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d3da6dc4 1#ifndef AliHMPIDParam_h
2#define AliHMPIDParam_h
3010c308 3/* Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
4 * See cxx source for full Copyright notice */
d3da6dc4 5
3010c308 6/* $Id$ */
7
8#include <TMath.h>
d3da6dc4 9#include <TNamed.h> //base class
10#include <TGeoManager.h> //Instance()
268f57b1 11#include <TGeoMatrix.h> //Instance()
d3da6dc4 12#include <TVector3.h> //Lors2Mars() Mars2Lors()
13
d3da6dc4 14// Class providing all the needed parametrised information
15// to construct the geometry, to define segmentation and to provide response model
16// In future will also provide all the staff needed for alignment and calibration
17
18class AliHMPIDParam :public TNamed
19{
20public:
21//ctor&dtor
1d6047fb 22 virtual ~AliHMPIDParam() {
23 if (fgInstance){
24 for(Int_t i=0;i<7;i++){ delete fM[i]; fM[i] = 0x0;}
25 fgInstance=0;
26 }
27 }
28
29 void Print(Option_t *opt="") const; //print current parametrization
30
d3da6dc4 31 static inline AliHMPIDParam* Instance(); //pointer to AliHMPIDParam singleton
58fc9564 32 static inline AliHMPIDParam* InstanceNoGeo(); //pointer to AliHMPIDParam singleton without geometry.root for MOOD, displays, ...
ae5a42aa 33//geo info
34 enum EChamberData{kMinCh=0,kMaxCh=6,kMinPc=0,kMaxPc=5}; //Segmenation
35 enum EPadxData{kPadPcX=80,kMinPx=0,kMaxPx=79,kMaxPcx=159}; //Segmentation structure along x
36 enum EPadyData{kPadPcY=48,kMinPy=0,kMaxPy=47,kMaxPcy=143}; //Segmentation structure along y
37
a8ff381e 38 static Float_t SizePadX ( ) {return fgCellX; } //pad size x, [cm]
39 static Float_t SizePadY ( ) {return fgCellY; } //pad size y, [cm]
ae5a42aa 40
a8ff381e 41 static Float_t SizePcX ( ) {return fgPcX; } // PC size x
42 static Float_t SizePcY ( ) {return fgPcY; } // PC size y
43 static Float_t MaxPcX (Int_t iPc ) {return fgkMaxPcX[iPc]; } // PC limits
44 static Float_t MaxPcY (Int_t iPc ) {return fgkMaxPcY[iPc]; } // PC limits
45 static Float_t MinPcX (Int_t iPc ) {return fgkMinPcX[iPc]; } // PC limits
46 static Float_t MinPcY (Int_t iPc ) {return fgkMinPcY[iPc]; } // PC limits
47 static Int_t Nsig ( ) {return fgSigmas; } //Getter n. sigmas for noise
48 static Float_t SizeAllX ( ) {return fgAllX; } //all PCs size x, [cm]
49 static Float_t SizeAllY ( ) {return fgAllY; } //all PCs size y, [cm]
ae5a42aa 50
a8ff381e 51 static Float_t LorsX (Int_t pc,Int_t padx ) {return (padx +0.5)*SizePadX()+fgkMinPcX[pc]; } //center of the pad x, [cm]
ae5a42aa 52
a8ff381e 53 static Float_t LorsY (Int_t pc,Int_t pady ) {return (pady +0.5)*SizePadY()+fgkMinPcY[pc]; } //center of the pad y, [cm]
ae5a42aa 54
a8ff381e 55 inline static void Lors2Pad(Float_t x,Float_t y,Int_t &pc,Int_t &px,Int_t &py); //(x,y)->(pc,px,py)
ae5a42aa 56
a8ff381e 57 static Int_t Abs (Int_t ch,Int_t pc,Int_t x,Int_t y) {return ch*100000000+pc*1000000+x*1000+y; } //(ch,pc,padx,pady)-> abs pad
56c73976 58 static Int_t DDL2C (Int_t ddl ) {return ddl/2; } //ddl -> chamber
a8ff381e 59 static Int_t A2C (Int_t pad ) {return pad/100000000; } //abs pad -> chamber
60 static Int_t A2P (Int_t pad ) {return pad%100000000/1000000; } //abs pad -> pc
61 static Int_t A2X (Int_t pad ) {return pad%1000000/1000; } //abs pad -> pad X
62 static Int_t A2Y (Int_t pad ) {return pad%1000; } //abs pad -> pad Y
ae5a42aa 63
a8ff381e 64 static Bool_t IsOverTh (Float_t q ) {return q >= fgSigmas; } //is digit over threshold?
65
b38ac33a 66 Double_t GetRefIdx ( )const{return fRadNmean; } //refractive index of freon
67 Bool_t GetInstType ( )const{return fgInstanceType; } //return if the instance is from geom or ideal
a8ff381e 68
69 inline static Bool_t IsInDead(Float_t x,Float_t y ); //is the point in dead area?
70 static Bool_t IsInside (Float_t x,Float_t y,Float_t d=0) {return x>-d&&y>-d&&x<fgkMaxPcX[kMaxPc]+d&&y<fgkMaxPcY[kMaxPc]+d; } //is point inside chamber boundaries?
ae5a42aa 71
a8ff381e 72 Double_t MeanIdxRad ()const {return 1.29204;} //<--TEMPORAR--> to be removed in future. Mean ref index C6F14
ae5a42aa 73 Double_t MeanIdxWin ()const {return 1.57819;} //<--TEMPORAR--> to be removed in future. Mean ref index quartz
74 Float_t DistCut ()const {return 1.0;} //<--TEMPORAR--> to be removed in future. Cut for MIP-TRACK residual
75 Float_t QCut ()const {return 100;} //<--TEMPORAR--> to be removed in future. Separation PHOTON-MIP charge
76 Float_t MultCut ()const {return 200;} //<--TEMPORAR--> to be removed in future. Multiplicity cut to activate WEIGHT procedure
77
a8ff381e 78 Double_t RadThick ()const {return 1.5;} //<--TEMPORAR--> to be removed in future. Radiator thickness
79 Double_t WinThick ()const {return 0.5;} //<--TEMPORAR--> to be removed in future. Window thickness
80 Double_t GapThick ()const {return 8.0;} //<--TEMPORAR--> to be removed in future. Proximity gap thickness
81 Double_t WinIdx ()const {return 1.5787;} //<--TEMPORAR--> to be removed in future. Mean refractive index of WIN material (SiO2)
82 Double_t GapIdx ()const {return 1.0005;} //<--TEMPORAR--> to be removed in future. Mean refractive index of GAP material (CH4)
ae5a42aa 83
d3da6dc4 84 static Int_t Stack(Int_t evt=-1,Int_t tid=-1); //Print stack info for event and tid
85 static Int_t StackCount(Int_t pid,Int_t evt); //Counts stack particles of given sort in given event
1d4857c5 86 static void IdealPosition(Int_t iCh,TGeoHMatrix *m); //ideal position of given chamber
87 //trasformation methodes
d3da6dc4 88 void Lors2Mars (Int_t c,Float_t x,Float_t y,Double_t *m,Int_t pl=kPc)const{Double_t z=0; switch(pl){case kPc:z=8.0;break; case kAnod:z=7.806;break; case kRad:z=-1.25; break;} Double_t l[3]={x-fX,y-fY,z}; fM[c]->LocalToMaster(l,m); }
89 TVector3 Lors2Mars (Int_t c,Float_t x,Float_t y, Int_t pl=kPc)const{Double_t m[3];Lors2Mars(c,x,y,m,pl); return TVector3(m); }//MRS->LRS
59d9d4b3 90 void Mars2Lors (Int_t c,Double_t *m,Float_t &x ,Float_t &y )const{Double_t l[3];fM[c]->MasterToLocal(m,l);x=l[0]+fX;y=l[1]+fY;}//MRS->LRS
86568433 91 void Mars2LorsVec(Int_t c,Double_t *m,Float_t &th,Float_t &ph )const{Double_t l[3]; fM[c]->MasterToLocalVect(m,l);
92 Float_t pt=TMath::Sqrt(l[0]*l[0]+l[1]*l[1]);
93 th=TMath::ATan(pt/l[2]);
94 ph=TMath::ATan2(l[1],l[0]);}
d3da6dc4 95 TVector3 Norm (Int_t c )const{Double_t n[3]; Norm(c,n); return TVector3(n); }//norm
96 void Norm (Int_t c,Double_t *n )const{Double_t l[3]={0,0,1};fM[c]->LocalToMasterVect(l,n); }//norm
59d9d4b3 97 void Point (Int_t c,Double_t *p,Int_t plane )const{Lors2Mars(c,0,0,p,plane);} //point of given chamber plane
58fc9564 98
b38ac33a 99 void SetRefIdx (Double_t refRadIdx ) {fRadNmean = refRadIdx;} //set refractive index of freon
100 void SetSigmas (Int_t sigmas ) {fgSigmas = sigmas;} //set sigma cut
101 void SetInstanceType(Bool_t inst ) {fgInstanceType = inst;} //kTRUE if from geomatry kFALSE if from ideal geometry
3278403b 102 //For PID
103 Double_t SigLoc (Double_t trkTheta,Double_t trkPhi,Double_t ckovTh,Double_t ckovPh,Double_t beta);//error due to cathode segmetation
104 Double_t SigGeom (Double_t trkTheta,Double_t trkPhi,Double_t ckovTh,Double_t ckovPh,Double_t beta);//error due to unknown photon origin
105 Double_t SigCrom (Double_t trkTheta,Double_t trkPhi,Double_t ckovTh,Double_t ckovPh,Double_t beta);//error due to unknonw photon energy
106 Double_t Sigma2 (Double_t trkTheta,Double_t trkPhi,Double_t ckovTh,Double_t ckovPh );//photon candidate sigma^2
a8ff381e 107
d3da6dc4 108 enum EPlaneId {kPc,kRad,kAnod}; //3 planes in chamber
a8ff381e 109 enum ETrackingFlags {kMipDistCut=-9,kMipQdcCut=-5,kNoPhotAccept=-11}; //flags for Reconstruction
ae5a42aa 110
d3da6dc4 111protected:
ae5a42aa 112 static /*const*/ Float_t fgkMinPcX[6]; //limits PC
113 static /*const*/ Float_t fgkMinPcY[6]; //limits PC
114 static /*const*/ Float_t fgkMaxPcX[6]; //limits PC
115 static /*const*/ Float_t fgkMaxPcY[6];
116
b38ac33a 117 static Int_t fgSigmas; //sigma Cut
118 static Bool_t fgInstanceType; //kTRUE if from geomatry kFALSE if from ideal geometry
119
120 static Float_t fgCellX, fgCellY, fgPcX, fgPcY, fgAllX, fgAllY; //definition of HMPID geometric parameters
58fc9564 121 AliHMPIDParam(Bool_t noGeo); //default ctor is protected to enforce it to be singleton
ae5a42aa 122
d3da6dc4 123 static AliHMPIDParam *fgInstance; //static pointer to instance of AliHMPIDParam singleton
ae5a42aa 124
423554a3 125 TGeoHMatrix *fM[7]; //pointers to matrices defining HMPID chambers rotations-translations
126 Float_t fX; //x shift of LORS with respect to rotated MARS
127 Float_t fY; //y shift of LORS with respect to rotated MARS
a8ff381e 128 Double_t fRadNmean; //C6F14 mean index as a running parameter
58fc9564 129
8f05fd11 130private:
131 AliHMPIDParam(const AliHMPIDParam& r); //dummy copy constructor
132 AliHMPIDParam &operator=(const AliHMPIDParam& r); //dummy assignment operator
133
d3da6dc4 134 ClassDef(AliHMPIDParam,0) //HMPID main parameters class
135};
cf7e313e 136
d3da6dc4 137//++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
138AliHMPIDParam* AliHMPIDParam::Instance()
139{
140// Return pointer to the AliHMPIDParam singleton.
141// Arguments: none
142// Returns: pointer to the instance of AliHMPIDParam or 0 if no geometry
58fc9564 143 if(!fgInstance) new AliHMPIDParam(kFALSE); //default setting for reconstruction, if no geometry.root -> AliFatal
144 return fgInstance;
145}//Instance()
146//++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
147AliHMPIDParam* AliHMPIDParam::InstanceNoGeo()
148{
149// Return pointer to the AliHMPIDParam singleton without the geometry.root.
150// Arguments: none
151// Returns: pointer to the instance of AliHMPIDParam or 0 if no geometry
152 if(!fgInstance) new AliHMPIDParam(kTRUE); //to avoid AliFatal, for MOOD and displays, use ideal geometry parameters
d3da6dc4 153 return fgInstance;
154}//Instance()
155//++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
ae5a42aa 156Bool_t AliHMPIDParam::IsInDead(Float_t x,Float_t y)
157{
158// Check is the current point is outside of sensitive area or in dead zones
159// Arguments: x,y -position
160// Returns: 1 if not in sensitive zone
161 for(Int_t iPc=0;iPc<6;iPc++)
162 if(x>=fgkMinPcX[iPc] && x<=fgkMaxPcX[iPc] && y>=fgkMinPcY[iPc] && y<=fgkMaxPcY [iPc]) return kFALSE; //in current pc
163
164 return kTRUE;
165}
166//++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
167void AliHMPIDParam::Lors2Pad(Float_t x,Float_t y,Int_t &pc,Int_t &px,Int_t &py)
168{
169// Check the pad of given position
170// Arguments: x,y- position [cm] in LORS; pc,px,py- pad where to store the result
171// Returns: none
172 pc=px=py=-1;
173 if (x>fgkMinPcX[0] && x<fgkMaxPcX[0]) {pc=0; px=Int_t( x / SizePadX());}//PC 0 or 2 or 4
174 else if(x>fgkMinPcX[1] && x<fgkMaxPcX[1]) {pc=1; px=Int_t((x-fgkMinPcX[1]) / SizePadX());}//PC 1 or 3 or 5
175 else return;
176 if (y>fgkMinPcY[0] && y<fgkMaxPcY[0]) { py=Int_t( y / SizePadY());}//PC 0 or 1
177 else if(y>fgkMinPcY[2] && y<fgkMaxPcY[2]) {pc+=2;py=Int_t((y-fgkMinPcY[2]) / SizePadY());}//PC 2 or 3
178 else if(y>fgkMinPcY[4] && y<fgkMaxPcY[4]) {pc+=4;py=Int_t((y-fgkMinPcY[4]) / SizePadY());}//PC 4 or 5
179 else return;
180}
d3da6dc4 181#endif