| 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 01/2004 <mailto:markus@ifae.es>
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| 19 | !
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| 20 | ! Copyright: MAGIC Software Development, 2000-2004
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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 | // MExtractPedestal
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| 28 | //
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| 29 | // Pedestal Extractor base class
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| 30 | //
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| 31 | // Input Containers:
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| 32 | // MRawEvtData
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| 33 | // MRawRunHeader
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| 34 | // MRawEvtHeader
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| 35 | // MGeomCam
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| 36 | // MPedestalCam
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| 37 | //
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| 38 | // Output Containers:
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| 39 | // MPedestalCam
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| 40 | //
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| 41 | // This class should be used for pedestal extractors with the following facilities:
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| 42 | // a) Standardized calculation of AB-noise, mean pedestals and RMS
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| 43 | // b) Standardized treatment of area- and sector averaged pedestals values
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| 44 | // c) Possibility to use a signal extractor to be applied on the pedestals
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| 45 | // d) Possibility to handle two MPedestalCams: one for the signal extractor and
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| 46 | // a second to be filled during the pedestal calculating process.
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| 47 | //
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| 48 | // ad a): Every calculated value is referred to one FADC slice (e.g. Mean pedestal per slice),
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| 49 | // RMS per slice.
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| 50 | // MExtractPedestal applies the following formula (1):
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| 51 | //
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| 52 | // Pedestal per slice = sum(x_i) / n / slices
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| 53 | // PedRMS per slice = Sqrt( ( sum(x_i^2) - sum(x_i)^2/n ) / n-1 / slices )
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| 54 | // AB-Offset per slice = (sumAB0 - sumAB1) / n / slices
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| 55 | //
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| 56 | // where x_i is the sum of "slices" FADC slices and sum means the sum over all
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| 57 | // events. "n" is the number of events, "slices" is the number of summed FADC samples.
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| 58 | //
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| 59 | // Note that the slice-to-slice fluctuations are not Gaussian, but Poissonian, thus
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| 60 | // asymmetric and they are correlated.
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| 61 | //
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| 62 | // It is important to know that the Pedestal per slice and PedRMS per slice depend
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| 63 | // on the number of used FADC slices, as seen in the following plots:
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| 64 | //
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| 65 | //Begin_Html
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| 66 | /*
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| 67 | <img src="images/PedestalStudyInner.gif">
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| 68 | */
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| 69 | //End_Html
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| 70 | //
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| 71 | //Begin_Html
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| 72 | /*
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| 73 | <img src="images/PedestalStudyOuter.gif">
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| 74 | */
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| 75 | //End_Html
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| 76 | //
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| 77 | // The plots show the inner and outer pixels, respectivly and have the following meaning:
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| 78 | //
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| 79 | // 1) The calculated mean pedestal per slice (from MPedCalcPedRun)
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| 80 | // 2) The fitted mean pedestal per slice (from MHPedestalCam)
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| 81 | // 3) The calculated pedestal RMS per slice (from MPedCalcPedRun)
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| 82 | // 4) The fitted sigma of the pedestal distribution per slice
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| 83 | // (from MHPedestalCam)
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| 84 | // 5) The relative difference between calculation and histogram fit
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| 85 | // for the mean
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| 86 | // 6) The relative difference between calculation and histogram fit
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| 87 | // for the sigma or RMS, respectively.
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| 88 | //
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| 89 | // The calculated means do not change significantly except for the case of 2 slices,
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| 90 | // however the RMS changes from 5.7 per slice in the case of 2 extracted slices
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| 91 | // to 8.3 per slice in the case of 26 extracted slices. This change is very significant.
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| 92 | //
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| 93 | // ad b) Every calculated value is referred to one FADC slice and one (averaged) pixel,
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| 94 | // (e.g. Mean Pedestal per area index per slice per pixel, etc. )
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| 95 | //
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| 96 | // MExtractPedestal applies the following formula (2):
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| 97 | //
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| 98 | // Averaged Pedestal per slice = sum(x_i) / n / slices / n_pix
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| 99 | // PedRMS per slice = Sqrt( ( sum(x_i^2) - sum(x_i)^2/n ) / n-1 / slices / n_pix )
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| 100 | // AB-Offset per slice = (sumAB0 - sumAB1) / n / slices / n_pix
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| 101 | //
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| 102 | // where x_i is the sum of "slices" FADC slices and sum means the sum over all
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| 103 | // events and all concerned pixels.
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| 104 | // "n" is the number of events, "slices" is the number of summed FADC samples and
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| 105 | // "n_pix" is the number of pixels belonging to the specific area index or camera sector.
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| 106 | //
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| 107 | // Calculating these averaged event-by-event values is very important to trace coherent
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| 108 | // fluctuations. An example is given in the following plots:
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| 109 | //
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| 110 | //Begin_Html
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| 111 | /*
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| 112 | <img src="images/PedestalOscillations.gif">
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| 113 | */
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| 114 | //End_Html
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| 115 | //
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| 116 | // The plots show the extracted pedestals of the inner pixels (obtained
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| 117 | // with MHPedestalCam), averaged on an event-by-event basis from
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| 118 | // run 13428 with switched off camera LV.
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| 119 | // The meaning of the four plots is:
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| 120 | //
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| 121 | // 1) The distribution of the averaged pedestals
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| 122 | // 2) The averaged pedestals vs. time.
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| 123 | // One can see clearly the oscillation pattern
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| 124 | // 3) The fourier transform of the averaged pedestals vs. time.
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| 125 | // One can see clearly a peak at a certain frequency
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| 126 | // 4) The projection of the fourier components with the non-exponential
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| 127 | // (and therefore significant) outlier.
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| 128 | //
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| 129 | // ad c) Many signal extractors, especially those using a sliding window
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| 130 | // have biases and their resolutions for zero-signals do not agree
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| 131 | // with the pedestal RMS. For the F-Factor method in the calibration
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| 132 | // and the image cleaning, however, both have to be known and measured.
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| 133 | //
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| 134 | // For this reason, a signal extractor can be handed over to the
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| 135 | // pedestal extractor and applied on the pedestal events with the
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| 136 | // function SetExtractor().
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| 137 | // The results will get stored in an MPedestalCam.
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| 138 | //
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| 139 | // Note that only extractors deriving from MExtractTimeAndCharge
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| 140 | // can be used.
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| 141 | //
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| 142 | // ad d) The signal extractors themselves need a pedestal to be subtracted
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| 143 | // from the FADC slices.
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| 144 | // If the user wishes that the pededestals do not get overwritten by
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| 145 | // the results from the signal extractor, a different named MPedestalCam
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| 146 | // can be created with the function: SetNamePedestalOut().
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| 147 | //
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| 148 | // See also: MPedestalCam, MPedestalPix, MPedCalcPedRun, MPedCalcFromLoGain
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| 149 | //
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| 150 | /////////////////////////////////////////////////////////////////////////////
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| 151 | #include "MExtractPedestal.h"
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| 152 |
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| 153 | #include "MParList.h"
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| 154 |
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| 155 | #include "MLog.h"
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| 156 | #include "MLogManip.h"
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| 157 |
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| 158 | #include "MRawRunHeader.h"
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| 159 | #include "MRawEvtHeader.h"
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| 160 | #include "MRawEvtPixelIter.h"
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| 161 | #include "MRawEvtData.h"
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| 162 |
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| 163 | #include "MPedestalPix.h"
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| 164 | #include "MPedestalCam.h"
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| 165 |
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| 166 | #include "MGeomPix.h"
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| 167 | #include "MGeomCam.h"
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| 168 |
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| 169 | #include "MTaskEnv.h"
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| 170 | #include "MExtractTimeAndCharge.h"
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| 171 |
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| 172 | ClassImp(MExtractPedestal);
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| 173 |
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| 174 | using namespace std;
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| 175 |
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| 176 | const TString MExtractPedestal::fgNamePedestalCam = "MPedestalCam";
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| 177 | const UInt_t MExtractPedestal::fgNumDump = 500;
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| 178 |
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| 179 | // --------------------------------------------------------------------------
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| 180 | //
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| 181 | // Default constructor:
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| 182 | //
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| 183 | // Sets:
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| 184 | // - all pointers to NULL
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| 185 | //
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| 186 | // Calls:
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| 187 | // - AddToBranchList("fHiGainPixId");
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| 188 | // - AddToBranchList("fHiGainFadcSamples");
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| 189 | // - Clear()
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| 190 | //
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| 191 | MExtractPedestal::MExtractPedestal(const char *name, const char *title)
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| 192 | : fGeom(NULL), fPedestalsIn(NULL), fPedestalsInter(NULL), fPedestalsOut(NULL),
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| 193 | fExtractor(NULL), fExtractWinFirst(0), fExtractWinSize(0)
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| 194 | {
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| 195 | fName = name ? name : "MExtractPedestal";
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| 196 | fTitle = title ? title : "Base class to calculate pedestals";
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| 197 |
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| 198 | AddToBranchList("fHiGainPixId");
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| 199 | AddToBranchList("fLoGainPixId");
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| 200 | AddToBranchList("fHiGainFadcSamples");
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| 201 | AddToBranchList("fLoGainFadcSamples");
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| 202 |
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| 203 | SetIntermediateStorage( kFALSE );
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| 204 | SetPedestalUpdate ( kTRUE );
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| 205 | SetRandomCalculation ( kTRUE );
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| 206 |
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| 207 | SetNamePedestalCamIn();
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| 208 | SetNamePedestalCamOut();
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| 209 | SetNumDump();
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| 210 |
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| 211 | Clear();
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| 212 | }
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| 213 |
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| 214 | void MExtractPedestal::ResetArrays()
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| 215 | {
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| 216 | // Reset contents of arrays.
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| 217 | fSumx.Reset();
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| 218 | fSumx2.Reset();
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| 219 | fSumAB0.Reset();
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| 220 | fSumAB1.Reset();
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| 221 | fAreaSumx.Reset();
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| 222 | fAreaSumx2.Reset();
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| 223 | fAreaSumAB0.Reset();
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| 224 | fAreaSumAB1.Reset();
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| 225 | fAreaFilled.Reset();
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| 226 | fAreaValid.Reset();
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| 227 | fSectorSumx.Reset();
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| 228 | fSectorSumx2.Reset();
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| 229 | fSectorSumAB0.Reset();
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| 230 | fSectorSumAB1.Reset();
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| 231 | fSectorFilled.Reset();
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| 232 | fSectorValid.Reset();
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| 233 |
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| 234 | }
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| 235 |
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| 236 | // --------------------------------------------------------------------------
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| 237 | //
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| 238 | // Resets Arrays:
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| 239 | //
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| 240 | // Sets:
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| 241 | // - fRawEvt to NULL
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| 242 | // - fRunHeader to NULL
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| 243 | // - fEvtHeader to NULL
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| 244 | //
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| 245 | void MExtractPedestal::Clear(const Option_t *o)
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| 246 | {
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| 247 |
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| 248 | fRawEvt = NULL;
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| 249 | fRunHeader = NULL;
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| 250 | fEvtHeader = NULL;
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| 251 |
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| 252 | // If the size is yet set, set the size
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| 253 | if (fSumx.GetSize()>0)
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| 254 | ResetArrays();
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| 255 |
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| 256 | }
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| 257 |
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| 258 | // --------------------------------------------------------------------------
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| 259 | //
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| 260 | // Checks:
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| 261 | // - if a window is odd
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| 262 | //
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| 263 | Bool_t MExtractPedestal::SetExtractWindow(UShort_t windowf, UShort_t windows)
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| 264 | {
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| 265 |
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| 266 | Bool_t rc = kTRUE;
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| 267 |
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| 268 | const Int_t odd = windows & 0x1;
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| 269 |
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| 270 | if (odd && !fExtractor)
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| 271 | {
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| 272 | *fLog << warn << GetDescriptor();
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| 273 | *fLog << " - WARNING: Window size in SetExtractWindow has to be even... ";
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| 274 | *fLog << " raising from " << windows << " to ";
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| 275 | windows += 1;
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| 276 | *fLog << windows << "!" << endl;
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| 277 | rc = kFALSE;
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| 278 | }
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| 279 |
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| 280 | if (windows==0)
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| 281 | {
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| 282 | *fLog << warn << GetDescriptor();
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| 283 | *fLog << " - WARNING: Window size in SetExtractWindow has to be > 0... adjusting to 2!" << endl;
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| 284 | windows = 2;
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| 285 | rc = kFALSE;
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| 286 | }
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| 287 |
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| 288 | fExtractWinSize = windows;
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| 289 | fExtractWinFirst = windowf;
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| 290 | fExtractWinLast = fExtractWinFirst+fExtractWinSize-1;
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| 291 |
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| 292 | return rc;
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| 293 | }
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| 294 |
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| 295 | // --------------------------------------------------------------------------
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| 296 | //
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| 297 | // Look for the following input containers:
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| 298 | //
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| 299 | // - MRawEvtData
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| 300 | // - MRawRunHeader
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| 301 | // - MRawEvtHeader
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| 302 | // - MGeomCam
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| 303 | //
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| 304 | // The following output containers are also searched and created if
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| 305 | // they were not found:
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| 306 | //
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| 307 | // - MPedestalCam with the name fPedContainerName
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| 308 | //
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| 309 | Int_t MExtractPedestal::PreProcess(MParList *pList)
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| 310 | {
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| 311 |
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| 312 | Clear();
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| 313 |
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| 314 | fRawEvt = (MRawEvtData*)pList->FindObject(AddSerialNumber("MRawEvtData"));
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| 315 | if (!fRawEvt)
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| 316 | {
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| 317 | *fLog << err << AddSerialNumber("MRawEvtData") << " not found... aborting." << endl;
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| 318 | return kFALSE;
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| 319 | }
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| 320 |
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| 321 | fRunHeader = (MRawRunHeader*)pList->FindObject(AddSerialNumber("MRawRunHeader"));
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| 322 | if (!fRunHeader)
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| 323 | {
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| 324 | *fLog << err << AddSerialNumber("MRawRunHeader") << " not found... aborting." << endl;
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| 325 | return kFALSE;
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| 326 | }
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| 327 |
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| 328 | fEvtHeader = (MRawEvtHeader*)pList->FindObject(AddSerialNumber("MRawEvtHeader"));
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| 329 | if (!fEvtHeader)
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| 330 | {
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| 331 | *fLog << err << AddSerialNumber("MRawEvtHeader") << " not found... aborting." << endl;
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| 332 | return kFALSE;
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| 333 | }
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| 334 |
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| 335 | fGeom = (MGeomCam*)pList->FindObject(AddSerialNumber("MGeomCam"));
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| 336 | if (!fGeom)
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| 337 | {
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| 338 | *fLog << err << AddSerialNumber("MGeomCam") << " not found... aborting." << endl;
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| 339 | return kFALSE;
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| 340 | }
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| 341 |
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| 342 | if (fExtractor && !fPedestalsIn)
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| 343 | {
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| 344 | fPedestalsIn = (MPedestalCam*)pList->FindObject(AddSerialNumber(fNamePedestalCamIn), "MPedestalCam");
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| 345 | if (!fPedestalsIn)
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| 346 | {
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| 347 | *fLog << err << AddSerialNumber(fNamePedestalCamIn) << " not found... aborting." << endl;
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| 348 | return kFALSE;
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| 349 | }
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| 350 | }
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| 351 |
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| 352 | if (!fPedestalsInter && fIntermediateStorage)
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| 353 | {
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| 354 | fPedestalsInter = (MPedestalCam*)pList->FindCreateObj("MPedestalCam", AddSerialNumber(fNamePedestalCamInter));
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| 355 | if (!fPedestalsInter)
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| 356 | return kFALSE;
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| 357 | }
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| 358 |
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| 359 | if (!fPedestalsOut)
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| 360 | {
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| 361 | fPedestalsOut = (MPedestalCam*)pList->FindCreateObj("MPedestalCam", AddSerialNumber(fNamePedestalCamOut));
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| 362 | if (!fPedestalsOut)
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| 363 | return kFALSE;
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| 364 | }
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| 365 |
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| 366 | *fLog << inf;
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| 367 | Print();
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| 368 |
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| 369 | return fExtractor ? fExtractor->CallPreProcess(pList) : kTRUE;
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| 370 | }
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| 371 |
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| 372 | Int_t MExtractPedestal::Process()
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| 373 | {
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| 374 | if (fExtractor)
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| 375 | fExtractor->SetNoiseCalculation(fRandomCalculation);
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| 376 |
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| 377 | const Int_t rc = Calc();
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| 378 |
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| 379 | if (fExtractor)
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| 380 | fExtractor->SetNoiseCalculation(kFALSE);
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| 381 |
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| 382 | return rc;
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| 383 | }
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| 384 |
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| 385 | // ---------------------------------------------------------------------------------
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| 386 | //
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| 387 | // Sets the size (from MPedestalCam::GetSize() ) and resets the following arrays:
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| 388 | // - fSumx
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| 389 | // - fSumx2
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| 390 | // - fSumAB0
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| 391 | // - fSumAB1
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| 392 | // - fAreaSumx
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| 393 | // - fAreaSumx2
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| 394 | // - fAreaSumAB0
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| 395 | // - fAreaSumAB1
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| 396 | // - fAreaFilled
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| 397 | // - fAreaValid
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| 398 | // - fSectorSumx
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| 399 | // - fSectorSumx2
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| 400 | // - fSectorSumAB0
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| 401 | // - fSectorSumAB1
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| 402 | // - fSectorFilled
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| 403 | // - fSectorValid
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| 404 | //
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| 405 | Bool_t MExtractPedestal::ReInit(MParList *pList)
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| 406 | {
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| 407 | // If the size is not yet set, set the size
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| 408 | if (fSumx.GetSize()==0)
|
|---|
| 409 | {
|
|---|
| 410 | const Int_t npixels = fPedestalsOut->GetSize();
|
|---|
| 411 | const Int_t areas = fPedestalsOut->GetNumAverageArea();
|
|---|
| 412 | const Int_t sectors = fPedestalsOut->GetNumAverageSector();
|
|---|
| 413 |
|
|---|
| 414 | fSumx. Set(npixels);
|
|---|
| 415 | fSumx2. Set(npixels);
|
|---|
| 416 | fSumAB0.Set(npixels);
|
|---|
| 417 | fSumAB1.Set(npixels);
|
|---|
| 418 |
|
|---|
| 419 | fAreaSumx. Set(areas);
|
|---|
| 420 | fAreaSumx2. Set(areas);
|
|---|
| 421 | fAreaSumAB0.Set(areas);
|
|---|
| 422 | fAreaSumAB1.Set(areas);
|
|---|
| 423 | fAreaFilled.Set(areas);
|
|---|
| 424 | fAreaValid .Set(areas);
|
|---|
| 425 |
|
|---|
| 426 | fSectorSumx. Set(sectors);
|
|---|
| 427 | fSectorSumx2. Set(sectors);
|
|---|
| 428 | fSectorSumAB0.Set(sectors);
|
|---|
| 429 | fSectorSumAB1.Set(sectors);
|
|---|
| 430 | fSectorFilled.Set(sectors);
|
|---|
| 431 | fSectorValid .Set(sectors);
|
|---|
| 432 |
|
|---|
| 433 | for (Int_t i=0; i<npixels; i++)
|
|---|
| 434 | {
|
|---|
| 435 | const UInt_t aidx = (*fGeom)[i].GetAidx();
|
|---|
| 436 | const UInt_t sector = (*fGeom)[i].GetSector();
|
|---|
| 437 |
|
|---|
| 438 | fAreaValid [aidx] ++;
|
|---|
| 439 | fSectorValid[sector]++;
|
|---|
| 440 | }
|
|---|
| 441 | }
|
|---|
| 442 |
|
|---|
| 443 | if (fExtractor)
|
|---|
| 444 | {
|
|---|
| 445 | if (!((MTask*)fExtractor)->ReInit(pList))
|
|---|
| 446 | return kFALSE;
|
|---|
| 447 |
|
|---|
| 448 | if (!fExtractor->InitArrays())
|
|---|
| 449 | return kFALSE;
|
|---|
| 450 |
|
|---|
| 451 | SetExtractWindow(fExtractor->GetHiGainFirst(), (Int_t)TMath::Nint(fExtractor->GetNumHiGainSamples()));
|
|---|
| 452 | }
|
|---|
| 453 |
|
|---|
| 454 | return kTRUE;
|
|---|
| 455 | }
|
|---|
| 456 |
|
|---|
| 457 | Int_t MExtractPedestal::PostProcess()
|
|---|
| 458 | {
|
|---|
| 459 | fPedestalsIn = NULL;
|
|---|
| 460 | return fExtractor ? fExtractor->CallPostProcess() : kTRUE;
|
|---|
| 461 | }
|
|---|
| 462 |
|
|---|
| 463 |
|
|---|
| 464 | // --------------------------------------------------------------------------
|
|---|
| 465 | //
|
|---|
| 466 | // The following resources are available:
|
|---|
| 467 | // ExtractWindowFirst: 15
|
|---|
| 468 | // ExtractWindowSize: 6
|
|---|
| 469 | // NumEventsDump: 500
|
|---|
| 470 | // PedestalUpdate: yes
|
|---|
| 471 | // RandomCalculation: yes
|
|---|
| 472 | //
|
|---|
| 473 | Int_t MExtractPedestal::ReadEnv(const TEnv &env, TString prefix, Bool_t print)
|
|---|
| 474 | {
|
|---|
| 475 | Bool_t rc=kFALSE;
|
|---|
| 476 |
|
|---|
| 477 | // find resource for numdump
|
|---|
| 478 | if (IsEnvDefined(env, prefix, "NumDump", print))
|
|---|
| 479 | {
|
|---|
| 480 | const Int_t num = GetEnvValue(env, prefix, "NumDump", -1);
|
|---|
| 481 | if (num<=0)
|
|---|
| 482 | {
|
|---|
| 483 | *fLog << err << GetDescriptor() << ": ERROR - NumDump invalid!" << endl;
|
|---|
| 484 | return kERROR;
|
|---|
| 485 | }
|
|---|
| 486 |
|
|---|
| 487 | SetNumDump(num);
|
|---|
| 488 | rc = kTRUE;
|
|---|
| 489 | }
|
|---|
| 490 |
|
|---|
| 491 | // find resource for numeventsdump
|
|---|
| 492 | if (IsEnvDefined(env, prefix, "NumEventsDump", print))
|
|---|
| 493 | {
|
|---|
| 494 | SetNumEventsDump(GetEnvValue(env, prefix, "NumEventsDump", (Int_t)fNumEventsDump));
|
|---|
| 495 | rc = kTRUE;
|
|---|
| 496 | }
|
|---|
| 497 |
|
|---|
| 498 | // find resource for numeventsdump
|
|---|
| 499 | if (IsEnvDefined(env, prefix, "NumAreasDump", print))
|
|---|
| 500 | {
|
|---|
| 501 | SetNumAreasDump(GetEnvValue(env, prefix, "NumAreasDump", (Int_t)fNumAreasDump));
|
|---|
| 502 | rc = kTRUE;
|
|---|
| 503 | }
|
|---|
| 504 |
|
|---|
| 505 | // find resource for numeventsdump
|
|---|
| 506 | if (IsEnvDefined(env, prefix, "NumSectorsDump", print))
|
|---|
| 507 | {
|
|---|
| 508 | SetNumSectorsDump(GetEnvValue(env, prefix, "NumSectorsDump", (Int_t)fNumSectorsDump));
|
|---|
| 509 | rc = kTRUE;
|
|---|
| 510 | }
|
|---|
| 511 |
|
|---|
| 512 | // find resource for pedestal update
|
|---|
| 513 | if (IsEnvDefined(env, prefix, "PedestalUpdate", print))
|
|---|
| 514 | {
|
|---|
| 515 | SetPedestalUpdate(GetEnvValue(env, prefix, "PedestalUpdate", fPedestalUpdate));
|
|---|
| 516 | rc = kTRUE;
|
|---|
| 517 | }
|
|---|
| 518 |
|
|---|
| 519 | if (IsEnvDefined(env, prefix, "IntermediateStorage", print))
|
|---|
| 520 | {
|
|---|
| 521 | SetIntermediateStorage(GetEnvValue(env, prefix, "IntermediateStorage", fIntermediateStorage));
|
|---|
| 522 | rc = kTRUE;
|
|---|
| 523 | }
|
|---|
| 524 |
|
|---|
| 525 | // find resource for random calculation
|
|---|
| 526 | if (IsEnvDefined(env, prefix, "RandomCalculation", print))
|
|---|
| 527 | {
|
|---|
| 528 | SetRandomCalculation(GetEnvValue(env, prefix, "RandomCalculation", fRandomCalculation));
|
|---|
| 529 | rc = kTRUE;
|
|---|
| 530 | }
|
|---|
| 531 |
|
|---|
| 532 | // Find resources for ExtractWindow
|
|---|
| 533 | Int_t ef = fExtractWinFirst;
|
|---|
| 534 | Int_t es = fExtractWinSize;
|
|---|
| 535 | if (IsEnvDefined(env, prefix, "ExtractWinFirst", print))
|
|---|
| 536 | {
|
|---|
| 537 | ef = GetEnvValue(env, prefix, "ExtractWinFirst", ef);
|
|---|
| 538 | rc = kTRUE;
|
|---|
| 539 | }
|
|---|
| 540 | if (IsEnvDefined(env, prefix, "ExtractWinSize", print))
|
|---|
| 541 | {
|
|---|
| 542 | es = GetEnvValue(env, prefix, "ExtractWinSize", es);
|
|---|
| 543 | rc = kTRUE;
|
|---|
| 544 | }
|
|---|
| 545 |
|
|---|
| 546 | SetExtractWindow(ef,es);
|
|---|
| 547 |
|
|---|
| 548 | // find resource for MPedestalCam
|
|---|
| 549 | if (IsEnvDefined(env, prefix, "NamePedestalCamIn", print))
|
|---|
| 550 | {
|
|---|
| 551 | SetNamePedestalCamIn(GetEnvValue(env, prefix, "NamePedestalCamIn", fNamePedestalCamIn));
|
|---|
| 552 | rc = kTRUE;
|
|---|
| 553 | }
|
|---|
| 554 |
|
|---|
| 555 | if (IsEnvDefined(env, prefix, "NamePedestalCamInter", print))
|
|---|
| 556 | {
|
|---|
| 557 | SetNamePedestalCamInter(GetEnvValue(env, prefix, "NamePedestalCamInter", fNamePedestalCamInter));
|
|---|
| 558 | rc = kTRUE;
|
|---|
| 559 | }
|
|---|
| 560 |
|
|---|
| 561 | if (IsEnvDefined(env, prefix, "NamePedestalCamOut", print))
|
|---|
| 562 | {
|
|---|
| 563 | SetNamePedestalCamOut(GetEnvValue(env, prefix, "NamePedestalCamOut", fNamePedestalCamOut));
|
|---|
| 564 | rc = kTRUE;
|
|---|
| 565 | }
|
|---|
| 566 |
|
|---|
| 567 | return rc;
|
|---|
| 568 | }
|
|---|
| 569 |
|
|---|
| 570 | // ---------------------------------------------------------------------------------
|
|---|
| 571 | //
|
|---|
| 572 | // Calculates for pixel "idx":
|
|---|
| 573 | //
|
|---|
| 574 | // Ped per slice = sum / n / fExtractWinSize;
|
|---|
| 575 | // RMS per slice = sqrt { (sum2 - sum*sum/n) / (n-1) / fExtractWinSize }
|
|---|
| 576 | // ABOffset per slice = (fSumAB0[idx] - fSumAB1[idx]) / n / fExtractWinSize;
|
|---|
| 577 | //
|
|---|
| 578 | // Stores the results in MPedestalCam[pixid]
|
|---|
| 579 | //
|
|---|
| 580 | void MExtractPedestal::CalcPixResults(const UInt_t nevts, const UInt_t pixid)
|
|---|
| 581 | {
|
|---|
| 582 | const Float_t sum = fSumx[pixid];
|
|---|
| 583 | const Float_t sum2 = fSumx2[pixid];
|
|---|
| 584 |
|
|---|
| 585 | // 1. Calculate the mean of the sums:
|
|---|
| 586 | Float_t ped = sum/nevts;
|
|---|
| 587 |
|
|---|
| 588 | // 2. Calculate the Variance of the sums:
|
|---|
| 589 | Float_t var = (sum2-sum*sum/nevts)/(nevts-1.);
|
|---|
| 590 |
|
|---|
| 591 | // 3. Calculate the amplitude of the 150MHz "AB" noise
|
|---|
| 592 | Float_t abOffs = (fSumAB0[pixid] - fSumAB1[pixid]) / nevts;
|
|---|
| 593 |
|
|---|
| 594 | // 4. Scale the mean, variance and AB-noise to the number of slices:
|
|---|
| 595 | ped /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 596 | var /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 597 | abOffs /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 598 |
|
|---|
| 599 | // 5. Calculate the RMS from the Variance:
|
|---|
| 600 | const Float_t rms = var<0 ? 0 : TMath::Sqrt(var);
|
|---|
| 601 |
|
|---|
| 602 | (*fPedestalsOut)[pixid].Set(ped, rms, abOffs, nevts);
|
|---|
| 603 | }
|
|---|
| 604 |
|
|---|
| 605 | // ---------------------------------------------------------------------------------
|
|---|
| 606 | //
|
|---|
| 607 | // Calculates for area idx "aidx" with "napix" valid pixels:
|
|---|
| 608 | //
|
|---|
| 609 | // Ped per slice = sum / nevts / fExtractWinSize / napix;
|
|---|
| 610 | // RMS per slice = sqrt { (sum2 - sum*sum/nevts) / (nevts-1) / fExtractWinSize / napix }
|
|---|
| 611 | // ABOffset per slice = (fSumAB0[idx] - fSumAB1[idx]) / nevts / fExtractWinSize / napix;
|
|---|
| 612 | //
|
|---|
| 613 | // Stores the results in MPedestalCam::GetAverageArea(aidx)
|
|---|
| 614 | //
|
|---|
| 615 | void MExtractPedestal::CalcAreaResults(const UInt_t nevts, const UInt_t napix, const UInt_t aidx)
|
|---|
| 616 | {
|
|---|
| 617 | const Float_t sum = fAreaSumx[aidx];
|
|---|
| 618 | const Float_t sum2 = fAreaSumx2[aidx];
|
|---|
| 619 |
|
|---|
| 620 | // 1. Calculate the mean of the sums:
|
|---|
| 621 | Float_t ped = sum/nevts;
|
|---|
| 622 |
|
|---|
| 623 | // 2. Calculate the Variance of the sums:
|
|---|
| 624 | Float_t var = (sum2-sum*sum/nevts)/(nevts-1.);
|
|---|
| 625 |
|
|---|
| 626 | // 3. Calculate the amplitude of the 150MHz "AB" noise
|
|---|
| 627 | Float_t abOffs = (fAreaSumAB0[aidx] - fAreaSumAB1[aidx]) / nevts;
|
|---|
| 628 |
|
|---|
| 629 | // 4. Scale the mean, variance and AB-noise to the number of slices:
|
|---|
| 630 | ped /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 631 | var /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 632 | abOffs /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 633 |
|
|---|
| 634 | // 5. Scale the mean, variance and AB-noise to the number of pixels:
|
|---|
| 635 | ped /= napix;
|
|---|
| 636 | var /= napix;
|
|---|
| 637 | abOffs /= napix;
|
|---|
| 638 |
|
|---|
| 639 | // 6. Calculate the RMS from the Variance:
|
|---|
| 640 | const Float_t rms = var<0 ? 0 : TMath::Sqrt(var);
|
|---|
| 641 |
|
|---|
| 642 | fPedestalsOut->GetAverageArea(aidx).Set(ped, rms, abOffs, nevts);
|
|---|
| 643 | }
|
|---|
| 644 |
|
|---|
| 645 | // ---------------------------------------------------------------------------------
|
|---|
| 646 | //
|
|---|
| 647 | // Calculates for sector idx "sector" with "nspix" valid pixels:
|
|---|
| 648 | //
|
|---|
| 649 | // Ped per slice = sum / nevts / fExtractWinSize / nspix;
|
|---|
| 650 | // RMS per slice = sqrt { (sum2 - sum*sum/nevts) / (nevts-1) / fExtractWinSize / nspix }
|
|---|
| 651 | // ABOffset per slice = (fSumAB0[idx] - fSumAB1[idx]) / nevts / fExtractWinSize / nspix;
|
|---|
| 652 | //
|
|---|
| 653 | // Stores the results in MPedestalCam::GetAverageSector(sector)
|
|---|
| 654 | //
|
|---|
| 655 | void MExtractPedestal::CalcSectorResults(const UInt_t nevts, const UInt_t nspix, const UInt_t sector)
|
|---|
| 656 | {
|
|---|
| 657 | const Float_t sum = fSectorSumx[sector];
|
|---|
| 658 | const Float_t sum2 = fSectorSumx2[sector];
|
|---|
| 659 |
|
|---|
| 660 | // 1. Calculate the mean of the sums:
|
|---|
| 661 | Float_t ped = sum/nevts;
|
|---|
| 662 |
|
|---|
| 663 | // 2. Calculate the Variance of the sums:
|
|---|
| 664 | Float_t var = (sum2-sum*sum/nevts)/(nevts-1.);
|
|---|
| 665 |
|
|---|
| 666 | // 3. Calculate the amplitude of the 150MHz "AB" noise
|
|---|
| 667 | Float_t abOffs = (fSectorSumAB0[sector] - fSectorSumAB1[sector]) / nevts;
|
|---|
| 668 |
|
|---|
| 669 | // 4. Scale the mean, variance and AB-noise to the number of slices:
|
|---|
| 670 | ped /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 671 | var /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 672 | abOffs /= fExtractor ? fExtractor->GetNumHiGainSamples() : fExtractWinSize;
|
|---|
| 673 |
|
|---|
| 674 | // 5. Scale the mean, variance and AB-noise to the number of pixels:
|
|---|
| 675 | ped /= nspix;
|
|---|
| 676 | var /= nspix;
|
|---|
| 677 | abOffs /= nspix;
|
|---|
| 678 |
|
|---|
| 679 | // 6. Calculate the RMS from the Variance:
|
|---|
| 680 | const Float_t rms = var<0 ? 0 : TMath::Sqrt(var);
|
|---|
| 681 |
|
|---|
| 682 | fPedestalsOut->GetAverageSector(sector).Set(ped, rms, abOffs, nevts);
|
|---|
| 683 | }
|
|---|
| 684 |
|
|---|
| 685 | void MExtractPedestal::Print(Option_t *o) const
|
|---|
| 686 | {
|
|---|
| 687 | *fLog << GetDescriptor() << ":" << endl;
|
|---|
| 688 | *fLog << "Name of input MPedestalCam: " << (fPedestalsIn?fPedestalsIn->GetName():fNamePedestalCamIn.Data()) << " (" << fPedestalsIn << ")" << endl;
|
|---|
| 689 | *fLog << "Name of interm. MPedestalCam: " << (fPedestalsInter?fPedestalsInter->GetName():fNamePedestalCamInter.Data()) << " (" << fPedestalsInter << ")" << endl;
|
|---|
| 690 | *fLog << "Name of output MPedestalCam: " << (fPedestalsOut?fPedestalsOut->GetName():fNamePedestalCamOut.Data()) << " (" << fPedestalsOut << ")" << endl;
|
|---|
| 691 | *fLog << "Intermediate Storage is " << (fIntermediateStorage?"on":"off") << endl;
|
|---|
| 692 | *fLog << "Pedestal Update is " << (fPedestalUpdate?"on":"off") << endl;
|
|---|
| 693 | if (fPedestalUpdate)
|
|---|
| 694 | {
|
|---|
| 695 | *fLog << "Num evts for pedestal calc: " << fNumEventsDump << endl;
|
|---|
| 696 | *fLog << "Num evts for avg.areas calc: " << fNumAreasDump << endl;
|
|---|
| 697 | *fLog << "Num evts for avg.sector calc: " << fNumSectorsDump << endl;
|
|---|
| 698 | }
|
|---|
| 699 | if (fExtractor)
|
|---|
| 700 | {
|
|---|
| 701 | *fLog << "Extractor used: " << fExtractor->ClassName() << " (";
|
|---|
| 702 | *fLog << (fRandomCalculation?"":"non-") << "random)" << endl;
|
|---|
| 703 | }
|
|---|
| 704 | }
|
|---|