| 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):  Abelardo Moralejo 1/2004 <mailto:moralejo@pd.infn.it> | 
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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 | //  STARMCSTEREO - STandard Analysis and Reconstruction (for MC stereo files) | 
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| 28 | // | 
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| 29 | //  This macro is the standard converter to convert raw data from stereo | 
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| 30 | //  camera simulation into image parameters | 
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| 31 | // | 
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| 32 | ///////////////////////////////////////////////////////////////////////////// | 
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| 33 |  | 
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| 34 | void starmcstereo(Int_t ct1 = 1, Int_t ct2 = 2) | 
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| 35 | { | 
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| 36 | // ------------- user change ----------------- | 
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| 37 |  | 
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| 38 | TString* CalibrationFilename = 0; | 
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| 39 |  | 
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| 40 | // Calibration file: a file with no added noise. Comment out next line if you | 
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| 41 | // do not want to calibrate the data (means SIZE will be in ADC counts) | 
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| 42 |  | 
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| 43 | CalibrationFilename = new TString("nonoise/Gamma_20_0_7_200000to200009_XX_w0.root"); | 
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| 44 |  | 
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| 45 | Char_t* AnalysisFilename = "Gamma_20_0_7_*_XX_w0.root";  // File to be analyzed | 
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| 46 | Char_t* OutFileTag      = "gammas";           // Output file tag | 
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| 47 |  | 
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| 48 | // First open input files to check that the required telescopes | 
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| 49 | // are in the file, and get telescope coordinates. | 
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| 50 |  | 
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| 51 | TChain *rh = new TChain("RunHeaders"); | 
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| 52 | rh->Add(AnalysisFilename); | 
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| 53 | MMcCorsikaRunHeader *corsrh = new MMcCorsikaRunHeader(); | 
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| 54 | rh->SetBranchAddress("MMcCorsikaRunHeader.", &corsrh); | 
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| 55 | rh->GetEvent(0); | 
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| 56 | // We assume that all the read files will have the same telescopes inside, | 
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| 57 | // so we look only into the first runheader. | 
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| 58 | Int_t allcts = corsrh->GetNumCT(); | 
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| 59 | if (ct1 >  allcts || ct2 >  allcts) | 
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| 60 | { | 
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| 61 | cout << endl << "Wrong CT id number, not contained in input file!" << endl; | 
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| 62 | return; | 
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| 63 | } | 
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| 64 | // Set telescope coordinates as read from first runheader: | 
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| 65 | Float_t ctx[2]; | 
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| 66 | Float_t cty[2]; | 
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| 67 | ctx[0] = ((*corsrh)[ct1-1])->GetCTx(); | 
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| 68 | cty[0] = ((*corsrh)[ct1-1])->GetCTy(); | 
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| 69 | ctx[1] = ((*corsrh)[ct2-1])->GetCTx(); | 
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| 70 | cty[1] = ((*corsrh)[ct2-1])->GetCTy(); | 
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| 71 |  | 
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| 72 | // Now find out number of pixels in each camera: | 
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| 73 | MMcConfigRunHeader* confrh1 = new MMcConfigRunHeader(); | 
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| 74 | MMcConfigRunHeader* confrh2 = new MMcConfigRunHeader(); | 
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| 75 | rh->SetBranchAddress("MMcConfigRunHeader;1.", &confrh1); | 
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| 76 | rh->SetBranchAddress("MMcConfigRunHeader;2.", &confrh2); | 
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| 77 | rh->GetEvent(0); | 
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| 78 | Int_t npix[2]; | 
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| 79 | npix[0] = confrh1->GetNumPMTs(); | 
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| 80 | npix[1] = confrh2->GetNumPMTs(); | 
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| 81 |  | 
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| 82 | rh->Delete(); | 
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| 83 |  | 
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| 84 |  | 
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| 85 | Int_t CT[2] = {ct1, ct2};  // Only 2-telescope analysis for the moment | 
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| 86 | Int_t NCTs = 2; | 
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| 87 |  | 
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| 88 |  | 
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| 89 | // ------------- user change ----------------- | 
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| 90 |  | 
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| 91 | Float_t BinsHigh[2] = {0, 79}; | 
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| 92 | Float_t BinsLow[2]  = {0, 79};  // FADC slices (2GHz sampling) | 
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| 93 | Float_t CleanLev[2] = {7., 5.}; // Units: phes (absolute cleaning will be used later!) | 
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| 94 | // Tail cuts for the analysis loop. In the first (calibration) loop they will not | 
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| 95 | // be used; we run over a noiseless file and we want to accept all pixels with any | 
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| 96 | // number of phes. | 
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| 97 |  | 
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| 98 |  | 
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| 99 | MImgCleanStd**     clean = new MImgCleanStd*[NCTs]; | 
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| 100 |  | 
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| 101 | MImgCleanStd* clean[0] = new MImgCleanStd(1.,1.); | 
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| 102 | MImgCleanStd* clean[1] = new MImgCleanStd(1.,1.); | 
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| 103 | // Just dummy levels. Since the calibration file will be a noiseless file, RMS of | 
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| 104 | // pedestal will be 0, and all events will be accepted, regardless of the cleaning level. | 
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| 105 | // For some reason the above lines do not work if made on a loop! (???) | 
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| 106 | clean[0]->SetSerialNumber(CT[0]); | 
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| 107 | clean[1]->SetSerialNumber(CT[1]); | 
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| 108 |  | 
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| 109 | MExtractTimeAndChargeSpline* sigextract = new MExtractTimeAndChargeSpline[NCTs]; | 
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| 110 | MMcCalibrationUpdate*  mccalibupdate = new MMcCalibrationUpdate[NCTs]; | 
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| 111 | MCalibrateData* calib = new MCalibrateData[NCTs]; | 
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| 112 | MMcCalibrationCalc* mccalibcalc = new MMcCalibrationCalc[NCTs]; | 
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| 113 |  | 
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| 114 | // ------------------------------------------- | 
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| 115 | // Create a empty Parameter List and an empty Task List | 
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| 116 | // The tasklist is identified in the eventloop by its name | 
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| 117 | // | 
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| 118 | MParList  plist; | 
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| 119 | MTaskList tlist; | 
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| 120 | plist.AddToList(&tlist); | 
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| 121 |  | 
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| 122 | MSrcPosCam src[NCTs]; | 
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| 123 | MBadPixelsCam badpix[NCTs]; | 
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| 124 |  | 
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| 125 | Float_t hi2lowratio = 10.0; | 
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| 126 |  | 
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| 127 | for (Int_t i = 0; i < NCTs; i++) | 
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| 128 | { | 
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| 129 | TString s = "MSrcPosCam;"; | 
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| 130 | s += CT[i]; | 
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| 131 | src[i].SetName(s); | 
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| 132 | src[i].SetReadyToSave(); | 
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| 133 | plist.AddToList(&(src[i])); | 
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| 134 |  | 
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| 135 | TString b = "MBadPixelsCam;"; | 
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| 136 | b += CT[i]; | 
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| 137 | badpix[i].SetName(b); | 
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| 138 | badpix[i].InitSize(npix[i]); | 
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| 139 | badpix[i].SetReadyToSave(); | 
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| 140 | plist.AddToList(&(badpix[i])); | 
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| 141 |  | 
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| 142 | sigextract[i].SetSerialNumber(CT[i]); | 
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| 143 | sigextract[i].SetRange(BinsHigh[0], BinsHigh[1], BinsLow[0], BinsLow[1]); | 
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| 144 | sigextract[i].SetRiseTimeHiGain(0.5); | 
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| 145 | sigextract[i].SetFallTimeHiGain(0.5); | 
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| 146 | sigextract[i].SetLoGainStretch(1.); | 
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| 147 |  | 
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| 148 | mccalibupdate[i].SetSerialNumber(CT[i]); | 
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| 149 | mccalibupdate[i].SetUserLow2HiGainFactor(hi2lowratio); | 
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| 150 | mccalibupdate[i].SetSignalType(MCalibrateData::kPhe); | 
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| 151 |  | 
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| 152 | calib[i].SetSerialNumber(CT[i]); | 
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| 153 | calib[i].SetCalibConvMinLimit(0.); | 
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| 154 | calib[i].SetCalibConvMaxLimit(100.); // Override limits for real data | 
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| 155 | calib[i].SetCalibrationMode(MCalibrateData::kFfactor); | 
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| 156 | // Do not change CalibrationMode (just indicates where the cal. constants will be stored) | 
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| 157 | calib[i].SetSignalType(mccalibupdate[i].GetSignalType()); | 
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| 158 |  | 
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| 159 | mccalibcalc[i].SetSerialNumber(CT[i]); | 
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| 160 | mccalibcalc[i].SetMinSize(200); | 
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| 161 | // Minimum SIZE for an event to be used in the calculation of calibration constants. | 
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| 162 | // Units are ADC counts, and value depends on signal extractor! | 
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| 163 | } | 
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| 164 |  | 
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| 165 |  | 
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| 166 | // | 
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| 167 | // Now setup the tasks and tasklist: | 
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| 168 | // --------------------------------- | 
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| 169 | // | 
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| 170 | MReadMarsFile read("Events"); | 
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| 171 | read.DisableAutoScheme(); | 
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| 172 |  | 
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| 173 | if (CalibrationFilename) | 
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| 174 | read.AddFile(CalibrationFilename->Data()); | 
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| 175 |  | 
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| 176 |  | 
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| 177 | MGeomApply*        apply = new MGeomApply[NCTs]; | 
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| 178 | MMcPedestalCopy*   pcopy = new MMcPedestalCopy[NCTs]; | 
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| 179 | MHillasCalc*       hcalc = new MHillasCalc[NCTs]; | 
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| 180 |  | 
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| 181 | TString outfile = "star_"; | 
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| 182 | outfile += CT[0]; | 
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| 183 | outfile += "_"; | 
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| 184 | outfile += CT[1]; | 
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| 185 |  | 
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| 186 | // | 
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| 187 | // We have two output files (will be later train and test sampls for random forest) | 
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| 188 | // | 
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| 189 | outfile += "_"; | 
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| 190 | outfile += OutFileTag; | 
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| 191 | outfile += "_train.root"; | 
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| 192 | MWriteRootFile    write1(outfile); | 
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| 193 |  | 
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| 194 | outfile = "star_"; | 
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| 195 | outfile += CT[0]; | 
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| 196 | outfile += "_"; | 
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| 197 | outfile += CT[1]; | 
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| 198 |  | 
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| 199 | outfile += "_"; | 
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| 200 | outfile += OutFileTag; | 
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| 201 | outfile += "_test.root"; | 
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| 202 |  | 
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| 203 | MWriteRootFile write2(outfile); | 
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| 204 |  | 
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| 205 | for (Int_t i = 0; i < NCTs; i++) | 
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| 206 | { | 
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| 207 | apply[i]->SetSerialNumber(CT[i]); | 
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| 208 | pcopy[i]->SetSerialNumber(CT[i]); | 
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| 209 |  | 
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| 210 | hcalc[i]->SetSerialNumber(CT[i]); | 
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| 211 | hcalc[i].Disable(MHillasCalc::kCalcHillasSrc); | 
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| 212 | // Source-dependent parameters not needed in the first loop (calibration) | 
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| 213 |  | 
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| 214 | write1.SetSerialNumber(CT[i]); | 
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| 215 | write2.SetSerialNumber(CT[i]); | 
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| 216 |  | 
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| 217 | write1.AddContainer("MMcEvt",       "Events"); | 
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| 218 | write1.AddContainer("MHillas",      "Events"); | 
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| 219 | write1.AddContainer("MHillasExt",   "Events"); | 
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| 220 | write1.AddContainer("MHillasSrc",   "Events"); | 
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| 221 | write1.AddContainer("MNewImagePar", "Events"); | 
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| 222 | write1.AddContainer("MSrcPosCam",   "Events"); | 
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| 223 | write2.AddContainer("MMcEvt",       "Events"); | 
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| 224 | write2.AddContainer("MHillas",      "Events"); | 
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| 225 | write2.AddContainer("MHillasExt",   "Events"); | 
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| 226 | write2.AddContainer("MHillasSrc",   "Events"); | 
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| 227 | write2.AddContainer("MNewImagePar", "Events"); | 
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| 228 | write2.AddContainer("MSrcPosCam",   "Events"); | 
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| 229 | } | 
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| 230 |  | 
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| 231 | MStereoPar* mstereo = new MStereoPar; | 
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| 232 | plist.AddToList(mstereo); | 
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| 233 |  | 
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| 234 | write1.AddContainer(mstereo, "Events"); | 
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| 235 | write2.AddContainer(mstereo, "Events"); | 
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| 236 | // We use MWriteRootFile::AddContainer(MParContainer* ,...) instead | 
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| 237 | // of using the container name as above, because in the former case the | 
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| 238 | // serial number tag (indicating the telescope id) is added to the | 
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| 239 | // container name, which is fine for containers of which there is one | 
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| 240 | // per telescope. However, the container MStereoPar is unique, since it | 
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| 241 | // is filled with information coming from both telescopes. | 
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| 242 |  | 
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| 243 | write1.AddContainer("MRawRunHeader", "RunHeaders"); | 
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| 244 | write1.AddContainer("MMcRunHeader",  "RunHeaders"); | 
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| 245 |  | 
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| 246 | write2.AddContainer("MRawRunHeader", "RunHeaders"); | 
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| 247 | write2.AddContainer("MMcRunHeader",  "RunHeaders"); | 
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| 248 |  | 
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| 249 | tlist.AddToList(&read); | 
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| 250 |  | 
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| 251 | // Skip untriggered events (now camera simulation output contains by default all simulated events) | 
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| 252 | MContinue* trigger = new MContinue("(MMcTrig;1.fNumFirstLevel<1) && (MMcTrig;2.fNumFirstLevel<1)","Events"); | 
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| 253 | tlist.AddToList(trigger); | 
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| 254 |  | 
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| 255 | for (i = 0; i < NCTs; i++) | 
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| 256 | { | 
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| 257 | tlist.AddToList(&(apply[i])); | 
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| 258 | tlist.AddToList(&(pcopy[i])); | 
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| 259 | tlist.AddToList(&(sigextract[i])); | 
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| 260 | tlist.AddToList(&(mccalibupdate[i])); | 
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| 261 | tlist.AddToList(&(calib[i])); | 
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| 262 | tlist.AddToList(clean[i]); | 
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| 263 | tlist.AddToList(&(hcalc[i])); | 
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| 264 | tlist.AddToList(&(mccalibcalc[i])); | 
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| 265 | } | 
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| 266 |  | 
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| 267 |  | 
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| 268 | MF filter1("{MMcEvt;1.fEvtNumber%2}<0.5"); | 
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| 269 | MF filter2("{MMcEvt;1.fEvtNumber%2}>0.5"); | 
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| 270 | // | 
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| 271 | // ^^^^ Filters to divide output in two: test and train samples. | 
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| 272 | // | 
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| 273 | write1.SetFilter (&filter1); | 
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| 274 | write2.SetFilter (&filter2); | 
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| 275 |  | 
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| 276 | // | 
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| 277 | // Create and set up the eventloop | 
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| 278 | // | 
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| 279 | MProgressBar bar; | 
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| 280 | bar.SetWindowName("Calibrating"); | 
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| 281 |  | 
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| 282 | MEvtLoop evtloop; | 
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| 283 | evtloop.SetProgressBar(&bar); | 
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| 284 | evtloop.SetParList(&plist); | 
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| 285 |  | 
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| 286 | // | 
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| 287 | // First loop: calibration loop. Go over MC events simulated with | 
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| 288 | // no noise, to correlate SIZE with the number of phes and get the | 
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| 289 | // conversion factor (this is done by MMcCalibrationCalc). | 
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| 290 | // | 
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| 291 | if (CalibrationFilename) | 
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| 292 | { | 
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| 293 | if (!evtloop.Eventloop()) | 
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| 294 | return; | 
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| 295 | } | 
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| 296 |  | 
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| 297 | tlist.PrintStatistics(); | 
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| 298 |  | 
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| 299 | /////////////////////////////////////////////////////////////////////// | 
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| 300 |  | 
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| 301 |  | 
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| 302 | // Now prepare the second loop: go over the events you want to analyze. | 
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| 303 | // This time the MMcCalibrationUpdate tasks will apply the previously | 
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| 304 | // calculated calibration factors. | 
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| 305 |  | 
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| 306 | // First substitute the reading task: | 
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| 307 | MReadMarsFile read2("Events"); | 
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| 308 | read2.AddFile(AnalysisFilename); | 
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| 309 | read2.DisableAutoScheme(); | 
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| 310 | tlist.AddToListBefore(&read2, &read); | 
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| 311 | tlist.RemoveFromList(&read); | 
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| 312 |  | 
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| 313 | // Delete cleaning tasks and create new ones with absolute cleaning method: | 
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| 314 | for (Int_t i= 0; i < NCTs; i++ ) | 
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| 315 | { | 
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| 316 | tlist.RemoveFromList(clean[i]); | 
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| 317 | delete clean[i]; | 
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| 318 | } | 
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| 319 |  | 
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| 320 | // New cleaning tasks: | 
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| 321 | clean[0] = new MImgCleanStd(CleanLev[0], CleanLev[1]); | 
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| 322 | clean[1] = new MImgCleanStd(CleanLev[0], CleanLev[1]); | 
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| 323 | clean[0]->SetMethod(MImgCleanStd::kAbsolute); | 
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| 324 | clean[1]->SetMethod(MImgCleanStd::kAbsolute); | 
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| 325 | clean[0]->SetSerialNumber(CT[0]); | 
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| 326 | clean[1]->SetSerialNumber(CT[1]); | 
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| 327 | tlist.AddToListBefore(clean[0],&(hcalc[0])); | 
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| 328 | tlist.AddToListBefore(clean[1],&(hcalc[1])); | 
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| 329 |  | 
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| 330 | tlist.RemoveFromList(&(mccalibcalc[0])); | 
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| 331 | tlist.RemoveFromList(&(mccalibcalc[1])); // Remove calibration tasks from list. | 
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| 332 |  | 
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| 333 | // Now calculate also source-dependent Hillas parameters: | 
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| 334 | for (i = 0; i < NCTs; i++) | 
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| 335 | hcalc[i].Enable(MHillasCalc::kCalcHillasSrc); | 
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| 336 |  | 
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| 337 | // Add task to calculate stereo parameters: | 
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| 338 | MStereoCalc stereocalc; | 
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| 339 | stereocalc.SetCTids(CT[0],CT[1]); | 
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| 340 | stereocalc.SetCT1coor(ctx[0],cty[0]); | 
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| 341 | stereocalc.SetCT2coor(ctx[1],cty[1]); | 
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| 342 | tlist.AddToList(&stereocalc); | 
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| 343 |  | 
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| 344 | // Add writing tasks: | 
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| 345 | tlist.AddToList(&filter1); | 
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| 346 | tlist.AddToList(&write1); | 
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| 347 | tlist.AddToList(&filter2); | 
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| 348 | tlist.AddToList(&write2); | 
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| 349 |  | 
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| 350 | bar.SetWindowName("Analyzing"); | 
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| 351 |  | 
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| 352 | if (!evtloop.Eventloop()) | 
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| 353 | return; | 
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| 354 |  | 
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| 355 | tlist.PrintStatistics(); | 
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| 356 |  | 
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| 357 | for (Int_t i= 0; i < NCTs; i++ ) | 
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| 358 | delete clean[i]; | 
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| 359 |  | 
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| 360 | plist.FindObject("MCalibrationChargeCam;1")->Write(); | 
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| 361 | plist.FindObject("MCalibrationChargeCam;2")->Write(); | 
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| 362 |  | 
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| 363 | plist.FindObject("MCalibrationQECam;1")->Write(); | 
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| 364 | plist.FindObject("MCalibrationQECam;2")->Write(); | 
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| 365 |  | 
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| 366 | return; | 
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| 367 | } | 
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