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Switch for Ds decay channel in the AddTask for Ds efficiency
[u/mrichter/AliRoot.git] / PWGHF / vertexingHF / macros / AddTaskCFVertexingHF3ProngDs.C
1 //DEFINITION OF A FEW CONSTANTS
2 const Double_t ymin  = -1.2 ;
3 const Double_t ymax  =  1.2 ;
4 const Double_t cosmin = -0.7;
5 const Double_t cosmax =  1.05;
6 const Double_t cTmin = 0;  // micron
7 const Double_t cTmax = 500;  // micron
8 const Double_t phimin = 0.0;  
9 const Int_t    mintrackrefsTPC = 2 ;
10 const Int_t    mintrackrefsITS = 3 ;
11 const Int_t    charge  = 1 ;
12 const Int_t    minclustersTPC = 50 ;
13 // cuts
14 const Double_t ptmin = 0.1;
15 const Double_t ptmax = 9999.;
16 const Double_t etamin = -0.9;
17 const Double_t etamax = 0.9;
18 const Double_t zvtxmin = -15;
19 const Double_t zvtxmax = 15;
20 const Int_t    minITSClusters = 5;
21
22 const Float_t centmin_0_10 = 0.;
23 const Float_t centmax_0_10 = 10.;
24 const Float_t centmin_10_100 = 10.;
25 const Float_t centmax_10_100 = 100.;
26 const Float_t centmax = 100.;
27 const Float_t fakemin = -0.5;
28 const Float_t fakemax = 2.5.;
29 const Float_t cosminXY = 0.90;
30 const Float_t cosmaxXY = 1.0;
31 const Float_t normDecLXYmin = 0;
32 const Float_t normDecLXYmax = 20;
33 const Float_t multmin_0_20 = 0;
34 const Float_t multmax_0_20 = 20;
35 const Float_t multmin_20_50 = 20;
36 const Float_t multmax_20_50 = 50;
37 const Float_t multmin_50_102 = 50;
38 const Float_t multmax_50_102 = 102;
39
40
41 //----------------------------------------------------
42
43 AliCFTaskVertexingHF *AddTaskCFVertexingHF3ProngDs(Int_t decayOption=AliCFVertexingHF3Prong::kCountResonant, const char* cutFile = "./DstoKKpiCuts.root", Int_t configuration = AliCFTaskVertexingHF::kSnail, Bool_t isKeepDfromB=kFALSE, Bool_t isKeepDfromBOnly=kFALSE, Int_t pdgCode = 431, Char_t isSign = 2)
44 //AliCFContainer *AddTaskCFVertexingHF3ProngDs(const char* cutFile = "./DstoKKpiCuts.root", Int_t configuration = AliCFTaskVertexingHF::kSnail, Bool_t isKeepDfromB=kFALSE, Bool_t isKeepDfromBOnly=kFALSE, Int_t pdgCode = 431, Char_t isSign = 2)
45 {
46         printf("Addig CF task using cuts from file %s\n",cutFile);
47         if (configuration == AliCFTaskVertexingHF::kSnail){
48                 printf("The configuration is set to be SLOW --> all the variables will be used to fill the CF\n");
49         }
50         else if (configuration == AliCFTaskVertexingHF::kCheetah){
51                 printf("The configuration is set to be FAST --> using only pt, y, ct, phi, zvtx, centrality, fake, multiplicity to fill the CF\n");
52         }
53         else{
54                 printf("The configuration is not defined! returning\n");
55                 return;
56         }
57                
58         gSystem->Sleep(2000);
59
60         // isSign = 0 --> D+s only
61         // isSign = 1 --> D-s only
62         // isSign = 2 --> D+s + D-s
63         
64         TString expected;
65         if (isSign == 0 && pdgCode < 0){
66                 AliError(Form("Error setting PDG code (%d) and sign (0 --> particle (%d) only): they are not compatible, returning",pdgCode));
67                 return 0x0;
68         }
69         else if (isSign == 1 && pdgCode > 0){
70                 AliError(Form("Error setting PDG code (%d) and sign (1 --> antiparticle (%d) only): they are not compatible, returning",pdgCode));
71                 return 0x0;
72         }
73         else if (isSign > 2 || isSign < 0){
74                 AliError(Form("Sign not valid (%d, possible values are 0, 1, 2), returning"));
75                 return 0x0;
76         }
77
78         TFile* fileCuts = TFile::Open(cutFile);
79         if(!fileCuts || (fileCuts && !fileCuts->IsOpen())){ 
80           AliError("Wrong cut file");
81           return 0x0;
82         }
83         AliRDHFCutsDstoKKpi *cutsDstoKKpi = (AliRDHFCutsDstoKKpi*)fileCuts->Get("AnalysisCuts");
84         
85         // check that the fKeepD0fromB flag is set to true when the fKeepD0fromBOnly flag is true
86         //  for now the binning is the same than for all D's
87         if(isKeepDfromBOnly) isKeepDfromB = true;
88         
89         /*
90           Double_t ptmin_0_4;
91           Double_t ptmax_0_4;
92           Double_t ptmin_4_8;
93           Double_t ptmax_4_8;
94           Double_t ptmin_8_10;
95           Double_t ptmax_8_10;
96           
97           if(!isKeepDfromB){
98           ptmin_0_4 =  0.0 ;
99           ptmax_0_4 =  4.0 ;
100           ptmin_4_8 =  4.0 ;
101           ptmax_4_8 =  8.0 ;
102           ptmin_8_10 =  8.0 ;
103           ptmax_8_10 =  10.0 ;
104           } else{
105           ptmin_0_4 =  0.0 ;
106           ptmax_0_4 =  3.0 ;
107           ptmin_4_8 =  3.0 ;
108           ptmax_4_8 =  5.0 ;
109           ptmin_8_10 =  5.0 ;
110           ptmax_8_10 =  10.0 ;
111           }
112         */
113
114         //CONTAINER DEFINITION
115         Info("AliCFTaskVertexingHF","SETUP CONTAINER");
116
117         const Double_t phimax = 2*TMath::Pi();
118
119         //Setting up the container grid... 
120         UInt_t nstep = 10; //number of selection steps: MC with limited acceptance, MC, Acceptance, Vertex, Refit, Reco (no cuts), RecoAcceptance, RecoITSClusters (RecoAcceptance included), RecoPPR (RecoAcceptance+RecoITSCluster included), RecoPID 
121 //      const Int_t nbinpt_0_4  = 8 ; //bins in pt from 0 to 4 GeV
122 //      const Int_t nbinpt_4_8  = 4 ; //bins in pt from 4 to 8 GeV
123 //      const Int_t nbinpt_8_10  = 1 ; //bins in pt from 8 to 10 GeV
124
125 /*
126         Int_t nbinpt_0_4;
127         Int_t nbinpt_4_8;
128         Int_t nbinpt_8_10;
129         if (!isKeepDfromB){
130           nbinpt_0_4  = 8 ; //bins in pt from 0 to 4 GeV
131           nbinpt_4_8  = 4 ; //bins in pt from 4 to 8 GeV
132           nbinpt_8_10  = 1 ; //bins in pt from 8 to 10 GeV
133         }else{
134           nbinpt_0_4  = 3 ; //bins in pt from 0 to 3 GeV
135           nbinpt_4_8  = 1 ; //bins in pt from 3 to 5 GeV
136           nbinpt_8_10  = 1 ; //bins in pt from 5 to 10 GeV
137         }
138 */
139         const Int_t nbinpt = cutsDstoKKpi->GetNPtBins(); // bins in pT
140         printf("pT: nbin (from cuts file) = %d\n",nbinpt);
141         const Int_t nbiny  = 24 ; //bins in y
142         const Int_t nbinphi  = 18 ; //bins in phi
143         const Int_t nbincT  = 25 ; //bins in cT 
144         const Int_t nbinpointing  = 350 ; //bins in cosPointingAngle    
145         const Int_t nbinpT1_0_4  = 8 ; //bins in pt1 from 0 to 4 GeV
146         const Int_t nbinpT1_4_8  = 4 ; //bins in pt1 from 4 to 8 GeV
147         const Int_t nbinpT1_8_10  = 1 ; //bins in pt1 from 8 to 10 GeV
148         const Int_t nbinpT2_0_4  = 8 ; //bins in pt2 from 0 to 4 GeV
149         const Int_t nbinpT2_4_8  = 4 ; //bins in pt2 from 4 to 8 GeV
150         const Int_t nbinpT2_8_10  = 1 ; //bins in pt2 from 8 to 10 GeV
151         const Int_t nbinpT3_0_4  = 8 ; //bins in pt3 from 0 to 4 GeV
152         const Int_t nbinpT3_4_8  = 4 ; //bins in pt3 from 4 to 8 GeV
153         const Int_t nbinpT3_8_10  = 1 ; //bins in pt3 from 8 to 10 GeV
154         const Int_t nbinzvtx  = 30 ; //bins in z vertex
155         const Int_t nbincent = 11; //bins in centrality
156         const Int_t nbincent_0_10 = 2;  //bins in centrality between 0 and 10
157         const Int_t nbincent_10_100 = 9;  //bins in centrality between 10 and 100
158         const Int_t nbinfake = 3;  //bins in fake
159         const Int_t nbinpointingXY = 50;  //bins in cosPointingAngleXY
160         const Int_t nbinnormDecayLXY = 20;  //bins in NormDecayLengthXY
161         const Int_t nbinmult = 48;  //bins in multiplicity (total number)
162         const Int_t nbinmult_0_20 = 20; //bins in multiplicity between 0 and 20
163         const Int_t nbinmult_20_50 = 15; //bins in multiplicity between 20 and 50
164         const Int_t nbinmult_50_102 = 13; //bins in multiplicity between 50 and 102
165         
166         //the sensitive variables, their indices
167         const UInt_t ipT = 0;
168         const UInt_t iy  = 1;
169         const UInt_t iphi  = 2;
170         const UInt_t icT  = 3;
171         const UInt_t ipointing  = 4;
172         const UInt_t ipT1  = 5;
173         const UInt_t ipT2  = 6;
174         const UInt_t ipT3  = 7;
175         const UInt_t izvtx  = 8;
176         const UInt_t icent = 9;
177         const UInt_t ifake = 10;
178         const UInt_t ipointingXY = 11;
179         const UInt_t inormDecayLXY = 12;
180         const UInt_t imult = 13;
181
182         const Int_t nvarTot   = 14 ; 
183
184         //arrays for the number of bins in each dimension
185         Int_t iBin[nvarTot];
186         //iBin[ipT]=nbinpt_0_4+nbinpt_4_8+nbinpt_8_10;
187         iBin[ipT]=nbinpt;
188         iBin[iy]=nbiny;
189         iBin[iphi]=nbinphi;
190         //      iBin[icT]=nbincT_0_4+nbincT_4_8+nbincT_8_10;
191         //iBin[4]=nbinpointing_0_4+nbinpointing_4_8+nbinpointing_8_10;
192         iBin[icT]=nbincT;
193         iBin[ipointing]=nbinpointing;
194         iBin[ipT1]=nbinpt;
195         iBin[ipT2]=nbinpt;
196         iBin[ipT3]=nbinpt;
197         iBin[izvtx]=nbinzvtx;
198         iBin[icent]=nbincent;
199         iBin[ifake]=nbinfake;
200         iBin[ipointingXY]=nbinpointingXY;
201         iBin[inormDecayLXY]=nbinnormDecayLXY;
202         iBin[imult]=nbinmult;
203         
204         //arrays for lower bounds :
205         Double_t *binLimpT=new Double_t[iBin[ipT]+1];
206         Double_t *binLimy=new Double_t[iBin[iy]+1];
207         Double_t *binLimphi=new Double_t[iBin[iphi]+1];
208         Double_t *binLimcT=new Double_t[iBin[icT]+1];
209         Double_t *binLimpointing=new Double_t[iBin[ipointing]+1];
210         Double_t *binLimpT1=new Double_t[iBin[ipT1]+1];
211         Double_t *binLimpT2=new Double_t[iBin[ipT2]+1];
212         Double_t *binLimpT3=new Double_t[iBin[ipT3]+1];
213         Double_t *binLimzvtx=new Double_t[iBin[izvtx]+1];
214         Double_t *binLimcent=new Double_t[iBin[icent]+1];
215         Double_t *binLimfake=new Double_t[iBin[ifake]+1];
216         Double_t *binLimpointingXY=new Double_t[iBin[ipointingXY]+1];
217         Double_t *binLimnormDecayLXY=new Double_t[iBin[inormDecayLXY]+1];
218         Double_t *binLimmult=new Double_t[iBin[imult]+1];
219         
220         // checking limits
221         /*
222           if (ptmax_0_4 != ptmin_4_8) {
223           Error("AliCFHeavyFlavourTaskMultiVarMultiStep","max lim 1st range != min lim 2nd range, please check!");
224           }
225           if (ptmax_4_8 != ptmin_8_10) {
226           Error("AliCFHeavyFlavourTaskMultiVarMultiStep","max lim 2nd range != min lim 3rd range, please check!");
227           }
228         */
229         // values for bin lower bounds
230         // pt
231         Float_t* floatbinLimpT = cutsDstoKKpi->GetPtBinLimits();
232         for (Int_t ibinpT = 0 ; ibinpT<iBin[ipT]+1; ibinpT++){
233                 binLimpT[ibinpT] = (Double_t)floatbinLimpT[ibinpT];
234                 binLimpT1[ibinpT] = (Double_t)floatbinLimpT[ibinpT];
235                 binLimpT2[ibinpT] = (Double_t)floatbinLimpT[ibinpT];
236                 binLimpT3[ibinpT] = (Double_t)floatbinLimpT[ibinpT];
237         }
238         for(Int_t i=0; i<=nbinpt; i++) printf("binLimpT[%d]=%f\n",i,binLimpT[i]);  
239         
240         /*
241           for(Int_t i=0; i<=nbinpt_0_4; i++) binLimpT[i]=(Double_t)ptmin_0_4 + (ptmax_0_4-ptmin_0_4)/nbinpt_0_4*(Double_t)i ; 
242           if (binLimpT[nbinpt_0_4] != ptmin_4_8)  {
243           Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for pt - 1st range - differs from expected!\n");
244           }
245           for(Int_t i=0; i<=nbinpt_4_8; i++) binLimpT[i+nbinpt_0_4]=(Double_t)ptmin_4_8 + (ptmax_4_8-ptmin_4_8)/nbinpt_4_8*(Double_t)i ; 
246           if (binLimpT[nbinpt_0_4+nbinpt_4_8] != ptmin_8_10)  {
247           Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for pt - 2nd range - differs from expected!\n");
248           }
249           for(Int_t i=0; i<=nbinpt_8_10; i++) binLimpT[i+nbinpt_0_4+nbinpt_4_8]=(Double_t)ptmin_8_10 + (ptmax_8_10-ptmin_8_10)/nbinpt_8_10*(Double_t)i ; 
250         */
251         
252         // y
253         for(Int_t i=0; i<=nbiny; i++) binLimy[i]=(Double_t)ymin  + (ymax-ymin)  /nbiny*(Double_t)i ;
254         
255         // Phi
256         for(Int_t i=0; i<=nbinphi; i++) binLimphi[i]=(Double_t)phimin  + (phimax-phimin)  /nbinphi*(Double_t)i ;
257         
258         // cT
259         for(Int_t i=0; i<=nbincT; i++) binLimcT[i]=(Double_t)cTmin  + (cTmax-cTmin)  /nbincT*(Double_t)i ;
260         
261         // cosPointingAngle
262         for(Int_t i=0; i<=nbinpointing; i++) binLimpointing[i]=(Double_t)cosmin  + (cosmax-cosmin)  /nbinpointing*(Double_t)i ;
263
264         /*
265         // ptPi
266         for(Int_t i=0; i<=nbincT_0_4; i++) binLimcT[i]=(Double_t)ptmin_0_4 + (ptmax_0_4-ptmin_0_4)/nbincT_0_4*(Double_t)i ; 
267         if (binLimcT[nbincT_0_4] != ptmin_4_8)  {
268         Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for ptPi - 1st range - differs from expected!");
269         }
270         for(Int_t i=0; i<=nbincT_4_8; i++) binLimcT[i+nbincT_0_4]=(Double_t)ptmin_4_8 + (ptmax_4_8-ptmin_4_8)/nbincT_4_8*(Double_t)i ; 
271         if (binLimcT[nbincT_0_4+nbincT_4_8] != ptmin_8_10)  {
272         Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for ptPi - 2nd range - differs from expected!\n");
273         }
274         for(Int_t i=0; i<=nbincT_8_10; i++) binLimcT[i+nbincT_0_4+nbincT_4_8]=(Double_t)ptmin_8_10 + (ptmax_8_10-ptmin_8_10)/nbincT_8_10*(Double_t)i ; 
275         
276         // ptKa
277         for(Int_t i=0; i<=nbinpointing_0_4; i++) binLimpointing[i]=(Double_t)ptmin_0_4 + (ptmax_0_4-ptmin_0_4)/nbinpointing_0_4*(Double_t)i ; 
278         if (binLimpointing[nbinpointing_0_4] != ptmin_4_8)  {
279         Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for ptKa - 1st range - differs from expected!");
280         }
281         for(Int_t i=0; i<=nbinpointing_4_8; i++) binLimpointing[i+nbinpointing_0_4]=(Double_t)ptmin_4_8 + (ptmax_4_8-ptmin_4_8)/nbinpointing_4_8*(Double_t)i ; 
282         if (binLimpointing[nbinpointing_0_4+nbinpointing_4_8] != ptmin_8_10)  {
283         Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for ptKa - 2nd range - differs from expected!\n");
284         }
285         for(Int_t i=0; i<=nbinpointing_8_10; i++) binLimpointing[i+nbinpointing_0_4+nbinpointing_4_8]=(Double_t)ptmin_8_10 + (ptmax_8_10-ptmin_8_10)/nbinpointing_8_10*(Double_t)i ; 
286         */
287         
288         // z Primary Vertex
289         for(Int_t i=0; i<=nbinzvtx; i++) {
290                 binLimzvtx[i]=(Double_t)zvtxmin  + (zvtxmax-zvtxmin)  /nbinzvtx*(Double_t)i ;
291         }
292         
293         // centrality
294         for(Int_t i=0; i<=nbincent_0_10; i++) binLimcent[i]=(Double_t)centmin_0_10 + (centmax_0_10-centmin_0_10)/nbincent_0_10*(Double_t)i ; 
295         if (binLimcent[nbincent_0_10] != centmin_10_100)  {
296                 Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for cent - 1st range - differs from expected!\n");
297         }
298         for(Int_t i=0; i<=nbincent_10_100; i++) binLimcent[i+nbincent_0_10]=(Double_t)centmin_10_100 + (centmax_10_100-centmin_10_100)/nbincent_10_100*(Double_t)i ; 
299         
300         // fake
301         for(Int_t i=0; i<=nbinfake; i++) {
302           binLimfake[i]=(Double_t)fakemin  + (fakemax-fakemin)/nbinfake * (Double_t)i;
303         }
304
305         // cosPointingAngleXY
306         for(Int_t i=0; i<=nbinpointingXY; i++) binLimpointingXY[i]=(Double_t)cosminXY  + (cosmaxXY-cosminXY)  /nbinpointingXY*(Double_t)i ;
307
308         // normDecayLXY
309         for(Int_t i=0; i<=nbinnormDecayLXY; i++) binLimnormDecayLXY[i]=(Double_t)normDecLXYmin  + (normDecLXYmax-normDecLXYmin)  /nbinnormDecayLXY*(Double_t)i ;
310
311         // multiplicity
312         for(Int_t i=0; i<=nbinmult_0_20; i++) binLimmult[i]=(Double_t)multmin_0_20 + (multmax_0_20-multmin_0_20)/nbinmult_0_20*(Double_t)i ; 
313         if (binLimmult[nbinmult_0_20] != multmin_20_50)  {
314                 Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for mult - 1st range - differs from expected!\n");
315         }
316         for(Int_t i=0; i<=nbinmult_20_50; i++) binLimmult[i+nbinmult_0_20]=(Double_t)multmin_20_50 + (multmax_20_50-multmin_20_50)/nbinmult_20_50*(Double_t)i ; 
317         if (binLimmult[nbinmult_0_20+nbinmult_20_50] != multmin_50_102)  {
318                 Error("AliCFHeavyFlavourTaskMultiVarMultiStep","Calculated bin lim for mult - 2nd range - differs from expected!\n");
319         }
320         for(Int_t i=0; i<=nbinmult_50_102; i++) binLimmult[i+nbinmult_0_20+nbinmult_20_50]=(Double_t)multmin_50_102 + (multmax_50_102-multmin_50_102)/nbinmult_50_102*(Double_t)i ; 
321
322         TString suffixDecayType="";
323         if(decayOption==AliCFVertexingHF3Prong::kCountAllDsKKpi) suffixDecayType="_All";
324         else if(decayOption==AliCFVertexingHF3Prong::kCountPhipi) suffixDecayType="_Phi";
325         else if(decayOption==AliCFVertexingHF3Prong::kCountK0stK) suffixDecayType="_K0star";
326         else if(decayOption==AliCFVertexingHF3Prong::kCountResonant) suffixDecayType="_Reson";
327         else if(decayOption==AliCFVertexingHF3Prong::kCountNonResonant) suffixDecayType="_NonReson";
328
329         //one "container" for MC
330         TString nameContainer="";
331         if(!isKeepDfromB) {
332                 nameContainer="CFHFccontainer0_3Prong_CommonFramework";
333         }
334         else  if(isKeepDfromBOnly){
335                 nameContainer="CFHFccontainer0DfromB_3Prong_CommonFramework";
336         }
337         else  {
338                 nameContainer="CFHFccontainer0allD_3Prong_CommonFramework";          
339         }
340         nameContainer+=suffixDecayType.Data();
341         
342         AliCFContainer* container;
343         if (configuration == AliCFTaskVertexingHF::kSnail){
344                 container = new AliCFContainer(nameContainer,"container for tracks",nstep,nvarTot,iBin);
345                 //setting the bin limits
346                 printf("pt\n");
347                 container -> SetBinLimits(ipT,binLimpT);
348                 printf("y\n");
349                 container -> SetBinLimits(iy,binLimy);
350                 printf("Phi\n");
351                 container -> SetBinLimits(iphi,binLimphi);
352                 printf("cT\n");
353                 container -> SetBinLimits(icT,binLimcT);
354                 printf("pointing angle\n");
355                 container -> SetBinLimits(ipointing,binLimpointing);
356                 printf("pt1\n");
357                 container -> SetBinLimits(ipT1,binLimpT1);
358                 printf("pt2\n");
359                 container -> SetBinLimits(ipT2,binLimpT2);
360                 printf("pt3\n");
361                 container -> SetBinLimits(ipT3,binLimpT3);
362                 printf("zvtx \n");
363                 container -> SetBinLimits(izvtx,binLimzvtx);
364                 printf("cent\n");
365                 container -> SetBinLimits(icent,binLimcent);
366                 printf("fake\n");
367                 container -> SetBinLimits(ifake,binLimfake);
368                 printf("pointingXY\n");
369                 container -> SetBinLimits(ipointingXY,binLimpointingXY);
370                 printf("normDecayLXY\n");
371                 container -> SetBinLimits(inormDecayLXY,binLimnormDecayLXY);
372                 printf("multiplicity\n");
373                 container -> SetBinLimits(imult,binLimmult);
374                 
375                 container -> SetVarTitle(ipT,"pt");
376                 container -> SetVarTitle(iy,"y");
377                 container -> SetVarTitle(iphi, "phi");
378                 container -> SetVarTitle(icT, "ct");
379                 container -> SetVarTitle(ipointing, "pointing");        
380                 container -> SetVarTitle(ipT1, "pt1");
381                 container -> SetVarTitle(ipT2, "pt2");
382                 container -> SetVarTitle(ipT3, "pt3");
383                 container -> SetVarTitle(izvtx, "zvtx");
384                 container -> SetVarTitle(icent, "centrality");
385                 container -> SetVarTitle(ifake, "fake");
386                 container -> SetVarTitle(ipointingXY, "piointingXY");
387                 container -> SetVarTitle(inormDecayLXY, "normDecayLXY");
388                 container -> SetVarTitle(imult, "multiplicity");
389         }
390         else if (configuration == AliCFTaskVertexingHF::kCheetah){
391                 //arrays for the number of bins in each dimension
392                 const Int_t nvar = 8;
393
394                 const UInt_t ipTFast = 0;
395                 const UInt_t iyFast = 1;
396                 const UInt_t icTFast = 2;
397                 const UInt_t iphiFast = 3;
398                 const UInt_t izvtxFast = 4;
399                 const UInt_t icentFast = 5;
400                 const UInt_t ifakeFast = 6;
401                 const UInt_t imultFast = 7;
402
403                 Int_t iBinFast[nvar];
404                 iBinFast[ipTFast] = iBin[ipT];
405                 iBinFast[iyFast] = iBin[iy];
406                 iBinFast[icTFast] = iBin[icT];
407                 iBinFast[iphiFast] = iBin[iphi];
408                 iBinFast[izvtxFast] = iBin[izvtx];
409                 iBinFast[icentFast] = iBin[icent];
410                 iBinFast[ifakeFast] = iBin[ifake];
411                 iBinFast[imultFast] = iBin[imult];
412
413                 container = new AliCFContainer(nameContainer,"container for tracks",nstep,nvar,iBinFast);
414                 printf("pt\n");
415                 container -> SetBinLimits(ipTFast,binLimpT);
416                 printf("y\n");
417                 container -> SetBinLimits(iyFast,binLimy);
418                 printf("ct\n");
419                 container -> SetBinLimits(icTFast,binLimcT);
420                 printf("phi\n");
421                 container -> SetBinLimits(iphiFast,binLimphi);
422                 printf("zvtx\n");
423                 container -> SetBinLimits(izvtxFast,binLimzvtx);
424                 printf("centrality\n");
425                 container -> SetBinLimits(icentFast,binLimcent);
426                 printf("fake\n");
427                 container -> SetBinLimits(ifakeFast,binLimfake);
428                 printf("multiplicity\n");
429                 container -> SetBinLimits(imultFast,binLimmult);
430
431                 container -> SetVarTitle(ipTFast,"pt");
432                 container -> SetVarTitle(iyFast,"y");
433                 container -> SetVarTitle(icTFast, "ct");
434                 container -> SetVarTitle(iphiFast, "phi");
435                 container -> SetVarTitle(izvtxFast, "zvtx");
436                 container -> SetVarTitle(icentFast, "centrality");
437                 container -> SetVarTitle(ifakeFast, "fake");
438                 container -> SetVarTitle(imultFast, "multiplicity");
439         }
440
441         //return container;
442
443         container -> SetStepTitle(0, "MCLimAcc");
444         container -> SetStepTitle(1, "MC");
445         container -> SetStepTitle(2, "MCAcc");
446         container -> SetStepTitle(3, "RecoVertex");
447         container -> SetStepTitle(4, "RecoRefit");
448         container -> SetStepTitle(5, "Reco");
449         container -> SetStepTitle(6, "RecoAcc");
450         container -> SetStepTitle(7, "RecoITSCluster");
451         container -> SetStepTitle(8, "RecoCuts");
452         container -> SetStepTitle(9, "RecoPID");
453
454
455         //CREATE THE  CUTS -----------------------------------------------
456         
457         // Gen-Level kinematic cuts
458         AliCFTrackKineCuts *mcKineCuts = new AliCFTrackKineCuts("mcKineCuts","MC-level kinematic cuts");
459         
460         //Particle-Level cuts:  
461         AliCFParticleGenCuts* mcGenCuts = new AliCFParticleGenCuts("mcGenCuts","MC particle generation cuts");
462         Bool_t useAbsolute = kTRUE;
463         if (isSign != 2){
464                 useAbsolute = kFALSE;
465         }
466         mcGenCuts->SetRequirePdgCode(pdgCode, useAbsolute);  // kTRUE set in order to include antiparticle
467         mcGenCuts->SetAODMC(1); //special flag for reading MC in AOD tree (important)
468         
469         // Acceptance cuts:
470         AliCFAcceptanceCuts* accCuts = new AliCFAcceptanceCuts("accCuts", "Acceptance cuts");
471         AliCFTrackKineCuts *kineAccCuts = new AliCFTrackKineCuts("kineAccCuts","Kine-Acceptance cuts");
472         kineAccCuts->SetPtRange(ptmin,ptmax);
473         kineAccCuts->SetEtaRange(etamin,etamax);
474
475         // Rec-Level kinematic cuts
476         AliCFTrackKineCuts *recKineCuts = new AliCFTrackKineCuts("recKineCuts","rec-level kine cuts");
477         
478         AliCFTrackQualityCuts *recQualityCuts = new AliCFTrackQualityCuts("recQualityCuts","rec-level quality cuts");
479         
480         AliCFTrackIsPrimaryCuts *recIsPrimaryCuts = new AliCFTrackIsPrimaryCuts("recIsPrimaryCuts","rec-level isPrimary cuts");
481         
482         printf("CREATE MC KINE CUTS\n");
483         TObjArray* mcList = new TObjArray(0) ;
484         mcList->AddLast(mcKineCuts);
485         mcList->AddLast(mcGenCuts);
486         
487         printf("CREATE ACCEPTANCE CUTS\n");
488         TObjArray* accList = new TObjArray(0) ;
489         accList->AddLast(kineAccCuts);
490
491         printf("CREATE RECONSTRUCTION CUTS\n");
492         TObjArray* recList = new TObjArray(0) ;   // not used!! 
493         recList->AddLast(recKineCuts);
494         recList->AddLast(recQualityCuts);
495         recList->AddLast(recIsPrimaryCuts);
496         
497         TObjArray* emptyList = new TObjArray(0);
498
499         //CREATE THE INTERFACE TO CORRECTION FRAMEWORK USED IN THE TASK
500         printf("CREATE INTERFACE AND CUTS\n");
501         AliCFManager* man = new AliCFManager() ;
502         man->SetParticleContainer(container);
503         man->SetParticleCutsList(0 , mcList); // MC, Limited Acceptance
504         man->SetParticleCutsList(1 , mcList); // MC
505         man->SetParticleCutsList(2 , accList); // Acceptance 
506         man->SetParticleCutsList(3 , emptyList); // Vertex 
507         man->SetParticleCutsList(4 , emptyList); // Refit 
508         man->SetParticleCutsList(5 , emptyList); // AOD
509         man->SetParticleCutsList(6 , emptyList); // AOD in Acceptance
510         man->SetParticleCutsList(7 , emptyList); // AOD with required n. of ITS clusters
511         man->SetParticleCutsList(8 , emptyList); // AOD Reco (PPR cuts implemented in Task)
512         man->SetParticleCutsList(9 , emptyList); // AOD Reco PID
513         
514         // Get the pointer to the existing analysis manager via the static access method.
515         //==============================================================================
516         AliAnalysisManager *mgr = AliAnalysisManager::GetAnalysisManager();
517         if (!mgr) {
518           ::Error("AddTaskCompareHF", "No analysis manager to connect to.");
519           return NULL;
520         }   
521         //CREATE THE TASK
522         printf("CREATE TASK\n");
523
524         // create the task
525         AliCFTaskVertexingHF *task = new AliCFTaskVertexingHF("AliCFTaskVertexingHF",cutsDstoKKpi);
526         task->SetFillFromGenerated(kFALSE);
527         task->SetDecayChannel(33);
528         if(decayOption==AliCFVertexingHF3Prong::kCountAllDsKKpi) task->SetCountAllDs();
529         else if(decayOption==AliCFVertexingHF3Prong::kCountPhipi) task->SetCountDsViaPhi();
530         else if(decayOption==AliCFVertexingHF3Prong::kCountK0stK)  task->SetCountDsViaK0star();
531         else if(decayOption==AliCFVertexingHF3Prong::kCountResonant) task->SetCountResonantDs();
532         else if(decayOption==AliCFVertexingHF3Prong::kCountNonResonant) task->SetCountNonResonantDs();
533         task->SetUseWeight(kFALSE);
534         task->SetCFManager(man); //here is set the CF manager
535         task->SetSign(isSign);
536         task->SetCentralitySelection(kFALSE);
537         task->SetFakeSelection(0);
538         task->SetRejectCandidateIfNotFromQuark(kTRUE); // put to false if you want to keep HIJING D0!!
539         task->SetUseMCVertex(kFALSE); // put to true if you want to do studies on pp
540         if (isKeepDfromB && !isKeepDfromBOnly) task->SetDselection(2);
541         if (isKeepDfromB && isKeepDfromBOnly) task->SetDselection(1);           
542
543         TF1* funcWeight = 0x0;
544         if (task->GetUseWeight()) {
545                 funcWeight = (TF1*)cutFile->Get("funcWeight");
546                 if (funcWeight == 0x0){
547                         Printf("FONLL Weights will be used");
548                 }
549                 else {
550                         task->SetWeightFunction(funcWeight);
551                         Printf("User-defined Weights will be used. The function being:");
552                         task->GetWeightFunction()->Print();
553                 }
554         }
555
556         Printf("***************** CONTAINER SETTINGS *****************");
557         Printf("decay channel = %d",(Int_t)task->GetDecayChannel());
558         Printf("FillFromGenerated = %d",(Int_t)task->GetFillFromGenerated());
559         Printf("Dselection = %d",(Int_t)task->GetDselection());
560         Printf("UseWeight = %d",(Int_t)task->GetUseWeight());
561         if (task->GetUseWeight()) {
562                 funcWeight = (TF1*)cutFile->Get("funcWeight");
563                 if (funcWeight == 0x0){
564                         Printf("FONLL Weights will be used");
565                 }
566                 else {
567                         task->SetWeightFunction(funcWeight);
568                         Printf("User-defined Weights will be used. The function being:");
569                         task->GetWeightFunction()->Print();
570                 }
571         }
572         Printf("Sign = %d",(Int_t)task->GetSign());
573         Printf("Centrality selection = %d",(Int_t)task->GetCentralitySelection());
574         Printf("Fake selection = %d",(Int_t)task->GetFakeSelection());
575         Printf("RejectCandidateIfNotFromQuark selection = %d",(Int_t)task->GetRejectCandidateIfNotFromQuark());
576         Printf("UseMCVertex selection = %d",(Int_t)task->GetUseMCVertex());
577         Printf("***************END CONTAINER SETTINGS *****************\n");
578
579         //-----------------------------------------------------------//
580         //   create correlation matrix for unfolding - only eta-pt   //
581         //-----------------------------------------------------------//
582
583         Bool_t AcceptanceUnf = kTRUE; // unfold at acceptance level, otherwise PPR
584
585         Int_t thnDim[4];
586         
587         //first half  : reconstructed 
588         //second half : MC
589
590         thnDim[0] = iBin[ipT];
591         thnDim[2] = iBin[ipT];
592         thnDim[1] = iBin[iy];
593         thnDim[3] = iBin[iy];
594
595         TString nameCorr="";
596         if(!isKeepDfromB) {
597                 nameCorr="CFHFcorr0_3Prong_CommonFramework";
598         }
599         else  if(isKeepDfromBOnly){
600                 nameCorr= "CFHFcorr0KeepDfromBOnly_3Prong_CommonFramework";
601         }
602         else  {
603                 nameCorr="CFHFcorr0allD_3Prong_CommonFramework";                
604         }
605         nameCorr+=suffixDecayType.Data();
606
607         THnSparseD* correlation = new THnSparseD(nameCorr,"THnSparse with correlations",4,thnDim);
608         Double_t** binEdges = new Double_t[2];
609
610         // set bin limits
611
612         binEdges[0]= binLimpT;
613         binEdges[1]= binLimy;
614
615         correlation->SetBinEdges(0,binEdges[0]);
616         correlation->SetBinEdges(2,binEdges[0]);
617
618         correlation->SetBinEdges(1,binEdges[1]);
619         correlation->SetBinEdges(3,binEdges[1]);
620
621         correlation->Sumw2();
622   
623         // correlation matrix ready
624         //------------------------------------------------//
625
626         task->SetCorrelationMatrix(correlation); // correlation matrix for unfolding
627         
628         // Create and connect containers for input/output
629         
630         // ------ input data ------
631         AliAnalysisDataContainer *cinput0  = mgr->GetCommonInputContainer();
632         
633         // ----- output data -----
634         
635         TString outputfile = AliAnalysisManager::GetCommonFileName();
636         TString output1name="", output2name="", output3name="", output4name="";;
637         output2name=nameContainer;
638         output3name=nameCorr;
639         if(!isKeepDfromB) {
640                 outputfile += ":PWG3_D2H_CFtaskDstoKKpi_CommonFramework";
641                 output1name="CFHFchist0_3Prong_CommonFramework";
642         }
643         else  if(isKeepDfromBOnly){
644                 outputfile += ":PWG3_D2H_CFtaskDstoKKpiKeepDfromBOnly_CommonFramework";
645                 output1name="CFHFchist0DfromB_3Prong_CommonFramework";
646         }
647         else{
648                 outputfile += ":PWG3_D2H_CFtaskDstoKKpiKeepDfromB_CommonFramework";
649                 output1name="CFHFchist0allD_3Prong_CommonFramework";
650         }
651
652         output4name= "Cuts_3Prong_CommonFramework";
653         outputfile += suffixDecayType.Data();
654         output1name+= suffixDecayType.Data();
655         output4name+= suffixDecayType.Data();
656
657         //now comes user's output objects :
658         // output TH1I for event counting
659         AliAnalysisDataContainer *coutput1 = mgr->CreateContainer(output1name, TH1I::Class(),AliAnalysisManager::kOutputContainer,outputfile.Data());
660         // output Correction Framework Container (for acceptance & efficiency calculations)
661         AliAnalysisDataContainer *coutput2 = mgr->CreateContainer(output2name, AliCFContainer::Class(),AliAnalysisManager::kOutputContainer,outputfile.Data());
662         // Unfolding - correlation matrix
663         AliAnalysisDataContainer *coutput3 = mgr->CreateContainer(output3name, THnSparseD::Class(),AliAnalysisManager::kOutputContainer,outputfile.Data());
664         AliAnalysisDataContainer *coutput4 = mgr->CreateContainer(output4name, AliRDHFCuts::Class(),AliAnalysisManager::kOutputContainer, outputfile.Data());
665
666         mgr->AddTask(task);
667         
668         mgr->ConnectInput(task,0,mgr->GetCommonInputContainer());
669         mgr->ConnectOutput(task,1,coutput1);
670         mgr->ConnectOutput(task,2,coutput2);
671         mgr->ConnectOutput(task,3,coutput3);
672         mgr->ConnectOutput(task,4,coutput4);
673
674         return task;
675 }
676