1 | /* ------------------------ Projet BAORadio --------------------
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2 | Programme d'extraction d'une partie de carte synchrotron
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3 | (HASLAM @ 400 MHz) et fabrication d'un cube 3D (angles,fre)
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4 | R. Ansari , C. Magneville - Juin 2010
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5 |
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6 | Usage: syncube InFitsName Out3DPPFName [Out2DMapName]
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7 | --------------------------------------------------------------- */
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8 |
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9 | #include "sopnamsp.h"
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10 | #include "machdefs.h"
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11 | #include <math.h>
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12 | #include <iostream>
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13 | #include <typeinfo>
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14 |
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15 | #include "tvector.h"
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16 | #include "srandgen.h"
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17 | #include "fioarr.h"
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18 | #include "sopemtx.h"
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19 | #include "pexceptions.h"
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20 |
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21 | #include "randr48.h"
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22 |
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23 | #include "tvector.h" // Pour l'utilisation des classes TArray, TMatrix , TVector
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24 | #include "matharr.h"
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25 |
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26 | /*
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27 | #include "spherehealpix.h" // Pour les cartes spheriques pixelisees au format HEALPix
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28 | #include "spherethetaphi.h" // Pour les cartes spheriques pixelisees au format Theta-Phi
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29 | #include "localmap.h" // Pour les cartes locales
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30 | #include "mapoperation.h" // Pour les cartes locales
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31 | */
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32 | #include "skymap.h"
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33 | #include "mapoperation.h" // Pour les cartes locales
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34 |
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35 | #include "fitsspherehealpix.h" // Pour les I/O fits de HEALPix
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36 | #include "fitsspherethetaphi.h" // Pour les I/O fits de SphereThetaPhi
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37 | #include "fitslocalmap.h" // Pour les I/O fits de LocalMap<T>
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38 |
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39 | #include "xastropack.h" // Pour faire les conversions de coordonnees celestes
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40 |
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41 | // Pour l'initialisation des modules
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42 | #include "tarrinit.h"
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43 | #include "skymapinit.h"
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44 | #include "fiosinit.h"
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45 |
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46 |
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47 | #include "timing.h"
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48 | #include "ctimer.h"
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49 |
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50 | //----------------------------------------------------------------------------
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51 | //----------------------------------------------------------------------------
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52 | int main(int narg, char* arg[])
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53 | {
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54 | // Sophya modules initialization
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55 | TArrayInitiator _inia;
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56 | SkyMapInitiator _inis;
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57 | FitsIOServerInitiator _inif;
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58 | //------- AU LIEU DE ------> SophyaInit();
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59 |
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60 | InitTim(); // Initializing the CPU timer
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61 | Timer tm("syncube");
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62 |
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63 | if (narg < 3) {
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64 | cout << "Usage: syncube InFitsName Out3DPPFName [Out2DMapName] \n" << endl;
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65 | return 1;
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66 | }
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67 |
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68 | //--- Parametres des lois de puissance en frequence
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69 | double AmpPL1 = 1.; // amp max PowerLaw 2
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70 | double PLidx1 = -2.5; // index de la loi de puissance synchrotron
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71 | double sigPLidx1 = 0.1; // Sigma de la variation (gaussienne) de index1
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72 | // Amplitude max de la 2eme composante en loi de puissance (tirage plat 0 ... AmpPL2)
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73 | double AmpPL2 = 0.1; // amp max PowerLaw 2
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74 | double PLidx2 = -3.2;
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75 | double sigPLidx2 = 0.15;
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76 |
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77 | // decodage arguments
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78 | string outname = arg[2];
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79 | string inname = arg[1];
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80 | int rc = 91;
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81 |
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82 | cout << " ====== syncube : Input map name= " << inname << " OutName=" << outname;
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83 | bool fginmap=true;
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84 | try {
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85 | SphereHEALPix<r_4> inmap0;
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86 | if (fginmap) { // Lecture eventuelle de la carte en entree
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87 | cout << " syncube[0]: Reading input map : " << inname << endl;
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88 | FitsInOutFile fis(inname, FitsInOutFile::Fits_RO);
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89 | fis >> inmap0;
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90 | cout << inmap0;
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91 | }
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92 | // On fait une carte en doublant la resolution
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93 | int nside = inmap0.SizeIndex() ; // Parametre de pixelisation HEALPix - definit la resolution
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94 | SphereHEALPix<r_4> inmap(2*nside);
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95 | for(int_4 kk=0; kk<inmap.NbPixels(); kk++) {
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96 | double theta, phi; // Theta, Phi en radians
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97 | inmap.PixThetaPhi(kk, theta, phi);
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98 | inmap(kk) = inmap0(theta, phi);
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99 | }
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100 | // Sph2Sph(inmap0, inmap);
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101 | cout << "syncube[1]: Input resolution doubled : " << inmap << endl;
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102 |
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103 | sa_size_t NTet=256;
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104 | sa_size_t NPhi=256;
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105 | LocalMap<r_4> outmap(NPhi,NTet,60.,60.,110.,150.);
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106 | for(int_4 kk=0; kk<outmap.NbPixels(); kk++) {
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107 | double theta, phi; // Theta, Phi en radians
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108 | outmap.PixThetaPhi(kk, theta, phi);
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109 | outmap(kk) = inmap(theta, phi);
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110 | }
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111 |
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112 | TArray<r_4> omap(NPhi,NTet);
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113 | double tet0 = Angle(60.,Angle::Degree).ToRadian();
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114 | double phi0 = Angle(120.,Angle::Degree).ToRadian();
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115 | double dtet = Angle(60.,Angle::Degree).ToRadian()/(double)NTet;
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116 | double dphi = Angle(60.,Angle::Degree).ToRadian()/(double)NPhi;
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117 | for (sa_size_t j=0; j<omap.SizeY(); j++) {
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118 | double theta = j*dtet+tet0;
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119 | for (sa_size_t i=0; i<omap.SizeX(); i++) {
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120 | double phi = i*dphi+phi0;
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121 | omap(i,j) = inmap(theta, phi);
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122 | }
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123 | }
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124 | // Sph2Sph(inmap,outmap);
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125 |
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126 | cout << "syncube[2]: Output rectangular map computed " << outmap << endl;
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127 | if (narg > 3) {
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128 | string ppfname = arg[3];
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129 | cout << " syncube[3]: Saving inmap/outmap tp PPF file-> " << ppfname << endl;
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130 | POutPersist po(ppfname);
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131 | po << PPFNameTag("inmap") << inmap;
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132 | po << PPFNameTag("outmap") << outmap;
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133 | po << PPFNameTag("omap") << omap;
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134 | }
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135 |
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136 | sa_size_t NFreq = 128;
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137 | TArray<r_4> ocube(NPhi,NTet,NFreq);
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138 |
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139 | double infreq = 400.; // Frequence carte input en MHz
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140 | double freq0 = 840.; // Freq0 du cube de sortie
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141 | double dfreq = 1.;
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142 |
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143 | ThSDR48RandGen rg;
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144 | for (sa_size_t j=0; j<ocube.SizeY(); j++) {
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145 | for (sa_size_t i=0; i<ocube.SizeX(); i++) {
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146 | double freqexpo = rg.Gaussian(sigPLidx1,PLidx1);
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147 | for (sa_size_t k=0; k<ocube.SizeZ(); k++) {
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148 | double rapfreq = pow((freq0+k*dfreq)/infreq, freqexpo);
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149 | ocube(i,j,k) = AmpPL1*omap(i,j)*rapfreq;
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150 | }
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151 | // On ajoute une autre composante avec un indice spectral different
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152 | freqexpo = rg.Gaussian(sigPLidx2,PLidx2);
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153 | double famp = rg.Flat01()*AmpPL2;
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154 | for (sa_size_t k=0; k<ocube.SizeZ(); k++) {
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155 | double rapfreq = pow((freq0+k*dfreq)/infreq, freqexpo);
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156 | ocube(i,j,k) += famp*omap(i,j)*rapfreq;
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157 | }
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158 |
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159 | }
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160 | }
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161 |
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162 | // On sauve le cube de sortie
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163 | {
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164 | cout << " syncube[2]: Saving output cube to -> " << outname << endl;
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165 | POutPersist poc(outname);
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166 | poc << ocube;
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167 | }
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168 |
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169 | rc = 0;
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170 | }
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171 | catch (PThrowable& exc) {
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172 | cerr << " treccyl.cc catched Exception " << exc.Msg() << endl;
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173 | rc = 77;
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174 | }
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175 | catch (std::exception& sex) {
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176 | cerr << "\n syncube.cc std::exception :"
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177 | << (string)typeid(sex).name() << "\n msg= "
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178 | << sex.what() << endl;
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179 | }
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180 | catch (...) {
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181 | cerr << " syncube.cc catched unknown (...) exception " << endl;
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182 | rc = 78;
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183 | }
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184 |
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185 | cout << ">>>> syncube[9] ------- FIN ----------- Rc=" << rc << endl;
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186 | return rc;
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187 | }
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188 |
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189 |
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