[9] | 1 | /*
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| 2 | ---- FastSim ----
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| 3 | A Fast Simulator for general purpose LHC detector
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| 4 | S. Ovyn ~~~~ severine.ovyn@uclouvain.be
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| 5 |
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| 6 | Center for Particle Physics and Phenomenology (CP3)
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| 7 | Universite Catholique de Louvain (UCL)
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| 8 | Louvain-la-Neuve, Belgium
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| 9 | */
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| 10 |
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| 11 | /// \file Smearing.cpp
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| 12 | /// \brief executable for the FastSim
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| 13 |
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| 14 | #include "TChain.h"
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| 15 | #include "TApplication.h"
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| 16 |
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| 17 | #include "Utilities/ExRootAnalysis/interface/ExRootTreeReader.h"
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| 18 | #include "Utilities/ExRootAnalysis/interface/ExRootTreeWriter.h"
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| 19 | #include "Utilities/ExRootAnalysis/interface/ExRootTreeBranch.h"
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| 20 |
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| 21 | #include "Utilities/CDFCones/interface/JetCluAlgorithm.h"
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| 22 | #include "Utilities/CDFCones/interface/MidPointAlgorithm.h"
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| 23 | #include "Utilities/CDFCones/interface/PhysicsTower.h"
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| 24 | #include "Utilities/CDFCones/interface/Cluster.h"
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| 25 |
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| 26 | #include "interface/DataConverter.h"
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| 27 | #include "interface/HEPEVTConverter.h"
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| 28 | #include "interface/LHEFConverter.h"
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| 29 | #include "interface/STDHEPConverter.h"
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| 30 | #include "interface/SmearUtil.h"
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| 31 | #include "interface/TreeClasses.h"
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| 32 |
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| 33 | using namespace std;
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| 34 |
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| 35 | //------------------------------------------------------------------------------
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| 36 |
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| 37 |
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| 38 |
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| 39 | void PairingJet(TLorentzVector &JETSm, TLorentzVector JET, vector<Cluster> jetsS)
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| 40 | {
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| 41 | JETSm.SetPxPyPzE(0,0,0,0);
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| 42 | vector<Cluster>::iterator itJetS;
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| 43 | float deltaRtest=5000;
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| 44 | LorentzVector jetMomentumS;
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| 45 | for(itJetS = jetsS.begin(); itJetS != jetsS.end(); ++itJetS)
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| 46 | {
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| 47 | jetMomentumS = itJetS->fourVector;
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| 48 | TLorentzVector Att;
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| 49 | Att.SetPxPyPzE(jetMomentumS.px,jetMomentumS.py,jetMomentumS.pz,jetMomentumS.E);
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| 50 | if(DeltaR(JET.Phi(),JET.Eta(),Att.Phi(),Att.Eta()) < deltaRtest)
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| 51 | {
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| 52 | deltaRtest = DeltaR(JET.Phi(),JET.Eta(),Att.Phi(),Att.Eta());
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| 53 | if(deltaRtest < 0.25)
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| 54 | {
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| 55 | JETSm = Att;
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| 56 | }
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| 57 | }
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| 58 | }
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| 59 | }
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| 60 |
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| 61 |
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| 62 | int main(int argc, char *argv[])
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| 63 | {
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| 64 | int appargc = 2;
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| 65 | char *appName = "Smearing";
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| 66 | char *appargv[] = {appName, "-b"};
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| 67 | TApplication app(appName, &appargc, appargv);
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| 68 |
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| 69 | if(argc != 4 && argc != 3) {
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| 70 | cout << " Usage: " << argv[0] << " input_file" << " output_file" << " data_card " << endl;
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| 71 | cout << " input_list - list of files in Ntpl, StdHep of LHEF format," << endl;
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| 72 | cout << " output_file - output file." << endl;
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| 73 | cout << " data_card - Datacard containing resolution variables for the detector simulation (optional) "<<endl;
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| 74 | exit(1);
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| 75 | }
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| 76 |
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| 77 | srand (time (NULL)); /* Initialisation du générateur */
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| 78 |
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| 79 | //read the input TROOT file
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| 80 | string inputFileList(argv[1]), outputfilename(argv[2]);
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| 81 | if(outputfilename.find(".root") > outputfilename.length() ) {
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| 82 | cout << "output_file should be a .root file!\n";
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| 83 | return -1;
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| 84 | }
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| 85 | TFile *outputFile = TFile::Open(outputfilename.c_str(), "RECREATE"); // Creates the file, but should be closed just after
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| 86 | outputFile->Close();
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| 87 |
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| 88 | string line;
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| 89 | ifstream infile(inputFileList.c_str());
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| 90 | infile >> line; // the first line determines the type of input files
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| 91 |
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| 92 | DataConverter *converter=0;
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| 93 |
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| 94 | if(strstr(line.c_str(),".hep"))
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| 95 | {
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| 96 | cout<<"*************************************************************************"<<endl;
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| 97 | cout<<"************ StdHEP file format detected **************"<<endl;
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| 98 | cout<<"************ Starting convertion to TRoot format **************"<<endl;
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| 99 | cout<<"*************************************************************************"<<endl;
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| 100 | converter = new STDHEPConverter(inputFileList,outputfilename);//case ntpl file in input list
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| 101 | }
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| 102 | else if(strstr(line.c_str(),".lhe"))
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| 103 | {
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| 104 | cout<<"*************************************************************************"<<endl;
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| 105 | cout<<"************ LHEF file format detected **************"<<endl;
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| 106 | cout<<"************ Starting convertion to TRoot format **************"<<endl;
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| 107 | cout<<"*************************************************************************"<<endl;
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| 108 | converter = new LHEFConverter(inputFileList,outputfilename);//case ntpl file in input list
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| 109 | }
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| 110 | else if(strstr(line.c_str(),".root"))
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| 111 | {
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| 112 | cout<<"*************************************************************************"<<endl;
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| 113 | cout<<"************ h2root file format detected **************"<<endl;
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| 114 | cout<<"************ Starting convertion to TRoot format **************"<<endl;
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| 115 | cout<<"*************************************************************************"<<endl;
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| 116 | converter = new HEPEVTConverter(inputFileList,outputfilename);//case ntpl file in input list
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| 117 | }
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| 118 | else { cout << "*** " << line.c_str() << "\n*** file format not identified\n*** Exiting\n"; return -1;};
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| 119 |
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| 120 | TChain chain("GEN");
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| 121 | chain.Add(outputfilename.c_str());
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| 122 | ExRootTreeReader *treeReader = new ExRootTreeReader(&chain);
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| 123 | const TClonesArray *branchGen = treeReader->UseBranch("Particle");
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| 124 | TIter itGen((TCollection*)branchGen);
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| 125 |
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| 126 | //write the output root file
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| 127 | ExRootTreeWriter *treeWriter = new ExRootTreeWriter(outputfilename, "Analysis");
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| 128 | ExRootTreeBranch *branchjet = treeWriter->NewBranch("JetPTResol", RESOLJET::Class());
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| 129 | ExRootTreeBranch *branchelec = treeWriter->NewBranch("ElecEResol", RESOLELEC::Class());
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| 130 | ExRootTreeBranch *branchmuon = treeWriter->NewBranch("MuonPTResol", RESOLMUON::Class());
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| 131 | ExRootTreeBranch *branchtaujet = treeWriter->NewBranch("TauJetPTResol", TAUHAD::Class());
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| 132 | ExRootTreeBranch *branchetmis = treeWriter->NewBranch("ETmisResol",ETMIS::Class());
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| 133 |
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| 134 | TRootGenParticle *particle;
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| 135 | TRootETmis *etmisc;
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| 136 |
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| 137 | RESOLELEC *elementElec;
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| 138 | RESOLMUON *elementMuon;
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| 139 | RESOLJET *elementJet;
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| 140 | TAUHAD *elementTaujet;
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| 141 | ETMIS *elementEtmis;
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| 142 |
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| 143 |
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| 144 | //read the datacard input file
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| 145 | string DetDatacard("");
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| 146 | if(argc==4) DetDatacard =argv[3];
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| 147 | RESOLution *DET = new RESOLution();
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| 148 | DET->ReadDataCard(DetDatacard);
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| 149 |
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| 150 |
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| 151 | TLorentzVector genMomentum(0,0,0,0);
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| 152 | LorentzVector jetMomentum;
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| 153 | vector<TLorentzVector> TrackCentral;
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| 154 | vector<PhysicsTower> towersS;
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| 155 | vector<Cluster> jetsS;
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| 156 | vector<PhysicsTower> towers;
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| 157 | vector<Cluster> jets;
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| 158 |
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| 159 |
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| 160 | // Loop over all events
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| 161 | Long64_t entry, allEntries = treeReader->GetEntries();
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| 162 | cout << "** Chain contains " << allEntries << " events" << endl;
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| 163 | for(entry = 0; entry < allEntries; ++entry)
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| 164 | {
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| 165 | TLorentzVector PTmis(0,0,0,0);
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| 166 | treeReader->ReadEntry(entry);
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| 167 | treeWriter->Clear();
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| 168 |
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| 169 | if((entry % 100) == 0 && entry > 0 ) cout << "** Processing element # " << entry << endl;
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| 170 |
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| 171 | TSimpleArray<TRootGenParticle> bGen;
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| 172 | itGen.Reset();
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| 173 | TrackCentral.clear();
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| 174 | towers.clear();
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| 175 | towersS.clear();
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| 176 | TSimpleArray<TRootGenParticle> NFCentralQ;
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| 177 |
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| 178 |
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| 179 | // Loop over all particles in event
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| 180 | while( (particle = (TRootGenParticle*) itGen.Next()) )
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| 181 | {
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| 182 | genMomentum.SetPxPyPzE(particle->Px, particle->Py, particle->Pz, particle->E);
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| 183 |
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| 184 | int pid = abs(particle->PID);
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| 185 | float eta = fabs(particle->Eta);
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| 186 |
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| 187 | if(particle->Status == 1)towers.push_back(PhysicsTower(LorentzVector(genMomentum.Px(),genMomentum.Py(),genMomentum.Pz(), genMomentum.E())));
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| 188 |
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| 189 | // keeps only final particles, visible by the central detector, including the fiducial volume
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| 190 | // the ordering of conditions have been optimised for speed : put first the STATUS condition
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| 191 | if( (particle->Status == 1) &&
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| 192 | (
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| 193 | (pid == pMU && eta < DET->MAX_MU) ||
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| 194 | (pid != pMU && (pid != pNU1) && (pid != pNU2) && (pid != pNU3) && eta < DET->MAX_CALO_FWD)
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| 195 | )
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| 196 | ) {
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| 197 | switch(pid) {
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| 198 |
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| 199 | case pE: // all electrons with eta < DET->MAX_CALO_FWD
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| 200 | DET->SmearElectron(genMomentum);
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| 201 | break; // case pE
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| 202 |
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| 203 | case pGAMMA: // all photons with eta < DET->MAX_CALO_FWD
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| 204 | DET->SmearElectron(genMomentum);
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| 205 | break; // case pGAMMA
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| 206 |
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| 207 | case pMU: // all muons with eta < DET->MAX_MU
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| 208 | DET->SmearMu(genMomentum);
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| 209 | break; // case pMU
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| 210 |
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| 211 | case pLAMBDA: // all lambdas with eta < DET->MAX_CALO_FWD
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| 212 | case pK0S: // all K0s with eta < DET->MAX_CALO_FWD
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| 213 | DET->SmearHadron(genMomentum, 0.7);
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| 214 | break; // case hadron
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| 215 |
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| 216 | default: // all other final particles with eta < DET->MAX_CALO_FWD
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| 217 | DET->SmearHadron(genMomentum, 1.0);
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| 218 | break;
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| 219 | } // switch (pid)
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| 220 |
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| 221 | // all final particles but muons and neutrinos
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| 222 | // for calorimetric towers and mission PT
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| 223 | if(genMomentum.E()!=0) PTmis = PTmis + genMomentum;//ptmis
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| 224 |
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| 225 | if(pid != pMU && genMomentum.Pt() > DET->PT_TRACKS_MIN)
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| 226 | towersS.push_back
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| 227 | (
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| 228 | PhysicsTower
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| 229 | (
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| 230 | LorentzVector(genMomentum.Px(),genMomentum.Py(),genMomentum.Pz(), genMomentum.E())
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| 231 | )
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| 232 | );
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| 233 | // all final charged particles
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| 234 | if(
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| 235 | ((rand()%100) < DET->TRACKING_EFF) &&
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| 236 | (genMomentum.E()!=0) &&
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| 237 | (fabs(particle->Eta) < DET->MAX_TRACKER) &&
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| 238 | (genMomentum.Pt() > DET->PT_TRACKS_MIN ) && // pt too small to be taken into account
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| 239 | (pid != pGAMMA) &&
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| 240 | (pid != pPI0) &&
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| 241 | (pid != pK0L) &&
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| 242 | (pid != pN) &&
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| 243 | (pid != pSIGMA0) &&
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| 244 | (pid != pDELTA0) &&
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| 245 | (pid != pK0S) // not charged particles : invisible by tracker
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| 246 | )
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| 247 | TrackCentral.push_back(genMomentum);
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| 248 | } // switch
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| 249 | } // while
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| 250 |
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| 251 |
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| 252 | //*****************************
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| 253 | JetCluAlgorithm jetAlgoS(1,DET->CONERADIUS,DET->C_ADJACENCYCUT,DET->C_MAXITERATIONS,DET->C_IRATCH,DET->C_OVERLAPTHRESHOLD);
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| 254 | jetAlgoS.run(towersS, jetsS);
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| 255 |
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| 256 | JetCluAlgorithm jetAlgo(0,DET->CONERADIUS,DET->C_ADJACENCYCUT,DET->C_MAXITERATIONS,DET->C_IRATCH,DET->C_OVERLAPTHRESHOLD);
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| 257 | jetAlgo.run(towers, jets);
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| 258 |
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| 259 |
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| 260 | vector<Cluster>::iterator itJet;
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| 261 | TLorentzVector JETSm(0,0,0,0);
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| 262 | for(itJet = jets.begin(); itJet != jets.end(); ++itJet) {
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| 263 | jetMomentum = itJet->fourVector;
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| 264 | TLorentzVector JET(0,0,0,0);
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| 265 | JET.SetPxPyPzE(jetMomentum.px,jetMomentum.py,jetMomentum.pz,jetMomentum.E);
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| 266 | PairingJet(JETSm,JET,jetsS);
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| 267 | if(JETSm.Pt()>3)
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| 268 | {
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| 269 | elementJet= (RESOLJET*) branchjet->NewEntry();
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| 270 | elementJet->NonSmearePT = JET.Pt();
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| 271 | elementJet->SmearePT = (JETSm.Pt()/JET.Pt());
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| 272 | /*cout<<"valeur obtenue "<<JETSm.Pt()/JET.Pt()<<endl;
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| 273 | cout<<" pt non smeare "<<JET.Pt()<<" phi "<<JET.Phi()<<" eta "<<JET.Eta()<<endl;
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| 274 | cout<<"pt smeare "<<JETSm.Pt()<<" phi "<<JETSm.Phi()<<" eta "<<JETSm.Eta()<<endl;
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| 275 | cout<<"************"<<endl;
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| 276 | */
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| 277 | }
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| 278 |
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| 279 | } // for itJet : loop on all jets
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| 280 |
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| 281 | treeWriter->Fill();
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| 282 | } // Loop over all events
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| 283 | treeWriter->Write();
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| 284 |
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| 285 | cout << "** Exiting..." << endl;
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| 286 |
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| 287 | delete treeWriter;
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| 288 | delete treeReader;
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| 289 | delete DET;
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| 290 | if(converter) delete converter;
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| 291 | }
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| 292 |
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