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MC-dependent part of AliRun extracted in AliMC (F.Carminati)
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68ca986e 1/**************************************************************************
2 * Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
3 * *
4 * Author: The ALICE Off-line Project. *
5 * Contributors are mentioned in the code where appropriate. *
6 * *
7 * Permission to use, copy, modify and distribute this software and its *
8 * documentation strictly for non-commercial purposes is hereby granted *
9 * without fee, provided that the above copyright notice appears in all *
10 * copies and that both the copyright notice and this permission notice *
11 * appear in the supporting documentation. The authors make no claims *
12 * about the suitability of this software for any purpose. It is *
13 * provided "as is" without express or implied warranty. *
14 **************************************************************************/
15
88cb7938 16/* $Id$ */
116cbefd 17
94de3818 18#include <assert.h>
19
116cbefd 20#include <TDatabasePDG.h>
68ca986e 21#include <TLorentzVector.h>
116cbefd 22#include <TMCProcess.h>
23#include <TPDGCode.h>
24#include <TRandom.h>
68ca986e 25#include <TVector3.h>
26
68ca986e 27#include "AliConst.h"
116cbefd 28#include "AliGenZDC.h"
68ca986e 29#include "AliRun.h"
5d12ce38 30#include "AliMC.h"
68ca986e 31
32ClassImp(AliGenZDC)
33
34//_____________________________________________________________________________
35AliGenZDC::AliGenZDC()
36 :AliGenerator()
37{
38 //
39 // Default constructor
40 //
41 fIpart = 0;
42}
43
44//_____________________________________________________________________________
45AliGenZDC::AliGenZDC(Int_t npart)
46 :AliGenerator(npart)
47{
48 //
49 // Standard constructor
50 //
51 fName = "AliGenZDC";
52 fTitle = "Generation of Test Particles for ZDCs";
53 fIpart = kNeutron;
54 fCosx = 0.;
55 fCosy = 0.;
56 fCosz = 1.;
57 fPseudoRapidity = 0.;
5a881c97 58
68ca986e 59 fFermiflag = 1;
60 // LHC values for beam divergence and crossing angle
61 fBeamDiv = 0.000032;
62 fBeamCrossAngle = 0.0001;
63 fBeamCrossPlane = 2;
5a881c97 64
65 Int_t i, j;
66 for(i=0; i<201; i++){
67 fProbintp[i] = 0;
68 fProbintn[i] = 0;
69 }
70 for(j=0; j<3; j++){
71 fPp[i] = 0;
72 }
73 fDebugOpt = 0;
68ca986e 74}
75
76//_____________________________________________________________________________
77void AliGenZDC::Init()
78{
5a881c97 79 printf("\n\n AliGenZDC initialized with:\n");
866ab5a2 80 printf(" Fermi flag = %d, Beam Divergence = %f, Crossing Angle "
68ca986e 81 "= %f, Crossing Plane = %d\n\n", fFermiflag, fBeamDiv, fBeamCrossAngle,
82 fBeamCrossPlane);
5a881c97 83
68ca986e 84 //Initialize Fermi momentum distributions for Pb-Pb
f5cb71ad 85 FermiTwoGaussian(207.,fPp,fProbintp,fProbintn);
68ca986e 86}
87
88//_____________________________________________________________________________
89void AliGenZDC::Generate()
90{
91 //
92 // Generate one trigger (n or p)
93 //
c0ceba4c 94 Int_t i;
95
5a881c97 96 Double_t Mass, pLab[3], fP0, fP[3], fBoostP[3], ddp[3], dddp0, dddp[3];
97 Float_t fPTrack[3], ptot = fPMin;
68ca986e 98 Int_t nt;
99
866ab5a2 100 if(fPseudoRapidity==0.){
68ca986e 101 pLab[0] = ptot*fCosx;
102 pLab[1] = ptot*fCosy;
103 pLab[2] = ptot*fCosz;
104 }
105 else{
106 Float_t scang = 2*TMath::ATan(TMath::Exp(-(fPseudoRapidity)));
107 pLab[0] = -ptot*TMath::Sin(scang);
108 pLab[1] = 0.;
109 pLab[2] = ptot*TMath::Cos(scang);
110 }
c0ceba4c 111 for(i=0; i<=2; i++){
68ca986e 112 fP[i] = pLab[i];
113 }
114
5a881c97 115
68ca986e 116 // Beam divergence and crossing angle
866ab5a2 117 if(fBeamCrossAngle!=0.) {
118 BeamDivCross(1,fBeamDiv,fBeamCrossAngle,fBeamCrossPlane,pLab);
119 for(i=0; i<=2; i++){
120 fP[i] = pLab[i];
121 }
122 }
123 if(fBeamDiv!=0.) {
124 BeamDivCross(0,fBeamDiv,fBeamCrossAngle,fBeamCrossPlane,pLab);
125 for(i=0; i<=2; i++){
126 fP[i] = pLab[i];
127 }
128 }
129
68ca986e 130 // If required apply the Fermi momentum
131 if(fFermiflag==1){
132 if((fIpart==kProton) || (fIpart==kNeutron)){
133 ExtractFermi(fIpart,fPp,fProbintp,fProbintn,ddp);
134 }
5a881c97 135 Mass=gAlice->PDGDB()->GetParticle(fIpart)->Mass();
136 fP0 = TMath::Sqrt(fP[0]*fP[0]+fP[1]*fP[1]+fP[2]*fP[2]+Mass*Mass);
c0ceba4c 137 for(i=0; i<=2; i++){
68ca986e 138 dddp[i] = ddp[i];
139 }
5a881c97 140 dddp0 = TMath::Sqrt(dddp[0]*dddp[0]+dddp[1]*dddp[1]+dddp[2]*dddp[2]+Mass*Mass);
68ca986e 141
866ab5a2 142 TVector3 b(fP[0]/fP0, fP[1]/fP0, fP[2]/fP0);
68ca986e 143 TLorentzVector pFermi(dddp[0], dddp[1], dddp[2], dddp0);
144
68ca986e 145 pFermi.Boost(b);
c0ceba4c 146 for(i=0; i<=2; i++){
68ca986e 147 fBoostP[i] = pFermi[i];
866ab5a2 148 fP[i] = pFermi[i];
68ca986e 149 }
150
151 }
866ab5a2 152
153 for(i=0; i<=2; i++){
154 fPTrack[i] = fP[i];
155 }
156
68ca986e 157 Float_t polar[3] = {0,0,0};
5d12ce38 158 gAlice->GetMCApp()->PushTrack(fTrackIt,-1,fIpart,fPTrack,fOrigin.GetArray(),polar,0,
1de555dc 159 kPPrimary,nt);
5a881c97 160 if(fDebugOpt == 1){
161 printf("\n\n Track momentum:\n");
162 printf("\n fPTrack = %f, %f, %f \n",fPTrack[0],fPTrack[1],fPTrack[2]);
163 }
68ca986e 164}
165
166//_____________________________________________________________________________
f5cb71ad 167void AliGenZDC::FermiTwoGaussian(Float_t A, Double_t *fPp,
5a881c97 168 Double_t *fProbintp, Double_t *fProbintn)
68ca986e 169{
170//
171// Momenta distributions according to the "double-gaussian"
172// distribution (Ilinov) - equal for protons and neutrons
173//
5a881c97 174
68ca986e 175 fProbintp[0] = 0;
176 fProbintn[0] = 0;
177 Double_t sig1 = 0.113;
178 Double_t sig2 = 0.250;
179 Double_t alfa = 0.18*(TMath::Power((A/12.),(Float_t)1/3));
180 Double_t xk = (2*k2PI)/((1.+alfa)*(TMath::Power(k2PI,1.5)));
181
182 for(Int_t i=1; i<=200; i++){
183 Double_t p = i*0.005;
184 fPp[i] = p;
68ca986e 185 Double_t e1 = (p*p)/(2.*sig1*sig1);
186 Double_t e2 = (p*p)/(2.*sig2*sig2);
187 Double_t f1 = TMath::Exp(-(e1));
188 Double_t f2 = TMath::Exp(-(e2));
189 Double_t probp = xk*p*p*(f1/(TMath::Power(sig1,3.))+
190 alfa*f2/(TMath::Power(sig2,3.)))*0.005;
68ca986e 191 fProbintp[i] = fProbintp[i-1] + probp;
192 fProbintn[i] = fProbintp[i];
5a881c97 193 }
194 if(fDebugOpt == 1){
195 printf("\n\n Initialization of Fermi momenta distribution \n");
196 for(Int_t i=0; i<=200; i++){
197 printf(" fProbintp[%d] = %f, fProbintn[%d] = %f\n",i,fProbintp[i],i,fProbintn[i]);
198 }
68ca986e 199 }
200}
201//_____________________________________________________________________________
5a881c97 202void AliGenZDC::ExtractFermi(Int_t id, Double_t *fPp, Double_t *fProbintp,
203 Double_t *fProbintn, Double_t *ddp)
68ca986e 204{
205//
206// Compute Fermi momentum for spectator nucleons
207//
5a881c97 208
68ca986e 209 Int_t i;
210 Float_t xx = gRandom->Rndm();
699b37ac 211 assert ( id==kProton || id==kNeutron );
68ca986e 212 if(id==kProton){
0ff3ad02 213 for(i=1; i<=200; i++){
68ca986e 214 if((xx>=fProbintp[i-1]) && (xx<fProbintp[i])) break;
215 }
216 }
94de3818 217 else {
68ca986e 218 for(i=0; i<=200; i++){
219 if((xx>=fProbintn[i-1]) && (xx<fProbintn[i])) break;
220 }
221 }
222 Float_t pext = fPp[i]+0.001;
223 Float_t phi = k2PI*(gRandom->Rndm());
224 Float_t cost = (1.-2.*(gRandom->Rndm()));
225 Float_t tet = TMath::ACos(cost);
226 ddp[0] = pext*TMath::Sin(tet)*TMath::Cos(phi);
227 ddp[1] = pext*TMath::Sin(tet)*TMath::Sin(phi);
228 ddp[2] = pext*cost;
5a881c97 229
230 if(fDebugOpt == 1){
231 printf("\n\n Extraction of Fermi momentum\n");
232 printf("\n pxFermi = %f pyFermi = %f pzFermi = %f \n",ddp[0],ddp[1],ddp[2]);
233 }
68ca986e 234}
235
236//_____________________________________________________________________________
237void AliGenZDC::BeamDivCross(Int_t icross, Float_t fBeamDiv, Float_t fBeamCrossAngle,
5a881c97 238 Int_t fBeamCrossPlane, Double_t *pLab)
68ca986e 239{
866ab5a2 240 Double_t tetpart, fipart, tetdiv=0, fidiv=0, angleSum[2], tetsum, fisum;
68ca986e 241 Double_t rvec;
c0ceba4c 242
243 Int_t i;
68ca986e 244 Double_t pmq = 0.;
c0ceba4c 245 for(i=0; i<=2; i++){
68ca986e 246 pmq = pmq+pLab[i]*pLab[i];
247 }
248 Double_t pmod = TMath::Sqrt(pmq);
68ca986e 249
68ca986e 250 if(icross==0){
251 rvec = gRandom->Gaus(0.0,1.0);
252 tetdiv = fBeamDiv * TMath::Abs(rvec);
253 fidiv = (gRandom->Rndm())*k2PI;
254 }
255 else if(icross==1){
256 if(fBeamCrossPlane==0.){
257 tetdiv = 0.;
258 fidiv = 0.;
259 }
260 else if(fBeamCrossPlane==1.){
261 tetdiv = fBeamCrossAngle;
262 fidiv = 0.;
263 }
264 else if(fBeamCrossPlane==2.){
265 tetdiv = fBeamCrossAngle;
736c9b58 266 fidiv = k2PI/4.;
68ca986e 267 }
268 }
866ab5a2 269
270 tetpart = TMath::ATan(TMath::Sqrt(pLab[0]*pLab[0]+pLab[1]*pLab[1])/pLab[2]);
271 if(pLab[1]!=0. || pLab[0]!=0.){
272 fipart = TMath::ATan2(pLab[1],pLab[0]);
68ca986e 273 }
274 else{
275 fipart = 0.;
276 }
277 if(fipart<0.) {fipart = fipart+k2PI;}
68ca986e 278 tetdiv = tetdiv*kRaddeg;
279 fidiv = fidiv*kRaddeg;
280 tetpart = tetpart*kRaddeg;
281 fipart = fipart*kRaddeg;
282 AddAngle(tetpart,fipart,tetdiv,fidiv,angleSum);
283 tetsum = angleSum[0];
284 fisum = angleSum[1];
68ca986e 285 tetsum = tetsum*kDegrad;
286 fisum = fisum*kDegrad;
287 pLab[0] = pmod*TMath::Sin(tetsum)*TMath::Cos(fisum);
288 pLab[1] = pmod*TMath::Sin(tetsum)*TMath::Sin(fisum);
289 pLab[2] = pmod*TMath::Cos(tetsum);
5a881c97 290 if(fDebugOpt == 1){
291 printf("\n\n Beam divergence and crossing angle\n");
292 for(i=0; i<=2; i++){
293 printf(" pLab[%d] = %f\n",i,pLab[i]);
294 }
68ca986e 295 }
296}
297
298//_____________________________________________________________________________
299void AliGenZDC::AddAngle(Double_t theta1, Double_t phi1, Double_t theta2,
5a881c97 300 Double_t phi2, Double_t *angleSum)
68ca986e 301{
302 Double_t temp, conv, cx, cy, cz, ct1, st1, ct2, st2, cp1, sp1, cp2, sp2;
303 Double_t rtetsum, tetsum, fisum;
304
305 temp = -1.;
306 conv = 180./TMath::ACos(temp);
307
308 ct1 = TMath::Cos(theta1/conv);
309 st1 = TMath::Sin(theta1/conv);
310 cp1 = TMath::Cos(phi1/conv);
311 sp1 = TMath::Sin(phi1/conv);
312 ct2 = TMath::Cos(theta2/conv);
313 st2 = TMath::Sin(theta2/conv);
314 cp2 = TMath::Cos(phi2/conv);
315 sp2 = TMath::Sin(phi2/conv);
316 cx = ct1*cp1*st2*cp2+st1*cp1*ct2-sp1*st2*sp2;
317 cy = ct1*sp1*st2*cp2+st1*sp1*ct2+cp1*st2*sp2;
318 cz = ct1*ct2-st1*st2*cp2;
319
320 rtetsum = TMath::ACos(cz);
321 tetsum = conv*rtetsum;
322 if(tetsum==0. || tetsum==180.){
323 fisum = 0.;
324 return;
325 }
326 temp = cx/TMath::Sin(rtetsum);
327 if(temp>1.) temp=1.;
328 if(temp<-1.) temp=-1.;
329 fisum = conv*TMath::ACos(temp);
330 if(cy<0) {fisum = 360.-fisum;}
68ca986e 331 angleSum[0] = tetsum;
332 angleSum[1] = fisum;
333}
334