| 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): Javier Rico, 12/2005 <mailto:jrico@ifae.es>
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| 19 | !
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| 20 | ! Copyright: MAGIC Software Development, 2000-2005
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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 | // Example macro on how to calculate coefficients for unfolding and
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| 27 | // effective areas.
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| 28 | //.The input is a file of the MC events surviving a certain kind
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| 29 | // of analysis. It must contain the branch MEnergyEst with energy
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| 30 | // estimator.
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| 31 | // It must also contain a tree called "OriginalMC" with a branch
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| 32 | // "MMcEvtBasic" and one entry per original simulated shower used to produce
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| 33 | // the events in that input file.
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| 34 | //
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| 35 | // The macro performs 2 loops.
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| 36 | // In the first one the histograms of the original MC events are filled,
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| 37 | // needed by the coefficient (MMcUnfoldCoeffCalc) and effective area
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| 38 | // (MMcCollectionAreaCalc) computation
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| 39 | // In the second one we deal with the survivors and compute effective areas
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| 40 | // and coefficients
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| 41 |
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| 42 | void unfoldCoeff(TString filename="/data/19990101_10002_Q_MCGamTestLZA_E_10_5.root", TString outname="coeff.root")
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| 43 | {
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| 44 |
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| 45 | ///////////////////////////////////////////////////////////////////
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| 46 | // First loop: over all events processed by corsika
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| 47 | ///////////////////////////////////////////////////////////////////
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| 48 | MParList parlist;
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| 49 | MTaskList tasklist;
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| 50 | parlist.AddToList(&tasklist);
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| 51 |
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| 52 | // theta binning
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| 53 | Int_t zbins = 2;
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| 54 | TArrayD edges(zbins+1);
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| 55 | edges[0] = 0;
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| 56 | edges[1] = 10;
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| 57 | edges[2] = 20;
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| 58 |
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| 59 | MBinning binstheta("binsTheta");
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| 60 | binstheta.SetEdges(edges); // Theta [deg]
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| 61 |
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| 62 | // energy binning
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| 63 | const Int_t ebins=10;
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| 64 | const Float_t emin=10;
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| 65 | const Float_t emax=1000;
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| 66 |
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| 67 | MBinning binsenergy("binsEnergy");
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| 68 | binsenergy.SetEdgesLog(ebins,emin,emax); // Energy [GeV]
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| 69 |
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| 70 | parlist.AddToList(&binsenergy);
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| 71 | parlist.AddToList(&binstheta);
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| 72 |
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| 73 | // Tentative spectrum
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| 74 | TF1 spectrum("func","pow(x,-1.6)",2.,20000.);
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| 75 |
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| 76 | // Setup out tasks:
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| 77 | MReadMarsFile reader("OriginalMC", filename);
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| 78 | reader.DisableAutoScheme();
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| 79 |
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| 80 | // Create unfolding coefficients object and add it to the parameter list
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| 81 | MHMcCollectionArea aeff;
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| 82 | MHMcUnfoldCoeff coeff;
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| 83 | parlist.AddToList(&coeff);
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| 84 | parlist.AddToList(&aeff);
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| 85 |
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| 86 | // Task which fills the necessary histograms in MHMcCollectionArea
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| 87 | MMcUnfoldCoeffCalc coeffcalc;
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| 88 | MMcCollectionAreaCalc aeffcalc;
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| 89 |
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| 90 | coeffcalc.SetSpectrum(&spectrum);
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| 91 | aeffcalc.SetSpectrum(&spectrum);
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| 92 |
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| 93 | tasklist.AddToList(&reader);
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| 94 | tasklist.AddToList(&coeffcalc);
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| 95 | tasklist.AddToList(&aeffcalc);
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| 96 |
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| 97 | // set up the loop for the processing
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| 98 | MEvtLoop magic;
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| 99 | magic.SetParList(&parlist);
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| 100 |
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| 101 | if (!magic.Eventloop())
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| 102 | return;
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| 103 |
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| 104 | tasklist.PrintStatistics();
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| 105 |
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| 106 | ///////////////////////////////////////////////////////////////////
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| 107 | // Second loop: now fill the histograms of the survivors
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| 108 | ///////////////////////////////////////////////////////////////////
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| 109 |
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| 110 | MParList parlist2;
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| 111 | MTaskList tasklist2;
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| 112 | parlist2.AddToList(&tasklist2);
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| 113 | parlist2.AddToList(&coeff);
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| 114 | parlist2.AddToList(&aeff);
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| 115 |
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| 116 | MReadMarsFile reader2("Events", filename);
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| 117 | reader2.DisableAutoScheme();
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| 118 |
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| 119 | tasklist2.AddToList(&reader2);
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| 120 | tasklist2.AddToList(&aeffcalc);
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| 121 | tasklist2.AddToList(&coeffcalc);
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| 122 |
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| 123 | //
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| 124 | // set up the loop for the processing
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| 125 | //
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| 126 | MEvtLoop magic2;
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| 127 | magic2.SetParList(&parlist2);
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| 128 |
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| 129 | if (!magic2.Eventloop())
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| 130 | return;
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| 131 |
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| 132 | tasklist2.PrintStatistics();
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| 133 |
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| 134 |
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| 135 |
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| 136 | // Dummy cross-check, see if we recover the original spectrum
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| 137 | const UInt_t ncutfiles=1;
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| 138 | Char_t* cutName[ncutfiles]={"/data/19990101_10002_Q_MCGamTestLZA_E_10_5.root"};
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| 139 |
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| 140 | TChain* ccut = new TChain("Events");
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| 141 | for(Int_t i = 0; i < ncutfiles; i++)
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| 142 | ccut->Add(cutName[i]);
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| 143 | // ccut->SetAlias("logestenergy","log10(MHillas.fSize/0.18/15.)");
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| 144 | ccut->SetAlias("logestenergy","log10(MEnergyEst.fEnergy)");
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| 145 | ccut->SetAlias("theta","MMcEvt.fTelescopeTheta*180./3.14159");
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| 146 |
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| 147 | const Double_t logemin = TMath::Log10(emin);
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| 148 | const Double_t logemax = TMath::Log10(emax);
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| 149 | TH1D* hspec = new TH1D("hspec","Spectrum",ebins,logemin,logemax);
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| 150 | hspec->Sumw2();
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| 151 | ccut->Draw("logestenergy>>hspec","theta<10","goff");
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| 152 |
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| 153 | for(Int_t i=0;i<ebins;i++)
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| 154 | {
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| 155 | const Float_t uncorrval = hspec->GetBinContent(i+1);
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| 156 | const Float_t effa = ((TH2D*) aeff.GetHistCoarse())->GetBinContent(i+1,1);
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| 157 | const Float_t unfold = ((TH2D*)coeff.GetHistCoeff())->GetBinContent(i+1,1);
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| 158 |
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| 159 | const Float_t euncorrval = hspec->GetBinError(i+1);
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| 160 | const Float_t eeffa = ((TH2D*) aeff.GetHistCoarse())->GetBinError(i+1,1);
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| 161 | const Float_t eunfold = ((TH2D*)coeff.GetHistCoeff())->GetBinError(i+1,1);
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| 162 |
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| 163 | Float_t corrval,ecorrval;
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| 164 | if(effa>0)
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| 165 | {
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| 166 | corrval = uncorrval*unfold/effa;
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| 167 | if(uncorrval>0 && effa>0 & unfold>0)
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| 168 | ecorrval = corrval*TMath::Sqrt(euncorrval/uncorrval*euncorrval/uncorrval+
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| 169 | eeffa/effa*eeffa/effa+
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| 170 | eunfold/unfold*eunfold/unfold);
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| 171 | else
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| 172 | ecorrval = 0;
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| 173 | }
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| 174 | else
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| 175 | {
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| 176 | corrval = 0;
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| 177 | ecorrval = 0;
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| 178 | }
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| 179 | hspec->SetBinContent(i+1,corrval);
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| 180 | hspec->SetBinError(i+1,ecorrval);
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| 181 | }
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| 182 |
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| 183 | // Write histogram to a file in case an output
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| 184 | // filename has been supplie
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| 185 | if (outname.IsNull())
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| 186 | return;
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| 187 |
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| 188 | TFile f(outname, "recreate");
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| 189 | if (!f)
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| 190 | return;
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| 191 |
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| 192 | coeff.GetHistAll()->Write();
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| 193 | coeff.GetHistWeight()->Write();
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| 194 | coeff.GetHistMcE()->Write();
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| 195 | coeff.GetHistEstE()->Write();
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| 196 | coeff.GetHistCoeff()->Write();
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| 197 | aeff.GetHistCoarse()->Write();
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| 198 | aeff.Write();
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| 199 | hspec->Write();
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| 200 | }
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