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517b7f8f 1#ifndef ALITOFSDigitizer_H
2#define ALITOFSDigitizer_H
3/* Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
4 * See cxx source for full Copyright notice */
5
6
7//_________________________________________________________________________
8// Task Class for making SDigits in TOF
9//
ea7a588a 10//-- Authors: F. Pierella, A. De Caro
517b7f8f 11
12
13#include "TTask.h"
14#include "TString.h"
88cb7938 15class AliRunLoader;
d61f73d9 16class AliLoader;
517b7f8f 17
f73548c4 18class TF1;
19
517b7f8f 20class AliTOFSDigitizer: public TTask {
21
22public:
23 AliTOFSDigitizer() ; // ctor
d61f73d9 24 //AliTOFSDigitizer(const char* HeaderFile) ; // par ctor
25 AliTOFSDigitizer(const char* HeaderFile, Int_t evNumber1=-1, Int_t nEvents=0) ; // par ctor
517b7f8f 26
27 virtual ~AliTOFSDigitizer() ; // dtor
bfec09a6 28
43f77f2d 29 //static Float_t WidthTdcBin() {return fgkTdcBin;};
30
d61f73d9 31 virtual void Exec(Option_t *verboseOption);
cfa58405 32 void SetSDigitsFile(char * /*file*/ ) {;}
3408aff3 33
f73548c4 34 void InitParameters();
35 virtual void PrintParameters() const ;
d61f73d9 36 virtual void SimulateDetectorResponse(Float_t z0, Float_t x0, Float_t geantTime, Int_t& nActivatedPads, Int_t& nFiredPads, Bool_t* isFired, Int_t* nPlace, Float_t* qInduced, Float_t* tofTime, Float_t& averageTime);
ea7a588a 37 virtual void Print(Option_t* opt) const ;
d61f73d9 38 void SetFirstEvent(Int_t event1) {fEvent1 = event1;}
39 void SetSecondEvent(Int_t event2) {fEvent2 = event2;}
ea7a588a 40 Int_t GetFirstEvent() const {return fEvent1;}
41 Int_t GetSecondEvent() const {return fEvent2;}
42 Int_t GetNEvents() const {return (fEvent2-fEvent1);}
55991c8b 43 void SelectSectorAndPlate(Int_t sector, Int_t plate);
517b7f8f 44
f73548c4 45 // setters and getters for detector simulation
46 // it summarizes all it is known about TOF strip
47 void SetPadefficiency(Float_t padefficiency) {fpadefficiency=padefficiency;}
48 void SetEdgeEffect(Int_t edgeEffect) {fEdgeEffect=edgeEffect;}
49 void SetEdgeTails(Int_t edgeTails) {fEdgeTails=edgeTails;}
50 void SetHparameter(Float_t hparameter) {fHparameter=hparameter;}
51 void SetH2parameter(Float_t h2parameter) {fH2parameter=h2parameter;}
52 void SetKparameter(Float_t kparameter) {fKparameter=kparameter;}
53 void SetK2parameter(Float_t k2parameter) {fK2parameter=k2parameter;}
54 void SetEffCenter(Float_t effCenter) {fEffCenter=effCenter;}
55 void SetEffBoundary(Float_t effBoundary) {fEffBoundary=effBoundary;}
56 void SetEff2Boundary(Float_t eff2Boundary) {fEff2Boundary=eff2Boundary;}
57 void SetEff3Boundary(Float_t eff3Boundary) {fEff3Boundary=eff3Boundary;}
7e6dce66 58 void SetAddTRes(Float_t addTRes) {fAddTRes=addTRes;}
f73548c4 59 void SetResCenter (Float_t resCenter) {fResCenter=resCenter;}
60 void SetResBoundary(Float_t resBoundary) {fResBoundary=resBoundary;}
61 void SetResSlope(Float_t resSlope) {fResSlope=resSlope;}
62 void SetTimeWalkCenter(Float_t timeWalkCenter) {fTimeWalkCenter=timeWalkCenter;}
63 void SetTimeWalkBoundary(Float_t timeWalkBoundary){fTimeWalkBoundary=timeWalkBoundary;}
64 void SetTimeWalkSlope(Float_t timeWalkSlope) {fTimeWalkSlope=timeWalkSlope;}
65
66 void SetTimeDelayFlag(Int_t timeDelayFlag) {fTimeDelayFlag=timeDelayFlag;}
67 void SetPulseHeightSlope(Float_t pulseHeightSlope){fPulseHeightSlope=pulseHeightSlope;}
68 void SetTimeDelaySlope(Float_t timeDelaySlope) {fTimeDelaySlope=timeDelaySlope;}
69 void SetMinimumCharge(Float_t minimumCharge) {fMinimumCharge=minimumCharge;}
70 void SetChargeSmearing(Float_t chargeSmearing) {fChargeSmearing=chargeSmearing;}
71 void SetLogChargeSmearing(Float_t logChargeSmearing){fLogChargeSmearing=logChargeSmearing;}
72 void SetTimeSmearing(Float_t timeSmearing) {fTimeSmearing=timeSmearing;}
73 void SetAverageTimeFlag(Int_t averageTimeFlag) {fAverageTimeFlag=averageTimeFlag;}
43f77f2d 74
ea7a588a 75 void SetAdcBin(Float_t adcBin) {fAdcBin=adcBin;}
76 void SetAdcMean(Float_t adcMean) {fAdcMean=adcMean;}
77 void SetAdcRms(Float_t adcRms) {fAdcRms=adcRms;}
f73548c4 78
79 Float_t GetPadefficiency() const {return fpadefficiency;}
80 Int_t GetEdgeEffect() const {return fEdgeEffect;}
81 Int_t GetEdgeTails() const {return fEdgeTails;}
82 Float_t GetHparameter() const {return fHparameter;}
83 Float_t GetH2parameter() const {return fH2parameter;}
84 Float_t GetKparameter() const {return fKparameter;}
85 Float_t GetK2parameter() const {return fK2parameter;}
86 Float_t GetEffCenter() const {return fEffCenter;}
87 Float_t GetEffBoundary() const {return fEffBoundary;}
88 Float_t GetEff2Boundary() const {return fEff2Boundary;}
89 Float_t GetEff3Boundary() const {return fEff3Boundary;}
7e6dce66 90 Float_t GetAddTRes () const {return fAddTRes;}
f73548c4 91 Float_t GetResCenter () const {return fResCenter;}
92 Float_t GetResBoundary() const {return fResBoundary;}
93 Float_t GetResSlope() const {return fResSlope;}
94 Float_t GetTimeWalkCenter() const {return fTimeWalkCenter;}
95 Float_t GetTimeWalkBoundary() const {return fTimeWalkBoundary;}
96 Float_t GetTimeWalkSlope() const {return fTimeWalkSlope;}
97 Int_t GetTimeDelayFlag() const {return fTimeDelayFlag;}
98 Float_t GetPulseHeightSlope() const {return fPulseHeightSlope;}
99 Float_t GetTimeDelaySlope() const {return fTimeDelaySlope;}
100 Float_t GetMinimumCharge() const {return fMinimumCharge;}
101 Float_t GetChargeSmearing() const {return fChargeSmearing;}
102 Float_t GetLogChargeSmearing()const {return fLogChargeSmearing;}
103 Float_t GetTimeSmearing() const {return fTimeSmearing;}
104 Int_t GetAverageTimeFlag() const {return fAverageTimeFlag;}
43f77f2d 105
ea7a588a 106 Float_t GetAdcBin() const {return fAdcBin;}
107 Float_t GetAdcMean() const {return fAdcMean;}
108 Float_t GetAdcRms() const {return fAdcRms;}
f73548c4 109
517b7f8f 110
7e6dce66 111protected:
112
113
517b7f8f 114private:
ea7a588a 115 Int_t fEvent1; // lower bound for events to sdigitize
116 Int_t fEvent2; // upper bound for events to sdigitize
f73548c4 117 TF1 *ftail; // pointer to formula for time with tail
5919c40c 118 TString fHeadersFile; // input file
d61f73d9 119 AliRunLoader* fRunLoader; //! Run Loader
120 AliLoader* fTOFLoader; //! Loader
88cb7938 121
122
55991c8b 123 Int_t fSelectedSector; // sector number for sdigitization
124 Int_t fSelectedPlate ; // plate number for sdigitization
517b7f8f 125
f73548c4 126 // detector response simulation
127 // Intrisic MRPC time resolution and pad (edge effect) parameters
128 Float_t fTimeResolution; // time resolution of the MRPC (ns)
129 Float_t fpadefficiency; // intrinsic pad efficiency, used if fEdgeEffect==0
130 Int_t fEdgeEffect; // edge effects option
131 Int_t fEdgeTails; // edge tails option
d61f73d9 132 Float_t fHparameter; // sensitive edge (to produce hits on the neighbouring pads)
133 // 0.7 cm (old); 0.4 cm (new)
f73548c4 134 Float_t fH2parameter; // parameter to fit the efficiency
d61f73d9 135 Float_t fKparameter; // sensitive edge (going ahead towards the center
136 // no delay effects are suffered) 1.0 cm (old); 0.5 cm (new)
f73548c4 137 Float_t fK2parameter; // parameter to fit the efficiency
138 // Pad Efficiency and Resolution parameters
139 Float_t fEffCenter; // efficiency in the central region of the pad
140 Float_t fEffBoundary; // efficiency at the boundary of the pad
141 Float_t fEff2Boundary; // efficiency value at H2parameter
142 Float_t fEff3Boundary; // efficiency value at K2parameter
7e6dce66 143 Float_t fAddTRes; // additional contribution to
144 // the intrinsic MRPC time resolution (ps)
f73548c4 145 Float_t fResCenter; // resolution (ps) in the central region of the pad
146 Float_t fResBoundary; // resolution (ps) at the boundary of the pad
147 Float_t fResSlope; // slope (ps/K) for neighbouring pad
148 // Time Walk parameters
149 Float_t fTimeWalkCenter; // time walk (ps) in the central region of the pad
150 Float_t fTimeWalkBoundary;// time walk (ps) at the boundary of the pad
151 Float_t fTimeWalkSlope; // slope (ps/K) for neighbouring pad
152 Int_t fTimeDelayFlag; // flag for delay due to the PulseHeightEffect
153 Float_t fPulseHeightSlope;// It determines the charge amount induced
154 // due to edge effect, using the formula
155 // qInduced=exp(-PulseHeightSlope*x)
156 Float_t fTimeDelaySlope; // It determines the time delay. This is the slope
157 // in the T1-T2 vs log(q1/q2) plot
158 // ADC-TDC correlation parameters
159 Float_t fMinimumCharge; // Minimum charge amount which could be induced
160 Float_t fChargeSmearing; // Smearing in charge in (q1/q2) vs x plot
161 Float_t fLogChargeSmearing;// Smearing in log of charge ratio
162 Float_t fTimeSmearing; // Smearing in time in time vs log(q1/q2) plot
163 Int_t fAverageTimeFlag; // flag (see the setter for details)
43f77f2d 164
ea7a588a 165 Float_t fAdcBin; // charge-window for the ADC bins [pC]
166 Float_t fAdcMean; // mean value for the ADC spectrum [bins]
167 Float_t fAdcRms; // rms value for the ADC spectrum [bins]
f73548c4 168
55991c8b 169 ClassDef(AliTOFSDigitizer,2) // creates TOF SDigits
517b7f8f 170
171};
172
173#endif // AliTOFSDigitizer_H