| 1 | /* ======================================================================== *\
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| 2 | !
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| 3 | ! *
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| 4 | ! * This file is part of MARS, the MAGIC Analysis and Reconstruction
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| 5 | ! * Software. It is distributed to you in the hope that it can be a useful
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| 6 | ! * and timesaving tool in analysing Data of imaging Cerenkov telescopes.
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| 7 | ! * It is distributed WITHOUT ANY WARRANTY.
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| 8 | ! *
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| 9 | ! * Permission to use, copy, modify and distribute this software and its
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| 10 | ! * documentation for any purpose is hereby granted without fee,
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| 11 | ! * provided that the above copyright notice appear in all copies and
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| 12 | ! * that both that copyright notice and this permission notice appear
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| 13 | ! * in supporting documentation. It is provided "as is" without express
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| 14 | ! * or implied warranty.
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| 15 | ! *
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| 16 | !
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| 17 | !
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| 18 | ! Author(s): Markus Gaug 11/2003 <mailto:markus@ifae.es>
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| 19 | !
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| 20 | ! Copyright: MAGIC Software Development, 2000-2001
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| 21 | !
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| 22 | !
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| 23 | \* ======================================================================== */
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| 24 |
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| 25 | /////////////////////////////////////////////////////////////////////////////
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| 26 | // //
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| 27 | // MCalibrationPix //
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| 28 | // //
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| 29 | // This is the storage container to hold informations about the pedestal //
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| 30 | // (offset) value of one Pixel (PMT). //
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| 31 | // //
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| 32 | /////////////////////////////////////////////////////////////////////////////
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| 33 | #include "MCalibrationPix.h"
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| 34 | #include "MCalibrationConfig.h"
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| 35 |
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| 36 | #include "MLog.h"
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| 37 | #include "MLogManip.h"
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| 38 |
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| 39 | ClassImp(MCalibrationPix);
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| 40 |
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| 41 | using namespace std;
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| 42 |
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| 43 | // --------------------------------------------------------------------------
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| 44 | //
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| 45 | // Default Constructor:
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| 46 | //
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| 47 | // The following values are initialized to meaningful values:
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| 48 | //
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| 49 | // - The Electronic Rms to 1.5 per FADC slice
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| 50 | // - The uncertainty about the Electronic RMS to 0.3 per slice
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| 51 | // - The F-Factor is assumed to have been measured in Munich to 1.13 - 1.17.
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| 52 | // We use here the Square of the Munich definition, thus:
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| 53 | // Mean F-Factor = 1.15*1.15 = 1.32
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| 54 | // Error F-Factor = 2.*0.02 = 0.04
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| 55 | //
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| 56 | MCalibrationPix::MCalibrationPix(const char *name, const char *title)
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| 57 | : fPixId(-1),
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| 58 | fCharge(-1.),
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| 59 | fErrCharge(-1.),
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| 60 | fSigmaCharge(-1.),
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| 61 | fErrSigmaCharge(-1.),
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| 62 | fRSigmaSquare(-1.),
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| 63 | fChargeProb(-1.),
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| 64 | fPed(-1.),
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| 65 | fPedRms(-1.),
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| 66 | fErrPedRms(0.),
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| 67 | fElectronicPedRms(1.5),
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| 68 | fErrElectronicPedRms(0.3),
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| 69 | fTime(-1.),
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| 70 | fSigmaTime(-1.),
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| 71 | fTimeChiSquare(-1.),
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| 72 | fFactor(1.32),
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| 73 | fFactorError(0.04),
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| 74 | fPheFFactorMethod(-1.),
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| 75 | fPheFFactorMethodError(-1.),
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| 76 | fConversionFFactorMethod(-1.),
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| 77 | fConversionBlindPixelMethod(-1.),
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| 78 | fConversionPINDiodeMethod(-1.),
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| 79 | fConversionErrorFFactorMethod(-1.),
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| 80 | fConversionErrorBlindPixelMethod(-1.),
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| 81 | fConversionErrorPINDiodeMethod(-1.),
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| 82 | fConversionSigmaFFactorMethod(-1.),
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| 83 | fConversionSigmaBlindPixelMethod(-1.),
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| 84 | fConversionSigmaPINDiodeMethod(-1.),
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| 85 | fHiGainSaturation(kFALSE),
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| 86 | fFitValid(kFALSE),
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| 87 | fFitted(kFALSE),
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| 88 | fBlindPixelMethodValid(kFALSE),
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| 89 | fFFactorMethodValid(kFALSE),
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| 90 | fPINDiodeMethodValid(kFALSE)
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| 91 | {
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| 92 |
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| 93 | fName = name ? name : "MCalibrationPixel";
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| 94 | fTitle = title ? title : "Container of the MHCalibrationPixels and the fit results";
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| 95 |
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| 96 | //
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| 97 | // At the moment, we don't have a database, yet,
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| 98 | // so we get it from the configuration file
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| 99 | //
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| 100 | fConversionHiLo = gkConversionHiLo;
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| 101 | fConversionHiLoError = gkConversionHiLoError;
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| 102 |
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| 103 | fHist = new MHCalibrationPixel("MHCalibrationPixel","Calibration Histograms Pixel ");
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| 104 |
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| 105 | }
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| 106 |
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| 107 | MCalibrationPix::~MCalibrationPix()
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| 108 | {
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| 109 | delete fHist;
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| 110 | }
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| 111 |
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| 112 |
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| 113 | void MCalibrationPix::DefinePixId(Int_t i)
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| 114 | {
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| 115 |
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| 116 | fPixId = i;
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| 117 | fHist->ChangeHistId(i);
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| 118 |
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| 119 | }
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| 120 |
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| 121 |
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| 122 | // ------------------------------------------------------------------------
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| 123 | //
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| 124 | // Invalidate values
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| 125 | //
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| 126 | void MCalibrationPix::Clear(Option_t *o)
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| 127 | {
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| 128 | fHist->Reset();
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| 129 | }
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| 130 |
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| 131 |
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| 132 | // --------------------------------------------------------------------------
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| 133 | //
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| 134 | // 1) Return if the charge distribution is already succesfully fitted
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| 135 | // or if the histogram is empty
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| 136 | // 2) Set a lower Fit range according to 1.5 Pedestal RMS in order to avoid
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| 137 | // possible remaining cosmics to spoil the fit.
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| 138 | // 3) Decide if the LoGain Histogram is fitted or the HiGain Histogram
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| 139 | // 4) Fit the histograms with a Gaussian
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| 140 | // 5) In case of failure print out the fit results
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| 141 | // 6) Retrieve the results and store them in this class
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| 142 | // 7) Calculate the number of photo-electrons after the F-Factor method
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| 143 | // 8) Calculate the errors of the F-Factor method
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| 144 | //
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| 145 | // The fits are declared valid (fFitValid = kTRUE), if:
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| 146 | //
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| 147 | // 1) Pixel has a fitted charge greater than 5*PedRMS
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| 148 | // 2) Pixel has a fit error greater than 0.
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| 149 | // 3) Pixel has a fit Probability greater than 0.0001
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| 150 | // 4) Pixel has a charge sigma bigger than its Pedestal RMS
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| 151 | // 5) If FitTimes is used,
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| 152 | // the mean arrival time is at least 1.0 slices from the used edge slices
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| 153 | // (this stage is only performed in the times fit)
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| 154 | //
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| 155 | // If the histogram is empty, all values are set to -1.
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| 156 | //
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| 157 | // The conversion factor after the F-Factor method is declared valid, if:
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| 158 | //
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| 159 | // 1) fFitValid is kTRUE
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| 160 | // 2) Conversion Factor is bigger than 0.
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| 161 | // 3) The error of the conversion factor is smaller than 10%
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| 162 | //
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| 163 | Bool_t MCalibrationPix::FitCharge()
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| 164 | {
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| 165 |
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| 166 | //
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| 167 | // 1) Return if the charge distribution is already succesfully fitted
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| 168 | // or if the histogram is empty
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| 169 | //
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| 170 | if (fHist->IsFitOK() || fHist->IsEmpty())
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| 171 | return kTRUE;
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| 172 |
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| 173 | //
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| 174 | // 2) Set a lower Fit range according to 1.5 Pedestal RMS in order to avoid
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| 175 | // possible remaining cosmics to spoil the fit.
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| 176 | //
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| 177 | if (fPed && fPedRms)
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| 178 | fHist->SetLowerFitRange(1.5*fPedRms);
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| 179 | else
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| 180 | *fLog << warn << "Cannot set lower fit range: Pedestals not available" << endl;
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| 181 |
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| 182 | //
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| 183 | // 3) Decide if the LoGain Histogram is fitted or the HiGain Histogram
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| 184 | //
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| 185 | if (fHist->UseLoGain())
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| 186 | {
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| 187 |
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| 188 | SetHiGainSaturation();
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| 189 |
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| 190 | //
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| 191 | // 4) Fit the Lo Gain histograms with a Gaussian
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| 192 | //
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| 193 | if(!fHist->FitChargeLoGain())
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| 194 | {
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| 195 | *fLog << warn << "Could not fit Lo Gain charges of pixel " << fPixId << endl;
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| 196 | //
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| 197 | // 5) In case of failure print out the fit results
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| 198 | //
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| 199 | fHist->PrintChargeFitResult();
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| 200 | }
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| 201 | }
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| 202 | else
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| 203 | {
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| 204 | //
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| 205 | // 4) Fit the Hi Gain histograms with a Gaussian
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| 206 | //
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| 207 | if(!fHist->FitChargeHiGain())
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| 208 | {
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| 209 | *fLog << warn << "Could not fit Hi Gain charges of pixel " << fPixId << endl;
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| 210 | //
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| 211 | // 5) In case of failure print out the fit results
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| 212 | //
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| 213 | fHist->PrintChargeFitResult();
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| 214 | }
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| 215 | }
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| 216 |
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| 217 |
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| 218 | //
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| 219 | // 6) Retrieve the results and store them in this class
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| 220 | //
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| 221 | fCharge = fHist->GetChargeMean();
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| 222 | fErrCharge = fHist->GetChargeMeanErr();
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| 223 | fSigmaCharge = fHist->GetChargeSigma();
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| 224 | fErrSigmaCharge = fHist->GetChargeSigmaErr();
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| 225 | fChargeProb = fHist->GetChargeProb();
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| 226 |
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| 227 | if (fCharge <= 0.)
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| 228 | {
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| 229 | *fLog << warn << "Cannot apply calibration: Mean Fitted Charges are smaller than 0 in pixel "
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| 230 | << fPixId << endl;
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| 231 | return kFALSE;
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| 232 | }
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| 233 |
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| 234 | if (fErrCharge > 0.)
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| 235 | fFitted = kTRUE;
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| 236 |
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| 237 | if (CheckChargeFitValidity())
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| 238 | fFitValid = kTRUE;
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| 239 |
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| 240 |
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| 241 | //
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| 242 | // 7) Calculate the number of photo-electrons after the F-Factor method
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| 243 | // 8) Calculate the errors of the F-Factor method
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| 244 | //
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| 245 | if ((fPed > 0.) && (fPedRms > 0.))
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| 246 | {
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| 247 |
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| 248 | //
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| 249 | // Square all variables in order to avoid applications of square root
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| 250 | //
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| 251 | // First the relative error squares
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| 252 | //
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| 253 | const Float_t chargeSquare = fCharge* fCharge;
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| 254 | const Float_t chargeSquareRelErrSquare = 4.*fErrCharge*fErrCharge / chargeSquare;
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| 255 |
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| 256 | const Float_t fFactorRelErrSquare = fFactorError * fFactorError / (fFactor * fFactor);
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| 257 | //
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| 258 | // Now the absolute error squares
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| 259 | //
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| 260 | const Float_t sigmaSquare = fSigmaCharge* fSigmaCharge;
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| 261 | const Float_t sigmaSquareErrSquare = 4.*fErrSigmaCharge*fErrSigmaCharge * sigmaSquare;
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| 262 |
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| 263 | const Float_t elecRmsSquare = fElectronicPedRms* fElectronicPedRms;
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| 264 | const Float_t elecRmsSquareErrSquare = 4.*fErrElectronicPedRms*fErrElectronicPedRms * elecRmsSquare;
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| 265 |
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| 266 | Float_t pedRmsSquare = fPedRms* fPedRms;
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| 267 | Float_t pedRmsSquareErrSquare = 4.*fErrPedRms*fErrPedRms * pedRmsSquare;
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| 268 |
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| 269 | if (fHiGainSaturation)
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| 270 | {
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| 271 |
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| 272 | //
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| 273 | // We do not know the Lo Gain Pedestal RMS, so we have to retrieve it
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| 274 | // from the Hi Gain:
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| 275 | //
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| 276 | // We extract the pure NSB contribution:
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| 277 | //
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| 278 | Float_t nsbSquare = pedRmsSquare - elecRmsSquare;
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| 279 | Float_t nsbSquareRelErrSquare = (pedRmsSquareErrSquare + elecRmsSquareErrSquare)
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| 280 | / (nsbSquare * nsbSquare) ;
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| 281 |
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| 282 | if (nsbSquare < 0.)
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| 283 | nsbSquare = 0.;
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| 284 |
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| 285 | //
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| 286 | // Now, we divide the NSB by the conversion factor and
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| 287 | // add it quadratically to the electronic noise
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| 288 | //
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| 289 | const Float_t conversionSquare = fConversionHiLo *fConversionHiLo;
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| 290 | const Float_t conversionSquareRelErrSquare = 4.*fConversionHiLoError*fConversionHiLoError/conversionSquare;
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| 291 |
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| 292 | //
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| 293 | // Calculate the new "Pedestal RMS"
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| 294 | //
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| 295 | const Float_t convertedNsbSquare = nsbSquare / conversionSquare;
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| 296 | const Float_t convertedNsbSquareErrSquare = (nsbSquareRelErrSquare + conversionSquareRelErrSquare)
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| 297 | * convertedNsbSquare * convertedNsbSquare;
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| 298 |
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| 299 | pedRmsSquare = convertedNsbSquare + elecRmsSquare;
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| 300 | pedRmsSquareErrSquare = convertedNsbSquareErrSquare + elecRmsSquareErrSquare;
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| 301 |
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| 302 | } /* if (fHiGainSaturation) */
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| 303 |
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| 304 | //
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| 305 | // Calculate the reduced sigmas
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| 306 | //
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| 307 | fRSigmaSquare = sigmaSquare - pedRmsSquare;
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| 308 | if (fRSigmaSquare <= 0.)
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| 309 | {
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| 310 | *fLog << warn << "Cannot apply F-Factor calibration: Reduced Sigma smaller than 0 in pixel "
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| 311 | << fPixId << endl;
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| 312 | if (fHiGainSaturation)
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| 313 | ApplyLoGainConversion();
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| 314 | return kFALSE;
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| 315 | }
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| 316 |
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| 317 | const Float_t rSigmaSquareRelErrSquare = (sigmaSquareErrSquare + pedRmsSquareErrSquare)
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| 318 | / (fRSigmaSquare * fRSigmaSquare) ;
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| 319 |
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| 320 | //
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| 321 | // Calculate the number of phe's from the F-Factor method
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| 322 | // (independent on Hi Gain or Lo Gain)
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| 323 | //
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| 324 | fPheFFactorMethod = fFactor * chargeSquare / fRSigmaSquare;
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| 325 |
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| 326 | const Float_t pheFFactorRelErrSquare = fFactorRelErrSquare
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| 327 | + chargeSquareRelErrSquare
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| 328 | + rSigmaSquareRelErrSquare ;
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| 329 |
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| 330 | fPheFFactorMethodError = TMath::Sqrt(pheFFactorRelErrSquare) * fPheFFactorMethod;
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| 331 |
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| 332 | //
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| 333 | // Calculate the conversion factors
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| 334 | //
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| 335 | if (fHiGainSaturation)
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| 336 | ApplyLoGainConversion();
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| 337 |
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| 338 | const Float_t chargeRelErrSquare = fErrCharge*fErrCharge / (fCharge * fCharge);
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| 339 |
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| 340 | fConversionFFactorMethod = fPheFFactorMethod / fCharge ;
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| 341 | fConversionErrorFFactorMethod = ( pheFFactorRelErrSquare + chargeRelErrSquare )
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| 342 | * fConversionFFactorMethod * fConversionFFactorMethod;
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| 343 |
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| 344 | if ( IsFitValid() &&
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| 345 | (fConversionFFactorMethod > 0.) &&
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| 346 | (fConversionErrorFFactorMethod/fConversionFFactorMethod < 0.1) )
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| 347 | fFFactorMethodValid = kTRUE;
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| 348 |
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| 349 |
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| 350 | } /* if ((fPed > 0.) && (fPedRms > 0.)) */
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| 351 |
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| 352 | return kTRUE;
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| 353 |
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| 354 | }
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| 355 |
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| 356 | //
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| 357 | // The check return kTRUE if:
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| 358 | //
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| 359 | // 1) Pixel has a fitted charge greater than 5*PedRMS
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| 360 | // 2) Pixel has a fit error greater than 0.
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| 361 | // 3) Pixel has a fit Probability greater than 0.0001
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| 362 | // 4) Pixel has a charge sigma bigger than its Pedestal RMS
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| 363 | //
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| 364 | Bool_t MCalibrationPix::CheckChargeFitValidity()
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| 365 | {
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| 366 |
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| 367 | Float_t equivpedestal = GetPedRms();
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| 368 |
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| 369 | if (fHiGainSaturation)
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| 370 | equivpedestal /= fConversionHiLo;
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| 371 |
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| 372 | if (fCharge < 5.*equivpedestal)
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| 373 | {
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| 374 | *fLog << warn << "WARNING: Fitted Charge is smaller than 5 Pedestal RMS in Pixel " << fPixId << endl;
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| 375 | return kFALSE;
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| 376 | }
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| 377 |
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| 378 | if (fErrCharge < 0.)
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| 379 | {
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| 380 | *fLog << warn << "WARNING: Error of Fitted Charge is smaller than 0 in Pixel " << fPixId << endl;
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| 381 | return kFALSE;
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| 382 | }
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| 383 |
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| 384 | if (!fHist->IsFitOK())
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| 385 | {
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| 386 | *fLog << warn << "WARNING: Probability of Fitted Charge too low in Pixel " << fPixId << endl;
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| 387 | return kFALSE;
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| 388 | }
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| 389 |
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| 390 | if (fSigmaCharge < equivpedestal)
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| 391 | {
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| 392 | *fLog << warn << "WARNING: Sigma of Fitted Charge smaller than Pedestal RMS in Pixel " << fPixId << endl;
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| 393 | return kFALSE;
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| 394 | }
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| 395 | return kTRUE;
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| 396 | }
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| 397 |
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| 398 | //
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| 399 | // The check returns kTRUE if:
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| 400 | //
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| 401 | // The mean arrival time is at least 1.0 slices from the used edge slices
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| 402 | //
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| 403 | Bool_t MCalibrationPix::CheckTimeFitValidity()
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| 404 | {
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| 405 |
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| 406 | Float_t lowerrange;
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| 407 | Float_t upperrange;
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| 408 |
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| 409 | if (fHiGainSaturation)
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| 410 | {
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| 411 | lowerrange = (Float_t)fHist->GetTimeLowerFitRangeLoGain()+1.;
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| 412 | upperrange = (Float_t)fHist->GetTimeUpperFitRangeLoGain()+1.;
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| 413 | }
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| 414 | else
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| 415 | {
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| 416 | lowerrange = (Float_t)fHist->GetTimeLowerFitRangeHiGain()+1.;
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| 417 | upperrange = (Float_t)fHist->GetTimeUpperFitRangeHiGain()+1.;
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| 418 | }
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| 419 |
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| 420 |
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| 421 | if (fTime < lowerrange)
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| 422 | {
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| 423 | *fLog << warn
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| 424 | << "WARNING: Mean Fitted Time inside or smaller than first used FADC slice in Pixel "
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| 425 | << fPixId << " time: " << fTime << " Range: " << lowerrange << endl;
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| 426 | return kFALSE;
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| 427 | }
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| 428 |
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| 429 | if (fTime > upperrange)
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| 430 | {
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| 431 | *fLog << warn
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| 432 | << "WARNING: Mean Fitted Time inside or greater than last used FADC slice in Pixel "
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| 433 | << fPixId << " time: " << fTime << " Range: " << upperrange << endl;
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| 434 | return kFALSE;
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| 435 | }
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| 436 |
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| 437 | return kTRUE;
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|---|
| 438 | }
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| 439 |
|
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| 440 |
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| 441 |
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| 442 | void MCalibrationPix::ApplyLoGainConversion()
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| 443 | {
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| 444 |
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| 445 | const Float_t chargeRelErrSquare = fErrCharge*fErrCharge
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|---|
| 446 | /( fCharge * fCharge);
|
|---|
| 447 | const Float_t sigmaRelErrSquare = fErrSigmaCharge*fErrSigmaCharge
|
|---|
| 448 | /( fSigmaCharge * fSigmaCharge);
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|---|
| 449 | const Float_t conversionRelErrSquare = fConversionHiLoError*fConversionHiLoError
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| 450 | /(fConversionHiLo * fConversionHiLo);
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| 451 |
|
|---|
| 452 | fCharge *= fConversionHiLo;
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|---|
| 453 | fErrCharge = TMath::Sqrt(chargeRelErrSquare + conversionRelErrSquare) * fCharge;
|
|---|
| 454 |
|
|---|
| 455 | fSigmaCharge *= fConversionHiLo;
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|---|
| 456 | fErrSigmaCharge = TMath::Sqrt(sigmaRelErrSquare + conversionRelErrSquare) * fSigmaCharge;
|
|---|
| 457 |
|
|---|
| 458 | }
|
|---|
| 459 |
|
|---|
| 460 |
|
|---|
| 461 | // --------------------------------------------------------------------------
|
|---|
| 462 | //
|
|---|
| 463 | // Set the pedestals from outside
|
|---|
| 464 | //
|
|---|
| 465 | void MCalibrationPix::SetPedestal(Float_t ped, Float_t pedrms)
|
|---|
| 466 | {
|
|---|
| 467 |
|
|---|
| 468 | fPed = ped;
|
|---|
| 469 | fPedRms = pedrms;
|
|---|
| 470 |
|
|---|
| 471 | }
|
|---|
| 472 |
|
|---|
| 473 | // --------------------------------------------------------------------------
|
|---|
| 474 | //
|
|---|
| 475 | // 1) Fit the arrival times
|
|---|
| 476 | // 2) Retrieve the results
|
|---|
| 477 | // 3) Note that because of the low number of bins, the NDf is sometimes 0, so
|
|---|
| 478 | // Root does not give a reasonable Probability, the Chisquare is more significant
|
|---|
| 479 | //
|
|---|
| 480 | // This fit has to be done AFTER the Charges fit,
|
|---|
| 481 | // otherwise only the Hi Gain will be fitted, even if there are no entries
|
|---|
| 482 | //
|
|---|
| 483 | //
|
|---|
| 484 | Bool_t MCalibrationPix::FitTime()
|
|---|
| 485 | {
|
|---|
| 486 |
|
|---|
| 487 | //
|
|---|
| 488 | // Fit the Low Gain
|
|---|
| 489 | //
|
|---|
| 490 | if (fHiGainSaturation)
|
|---|
| 491 | {
|
|---|
| 492 | if(!fHist->FitTimeLoGain())
|
|---|
| 493 | {
|
|---|
| 494 | *fLog << warn << "Could not fit Lo Gain times of pixel " << fPixId << endl;
|
|---|
| 495 | fHist->PrintTimeFitResult();
|
|---|
| 496 | return kFALSE;
|
|---|
| 497 | }
|
|---|
| 498 | }
|
|---|
| 499 |
|
|---|
| 500 | //
|
|---|
| 501 | // Fit the High Gain
|
|---|
| 502 | //
|
|---|
| 503 | else
|
|---|
| 504 | {
|
|---|
| 505 | if(!fHist->FitTimeHiGain())
|
|---|
| 506 | {
|
|---|
| 507 | *fLog << warn << "Could not fit Hi Gain times of pixel " << fPixId << endl;
|
|---|
| 508 | fHist->PrintTimeFitResult();
|
|---|
| 509 | return kFALSE;
|
|---|
| 510 | }
|
|---|
| 511 | }
|
|---|
| 512 |
|
|---|
| 513 | fTime = fHist->GetTimeMean();
|
|---|
| 514 | fSigmaTime = fHist->GetTimeSigma();
|
|---|
| 515 | fTimeChiSquare = fHist->GetTimeChiSquare();
|
|---|
| 516 | fTimeProb = fHist->GetTimeProb();
|
|---|
| 517 |
|
|---|
| 518 | if (!CheckTimeFitValidity())
|
|---|
| 519 | fFitValid = kFALSE;
|
|---|
| 520 |
|
|---|
| 521 | return kTRUE;
|
|---|
| 522 | }
|
|---|
| 523 |
|
|---|