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FastJet 3.0alpha3
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00001 //---------------------------------------------------------------------- 00002 /// \file 00003 /// \page Example07 07 - subtracting jet background contamination 00004 /// 00005 /// fastjet subtraction example program. 00006 /// 00007 /// run it with : ./07-subtraction < data/Pythia-Zp2jets-lhc-pileup-1ev.dat 00008 /// 00009 /// Source code: 07-subtraction.cc 00010 //---------------------------------------------------------------------- 00011 00012 //STARTHEADER 00013 // $Id: 07-subtraction.cc 1911 2011-01-28 18:18:24Z soyez $ 00014 // 00015 // Copyright (c) 2005-2011, Matteo Cacciari, Gavin Salam and Gregory Soyez 00016 // 00017 //---------------------------------------------------------------------- 00018 // This file is part of FastJet. 00019 // 00020 // FastJet is free software; you can redistribute it and/or modify 00021 // it under the terms of the GNU General Public License as published by 00022 // the Free Software Foundation; either version 2 of the License, or 00023 // (at your option) any later version. 00024 // 00025 // The algorithms that underlie FastJet have required considerable 00026 // development and are described in hep-ph/0512210. If you use 00027 // FastJet as part of work towards a scientific publication, please 00028 // include a citation to the FastJet paper. 00029 // 00030 // FastJet is distributed in the hope that it will be useful, 00031 // but WITHOUT ANY WARRANTY; without even the implied warranty of 00032 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 00033 // GNU General Public License for more details. 00034 // 00035 // You should have received a copy of the GNU General Public License 00036 // along with FastJet; if not, write to the Free Software 00037 // Foundation, Inc.: 00038 // 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA 00039 //---------------------------------------------------------------------- 00040 //ENDHEADER 00041 00042 #include "fastjet/PseudoJet.hh" 00043 #include "fastjet/ClusterSequenceArea.hh" 00044 #include "fastjet/Selector.hh" 00045 #include "fastjet/tools/BackgroundEstimator.hh" 00046 #include "fastjet/tools/Subtractor.hh" 00047 #include <iostream> // needed for io 00048 00049 using namespace std; 00050 using namespace fastjet; 00051 00052 int main (int argc, char ** argv) { 00053 00054 // read in input particles 00055 // 00056 // since we use here simulated data we can split the hard event 00057 // from the full (i.e. with pileup added) one 00058 //---------------------------------------------------------- 00059 00060 vector<fastjet::PseudoJet> hard_event, full_event; 00061 00062 // read in input particles. Keep the hard event generated by PYTHIA 00063 // separated from the full event, so as to be able to gauge the 00064 // "goodness" of the subtraction from the full event, which also 00065 // includes pileup 00066 double particle_maxrap = 5.0; 00067 00068 string line; 00069 int nsub = 0; // counter to keep track of which sub-event we're reading 00070 while (getline(cin, line)) { 00071 istringstream linestream(line); 00072 // take substrings to avoid problems when there are extra "pollution" 00073 // characters (e.g. line-feed). 00074 if (line.substr(0,4) == "#END") {break;} 00075 if (line.substr(0,9) == "#SUBSTART") { 00076 // if more sub events follow, make copy of first one (the hard one) here 00077 if (nsub == 1) hard_event = full_event; 00078 nsub += 1; 00079 } 00080 if (line.substr(0,1) == "#") {continue;} 00081 double px,py,pz,E; 00082 linestream >> px >> py >> pz >> E; 00083 // you can construct 00084 fastjet::PseudoJet particle(px,py,pz,E); 00085 00086 // push event onto back of full_event vector 00087 if (abs(particle.rap()) <= particle_maxrap) full_event.push_back(particle); 00088 } 00089 00090 // if we have read in only one event, copy it across here... 00091 if (nsub == 1) hard_event = full_event; 00092 00093 // if there was nothing in the event 00094 if (nsub == 0) { 00095 cerr << "Error: read empty event\n"; 00096 exit(-1); 00097 } 00098 00099 00100 // create a jet definition for the clustering 00101 // We use the anti-kt algorithm with a radius of 0.5 00102 //---------------------------------------------------------- 00103 double R = 0.5; 00104 fastjet::JetDefinition jet_def(fastjet::antikt_algorithm, R); 00105 00106 // create an area definition for the clustering 00107 //---------------------------------------------------------- 00108 // ghosts should go up to the acceptance of the detector or 00109 // (with infinite acceptance) at least 2R beyond the region 00110 // where you plan to investigate jets. 00111 double ghost_maxrap = 6.0; 00112 fastjet::ActiveAreaSpec area_spec(ghost_maxrap); 00113 fastjet::AreaDefinition area_def(fastjet::active_area, area_spec); 00114 00115 // run the jet clustering with the above jet and area definitions 00116 // for both the hard and full event 00117 // 00118 // We retrieve the jets above 7 GeV in both case (note that the 00119 // 7-GeV cut we be applied again later on after we subtract the jets 00120 // from the full event) 00121 // ---------------------------------------------------------- 00122 fastjet::ClusterSequenceArea clust_seq_hard(hard_event, jet_def, area_def); 00123 fastjet::ClusterSequenceArea clust_seq_full(full_event, jet_def, area_def); 00124 00125 double ptmin = 7.0; 00126 vector<fastjet::PseudoJet> hard_jets = sorted_by_pt(clust_seq_hard.inclusive_jets(ptmin)); 00127 vector<fastjet::PseudoJet> full_jets = sorted_by_pt(clust_seq_full.inclusive_jets(ptmin)); 00128 00129 // Now turn to the estimation of the background (for the full event) 00130 // 00131 // This also requires a ClusterSequenceArea. 00132 // In general, this ClusterSequenceArea does not need to be the same 00133 // as the one used (above) to cluster and extract the jets from the 00134 // event: 00135 // - We strongly recommend using the kt or Cambridge/Aachen algorithm 00136 // (a warning will be issued otherwise) 00137 // - The choice of the radius is a bit more subtle. R=0.4 has been 00138 // chosen to limit the impact of hard jets; in samples of 00139 // dominantly sparse events it may cause the UE/pileup to be 00140 // underestimated a little, a slightly larger value (0.5 or 0.6) 00141 // may be better. 00142 // - For the area definition, we recommend the use of explicit 00143 // ghosts (i.e. active_area_explicit_ghosts) 00144 // As mentionned in the area example (06-area.cc), ghosts should 00145 // extend sufficiently far in rapidity to cover the jets used in 00146 // the computation of the background (see also the comment below) 00147 // 00148 // ---------------------------------------------------------- 00149 fastjet::JetDefinition jet_def_bkgd(fastjet::kt_algorithm, 0.4); 00150 fastjet::GhostedAreaSpec area_spec_bkgd(ghost_maxrap); 00151 fastjet::AreaDefinition area_def_bkgd(fastjet::active_area_explicit_ghosts, area_spec_bkgd); 00152 fastjet::ClusterSequenceArea clust_seq_bkgd(full_event, jet_def_bkgd, area_def_bkgd); 00153 00154 // Once you have the ClusterSequenceArea, you can compute the 00155 // background. This is estimated over a given range 00156 // (RangeDefinition) i.e. only jets within that range will be used 00157 // to estimate the background. You shold thus make sure the ghosts 00158 // extend far enough in rapidity to cover the range, a warning will 00159 // be issued otherwise. 00160 // 00161 // The simplest way to define a RangeDefinition is through its 00162 // maximal |y| extent but other options are possible e.g. through a 00163 // minimal and maximal rapidity and minimal and maximal azimuthal 00164 // angle. If needed, you can even define your own ranges (a few are 00165 // provided with FastJet) 00166 // 00167 // Finally, the estimation of the background properties rho (the 00168 // average density per unit area) and sigma (the average 00169 // fluctuations per unit area) is done using 00170 // ClusterSequenceArea::get_median_rho_and_sigma(). This takes 00171 // 2 main parameters: the range discussed above and a boolean 00172 // controlling the use of 4-vector or scalar areas (we suggest using 00173 // 4-vector areas) 00174 // 00175 // ---------------------------------------------------------- 00176 Selector selector = SelectorAbsRapMax(4.5); 00177 BackgroundEstimator bkgd_estimator(clust_seq_bkgd, selector); 00178 Subtractor subtractor(&bkgd_estimator); 00179 00180 // show a summary of what was done so far 00181 // - the description of the algorithms, areas and ranges used 00182 // - the background properties 00183 // - the jets in the hard event 00184 //---------------------------------------------------------- 00185 cout << "Main clustering:" << endl; 00186 cout << " Ran: " << jet_def.description() << endl; 00187 cout << " Area: " << area_def.description() << endl; 00188 cout << " Particles up to |y|=" << particle_maxrap << endl; 00189 cout << endl; 00190 00191 cout << "Background estimation:" << endl; 00192 cout << " Ran " << jet_def_bkgd.description() << endl; 00193 cout << " Area: " << area_def_bkgd.description() << endl; 00194 cout << " Selector: " << selector.description() << endl; 00195 cout << " Giving, for the full event" << endl; 00196 cout << " rho = " << bkgd_estimator.rho() << endl; 00197 cout << " sigma = " << bkgd_estimator.sigma() << endl; 00198 cout << endl; 00199 00200 cout << "Jets above " << ptmin << " GeV in the hard event (" << hard_event.size() << " particles)" << endl; 00201 cout << "---------------------------------------\n"; 00202 printf("%5s %15s %15s %15s %15s\n","jet #", "rapidity", "phi", "pt", "area"); 00203 for (unsigned int i = 0; i < hard_jets.size(); i++) { 00204 printf("%5u %15.8f %15.8f %15.8f %15.8f\n", i, 00205 hard_jets[i].rap(), hard_jets[i].phi(), hard_jets[i].perp(), 00206 hard_jets[i].area()); 00207 } 00208 cout << endl; 00209 00210 // Once the background properties have been computed, subtraction 00211 // can be applied on the jets. Subtraction is performed on the 00212 // full 4-vector 00213 // 00214 // We output the jets before and after subtraction 00215 // ---------------------------------------------------------- 00216 cout << "Jets above " << ptmin << " GeV in the full event (" << full_event.size() << " particles)" << endl; 00217 cout << "---------------------------------------\n"; 00218 printf("%5s %15s %15s %15s %15s %15s %15s %15s\n","jet #", "rapidity", "phi", "pt", "area", "rap_sub", "phi_sub", "pt_sub"); 00219 unsigned int idx=0; 00220 00221 // get the subtracted jets 00222 vector<PseudoJet> subtracted_jets = subtractor(full_jets); 00223 00224 for (unsigned int i=0; i<full_jets.size(); i++){ 00225 // re-apply the pt cut 00226 if (subtracted_jets[i].perp2() >= ptmin*ptmin){ 00227 printf("%5u %15.8f %15.8f %15.8f %15.8f %15.8f %15.8f %15.8f\n", idx, 00228 full_jets[i].rap(), full_jets[i].phi(), full_jets[i].perp(), 00229 full_jets[i].area(), 00230 subtracted_jets[i].rap(), subtracted_jets[i].phi(), 00231 subtracted_jets[i].perp()); 00232 idx++; 00233 } 00234 } 00235 00236 return 0; 00237 }
1.7.4