| 1 | #ifndef MARS_MHCalibrationBlindPixel
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| 2 | #define MARS_MHCalibrationBlindPixel
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| 3 |
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| 4 | #ifndef MARS_MH
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| 5 | #include "MH.h"
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| 6 | #endif
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| 7 |
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| 8 | class TH1F;
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| 9 | class TH1I;
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| 10 | class TF1;
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| 11 | class TPaveText;
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| 12 |
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| 13 | class TMath;
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| 14 | class MParList;
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| 15 | class MHCalibrationBlindPixel : public MH
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| 16 | {
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| 17 | private:
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| 18 |
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| 19 | static const Int_t fgBlindPixelChargeNbins;
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| 20 | static const Int_t fgBlindPixelTimeNbins;
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| 21 | static const Int_t fgBlindPixelChargevsNbins;
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| 22 | static const Axis_t fgBlindPixelTimeFirst;
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| 23 | static const Axis_t fgBlindPixelTimeLast;
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| 24 | static const Double_t fgBlindPixelElectronicAmp;
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| 25 | static const Double_t fgBlindPixelElectronicAmpError;
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| 26 |
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| 27 | TH1F* fHBlindPixelCharge; // Histogram with the single Phe spectrum
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| 28 | TH1F* fHBlindPixelTime; // Variance of summed FADC slices
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| 29 | TH1I* fHBlindPixelChargevsN; // Summed Charge vs. Event Nr.
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| 30 | TH1F* fHBlindPixelPSD; // Power spectrum density of fHBlindPixelChargevsN
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| 31 |
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| 32 | TF1 *fSinglePheFit;
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| 33 | TF1 *fTimeGausFit;
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| 34 | TF1 *fSinglePhePedFit;
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| 35 |
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| 36 | Axis_t fBlindPixelChargefirst;
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| 37 | Axis_t fBlindPixelChargelast;
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| 38 |
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| 39 | void DrawLegend();
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| 40 |
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| 41 | TPaveText *fFitLegend;
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| 42 | Bool_t fFitOK;
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| 43 |
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| 44 | Double_t fLambda;
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| 45 | Double_t fMu0;
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| 46 | Double_t fMu1;
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| 47 | Double_t fSigma0;
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| 48 | Double_t fSigma1;
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| 49 |
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| 50 | Double_t fLambdaErr;
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| 51 | Double_t fMu0Err;
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| 52 | Double_t fMu1Err;
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| 53 | Double_t fSigma0Err;
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| 54 | Double_t fSigma1Err;
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| 55 |
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| 56 | Double_t fChisquare;
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| 57 | Double_t fProb;
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| 58 | Int_t fNdf;
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| 59 |
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| 60 | Double_t fMeanTime;
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| 61 | Double_t fMeanTimeErr;
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| 62 | Double_t fSigmaTime;
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| 63 | Double_t fSigmaTimeErr;
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| 64 |
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| 65 | Double_t fLambdaCheck;
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| 66 | Double_t fLambdaCheckErr;
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| 67 |
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| 68 | Double_t fMeanPedestal;
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| 69 | Double_t fMeanPedestalErr;
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| 70 | Double_t fSigmaPedestal;
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| 71 | Double_t fSigmaPedestalErr;
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| 72 |
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| 73 | public:
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| 74 |
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| 75 | MHCalibrationBlindPixel(const char *name=NULL, const char *title=NULL);
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| 76 | ~MHCalibrationBlindPixel();
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| 77 |
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| 78 | void Clear(Option_t *o="");
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| 79 | void Reset();
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| 80 |
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| 81 | Bool_t FillBlindPixelCharge(Float_t q);
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| 82 | Bool_t FillBlindPixelTime(Float_t t);
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| 83 | Bool_t FillBlindPixelChargevsN(Stat_t rq, Int_t t);
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| 84 |
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| 85 | // Setters
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| 86 | void SetMeanPedestal(const Float_t f) { fMeanPedestal = f; }
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| 87 | void SetMeanPedestalErr(const Float_t f) { fMeanPedestalErr = f; }
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| 88 | void SetSigmaPedestal(const Float_t f) { fSigmaPedestal = f; }
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| 89 | void SetSigmaPedestalErr(const Float_t f) { fSigmaPedestalErr = f; }
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| 90 |
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| 91 | // Getters
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| 92 | const Double_t GetLambda() const { return fLambda; }
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| 93 | const Double_t GetLambdaCheck() const { return fLambdaCheck; }
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| 94 | const Double_t GetMu0() const { return fMu0; }
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| 95 | const Double_t GetMu1() const { return fMu1; }
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| 96 | const Double_t GetSigma0() const { return fSigma0; }
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| 97 | const Double_t GetSigma1() const { return fSigma1; }
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| 98 |
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| 99 | const Double_t GetLambdaErr() const { return fLambdaErr; }
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| 100 | const Double_t GetLambdaCheckErr() const { return fLambdaCheckErr; }
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| 101 | const Double_t GetMu0Err() const { return fMu0Err; }
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| 102 | const Double_t GetMu1Err() const { return fMu1Err; }
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| 103 | const Double_t GetSigma0Err() const { return fSigma0Err; }
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| 104 | const Double_t GetSigma1Err() const { return fSigma1Err; }
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| 105 |
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| 106 | const Double_t GetChiSquare() const { return fChisquare; }
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| 107 | const Double_t GetProb() const { return fProb; }
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| 108 | const Int_t GetNdf() const { return fNdf; }
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| 109 |
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| 110 | const Double_t GetMeanTime() const { return fMeanTime; }
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| 111 | const Double_t GetMeanTimeErr() const { return fMeanTimeErr; }
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| 112 | const Double_t GetSigmaTime() const { return fSigmaTime; }
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| 113 | const Double_t GetSigmaTimeErr() const { return fSigmaTimeErr; }
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| 114 |
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| 115 | const Bool_t IsFitOK() const { return fFitOK; }
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| 116 |
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| 117 | const TH1I *GetHBlindPixelChargevsN() const { return fHBlindPixelChargevsN; }
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| 118 | const TH1F *GetHBlindPixelPSD() const { return fHBlindPixelPSD; }
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| 119 |
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| 120 | // Draws
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| 121 | TObject *DrawClone(Option_t *option="") const;
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| 122 | void Draw(Option_t *option="");
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| 123 |
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| 124 | // Fits
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| 125 | enum FitFunc_t { kEPoisson4, kEPoisson5, kEPoisson6, kEPoisson7, kEPolya, kEMichele };
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| 126 |
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| 127 | private:
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| 128 | FitFunc_t fFitFunc;
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| 129 |
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| 130 | public:
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| 131 | Bool_t FitSinglePhe(Axis_t rmin=0, Axis_t rmax=0, Option_t *opt="RL0+Q");
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| 132 | Bool_t FitTime(Axis_t rmin=0., Axis_t rmax=0.,Option_t *opt="R0+Q");
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| 133 | void ChangeFitFunc(FitFunc_t func) { fFitFunc = func; }
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| 134 |
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| 135 | // Simulation
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| 136 | Bool_t SimulateSinglePhe(Double_t lambda,
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| 137 | Double_t mu0,Double_t mu1,
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| 138 | Double_t sigma0,Double_t sigma1);
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| 139 |
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| 140 | // Others
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| 141 | void CutAllEdges();
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| 142 |
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| 143 | private:
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| 144 |
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| 145 | const static Double_t fNoWay = 10000000000.0;
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| 146 |
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| 147 | Bool_t InitFit(Axis_t min, Axis_t max);
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| 148 | void ExitFit(TF1 *f);
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| 149 |
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| 150 | inline static Double_t fFitFuncMichele(Double_t *x, Double_t *par)
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| 151 | {
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| 152 |
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| 153 | Double_t lambda1cat = par[0];
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| 154 | Double_t lambda1dyn = par[1];
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| 155 | Double_t mu0 = par[2];
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| 156 | Double_t mu1cat = par[3];
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| 157 | Double_t mu1dyn = par[4];
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| 158 | Double_t sigma0 = par[5];
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| 159 | Double_t sigma1cat = par[6];
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| 160 | Double_t sigma1dyn = par[7];
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| 161 |
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| 162 | Double_t sumcat = 0.;
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| 163 | Double_t sumdyn = 0.;
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| 164 | Double_t arg = 0.;
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| 165 |
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| 166 | if (mu1cat < mu0)
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| 167 | return fNoWay;
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| 168 |
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| 169 | if (sigma1cat < sigma0)
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| 170 | return fNoWay;
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| 171 |
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| 172 | // if (sigma1cat < sigma1dyn)
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| 173 | // return NoWay;
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| 174 |
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| 175 | //if (mu1cat < mu1dyn)
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| 176 | // return NoWay;
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| 177 |
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| 178 | // if (lambda1cat < lambda1dyn)
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| 179 | // return NoWay;
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| 180 |
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| 181 | Double_t mu2cat = (2.*mu1cat)-mu0;
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| 182 | Double_t mu2dyn = (2.*mu1dyn)-mu0;
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| 183 | Double_t mu3cat = (3.*mu1cat)-(2.*mu0);
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| 184 | Double_t mu3dyn = (3.*mu1dyn)-(2.*mu0);
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| 185 |
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| 186 | Double_t sigma2cat = TMath::Sqrt((2.*sigma1cat*sigma1cat) - (sigma0*sigma0));
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| 187 | Double_t sigma2dyn = TMath::Sqrt((2.*sigma1dyn*sigma1dyn) - (sigma0*sigma0));
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| 188 | Double_t sigma3cat = TMath::Sqrt((3.*sigma1cat*sigma1cat) - (2.*sigma0*sigma0));
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| 189 | Double_t sigma3dyn = TMath::Sqrt((3.*sigma1dyn*sigma1dyn) - (2.*sigma0*sigma0));
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| 190 |
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| 191 | Double_t lambda2cat = lambda1cat*lambda1cat;
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| 192 | Double_t lambda2dyn = lambda1dyn*lambda1dyn;
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| 193 | Double_t lambda3cat = lambda2cat*lambda1cat;
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| 194 | Double_t lambda3dyn = lambda2dyn*lambda1dyn;
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| 195 |
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| 196 | // k=0:
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| 197 | arg = (x[0] - mu0)/sigma0;
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| 198 | sumcat = TMath::Exp(-0.5*arg*arg)/sigma0;
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| 199 | sumdyn =sumcat;
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| 200 |
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| 201 | // k=1cat:
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| 202 | arg = (x[0] - mu1cat)/sigma1cat;
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| 203 | sumcat += lambda1cat*TMath::Exp(-0.5*arg*arg)/sigma1cat;
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| 204 | // k=1dyn:
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| 205 | arg = (x[0] - mu1dyn)/sigma1dyn;
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| 206 | sumdyn += lambda1dyn*TMath::Exp(-0.5*arg*arg)/sigma1dyn;
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| 207 |
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| 208 | // k=2cat:
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| 209 | arg = (x[0] - mu2cat)/sigma2cat;
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| 210 | sumcat += 0.5*lambda2cat*TMath::Exp(-0.5*arg*arg)/sigma2cat;
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| 211 | // k=2dyn:
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| 212 | arg = (x[0] - mu2dyn)/sigma2dyn;
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| 213 | sumdyn += 0.5*lambda2dyn*TMath::Exp(-0.5*arg*arg)/sigma2dyn;
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| 214 |
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| 215 |
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| 216 | // k=3cat:
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| 217 | arg = (x[0] - mu3cat)/sigma3cat;
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| 218 | sumcat += 0.1666666667*lambda3cat*TMath::Exp(-0.5*arg*arg)/sigma3cat;
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| 219 | // k=3dyn:
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| 220 | arg = (x[0] - mu3dyn)/sigma3dyn;
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| 221 | sumdyn += 0.1666666667*lambda3dyn*TMath::Exp(-0.5*arg*arg)/sigma3dyn;
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| 222 |
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| 223 | sumcat = TMath::Exp(-1.*lambda1cat)*sumcat;
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| 224 | sumdyn = TMath::Exp(-1.*lambda1dyn)*sumdyn;
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| 225 |
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| 226 | return par[8]*(sumcat+sumdyn)/2.;
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| 227 |
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| 228 | }
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| 229 |
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| 230 | inline static Double_t fPoissonKto4(Double_t *x, Double_t *par)
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| 231 | {
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| 232 |
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| 233 | Double_t lambda = par[0];
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| 234 |
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| 235 | Double_t sum = 0.;
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| 236 | Double_t arg = 0.;
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| 237 |
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| 238 | Double_t mu0 = par[1];
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| 239 | Double_t mu1 = par[2];
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| 240 |
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| 241 | if (mu1 < mu0)
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| 242 | return fNoWay;
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| 243 |
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| 244 | Double_t sigma0 = par[3];
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| 245 | Double_t sigma1 = par[4];
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| 246 |
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| 247 | if (sigma1 < sigma0)
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| 248 | return fNoWay;
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| 249 |
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| 250 | Double_t mu2 = (2.*mu1)-mu0;
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| 251 | Double_t mu3 = (3.*mu1)-(2.*mu0);
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| 252 | Double_t mu4 = (4.*mu1)-(3.*mu0);
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| 253 |
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| 254 | Double_t sigma2 = TMath::Sqrt((2.*sigma1*sigma1) - (sigma0*sigma0));
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| 255 | Double_t sigma3 = TMath::Sqrt((3.*sigma1*sigma1) - (2.*sigma0*sigma0));
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| 256 | Double_t sigma4 = TMath::Sqrt((4.*sigma1*sigma1) - (3.*sigma0*sigma0));
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| 257 |
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| 258 | Double_t lambda2 = lambda*lambda;
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| 259 | Double_t lambda3 = lambda2*lambda;
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| 260 | Double_t lambda4 = lambda3*lambda;
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| 261 |
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| 262 | // k=0:
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| 263 | arg = (x[0] - mu0)/sigma0;
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| 264 | sum = TMath::Exp(-0.5*arg*arg)/sigma0;
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| 265 |
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| 266 | // k=1:
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| 267 | arg = (x[0] - mu1)/sigma1;
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| 268 | sum += lambda*TMath::Exp(-0.5*arg*arg)/sigma1;
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| 269 |
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| 270 | // k=2:
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| 271 | arg = (x[0] - mu2)/sigma2;
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| 272 | sum += 0.5*lambda2*TMath::Exp(-0.5*arg*arg)/sigma2;
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| 273 |
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| 274 | // k=3:
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| 275 | arg = (x[0] - mu3)/sigma3;
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| 276 | sum += 0.1666666667*lambda3*TMath::Exp(-0.5*arg*arg)/sigma3;
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| 277 |
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| 278 | // k=4:
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| 279 | arg = (x[0] - mu4)/sigma4;
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| 280 | sum += 0.041666666666667*lambda4*TMath::Exp(-0.5*arg*arg)/sigma4;
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| 281 |
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| 282 | return TMath::Exp(-1.*lambda)*par[5]*sum;
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| 283 |
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| 284 | }
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| 285 |
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| 286 |
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| 287 | inline static Double_t fPoissonKto5(Double_t *x, Double_t *par)
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| 288 | {
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| 289 |
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| 290 | Double_t lambda = par[0];
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| 291 |
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| 292 | Double_t sum = 0.;
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| 293 | Double_t arg = 0.;
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| 294 |
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| 295 | Double_t mu0 = par[1];
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| 296 | Double_t mu1 = par[2];
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| 297 |
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| 298 | if (mu1 < mu0)
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| 299 | return fNoWay;
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| 300 |
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| 301 | Double_t sigma0 = par[3];
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| 302 | Double_t sigma1 = par[4];
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| 303 |
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| 304 | if (sigma1 < sigma0)
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| 305 | return fNoWay;
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| 306 |
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| 307 |
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| 308 | Double_t mu2 = (2.*mu1)-mu0;
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| 309 | Double_t mu3 = (3.*mu1)-(2.*mu0);
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| 310 | Double_t mu4 = (4.*mu1)-(3.*mu0);
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| 311 | Double_t mu5 = (5.*mu1)-(4.*mu0);
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| 312 |
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| 313 | Double_t sigma2 = TMath::Sqrt((2.*sigma1*sigma1) - (sigma0*sigma0));
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| 314 | Double_t sigma3 = TMath::Sqrt((3.*sigma1*sigma1) - (2.*sigma0*sigma0));
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| 315 | Double_t sigma4 = TMath::Sqrt((4.*sigma1*sigma1) - (3.*sigma0*sigma0));
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| 316 | Double_t sigma5 = TMath::Sqrt((5.*sigma1*sigma1) - (4.*sigma0*sigma0));
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| 317 |
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| 318 | Double_t lambda2 = lambda*lambda;
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| 319 | Double_t lambda3 = lambda2*lambda;
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| 320 | Double_t lambda4 = lambda3*lambda;
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| 321 | Double_t lambda5 = lambda4*lambda;
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| 322 |
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| 323 | // k=0:
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| 324 | arg = (x[0] - mu0)/sigma0;
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| 325 | sum = TMath::Exp(-0.5*arg*arg)/sigma0;
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| 326 |
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| 327 | // k=1:
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| 328 | arg = (x[0] - mu1)/sigma1;
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| 329 | sum += lambda*TMath::Exp(-0.5*arg*arg)/sigma1;
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| 330 |
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| 331 | // k=2:
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| 332 | arg = (x[0] - mu2)/sigma2;
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| 333 | sum += 0.5*lambda2*TMath::Exp(-0.5*arg*arg)/sigma2;
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| 334 |
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| 335 | // k=3:
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| 336 | arg = (x[0] - mu3)/sigma3;
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| 337 | sum += 0.1666666667*lambda3*TMath::Exp(-0.5*arg*arg)/sigma3;
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| 338 |
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| 339 | // k=4:
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| 340 | arg = (x[0] - mu4)/sigma4;
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| 341 | sum += 0.041666666666667*lambda4*TMath::Exp(-0.5*arg*arg)/sigma4;
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| 342 |
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| 343 | // k=5:
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| 344 | arg = (x[0] - mu5)/sigma5;
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| 345 | sum += 0.008333333333333*lambda5*TMath::Exp(-0.5*arg*arg)/sigma5;
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| 346 |
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| 347 | return TMath::Exp(-1.*lambda)*par[5]*sum;
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| 348 |
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| 349 | }
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| 350 |
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| 351 |
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| 352 | inline static Double_t fPoissonKto6(Double_t *x, Double_t *par)
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| 353 | {
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| 354 |
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| 355 | Double_t lambda = par[0];
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| 356 |
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| 357 | Double_t sum = 0.;
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| 358 | Double_t arg = 0.;
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| 359 |
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| 360 | Double_t mu0 = par[1];
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| 361 | Double_t mu1 = par[2];
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| 362 |
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| 363 | if (mu1 < mu0)
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| 364 | return fNoWay;
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| 365 |
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| 366 | Double_t sigma0 = par[3];
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| 367 | Double_t sigma1 = par[4];
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| 368 |
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| 369 | if (sigma1 < sigma0)
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| 370 | return fNoWay;
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| 371 |
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| 372 |
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| 373 | Double_t mu2 = (2.*mu1)-mu0;
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| 374 | Double_t mu3 = (3.*mu1)-(2.*mu0);
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| 375 | Double_t mu4 = (4.*mu1)-(3.*mu0);
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| 376 | Double_t mu5 = (5.*mu1)-(4.*mu0);
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| 377 | Double_t mu6 = (6.*mu1)-(5.*mu0);
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| 378 |
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| 379 | Double_t sigma2 = TMath::Sqrt((2.*sigma1*sigma1) - (sigma0*sigma0));
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| 380 | Double_t sigma3 = TMath::Sqrt((3.*sigma1*sigma1) - (2.*sigma0*sigma0));
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| 381 | Double_t sigma4 = TMath::Sqrt((4.*sigma1*sigma1) - (3.*sigma0*sigma0));
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| 382 | Double_t sigma5 = TMath::Sqrt((5.*sigma1*sigma1) - (4.*sigma0*sigma0));
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| 383 | Double_t sigma6 = TMath::Sqrt((6.*sigma1*sigma1) - (5.*sigma0*sigma0));
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| 384 |
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| 385 | Double_t lambda2 = lambda*lambda;
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| 386 | Double_t lambda3 = lambda2*lambda;
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| 387 | Double_t lambda4 = lambda3*lambda;
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| 388 | Double_t lambda5 = lambda4*lambda;
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| 389 | Double_t lambda6 = lambda5*lambda;
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| 390 |
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| 391 | // k=0:
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| 392 | arg = (x[0] - mu0)/sigma0;
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| 393 | sum = TMath::Exp(-0.5*arg*arg)/sigma0;
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| 394 |
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| 395 | // k=1:
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| 396 | arg = (x[0] - mu1)/sigma1;
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| 397 | sum += lambda*TMath::Exp(-0.5*arg*arg)/sigma1;
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| 398 |
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| 399 | // k=2:
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| 400 | arg = (x[0] - mu2)/sigma2;
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| 401 | sum += 0.5*lambda2*TMath::Exp(-0.5*arg*arg)/sigma2;
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| 402 |
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| 403 | // k=3:
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| 404 | arg = (x[0] - mu3)/sigma3;
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| 405 | sum += 0.1666666667*lambda3*TMath::Exp(-0.5*arg*arg)/sigma3;
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| 406 |
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| 407 | // k=4:
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| 408 | arg = (x[0] - mu4)/sigma4;
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| 409 | sum += 0.041666666666667*lambda4*TMath::Exp(-0.5*arg*arg)/sigma4;
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| 410 |
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| 411 | // k=5:
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| 412 | arg = (x[0] - mu5)/sigma5;
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| 413 | sum += 0.008333333333333*lambda5*TMath::Exp(-0.5*arg*arg)/sigma5;
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| 414 |
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| 415 | // k=6:
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| 416 | arg = (x[0] - mu6)/sigma6;
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| 417 | sum += 0.001388888888889*lambda6*TMath::Exp(-0.5*arg*arg)/sigma6;
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| 418 |
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| 419 | return TMath::Exp(-1.*lambda)*par[5]*sum;
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| 420 |
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| 421 | }
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| 422 |
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| 423 | inline static Double_t fPolya(Double_t *x, Double_t *par)
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| 424 | {
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| 425 |
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| 426 | const Double_t QEcat = 0.247; // mean quantum efficiency
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| 427 | const Double_t sqrt2 = 1.4142135623731;
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| 428 | const Double_t sqrt3 = 1.7320508075689;
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| 429 | const Double_t sqrt4 = 2.;
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| 430 |
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| 431 | const Double_t lambda = par[0]; // mean number of photons
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| 432 |
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| 433 | const Double_t excessPoisson = par[1]; // non-Poissonic noise contribution
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| 434 | const Double_t delta1 = par[2]; // amplification first dynode
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| 435 | const Double_t delta2 = par[3]; // amplification subsequent dynodes
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| 436 |
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| 437 | const Double_t electronicAmpl = par[4]; // electronic amplification and conversion to FADC charges
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| 438 |
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| 439 | const Double_t pmtAmpl = delta1*delta2*delta2*delta2*delta2*delta2; // total PMT gain
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| 440 | const Double_t A = 1. + excessPoisson - QEcat
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| 441 | + 1./delta1
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| 442 | + 1./delta1/delta2
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| 443 | + 1./delta1/delta2/delta2; // variance contributions from PMT and QE
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| 444 |
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| 445 | const Double_t totAmpl = QEcat*pmtAmpl*electronicAmpl; // Total gain and conversion
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| 446 |
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| 447 | const Double_t mu0 = par[7]; // pedestal
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| 448 | const Double_t mu1 = totAmpl; // single phe position
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| 449 | const Double_t mu2 = 2*totAmpl; // double phe position
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| 450 | const Double_t mu3 = 3*totAmpl; // triple phe position
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| 451 | const Double_t mu4 = 4*totAmpl; // quadruple phe position
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| 452 |
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| 453 | const Double_t sigma0 = par[5];
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| 454 | const Double_t sigma1 = electronicAmpl*pmtAmpl*TMath::Sqrt(QEcat*A);
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| 455 | const Double_t sigma2 = sqrt2*sigma1;
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| 456 | const Double_t sigma3 = sqrt3*sigma1;
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| 457 | const Double_t sigma4 = sqrt4*sigma1;
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| 458 |
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| 459 | const Double_t lambda2 = lambda*lambda;
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| 460 | const Double_t lambda3 = lambda2*lambda;
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| 461 | const Double_t lambda4 = lambda3*lambda;
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| 462 |
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| 463 | //-- calculate the area----
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| 464 | Double_t arg = (x[0] - mu0)/sigma0;
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| 465 | Double_t sum = TMath::Exp(-0.5*arg*arg)/sigma0;
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| 466 |
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| 467 | // k=1:
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| 468 | arg = (x[0] - mu1)/sigma1;
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| 469 | sum += lambda*TMath::Exp(-0.5*arg*arg)/sigma1;
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| 470 |
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| 471 | // k=2:
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| 472 | arg = (x[0] - mu2)/sigma2;
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| 473 | sum += 0.5*lambda2*TMath::Exp(-0.5*arg*arg)/sigma2;
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| 474 |
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| 475 | // k=3:
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| 476 | arg = (x[0] - mu3)/sigma3;
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| 477 | sum += 0.1666666667*lambda3*TMath::Exp(-0.5*arg*arg)/sigma3;
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| 478 |
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| 479 | // k=4:
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| 480 | arg = (x[0] - mu4)/sigma4;
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| 481 | sum += 0.041666666666667*lambda4*TMath::Exp(-0.5*arg*arg)/sigma4;
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| 482 |
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| 483 | return TMath::Exp(-1.*lambda)*par[6]*sum;
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| 484 | }
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| 485 |
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| 486 |
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| 487 |
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| 488 | ClassDef(MHCalibrationBlindPixel, 1) // Histograms from the Calibration Blind Pixel
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| 489 | };
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| 490 |
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| 491 | #endif /* MARS_MHCalibrationBlindPixel */
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