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MC_JetAnalysis.cc
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00001 // -*- C++ -*-
00002 #include "Rivet/Analyses/MC_JetAnalysis.hh"
00003 #include "Rivet/Projections/FastJets.hh"
00004 
00005 namespace Rivet {
00006 
00007   
00008 
00009 
00010   MC_JetAnalysis::MC_JetAnalysis(const string& name,
00011                                  size_t njet,
00012                                  const string& jetpro_name,
00013                                  double jetptcut)
00014     : Analysis(name), _njet(njet), _jetpro_name(jetpro_name), _jetptcut(jetptcut),
00015       _h_pT_jet(njet),
00016       _h_eta_jet(njet), _h_eta_jet_plus(njet), _h_eta_jet_minus(njet),
00017       _h_rap_jet(njet), _h_rap_jet_plus(njet), _h_rap_jet_minus(njet),
00018       _h_mass_jet(njet)
00019   {
00020     setNeedsCrossSection(true); // legitimate use, since a base class has no .info file!
00021   }
00022 
00023 
00024 
00025   // Book histograms
00026   void MC_JetAnalysis::init() {
00027     const double sqrts = sqrtS() ? sqrtS() : 14000.*GeV;
00028 
00029     for (size_t i = 0; i < _njet; ++i) {
00030       const string pTname = "jet_pT_" + to_str(i+1);
00031       const double pTmax = 1.0/(double(i)+2.0) * sqrts/GeV/2.0;
00032       const int nbins_pT = 100/(i+1);
00033       _h_pT_jet[i] = bookHisto1D(pTname, logspace(nbins_pT, 10.0, pTmax));
00034 
00035       const string massname = "jet_mass_" + to_str(i+1);
00036       const double mmax = 100.0;
00037       const int nbins_m = 100/(i+1);
00038       _h_mass_jet[i] = bookHisto1D(massname, logspace(nbins_m, 1.0, mmax));
00039 
00040       const string etaname = "jet_eta_" + to_str(i+1);
00041       _h_eta_jet[i] = bookHisto1D(etaname, i > 1 ? 25 : 50, -5.0, 5.0);
00042       _h_eta_jet_plus[i].reset(new Histo1D(i > 1 ? 15 : 25, 0, 5));
00043       _h_eta_jet_minus[i].reset(new Histo1D(i > 1 ? 15 : 25, 0, 5));
00044 
00045       const string rapname = "jet_y_" + to_str(i+1);
00046       _h_rap_jet[i] = bookHisto1D(rapname, i>1 ? 25 : 50, -5.0, 5.0);
00047       _h_rap_jet_plus[i].reset(new Histo1D(i > 1 ? 15 : 25, 0, 5));
00048       _h_rap_jet_minus[i].reset(new Histo1D(i > 1 ? 15 : 25, 0, 5));
00049 
00050       for (size_t j = i+1; j < min(size_t(3), _njet); ++j) {
00051         const std::pair<size_t, size_t> ij = std::make_pair(i, j);
00052 
00053         string detaname = "jets_deta_" + to_str(i+1) + to_str(j+1);
00054         _h_deta_jets.insert(make_pair(ij, bookHisto1D(detaname, 25, -5.0, 5.0)));
00055 
00056         string dphiname = "jets_dphi_" + to_str(i+1) + to_str(j+1);
00057         _h_dphi_jets.insert(make_pair(ij, bookHisto1D(dphiname, 25, 0.0, M_PI)));
00058 
00059         string dRname = "jets_dR_" + to_str(i+1) + to_str(j+1);
00060         _h_dR_jets.insert(make_pair(ij, bookHisto1D(dRname, 25, 0.0, 5.0)));
00061       }
00062     }
00063 
00064     _h_jet_multi_exclusive = bookHisto1D("jet_multi_exclusive", _njet+3, -0.5, _njet+3-0.5);
00065     _h_jet_multi_inclusive = bookHisto1D("jet_multi_inclusive", _njet+3, -0.5, _njet+3-0.5);
00066     _h_jet_multi_ratio = bookScatter2D("jet_multi_ratio");
00067     _h_jet_HT = bookHisto1D("jet_HT", logspace(50, _jetptcut, sqrts/GeV/2.0));
00068   }
00069 
00070 
00071   // Do the analysis
00072   void MC_JetAnalysis::analyze(const Event & e) {
00073     const double weight = e.weight();
00074 
00075     const Jets& jets = applyProjection<FastJets>(e, _jetpro_name).jetsByPt(_jetptcut);
00076 
00077     for (size_t i = 0; i < _njet; ++i) {
00078       if (jets.size() < i+1) continue;
00079       _h_pT_jet[i]->fill(jets[i].pT()/GeV, weight);
00080       // Check for numerical precision issues with jet masses
00081       double m2_i = jets[i].mass2();
00082       if (m2_i < 0) {
00083         if (m2_i < -1e-4) {
00084           MSG_WARNING("Jet mass2 is negative: " << m2_i << " GeV^2. "
00085                       << "Truncating to 0.0, assuming numerical precision is to blame.");
00086         }
00087         m2_i = 0.0;
00088       }
00089 
00090       // Jet mass
00091       _h_mass_jet[i]->fill(sqrt(m2_i)/GeV, weight);
00092 
00093       // Jet eta
00094       const double eta_i = jets[i].eta();
00095       _h_eta_jet[i]->fill(eta_i, weight);
00096       (eta_i > 0.0 ? _h_eta_jet_plus : _h_eta_jet_minus)[i]->fill(fabs(eta_i), weight);
00097 
00098       // Jet rapidity
00099       const double rap_i = jets[i].rapidity();
00100       _h_rap_jet[i]->fill(rap_i, weight);
00101       (rap_i > 0.0 ? _h_rap_jet_plus : _h_rap_jet_minus)[i]->fill(fabs(rap_i), weight);
00102 
00103       // Inter-jet properties
00104       for (size_t j = i+1; j < min(size_t(3),_njet); ++j) {
00105         if (jets.size() < j+1) continue;
00106         std::pair<size_t, size_t> ij = std::make_pair(i, j);
00107         double deta = jets[i].eta()-jets[j].eta();
00108         double dphi = deltaPhi(jets[i].momentum(),jets[j].momentum());
00109         double dR = deltaR(jets[i].momentum(), jets[j].momentum());
00110         _h_deta_jets[ij]->fill(deta, weight);
00111         _h_dphi_jets[ij]->fill(dphi, weight);
00112         _h_dR_jets[ij]->fill(dR, weight);
00113       }
00114     }
00115 
00116     // Multiplicities
00117     _h_jet_multi_exclusive->fill(jets.size(), weight);
00118     for (size_t i = 0; i < _njet+2; ++i) {
00119       if (jets.size() >= i) {
00120         _h_jet_multi_inclusive->fill(i, weight);
00121       }
00122     }
00123 
00124     // HT
00125     double HT = 0.0;
00126     foreach (const Jet& jet, jets) {
00127       HT += jet.pT();
00128     }
00129     _h_jet_HT->fill(HT, weight);
00130   }
00131 
00132 
00133   // Finalize
00134   void MC_JetAnalysis::finalize() {
00135     for (size_t i = 0; i < _njet; ++i) {
00136       scale(_h_pT_jet[i], crossSection()/sumOfWeights());
00137       scale(_h_mass_jet[i], crossSection()/sumOfWeights());
00138       scale(_h_eta_jet[i], crossSection()/sumOfWeights());
00139       scale(_h_rap_jet[i], crossSection()/sumOfWeights());
00140 
00141       // Create eta/rapidity ratio plots
00142       divide(*_h_eta_jet_plus[i], *_h_eta_jet_minus[i], bookScatter2D("jet_eta_pmratio_" + to_str(i+1)));
00143       divide(*_h_rap_jet_plus[i], *_h_rap_jet_minus[i], bookScatter2D("jet_y_pmratio_" + to_str(i+1)));
00144     }
00145 
00146     // Scale the d{eta,phi,R} histograms
00147     typedef map<pair<size_t, size_t>, Histo1DPtr> HistMap;
00148     foreach (HistMap::value_type& it, _h_deta_jets) scale(it.second, crossSection()/sumOfWeights());
00149     foreach (HistMap::value_type& it, _h_dphi_jets) scale(it.second, crossSection()/sumOfWeights());
00150     foreach (HistMap::value_type& it, _h_dR_jets) scale(it.second, crossSection()/sumOfWeights());
00151 
00152     // Fill inclusive jet multi ratio
00153     int Nbins = _h_jet_multi_inclusive->numBins();
00154     for (int i = 0; i < Nbins-1; ++i) {
00155       _h_jet_multi_ratio->addPoint(i+1, 0, 0.5, 0);
00156       if (_h_jet_multi_inclusive->bin(i).sumW() > 0.0) {
00157         const double ratio = _h_jet_multi_inclusive->bin(i+1).sumW()/_h_jet_multi_inclusive->bin(i).sumW();
00158         const double relerr_i = _h_jet_multi_inclusive->bin(i).relErr();
00159         const double relerr_j = _h_jet_multi_inclusive->bin(i+1).relErr();
00160         const double err = ratio * (relerr_i + relerr_j);
00161         _h_jet_multi_ratio->point(i).setY(ratio, err);
00162       }
00163     }
00164 
00165     scale(_h_jet_multi_exclusive, crossSection()/sumOfWeights());
00166     scale(_h_jet_multi_inclusive, crossSection()/sumOfWeights());
00167     scale(_h_jet_HT, crossSection()/sumOfWeights());
00168   }
00169 
00170 
00171 }