1 | /*
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2 | - Test des divers calcul de ligne de base pour la couleur 0
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3 | (la couleur 1 n'est pas traitee)
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4 | */
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5 | #include "sopnamsp.h"
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6 | #include "machdefs.h"
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7 | #include <stdlib.h>
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8 | #include <math.h>
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9 | #include <stdio.h>
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10 | #include <string.h>
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11 |
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12 | #include "fsvcache.h"
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13 | #include "nbmath.h"
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14 | #include "fmath.h"
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15 | #include "filtccd.h"
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16 | #include "fsvst.h"
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17 | #include "nbsread.h"
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18 | #include "nbgene.h"
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19 |
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20 | #include "ntuple.h"
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21 |
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22 | void FILL_USER(void);
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23 |
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24 | #define N 5
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25 |
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26 | float *TimeU,*FluxU,*FluxFlU,*eFluxU,*eFluxFlU,*FluxUnoA,*AmpliU;
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27 | int_4 npt_;
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28 |
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29 | POutPersist *pos_ = NULL;
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30 | NTuple *ntbase = NULL;
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31 |
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32 | /*==========================================================================*/
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33 | void UINIT(void)
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34 | {
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35 | pos_ = new POutPersist("nbsread_base.ppf");
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36 | }
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37 |
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38 | /*===========================================================================*/
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39 | #define NXNT 28
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40 | void UINITCCD(void)
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41 | {
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42 | int_4 n;
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43 | n = ( nmesure[0] > 0 ) ? nmesure[0] : 1 ;
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44 | TimeU = (float*) malloc((size_t) n*sizeof(float));
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45 | FluxU = (float*) malloc((size_t) n*sizeof(float));
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46 | eFluxU = (float*) malloc((size_t) n*sizeof(float));
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47 | FluxFlU = (float*) malloc((size_t) n*sizeof(float));
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48 | eFluxFlU = (float*) malloc((size_t) n*sizeof(float));
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49 | FluxUnoA = (float*) malloc((size_t) n*sizeof(float));
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50 | AmpliU = (float*) malloc((size_t) n*sizeof(float));
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51 |
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52 | // Create NTuple
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53 | const char *nament[NXNT] = {
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54 | "et","xref","flr","dm1","dm21","xp","yp","npt"
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55 | ,"mean","sig","sigi"
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56 | ,"meanB","sigB"
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57 | ,"meanS","sigS","rcS"
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58 | ,"meanSs","sigSs","rcSs"
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59 | ,"meanP","rcP"
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60 | ,"meanPs","rcPs"
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61 | ,"u0","t0","tau","a0","npta"
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62 | };
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63 | if(ntbase == NULL) delete ntbase;
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64 | ntbase = new NTuple(NXNT,nament);
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65 |
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66 | }
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67 |
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68 | /*=========================================================================*/
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69 | void UDATCLEAN(int coul)
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70 | /* pour tuer une photo selon des criteres utilisateur, mettre date a GRAND2 */
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71 | {
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72 | int_4 ic = coul-1;
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73 | if(nmes[ic]<=0) return;
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74 | for(int i=0;i<nmes[ic];i++) {
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75 | if(date[ic][i]<0.) date[ic][i] = GRAND2;
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76 | if(timeu[ic][i].FgCalib<=0) date[ic][i] = GRAND2;
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77 | }
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78 | }
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79 |
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80 | /*=========================================================================*/
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81 | void UEVT(void)
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82 | {
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83 | int i,n,rc,nptas;
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84 | float mean,sigmaI,sigma,most;
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85 | float xnt[NXNT];
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86 |
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87 | /* association rouge-bleu existante et correcte */
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88 | if(staru[0].NumEt <= 0 ) return;
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89 | if(staru[0].FluxRef<= 0.) return;
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90 | for(i=0;i<NXNT;i++) xnt[i] = -9999.;
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91 |
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92 | FILL_USER();
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93 |
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94 | if( iet[0]%50 == 0 )
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95 | printf("UEVT: et=[%7d,%7d] pt nmesure=[%5d] npt=[%5d]\n"
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96 | ,iet[0],iet[1],nmesure[0],npt_);
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97 |
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98 | /* on remplit le ntuple de selection */
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99 | xnt[0]= iet[0];
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100 | xnt[1]= staru[0].XRef;
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101 | xnt[2] = staru[0].FluxRef;
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102 | xnt[3] = staru[0].DisMin;
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103 | xnt[4] = staru[0].DisM2;
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104 | xnt[5] = staru[0].XPos;
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105 | xnt[6] = staru[0].YPos;
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106 | xnt[7] = npt_;
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107 |
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108 | /****************** Filtre Median *******************************/
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109 | n = npt_;
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110 | rc = FiltMed(FluxU,eFluxU,FluxFlU,eFluxFlU,n);
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111 | if(rc<0) for(i=0;i<npt_;i++) {FluxFlU[i]=FluxU[i]; eFluxFlU[i]=eFluxU[i];}
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112 |
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113 | /****************** Moyenne non amplifiee *******************************/
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114 | n = npt_;
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115 | rc = MeanLine(FluxUnoA,eFluxU,&n,2,4.,&mean,&sigma);
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116 | if(rc==0) {
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117 | xnt[8] = mean;
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118 | xnt[9] = sigma;
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119 | }
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120 |
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121 | /*********************** Calcul du sigma interne ***************************/
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122 | nptas = 0;
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123 | n = npt_;
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124 | sigmaI = SigmaInt(TimeU,FluxU,eFluxU,&n,4.);
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125 | if(sigmaI>0) {
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126 | xnt[10] = sigmaI;
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127 | }
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128 | if(sigmaI>0 && mean>0) {
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129 | for(i=0;i<npt_;i++) if(eFluxU[i]>0 && (AmpliU[i]-1.)*mean<sigmaI) nptas++;
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130 | }
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131 |
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132 | /****************** Calcul de la base sur donnees filtrees ************/
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133 | n = npt_; rc=-1;
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134 | if(sigmaI>0) rc = BaseLine(FluxFlU,eFluxFlU,&n,4.,sigmaI,&mean,&sigma,&most);
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135 | if(rc>=0) {
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136 | xnt[11] = most;
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137 | xnt[12] = sigma;
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138 | }
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139 |
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140 | rc = BaseLineS(FluxU,eFluxU,npt_,N,&mean,&sigma);
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141 | if(rc>0) {
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142 | xnt[13] = mean;
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143 | xnt[14] = sigma;
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144 | xnt[15] = rc;
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145 | }
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146 |
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147 | rc = BaseLineS(FluxU,eFluxU,npt_,-N,&mean,&sigma);
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148 | if(rc>0) {
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149 | xnt[16] = mean;
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150 | xnt[17] = sigma;
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151 | xnt[18] = rc;
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152 | }
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153 |
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154 | rc = BaseLineP(FluxU,eFluxU,npt_,N,&mean);
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155 | if(rc>0) {
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156 | xnt[19] = mean;
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157 | xnt[20] = rc;
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158 | }
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159 |
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160 | rc = BaseLineP(FluxU,eFluxU,npt_,-N,&mean);
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161 | if(rc>0) {
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162 | xnt[21] = mean;
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163 | xnt[22] = rc;
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164 | }
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165 |
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166 | xnt[23] = mc.U0Sim;
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167 | xnt[24] = mc.T0Sim;
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168 | xnt[25] = mc.TauSim;
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169 | xnt[26] = mc.A0Max;
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170 | xnt[27] = nptas;
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171 |
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172 | ntbase->Fill(xnt);
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173 |
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174 | }
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175 |
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176 | /*=========================================================================*/
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177 | void UENDCCD(void)
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178 | {
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179 | free(TimeU); free(FluxU); free(eFluxU); free(FluxUnoA);
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180 | free(FluxFlU); free(eFluxFlU); free(AmpliU);
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181 |
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182 | if(ntbase->NEntry()>0) pos_->PutObject(*ntbase,"ntbase");
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183 | if(ntbase!=NULL) delete ntbase; ntbase = NULL;
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184 | }
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185 |
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186 | /*=========================================================================*/
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187 | void UEND(void)
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188 | {
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189 | if(pos_!=NULL) delete pos_; pos_ = NULL;
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190 | }
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191 |
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192 | /*=========================================================================*/
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193 | void FILL_USER(void)
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194 | {
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195 | int i,j;
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196 | double Flux,FluxB,Xi2,ErrFlux;
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197 |
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198 | npt_=0;
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199 | for(i=0;i<nmesure[0];i++) {
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200 | j = indexu[0][i];
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201 | FluxB = mesu[0][j].FluxB;
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202 | Flux = mesu[0][j].Flux;
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203 | ErrFlux = mesu[0][j].ErrFlux;
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204 | Xi2 = mesu[0][j].Xi2;
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205 | if( ErrFlux<0. ) ErrFlux *= -1.;
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206 | if( Xi2<=0. || ErrFlux==0. ) continue;
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207 | TimeU[npt_] = date[0][j];
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208 | FluxUnoA[npt_] = Flux;
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209 | if(mc.montecar > 0) Flux *= ampli[0][j];
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210 | AmpliU[npt_] = ampli[0][j];
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211 | FluxU[npt_] = Flux;
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212 | eFluxU[npt_] = ErrFlux;
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213 | npt_++;
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214 | }
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215 |
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216 | }
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