1 | //////////////////////////////////////////////////////////////
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2 | // File: ConeClusterAlgo.hpp
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3 | //
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4 | // Author: G. Le Meur & F. Touze
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5 | //
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6 | // Created: 15-JUNE-1998
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7 | //
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8 | // Purpose: make jet clusters using fixed cone like algorithm
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9 | // implemented in RUNI.
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10 | //
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11 | // Modified:
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12 | // 28-OCT-1998 to use KinemUtil (S. Protopopescu)
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13 | // 8-JAN-1999: Laurent Duflot
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14 | // . correct bugs in getItemsInCone and updateEtaPhiEt for jets
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15 | // overlapping the phi=0 line
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16 | // . change abs(float) to fabs(float)
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17 | // 1-NOV-1999: Laurent Duflot
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18 | // . correct bug in makeCluster: when the temporary jet was emptied the eta
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19 | // and phi were not set again. The main effect was a nearly zero
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20 | // efficiency for jets at phi=pi (as seen by Volker Buescher)
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21 | // 25-JAN-2000: Francois Touze
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22 | // . change in updateEtaPhiEt : the method E() which returns energy doesn't
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23 | // exist in MCparticle classe,... so use the 4-momentum components
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24 | // . declare const the EnergyClusterCollection of seeds in makeClusters
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25 | // 01-FEB-2000: Laurent Duflot
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26 | // . add a missing break statement in the removal of shared items. Caused
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27 | // an infinite loop on some events.
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28 | // . correct typo in variable name. Change a variable name that was in
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29 | // French.
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30 | // . leave some debug printout (commented)
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31 | // 15-Sep-2009 Lars Sonnenschein
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32 | // extracted from D0 software framework and modified to remove subsequent dependencies
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33 | //
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34 | //
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35 | // This file is distributed with FastJet under the terms of the GNU
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36 | // General Public License (v2). Permission to do so has been granted
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37 | // by Lars Sonnenschein and the D0 collaboration (see COPYING for
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38 | // details)
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39 | //
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40 | // History of changes in FastJet compared to the original version of
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41 | // ConeClusterAlgo.hpp
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42 | //
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43 | // 2011-12-13 Gregory Soyez <soyez@fastjet.fr>
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44 | //
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45 | // * added license information
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46 | //
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47 | // 2011-10-06 Gregory Soyez <soyez@fastjet.fr>
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48 | //
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49 | // * put the code in the fastjet::d0runi namespace
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50 | //
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51 | //////////////////////////////////////////////////////////////
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52 |
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53 | //#ifndef CONECLUSTERALGO_H
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54 | //#define CONECLUSTERALGO_H
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55 |
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56 | #ifndef D0RunIconeJets_CONECLUSTERALGO_H
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57 | #define D0RunIconeJets_CONECLUSTERALGO_H
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58 |
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59 |
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60 | //#include "EnergyClusterReco.hpp"
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61 | #include <vector>
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62 | #include <list>
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63 | #include <utility>
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64 | //#include "kinem_util/AnglesUtil.hpp"
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65 |
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66 | #include <algorithm>
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67 | #include <iostream>
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68 |
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69 | #include "inline_maths.h"
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70 | #include <fastjet/internal/base.hh>
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71 |
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72 | FASTJET_BEGIN_NAMESPACE
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73 |
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74 | namespace d0runi{
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75 |
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76 | using namespace std;
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77 |
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78 | //some utility functions
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79 | inline float R2(float eta1, float phi1, float eta2, float phi2) {
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80 | return (eta1-eta2)*(eta1-eta2)+(phi1-phi2)*(phi1-phi2); }
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81 |
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82 | inline float R2_bis(float eta1, float phi1, float eta2, float phi2) {
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83 | //float dphi = kinem::delta_phi(phi1,phi2);
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84 | float dphi = inline_maths::delta_phi(phi1,phi2);
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85 | return (eta1-eta2)*(eta1-eta2)+dphi*dphi; }
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86 |
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87 | inline float DELTA_r(float eta1,float eta2,float phi1,float phi2) {
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88 | //float dphi = kinem::delta_phi(phi1,phi2);
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89 | float dphi = inline_maths::delta_phi(phi1,phi2);
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90 | return sqrt((eta1-eta2)*(eta1-eta2)+dphi*dphi);
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91 | }
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92 |
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93 | inline float E2eta(float* p) {
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94 | float small= 1.E-05;
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95 | float E[3];
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96 | if(p[3] < 0.0) {
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97 | E[0]= -p[0];
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98 | E[1]= -p[1];
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99 | E[2]= -p[2];
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100 | }
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101 | else {
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102 | E[0]= p[0];
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103 | E[1]= p[1];
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104 | E[2]= p[2];
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105 | }
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106 | float pperp= sqrt(E[0]*E[0]+E[1]*E[1])+small;
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107 | float ptotal= sqrt(E[0]*E[0]+E[1]*E[1]+E[2]*E[2])+small;
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108 | //float theta= atan2(pperp,E[2]);
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109 |
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110 | float eta= 0.0;
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111 | if(E[2] > 0.0) eta= log((ptotal+E[2])/pperp);
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112 | else eta= log(pperp/(ptotal-E[2]));
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113 | return eta;
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114 | }
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115 |
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116 | inline float E2phi(float* p) {
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117 | float small= 1.E-05;
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118 | float E[3];
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119 | if(p[3] < 0.0) {
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120 | E[0]= -p[0];
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121 | E[1]= -p[1];
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122 | E[2]= -p[2];
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123 | }
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124 | else {
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125 | E[0]= p[0];
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126 | E[1]= p[1];
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127 | E[2]= p[2];
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128 | }
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129 | float phi= atan2(E[1],E[0]+small);
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130 | //if(phi < 0.0) phi+=kinem::TWOPI;
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131 | if (phi < 0.0) phi += inline_maths::TWOPI;
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132 | return phi;
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133 | }
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134 |
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135 | //template < class CalItem,class CalItemAddress,class CalIClusterChunk >
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136 | template < class CalItem >
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137 | class ConeClusterAlgo {
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138 | //
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139 | // Purpose: make calorimeter clusters using a cone algorithm from
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140 | // preclusters created previously by the class ConePreClusterAlgo.
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141 | // Items must have addresses and 4-momenta.
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142 | // The algorithm is implemented with a template function makeClusters.
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143 | //
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144 | public :
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145 |
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146 |
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147 | //default constructor
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148 | ConeClusterAlgo() {}
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149 |
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150 | //constructor for cone jet algorithm
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151 | ConeClusterAlgo( float CONErad,float JETmne,float SPLifr):
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152 | _CONErad(fabs(CONErad)),
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153 | _JETmne(JETmne),
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154 | _SPLifr(SPLifr),
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155 | _TWOrad(0.),
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156 | _D0_Angle(false),
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157 | _Increase_Delta_R(true),
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158 | _Kill_Far_Clusters(true),
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159 | _Jet_Et_Min_On_Iter(true),
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160 | _Far_Ratio(0.5),
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161 | _Eitem_Negdrop(-1.0),
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162 | _Et_Min_Ratio(0.5),
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163 | _Thresh_Diff_Et(0.01)
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164 | {}
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165 |
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166 | //changing default thresholds & parameters
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167 | // (declared by PARAMETER in RUNI code)
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168 | ConeClusterAlgo( float CONErad,float JETmne,float SPLifr,float TWOrad,
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169 | float Tresh_Diff_Et,bool D0_Angle,bool Increase_Delta_R,
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170 | bool Kill_Far_Clusters,bool Jet_Et_Min_On_Iter,
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171 | float Far_Ratio,float Eitem_Negdrop,float Et_Min_Ratio ):
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172 | _CONErad(fabs(CONErad)),
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173 | _JETmne(JETmne),
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174 | _SPLifr(SPLifr),
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175 | _TWOrad(TWOrad),
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176 | _D0_Angle(D0_Angle),
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177 | _Increase_Delta_R(Increase_Delta_R),
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178 | _Kill_Far_Clusters(Kill_Far_Clusters),
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179 | _Jet_Et_Min_On_Iter(Jet_Et_Min_On_Iter),
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180 | _Far_Ratio(Far_Ratio),
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181 | _Eitem_Negdrop(Eitem_Negdrop),
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182 | _Et_Min_Ratio(Et_Min_Ratio),
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183 | _Thresh_Diff_Et(Tresh_Diff_Et)
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184 | {}
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185 |
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186 | //destructor
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187 | ~ConeClusterAlgo() {}
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188 |
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189 | //to make jet clusters using cone algorithm
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190 | void makeClusters(//const EnergyClusterReco* r,
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191 | std::list<CalItem> &jets,
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192 | list<const CalItem*> &itemlist, float Zvertex
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193 | //, const EnergyClusterCollection<CalItemAddress> &preclu,
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194 | //CalIClusterChunk* chunkptr
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195 | //) const;
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196 | );
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197 |
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198 | //print parameters of the algorithm
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199 | void print(ostream &os)const;
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200 |
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201 | //vector< TemporaryJet > TempColl;
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202 |
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203 |
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204 | private :
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205 |
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206 | float _CONErad;
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207 | float _JETmne;
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208 | float _SPLifr;
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209 |
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210 | float _TWOrad;
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211 | bool _D0_Angle;
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212 | bool _Increase_Delta_R;
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213 | bool _Kill_Far_Clusters;
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214 | bool _Jet_Et_Min_On_Iter;
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215 | float _Far_Ratio;
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216 | float _Eitem_Negdrop;
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217 | float _Et_Min_Ratio;
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218 | float _Thresh_Diff_Et;
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219 |
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220 | class TemporaryJet {
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221 |
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222 | public:
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223 |
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224 |
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225 |
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226 | TemporaryJet() {}
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227 |
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228 | TemporaryJet(float eta,float phi) {
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229 | _Eta=eta;
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230 | _Phi=phi;
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231 | }
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232 |
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233 | ~TemporaryJet() {}
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234 |
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235 | void addItem(const CalItem* tw) {
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236 | _LItems.push_back(tw);
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237 | }
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238 |
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239 | void setEtaPhiEt(float eta,float phi,float pT) {
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240 | _Eta= eta;
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241 | _Phi= phi;
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242 | _Et = pT;
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243 | }
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244 |
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245 | void erase() {
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246 | _LItems.erase(_LItems.begin(),_LItems.end());
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247 | _Eta= 0.0;
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248 | _Phi= 0.0;
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249 | _Et = 0.0;
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250 | }
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251 |
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252 | bool share_jets(TemporaryJet &NewJet,float SharedFr,float SPLifr) {
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253 | //
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254 | // combined
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255 | //
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256 | if(SharedFr >= SPLifr) {
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257 | typename list<const CalItem*>::iterator it;
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258 | typename list<const CalItem*>::iterator end_of_old=_LItems.end();
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259 | for(it=NewJet._LItems.begin(); it!=NewJet._LItems.end(); it++) {
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260 | typename list<const CalItem*>::iterator
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261 | where = find(_LItems.begin(),end_of_old,*it);
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262 | // if the item is not shared, add to this jet
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263 | if(where == end_of_old) {
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264 | _LItems.push_back(*it);
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265 | }
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266 | }
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267 | NewJet.erase();
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268 | return false;
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269 | } else {
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270 | //
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271 | // split
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272 | //
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273 | typename list<const CalItem*>::iterator it;
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274 | for(it=NewJet._LItems.begin(); it!=NewJet._LItems.end(); ) {
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275 | typename list<const CalItem*>::iterator
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276 | where = find(_LItems.begin(),_LItems.end(),*it);
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277 | if(where != _LItems.end()) {
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278 | //float EtaItem=(*it)->eta();
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279 | //float PhiItem=(*it)->phi();
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280 | // stay closer to the RUNI conventions for negative E cells
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281 | float pz[4];
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282 | (*it)->p4vec(pz);
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283 | float EtaItem= E2eta(pz);
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284 | float PhiItem= E2phi(pz);
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285 |
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286 | float RadOld=R2_bis(_Eta,_Phi,EtaItem,PhiItem);
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287 | float RadNew=R2_bis(NewJet.Eta(),NewJet.Phi(),EtaItem,PhiItem);
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288 | if (RadNew > RadOld) {
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289 | it = NewJet._LItems.erase(it);
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290 | }
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291 | else {
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292 | _LItems.erase(where);
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293 | ++it;
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294 | }
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295 | }
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296 | else ++it;
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297 | }
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298 | return true;
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299 | }
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300 | }
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301 |
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302 |
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303 | float dist_R2(TemporaryJet &jet) const {
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304 | float deta= _Eta-jet.Eta();
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305 | //float dphi= kinem::delta_phi(_Phi,jet.Phi());
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306 | float dphi= inline_maths::delta_phi(_Phi,jet.Phi());
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307 | return (deta*deta+dphi*dphi);
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308 | }
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309 |
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310 | bool ItemInJet(const CalItem* tw) const {
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311 | typename list<const CalItem*>::const_iterator
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312 | where= find(_LItems.begin(),_LItems.end(),tw);
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313 | if(where != _LItems.end()) return true;
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314 | else return false;
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315 | }
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316 |
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317 | bool updateEtaPhiEt() {
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318 | float ETsum = 0.0;
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319 | float ETAsum= 0.0;
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320 | float PHIsum= 0.0;
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321 | float Esum= 0.0;
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322 | typename list<const CalItem*>::iterator it;
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323 | for(it=_LItems.begin(); it!=_LItems.end(); it++) {
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324 | float ETk = (*it)->pT();
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325 | // now done in CalCell/CalTower if((*it)->E() < 0.0) ETk= -ETk;
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326 |
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327 | //float ETAk= (*it)->eta();
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328 | //float PHIk= (*it)->phi();
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329 | float pz[4];
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330 | (*it)->p4vec(pz);
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331 | float ETAk= E2eta(pz);
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332 | // take care of the phi=0=2pi problem
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333 | float PHIk= E2phi(pz);
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334 | //if(fabs(PHIk-_Phi) > kinem::TWOPI-fabs(PHIk-_Phi))
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335 | if(fabs(PHIk-_Phi) > inline_maths::TWOPI-fabs(PHIk-_Phi))
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336 | {
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337 | if(_Phi < PHIk)
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338 | {
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339 | //PHIk -= kinem::TWOPI;
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340 | PHIk -= inline_maths::TWOPI;
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341 | }
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342 | else
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343 | {
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344 | //PHIk += kinem::TWOPI;
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345 | PHIk += inline_maths::TWOPI;
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346 | }
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347 | }
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348 | ETAsum+= ETAk*ETk;
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349 | PHIsum+= PHIk*ETk;
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350 | ETsum += ETk;
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351 | // Esum+=(*it)->E(); use 4-momentum components
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352 | Esum+= pz[3];
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353 | }
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354 | if(ETsum <= 0.0) {
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355 | _Eta= 0.0;
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356 | _Phi= 0.0;
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357 | _Et = 0.0;
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358 | _E=0.;
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359 | return false;
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360 | }
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361 | else {
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362 | _Eta= ETAsum/ETsum;
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363 | _Phi= PHIsum/ETsum;
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364 | //if ( _Phi<0 ) _Phi+=kinem::TWOPI;
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365 | if ( _Phi<0 ) _Phi+=inline_maths::TWOPI;
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366 | _Et = ETsum;
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367 | _E = Esum;
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368 | return true;
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369 | }
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370 | }
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371 |
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372 | void D0_Angle_updateEtaPhi() {
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373 | float EXsum = 0.0;
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374 | float EYsum = 0.0;
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375 | float EZsum = 0.0;
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376 | typename list<const CalItem*>::iterator it;
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377 | for(it=_LItems.begin(); it!=_LItems.end(); it++) {
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378 | float p[4];
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379 | (*it)->p4vec(p);
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380 | EXsum += p[0];
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381 | EYsum += p[1];
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382 | EZsum += p[2];
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383 | }
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384 | //_Phi=kinem::phi(EYsum,EXsum);
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385 | _Phi=inline_maths::phi(EYsum,EXsum);
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386 | //_Eta=kinem::eta(EXsum,EYsum,EZsum);
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387 | _Eta=inline_maths::eta(EXsum,EYsum,EZsum);
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388 | }
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389 |
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390 | void getItems(list<const CalItem*> &ecv) const {
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391 | ecv.clear(); //ls 27/Feb/2010
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392 | typename list<const CalItem*>::const_iterator it;
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393 | for(it=_LItems.begin(); it!=_LItems.end(); it++) {
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394 | ecv.push_back(*it);
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395 | }
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396 | }
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397 |
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398 | float Eta() {return _Eta;}
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399 | float Phi() {return _Phi;}
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400 | float Et() {return _Et;}
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401 | float E() {return _E;}
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402 | list<const CalItem*> &LItems() {return _LItems;}
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403 |
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404 | private:
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405 | list<const CalItem*> _LItems;
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406 | float _Eta;
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407 | float _Phi;
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408 | float _Et;
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409 | float _E;
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410 | }; //class TemporaryJet
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411 |
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412 | void getItemsInCone(list<const CalItem*> &tlist, float etaJet, float phiJet,
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413 | float cone_radius, float zvertex_in) const;
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414 | void getItemsInCone_bis(list<const CalItem*> &tlist, float etaJet,
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415 | float phiJet,float cone_radius, float zvertex_in) const;
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416 |
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417 | public:
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418 |
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419 | vector< TemporaryJet > TempColl;
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420 |
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421 | };
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422 | /////////////////////////////////////////////////////////
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423 |
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424 | //template < class CalItem,class CalItemAddress,class CalIClusterChunk >
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425 | template < class CalItem >
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426 | //void ConeClusterAlgo <CalItem,CalItemAddress,CalIClusterChunk >::
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427 | void ConeClusterAlgo <CalItem >::
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428 | getItemsInCone(list<const CalItem*> &tlist, float etaJet, float phiJet,
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429 | float cone_radius, float zvertex_in) const {
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430 | //
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431 | // provide the list of Items (towers, Cells...) containing the energy from a
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432 | // jet of a given cone size
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433 | //
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434 | float ZVERTEX_MAX=200.;
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435 | float DMIN=80.;
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436 | float DMAX=360.;
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437 | float THETA_margin=0.022;
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438 |
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439 | float zvertex=zvertex_in;
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440 | float d1,d2;
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441 | float phi_d1, phi_d2;
|
---|
442 | float theta_E1, r1, r2, z1, z2;
|
---|
443 | float theta_d1, theta_d2, eta_d1, eta_d2;
|
---|
444 |
|
---|
445 | // Ignore very large vertex positions
|
---|
446 | if (fabs(zvertex) > ZVERTEX_MAX ) zvertex=0.0;
|
---|
447 |
|
---|
448 | if (zvertex >=0. ) {
|
---|
449 | d1=fabs(DMIN-zvertex);
|
---|
450 | d2=fabs(DMAX+zvertex);
|
---|
451 | } else {
|
---|
452 | d1=fabs(DMAX-zvertex);
|
---|
453 | d2=fabs(DMIN+zvertex);
|
---|
454 | }
|
---|
455 |
|
---|
456 | // calculate theta of physics cone and find which eta's this intercepts
|
---|
457 | // a the maximum points
|
---|
458 | phi_d1 = phiJet+cone_radius;
|
---|
459 | //theta_E1 = kinem::theta(etaJet+cone_radius);
|
---|
460 | theta_E1 = inline_maths::theta(etaJet+cone_radius);
|
---|
461 | z1 = zvertex+d1*cos(theta_E1);
|
---|
462 | r1 = d1*sin(theta_E1);
|
---|
463 |
|
---|
464 | phi_d2 = phiJet-cone_radius;
|
---|
465 | //theta_E1 = kinem::theta(etaJet-cone_radius);
|
---|
466 | theta_E1 = inline_maths::theta(etaJet-cone_radius);
|
---|
467 | z2 = zvertex+d2*cos(theta_E1);
|
---|
468 | r2 = d2*sin(theta_E1);
|
---|
469 |
|
---|
470 | // maximum spread in detector theta
|
---|
471 | theta_d1 = atan2(r1, z1);
|
---|
472 | theta_d2 = atan2(r2, z2);
|
---|
473 |
|
---|
474 | // make sure they stay in the calorimeter
|
---|
475 | theta_d1=max(theta_d1, THETA_margin);
|
---|
476 | theta_d2=max(theta_d2, THETA_margin);
|
---|
477 | //theta_d1=min(kinem::PI-(double)THETA_margin, (double)theta_d1);
|
---|
478 | theta_d1=min(inline_maths::PI-(double)THETA_margin, (double)theta_d1);
|
---|
479 | //theta_d2=min(kinem::PI-(double)THETA_margin, (double)theta_d2);
|
---|
480 | theta_d2=min(inline_maths::PI-(double)THETA_margin, (double)theta_d2);
|
---|
481 |
|
---|
482 | //eta_d1 = kinem::eta(theta_d1);
|
---|
483 | eta_d1 = inline_maths::eta(theta_d1);
|
---|
484 | //eta_d2 = kinem::eta(theta_d2);
|
---|
485 | eta_d2 = inline_maths::eta(theta_d2);
|
---|
486 |
|
---|
487 |
|
---|
488 | typename list<const CalItem*>::iterator it;
|
---|
489 | for (it=tlist.begin() ; it != tlist.end() ; ) {
|
---|
490 | //float eta_cur= (*it)->eta();
|
---|
491 | //float phi_cur= (*it)->phi();
|
---|
492 | float pz[4];
|
---|
493 | (*it)->p4vec(pz);
|
---|
494 | float eta_cur= E2eta(pz);
|
---|
495 | float phi_cur= E2phi(pz);
|
---|
496 |
|
---|
497 | bool accepted = eta_cur < eta_d1 && eta_cur > eta_d2;
|
---|
498 | //if ( phi_d2>0 && phi_d1<kinem::TWOPI ) {
|
---|
499 | if ( phi_d2>0 && phi_d1<inline_maths::TWOPI ) {
|
---|
500 | accepted = accepted && phi_cur<phi_d1 && phi_cur>phi_d2;
|
---|
501 | }
|
---|
502 | else{ // case the cone overlap the phi=0=2pi line
|
---|
503 | if ( phi_d2>0 ){
|
---|
504 | accepted = accepted &&
|
---|
505 | //((phi_cur>phi_d2 && phi_cur<kinem::TWOPI) || phi_cur<phi_d1-kinem::TWOPI);
|
---|
506 | ((phi_cur>phi_d2 && phi_cur<inline_maths::TWOPI) || phi_cur<phi_d1-inline_maths::TWOPI);
|
---|
507 | }
|
---|
508 | else{
|
---|
509 | accepted = accepted &&
|
---|
510 | //((phi_cur<phi_d1 && phi_cur>0) || phi_cur>phi_d2+kinem::TWOPI);
|
---|
511 | ((phi_cur<phi_d1 && phi_cur>0) || phi_cur>phi_d2+inline_maths::TWOPI);
|
---|
512 | }
|
---|
513 | }
|
---|
514 | if ( ! accepted ) it = tlist.erase(it);
|
---|
515 | else ++it;
|
---|
516 |
|
---|
517 | }
|
---|
518 | }
|
---|
519 | /////////////////////////////////////////////////////////
|
---|
520 | //template < class CalItem,class CalItemAddress,class CalIClusterChunk >
|
---|
521 | template < class CalItem >
|
---|
522 | //void ConeClusterAlgo <CalItem,CalItemAddress,CalIClusterChunk >::
|
---|
523 | void ConeClusterAlgo <CalItem>::
|
---|
524 | getItemsInCone_bis(list<const CalItem*> &tlist, float etaJet, float phiJet,
|
---|
525 | float cone_radius, float zvertex_in) const {
|
---|
526 | //
|
---|
527 | // provide the list of Items (towers, Cells...) containing the energy from a
|
---|
528 | // jet of a given cone size
|
---|
529 | //
|
---|
530 | // WARNING: this is only to be used to compare to RUN I cone jets
|
---|
531 | //
|
---|
532 | float ZVERTEX_MAX=200.;
|
---|
533 | float DMIN=80.;
|
---|
534 | float DMAX=360.;
|
---|
535 | float THETA_margin=0.022;
|
---|
536 |
|
---|
537 | float zvertex=zvertex_in;
|
---|
538 | float d1,d2;
|
---|
539 | float phi_d1, phi_d2;
|
---|
540 | float theta_E1, r1, r2, z1, z2;
|
---|
541 | float theta_d1, theta_d2, eta_d1, eta_d2;
|
---|
542 |
|
---|
543 | // Ignore very large vertex positions
|
---|
544 | if (fabs(zvertex) > ZVERTEX_MAX ) zvertex=0.0;
|
---|
545 |
|
---|
546 | if (zvertex >=0. ) {
|
---|
547 | d1=fabs(DMIN-zvertex);
|
---|
548 | d2=fabs(DMAX+zvertex);
|
---|
549 | } else {
|
---|
550 | d1=fabs(DMAX-zvertex);
|
---|
551 | d2=fabs(DMIN+zvertex);
|
---|
552 | }
|
---|
553 |
|
---|
554 | // calculate theta of physics cone and find which eta's this intercepts
|
---|
555 | // a the maximum points
|
---|
556 |
|
---|
557 | phi_d1 = phiJet+cone_radius;
|
---|
558 | //theta_E1 = kinem::theta(etaJet+cone_radius);
|
---|
559 | theta_E1 = inline_maths::theta(etaJet+cone_radius);
|
---|
560 | z1 = zvertex+d1*cos(theta_E1);
|
---|
561 | r1 = d1*sin(theta_E1);
|
---|
562 |
|
---|
563 | phi_d2 = phiJet-cone_radius;
|
---|
564 | //theta_E1 = kinem::theta(etaJet-cone_radius);
|
---|
565 | theta_E1 = inline_maths::theta(etaJet-cone_radius);
|
---|
566 | z2 = zvertex+d2*cos(theta_E1);
|
---|
567 | r2 = d2*sin(theta_E1);
|
---|
568 |
|
---|
569 | // maximum spread in detector theta
|
---|
570 |
|
---|
571 | theta_d1 = atan2(r1, z1);
|
---|
572 | theta_d2 = atan2(r2, z2);
|
---|
573 |
|
---|
574 | // make sure they stay in the calorimeter
|
---|
575 |
|
---|
576 | theta_d1=max(theta_d1, THETA_margin);
|
---|
577 | theta_d2=max(theta_d2, THETA_margin);
|
---|
578 | //theta_d1=min(kinem::PI-(double)THETA_margin, (double)theta_d1);
|
---|
579 | theta_d1=min(inline_maths::PI-(double)THETA_margin, (double)theta_d1);
|
---|
580 | //theta_d2=min(kinem::PI-(double)THETA_margin, (double)theta_d2);
|
---|
581 | theta_d2=min(inline_maths::PI-(double)THETA_margin, (double)theta_d2);
|
---|
582 |
|
---|
583 |
|
---|
584 | //eta_d1 = kinem::eta(theta_d1);
|
---|
585 | eta_d1 = inline_maths::eta(theta_d1);
|
---|
586 | //eta_d2 = kinem::eta(theta_d2);
|
---|
587 | eta_d2 = inline_maths::eta(theta_d2);
|
---|
588 |
|
---|
589 | float signe;
|
---|
590 |
|
---|
591 | if( eta_d1>=0.0 ) signe= 1.0;
|
---|
592 | else signe= -1.0;
|
---|
593 | int ietaMAX= eta_d1/0.1+signe;
|
---|
594 | if(fabs(eta_d1)>=4.45) ietaMAX= 37*signe;
|
---|
595 | else if(fabs(eta_d1)>=4.1) ietaMAX= 36*signe;
|
---|
596 | else if(fabs(eta_d1)>=3.7) ietaMAX= 35*signe;
|
---|
597 | else if(fabs(eta_d1)>=3.42) ietaMAX= 34*signe;
|
---|
598 | else if(fabs(eta_d1)>=3.2) ietaMAX= 33*signe;
|
---|
599 |
|
---|
600 | if( eta_d2>=0.0 ) signe= 1.0;
|
---|
601 | else signe= -1.0;
|
---|
602 | int ietaMIN= eta_d2/0.1+signe;
|
---|
603 | if(fabs(eta_d2)>=4.45) ietaMIN= 37*signe;
|
---|
604 | else if(fabs(eta_d2)>=4.1) ietaMIN= 36*signe;
|
---|
605 | else if(fabs(eta_d2)>=3.7) ietaMIN= 35*signe;
|
---|
606 | else if(fabs(eta_d2)>=3.42) ietaMIN= 34*signe;
|
---|
607 | else if(fabs(eta_d2)>=3.2) ietaMIN= 33*signe;
|
---|
608 |
|
---|
609 | //int iphiMAX= 64*phi_d1/(2.*kinem::PI)+1;
|
---|
610 | int iphiMAX= 64*phi_d1/(2.*inline_maths::PI)+1;
|
---|
611 | //int iphiMIN= 64*phi_d2/(2.*kinem::PI)+1;
|
---|
612 | int iphiMIN= 64*phi_d2/(2.*inline_maths::PI)+1;
|
---|
613 |
|
---|
614 | typename list<const CalItem*>::iterator it;
|
---|
615 | for (it=tlist.begin() ; it != tlist.end() ; ) {
|
---|
616 | //float eta_cur= (*it)->eta();
|
---|
617 | //float phi_cur= (*it)->phi();
|
---|
618 | int ieta= (*it)->address().ieta();
|
---|
619 | int iphi= (*it)->address().iphi();
|
---|
620 |
|
---|
621 | bool accepted = ieta<ietaMAX && ieta>ietaMIN;
|
---|
622 | if ( iphiMIN>0 && iphiMAX<=64 ) {
|
---|
623 | accepted = accepted && iphi<iphiMAX && iphi>iphiMIN;
|
---|
624 | }
|
---|
625 | else{ // case the cone overlap the phi=0=2pi line
|
---|
626 | if ( iphiMIN>0 ){
|
---|
627 | accepted = accepted &&
|
---|
628 | ((iphi>iphiMIN && iphi<=64) || iphi<iphiMAX-64);
|
---|
629 | }
|
---|
630 | else{
|
---|
631 | accepted = accepted &&
|
---|
632 | ((iphi<iphiMAX && iphi>0) || iphi>iphiMIN+64);
|
---|
633 | }
|
---|
634 | }
|
---|
635 | if ( ! accepted ) it = tlist.erase(it);
|
---|
636 | else ++it;
|
---|
637 |
|
---|
638 | }
|
---|
639 | }
|
---|
640 | /////////////////////////////////////////////////////////
|
---|
641 | //template < class CalItem,class CalItemAddress,class CalIClusterChunk >
|
---|
642 | template < class CalItem >
|
---|
643 | //inline void ConeClusterAlgo <CalItem,CalItemAddress,CalIClusterChunk >::
|
---|
644 | inline void ConeClusterAlgo <CalItem >::
|
---|
645 | print(ostream &os) const {
|
---|
646 | os<<endl<<" CONE ALGORITHM, cone radius= "<<_CONErad<<endl<<
|
---|
647 | " min E_T fraction= "<<_JETmne<<endl<<
|
---|
648 | " minimum Delta_R separation between cones= "<<_TWOrad<<endl<<
|
---|
649 | " shared E_T fraction threshold for combining jets= "<<_SPLifr<<endl;
|
---|
650 | }
|
---|
651 | /////////////////////////////////////////////////////////
|
---|
652 |
|
---|
653 | //template < class CalItem,class CalItemAddress,class CalIClusterChunk >
|
---|
654 | template < class CalItem >
|
---|
655 | //void ConeClusterAlgo <CalItem,CalItemAddress,CalIClusterChunk >::
|
---|
656 | void ConeClusterAlgo <CalItem >::
|
---|
657 | makeClusters(//const EnergyClusterReco* r,
|
---|
658 | std::list<CalItem> &jets,
|
---|
659 | list<const CalItem*> &itemlist, float Zvertex
|
---|
660 | //, const EnergyClusterCollection<CalItemAddress> &preclu,
|
---|
661 | //CalIClusterChunk* chunkptr
|
---|
662 | //) const {
|
---|
663 | ) {
|
---|
664 |
|
---|
665 | // create an energy cluster collection for jets
|
---|
666 | //EnergyClusterCollection<CalItemAddress>* ptrcol;
|
---|
667 | //r->createClusterCollection(chunkptr, ptrcol);
|
---|
668 | std::vector<const CalItem*> ecv;
|
---|
669 | for ( typename std::list<const CalItem*>::iterator it = itemlist.begin();
|
---|
670 | it != itemlist.end(); it++) {
|
---|
671 | ecv.push_back(*it);
|
---|
672 | }
|
---|
673 |
|
---|
674 |
|
---|
675 | // Initialize
|
---|
676 | float Rcut= 1.E-06;
|
---|
677 | if(_Increase_Delta_R) Rcut= 1.E-04;
|
---|
678 | bool nojets;
|
---|
679 |
|
---|
680 | //vector< TemporaryJet > TempColl;
|
---|
681 | list< pair<float,float> > LTrack;
|
---|
682 |
|
---|
683 | // get a vector with pointers to EnergyCluster in the collection
|
---|
684 | //vector<const EnergyCluster<CalItemAddress>*> ecv;
|
---|
685 | //preclu.getClusters(ecv);
|
---|
686 |
|
---|
687 | // loop over all preclusters
|
---|
688 | //typename vector<const EnergyCluster<CalItemAddress>*>::iterator jclu;
|
---|
689 | typename std::vector<const CalItem*>::iterator jclu;
|
---|
690 | for( jclu=ecv.begin(); jclu!=ecv.end(); jclu++ ) {
|
---|
691 | ////const EnergyCluster<CalItemAddress>* ptr= *jclu;
|
---|
692 | const CalItem* ptr= *jclu;
|
---|
693 | //float PHIst= ptr->phi();
|
---|
694 | //float ETAst= ptr->eta();
|
---|
695 | float pz[4];
|
---|
696 | ptr->p4vec(pz);
|
---|
697 | float ETAst= E2eta(pz);
|
---|
698 | float PHIst= E2phi(pz);
|
---|
699 |
|
---|
700 | //cout << "seed 4-vec ";
|
---|
701 | //for ( int i = 0; i < 4; i++) cout << pz[i] << " ";
|
---|
702 | //cout << endl;
|
---|
703 |
|
---|
704 | nojets= false;
|
---|
705 | // check to see if precluster is too close to a found jet
|
---|
706 | if(_Kill_Far_Clusters) {
|
---|
707 | list< pair<float,float> >::iterator kj;
|
---|
708 | for(kj=LTrack.begin(); kj!=LTrack.end(); kj++) {
|
---|
709 | if(DELTA_r((*kj).first,ETAst,(*kj).second,PHIst)<_Far_Ratio*_CONErad) {
|
---|
710 | nojets= true;
|
---|
711 | //cout << "seed too close ! skip " << endl;
|
---|
712 | break;
|
---|
713 | }
|
---|
714 | }
|
---|
715 | }
|
---|
716 | if( nojets==false ) {
|
---|
717 | TemporaryJet TJet(ETAst,PHIst);
|
---|
718 | list< pair<int,float> > JETshare;
|
---|
719 |
|
---|
720 | // start of cone building loop
|
---|
721 | int trial= 0;
|
---|
722 | do{
|
---|
723 | trial++;
|
---|
724 | //cout << " trial " << trial << endl;
|
---|
725 |
|
---|
726 | ETAst= TJet.Eta();
|
---|
727 | PHIst= TJet.Phi();
|
---|
728 | TJet.erase();
|
---|
729 |
|
---|
730 | //if(PHIst > kinem::TWOPI) PHIst= PHIst-kinem::TWOPI;
|
---|
731 | if(PHIst > inline_maths::TWOPI) PHIst= PHIst-inline_maths::TWOPI;
|
---|
732 | //if(PHIst < 0.0 ) PHIst= PHIst+kinem::TWOPI;
|
---|
733 | if(PHIst < 0.0 ) PHIst= PHIst+inline_maths::TWOPI;
|
---|
734 | //if( PHIst>kinem::TWOPI || PHIst<0.0 ) {
|
---|
735 | if( PHIst>inline_maths::TWOPI || PHIst<0.0 ) {
|
---|
736 | TJet.setEtaPhiEt(0.0,0.0,0.0);
|
---|
737 | break; // end loop do (illegal jet PHI)
|
---|
738 | }
|
---|
739 | TJet.setEtaPhiEt(ETAst,PHIst,0.0);
|
---|
740 |
|
---|
741 | // calculate eta & phi limits for cone
|
---|
742 | list<const CalItem*> Twlist(itemlist);
|
---|
743 |
|
---|
744 | getItemsInCone(Twlist,ETAst,PHIst,_CONErad,Zvertex);
|
---|
745 | // only to compare with RUN I cone jets ! getItemsInCone_bis(Twlist,ETAst,PHIst,_CONErad,Zvertex);
|
---|
746 |
|
---|
747 | // loop over the possible items for this cone
|
---|
748 | typename list<const CalItem*>::iterator tk;
|
---|
749 | for( tk= Twlist.begin(); tk!=Twlist.end(); tk++ ) {
|
---|
750 | float ETk =(*tk)->pT();
|
---|
751 | // now done in CalCell/CalTower if((*tk)->E() < 0.0) ETk= -ETk;
|
---|
752 |
|
---|
753 | if( ETk > _Eitem_Negdrop ) {
|
---|
754 | //float ETAk=(*tk)->eta();
|
---|
755 | //float PHIk=(*tk)->phi();
|
---|
756 | float pz[4];
|
---|
757 | (*tk)->p4vec(pz);
|
---|
758 | float ETAk= E2eta(pz);
|
---|
759 | float PHIk= E2phi(pz);
|
---|
760 |
|
---|
761 | float dphi= fabs(PHIk-PHIst);
|
---|
762 | //if(dphi > kinem::TWOPI-dphi) {
|
---|
763 | if(dphi > inline_maths::TWOPI-dphi) {
|
---|
764 | //if(PHIst < PHIk) PHIk= PHIk-kinem::TWOPI;
|
---|
765 | if(PHIst < PHIk) PHIk= PHIk-inline_maths::TWOPI;
|
---|
766 | //else PHIk= PHIk+kinem::TWOPI;
|
---|
767 | else PHIk= PHIk+inline_maths::TWOPI;
|
---|
768 | }
|
---|
769 |
|
---|
770 | if( R2_bis(ETAk,PHIk,ETAst,PHIst) <= _CONErad*_CONErad ) {
|
---|
771 | TJet.addItem(*tk);
|
---|
772 | }
|
---|
773 | }
|
---|
774 | }// end loop tk
|
---|
775 |
|
---|
776 | if(TJet.updateEtaPhiEt()==false) {
|
---|
777 | //cout << " negative E jet ! drop " << endl;
|
---|
778 | break;
|
---|
779 | }
|
---|
780 |
|
---|
781 | // require some minimum ET on every iteration
|
---|
782 | if(_Jet_Et_Min_On_Iter) {
|
---|
783 | if( TJet.Et() < _JETmne*_Et_Min_Ratio ) {
|
---|
784 | //cout << " too low ET jet ! drop " << endl;
|
---|
785 | break; // end loop trial
|
---|
786 | }
|
---|
787 | }
|
---|
788 |
|
---|
789 | //cout << " R2 = " << R2_bis(TJet.Eta(),TJet.Phi(),ETAst,PHIst) <<
|
---|
790 | // " Rcut = " << Rcut << endl;
|
---|
791 | }while(R2_bis(TJet.Eta(),TJet.Phi(),ETAst,PHIst)>=Rcut && trial<=50);
|
---|
792 |
|
---|
793 | if( TJet.Et() >= _JETmne ) {
|
---|
794 | //cout << " jet accepted will check for overlaps " << endl;
|
---|
795 | if(_D0_Angle) TJet.D0_Angle_updateEtaPhi();
|
---|
796 | //cout << " after TJet.D0_Angle_updateEtaPhi() " << endl;
|
---|
797 |
|
---|
798 | // item also in another jet
|
---|
799 | list<const CalItem*> Lst;
|
---|
800 | TJet.getItems(Lst);
|
---|
801 | typename list<const CalItem*>::iterator tk;
|
---|
802 | for(tk=Lst.begin(); tk!=Lst.end(); tk++) {
|
---|
803 | float ETk=(*tk)->pT();
|
---|
804 | // now done in CalCell/CalTower if((*tk)->E() < 0.0) ETk= -ETk;
|
---|
805 | for(unsigned int kj=0; kj<TempColl.size(); kj++) {
|
---|
806 | if(TempColl[kj].ItemInJet(*tk)==true) {
|
---|
807 | list< pair<int,float> >::iterator pit;
|
---|
808 | bool jetok= false;
|
---|
809 | for(pit=JETshare.begin(); pit!=JETshare.end();pit++) {
|
---|
810 | if((*pit).first == (int) kj) {
|
---|
811 | jetok= true;
|
---|
812 | (*pit).second+= ETk;
|
---|
813 | break;
|
---|
814 | }
|
---|
815 | }
|
---|
816 | if(jetok==false) JETshare.push_back(make_pair(kj,ETk));
|
---|
817 | }
|
---|
818 | }
|
---|
819 | }
|
---|
820 |
|
---|
821 | if(JETshare.size() >0) {
|
---|
822 | list< pair<int,float> >::iterator pit;
|
---|
823 | float Ssum= 0.0;
|
---|
824 | list< pair<int,float> >::iterator pitMAX=JETshare.begin();
|
---|
825 | for(pit=JETshare.begin(); pit!=JETshare.end(); pit++) {
|
---|
826 | Ssum+= (*pit).second;
|
---|
827 | if((*pit).second > (*pitMAX).second) pitMAX= pit;
|
---|
828 | }
|
---|
829 |
|
---|
830 | //int IJET= (*pitMAX).first;
|
---|
831 | bool splshr;
|
---|
832 | float Eleft= fabs(TJet.Et()-Ssum);
|
---|
833 | float Djets= TempColl[(*pitMAX).first].dist_R2(TJet);
|
---|
834 | if(Djets <= _TWOrad || Eleft <= _Thresh_Diff_Et) {
|
---|
835 | TJet.erase();
|
---|
836 | splshr= false;
|
---|
837 | }
|
---|
838 | else {
|
---|
839 | float SharedFr=Ssum/min(TempColl[(*pitMAX).first].Et(),TJet.Et());
|
---|
840 | if(JETshare.size() >1) {
|
---|
841 | typename list<const CalItem*>::iterator tk;
|
---|
842 | for(tk=TJet.LItems().begin(); tk!=TJet.LItems().end(); ) {
|
---|
843 | bool found = false;
|
---|
844 | list< pair<int,float> >::iterator pit;
|
---|
845 | for(pit=JETshare.begin(); pit!=JETshare.end();pit++) {
|
---|
846 | if((*pit).first!=(*pitMAX).first) {
|
---|
847 | if(TempColl[(*pit).first].ItemInJet(*tk)==true) {
|
---|
848 | tk = TJet.LItems().erase(tk);
|
---|
849 | found = true;
|
---|
850 | break;
|
---|
851 | }
|
---|
852 | }
|
---|
853 | }
|
---|
854 | if ( !found ) ++tk;
|
---|
855 | }
|
---|
856 | }
|
---|
857 |
|
---|
858 | splshr= TempColl[(*pitMAX).first].share_jets(TJet,SharedFr,_SPLifr);
|
---|
859 |
|
---|
860 | if( splshr==true ) {
|
---|
861 | //cout << " jet splitted due to overlaps " << endl;
|
---|
862 | TempColl[(*pitMAX).first].updateEtaPhiEt();
|
---|
863 | TJet.updateEtaPhiEt();
|
---|
864 | if(_D0_Angle) TJet.D0_Angle_updateEtaPhi();
|
---|
865 | if(_D0_Angle) TempColl[(*pitMAX).first].D0_Angle_updateEtaPhi();
|
---|
866 | TempColl.push_back(TJet);
|
---|
867 | LTrack.push_back(make_pair(TJet.Eta(),TJet.Phi()));
|
---|
868 | }
|
---|
869 | else {
|
---|
870 | //cout << " jet merged due to overlaps " << endl;
|
---|
871 | TempColl[(*pitMAX).first].updateEtaPhiEt();
|
---|
872 | if(_D0_Angle) TempColl[(*pitMAX).first].D0_Angle_updateEtaPhi();
|
---|
873 | }
|
---|
874 | }
|
---|
875 | }
|
---|
876 | else {
|
---|
877 | TJet.updateEtaPhiEt();
|
---|
878 | if(_D0_Angle) TJet.D0_Angle_updateEtaPhi();
|
---|
879 | TempColl.push_back(TJet);
|
---|
880 | LTrack.push_back(make_pair(TJet.Eta(),TJet.Phi()));
|
---|
881 | }
|
---|
882 | } //JETmne
|
---|
883 | } //nojets
|
---|
884 | }// end loop jclu
|
---|
885 |
|
---|
886 | for(unsigned int i=0; i<TempColl.size(); i++) {
|
---|
887 | //EnergyCluster<CalItemAddress>* ptrclu;
|
---|
888 | CalItem ptrclu;
|
---|
889 | //r->createCluster(ptrcol,ptrclu);
|
---|
890 | list<const CalItem*> Vi;
|
---|
891 | TempColl[i].getItems(Vi);
|
---|
892 | typename list<const CalItem*>::iterator it;
|
---|
893 | for(it=Vi.begin(); it!=Vi.end(); it++) {
|
---|
894 | const CalItem* ptr= *it;
|
---|
895 | //CalItemAddress addr= ptr->address();
|
---|
896 | float p[4];
|
---|
897 | ptr->p4vec(p);
|
---|
898 | //float emE= ptr->emE();
|
---|
899 | //r->addClusterItem(ptrclu,addr,p,emE);
|
---|
900 | ptrclu.Add(*ptr);
|
---|
901 | }
|
---|
902 | jets.push_back(ptrclu);
|
---|
903 | }
|
---|
904 |
|
---|
905 | }// end
|
---|
906 |
|
---|
907 | } //namespace d0runi
|
---|
908 |
|
---|
909 | FASTJET_END_NAMESPACE
|
---|
910 |
|
---|
911 | #endif // CONECLUSTERALGO_H
|
---|
912 |
|
---|
913 |
|
---|
914 |
|
---|