fM1) && cl2->cbar[(2*i)][1] <= (xe2 - fM1) && (iy == 0 || multicol) ) ||
868 ( cl2->cbar[(2*i)][1] >= (xe3 + fM1) && cl2->cbar[(2*i)][1] <= (xe4 - fM1) && (iy == 1 || multicol) ) ||
869 ( cl2->cbar[(2*i)][1] >= (xe5 + fM1) && cl2->cbar[(2*i)][1] <= (xe6 - fM1) && (iy == 2 || multicol) )
870 )){
871 fXesel = true;
872 fXeout = i;
873 } else {
874 fXesel = false;
875 break;
876 };
877 };
878 //
879 if ( !fXesel && fXeout >= fXemin && fXeout >= (Int_t)(fMax_planexe+nPl) ){
880 if ( debug ) printf(" XE: this event is only partially contained: fXeout %i fXemin %i fMax_planexe + nPl %i \n",fXeout,fXemin,(Int_t)(fMax_planexe+nPl));
881 fPartsel = true;
882 fXesel = true;
883 };
884 if ( fXesel ){
885 for (Int_t iplm=0;iplm<=TMath::Min(10,(Int_t)(fMax_planexe+nPl)) ;iplm++){
886 fXEen_maxplane += en_xep[iplm];
887 if ( debug ) printf(" XE iplm %i fXOen_maxplane %f en_xop[iplm] %f\n",iplm,fXEen_maxplane,en_xep[iplm]);
888 };
889 fEnergyxe = fXEen_maxplane/fConv_rxe;
890 //
891 for (Int_t i=0;i<11;i++){
892 for(strip=0; strip<96; strip++) {
893 //
894 // run over all the strips of the plane
895 //
896 if ( strip >= 0 && strip < 32 ) encol[1][0] += enstrip[1][(2*i)][strip];
897 if ( strip >= 32 && strip < 64 ) encol[1][1] += enstrip[1][(2*i)][strip];
898 if ( strip >= 64 && strip < 96 ) encol[1][2] += enstrip[1][(2*i)][strip];
899 entot[1] += enstrip[1][(2*i)][strip];
900 //
901 };
902 };
903 };
904 };
905 //
906 if ( section.Contains("YE") ){
907 //
908 // find the column hit in the first plane
909 //
910 Int_t ix = -1;
911 Int_t iy = -1;
912 if ( track_coordy[(2*0)+1][0] >= (-12.154+fM) && track_coordy[(2*0)+1][0] <= (-4.346-fM) ) iy = 0;
913 if ( track_coordy[(2*0)+1][0] >= ( -4.104+fM) && track_coordy[(2*0)+1][0] <= ( 3.704-fM) ) iy = 1;
914 if ( track_coordy[(2*0)+1][0] >= ( 3.946+fM) && track_coordy[(2*0)+1][0] <= (11.754-fM) ) iy = 2;
915 if ( cl2->cbar[(2*0)+1][0] >= (ye1 + fM1) && cl2->cbar[(2*0)+1][0] <= (ye2 - fM1) ) ix = 0;
916 if ( cl2->cbar[(2*0)+1][0] >= (ye3 + fM1) && cl2->cbar[(2*0)+1][0] <= (ye4 - fM1) ) ix = 1;
917 if ( cl2->cbar[(2*0)+1][0] >= (ye5 + fM1) && cl2->cbar[(2*0)+1][0] <= (ye6 - fM1) ) ix = 2;
918 if ( ix > -1 && iy > -1 ) fColYE = ix + iy*3;
919 //
920 // check event is inside XO acceptance
921 //
922 for (Int_t i=0; i<11; i++) {
923 if ((
924 ( track_coordy[(2*i)+1][0] >= (-12.154+fM) && track_coordy[(2*i)+1][0] <= (-4.346-fM) && (iy == 0 || multicol) ) ||
925 ( track_coordy[(2*i)+1][0] >= ( -4.104+fM) && track_coordy[(2*i)+1][0] <= ( 3.704-fM) && (iy == 1 || multicol) ) ||
926 ( track_coordy[(2*i)+1][0] >= ( 3.946+fM) && track_coordy[(2*i)+1][0] <= (11.754-fM) && (iy == 2 || multicol) )
927 ) && (
928 ( cl2->cbar[(2*i)+1][0] >= (ye1 + fM1) && cl2->cbar[(2*i)+1][0] <= (ye2 - fM1) && (ix == 0 || multicol) ) ||
929 ( cl2->cbar[(2*i)+1][0] >= (ye3 + fM1) && cl2->cbar[(2*i)+1][0] <= (ye4 - fM1) && (ix == 1 || multicol) ) ||
930 ( cl2->cbar[(2*i)+1][0] >= (ye5 + fM1) && cl2->cbar[(2*i)+1][0] <= (ye6 - fM1) && (ix == 2 || multicol) )
931 )){
932 fYesel = true;
933 fYeout = i;
934 } else {
935 fYesel = false;
936 break;
937 };
938 };
939 //
940 if ( !fYesel && fYeout >= fYemin && fYeout >= (Int_t)(fMax_planeye+nPl) ){
941 if ( debug ) printf(" YE: this event is only partially contained: fYeout %i fYemin %i fMax_planeye + nPl %i \n",fYeout,fYemin,(Int_t)(fMax_planeye+nPl));
942 fPartsel = true;
943 fYesel = true;
944 };
945 if ( fYesel ){
946 for (Int_t iplm=0;iplm<=TMath::Min(10,(Int_t)(fMax_planeye+nPl)) ;iplm++) fYEen_maxplane += en_yep[iplm];
947 fEnergyye = fYEen_maxplane/fConv_rye;
948 //
949 for (Int_t i=0;i<11;i++){
950 for(strip=0; strip<96; strip++) {
951 //
952 // run over all the strips of the plane
953 //
954 if ( strip >= 0 && strip < 32 ) encol[0][0] += enstrip[0][(2*i)+1][strip];
955 if ( strip >= 32 && strip < 64 ) encol[0][1] += enstrip[0][(2*i)+1][strip];
956 if ( strip >= 64 && strip < 96 ) encol[0][2] += enstrip[0][(2*i)+1][strip];
957 entot[0] += enstrip[0][(2*i)+1][strip];
958 //
959 };
960 };
961 //
962 };
963 };
964 //
965 if ( section.Contains("YO") ){
966 //
967 // find the column hit in the first plane
968 //
969 Int_t ix = -1;
970 Int_t iy = -1;
971 if ( track_coordy[(2*0)][0] >= (-11.954+fM) && track_coordy[(2*0)][0] <= (-4.146-fM) ) iy = 0;
972 if ( track_coordy[(2*0)][0] >= ( -3.904+fM) && track_coordy[(2*0)][0] <= ( 3.904-fM) ) iy = 1;
973 if ( track_coordy[(2*0)][0] >= ( 4.146+fM) && track_coordy[(2*0)][0] <= (11.954-fM) ) iy = 2;
974 if ( cl2->cbar[(2*0)][0] >= (yo1 + fM1) && cl2->cbar[(2*0)][0] <= (yo2 - fM1) ) ix = 0;
975 if ( cl2->cbar[(2*0)][0] >= (yo3 + fM1) && cl2->cbar[(2*0)][0] <= (yo4 - fM1) ) ix = 1;
976 if ( cl2->cbar[(2*0)][0] >= (yo5 + fM1) && cl2->cbar[(2*0)][0] <= (yo6 - fM1) ) ix = 2;
977 if ( ix > -1 && iy > -1 ) fColYO = ix + iy*3;
978 //
979 // check event is inside XO acceptance
980 //
981 for (Int_t i=0; i<11; i++) {
982 if ((
983 ( track_coordy[(2*i)][0] >= (-11.954+fM) && track_coordy[(2*i)][0] <= (-4.146-fM) && (iy == 0 || multicol) ) ||
984 ( track_coordy[(2*i)][0] >= ( -3.904+fM) && track_coordy[(2*i)][0] <= ( 3.904-fM) && (iy == 1 || multicol) ) ||
985 ( track_coordy[(2*i)][0] >= ( 4.146+fM) && track_coordy[(2*i)][0] <= (11.954-fM) && (iy == 2 || multicol) )
986 ) && (
987 ( cl2->cbar[(2*i)][0] >= (yo1 + fM1) && cl2->cbar[(2*i)][0] <= (yo2 - fM1) && (ix == 0 || multicol) ) ||
988 ( cl2->cbar[(2*i)][0] >= (yo3 + fM1) && cl2->cbar[(2*i)][0] <= (yo4 - fM1) && (ix == 1 || multicol) ) ||
989 ( cl2->cbar[(2*i)][0] >= (yo5 + fM1) && cl2->cbar[(2*i)][0] <= (yo6 - fM1) && (ix == 2 || multicol) )
990 )){
991 fYosel = true;
992 fYoout = i;
993 } else {
994 fYosel = false;
995 break;
996 };
997 };
998 //
999 if ( !fYosel && fYoout >= fYomin && fYoout >= (Int_t)(fMax_planeyo+nPl) ){
1000 if ( debug ) printf(" YO: this event is only partially contained: fYoout %i fYomin %i fMax_planeyo + nPl %i \n",fYoout,fYomin,(Int_t)(fMax_planeyo+nPl));
1001 fPartsel = true;
1002 fYosel = true;
1003 };
1004 if ( fYosel ){
1005 for (Int_t iplm=0;iplm<=TMath::Min(10,(Int_t)(fMax_planeyo+nPl)) ;iplm++) fYOen_maxplane += en_yop[iplm];
1006 fEnergyyo = fYOen_maxplane/fConv_ryo;
1007 //
1008 for (Int_t i=0;i<11;i++){
1009 for(strip=0; strip<96; strip++) {
1010 //
1011 // run over all the strips of the plane
1012 //
1013 if ( strip >= 0 && strip < 32 ) encol[0][0] += enstrip[0][(2*i)][strip];
1014 if ( strip >= 32 && strip < 64 ) encol[0][1] += enstrip[0][(2*i)][strip];
1015 if ( strip >= 64 && strip < 96 ) encol[0][2] += enstrip[0][(2*i)][strip];
1016 entot[0] += enstrip[0][(2*i)][strip];
1017 //
1018 };
1019 };
1020 };
1021 };
1022 //
1023 // Count the number of sections in which the event is contained
1024 //
1025 fCount = (Float_t)((Int_t)fXesel+(Int_t)fXosel+(Int_t)fYesel+(Int_t)fYosel);
1026 //
1027 if ( indep ){
1028 //
1029 // independent mode, average the energy measurement and max plane of the contained sections
1030 //
1031 fSel = ( fXesel || fYesel || fXosel || fYosel );
1032 fMax_plane = (Float_t)(fMax_planeyo+fMax_planeye+fMax_planexo+fMax_planexe)/fCount;
1033 fEnergy = (fEnergyxe+fEnergyyo+fEnergyye+fEnergyxo)/fCount;
1034 //
1035 } else {
1036 //
1037 // coherent mode, sum the energy [MIP] of the given sections and convert using fConv_rxo. **** NB: it is assumed that the conversion factor is unique and the method SetConvertionFactor(Float_t) has been used**** The event is selected only if it is contained in all the given sections
1038 //
1039 if ( fCount != fNumSec ){
1040 fSel = false;
1041 } else {
1042 fSel = true;
1043 };
1044 fEnergy = (fXEen_maxplane+fYOen_maxplane+fYEen_maxplane+fXOen_maxplane)/fConv_rxo;
1045 if ( fSel ){
1046 if ( fXesel ) fColumn = fColXE;
1047 if ( fXosel ){
1048 if ( fColXO != fColumn && fColumn > -1 ){
1049 printf(" ERROR! mismatch in column number between different sections! fColumn %i fColXO %i \n",fColumn,fColXO);
1050 } else {
1051 fColumn = fColXO;
1052 };
1053 };
1054 if ( fYesel ){
1055 if ( fColYE != fColumn && fColumn > -1 ){
1056 printf(" ERROR! mismatch in column number between different sections! fColumn %i fColYE %i \n",fColumn,fColYE);
1057 } else {
1058 fColumn = fColYE;
1059 };
1060 };
1061 if ( fYosel ){
1062 if ( fColYO != fColumn && fColumn > -1 ){
1063 printf(" ERROR! mismatch in column number between different sections! fColumn %i fColYO %i \n",fColumn,fColYO);
1064 } else {
1065 fColumn = fColYO;
1066 };
1067 };
1068 };
1069 };
1070 //
1071 if ( debug ) printf("sel %i indep %i fMax_plane %f conv_r %f en_maxplane %f encalo %f \n",fSel,indep,fMax_plane,fConv_rxo,fXOen_maxplane,fEnergy);
1072 if ( debug ) printf(" IsInside XE %i XO %i YE %i YO %i => SEL %i \n",fXesel,fXosel,fYesel,fYosel,fSel);
1073 //
1074 // finish exit
1075 //
1076 return fSel;
1077 //
1078 }
1079
1080 void CaloEnergy::Process(){
1081 TString xo = "XO";
1082 this->Process(xo);
1083 }
1084
1085
1086 void CaloEnergy::Process(TString section){
1087 //
1088 // process the event
1089 //
1090 TString ntr = section;
1091 if ( !L2 ){
1092 printf(" ERROR: cannot find PamLevel2 object, use the correct constructor or check your program!\n");
1093 printf(" ERROR: CaloEnergy variables not filled \n");
1094 return;
1095 };
1096 //
1097 Bool_t newentry = false;
1098 //
1099 if ( L2->IsORB() ){
1100 if ( L2->GetOrbitalInfo()->pkt_num != PKT || L2->GetOrbitalInfo()->OBT != OBT || L2->GetOrbitalInfo()->absTime != atime || strcmp(ntr.Data(),sntr.Data()) ){
1101 newentry = true;
1102 OBT = L2->GetOrbitalInfo()->OBT;
1103 PKT = L2->GetOrbitalInfo()->pkt_num;
1104 atime = L2->GetOrbitalInfo()->absTime;
1105 sntr = ntr;
1106 };
1107 } else {
1108 newentry = true;
1109 };
1110 //
1111 // if we have already called this method for this event and no input changed then return fSel and exit
1112 //
1113 if ( !newentry ) return;
1114 //
1115 // process the event
1116 //
1117 if ( debug ) printf(" Processing event at OBT %u PKT %u time %u section %s\n",OBT,PKT,atime,section.Data());
1118 //
1119 // check if the cylinder of integration can go out of the sensor given the frame which has been set (if we use all the calorimeter fRad is < 0 and the printout is suppressed)
1120 //
1121 if ( (fM1+0.122-0.244*(Float_t)fRad) < 0. ) printf("Error: (fM1+0.122-0.244*(Float_t)fRad) < 0. fM1 %f fRad %i %f \n",fM1,fRad,(fM1+0.122-0.244*(Float_t)fRad));
1122 //
1123 if ( fLong ){
1124 if ( debug ) printf(" ==================================================================> LONGITUDINAL FIT! \n");
1125 //
1126 // use long fit to measure energy
1127 //
1128 if ( this->IsInsideAcceptance(section) ){
1129 //
1130 if ( debug ) printf(" ==================================================================> LONG INSIDE! \n");
1131 //
1132 Float_t myene[2][22];
1133 memset(myene,0,(sizeof(Float_t))*2*22);
1134 for (Int_t j=0; j<11; j++){
1135 if ( section.Contains("XE") ) myene[1][2*j] = en_xep[j];
1136 if ( section.Contains("YO") ) myene[0][2*j] = en_yop[j];
1137 if ( section.Contains("XO") ) myene[1][(2*j)+1] = en_xop[j];
1138 if ( section.Contains("YE") ) myene[0][(2*j)+1] = en_yep[j];
1139 };
1140 clong->UnMaskSections();
1141 if ( !(section.Contains("YE")) ) clong->MaskSection("YE");
1142 if ( !(section.Contains("YO")) ) clong->MaskSection("YO");
1143 if ( !(section.Contains("XO")) ) clong->MaskSection("XO");
1144 if ( !(section.Contains("XE")) ) clong->MaskSection("XE");
1145 clong->ForceNextFit();
1146 clong->SetEnergies(myene);
1147 if ( debug ){
1148 clong->Fit(true);
1149 } else {
1150 clong->Fit();
1151 };
1152 if ( clong->GetLowerLimit() != 0. || clong->GetUpperLimit() != 0. ){
1153 fXOen_maxplane = clong->Get_defE0();
1154 } else {
1155 fXOen_maxplane = clong->Get_E0();
1156 };
1157 fMax_plane = clong->Get_tmax();
1158 fYOen_maxplane = 0.;
1159 fYEen_maxplane = 0.;
1160 fXEen_maxplane = 0.;
1161 fEnergy=fXOen_maxplane/fConv_rxo;
1162 if ( fEnergy != fEnergy || clong->Get_fitresult() != 0 ) fEnergy = -1.;
1163 // if ( fEnergy != fEnergy ) fEnergy = 1.;
1164 //
1165 } else {
1166 //
1167 // if the event is not in the acceptance, return a negative energy.
1168 //
1169 if ( debug ) printf(" Outside acceptance \n");
1170 fEnergy *= -1.;
1171 //
1172 };
1173 //
1174 } else {
1175 //
1176 // use the energy measurement
1177 //
1178 if ( this->IsInsideAcceptance(section) ){
1179 //
1180 // the event is good
1181 //
1182 if ( debug ) printf(" XE %i XO %i YE %i YO %i \n",fXesel,fXosel,fYesel,fYosel);
1183 //
1184 } else {
1185 //
1186 // if the event is not in the acceptance, return a negative energy.
1187 //
1188 if ( debug ) printf(" Outside acceptance \n");
1189 fEnergy *= -1.;
1190 //
1191 };
1192 };
1193 //
1194 }

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