1 | //STARTHEADER
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2 | // $Id: ClusterSequence.hh,v 1.1 2008-11-06 14:32:07 ovyn Exp $
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3 | //
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4 | // Copyright (c) 2005-2006, Matteo Cacciari and Gavin Salam
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5 | //
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6 | //----------------------------------------------------------------------
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7 | // This file is part of FastJet.
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8 | //
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9 | // FastJet is free software; you can redistribute it and/or modify
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10 | // it under the terms of the GNU General Public License as published by
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11 | // the Free Software Foundation; either version 2 of the License, or
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12 | // (at your option) any later version.
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13 | //
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14 | // The algorithms that underlie FastJet have required considerable
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15 | // development and are described in hep-ph/0512210. If you use
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16 | // FastJet as part of work towards a scientific publication, please
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17 | // include a citation to the FastJet paper.
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18 | //
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19 | // FastJet is distributed in the hope that it will be useful,
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20 | // but WITHOUT ANY WARRANTY; without even the implied warranty of
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21 | // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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22 | // GNU General Public License for more details.
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23 | //
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24 | // You should have received a copy of the GNU General Public License
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25 | // along with FastJet; if not, write to the Free Software
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26 | // Foundation, Inc.:
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27 | // 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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28 | //----------------------------------------------------------------------
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29 | //ENDHEADER
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30 |
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31 |
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32 | //----------------------------------------------------------------------
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33 | // here's where we put the main page for fastjet (as explained in the
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34 | // Doxygen faq)
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35 | //......................................................................
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36 | /*! \mainpage FastJet code documentation
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37 | *
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38 | * These pages provide automatically generated documentation for the
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39 | * FastJet package.
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40 | *
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41 | * For further information and normal documentation, see the main <a
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42 | * href="http://www.lpthe.jussieu.fr/~salam/fastjet">FastJet</a> page.
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43 | */
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44 | //----------------------------------------------------------------------
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45 |
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46 | #ifndef __FASTJET_CLUSTERSEQUENCE_HH__
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47 | #define __FASTJET_CLUSTERSEQUENCE_HH__
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48 |
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49 | #include<vector>
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50 | #include<map>
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51 | #include "Utilities/Fastjet/include/fastjet/internal/DynamicNearestNeighbours.hh"
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52 | #include "Utilities/Fastjet/include/fastjet/PseudoJet.hh"
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53 | #include<memory>
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54 | #include<cassert>
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55 | #include<iostream>
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56 | #include<string>
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57 | #include<cmath> // needed to get double std::abs(double)
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58 | #include "Utilities/Fastjet/include/fastjet/Error.hh"
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59 | #include "Utilities/Fastjet/include/fastjet/JetDefinition.hh"
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60 |
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61 | FASTJET_BEGIN_NAMESPACE // defined in fastjet/internal/base.hh
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62 |
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63 |
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64 | /// deals with clustering
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65 | class ClusterSequence {
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66 |
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67 |
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68 | public:
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69 |
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70 | /// default constructor
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71 | ClusterSequence () {}
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72 |
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73 | /// create a clustersequence starting from the supplied set
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74 | /// of pseudojets and clustering them with the long-invariant
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75 | /// kt algorithm (E-scheme recombination) with the supplied
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76 | /// value for R.
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77 | ///
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78 | /// If strategy=DumbN3 a very stupid N^3 algorithm is used for the
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79 | /// clustering; otherwise strategy = NlnN* uses cylinders algorithms
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80 | /// with some number of pi coverage. If writeout_combinations=true a
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81 | /// summary of the recombination sequence is written out
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82 | template<class L> ClusterSequence (const std::vector<L> & pseudojets,
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83 | const double & R = 1.0,
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84 | const Strategy & strategy = Best,
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85 | const bool & writeout_combinations = false);
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86 |
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87 |
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88 | /// create a clustersequence starting from the supplied set
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89 | /// of pseudojets and clustering them with jet definition specified
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90 | /// by jet_def (which also specifies the clustering strategy)
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91 | template<class L> ClusterSequence (
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92 | const std::vector<L> & pseudojets,
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93 | const JetDefinition & jet_def,
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94 | const bool & writeout_combinations = false);
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95 |
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96 |
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97 | // NB: in the routines that follow, for extracting lists of jets, a
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98 | // list structure might be more efficient, if sometimes a little
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99 | // more awkward to use (at least for old fortran hands).
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100 |
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101 | /// return a vector of all jets (in the sense of the inclusive
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102 | /// algorithm) with pt >= ptmin. Time taken should be of the order
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103 | /// of the number of jets returned.
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104 | std::vector<PseudoJet> inclusive_jets (const double & ptmin = 0.0) const;
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105 |
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106 | /// return the number of jets (in the sense of the exclusive
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107 | /// algorithm) that would be obtained when running the algorithm
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108 | /// with the given dcut.
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109 | int n_exclusive_jets (const double & dcut) const;
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110 |
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111 | /// return a vector of all jets (in the sense of the exclusive
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112 | /// algorithm) that would be obtained when running the algorithm
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113 | /// with the given dcut.
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114 | std::vector<PseudoJet> exclusive_jets (const double & dcut) const;
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115 |
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116 | /// return a vector of all jets when the event is clustered (in the
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117 | /// exclusive sense) to exactly njets.
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118 | std::vector<PseudoJet> exclusive_jets (const int & njets) const;
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119 |
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120 | /// return the dmin corresponding to the recombination that went from
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121 | /// n+1 to n jets (sometimes known as d_{n n+1}).
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122 | double exclusive_dmerge (const int & njets) const;
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123 |
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124 | /// return the maximum of the dmin encountered during all recombinations
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125 | /// up to the one that led to an n-jet final state; identical to
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126 | /// exclusive_dmerge, except in cases where the dmin do not increase
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127 | /// monotonically.
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128 | double exclusive_dmerge_max (const int & njets) const;
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129 |
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130 | /// returns true iff the object is included in the jet.
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131 | ///
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132 | /// NB: this is only sensible if the object is already registered
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133 | /// within the cluster sequence, so you cannot use it with an input
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134 | /// particle to the CS (since the particle won't have the history
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135 | /// index set properly).
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136 | ///
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137 | /// For nice clustering structures it should run in O(ln(N)) time
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138 | /// but in worst cases (certain cone plugins) it can take O(n) time,
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139 | /// where n is the number of particles in the jet.
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140 | bool object_in_jet(const PseudoJet & object, const PseudoJet & jet) const;
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141 |
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142 | /// if the jet has parents in the clustering, it returns true
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143 | /// and sets parent1 and parent2 equal to them.
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144 | ///
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145 | /// if it has no parents it returns false and sets parent1 and
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146 | /// parent2 to zero
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147 | bool has_parents(const PseudoJet & jet, PseudoJet & parent1,
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148 | PseudoJet & parent2) const;
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149 |
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150 | /// if the jet has a child then return true and give the child jet
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151 | /// otherwise return false and set the child to zero
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152 | bool has_child(const PseudoJet & jet, PseudoJet & child) const;
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153 |
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154 | /// Version of has_child that sets a pointer to the child if the child
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155 | /// exists;
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156 | bool has_child(const PseudoJet & jet, const PseudoJet * & childp) const;
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157 |
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158 | /// if this jet has a child (and so a partner) return true
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159 | /// and give the partner, otherwise return false and set the
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160 | /// partner to zero
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161 | bool has_partner(const PseudoJet & jet, PseudoJet & partner) const;
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162 |
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163 | /// return a vector of the particles that make up jet
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164 | std::vector<PseudoJet> constituents (const PseudoJet & jet) const;
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165 |
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166 |
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167 | /// output the supplied vector of jets in a format that can be read
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168 | /// by an appropriate root script; the format is:
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169 | /// jet-n jet-px jet-py jet-pz jet-E
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170 | /// particle-n particle-rap particle-phi particle-pt
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171 | /// particle-n particle-rap particle-phi particle-pt
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172 | /// ...
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173 | /// #END
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174 | /// ... [i.e. above repeated]
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175 | void print_jets_for_root(const std::vector<PseudoJet> & jets,
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176 | std::ostream & ostr = std::cout) const;
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177 |
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178 | // Not yet. Perhaps in a future release.
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179 | // /// print out all inclusive jets with pt > ptmin
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180 | // virtual void print_jets (const double & ptmin=0.0) const;
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181 |
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182 | /// add on to subjet_vector the subjets of jet (for internal use mainly)
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183 | void add_constituents (const PseudoJet & jet,
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184 | std::vector<PseudoJet> & subjet_vector) const;
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185 |
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186 | /// return the enum value of the strategy used to cluster the event
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187 | inline Strategy strategy_used () const {return _strategy;}
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188 | std::string strategy_string () const;
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189 |
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190 | /// return a reference to the jet definition
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191 | const JetDefinition & jet_def() const {return _jet_def;}
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192 |
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193 | /// returns the scale associated with a jet as required for this
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194 | /// clustering algorithm (kt^2 for the kt-algorithm, 1 for the
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195 | /// Cambridge algorithm). [May become virtual at some point]
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196 | double jet_scale_for_algorithm(const PseudoJet & jet) const;
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197 |
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198 | //----- next follow functions designed specifically for plugins, which
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199 | // may only be called when plugin_activated() returns true
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200 |
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201 | /// record the fact that there has been a recombination between
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202 | /// jets()[jet_i] and jets()[jet_k], with the specified dij, and
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203 | /// return the index (newjet_k) allocated to the new jet, whose
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204 | /// momentum is assumed to be the 4-vector sum of that of jet_i and
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205 | /// jet_j
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206 | void plugin_record_ij_recombination(int jet_i, int jet_j, double dij,
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207 | int & newjet_k) {
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208 | assert(plugin_activated());
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209 | _do_ij_recombination_step(jet_i, jet_j, dij, newjet_k);
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210 | }
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211 |
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212 | /// as for the simpler variant of plugin_record_ij_recombination,
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213 | /// except that the new jet is attributed the momentum and
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214 | /// user_index of newjet
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215 | void plugin_record_ij_recombination(int jet_i, int jet_j, double dij,
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216 | const PseudoJet & newjet,
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217 | int & newjet_k);
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218 |
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219 | /// record the fact that there has been a recombination between
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220 | /// jets()[jet_i] and the beam, with the specified diB; when looking
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221 | /// for inclusive jets, any iB recombination will returned to the user
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222 | /// as a jet.
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223 | void plugin_record_iB_recombination(int jet_i, double diB) {
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224 | assert(plugin_activated());
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225 | _do_iB_recombination_step(jet_i, diB);
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226 | }
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227 |
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228 | /// a class intended to serve as a base in case a plugin needs to
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229 | /// associate extra information with a ClusterSequence (see
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230 | /// SISConePlugin.* for an example).
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231 | class Extras {
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232 | public:
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233 | virtual ~Extras() {}
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234 | virtual std::string description() const {return "This is a dummy extras class that contains no extra information! Derive from it if you want to use it to provide extra information from a plugin jet finder";}
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235 | };
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236 |
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237 | /// the plugin can associated some extra information with the
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238 | /// ClusterSequence object by calling this function
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239 | inline void plugin_associate_extras(std::auto_ptr<Extras> extras_in) {
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240 | _extras = extras_in;
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241 | }
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242 |
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243 | /// returns true when the plugin is allowed to run the show.
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244 | inline bool plugin_activated() const {return _plugin_activated;}
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245 |
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246 | /// returns a pointer to the extras object (may be null)
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247 | const Extras * extras() const {return _extras.get();}
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248 |
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249 | public:
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250 | /// set the default (static) jet finder across all current and future
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251 | /// ClusterSequence objects -- deprecated and obsolescent (i.e. may be
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252 | /// suppressed in a future release).
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253 | static void set_jet_algorithm (JetAlgorithm jet_algorithm) {_default_jet_algorithm = jet_algorithm;}
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254 | /// same as above for backward compatibility
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255 | static void set_jet_finder (JetAlgorithm jet_algorithm) {_default_jet_algorithm = jet_algorithm;}
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256 |
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257 |
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258 | /// a single element in the clustering history (see vector _history
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259 | /// below).
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260 | struct history_element{
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261 | int parent1; /// index in _history where first parent of this jet
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262 | /// was created (InexistentParent if this jet is an
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263 | /// original particle)
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264 |
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265 | int parent2; /// index in _history where second parent of this jet
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266 | /// was created (InexistentParent if this jet is an
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267 | /// original particle); BeamJet if this history entry
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268 | /// just labels the fact that the jet has recombined
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269 | /// with the beam)
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270 |
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271 | int child; /// index in _history where the current jet is
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272 | /// recombined with another jet to form its child. It
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273 | /// is Invalid if this jet does not further
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274 | /// recombine.
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275 |
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276 | int jetp_index; /// index in the _jets vector where we will find the
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277 | /// PseudoJet object corresponding to this jet
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278 | /// (i.e. the jet created at this entry of the
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279 | /// history). NB: if this element of the history
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280 | /// corresponds to a beam recombination, then
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281 | /// jetp_index=Invalid.
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282 |
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283 | double dij; /// the distance corresponding to the recombination
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284 | /// at this stage of the clustering.
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285 |
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286 | double max_dij_so_far; /// the largest recombination distance seen
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287 | /// so far in the clustering history.
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288 | };
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289 |
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290 | enum JetType {Invalid=-3, InexistentParent = -2, BeamJet = -1};
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291 |
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292 | /// allow the user to access the jets in this raw manner (needed
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293 | /// because we don't seem to be able to access protected elements of
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294 | /// the class for an object that is not "this" (at least in case where
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295 | /// "this" is of a slightly different kind from the object, both
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296 | /// derived from ClusterSequence).
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297 | const std::vector<PseudoJet> & jets() const;
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298 |
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299 | /// allow the user to access the history in this raw manner (see
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300 | /// above for motivation).
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301 | const std::vector<history_element> & history() const;
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302 |
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303 | /// returns the number of particles that were provided to the
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304 | /// clustering algorithm (helps the user find their way around the
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305 | /// history and jets objects if they weren't paying attention
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306 | /// beforehand).
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307 | unsigned int n_particles() const;
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308 |
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309 | /// returns a vector of size n_particles() which indicates, for
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310 | /// each of the initial particles (in the order in which they were
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311 | /// supplied), which of the supplied jets it belongs to; if it does
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312 | /// not belong to any of the supplied jets, the index is set to -1;
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313 | std::vector<int> particle_jet_indices(const std::vector<PseudoJet> &) const;
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314 |
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315 | /// routine that returns an order in which to read the history
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316 | /// such that clusterings that lead to identical jet compositions
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317 | /// but different histories (because of degeneracies in the
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318 | /// clustering order) will have matching constituents for each
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319 | /// matching entry in the unique_history_order.
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320 | ///
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321 | /// The order has the property that an entry's parents will always
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322 | /// appear prior to that entry itself.
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323 | ///
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324 | /// Roughly speaking the order is such that we first provide all
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325 | /// steps that lead to the final jet containing particle 1; then we
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326 | /// have the steps that lead to reconstruction of the jet containing
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327 | /// the next-lowest-numbered unclustered particle, etc...
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328 | /// [see GPS CCN28-12 for more info -- of course a full explanation
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329 | /// here would be better...]
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330 | std::vector<int> unique_history_order() const;
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331 |
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332 | /// return the set of particles that have not been clustered. For
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333 | /// kt and cam/aachen algorithms this should always be null, but for
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334 | /// cone type algorithms it can be non-null;
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335 | std::vector<PseudoJet> unclustered_particles() const;
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336 |
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337 | /// transfer the sequence contained in other_seq into our own;
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338 | /// any plugin "extras" contained in the from_seq will be lost
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339 | /// from there.
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340 | void transfer_from_sequence(ClusterSequence & from_seq);
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341 |
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342 | protected:
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343 | static JetAlgorithm _default_jet_algorithm;
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344 | JetDefinition _jet_def;
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345 |
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346 | /// returns true if the jet has a history index contained within
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347 | /// the range of this CS
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348 | bool _potentially_valid(const PseudoJet & jet) const {
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349 | return jet.cluster_hist_index() >= 0
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350 | && jet.cluster_hist_index() < int(_history.size());
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351 | }
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352 |
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353 | /// transfer the vector<L> of input jets into our own vector<PseudoJet>
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354 | /// _jets (with some reserved space for future growth).
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355 | template<class L> void _transfer_input_jets(
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356 | const std::vector<L> & pseudojets);
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357 |
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358 | /// This is the routine that will do all the initialisation and
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359 | /// then run the clustering (may be called by various constructors).
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360 | /// It assumes _jets contains the momenta to be clustered.
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361 | void _initialise_and_run (const JetDefinition & jet_def,
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362 | const bool & writeout_combinations);
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363 |
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364 | /// This is an alternative routine for initialising and running the
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365 | /// clustering, provided for legacy purposes. The jet finder is that
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366 | /// specified in the static member _default_jet_algorithm.
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367 | void _initialise_and_run (const double & R,
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368 | const Strategy & strategy,
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369 | const bool & writeout_combinations);
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370 |
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371 | /// fills in the various member variables with "decanted" options from
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372 | /// the jet_definition and writeout_combinations variables
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373 | void _decant_options(const JetDefinition & jet_def,
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374 | const bool & writeout_combinations);
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375 |
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376 | /// fill out the history (and jet cross refs) related to the initial
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377 | /// set of jets (assumed already to have been "transferred"),
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378 | /// without any clustering
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379 | void _fill_initial_history();
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380 |
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381 | /// carry out the recombination between the jets numbered jet_i and
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382 | /// jet_j, at distance scale dij; return the index newjet_k of the
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383 | /// result of the recombination of i and j.
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384 | void _do_ij_recombination_step(const int & jet_i, const int & jet_j,
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385 | const double & dij, int & newjet_k);
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386 |
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387 | /// carry out an recombination step in which _jets[jet_i] merges with
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388 | /// the beam,
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389 | void _do_iB_recombination_step(const int & jet_i, const double & diB);
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390 |
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391 |
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392 | /// This contains the physical PseudoJets; for each PseudoJet one
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393 | /// can find the corresponding position in the _history by looking
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394 | /// at _jets[i].cluster_hist_index().
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395 | std::vector<PseudoJet> _jets;
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396 |
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397 |
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398 | /// this vector will contain the branching history; for each stage,
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399 | /// _history[i].jetp_index indicates where to look in the _jets
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400 | /// vector to get the physical PseudoJet.
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401 | std::vector<history_element> _history;
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402 |
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403 | bool _writeout_combinations;
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404 | int _initial_n;
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405 | double _Rparam, _R2, _invR2;
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406 | Strategy _strategy;
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407 | JetAlgorithm _jet_algorithm;
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408 |
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409 | private:
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410 |
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411 | bool _plugin_activated;
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412 | std::auto_ptr<Extras> _extras; // things the plugin might want to add
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413 |
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414 | void _really_dumb_cluster ();
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415 | void _delaunay_cluster ();
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416 | void _simple_N2_cluster ();
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417 | void _tiled_N2_cluster ();
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418 | void _faster_tiled_N2_cluster ();
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419 |
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420 | //
|
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421 | void _minheap_faster_tiled_N2_cluster();
|
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422 |
|
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423 | // things needed specifically for Cambridge with Chan's 2D closest
|
---|
424 | // pairs method
|
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425 | void _CP2DChan_cluster();
|
---|
426 | void _CP2DChan_cluster_2pi2R ();
|
---|
427 | void _CP2DChan_cluster_2piMultD ();
|
---|
428 | void _CP2DChan_limited_cluster(double D);
|
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429 | void _do_Cambridge_inclusive_jets();
|
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430 |
|
---|
431 | void _add_step_to_history(const int & step_number, const int & parent1,
|
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432 | const int & parent2, const int & jetp_index,
|
---|
433 | const double & dij);
|
---|
434 |
|
---|
435 | /// internal routine associated with the construction of the unique
|
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436 | /// history order (following children in the tree)
|
---|
437 | void _extract_tree_children(int pos, std::valarray<bool> &,
|
---|
438 | const std::valarray<int> &, std::vector<int> &) const;
|
---|
439 |
|
---|
440 | /// internal routine associated with the construction of the unique
|
---|
441 | /// history order (following parents in the tree)
|
---|
442 | void _extract_tree_parents (int pos, std::valarray<bool> &,
|
---|
443 | const std::valarray<int> &, std::vector<int> &) const;
|
---|
444 |
|
---|
445 |
|
---|
446 | // these will be useful shorthands in the Voronoi-based code
|
---|
447 | typedef std::pair<int,int> TwoVertices;
|
---|
448 | typedef std::pair<double,TwoVertices> DijEntry;
|
---|
449 | typedef std::multimap<double,TwoVertices> DistMap;
|
---|
450 |
|
---|
451 | /// currently used only in the Voronoi based code
|
---|
452 | void _add_ktdistance_to_map(const int & ii,
|
---|
453 | DistMap & DijMap,
|
---|
454 | const DynamicNearestNeighbours * DNN);
|
---|
455 |
|
---|
456 | /// for making sure the user knows what it is they're running...
|
---|
457 | void _print_banner();
|
---|
458 | /// will be set by default to be true for the first run
|
---|
459 | static bool _first_time;
|
---|
460 |
|
---|
461 | /// record the number of warnings provided about the exclusive
|
---|
462 | /// algorithm -- so that we don't print it out more than a few
|
---|
463 | /// times.
|
---|
464 | static int _n_exclusive_warnings;
|
---|
465 |
|
---|
466 | //----------------------------------------------------------------------
|
---|
467 | /// the fundamental structure which contains the minimal info about
|
---|
468 | /// a jet, as needed for our plain N^2 algorithm -- the idea is to
|
---|
469 | /// put all info that will be accessed N^2 times into an array of
|
---|
470 | /// BriefJets...
|
---|
471 | struct BriefJet {
|
---|
472 | double eta, phi, kt2, NN_dist;
|
---|
473 | BriefJet * NN;
|
---|
474 | int _jets_index;
|
---|
475 | };
|
---|
476 | /// structure analogous to BriefJet, but with the extra information
|
---|
477 | /// needed for dealing with tiles
|
---|
478 | class TiledJet {
|
---|
479 | public:
|
---|
480 | double eta, phi, kt2, NN_dist;
|
---|
481 | TiledJet * NN, *previous, * next;
|
---|
482 | int _jets_index, tile_index, diJ_posn;
|
---|
483 | // routines that are useful in the minheap version of tiled
|
---|
484 | // clustering ("misuse" the otherwise unused diJ_posn, so as
|
---|
485 | // to indicate whether jets need to have their minheap entries
|
---|
486 | // updated).
|
---|
487 | inline void label_minheap_update_needed() {diJ_posn = 1;}
|
---|
488 | inline void label_minheap_update_done() {diJ_posn = 0;}
|
---|
489 | inline bool minheap_update_needed() const {return diJ_posn==1;}
|
---|
490 | };
|
---|
491 |
|
---|
492 | //-- some of the functions that follow are templates and will work
|
---|
493 | //as well for briefjet and tiled jets
|
---|
494 |
|
---|
495 | /// set the kinematic and labelling info for jeta so that it corresponds
|
---|
496 | /// to _jets[_jets_index]
|
---|
497 | template <class J> void _bj_set_jetinfo( J * const jet,
|
---|
498 | const int _jets_index) const;
|
---|
499 |
|
---|
500 | /// "remove" this jet, which implies updating links of neighbours and
|
---|
501 | /// perhaps modifying the tile structure
|
---|
502 | void _bj_remove_from_tiles( TiledJet * const jet) const;
|
---|
503 |
|
---|
504 | /// return the distance between two BriefJet objects
|
---|
505 | template <class J> double _bj_dist(const J * const jeta,
|
---|
506 | const J * const jetb) const;
|
---|
507 |
|
---|
508 | // return the diJ (multiplied by _R2) for this jet assuming its NN
|
---|
509 | // info is correct
|
---|
510 | template <class J> double _bj_diJ(const J * const jeta) const;
|
---|
511 |
|
---|
512 | /// for testing purposes only: if in the range head--tail-1 there is a
|
---|
513 | /// a jet which corresponds to hist_index in the history, then
|
---|
514 | /// return a pointer to that jet; otherwise return tail.
|
---|
515 | template <class J> inline J * _bj_of_hindex(
|
---|
516 | const int hist_index,
|
---|
517 | J * const head, J * const tail)
|
---|
518 | const {
|
---|
519 | J * res;
|
---|
520 | for(res = head; res<tail; res++) {
|
---|
521 | if (_jets[res->_jets_index].cluster_hist_index() == hist_index) {break;}
|
---|
522 | }
|
---|
523 | return res;
|
---|
524 | }
|
---|
525 |
|
---|
526 |
|
---|
527 | //-- remaining functions are different in various cases, so we
|
---|
528 | // will use templates but are not sure if they're useful...
|
---|
529 |
|
---|
530 | /// updates (only towards smaller distances) the NN for jeta without checking
|
---|
531 | /// whether in the process jeta itself might be a new NN of one of
|
---|
532 | /// the jets being scanned -- span the range head to tail-1 with
|
---|
533 | /// assumption that jeta is not contained in that range
|
---|
534 | template <class J> void _bj_set_NN_nocross(J * const jeta,
|
---|
535 | J * const head, const J * const tail) const;
|
---|
536 |
|
---|
537 | /// reset the NN for jeta and DO check whether in the process jeta
|
---|
538 | /// itself might be a new NN of one of the jets being scanned --
|
---|
539 | /// span the range head to tail-1 with assumption that jeta is not
|
---|
540 | /// contained in that range
|
---|
541 | template <class J> void _bj_set_NN_crosscheck(J * const jeta,
|
---|
542 | J * const head, const J * const tail) const;
|
---|
543 |
|
---|
544 |
|
---|
545 |
|
---|
546 | /// number of neighbours that a tile will have (rectangular geometry
|
---|
547 | /// gives 9 neighbours).
|
---|
548 | static const int n_tile_neighbours = 9;
|
---|
549 | //----------------------------------------------------------------------
|
---|
550 | /// The fundamental structures to be used for the tiled N^2 algorithm
|
---|
551 | /// (see CCN27-44 for some discussion of pattern of tiling)
|
---|
552 | struct Tile {
|
---|
553 | /// pointers to neighbouring tiles, including self
|
---|
554 | Tile * begin_tiles[n_tile_neighbours];
|
---|
555 | /// neighbouring tiles, excluding self
|
---|
556 | Tile ** surrounding_tiles;
|
---|
557 | /// half of neighbouring tiles, no self
|
---|
558 | Tile ** RH_tiles;
|
---|
559 | /// just beyond end of tiles
|
---|
560 | Tile ** end_tiles;
|
---|
561 | /// start of list of BriefJets contained in this tile
|
---|
562 | TiledJet * head;
|
---|
563 | /// sometimes useful to be able to tag a tile
|
---|
564 | bool tagged;
|
---|
565 | };
|
---|
566 | std::vector<Tile> _tiles;
|
---|
567 | double _tiles_eta_min, _tiles_eta_max;
|
---|
568 | double _tile_size_eta, _tile_size_phi;
|
---|
569 | int _n_tiles_phi,_tiles_ieta_min,_tiles_ieta_max;
|
---|
570 |
|
---|
571 | // reasonably robust return of tile index given ieta and iphi, in particular
|
---|
572 | // it works even if iphi is negative
|
---|
573 | inline int _tile_index (int ieta, int iphi) const {
|
---|
574 | // note that (-1)%n = -1 so that we have to add _n_tiles_phi
|
---|
575 | // before performing modulo operation
|
---|
576 | return (ieta-_tiles_ieta_min)*_n_tiles_phi
|
---|
577 | + (iphi+_n_tiles_phi) % _n_tiles_phi;
|
---|
578 | }
|
---|
579 |
|
---|
580 | // routines for tiled case, including some overloads of the plain
|
---|
581 | // BriefJet cases
|
---|
582 | int _tile_index(const double & eta, const double & phi) const;
|
---|
583 | void _tj_set_jetinfo ( TiledJet * const jet, const int _jets_index);
|
---|
584 | void _bj_remove_from_tiles(TiledJet * const jet);
|
---|
585 | void _initialise_tiles();
|
---|
586 | void _print_tiles(TiledJet * briefjets ) const;
|
---|
587 | void _add_neighbours_to_tile_union(const int tile_index,
|
---|
588 | std::vector<int> & tile_union, int & n_near_tiles) const;
|
---|
589 | void _add_untagged_neighbours_to_tile_union(const int tile_index,
|
---|
590 | std::vector<int> & tile_union, int & n_near_tiles);
|
---|
591 |
|
---|
592 |
|
---|
593 | };
|
---|
594 |
|
---|
595 |
|
---|
596 |
|
---|
597 | //**********************************************************************
|
---|
598 | //************** START OF INLINE MATERIAL ******************
|
---|
599 | //**********************************************************************
|
---|
600 |
|
---|
601 |
|
---|
602 | //----------------------------------------------------------------------
|
---|
603 | // Transfer the initial jets into our internal structure
|
---|
604 | template<class L> void ClusterSequence::_transfer_input_jets(
|
---|
605 | const std::vector<L> & pseudojets) {
|
---|
606 |
|
---|
607 | // this will ensure that we can point to jets without difficulties
|
---|
608 | // arising.
|
---|
609 | _jets.reserve(pseudojets.size()*2);
|
---|
610 |
|
---|
611 | // insert initial jets this way so that any type L that can be
|
---|
612 | // converted to a pseudojet will work fine (basically PseudoJet
|
---|
613 | // and any type that has [] subscript access to the momentum
|
---|
614 | // components, such as CLHEP HepLorentzVector).
|
---|
615 | for (unsigned int i = 0; i < pseudojets.size(); i++) {
|
---|
616 | _jets.push_back(pseudojets[i]);}
|
---|
617 |
|
---|
618 | }
|
---|
619 |
|
---|
620 | //----------------------------------------------------------------------
|
---|
621 | // initialise from some generic type... Has to be made available
|
---|
622 | // here in order for it the template aspect of it to work...
|
---|
623 | template<class L> ClusterSequence::ClusterSequence (
|
---|
624 | const std::vector<L> & pseudojets,
|
---|
625 | const double & R,
|
---|
626 | const Strategy & strategy,
|
---|
627 | const bool & writeout_combinations) {
|
---|
628 |
|
---|
629 | // transfer the initial jets (type L) into our own array
|
---|
630 | _transfer_input_jets(pseudojets);
|
---|
631 |
|
---|
632 | // run the clustering
|
---|
633 | _initialise_and_run(R,strategy,writeout_combinations);
|
---|
634 | }
|
---|
635 |
|
---|
636 |
|
---|
637 | //----------------------------------------------------------------------
|
---|
638 | /// constructor of a jet-clustering sequence from a vector of
|
---|
639 | /// four-momenta, with the jet definition specified by jet_def
|
---|
640 | template<class L> ClusterSequence::ClusterSequence (
|
---|
641 | const std::vector<L> & pseudojets,
|
---|
642 | const JetDefinition & jet_def,
|
---|
643 | const bool & writeout_combinations) {
|
---|
644 |
|
---|
645 | // transfer the initial jets (type L) into our own array
|
---|
646 | _transfer_input_jets(pseudojets);
|
---|
647 |
|
---|
648 | // run the clustering
|
---|
649 | _initialise_and_run(jet_def,writeout_combinations);
|
---|
650 | }
|
---|
651 |
|
---|
652 |
|
---|
653 | inline const std::vector<PseudoJet> & ClusterSequence::jets () const {
|
---|
654 | return _jets;
|
---|
655 | }
|
---|
656 |
|
---|
657 | inline const std::vector<ClusterSequence::history_element> & ClusterSequence::history () const {
|
---|
658 | return _history;
|
---|
659 | }
|
---|
660 |
|
---|
661 | inline unsigned int ClusterSequence::n_particles() const {return _initial_n;}
|
---|
662 |
|
---|
663 |
|
---|
664 |
|
---|
665 | //----------------------------------------------------------------------
|
---|
666 | template <class J> inline void ClusterSequence::_bj_set_jetinfo(
|
---|
667 | J * const jetA, const int _jets_index) const {
|
---|
668 | jetA->eta = _jets[_jets_index].rap();
|
---|
669 | jetA->phi = _jets[_jets_index].phi_02pi();
|
---|
670 | jetA->kt2 = jet_scale_for_algorithm(_jets[_jets_index]);
|
---|
671 | jetA->_jets_index = _jets_index;
|
---|
672 | // initialise NN info as well
|
---|
673 | jetA->NN_dist = _R2;
|
---|
674 | jetA->NN = NULL;
|
---|
675 | }
|
---|
676 |
|
---|
677 |
|
---|
678 |
|
---|
679 |
|
---|
680 | //----------------------------------------------------------------------
|
---|
681 | template <class J> inline double ClusterSequence::_bj_dist(
|
---|
682 | const J * const jetA, const J * const jetB) const {
|
---|
683 | double dphi = std::abs(jetA->phi - jetB->phi);
|
---|
684 | double deta = (jetA->eta - jetB->eta);
|
---|
685 | if (dphi > pi) {dphi = twopi - dphi;}
|
---|
686 | return dphi*dphi + deta*deta;
|
---|
687 | }
|
---|
688 |
|
---|
689 | //----------------------------------------------------------------------
|
---|
690 | template <class J> inline double ClusterSequence::_bj_diJ(const J * const jet) const {
|
---|
691 | double kt2 = jet->kt2;
|
---|
692 | if (jet->NN != NULL) {if (jet->NN->kt2 < kt2) {kt2 = jet->NN->kt2;}}
|
---|
693 | return jet->NN_dist * kt2;
|
---|
694 | }
|
---|
695 |
|
---|
696 |
|
---|
697 | //----------------------------------------------------------------------
|
---|
698 | // set the NN for jet without checking whether in the process you might
|
---|
699 | // have discovered a new nearest neighbour for another jet
|
---|
700 | template <class J> inline void ClusterSequence::_bj_set_NN_nocross(
|
---|
701 | J * const jet, J * const head, const J * const tail) const {
|
---|
702 | double NN_dist = _R2;
|
---|
703 | J * NN = NULL;
|
---|
704 | if (head < jet) {
|
---|
705 | for (J * jetB = head; jetB != jet; jetB++) {
|
---|
706 | double dist = _bj_dist(jet,jetB);
|
---|
707 | if (dist < NN_dist) {
|
---|
708 | NN_dist = dist;
|
---|
709 | NN = jetB;
|
---|
710 | }
|
---|
711 | }
|
---|
712 | }
|
---|
713 | if (tail > jet) {
|
---|
714 | for (J * jetB = jet+1; jetB != tail; jetB++) {
|
---|
715 | double dist = _bj_dist(jet,jetB);
|
---|
716 | if (dist < NN_dist) {
|
---|
717 | NN_dist = dist;
|
---|
718 | NN = jetB;
|
---|
719 | }
|
---|
720 | }
|
---|
721 | }
|
---|
722 | jet->NN = NN;
|
---|
723 | jet->NN_dist = NN_dist;
|
---|
724 | }
|
---|
725 |
|
---|
726 |
|
---|
727 | //----------------------------------------------------------------------
|
---|
728 | template <class J> inline void ClusterSequence::_bj_set_NN_crosscheck(J * const jet,
|
---|
729 | J * const head, const J * const tail) const {
|
---|
730 | double NN_dist = _R2;
|
---|
731 | J * NN = NULL;
|
---|
732 | for (J * jetB = head; jetB != tail; jetB++) {
|
---|
733 | double dist = _bj_dist(jet,jetB);
|
---|
734 | if (dist < NN_dist) {
|
---|
735 | NN_dist = dist;
|
---|
736 | NN = jetB;
|
---|
737 | }
|
---|
738 | if (dist < jetB->NN_dist) {
|
---|
739 | jetB->NN_dist = dist;
|
---|
740 | jetB->NN = jet;
|
---|
741 | }
|
---|
742 | }
|
---|
743 | jet->NN = NN;
|
---|
744 | jet->NN_dist = NN_dist;
|
---|
745 | }
|
---|
746 |
|
---|
747 |
|
---|
748 |
|
---|
749 |
|
---|
750 | FASTJET_END_NAMESPACE
|
---|
751 |
|
---|
752 | #endif // __FASTJET_CLUSTERSEQUENCE_HH__
|
---|