| 1 | /* ======================================================================== *\ | 
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| 2 | ! $Name: not supported by cvs2svn $:$Id: MHSingleMuon.cc,v 1.21 2010-04-21 15:42:24 tbretz Exp $ | 
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| 3 | ! -------------------------------------------------------------------------- | 
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| 4 | ! | 
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| 5 | ! * | 
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| 6 | ! * This file is part of MARS, the MAGIC Analysis and Reconstruction | 
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| 7 | ! * Software. It is distributed to you in the hope that it can be a useful | 
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| 8 | ! * and timesaving tool in analysing Data of imaging Cerenkov telescopes. | 
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| 9 | ! * It is distributed WITHOUT ANY WARRANTY. | 
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| 10 | ! * | 
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| 11 | ! * Permission to use, copy, modify and distribute this software and its | 
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| 12 | ! * documentation for any purpose is hereby granted without fee, | 
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| 13 | ! * provided that the above copyright notice appear in all copies and | 
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| 14 | ! * that both that copyright notice and this permission notice appear | 
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| 15 | ! * in supporting documentation. It is provided "as is" without express | 
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| 16 | ! * or implied warranty. | 
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| 17 | ! * | 
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| 18 | ! | 
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| 19 | ! | 
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| 20 | !   Author(s): Keiichi Mase, 10/2004 | 
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| 21 | !   Author(s): Markus Meyer, 02/2005 <mailto:meyer@astro.uni-wuerzburg.de> | 
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| 22 | !   Author(s): Thomas Bretz, 04/2005 <mailto:tbretz@astro.uni-wuerzburg.de> | 
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| 23 | ! | 
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| 24 | !   Copyright: MAGIC Software Development, 2000-2005 | 
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| 25 | ! | 
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| 26 | ! | 
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| 27 | \* ======================================================================== */ | 
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| 28 |  | 
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| 29 | ///////////////////////////////////////////////////////////////////////////// | 
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| 30 | // | 
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| 31 | // MHSingleMuon | 
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| 32 | // | 
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| 33 | // This class is a histogram class for displaying the radial (fHistWidth) | 
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| 34 | // and the azimuthal (fHistPhi) intensity distribution for one muon. | 
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| 35 | // You can retrieve the histogram (TH1F) using the function GetHistPhi() | 
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| 36 | // or GetHistWidth(). | 
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| 37 | // From these histograms the fraction of the ring segment (ArcPhi) and the | 
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| 38 | // Width of the muon ring (ArcWidth) is calculated. | 
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| 39 | // | 
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| 40 | // First, the radius and center of the ring has to be calculted by | 
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| 41 | // MMuonSearchParCalc | 
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| 42 | // After that the histograms has to be filled in the following way: | 
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| 43 | // | 
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| 44 | // MFillH fillmuon("MHSingleMuon", "", "FillMuon"); | 
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| 45 | // | 
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| 46 | // The allowed region to estimate ArcPhi is a certain margin around the | 
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| 47 | // radius. The default value is 0.2 deg (60mm). If the estimated radius | 
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| 48 | // of the arc is 1.0 deg, the pixel contents in the radius range from | 
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| 49 | // 0.8 deg to 1.2 deg are fill in the histogram. | 
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| 50 | // | 
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| 51 | // For ArcPhi only bins over a certain threshold are supposed to be part | 
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| 52 | // of the ring. | 
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| 53 | // For ArcWidth, the same algorithm is used to determine the fit region | 
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| 54 | // for a gaussian fit to the radial intensity distribution. The ArcWidth | 
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| 55 | // is defined as the sigma value of the gaussian fit. | 
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| 56 | // | 
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| 57 | // The binning of the histograms can be changed in the following way: | 
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| 58 | // | 
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| 59 | // MBinning bins1("BinningMuonWidth"); | 
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| 60 | // MBinning bins2("BinningArcPhi"); | 
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| 61 | // bins1.SetEdges(28, 0.3, 1.7); | 
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| 62 | // bins2.SetEdges(20, -180,180); | 
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| 63 | // plist.AddToList(&bins1); | 
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| 64 | // plist.AddToList(&bins2); | 
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| 65 | // | 
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| 66 | // The values for the thresholds and the margin are saved in MMuonSetup. | 
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| 67 | // They can be easily changed in star.rc. | 
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| 68 | // | 
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| 69 | // Please have in mind, that changes in this basic parameters will change | 
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| 70 | // your results!! | 
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| 71 | // | 
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| 72 | // InputContainer: | 
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| 73 | //   - MGeomCam | 
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| 74 | //   - MMuonSearchPar | 
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| 75 | // | 
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| 76 | // | 
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| 77 | // Class Version 2: | 
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| 78 | // ---------------- | 
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| 79 | //   + Double_t fRelTimeMean;   // Result of the gaus fit to the arrival time | 
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| 80 | //   + Double_t fRelTimeSigma;  // Result of the gaus fit to the arrival time | 
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| 81 | // | 
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| 82 | //////////////////////////////////////////////////////////////////////////// | 
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| 83 | #include "MHSingleMuon.h" | 
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| 84 |  | 
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| 85 | #include <TF1.h> | 
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| 86 | #include <TPad.h> | 
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| 87 | #include <TCanvas.h> | 
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| 88 |  | 
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| 89 | #include "MLog.h" | 
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| 90 | #include "MLogManip.h" | 
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| 91 |  | 
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| 92 | #include "MBinning.h" | 
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| 93 | #include "MParList.h" | 
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| 94 |  | 
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| 95 | #include "MGeomCam.h" | 
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| 96 | #include "MGeomPix.h" | 
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| 97 |  | 
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| 98 | #include "MSignalCam.h" | 
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| 99 | #include "MSignalPix.h" | 
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| 100 |  | 
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| 101 | #include "MMuonSetup.h" | 
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| 102 | #include "MMuonCalibPar.h" | 
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| 103 | #include "MMuonSearchPar.h" | 
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| 104 |  | 
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| 105 | ClassImp(MHSingleMuon); | 
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| 106 |  | 
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| 107 | using namespace std; | 
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| 108 |  | 
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| 109 | // -------------------------------------------------------------------------- | 
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| 110 | // | 
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| 111 | // Setup histograms | 
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| 112 | // | 
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| 113 | MHSingleMuon::MHSingleMuon(const char *name, const char *title) : | 
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| 114 | fSignalCam(0), fMuonSearchPar(0), fGeomCam(0), fMargin(0) | 
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| 115 | { | 
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| 116 | fName  = name  ? name  : "MHSingleMuon"; | 
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| 117 | fTitle = title ? title : "Histograms of muon parameters"; | 
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| 118 |  | 
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| 119 | fHistPhi.SetName("HistPhi"); | 
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| 120 | fHistPhi.SetTitle("HistPhi"); | 
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| 121 | fHistPhi.SetXTitle("\\phi [\\circ]"); | 
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| 122 | fHistPhi.SetYTitle("sum of ADC"); | 
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| 123 | fHistPhi.SetDirectory(NULL); | 
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| 124 | fHistPhi.SetFillStyle(4000); | 
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| 125 | fHistPhi.UseCurrentStyle(); | 
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| 126 |  | 
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| 127 | fHistWidth.SetName("HistWidth"); | 
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| 128 | fHistWidth.SetTitle("HistWidth"); | 
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| 129 | fHistWidth.SetXTitle("distance from the ring center [\\circ]"); | 
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| 130 | fHistWidth.SetYTitle("sum of ADC"); | 
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| 131 | fHistWidth.SetDirectory(NULL); | 
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| 132 | fHistWidth.SetFillStyle(4000); | 
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| 133 | fHistWidth.UseCurrentStyle(); | 
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| 134 |  | 
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| 135 | fHistTime.SetName("HistTime"); | 
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| 136 | fHistTime.SetTitle("HistTime"); | 
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| 137 | fHistTime.SetXTitle("timing difference"); | 
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| 138 | fHistTime.SetYTitle("Counts"); | 
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| 139 | fHistTime.SetDirectory(NULL); | 
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| 140 | fHistTime.SetFillStyle(4000); | 
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| 141 | fHistTime.UseCurrentStyle(); | 
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| 142 |  | 
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| 143 | MBinning bins; | 
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| 144 | bins.SetEdges(20, -180, 180); | 
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| 145 | bins.Apply(fHistPhi); | 
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| 146 |  | 
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| 147 | bins.SetEdges(28, 0.3, 1.7); | 
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| 148 | bins.Apply(fHistWidth); | 
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| 149 |  | 
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| 150 | bins.SetEdges(101, -33, 33);   // +/- 33ns | 
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| 151 | bins.Apply(fHistTime); | 
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| 152 | } | 
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| 153 |  | 
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| 154 | // -------------------------------------------------------------------------- | 
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| 155 | // | 
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| 156 | // Setup the Binning for the histograms automatically if the correct | 
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| 157 | // instances of MBinning | 
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| 158 | // | 
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| 159 | Bool_t MHSingleMuon::SetupFill(const MParList *plist) | 
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| 160 | { | 
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| 161 | fGeomCam = (MGeomCam*)plist->FindObject("MGeomCam"); | 
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| 162 | if (!fGeomCam) | 
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| 163 | { | 
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| 164 | *fLog << warn << "MGeomCam not found... abort." << endl; | 
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| 165 | return kFALSE; | 
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| 166 | } | 
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| 167 | fMuonSearchPar = (MMuonSearchPar*)plist->FindObject("MMuonSearchPar"); | 
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| 168 | if (!fMuonSearchPar) | 
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| 169 | { | 
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| 170 | *fLog << warn << "MMuonSearchPar not found... abort." << endl; | 
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| 171 | return kFALSE; | 
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| 172 | } | 
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| 173 | fSignalCam = (MSignalCam*)plist->FindObject("MSignalCam"); | 
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| 174 | if (!fSignalCam) | 
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| 175 | { | 
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| 176 | *fLog << warn << "MSignalCam not found... abort." << endl; | 
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| 177 | return kFALSE; | 
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| 178 | } | 
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| 179 |  | 
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| 180 | MMuonSetup *setup = (MMuonSetup*)const_cast<MParList*>(plist)->FindCreateObj("MMuonSetup"); | 
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| 181 | if (!setup) | 
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| 182 | return kFALSE; | 
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| 183 |  | 
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| 184 | fMargin = setup->GetMargin()/fGeomCam->GetConvMm2Deg(); | 
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| 185 |  | 
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| 186 | ApplyBinning(*plist, "ArcPhi",    fHistPhi); | 
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| 187 | ApplyBinning(*plist, "MuonWidth", fHistWidth); | 
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| 188 | ApplyBinning(*plist, "MuonTime",  fHistTime); | 
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| 189 |  | 
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| 190 | return kTRUE; | 
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| 191 | } | 
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| 192 |  | 
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| 193 | // -------------------------------------------------------------------------- | 
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| 194 | // | 
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| 195 | // Fill the histograms with data from a MMuonCalibPar and | 
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| 196 | // MMuonSearchPar container. | 
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| 197 | // | 
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| 198 | Int_t MHSingleMuon::Fill(const MParContainer *par, const Stat_t w) | 
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| 199 | { | 
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| 200 | fRelTimeMean  =  0; | 
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| 201 | fRelTimeSigma = -1; | 
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| 202 |  | 
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| 203 | fHistPhi.Reset(); | 
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| 204 | fHistWidth.Reset(); | 
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| 205 | fHistTime.Reset(); | 
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| 206 |  | 
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| 207 | const Int_t entries = fSignalCam->GetNumPixels(); | 
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| 208 |  | 
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| 209 | // the position of the center of a muon ring | 
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| 210 | const Float_t cenx = fMuonSearchPar->GetCenterX(); | 
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| 211 | const Float_t ceny = fMuonSearchPar->GetCenterY(); | 
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| 212 |  | 
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| 213 | for (Int_t i=0; i<entries; i++) | 
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| 214 | { | 
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| 215 | const MSignalPix &pix  = (*fSignalCam)[i]; | 
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| 216 | const MGeom      &gpix = (*fGeomCam)[i]; | 
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| 217 |  | 
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| 218 | const Float_t dx = gpix.GetX() - cenx; | 
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| 219 | const Float_t dy = gpix.GetY() - ceny; | 
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| 220 |  | 
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| 221 | const Float_t dist = TMath::Hypot(dx, dy); | 
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| 222 |  | 
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| 223 | // if the signal is not near the estimated circle, it is ignored. | 
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| 224 | if (TMath::Abs(dist-fMuonSearchPar->GetRadius())<fMargin) | 
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| 225 | { | 
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| 226 | // The arrival time is aligned around 0 for smaller | 
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| 227 | // and more stable histogram range | 
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| 228 | fHistTime.Fill(pix.GetArrivalTime()-fMuonSearchPar->GetTime()); | 
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| 229 | } | 
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| 230 |  | 
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| 231 | // use only the inner pixles. FIXME: This is geometry dependent | 
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| 232 | if (gpix.GetAidx()>0) | 
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| 233 | continue; | 
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| 234 |  | 
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| 235 | fHistWidth.Fill(dist*fGeomCam->GetConvMm2Deg(), pix.GetNumPhotons()); | 
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| 236 | } | 
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| 237 |  | 
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| 238 | // Setup the function and perform the fit | 
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| 239 | TF1 g1("g1", "gaus");//, -fHistTime.GetXmin(), fHistTime.GetXmax()); | 
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| 240 |  | 
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| 241 | // Choose starting values as accurate as possible | 
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| 242 | g1.SetParameter(0, fHistTime.GetMaximum()); | 
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| 243 | g1.SetParameter(1, 0); | 
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| 244 | g1.SetParameter(2, 0.7); // FIXME! GetRMS instead??? | 
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| 245 |  | 
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| 246 | // According to fMuonSearchPar->GetTimeRMS() identified muons | 
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| 247 | // do not have an arrival time rms>3 | 
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| 248 | g1.SetParLimits(1, -1.7, 1.7); | 
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| 249 | g1.SetParLimits(2,  0,   3.4); | 
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| 250 |  | 
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| 251 | // options : N  do not store the function, do not draw | 
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| 252 | //           I  use integral of function in bin rather than value at bin center | 
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| 253 | //           R  use the range specified in the function range | 
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| 254 | //           Q  quiet mode | 
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| 255 | if (fHistTime.Fit(&g1, "QNB")) | 
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| 256 | return kTRUE; | 
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| 257 |  | 
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| 258 | fRelTimeMean  = g1.GetParameter(1); | 
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| 259 | fRelTimeSigma = g1.GetParameter(2); | 
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| 260 |  | 
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| 261 | // The mean arrival time which was subtracted before will | 
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| 262 | // be added again, now | 
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| 263 | const Double_t tm0 = fMuonSearchPar->GetTime()+fRelTimeMean; | 
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| 264 |  | 
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| 265 | for (Int_t i=0; i<entries; i++) | 
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| 266 | { | 
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| 267 | const MSignalPix &pix  = (*fSignalCam)[i]; | 
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| 268 | const MGeom      &gpix = (*fGeomCam)[i]; | 
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| 269 |  | 
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| 270 | const Float_t dx = gpix.GetX() - cenx; | 
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| 271 | const Float_t dy = gpix.GetY() - ceny; | 
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| 272 |  | 
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| 273 | const Float_t dist = TMath::Hypot(dx, dy); | 
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| 274 |  | 
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| 275 | // if the signal is not near the estimated circle, it is ignored. | 
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| 276 | if (TMath::Abs(dist-fMuonSearchPar->GetRadius())<fMargin && | 
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| 277 | TMath::Abs(pix.GetArrivalTime()-tm0) < 2*fRelTimeSigma) | 
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| 278 | { | 
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| 279 | fHistPhi.Fill(TMath::ATan2(dx, dy)*TMath::RadToDeg(), pix.GetNumPhotons()); | 
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| 280 | } | 
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| 281 | } | 
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| 282 |  | 
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| 283 | return kTRUE; | 
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| 284 |  | 
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| 285 | /* | 
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| 286 | // Because the errors (sqrt(content)) are only scaled by a fixed | 
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| 287 | // factor, and the absolute value of the error is nowhere | 
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| 288 | // needed we skip this step | 
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| 289 |  | 
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| 290 | // error estimation (temporarily) | 
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| 291 | //  The error is estimated from the signal. In order to do so, we have to | 
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| 292 | // once convert the signal from ADC to photo-electron. Then we can get | 
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| 293 | // the fluctuation such as F-factor*sqrt(phe). | 
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| 294 | //  Up to now, the error of pedestal is not taken into accout. This is not | 
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| 295 | // of course correct. We will include this soon. | 
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| 296 | const Double_t Ffactor  = 1.4; | 
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| 297 | for (Int_t i=0; i<fHistPhi.GetNbinsX()+1; i++) | 
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| 298 | fHistPhi.SetBinError(i, fHistPhi.GetBinError(i)*Ffactor); | 
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| 299 |  | 
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| 300 | for (Int_t i=0; i<fHistWidth.GetNbinsX()+1; i++) | 
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| 301 | fHistWidth.SetBinError(i, fHistWidth.GetBinError(i)*Ffactor); | 
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| 302 |  | 
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| 303 | return kTRUE; | 
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| 304 | */ | 
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| 305 | } | 
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| 306 |  | 
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| 307 | // -------------------------------------------------------------------------- | 
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| 308 | // | 
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| 309 | // Find the first bins starting at the bin with maximum content in both | 
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| 310 | // directions which are below threshold. | 
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| 311 | // If in a range of half the histogram size in both directions no bin | 
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| 312 | // below the threshold is found, kFALSE is returned. | 
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| 313 | // | 
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| 314 | Bool_t MHSingleMuon::FindRangeAboveThreshold(const TProfile &h, Float_t thres, Int_t &first, Int_t &last) const | 
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| 315 | { | 
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| 316 | const Int_t n      = h.GetNbinsX(); | 
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| 317 | const Int_t maxbin = h.GetMaximumBin(); | 
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| 318 | const Int_t edge   = maxbin+n/2; | 
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| 319 |  | 
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| 320 | // Search from the peak to the right | 
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| 321 | last = -1; | 
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| 322 | for (Int_t i=maxbin; i<edge; i++) | 
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| 323 | { | 
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| 324 | const Float_t val = h.GetBinContent(i%n + 1); | 
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| 325 | if (val<thres) | 
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| 326 | { | 
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| 327 | last = i%n+1; | 
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| 328 | break; | 
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| 329 | } | 
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| 330 | } | 
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| 331 |  | 
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| 332 | // Search from the peak to the left | 
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| 333 | first = -1; | 
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| 334 | for (Int_t i=maxbin+n-1; i>=edge; i--) | 
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| 335 | { | 
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| 336 | const Float_t val = h.GetBinContent(i%n + 1); | 
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| 337 | if (val<thres) | 
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| 338 | { | 
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| 339 | first = i%n+1; | 
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| 340 | break; | 
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| 341 | } | 
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| 342 | } | 
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| 343 |  | 
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| 344 | return first>=0 && last>=0; | 
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| 345 | } | 
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| 346 |  | 
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| 347 | // -------------------------------------------------------------------------- | 
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| 348 | // | 
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| 349 | //  Photon distribution along the estimated circle is fitted with theoritical | 
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| 350 | // function in order to get some more information such as Arc Phi and Arc | 
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| 351 | // Length. | 
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| 352 | // | 
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| 353 | Bool_t MHSingleMuon::CalcPhi(Double_t thres, Double_t &peakphi, Double_t &arcphi) const | 
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| 354 | { | 
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| 355 | if (fHistPhi.GetMaximum()<thres) | 
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| 356 | return kFALSE; | 
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| 357 |  | 
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| 358 | peakphi = 180.-fHistPhi.GetBinCenter(fHistPhi.GetMaximumBin()); | 
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| 359 |  | 
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| 360 | // Now find the position at which the peak edges crosses the threshold | 
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| 361 | Int_t first, last; | 
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| 362 |  | 
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| 363 | FindRangeAboveThreshold(fHistPhi, thres, first, last); | 
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| 364 |  | 
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| 365 | const Int_t n    = fHistPhi.GetNbinsX(); | 
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| 366 | const Int_t edge = fHistPhi.GetMaximumBin()+n/2; | 
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| 367 | if (first<0) | 
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| 368 | first = (edge-1)%n+1; | 
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| 369 | if (last<0) | 
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| 370 | last  = edge%n+1;; | 
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| 371 |  | 
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| 372 | const Float_t startfitval = fHistPhi.GetBinLowEdge(first+1); | 
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| 373 | const Float_t endfitval   = fHistPhi.GetBinLowEdge(last); | 
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| 374 |  | 
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| 375 | arcphi = last-1<first ? 360+(endfitval-startfitval) : endfitval-startfitval; | 
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| 376 |  | 
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| 377 | //if (fEnableImpactCalc) | 
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| 378 | //    CalcImpact(effbinnum, startfitval, endfitval); | 
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| 379 |  | 
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| 380 | return kTRUE; | 
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| 381 | } | 
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| 382 |  | 
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| 383 | // -------------------------------------------------------------------------- | 
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| 384 | // | 
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| 385 | // Photon distribution of distance from the center of estimated ring is | 
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| 386 | // fitted in order to get some more information such as ARC WIDTH which | 
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| 387 | // can represent to the PSF of our reflector. | 
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| 388 | // | 
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| 389 | // thres: Threshold above zero to determin the edges of the peak which | 
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| 390 | //        is used as fit range | 
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| 391 | // width: ArcWidth returned in deg | 
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| 392 | // chi:   Chi^2/NDF of the fit | 
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| 393 | // | 
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| 394 | Bool_t MHSingleMuon::CalcWidth(Double_t thres, Double_t &width, Double_t &chi) | 
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| 395 | { | 
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| 396 | Int_t first, last; | 
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| 397 |  | 
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| 398 | if (!FindRangeAboveThreshold(fHistWidth, thres, first, last)) | 
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| 399 | return kFALSE; | 
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| 400 |  | 
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| 401 | // This happens in some cases | 
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| 402 | const Int_t n = fHistWidth.GetNbinsX()/2; | 
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| 403 | const Int_t m = fHistWidth.GetMaximumBin(); | 
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| 404 | if (first>last) | 
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| 405 | { | 
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| 406 | if (m>n)       // If maximum is on the right side of histogram | 
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| 407 | last = n; | 
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| 408 | else | 
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| 409 | first = 0; // If maximum is on the left side of histogram | 
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| 410 | } | 
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| 411 |  | 
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| 412 | if (last-first<=3) | 
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| 413 | return kFALSE; | 
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| 414 |  | 
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| 415 | // Now get the fit range | 
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| 416 | const Float_t startfitval = fHistWidth.GetBinLowEdge(first+1); | 
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| 417 | const Float_t endfitval   = fHistWidth.GetBinLowEdge(last); | 
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| 418 |  | 
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| 419 | // Setup the function and perform the fit | 
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| 420 | TF1 f1("f1", "gaus + [3]", startfitval, endfitval); | 
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| 421 | f1.SetLineColor(kBlue); | 
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| 422 |  | 
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| 423 | // Choose starting values as accurate as possible | 
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| 424 | f1.SetParameter(0, fHistWidth.GetMaximum()); | 
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| 425 | f1.SetParameter(1, fHistWidth.GetBinCenter(m)); | 
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| 426 | //    f1.SetParameter(2, (endfitval-startfitval)/2); | 
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| 427 | f1.SetParameter(2, 0.1); | 
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| 428 | f1.SetParameter(3, 1.8); | 
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| 429 |  | 
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| 430 | // options : N  do not store the function, do not draw | 
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| 431 | //           I  use integral of function in bin rather than value at bin center | 
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| 432 | //           R  use the range specified in the function range | 
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| 433 | //           Q  quiet mode | 
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| 434 | //    fHistWidth.Fit(&f1, "QRO"); | 
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| 435 | if (fHistWidth.Fit(&f1, "QRN")) | 
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| 436 | return kFALSE; | 
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| 437 |  | 
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| 438 | chi   = f1.GetChisquare()/f1.GetNDF(); | 
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| 439 | width = f1.GetParameter(2); | 
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| 440 |  | 
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| 441 | return kTRUE; | 
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| 442 | } | 
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| 443 |  | 
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| 444 | /* | 
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| 445 | // -------------------------------------------------------------------------- | 
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| 446 | // | 
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| 447 | // An impact parameter is calculated by fitting the histogram of photon | 
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| 448 | // distribution along the circle with a theoritical model. | 
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| 449 | // (See G. Vacanti et. al., Astroparticle Physics 2, 1994, 1-11. | 
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| 450 | // The function (6) is used here.) | 
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| 451 | // | 
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| 452 | // By default this calculation is suppressed because this calculation is | 
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| 453 | // very time consuming. If you want to calculate an impact parameter, | 
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| 454 | // you can call the function of EnableImpactCalc(). | 
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| 455 | // | 
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| 456 | void MMuonCalibParCalc::CalcImpact(Int_t effbinnum, Float_t startfitval, Float_t endfitval) | 
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| 457 | { | 
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| 458 | // Fit the distribution with Vacanti function. The function is different | 
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| 459 | // for the impact parameter of inside or outside of our reflector. | 
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| 460 | // Then two different functions are applied to the photon distribution, | 
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| 461 | // and the one which give us smaller chisquare value is taken as a | 
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| 462 | // proper one. | 
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| 463 |  | 
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| 464 | Double_t val1,err1,val2,err2; | 
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| 465 | // impact parameter inside mirror radius (8.5m) | 
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| 466 | TString func1; | 
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| 467 | Float_t tmpval = (*fMuonSearchPar).GetRadius()*(*fGeomCam).GetConvMm2Deg()*TMath::DegToRad(); | 
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| 468 | tmpval = sin(2.*tmpval)*8.5; | 
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| 469 | func1 += "[0]*"; | 
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| 470 | func1 += tmpval; | 
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| 471 | func1 += "*(sqrt(1.-([1]/8.5)**2*sin((x-[2])*3.1415926/180.)**2)+([1]/8.5)*cos((x-[2])*3.1415926/180.))"; | 
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| 472 |  | 
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| 473 | TF1 f1("f1",func1,startfitval,endfitval); | 
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| 474 | f1.SetParameters(2000,3,0); | 
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| 475 | f1.SetParLimits(1,0,8.5); | 
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| 476 | f1.SetParLimits(2,-180.,180.); | 
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| 477 |  | 
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| 478 | fMuonCalibPar->fHistPhi->Fit("f1","RQEM"); | 
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| 479 |  | 
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| 480 | Float_t chi1 = -1; | 
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| 481 | Float_t chi2 = -1; | 
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| 482 | if(effbinnum>3) | 
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| 483 | chi1 = f1.GetChisquare()/((Float_t)(effbinnum-3)); | 
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| 484 |  | 
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| 485 | gMinuit->GetParameter(1,val1,err1);  // get the estimated IP | 
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| 486 | Float_t estip1 = val1; | 
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| 487 |  | 
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| 488 | // impact parameter beyond mirror area (8.5m) | 
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| 489 | TString func2; | 
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| 490 | Float_t tmpval2 = (*fMuonSearchPar).GetRadius()*(*fGeomCam).GetConvMm2Deg()*TMath::DegToRad(); | 
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| 491 | tmpval2 = sin(2.*tmpval2)*8.5*2.; | 
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| 492 | func2 += "[0]*"; | 
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| 493 | func2 += tmpval2; | 
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| 494 | func2 += "*sqrt(1.-(([1]/8.5)*sin((x-[2])*3.1415926/180.))**2)"; | 
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| 495 |  | 
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| 496 | TF1 f2("f2",func2,startfitval,endfitval); | 
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| 497 | f2.SetParameters(2000,20,0); | 
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| 498 | f2.SetParLimits(1,8.5,300.); | 
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| 499 | f2.SetParLimits(2,-180.,180.); | 
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| 500 |  | 
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| 501 | fMuonCalibPar->fHistPhi->Fit("f2","RQEM+"); | 
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| 502 |  | 
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| 503 | if(effbinnum>3) | 
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| 504 | chi2 = f2.GetChisquare()/((Float_t)(effbinnum-3)); | 
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| 505 |  | 
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| 506 | gMinuit->GetParameter(1,val2,err2);  // get the estimated IP | 
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| 507 | Float_t estip2 = val2; | 
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| 508 |  | 
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| 509 | if(effbinnum<=3) | 
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| 510 | { | 
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| 511 | fMuonCalibPar->SetEstImpact(-1.); | 
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| 512 | } | 
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| 513 | if(chi2 > chi1) | 
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| 514 | { | 
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| 515 | fMuonCalibPar->SetEstImpact(estip1); | 
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| 516 | fMuonCalibPar->SetChiArcPhi(chi1); | 
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| 517 | } | 
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| 518 | else | 
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| 519 | { | 
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| 520 | fMuonCalibPar->SetEstImpact(estip2); | 
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| 521 | fMuonCalibPar->SetChiArcPhi(chi2); | 
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| 522 | } | 
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| 523 | } | 
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| 524 | */ | 
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| 525 |  | 
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| 526 | Float_t MHSingleMuon::CalcSize() const | 
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| 527 | { | 
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| 528 | const Int_t n = fHistPhi.GetNbinsX(); | 
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| 529 |  | 
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| 530 | Double_t sz=0; | 
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| 531 | for (Int_t i=1; i<=n; i++) | 
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| 532 | sz += fHistPhi.GetBinContent(i)*fHistPhi.GetBinEntries(i); | 
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| 533 |  | 
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| 534 | return sz; | 
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| 535 | } | 
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| 536 |  | 
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| 537 | void MHSingleMuon::Paint(Option_t *o) | 
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| 538 | { | 
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| 539 | TF1 *f = fHistWidth.GetFunction("f1"); | 
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| 540 | if (f) | 
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| 541 | f->ResetBit(1<<9); | 
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| 542 | } | 
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| 543 |  | 
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| 544 | void MHSingleMuon::Draw(Option_t *o) | 
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| 545 | { | 
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| 546 | TVirtualPad *pad = gPad ? gPad : MakeDefCanvas(this); | 
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| 547 | pad->SetBorderMode(0); | 
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| 548 |  | 
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| 549 | AppendPad(""); | 
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| 550 |  | 
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| 551 | pad->Divide(1,2); | 
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| 552 |  | 
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| 553 | pad->cd(1); | 
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| 554 | gPad->SetBorderMode(0); | 
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| 555 | fHistPhi.Draw(); | 
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| 556 |  | 
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| 557 | pad->cd(2); | 
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| 558 | gPad->SetBorderMode(0); | 
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| 559 | fHistWidth.Draw(); | 
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| 560 | } | 
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