[62cc8f5] | 1 | /*
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| 2 | * Delphes: a framework for fast simulation of a generic collider experiment
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| 3 | * Copyright (C) 2012-2014 Universite catholique de Louvain (UCL), Belgium
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| 4 | *
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| 5 | * This program is free software: you can redistribute it and/or modify
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| 6 | * it under the terms of the GNU General Public License as published by
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| 7 | * the Free Software Foundation, either version 3 of the License, or
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| 8 | * (at your option) any later version.
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| 9 | *
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| 10 | * This program is distributed in the hope that it will be useful,
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| 11 | * but WITHOUT ANY WARRANTY; without even the implied warranty of
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| 12 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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| 13 | * GNU General Public License for more details.
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| 14 | *
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| 15 | * You should have received a copy of the GNU General Public License
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| 16 | * along with this program. If not, see <http://www.gnu.org/licenses/>.
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| 17 | */
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| 18 |
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| 19 | /** \class EICPIDDetector
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| 20 | *
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| 21 | * Applies complex photon Id. Reconstructed photon candidtes are first separated into matched and non-matched to gen particles.
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| 22 | * Non-matched pass the "fake" efficiency. Matched photons get further splitted into isolated and non-isolated (user can choose criterion for isolation)
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| 23 | * Isolated photons pass the "prompt" efficiency while the non-isolated pass the "non-prompt" efficiency
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| 24 | *
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| 25 | * \author M. Selvaggi CERN
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| 26 | *
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| 27 | */
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| 28 |
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| 29 | #include "modules/EICPIDDetector.h"
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| 30 |
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| 31 | #include "classes/DelphesClasses.h"
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| 32 | #include "classes/DelphesFactory.h"
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| 33 | #include "classes/DelphesFormula.h"
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| 34 |
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| 35 | #include "ExRootAnalysis/ExRootClassifier.h"
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| 36 | #include "ExRootAnalysis/ExRootFilter.h"
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| 37 | #include "ExRootAnalysis/ExRootResult.h"
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| 38 |
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| 39 | #include "TDatabasePDG.h"
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| 40 | #include "TFormula.h"
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| 41 | #include "TLorentzVector.h"
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| 42 | #include "TMath.h"
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| 43 | #include "TObjArray.h"
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| 44 | #include "TRandom3.h"
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| 45 | #include "TString.h"
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| 46 | #include "Math/PdfFuncMathCore.h"
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| 47 | #include "Math/ProbFuncMathCore.h"
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| 48 |
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| 49 | #include "pid/barrelDIRC/src/barrelDirc.h"
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| 50 | #include "pid/quintRICH/src/CF4rich.h"
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| 51 | #include "pid/mRICH/src/mRICH.h"
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| 52 | #include "pid/tofBarrel/src/tofBarrel.h"
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[f4900ab] | 53 | #include "pid/dRICH/dualRICH.h"
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[62cc8f5] | 54 |
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| 55 | #include <algorithm>
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| 56 | #include <iostream>
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| 57 | #include <sstream>
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| 58 | #include <stdexcept>
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| 59 |
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| 60 | using namespace std;
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| 61 |
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| 62 | //------------------------------------------------------------------------------
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| 63 |
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| 64 | EICPIDDetector::EICPIDDetector() :
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| 65 | fItInputArray(0)
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| 66 | {
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| 67 | }
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| 68 |
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| 69 | //------------------------------------------------------------------------------
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| 70 |
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| 71 | EICPIDDetector::~EICPIDDetector()
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| 72 | {
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| 73 | }
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| 74 |
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| 75 | //------------------------------------------------------------------------------
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| 76 |
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| 77 | void EICPIDDetector::Init()
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| 78 | {
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| 79 |
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| 80 | // import input arrays
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| 81 | fInputArray = ImportArray(GetString("InputArray", "ParticlePropagator/stableParticles"));
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| 82 | fItInputArray = fInputArray->MakeIterator();
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| 83 |
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| 84 | // PID Pair to be assessed
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| 85 | ExRootConfParam param;
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| 86 | Int_t size;
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| 87 | param = GetParam("Hypotheses");
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| 88 | size = param.GetSize();
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| 89 |
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| 90 | fHypo = static_cast<PID::type>(0);
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| 91 | if (size == 2) {
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| 92 | fPDG1 = abs(param[0].GetInt());
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| 93 | fPDG2 = abs(param[1].GetInt());
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| 94 |
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| 95 | if (fPDG1 == 321) {
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| 96 | if (fPDG2 == 211) {
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| 97 | fHypo = PID::pi_k;
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| 98 | } else if (fPDG2 == 2212) {
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| 99 | fHypo = PID::k_p;
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| 100 | }
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| 101 | }
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| 102 |
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| 103 | } else {
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| 104 | // Bad parameter - do something intelligent here.
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| 105 | std::cout << "Unable to retrieve Particle ID hypothesis pair." << std::endl;
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| 106 | }
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| 107 |
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| 108 |
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| 109 | fDetectorName = std::string(GetString("DetectorName", "barrelDirc"));
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| 110 |
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| 111 | // Common PID Detector parameters
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| 112 | fTrackResolution = GetDouble("TrackResolution", 0.5); // mrad
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| 113 | fTimeResolution = GetDouble("TimeResolution", 0.1); //ns
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| 114 | fDetectorLength = GetDouble("DetectorLength", 1500); // mm
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| 115 | fetaLow = GetDouble("EtaLow", -8.0);
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| 116 | fetaHigh = GetDouble("EtaHigh", 8.0);
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| 117 |
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| 118 | // Barrel DIRC Parameters
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| 119 | fQE = GetDouble("QuantumEfficiency", 0.0); // 0 = 27% for barrelDirc, 1 = 22% for barrelDirc
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| 120 |
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| 121 | // mRICH Parameters
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| 122 | fPixelSize = GetDouble("PixelSize", 1.0); // 1.0 mm
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| 123 |
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| 124 | // CF4RICH Parameters
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| 125 |
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| 126 |
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| 127 | // Build the detector object
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| 128 | if (fDetectorName == "barrelDirc") {
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| 129 | fPIDDetector = new barrelDirc(fTrackResolution,fTimeResolution,fQE,fetaLow,fetaHigh);
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| 130 | }
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| 131 | else if (fDetectorName == "mRICH") {
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[f4900ab] | 132 | fPIDDetector = new mRICH(fTrackResolution,fTimeResolution, fPixelSize, fetaLow, fetaHigh);
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[62cc8f5] | 133 | //fPIDDetector = new mRICH(0.00175, 1, 3);
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| 134 | }
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| 135 | else if (fDetectorName == "CF4rich") {
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| 136 | fPIDDetector = new CF4rich(fDetectorLength/10, fetaLow, fetaHigh, fPixelSize, fTrackResolution);
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| 137 | }
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| 138 | else if (fDetectorName == "tofBarrel") {
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| 139 | fPIDDetector = new tofBarrel(100, fetaLow, fetaHigh, 10);
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[f4900ab] | 140 | }
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| 141 | else if (fDetectorName == "dualRICH_aerogel") {
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| 142 | fPIDDetector = new dualRICH_aerogel();
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| 143 | }
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| 144 | else if (fDetectorName == "dualRICH_C2F6") {
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| 145 | fPIDDetector = new dualRICH_C2F6();
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[62cc8f5] | 146 | } else {
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| 147 | std::cout << "No valid EIC PID Detector technology was specified!" << std::endl;
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| 148 | assert(1==0);
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| 149 | }
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| 150 |
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| 151 | fPIDDetector->description();
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| 152 |
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| 153 | // create output array
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| 154 | fOutputArray = ExportArray(GetString("OutputArray", "tracks"));
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| 155 | }
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| 156 |
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| 157 | //------------------------------------------------------------------------------
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| 158 |
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| 159 | void EICPIDDetector::Finish()
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| 160 | {
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| 161 | if(fItInputArray) delete fItInputArray;
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| 162 | if(fPIDDetector) delete fPIDDetector;
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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 | void EICPIDDetector::Process()
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| 168 | {
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| 169 | Candidate *candidate, *mother;
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| 170 | Double_t pt, eta;
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| 171 | Int_t true_id;
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| 172 |
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| 173 | fItInputArray->Reset();
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| 174 | while((candidate = static_cast<Candidate *>(fItInputArray->Next())))
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| 175 | {
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| 176 |
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| 177 | mother = candidate;
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| 178 | candidate = static_cast<Candidate *>(candidate->Clone());
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| 179 | candidate->AddCandidate(mother);
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| 180 |
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| 181 | const TLorentzVector &candidateMomentum = candidate->Momentum;
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| 182 | eta = candidateMomentum.Eta();
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| 183 | pt = candidateMomentum.Pt();
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| 184 | true_id = candidate->PID;
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| 185 |
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| 186 | Float_t p = pt * TMath::CosH(eta);
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| 187 |
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| 188 | // Obtain the number of sigma separation for a given hypothesis pair for this track
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| 189 | Bool_t valid = fPIDDetector->valid(eta, p);
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| 190 |
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| 191 | Double_t nsigma = -1.0;
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| 192 |
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| 193 | if (valid) {
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| 194 | nsigma = fPIDDetector->numSigma(eta, p, fHypo);
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| 195 |
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| 196 | // Assume that Nsigma_Hypo1 = N_sigma_Hypo2, so that Nsigma_HypoX = Nsigma/Sqrt(2).
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| 197 | nsigma = nsigma/TMath::Sqrt(2.0);
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| 198 | //std::cout << std::scientific << "EICDetector nsigma = " << nsigma << std::fixed << std::endl;
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| 199 | }
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| 200 |
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| 201 |
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| 202 |
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| 203 | int pid_reco = 0;
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| 204 | int pid_true = TMath::Abs(candidate->PID);
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| 205 | if (!valid || TMath::IsNaN(nsigma) || !TMath::Finite(nsigma)) {
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| 206 | pid_reco = 0;
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| 207 | } else {
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| 208 |
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| 209 |
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| 210 | // Use accept/reject to assign a PID-detector identity to this track
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| 211 | Double_t probability = 0.0;
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| 212 | if (TMath::Abs(true_id) == fPDG1) {
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| 213 | // We are selecting FOR this hypothesis, so use the core of a Gaussian as the probability
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| 214 | probability = 1.0 - ROOT::Math::gaussian_pdf(nsigma);
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| 215 | } else if (TMath::Abs(true_id) == fPDG2) {
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| 216 | // We are trying to reject these using this detector, so the one-sided tail of the Gaussian probability applies
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| 217 | probability = 1.0 - ROOT::Math::normal_cdf(nsigma);
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| 218 | }
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| 219 |
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| 220 | // std::cout << "True ID = " << true_id << ", |eta| = " << TMath::Abs(eta) << ", p = " << pt*TMath::CosH(eta)
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| 221 | // <<", nsigma = " << std::scientific << nsigma << ", probability = " << std::fixed
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| 222 | // << std::scientific << probability << std::fixed << std::endl;
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| 223 |
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| 224 | // Create a PID value that is the concatenation of two 16-bit numbers.
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| 225 | // The lowest 16 bits are the reconstructed PID
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| 226 | // The highest 16 bits are the truth PID
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| 227 | // Bitmasking and shifting can be used to get these separately.
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| 228 | // For example, do the following to get the ... :
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| 229 | //
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| 230 | // * True PID: (Track.PID & 0xffff0000) >> 16) (Mask-select the highest 16 bits and shift right by 16 bits.
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| 231 | // * Reco PID: (Track.PID & 0xffff) (Mask-select the lowest 16 bits)
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| 232 | if (gRandom->Uniform(0, 1) < probability) {
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| 233 | candidate = static_cast<Candidate *>(candidate->Clone());
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| 234 | pid_reco = TMath::Abs(fPDG1);
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| 235 | pid_true = TMath::Abs(candidate->PID);
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| 236 | } else {
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| 237 | pid_reco = TMath::Abs(fPDG2);
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| 238 | pid_true = TMath::Abs(candidate->PID);
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| 239 | }
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| 240 | }
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| 241 | int pid_all = pid_reco + (pid_true << 16);
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| 242 | candidate->PID = pid_all;
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| 243 | fOutputArray->Add(candidate);
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| 244 | }
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| 245 | }
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