| 1 | ///////////////////////////////////////////////////////////////////////// | 
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| 2 | // Starfield Generator | 
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| 3 | // | 
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| 4 | // (c) 2000 D. Petry | 
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| 5 | // | 
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| 6 | // 15/09/2004, A. Moralejo: | 
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| 7 | // - Adapted to gcc 3.2 under root 3.05.07 | 
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| 8 | // - Fixed algorithm to calculate director cosines of incident photons. | 
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| 9 | //   Former algorithm resulted in mirrored images on the camera (which we | 
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| 10 | //   must not have after reflection on a parabollic dish). | 
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| 11 | // | 
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| 12 | // 04/10/2004, A. Moralejo: | 
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| 13 | // - Added to Makefile  root-config --libs  to the libraries. Otherwise | 
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| 14 | //   the program does not link in some machines in Munich! | 
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| 15 | // | 
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| 16 | ///////////////////////////////////////////////////////////////////////// | 
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| 17 |  | 
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| 18 |  | 
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| 19 | #include "starfield.h" | 
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| 20 |  | 
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| 21 | #define PROGRAMID "$Id: starfield.cxx,v 1.5 2004-10-04 11:34:49 moralejo Exp $" | 
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| 22 |  | 
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| 23 | ///////////////////////////////////////////////////////////////////////// | 
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| 24 |  | 
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| 25 | int main(int argc, char **argv) | 
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| 26 | { | 
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| 27 |  | 
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| 28 | parameters pars; | 
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| 29 | star stars[iMAXSTARS]; | 
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| 30 | photon *photons; | 
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| 31 |  | 
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| 32 | ifstream in; | 
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| 33 | FILE *catfile; | 
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| 34 | char parfilename[160]; | 
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| 35 | char catfilename[160]; | 
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| 36 |  | 
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| 37 |  | 
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| 38 | int i, j, k, numstars, subnumstars, starnumber, totalnumphot, photinside; | 
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| 39 | int totalphotinside, idum; | 
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| 40 | int istart_ra_h, iend_ra_h; | 
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| 41 | int nph[4]; // numbers of photons in the four wavebands | 
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| 42 | float lmin_nm[4] = {ULMIN_nm, BLMIN_nm, VLMIN_nm, RLMIN_nm}; // wave band definitions | 
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| 43 | float lmax_nm[4] = {ULMAX_nm, BLMAX_nm, VLMAX_nm, RLMAX_nm}; | 
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| 44 | float theta_rad, costheta, sintheta, phi_rad, randtime, lambda_nm, xdum_m, ydum_m; | 
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| 45 | float cosa, cosA, sinA; | 
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| 46 | float angdist; | 
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| 47 |  | 
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| 48 | //welcome | 
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| 49 |  | 
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| 50 | cout << "This is STARFIELD. (c) 2000 D. Petry\n"; | 
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| 51 | cout << PROGRAMID << "\n"; | 
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| 52 |  | 
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| 53 | // check command line arguments | 
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| 54 |  | 
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| 55 | if(argc == 1){ | 
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| 56 | sprintf(parfilename, "starfield.par"); | 
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| 57 | } | 
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| 58 | else{ // a filename was given | 
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| 59 | sprintf(parfilename, "%s", argv[1]); | 
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| 60 | } | 
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| 61 |  | 
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| 62 | // read parameter file | 
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| 63 |  | 
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| 64 | in.open(parfilename, ios::in); // open the parameter file | 
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| 65 |  | 
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| 66 | if(!in){ | 
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| 67 | cout << "Failed to open " << parfilename << "\n" | 
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| 68 | << "Value of stream \"in\" was " << in << "\n"; | 
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| 69 | cout << "\nThere shoud be a parameter file "<< parfilename | 
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| 70 | <<" in the working directory with the following format:\n-----\n"; | 
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| 71 | pars.usage(&cout); | 
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| 72 | cout << "-----\nExiting.\n"; | 
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| 73 | exit(1); | 
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| 74 | } | 
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| 75 |  | 
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| 76 | cout << "Opened " << parfilename << " for reading ...\n"; | 
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| 77 |  | 
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| 78 | if( !(pars.readparameters(&in)) ){ // read not OK? | 
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| 79 | if(!in.eof()){ // was the error not due to EOF? | 
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| 80 | cout << "Error: rdstate = " << in.rdstate() << "\n"; | 
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| 81 | } | 
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| 82 | else{ | 
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| 83 | cout << "Error: premature EOF in parameter file.\n"; | 
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| 84 | } | 
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| 85 | exit(1); | 
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| 86 | } | 
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| 87 |  | 
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| 88 | in.close(); | 
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| 89 |  | 
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| 90 | // Allocate memory for photons | 
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| 91 |  | 
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| 92 | photons=new photon[iMAXPHOT]; | 
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| 93 |  | 
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| 94 |  | 
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| 95 | // prepare loop over star catalog files | 
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| 96 |  | 
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| 97 | cout << "SKY2000 - Master Star Catalog - Star Catalog Database, Version 2\n"; | 
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| 98 | cout << "Sande C.B., Warren W.H.Jr., Tracewell D.A., Home A.T., Miller A.C.\n"; | 
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| 99 | cout << "<Goddard Space Flight Center, Flight Dynamics Division (1998)>\n"; | 
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| 100 |  | 
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| 101 | angdist = fmod( (float) (pars.catalog_fov_deg/cos( pars.ct_dec_rad )), | 
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| 102 | (float) 360.); | 
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| 103 |  | 
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| 104 | if(angdist > 180.){ // too near to the pole, have to loop over all files | 
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| 105 |  | 
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| 106 | istart_ra_h = 0; | 
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| 107 | iend_ra_h = 23; | 
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| 108 |  | 
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| 109 | } | 
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| 110 | else{ // can loop over selected files only | 
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| 111 |  | 
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| 112 | istart_ra_h = (int) (pars.ct_ra_h - angdist / 360. * 24.) - 1; | 
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| 113 | iend_ra_h = (int) (pars.ct_ra_h + angdist / 360. * 24. ) + 1; | 
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| 114 |  | 
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| 115 | } | 
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| 116 |  | 
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| 117 | //read catalog | 
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| 118 |  | 
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| 119 | i = 0; | 
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| 120 | for (j = istart_ra_h; j <= iend_ra_h; j++){ | 
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| 121 |  | 
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| 122 | subnumstars = 0; | 
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| 123 |  | 
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| 124 | if ( j <  0){ | 
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| 125 | idum = j + 24; | 
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| 126 | } | 
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| 127 | else if ( j > 23 ){ | 
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| 128 | idum = j - 24; | 
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| 129 | } | 
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| 130 | else { | 
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| 131 | idum = j; | 
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| 132 | } | 
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| 133 |  | 
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| 134 | sprintf(catfilename, "%s/sky%02d.dat", pars.datapath, idum); | 
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| 135 |  | 
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| 136 | if((catfile = fopen(catfilename, "r")) == NULL){ // open the star catalog | 
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| 137 | cout << "Failed to open " << catfilename << "\n"; | 
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| 138 | exit(1); | 
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| 139 | } | 
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| 140 | cout << "Opened file " << catfilename << " for reading ...\n"; | 
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| 141 |  | 
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| 142 | while( stars[i].readstar(catfile, pars.verbose) ){ // read next star OK | 
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| 143 |  | 
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| 144 | angdist = acos( cos( pars.ct_dec_rad ) * cos( stars[i].dec_rad ) * | 
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| 145 | cos( stars[i].ra_rad - pars.ct_ra_rad ) + | 
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| 146 | sin( pars.ct_dec_rad ) * sin( stars[i].dec_rad ) ); | 
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| 147 |  | 
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| 148 | if( angdist < pars.catalog_fov_deg / 180. * PI ){ // star in Field Of View? | 
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| 149 |  | 
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| 150 | stars[i].calcmissingmags(pars.verbose); | 
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| 151 | if (pars.verbose) stars[i].printstar(); | 
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| 152 |  | 
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| 153 | if( stars[i].umag > -100. ){ | 
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| 154 | i++; // accept star | 
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| 155 | subnumstars++; | 
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| 156 | } | 
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| 157 | else{ | 
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| 158 | cout << "Star rejected.\n"; | 
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| 159 | } | 
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| 160 |  | 
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| 161 | if( i > iMAXSTARS ){ | 
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| 162 | i--; | 
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| 163 | cout << "Error: Star memory full. Accepted " << i << " stars.\n"; | 
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| 164 | break; | 
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| 165 | } | 
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| 166 | } | 
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| 167 | } | 
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| 168 | if( feof(catfile) ){ // was  EOF reached? | 
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| 169 | cout << "EOF reached; accepted "<< subnumstars << " stars from this segment.\n"; | 
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| 170 | } | 
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| 171 | if( ferror(catfile) ){ // did an error occur? | 
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| 172 | cout << "Error while reading catalog file.\n"; | 
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| 173 | exit(1); | 
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| 174 | } | 
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| 175 | fclose(catfile); | 
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| 176 | if(i == iMAXSTARS){ | 
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| 177 | break; | 
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| 178 | } | 
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| 179 | } | 
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| 180 |  | 
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| 181 | cout << "Accepted "<< i << " stars in total.\n"; | 
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| 182 | numstars = i; | 
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| 183 |  | 
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| 184 | // loop over all photons from all stars, filling their fields | 
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| 185 |  | 
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| 186 | totalnumphot=0; | 
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| 187 |  | 
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| 188 | totalphotinside=0; | 
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| 189 |  | 
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| 190 | for(i=0; i<numstars;i++){ | 
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| 191 |  | 
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| 192 | starnumber=stars[i].icatnum; | 
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| 193 |  | 
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| 194 | // calculate director cosines (see Montenbruck & Pfleger, 1989, p. 196) | 
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| 195 |  | 
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| 196 | costheta = cos( pars.ct_dec_rad ) * cos( stars[i].dec_rad ) * | 
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| 197 | cos( stars[i].ra_rad - pars.ct_ra_rad ) + | 
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| 198 | sin( pars.ct_dec_rad ) * sin( stars[i].dec_rad ); | 
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| 199 |  | 
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| 200 | if(costheta == 0.){ | 
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| 201 | cout << "Star number " << i << " (catalog number " << stars[i].icatnum << | 
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| 202 | ") seems to be at 90 degrees distance from optical axis.\n ... will ignore it."; | 
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| 203 | continue; | 
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| 204 | } | 
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| 205 |  | 
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| 206 | sintheta = sqrt(1.-costheta*costheta); | 
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| 207 |  | 
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| 208 | // | 
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| 209 | // A. Moralejo, 15/09/2004 | 
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| 210 | // We want the director cosines of the down-going versors along the photon | 
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| 211 | // incident directions. This is what the Reflector program expects (also from the | 
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| 212 | // normal Corsika output). We have used simple spherical trigonometry to obtain | 
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| 213 | // the formulae. | 
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| 214 | // | 
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| 215 |  | 
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| 216 | // "cosa" is the cosine of the angle "a" between the star direction and the direction | 
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| 217 | // defined by declination = 0  and right ascension = ct_ra. "a" is one of the sides of | 
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| 218 | // a spherical triangle. It is a quantity needed for the calculations. | 
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| 219 |  | 
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| 220 | cosa = cos( stars[i].ra_rad - pars.ct_ra_rad ) * cos( stars[i].dec_rad ); | 
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| 221 |  | 
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| 222 | // cosA is the angle between the great circle of constant right ascension = ct_ra  and | 
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| 223 | // the great circle defined by the star direction and the telescope direction. "A" would | 
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| 224 | // be the angle opposite to the side "a" of a spherical triangle (see above) | 
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| 225 |  | 
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| 226 | cosA = (cosa - costheta*cos(pars.ct_dec_rad)) / (sintheta*sin(pars.ct_dec_rad)); | 
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| 227 |  | 
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| 228 | // We now want A to be defined in the 0 - 2pi range, so that it becomes the azimuth angle | 
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| 229 | // of the star in a system defined by the telescope direction. "A" will be defined between | 
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| 230 | // 0 and pi if sin (star_ra - ct_ra) > 0, and between pi and 2 pi otherwise. | 
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| 231 |  | 
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| 232 | sinA = sqrt (1.-cosA*cosA); | 
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| 233 | if ( sin(stars[i].ra_rad - pars.ct_ra_rad ) < 0. ) | 
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| 234 | sinA *= -1.; | 
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| 235 |  | 
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| 236 | stars[i].u = -1. * sintheta * cosA; | 
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| 237 | stars[i].v = -1. * sintheta * sinA; | 
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| 238 |  | 
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| 239 |  | 
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| 240 | // Old implementation, commented out 15/09/2004: | 
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| 241 | // | 
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| 242 | // This produced director cosines which, when fed to reflector, makes on the camera plane | 
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| 243 | // a mirror-inverted image of the FOV (with respect to what one would see "by eye"). That | 
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| 244 | // is NOT what we want! After reflection on the parabollic mirror, the image on the camera | 
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| 245 | // is NOT mirrored, but just rotated by 180 degree. The new implementation above produces | 
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| 246 | // the correct FOV (tested with Reflector 0.6) | 
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| 247 | // | 
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| 248 | //    stars[i].u = -1. * cos( stars[i].dec_rad ) * sin( stars[i].ra_rad - pars.ct_ra_rad ) / costheta; | 
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| 249 | //    stars[i].v = -1. * ( sin( pars.ct_dec_rad ) * cos( stars[i].dec_rad ) * | 
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| 250 | //           cos( stars[i].ra_rad - pars.ct_ra_rad ) - | 
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| 251 | //           cos( pars.ct_dec_rad ) * sin( stars[i].dec_rad ) | 
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| 252 | //           ) / costheta; | 
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| 253 |  | 
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| 254 |  | 
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| 255 | // calculate the "zenith angle" theta and "azimuth" phi of the star assuming | 
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| 256 | // the telecope points at the zenith | 
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| 257 | // take into account the ambiguity of acos() | 
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| 258 |  | 
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| 259 | theta_rad = acos(costheta); | 
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| 260 |  | 
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| 261 | if( stars[i].v >= 0. ){ | 
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| 262 | phi_rad = acos(stars[i].u); | 
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| 263 | } | 
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| 264 | else{ | 
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| 265 | phi_rad = 2.*PI - acos(stars[i].u); | 
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| 266 | } | 
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| 267 |  | 
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| 268 | // calculate number of photons | 
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| 269 |  | 
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| 270 | // mag_nphot() translates the star magnitude into number of photons, | 
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| 271 | // using the expression log(flux)=-0.4*m-22.42 for each waveband | 
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| 272 | // the resulting numbers ar stored in the array nph | 
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| 273 |  | 
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| 274 | stars[i].mag_nphot(nph, pars.integtime_s, pars.mirr_radius_m, pars.verbose); | 
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| 275 |  | 
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| 276 | // loop over all photons | 
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| 277 |  | 
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| 278 | photinside=0; | 
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| 279 |  | 
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| 280 | for(k=0; k < 4; k++){ // loop over wavebands | 
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| 281 |  | 
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| 282 | for(j=0; j<nph[k]; j++){ // loop over photons of this waveband | 
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| 283 |  | 
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| 284 | // Check if we have overflowed the alllowed ph number | 
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| 285 |  | 
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| 286 | if(totalphotinside >= iMAXPHOT){ | 
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| 287 | cout << "Warning: photon memory full. Can only store " << iMAXPHOT << " photons.\n"; | 
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| 288 | break; | 
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| 289 | //exit(1); | 
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| 290 | } | 
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| 291 |  | 
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| 292 | // for every photon, a pair of uniform random x,y coordinates ( x*x+y*y<300 ) is generated | 
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| 293 | // and a uniform random arrival time inside a time window given by the integration time. | 
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| 294 |  | 
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| 295 | xdum_m=rand_coord(pars.mirr_radius_m); | 
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| 296 | ydum_m=rand_coord(pars.mirr_radius_m); | 
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| 297 |  | 
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| 298 | if((xdum_m*xdum_m+ydum_m*ydum_m)<pars.mirr_radius_m*pars.mirr_radius_m){ | 
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| 299 |  | 
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| 300 | randtime = rand_time(pars.integtime_s); | 
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| 301 | lambda_nm = rand_lambda(lmin_nm[k], lmax_nm[k]); | 
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| 302 |  | 
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| 303 | //fill the photon fields by using the member functions defined in photon.hxx | 
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| 304 |  | 
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| 305 | photons[totalphotinside].starnum = starnumber; | 
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| 306 | photons[totalphotinside].arrtime_sec = randtime; | 
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| 307 | photons[totalphotinside].x_m = xdum_m; | 
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| 308 | photons[totalphotinside].y_m = ydum_m; | 
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| 309 | photons[totalphotinside].u = stars[i].u; | 
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| 310 | photons[totalphotinside].v = stars[i].v; | 
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| 311 | photons[totalphotinside].lambda_nm = lambda_nm; | 
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| 312 |  | 
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| 313 | if(pars.verbose > 2) | 
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| 314 | cout << "PH " << starnumber << " " << randtime << " " << xdum_m << " " | 
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| 315 | << ydum_m << " " << stars[i].u << " " << stars[i].v << " " << lambda_nm | 
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| 316 | << "\n"; | 
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| 317 |  | 
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| 318 | photinside++; | 
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| 319 |  | 
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| 320 | totalphotinside++; | 
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| 321 |  | 
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| 322 | totalnumphot++; | 
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| 323 |  | 
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| 324 | } | 
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| 325 | else{ | 
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| 326 |  | 
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| 327 | totalnumphot++; | 
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| 328 | continue; | 
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| 329 |  | 
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| 330 | } // end if | 
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| 331 |  | 
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| 332 | } // end photon loop | 
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| 333 | } // end waveband loop | 
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| 334 |  | 
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| 335 | stars[i].numphot = photinside; | 
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| 336 | //if (i>81) break; | 
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| 337 | if (pars.verbose) cout<<"Star number= "<<i<< " (catalog number " << | 
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| 338 | starnumber << ") Number of photons accepted = "<< photinside<<endl; | 
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| 339 |  | 
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| 340 | } // end star loop | 
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| 341 |  | 
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| 342 | cout << "Total number of photons accepted = " <<  totalphotinside << "\n"; | 
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| 343 |  | 
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| 344 | convertcorsika( | 
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| 345 | ((int)pars.ct_ra_h*10)*1000 + (int)(fabs(pars.ct_dec_deg)*10), // the file id | 
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| 346 | totalphotinside, photons, pars.integtime_s, pars.verbose, pars.output_file); | 
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| 347 |  | 
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| 348 | return 0; | 
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| 349 |  | 
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| 350 | } // end main | 
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