CDF_2010_S8591881_DY.cc
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00001 // -*- C++ -*- 00002 #include "Rivet/Analysis.hh" 00003 #include "Rivet/Projections/ChargedFinalState.hh" 00004 #include "Rivet/Projections/ChargedLeptons.hh" 00005 00006 namespace Rivet { 00007 00008 00009 /// @brief CDF Run II underlying event in Drell-Yan 00010 /// @author Hendrik Hoeth 00011 /// 00012 /// Measurement of the underlying event in Drell-Yan 00013 /// \f$ Z/\gamma^* \to e^+ e^- \f$ and 00014 /// \f$ Z/\gamma^* \to \mu^+ \mu^- \f$ events. The reconstructed 00015 /// Z defines the \f$ \phi \f$ orientation. A Z mass window cut is applied. 00016 /// 00017 /// @par Run conditions 00018 /// 00019 /// @arg \f$ \sqrt{s} = \f$ 1960 GeV 00020 /// @arg produce Drell-Yan events 00021 /// @arg Set particles with c*tau > 10 mm stable 00022 /// @arg Z decay mode: Z -> e+e- and Z -> mu+mu- 00023 /// @arg gamma decay mode: gamma -> e+e- and gamma -> mu+mu- 00024 /// @arg minimum invariant mass of the fermion pair coming from the Z/gamma: 70 GeV 00025 class CDF_2010_S8591881_DY : public Analysis { 00026 public: 00027 00028 /// Constructor 00029 CDF_2010_S8591881_DY() : Analysis("CDF_2010_S8591881_DY") 00030 { 00031 } 00032 00033 00034 /// @name Analysis methods 00035 //@{ 00036 00037 void init() { 00038 // Set up projections 00039 const ChargedFinalState cfs(-1.0, 1.0, 0.5*GeV); 00040 const ChargedFinalState clfs(-1.0, 1.0, 20*GeV); 00041 addProjection(cfs, "FS"); 00042 addProjection(ChargedLeptons(clfs), "CL"); 00043 00044 // Book histograms 00045 _hist_tnchg = bookProfile1D( 1, 1, 1); 00046 _hist_pnchg = bookProfile1D( 1, 1, 2); 00047 _hist_anchg = bookProfile1D( 1, 1, 3); 00048 _hist_pmaxnchg = bookProfile1D( 2, 1, 1); 00049 _hist_pminnchg = bookProfile1D( 2, 1, 2); 00050 _hist_pdifnchg = bookProfile1D( 2, 1, 3); 00051 _hist_tcptsum = bookProfile1D( 3, 1, 1); 00052 _hist_pcptsum = bookProfile1D( 3, 1, 2); 00053 _hist_acptsum = bookProfile1D( 3, 1, 3); 00054 _hist_pmaxcptsum = bookProfile1D( 4, 1, 1); 00055 _hist_pmincptsum = bookProfile1D( 4, 1, 2); 00056 _hist_pdifcptsum = bookProfile1D( 4, 1, 3); 00057 _hist_tcptave = bookProfile1D( 5, 1, 1); 00058 _hist_pcptave = bookProfile1D( 5, 1, 2); 00059 _hist_tcptmax = bookProfile1D( 6, 1, 1); 00060 _hist_pcptmax = bookProfile1D( 6, 1, 2); 00061 _hist_zptvsnchg = bookProfile1D( 7, 1, 1); 00062 _hist_cptavevsnchg = bookProfile1D( 8, 1, 1); 00063 _hist_cptavevsnchgsmallzpt = bookProfile1D( 9, 1, 1); 00064 } 00065 00066 00067 /// Do the analysis 00068 void analyze(const Event& e) { 00069 00070 const FinalState& fs = applyProjection<FinalState>(e, "FS"); 00071 const size_t numParticles = fs.particles().size(); 00072 00073 // Even if we only generate hadronic events, we still need a cut on numCharged >= 2. 00074 if (numParticles < 1) { 00075 MSG_DEBUG("Failed multiplicity cut"); 00076 vetoEvent; 00077 } 00078 00079 // Get the event weight 00080 const double weight = e.weight(); 00081 00082 // Get the leptons 00083 const Particles& leptons = applyProjection<ChargedLeptons>(e, "CL").chargedLeptons(); 00084 00085 // We want exactly two leptons of the same flavour. 00086 MSG_DEBUG("lepton multiplicity = " << leptons.size()); 00087 if (leptons.size() != 2 || leptons[0].pdgId() != -leptons[1].pdgId() ) vetoEvent; 00088 00089 // Lepton pT > 20 GeV 00090 if (leptons[0].pT()/GeV <= 20 || leptons[1].pT()/GeV <= 20) vetoEvent; 00091 00092 // Lepton pair should have an invariant mass between 70 and 110 and |eta| < 6 00093 const FourMomentum dilepton = leptons[0].momentum() + leptons[1].momentum(); 00094 if (!inRange(dilepton.mass()/GeV, 70., 110.) || fabs(dilepton.eta()) >= 6) vetoEvent; 00095 MSG_DEBUG("Dilepton mass = " << mass(dilepton)/GeV << " GeV"); 00096 MSG_DEBUG("Dilepton pT = " << pT(dilepton)/GeV << " GeV"); 00097 00098 // Calculate the observables 00099 size_t numToward(0), numAway(0); 00100 long int numTrans1(0), numTrans2(0); 00101 double ptSumToward(0.0), ptSumTrans1(0.0), ptSumTrans2(0.0), ptSumAway(0.0); 00102 double ptMaxToward(0.0), ptMaxTrans1(0.0), ptMaxTrans2(0.0), ptMaxAway(0.0); 00103 const double phiZ = azimuthalAngle(dilepton); 00104 const double pTZ = pT(dilepton); 00105 /// @todo Replace with foreach 00106 for (Particles::const_iterator p = fs.particles().begin(); p != fs.particles().end(); ++p) { 00107 // Don't use the leptons 00108 /// @todo Replace with PID::isLepton 00109 if (abs(p->pdgId()) < 20) continue; 00110 00111 const double dPhi = deltaPhi(p->momentum().phi(), phiZ); 00112 const double pT = p->pT(); 00113 double rotatedphi = p->momentum().phi() - phiZ; 00114 while (rotatedphi < 0) rotatedphi += 2*PI; 00115 00116 if (dPhi < PI/3.0) { 00117 ptSumToward += pT; 00118 ++numToward; 00119 if (pT > ptMaxToward) 00120 ptMaxToward = pT; 00121 } else if (dPhi < 2*PI/3.0) { 00122 if (rotatedphi <= PI) { 00123 ptSumTrans1 += pT; 00124 ++numTrans1; 00125 if (pT > ptMaxTrans1) 00126 ptMaxTrans1 = pT; 00127 } 00128 else { 00129 ptSumTrans2 += pT; 00130 ++numTrans2; 00131 if (pT > ptMaxTrans2) 00132 ptMaxTrans2 = pT; 00133 } 00134 } else { 00135 ptSumAway += pT; 00136 ++numAway; 00137 if (pT > ptMaxAway) 00138 ptMaxAway = pT; 00139 } 00140 // We need to subtract the two leptons from the number of particles to get the correct multiplicity 00141 _hist_cptavevsnchg->fill(numParticles-2, pT, weight); 00142 if (pTZ < 10) 00143 _hist_cptavevsnchgsmallzpt->fill(numParticles-2, pT, weight); 00144 } 00145 00146 // Fill the histograms 00147 _hist_tnchg->fill(pTZ, numToward/(4*PI/3), weight); 00148 _hist_pnchg->fill(pTZ, (numTrans1+numTrans2)/(4*PI/3), weight); 00149 _hist_pmaxnchg->fill(pTZ, (numTrans1>numTrans2 ? numTrans1 : numTrans2)/(2*PI/3), weight); 00150 _hist_pminnchg->fill(pTZ, (numTrans1<numTrans2 ? numTrans1 : numTrans2)/(2*PI/3), weight); 00151 _hist_pdifnchg->fill(pTZ, abs(numTrans1-numTrans2)/(2*PI/3), weight); 00152 _hist_anchg->fill(pTZ, numAway/(4*PI/3), weight); 00153 00154 _hist_tcptsum->fill(pTZ, ptSumToward/(4*PI/3), weight); 00155 _hist_pcptsum->fill(pTZ, (ptSumTrans1+ptSumTrans2)/(4*PI/3), weight); 00156 _hist_pmaxcptsum->fill(pTZ, (ptSumTrans1>ptSumTrans2 ? ptSumTrans1 : ptSumTrans2)/(2*PI/3), weight); 00157 _hist_pmincptsum->fill(pTZ, (ptSumTrans1<ptSumTrans2 ? ptSumTrans1 : ptSumTrans2)/(2*PI/3), weight); 00158 _hist_pdifcptsum->fill(pTZ, fabs(ptSumTrans1-ptSumTrans2)/(2*PI/3), weight); 00159 _hist_acptsum->fill(pTZ, ptSumAway/(4*PI/3), weight); 00160 00161 if (numToward > 0) { 00162 _hist_tcptave->fill(pTZ, ptSumToward/numToward, weight); 00163 _hist_tcptmax->fill(pTZ, ptMaxToward, weight); 00164 } 00165 if ((numTrans1+numTrans2) > 0) { 00166 _hist_pcptave->fill(pTZ, (ptSumTrans1+ptSumTrans2)/(numTrans1+numTrans2), weight); 00167 _hist_pcptmax->fill(pTZ, (ptMaxTrans1 > ptMaxTrans2 ? ptMaxTrans1 : ptMaxTrans2), weight); 00168 } 00169 00170 // We need to subtract the two leptons from the number of particles to get the correct multiplicity 00171 _hist_zptvsnchg->fill(numParticles-2, pTZ, weight); 00172 } 00173 00174 00175 void finalize() { 00176 } 00177 00178 //@} 00179 00180 00181 private: 00182 00183 Profile1DPtr _hist_tnchg; 00184 Profile1DPtr _hist_pnchg; 00185 Profile1DPtr _hist_pmaxnchg; 00186 Profile1DPtr _hist_pminnchg; 00187 Profile1DPtr _hist_pdifnchg; 00188 Profile1DPtr _hist_anchg; 00189 Profile1DPtr _hist_tcptsum; 00190 Profile1DPtr _hist_pcptsum; 00191 Profile1DPtr _hist_pmaxcptsum; 00192 Profile1DPtr _hist_pmincptsum; 00193 Profile1DPtr _hist_pdifcptsum; 00194 Profile1DPtr _hist_acptsum; 00195 Profile1DPtr _hist_tcptave; 00196 Profile1DPtr _hist_pcptave; 00197 Profile1DPtr _hist_tcptmax; 00198 Profile1DPtr _hist_pcptmax; 00199 Profile1DPtr _hist_zptvsnchg; 00200 Profile1DPtr _hist_cptavevsnchg; 00201 Profile1DPtr _hist_cptavevsnchgsmallzpt; 00202 00203 }; 00204 00205 00206 00207 // The hook for the plugin system 00208 DECLARE_RIVET_PLUGIN(CDF_2010_S8591881_DY); 00209 00210 } Generated on Fri Oct 25 2013 12:41:44 for The Rivet MC analysis system by ![]() |