1 | #include <stdlib.h>
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2 | #include <stdio.h>
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3 | #include <string.h>
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4 | #include <math.h>
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5 |
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6 | #include "machdefs.h"
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7 | #include "fmath.h"
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8 |
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9 | #include "convlim.h"
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10 | #include "nomfits.h"
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11 | #include "nomfits2.h"
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12 | #include "datime.h"
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13 |
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14 | #include "fsvst.h"
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15 |
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16 | static float flog10(float x) { return (float)log10((double)x); }
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17 |
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18 | int COMPTE_FLUXCAL_BAD = 0;
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19 |
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20 | /* Nouvelle-Fonction */
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21 | float FluxCalibre(float fluxb, int typcal, float *pcal)
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22 | /* Calibration relative de flux */
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23 | {
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24 | float lfb,r,dlfb;
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25 | double det;
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26 |
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27 | switch (typcal)
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28 | {
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29 | case 1:
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30 | case 10:
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31 | r = pcal[0]+pcal[1]*fluxb;
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32 | break;
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33 |
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34 | case 11:
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35 | r = 0.;
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36 | if( fabsf(pcal[4]) < 1.e-19 ) {
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37 | if( fabsf((double) pcal[3]) < 1.e-19 ) break;
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38 | r = (fluxb-pcal[2])/pcal[3];
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39 | break;
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40 | }
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41 | lfb = pcal[0]+pcal[1]*fluxb;
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42 | det = pcal[3]*pcal[3]-4.*pcal[4]*(pcal[2]-fluxb);
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43 | if( det > 0 ) {
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44 | r = (-pcal[3]+sqrt(det))/(2.*pcal[4]);
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45 | dlfb = (-pcal[3]-sqrt(det))/(2.*pcal[4]);
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46 | if( fabsf(dlfb-lfb) < fabsf(r-lfb) ) r = dlfb;
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47 | } else if ( det == 0. ) r = -pcal[3]/pcal[4];
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48 | break;
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49 |
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50 | case 20:
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51 | lfb = (fluxb>0.1) ? flog10(fluxb) : -1.0;
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52 | if (lfb > pcal[2])
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53 | r = pcal[0]+pcal[1]*lfb;
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54 | else
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55 | { dlfb = lfb-pcal[2];
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56 | r = pcal[0]+pcal[1]*pcal[2]+dlfb*(pcal[3]+dlfb*pcal[4]);
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57 | }
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58 | r *= fluxb;
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59 | break;
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60 |
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61 | case 30:
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62 | r = pcal[0]+pcal[1]*fluxb;
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63 | dlfb = fluxb - pcal[2];
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64 | if (dlfb < 0.) r += pcal[3]*dlfb*dlfb;
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65 | break;
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66 |
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67 | case 40:
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68 | lfb = (fluxb>1.) ? flog10(fluxb) : 0.;
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69 | if (lfb > pcal[2]) r = pcal[0]+lfb*pcal[1];
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70 | else
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71 | { dlfb = (lfb < pcal[5]) ? (pcal[5]-pcal[2])
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72 | : (lfb-pcal[2]) ;
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73 | r = pcal[4]+dlfb*pcal[3]; }
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74 | r *= fluxb;
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75 | break;
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76 |
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77 | case 41:
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78 | lfb = (fluxb>1.) ? flog10(fluxb) : 0.;
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79 | lfb = (lfb > pcal[5]) ? lfb : pcal[5];
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80 | r = pcal[0]+lfb*pcal[1];
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81 | r *= fluxb;
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82 | break;
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83 |
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84 | case 80:
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85 | r = pcal[0]+pcal[1]*fluxb;
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86 | break;
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87 |
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88 | case 91:
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89 | r = 0.;
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90 | if(fluxb>=pcal[1]) {
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91 | /* cas des flux brillants */
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92 | if( pcal[4] <= 0. ) break;
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93 | r = (fluxb-pcal[1])/pcal[4] + pcal[0];
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94 | } else if(fluxb<=pcal[3]) {
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95 | /* cas des flux faibles */
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96 | if( pcal[7] <= 0. ) break;
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97 | r = (fluxb-pcal[3])/pcal[7] + pcal[2];
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98 | } else {
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99 | /* cas des flux moyens */
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100 | if( pcal[5] <= 0. ) break;
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101 | if( pcal[6] == 0.) {
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102 | /* pas de terme en x**2 */
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103 | r = (fluxb-pcal[3])/pcal[5] + pcal[2];
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104 | } else {
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105 | /* terme en x**2 non nul */
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106 | det = -4.*pcal[6]*(pcal[3]-fluxb)/(pcal[5]*pcal[5]);
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107 | if( fabs(det) < 0.0001 ) {
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108 | /* cas d'une correction x**2 petite, DL de sqrt() */
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109 | r = pcal[5]/(4.*pcal[6]) * det*(1.-det/4.) + pcal[2];
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110 | } else {
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111 | /* cas de la resolution normale de l'equation du 2sd */
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112 | det += 1.;
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113 | if(det<0.) break;
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114 | det = sqrt(det);
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115 | r = pcal[5]/(2.*pcal[6])*(-1.+det) + pcal[2];
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116 | if( r<pcal[2] || r>pcal[0] ) /* autre solution ?? */
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117 | r = pcal[5]/(2.*pcal[6])*(-1.-det) + pcal[2];
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118 | }
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119 | }
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120 | }
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121 | break;
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122 |
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123 | default:
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124 | if( COMPTE_FLUXCAL_BAD < 50 )
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125 | printf("FluxCalibre_Erreur: Type calibration (%d) Non prevue !\n", typcal);
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126 | COMPTE_FLUXCAL_BAD++;
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127 | r = 0.;
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128 | break;
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129 |
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130 | }
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131 |
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132 | /* printf("FluxCalibre: fluxb=%g -> %g typcal=%d pcal=%g %g %g %g %g\n"
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133 | ,fluxb,r,typcal,pcal[0],pcal[1],pcal[2],pcal[3],pcal[4]); */
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134 |
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135 | return(r);
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136 |
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137 | }
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138 |
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139 |
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140 | /* Nouvelle-Fonction */
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141 | float ErrCalibre(float efluxb, float fluxb,float fluxc,float *pfite)
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142 | /* Christophe 1/2/95 */
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143 | /* Calibration de l'erreur sur le flux calibre */
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144 | /* efluxb = erreur sur le flux brut */
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145 | /* fluxb = flux brut */
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146 | /* fluxc = flux calibre */
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147 | /* pfite = tableau des fct erreurs externes et erreurs peida */
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148 | /* RETURN: erreur sur le flux calibre */
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149 | {
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150 | float eflux,mfr,errext,errfit;
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151 | double ex;
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152 |
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153 | eflux = 0.;
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154 |
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155 | if(efluxb==0.) return(0.);
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156 | if(efluxb<0.) efluxb *= -1.;
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157 | if( fluxb==0. || fluxc==0. ) return(efluxb);
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158 | if( fluxb<0. || fluxc<0. ) {
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159 | eflux = efluxb * fluxc / fluxb;
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160 | if(eflux<0.) return(-eflux); else return(eflux);
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161 | }
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162 |
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163 | mfr = 2.5*flog10(fluxc);
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164 |
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165 | errext = 0.;
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166 | ex = pfite[0]-pfite[1]*mfr;
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167 | if(pfite[1]>0. && ex<80.) errext += exp(ex)+pfite[2];
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168 | if(errext<=0.) return (eflux);
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169 | ex = pfite[3]-pfite[4]*mfr;
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170 | if(pfite[4]>0. && ex<80.) errext += exp(ex);
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171 |
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172 | errfit = 0.;
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173 | ex = pfite[5]-pfite[6]*mfr;
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174 | if(pfite[6]>0. && ex<80.) errfit += exp(pfite[5]-pfite[6]*mfr)+pfite[7];
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175 | if(errfit<=0.) return (eflux);
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176 | ex = pfite[8]-pfite[9]*mfr;
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177 | if(pfite[9]>0. && ex<80.) errfit += exp(ex);
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178 |
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179 | eflux = efluxb * fluxc/fluxb * errext/errfit;
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180 |
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181 | return (eflux);
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182 | }
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183 |
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184 |
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185 | /* Nouvelle-Fonction */
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186 | float Erreur_Ext(float fluxc,float *pfite)
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187 | /* Christophe 2/6/95 */
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188 | /* Valeur de l'erreur externe */
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189 | /* fluxc = flux calibre */
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190 | /* pfite = tableau des fct erreurs externes */
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191 | /* RETURN: erreur externe pour le flux calibre considere */
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192 | {
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193 | float errext,mfr;
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194 | double ex;
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195 |
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196 | errext = 0.;
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197 | if( fluxc<=0. ) return (errext);
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198 | mfr = 2.5*flog10(fluxc);
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199 |
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200 | ex = pfite[0]-pfite[1]*mfr;
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201 | if(pfite[1]>0. && ex<80.) errext += exp(ex)+pfite[2];
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202 | if(errext<=0.) return (errext);
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203 | ex = pfite[3]-pfite[4]*mfr;
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204 | if(pfite[4]>0. && ex<80.) errext += exp(ex);
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205 | return (errext);
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206 | }
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207 |
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208 |
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209 | /* Nouvelle-Fonction */
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210 | void Calibre_F_E(MESUREU *mesu,TIMEINFOU *timu)
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211 | /* Christophe 1/2/95 */
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212 | /* remplissage de flux et errflux dans MESUREU */
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213 | {
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214 | int typcal;
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215 | float efluxb,fluxb,fluxc,*pcal,*pfite;
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216 |
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217 | fluxb = mesu->FluxB;
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218 | typcal = timu->FgCalib;
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219 | pcal = &(timu->Calib[0]);
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220 | mesu->Flux = fluxc = FluxCalibre(fluxb,typcal,pcal);
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221 |
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222 | efluxb = mesu->ErrFluxB;
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223 | pfite = &(timu->PFitErr[0][0]);
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224 | mesu->ErrFlux = ErrCalibre(efluxb,fluxb,fluxc,pfite);
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225 | }
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226 |
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227 | /* Nouvelle-Fonction */
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228 | MESUREU * DecodeMes( MESURE *mesc, MESUREU *mesu)
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229 |
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230 | /* Cette fonction decode les mesures de fichier de suivi type 10 */
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231 | /* Retourne le pointeur sur la structure MESUREU fourni (mesu) */
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232 |
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233 | {
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234 | float fv;
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235 |
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236 | if ((mesc == NULL) || (mesu == NULL) ) return(NULL);
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237 |
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238 | mesu->FluxB = mesc->Flux;
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239 | mesu->Flux = mesu->FluxB;
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240 | mesu->Xi2 = mesc->Xi2;
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241 | mesu->Fond = (float)mesc->Fond;
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242 | fv = (mesu->FluxB >= 0.) ? mesu->FluxB : (-mesu->FluxB);
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243 | mesu->ErrFluxB = mesc->ErrFlux*fv/10000.;
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244 | mesu->ErrFlux = mesu->ErrFluxB;
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245 |
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246 | mesu->Flx0 = (float)mesc->Flx0*10.0;
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247 | mesu->Fnd0 = (float)mesc->Fnd0;
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248 | mesu->Xi20 = (mesc->Xi20 < 0) ? (float)mesc->Xi20 :
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249 | (float)mesc->Xi20/100.0 ;
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250 | mesu->S9Pix = (float)mesc->S9Pix*9.0;
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251 | mesu->PixMax = (float)mesc->PixMax;
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252 | mesu->X = (float)mesc->X/20.;
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253 | mesu->Y = (float)mesc->Y/20.;
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254 | mesu->SigX = (float)mesc->SigX/200.0;
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255 | mesu->SigY = (float)mesc->SigY/200.0;
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256 |
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257 | return(mesu);
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258 | }
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259 |
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260 | /* Nouvelle-Fonction */
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261 | void Mes_a_zero(MESUREU *mesu)
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262 |
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263 | /* Cette fonction met a zero la structure mesu */
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264 | {
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265 |
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266 | if ( mesu == NULL ) return;
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267 | mesu->FluxB = mesu->Flux = mesu->Xi2 = mesu->Fond = 0.;
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268 | mesu->ErrFluxB = mesu->ErrFlux = 0.;
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269 | mesu->Flx0 = mesu->Fnd0 = mesu->Xi20 = 0.;
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270 | mesu->S9Pix = mesu->PixMax = 0.;
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271 | mesu->X = mesu->Y = mesu->SigX = mesu->SigY = 0.;
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272 |
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273 | return;
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274 | }
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275 |
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276 | /* Nouvelle-Fonction */
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277 | TIMEINFOU * DecodeTim( TIMEINFO *tim, TIMEINFOU *timu)
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278 |
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279 | /* Cette fonction decode les timeinfo de fichier de suivi type 10 */
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280 | /* Retourne le pointeur sur la structure timeinfou fourni (timu) */
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281 |
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282 | {
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283 | int i,j;
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284 |
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285 | if ((tim == NULL) || (timu == NULL) ) return(NULL);
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286 |
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287 | timu->NumPhoto = tim->NumPhoto;
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288 | timu->TStart = tim->TStart;
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289 | timu->Expose = tim->Expose;
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290 | timu->Fond = tim->Fond;
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291 | timu->SigFond = tim->SigFond;
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292 | timu->SigX = tim->SigX;
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293 | timu->SigY = tim->SigY;
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294 | timu->Rho = tim->Rho;
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295 | timu->DelX = tim->DelX;
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296 | timu->DelY = tim->DelY;
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297 | timu->Absorption = tim->Absorption;
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298 | timu->AirMass = tim->AirMass;
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299 | timu->FgCalib = tim->FgCalib;
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300 | for(i=0;i<8;i++) timu->Calib[i] = tim->Calib[i];
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301 | for(i=0;i<2;i++)
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302 | for(j=0;j<5;j++) timu->PFitErr[i][j] = tim->PFitErr[i][j];
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303 | timu->PSF1D = tim->PSF1D;
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304 | timu->PSF2D = tim->PSF2D;
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305 |
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306 | return(timu);
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307 | }
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308 |
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309 |
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310 |
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311 | /* Nouvelle-Fonction */
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312 | void GlobInfoToTransf(GLOBINFO *gli, TRANSFO *t1, TRANSFO *t2)
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313 | {
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314 | int i,j;
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315 |
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316 | for(i=0; i<50; i++)
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317 | t1->Polxy[0][0][i] = t2->Polxy[0][0][i]= 0.;
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318 |
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319 | for(i=0; i<2; i++)
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320 | {
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321 | t1->Polxy[0][0][i] = gli->PolxyBR[0][i];
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322 | t1->Polxy[0][1][i] = gli->PolxyBR[1][i];
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323 | t1->Polxy[1][0][i] = gli->PolxyBR[2][i];
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324 |
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325 | t2->Polxy[0][0][i] = gli->PolxyRB[0][i];
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326 | t2->Polxy[0][1][i] = gli->PolxyRB[1][i];
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327 | t2->Polxy[1][0][i] = gli->PolxyRB[2][i];
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328 |
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329 | t1->largx[i] = gli->LargX[i];
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330 | t1->largy[i] = gli->LargY[i];
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331 | t1->midx[i] = gli->MidX[i];
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332 | t1->midy[i] = gli->MidY[i];
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333 | t1->xmin[i] = gli->XMin[i];
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334 | t1->xmax[i] = gli->XMax[i];
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335 | t1->ymin[i] = gli->YMin[i];
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336 | t1->ymax[i] = gli->YMax[i];
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337 | j = (i == 0) ? 1 : 0;
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338 | t2->largx[j] = gli->LargX[i];
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339 | t2->largy[j] = gli->LargY[i];
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340 | t2->midx[j] = gli->MidX[i];
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341 | t2->midy[j] = gli->MidY[i];
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342 | t2->xmin[j] = gli->XMin[i];
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343 | t2->xmax[j] = gli->XMax[i];
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344 | t2->ymin[j] = gli->YMin[i];
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345 | t2->ymax[j] = gli->YMax[i];
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346 |
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347 | }
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348 | t1->DegPolxy = t2->DegPolxy = gli->DegPolTG;
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349 | return;
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350 | }
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351 |
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352 |
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353 | /* Nouvelle-Fonction */
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354 | void TimeInfoToTransf(TIMEINFO *tminf, TRANSFO *t1, TRANSFO *t2)
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355 | {
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356 | int i,j;
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357 |
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358 | for(i=0; i<50; i++)
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359 | t1->Polxy[0][0][i] = t2->Polxy[0][0][i]= 0.;
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360 |
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361 | for(i=0; i<2; i++)
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362 | {
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363 | t1->Polxy[0][0][i] = tminf->PolxyRC[0][i];
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364 | t1->Polxy[0][1][i] = tminf->PolxyRC[1][i];
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365 | t1->Polxy[1][0][i] = tminf->PolxyRC[2][i];
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366 |
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367 | t2->Polxy[0][0][i] = tminf->PolxyCR[0][i];
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368 | t2->Polxy[0][1][i] = tminf->PolxyCR[1][i];
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369 | t2->Polxy[1][0][i] = tminf->PolxyCR[2][i];
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370 |
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371 | t1->largx[i] = tminf->LargX[i];
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372 | t1->largy[i] = tminf->LargY[i];
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373 | t1->midx[i] = tminf->MidX[i];
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374 | t1->midy[i] = tminf->MidY[i];
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375 | t1->xmin[i] = tminf->XMin[i];
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376 | t1->xmax[i] = tminf->XMax[i];
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377 | t1->ymin[i] = tminf->YMin[i];
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378 | t1->ymax[i] = tminf->YMax[i];
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379 | j = (i == 0) ? 1 : 0;
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380 | t2->largx[j] = tminf->LargX[i];
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381 | t2->largy[j] = tminf->LargY[i];
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382 | t2->midx[j] = tminf->MidX[i];
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383 | t2->midy[j] = tminf->MidY[i];
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384 | t2->xmin[j] = tminf->XMin[i];
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385 | t2->xmax[j] = tminf->XMax[i];
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386 | t2->ymin[j] = tminf->YMin[i];
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387 | t2->ymax[j] = tminf->YMax[i];
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388 |
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389 | }
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390 | t1->DegPolxy = t2->DegPolxy = tminf->DegPolTG;
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391 | return;
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392 | }
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393 |
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394 |
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395 | /* Nouvelle-Fonction */
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396 | void PrtGlobInfo (GLOBINFO *glinf, int lp)
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397 | /* Impression de la struture GlobInfo */
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398 | {
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399 | int i;
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400 | TRANSFO t1,t2;
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401 | char strg[32], s[5];
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402 |
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---|
403 | if (!glinf->NumChamp)
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404 | printf("GLOBINFO: (Codage EROS-1) NumCCD=%d Couleur=%d\n"
|
---|
405 | ,glinf->NumCCD,glinf->Couleur);
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406 | else
|
---|
407 | {
|
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408 | unsigned long numchamp = glinf->NumChamp;
|
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409 | dec2zeza(numchamp, strg, 32);
|
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410 | if( strlen(strg) < 5) for(i=(int) strlen(strg); i<5; i++) strg[i] = '?';
|
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411 |
|
---|
412 | strg[5] = ' ';
|
---|
413 | strg[6] = '0' + glinf->Couleur%10;
|
---|
414 | dec2zeza((unsigned long) glinf->Couleur/10, s, 5);
|
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415 | if(strlen(s)>0) strg[9] = s[0]; else strg[9] = '?';
|
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416 |
|
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417 | strg[7] = '0' + glinf->NumCCD%10;
|
---|
418 | dec2zeza((unsigned long) glinf->NumCCD/10, s, 5);
|
---|
419 | if(strlen(s)>0) strg[8] = s[0]; else strg[8] = '?';
|
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420 |
|
---|
421 | strg[10] = '\0';
|
---|
422 |
|
---|
423 | printf("GLOBINFO: (Codage EROS-2) %s ",strg);
|
---|
424 | HMStoStr(HtoHMS((double)glinf->AlphaHr),strg);
|
---|
425 | printf(" Alpha,Delta= %s ", strg);
|
---|
426 | HMStoStr(DtoDMS((double)glinf->DeltaDg),strg);
|
---|
427 | printf(" %s ", strg);
|
---|
428 | printf(" gain= %g e/ADU\n",glinf->GainCCD);
|
---|
429 | if (lp > 2) printf(" Codage Champ=%d Coul=%d CCD=%d\n",
|
---|
430 | glinf->NumChamp,glinf->Couleur,glinf->NumCCD);
|
---|
431 | }
|
---|
432 | if (lp > 0)
|
---|
433 | {
|
---|
434 | printf(" IRes:");
|
---|
435 | for(i=0;i<4;i++) printf(" %d",glinf->IRes[i]);
|
---|
436 | putchar('\n');
|
---|
437 | printf(" FRes:");
|
---|
438 | for(i=0;i<2;i++) printf(" %g",glinf->FRes[i]);
|
---|
439 | putchar('\n');
|
---|
440 | }
|
---|
441 | if (lp > 1)
|
---|
442 | {
|
---|
443 | GlobInfoToTransf(glinf,&t1,&t2);
|
---|
444 | printf(" Transfo Col1->Col2\n"); PrintTransfo(&t1);
|
---|
445 | printf(" Transfo Col2->Col1\n"); PrintTransfo(&t2);
|
---|
446 | }
|
---|
447 |
|
---|
448 | return;
|
---|
449 | }
|
---|
450 |
|
---|
451 | /* Nouvelle-Fonction */
|
---|
452 | void PrtStarInfo (STARINFO *sti,int n,int lp)
|
---|
453 | /* Impression de la struture StarInfo */
|
---|
454 | {
|
---|
455 | int i;
|
---|
456 |
|
---|
457 | printf("STARINFO[%d]: NumEt=%d XRef=%d X/YPos=%g %g \n",n
|
---|
458 | ,sti->NumEt,sti->XRef,sti->XPos,sti->YPos);
|
---|
459 |
|
---|
460 | if(lp>0)
|
---|
461 | {
|
---|
462 | printf(" FlxMean/Sig=%g %g FluxRef=%g FgRef=%d\n"
|
---|
463 | ,sti->FlxMean,sti->FlxSig,sti->FluxRef,sti->FgRef);
|
---|
464 | printf(" NbVois=%d Voisin=",sti->NbVois);
|
---|
465 | for(i=0;i<8;i++) printf(" %d",sti->Voisin[i]);
|
---|
466 | printf("\n");
|
---|
467 | printf(" DisMin,DisM2,DisM2R=%g %g %g\n"
|
---|
468 | ,sti->DisMin,sti->DisM2,sti->DisM2R);
|
---|
469 | }
|
---|
470 |
|
---|
471 | }
|
---|
472 |
|
---|
473 |
|
---|
474 | /* Nouvelle-Fonction */
|
---|
475 | void PrtMesure (MESURE *mes,int n,int lp)
|
---|
476 | /* Impression de la struture Mesure */
|
---|
477 | {
|
---|
478 | printf("MES[%d]: Flx=%g (+/-%d) c2=%g Fnd=%d S9=%d pmx=%d\n",n
|
---|
479 | ,mes->Flux,mes->ErrFlux,mes->Xi2,mes->Fond,mes->S9Pix,mes->PixMax);
|
---|
480 |
|
---|
481 | if(lp>0)
|
---|
482 | printf(" Flx0=%d Fnd0=%d Xi20=%d X/Y=%d %d SigX/Y=%d %d\n"
|
---|
483 | ,mes->Flx0,mes->Fnd0,mes->Xi20,mes->X,mes->Y,mes->SigX,mes->SigY);
|
---|
484 |
|
---|
485 | }
|
---|
486 |
|
---|
487 | /* Nouvelle-Fonction */
|
---|
488 | void PrtMesureU (MESUREU *mesu,int n,int lp)
|
---|
489 | /* Impression de la struture MesureU */
|
---|
490 | {
|
---|
491 | printf("MESU[%d]: Flx=%g (err=%g) FlB=%g c2=%g Fd=%g S9=%g pmx=%g\n",n
|
---|
492 | ,mesu->Flux,mesu->ErrFlux,mesu->FluxB
|
---|
493 | ,mesu->Xi2,mesu->Fond,mesu->S9Pix,mesu->PixMax);
|
---|
494 |
|
---|
495 | if(lp>0)
|
---|
496 | printf(" Flx0=%g Fnd0=%g Xi20=%g X/Y=%g %g SigX/Y=%g %g\n"
|
---|
497 | ,mesu->Flx0,mesu->Fnd0,mesu->Xi20,mesu->X,mesu->Y,mesu->SigX,mesu->SigY);
|
---|
498 |
|
---|
499 | }
|
---|
500 |
|
---|
501 | /* Nouvelle-Fonction */
|
---|
502 | void PrtTimeInfo (TIMEINFO *tim,int n,int lp)
|
---|
503 | /* Impression de la struture TimeInfo */
|
---|
504 | {
|
---|
505 | TRANSFO t1,t2;
|
---|
506 | float td;
|
---|
507 | int i;
|
---|
508 | int_4 date,t; HMS T; JMA J;
|
---|
509 | char strg[32];
|
---|
510 |
|
---|
511 | DecodeNumPhoto(tim->NumPhoto, strg);
|
---|
512 |
|
---|
513 | td = (float)tim->TStart/86400.;
|
---|
514 | printf("TimeInfo[%d]: Photo %s (%d) TStart=%d s (%g d) V=%5.2f (Rev=%d)\n",
|
---|
515 | n, strg, tim->NumPhoto, tim->TStart, td,
|
---|
516 | (float)tim->Version/1000.,tim->Revision);
|
---|
517 |
|
---|
518 | if (lp < 1)
|
---|
519 | printf(" .Exp=%d s SigX,Y/Rho= %6.3f %6.3f %6.3f Absor= %5.2f DelX/Y= %6.2f %6.2f\n",
|
---|
520 | tim->Expose, tim->SigX,tim->SigY,tim->Rho,
|
---|
521 | tim->Absorption,tim->DelX,tim->DelY);
|
---|
522 |
|
---|
523 | if(lp>=1)
|
---|
524 | {
|
---|
525 | printf(" .Exp=%d SigX,Y/Rho= %6.3f %6.3f %6.3f Absor= %5.2f AirMass= %5.2f\n",
|
---|
526 | tim->Expose,tim->SigX,tim->SigY,tim->Rho,
|
---|
527 | tim->Absorption,tim->AirMass);
|
---|
528 | if (lp == 1)
|
---|
529 | printf(" ..Cal (%d) %g %g %g DelX/Y=%6.2f %6.2f \n"
|
---|
530 | ,tim->FgCalib,tim->Calib[0],tim->Calib[1],tim->Calib[2]
|
---|
531 | ,tim->DelX,tim->DelY);
|
---|
532 | }
|
---|
533 |
|
---|
534 | if(lp>1)
|
---|
535 | {
|
---|
536 | printf(" TypPSF 1D= %d 2D= %d SgX= %6.3f SgY= %6.3f\n",
|
---|
537 | tim->PSF1D, tim->PSF2D, tim->SgX, tim->SgY);
|
---|
538 | printf(" Cal (%d)",tim->FgCalib);
|
---|
539 | for(i=0;i<8;i++) printf(" %g",tim->Calib[i]);
|
---|
540 | printf("\n");
|
---|
541 |
|
---|
542 | printf(" Fond=%g SFond=%g NbOkPS/GF=%d %d DelX/Y=%g %g\n"
|
---|
543 | ,tim->Fond,tim->SigFond,tim->NbOkPS,tim->NbOkGF
|
---|
544 | ,tim->DelX,tim->DelY);
|
---|
545 |
|
---|
546 | printf(" PFitErr[0]=");
|
---|
547 | for(i=0;i<5;i++) printf(" %g",tim->PFitErr[0][i]);
|
---|
548 | printf("\n");
|
---|
549 | printf(" PFitErr[1]=");
|
---|
550 | for(i=0;i<5;i++) printf(" %g",tim->PFitErr[1][i]);
|
---|
551 | printf("\n");
|
---|
552 | }
|
---|
553 |
|
---|
554 | if(lp>2)
|
---|
555 | {
|
---|
556 | printf(" Resol[0]:");
|
---|
557 | for(i=0;i<6;i++) printf(" %7.4f",tim->Resol[0][i]);
|
---|
558 | printf("\n");
|
---|
559 | printf(" Resol[1]:");
|
---|
560 | for(i=0;i<6;i++) printf(" %7.4f",tim->Resol[1][i]);
|
---|
561 | printf("\n");
|
---|
562 | printf(" Resol[2]:");
|
---|
563 | for(i=0;i<6;i++) printf(" %7.4f",tim->Resol[2][i]);
|
---|
564 | printf("\n");
|
---|
565 |
|
---|
566 | InttoDateTs((uint_4) tim->DateHeure,&date,&t);
|
---|
567 | StrgtoJMA("1/1/1990",J); date += JMAtoJ(J);
|
---|
568 | J = JtoJMA(date);
|
---|
569 | T = SectoHMS((double) t);
|
---|
570 | JMAtoStrg(J,&strg[15]);
|
---|
571 | HMStoStr(T,&strg[0]);
|
---|
572 | printf(" DateHeure: %d (%s %s)",tim->DateHeure,&strg[15],&strg[0]);
|
---|
573 | InttoDateTs((uint_4) tim->TSid,&date,&t);
|
---|
574 | T = SectoHMS((double) t);
|
---|
575 | HMStoStr(T,&strg[0]);
|
---|
576 | printf(" TSid= %d (%s)\n",tim->TSid,&strg[0]);
|
---|
577 | InttoDateTs((uint_4) tim->DTU,&date,&t);
|
---|
578 | StrgtoJMA("1/1/1990",J); date += JMAtoJ(J);
|
---|
579 | J = JtoJMA(date);
|
---|
580 | T = SectoHMS((double) t);
|
---|
581 | JMAtoStrg(J,&strg[15]);
|
---|
582 | HMStoStr(T,&strg[0]);
|
---|
583 | printf(" DTU: %d (%s %s)",tim->DTU,&strg[15],&strg[0]);
|
---|
584 | printf(" FRes: %g \n", tim->FRes);
|
---|
585 |
|
---|
586 | printf(" ObsId=%d PxSiz=%g %g CrVal=%g %g\n",tim->ObsId
|
---|
587 | ,tim->PxSiz[0],tim->PxSiz[1],tim->CrVal[0],tim->CrVal[1]);
|
---|
588 |
|
---|
589 | TimeInfoToTransf(tim,&t1,&t2);
|
---|
590 | printf(" Transfo Ref->Cur\n"); PrintTransfo(&t1);
|
---|
591 | printf(" Transfo Cur->Ref\n"); PrintTransfo(&t2);
|
---|
592 | }
|
---|
593 |
|
---|
594 | }
|
---|
595 |
|
---|
596 | /* Nouvelle-Fonction */
|
---|
597 | void PrtTimeInfoU (TIMEINFOU *tim,int n,int lp)
|
---|
598 | /* Impression de la struture TimeInfoU */
|
---|
599 | {
|
---|
600 | int i;
|
---|
601 | float td;
|
---|
602 | char strg[32];
|
---|
603 |
|
---|
604 | DecodeNumPhoto(tim->NumPhoto, strg);
|
---|
605 |
|
---|
606 | td = (float)tim->TStart/86400.;
|
---|
607 |
|
---|
608 | printf("TIMU[%d]: Photo# %d (%s) TStart=%d (%g d) Exp=%d psf=%d,%d\n",
|
---|
609 | n,tim->NumPhoto,strg,tim->TStart,td,tim->Expose,tim->PSF1D,tim->PSF2D);
|
---|
610 |
|
---|
611 | if (lp < 1)
|
---|
612 | printf(".SigX,Y/Rho= %6.3f %6.3f %6.3f Absor= %5.2f DelX/Y= %6.2f %6.2f \n",
|
---|
613 | tim->SigX,tim->SigY,tim->Rho,tim->Absorption,tim->DelX,tim->DelY);
|
---|
614 |
|
---|
615 | if(lp>=1)
|
---|
616 | {
|
---|
617 | printf(".SigX,Y/Rho= %6.3f %6.3f %6.3f Absor= %5.2f AirMass= %6.2f\n"
|
---|
618 | ,tim->SigX,tim->SigY,tim->Rho,tim->Absorption,tim->AirMass);
|
---|
619 | printf(".Fond/SFond= %g %g DelX/Y=%6.2f %6.2f\n"
|
---|
620 | ,tim->Fond,tim->SigFond,tim->DelX,tim->DelY);
|
---|
621 | printf(" Cal (%d)",tim->FgCalib);
|
---|
622 | for(i=0;i<8;i++) printf(" %g",tim->Calib[i]);
|
---|
623 | printf("\n");
|
---|
624 | }
|
---|
625 |
|
---|
626 | if(lp>1)
|
---|
627 | {
|
---|
628 | printf(" PFitErr[0]=");
|
---|
629 | for(i=0;i<5;i++) printf(" %g",tim->PFitErr[0][i]);
|
---|
630 | printf("\n");
|
---|
631 | printf(" PFitErr[1]=");
|
---|
632 | for(i=0;i<5;i++) printf(" %g",tim->PFitErr[1][i]);
|
---|
633 | printf("\n");
|
---|
634 | }
|
---|
635 |
|
---|
636 | }
|
---|
637 |
|
---|