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281 lines
8.5 KiB
C
281 lines
8.5 KiB
C
/*
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* This file is part of the sofa project.
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* Copyright 2020 Edward V. Emelianov <edward.emelianoff@gmail.com>.
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*
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* This program is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include <usefull_macros.h>
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#include "sofatools.h"
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static placeData *pldata = NULL;
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// temporal stubs for weather/place/DUT1 data; return 0 if all OK
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placeData *getPlace(){
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if(pldata) return pldata;
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pldata = malloc(sizeof(placeData));
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/* Site longitude, latitude (radians) and height above the geoid (m). */
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pldata->slong = 0.7232763200;
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pldata->slat = 0.7618977414;
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pldata->salt = 2070.0; // altitude
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return pldata;
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}
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static placeWeather W = {0};
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// set weather parameters: pressure, temperature and humidity
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void setWeath(double P, double T, double H){
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W.php = P;
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W.tc = T;
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W.relhum = H;
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}
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int getWeath(placeWeather *w){
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if(!w) return 0;
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memcpy(w, &W, sizeof(placeWeather));
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return 0;
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}
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int getDUT(almDut *a){
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if(!a) return 0;
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a->px = a->py = 0;
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a->DUT1 = -0.25080;
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return 0;
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}
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char *radtodeg(double r){
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static char buf[128];
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int i[4]; char pm;
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r = iauAnpm(r);
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iauA2af(2, r, &pm, i);
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snprintf(buf, 128, "%c%02d %02d %02d.%02d", pm, i[0],i[1],i[2],i[3]);
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return buf;
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}
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char *radtohrs(double r){
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static char buf[128];
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int i[4]; char pm;
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r = iauAnp(r);
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iauA2tf(2, r, &pm, i);
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snprintf(buf, 128, "%02d:%02d:%02d.%02d", i[0],i[1],i[2],i[3]);
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return buf;
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}
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/**
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* @brief get_MJDt - calculate MJD of date from argument
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* @param tval (i) - given date (or NULL for current)
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* @param MJD (o) - time (or NULL just to check)
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* @return 0 if all OK
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*/
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int get_MJDt(struct timeval *tval, sMJD *MJD){
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struct tm tms;
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double tSeconds;
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if(!tval){
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//DBG("MJD for current time");
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struct timeval currentTime;
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gettimeofday(¤tTime, NULL);
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gmtime_r(¤tTime.tv_sec, &tms);
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tSeconds = tms.tm_sec + ((double)currentTime.tv_usec)/1e6;
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}else{
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gmtime_r(&tval->tv_sec, &tms);
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tSeconds = tms.tm_sec + ((double)tval->tv_usec)/1e6;
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}
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int y, m, d;
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y = 1900 + tms.tm_year;
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m = tms.tm_mon + 1;
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d = tms.tm_mday;
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double utc1, utc2;
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/* UTC date. */
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if(iauDtf2d("UTC", y, m, d, tms.tm_hour, tms.tm_min, tSeconds, &utc1, &utc2) < 0) return -1;
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if(!MJD) return 0;
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MJD->MJD = utc1 - 2400000.5 + utc2;
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MJD->utc1 = utc1;
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MJD->utc2 = utc2;
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//DBG("UTC(m): %g, %.8f\n", utc1 - 2400000.5, utc2);
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if(iauUtctai(utc1, utc2, &MJD->tai1, &MJD->tai2)) return -1;
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//DBG("TAI");
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if(iauTaitt(MJD->tai1, MJD->tai2, &MJD->tt1, &MJD->tt2)) return -1;
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//DBG("TT");
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return 0;
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}
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/**
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* @brief get_LST - calculate local siderial time
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* @param mjd (i) - date/time for LST (utc1 & tt used)
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* @param dUT1 - (UT1-UTC)
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* @param slong - site longitude (radians)
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* @param LST (o) - local sidereal time (radians)
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* @return 0 if all OK
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*/
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int get_LST(sMJD *mjd, double dUT1, double slong, double *LST){
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double ut11, ut12;
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if(iauUtcut1(mjd->utc1, mjd->utc2, dUT1, &ut11, &ut12)) return 1;
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/*double era = iauEra00(ut11, ut12) + slong;
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double eo = iauEe06a(mjd->tt1, mjd->tt2);
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printf("ERA = %s; ", radtohrs(era));
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printf("ERA-eo = %s\n", radtohrs(era-eo));*/
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if(!LST) return 0;
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double ST = iauGst06a(ut11, ut12, mjd->tt1, mjd->tt2);
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ST += slong;
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if(ST > D2PI) ST -= D2PI;
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else if(ST < -D2PI) ST += D2PI;
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*LST = ST;
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return 0;
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}
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/**
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* @brief hor2eq - convert horizontal coordinates to polar
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* @param h (i) - horizontal coordinates
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* @param pc (o) - polar coordinates
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* @param sidTime - sidereal time
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*/
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void hor2eq(horizCrds *h, polarCrds *pc, double sidTime){
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if(!h || !pc) return;
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placeData *p = getPlace();
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iauAe2hd(h->az, DPI/2. - h->zd, p->slat, &pc->ha, &pc->dec); // A,H -> HA,DEC; phi - site latitude
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pc->ra = sidTime - pc->ha;
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pc->eo = 0.;
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}
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/**
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* @brief eq2horH - convert polar coordinates to horizontal
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* @param pc (i) - polar coordinates (only HA used)
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* @param h (o) - horizontal coordinates
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* @param sidTime - sidereal time
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*/
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void eq2horH(polarCrds *pc, horizCrds *h){
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if(!h || !pc) return;
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placeData *p = getPlace();
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double alt;
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iauHd2ae(pc->ha, pc->dec, p->slat, &h->az, &alt);
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h->zd = DPI/2. - alt;
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}
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/**
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* @brief eq2hor - convert polar coordinates to horizontal
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* @param pc (i) - polar coordinates (only RA used)
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* @param h (o) - horizontal coordinates
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* @param sidTime - sidereal time
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*/
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void eq2hor(polarCrds *pc, horizCrds *h, double sidTime){
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if(!h || !pc) return;
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double ha = sidTime - pc->ra + pc->eo;
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placeData *p = getPlace();
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double alt;
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iauHd2ae(ha, pc->dec, p->slat, &h->az, &alt);
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h->zd = DPI/2. - alt;
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}
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/**
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* @brief get_ObsPlace - calculate observed place (without PM etc) for given date @550nm
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* @param tval (i) - time
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* @param p2000 (i) - polar coordinates for J2000 (only ra/dec used), ICRS (catalog)
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* @param pnow (o) - polar coordinates for given epoch (or NULL)
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* @param hnow (o) - horizontal coordinates for given epoch (or NULL)
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* @return 0 if all OK
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*/
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int get_ObsPlace(struct timeval *tval, polarCrds *p2000, polarCrds *pnow, horizCrds *hnow){
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double pr = 0.0; // RA proper motion (radians/year; Note 2)
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double pd = 0.0; // Dec proper motion (radians/year)
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double px = 0.0; // parallax (arcsec)
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double rv = 0.0; // radial velocity (km/s, positive if receding)
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sMJD MJD;
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if(get_MJDt(tval, &MJD)) return -1;
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if(!p2000) return -1;
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placeData *p = getPlace();
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placeWeather w;
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almDut d;
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if(!p) return -1;
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if(getWeath(&w)) return -1;
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if(getDUT(&d)) return -1;
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/* Effective wavelength (microns) */
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double wl = 0.55;
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/* ICRS to observed. */
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double aob, zob, hob, dob, rob, eo;
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if(iauAtco13(p2000->ra, p2000->dec,
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pr, pd, px, rv,
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MJD.utc1, MJD.utc2,
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d.DUT1,
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p->slong, p->slat, p->salt,
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d.px, d.py,
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w.php, w.tc, w.relhum,
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wl,
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&aob, &zob,
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&hob, &dob, &rob, &eo)) return -1;
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DBG("(RA/HA/DEC) J2000: %g/%g/%g; Jnow: %g/%g/%g", p2000->ra, p2000->ha, p2000->dec, rob, hob, dob);
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if(pnow){
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pnow->eo = eo;
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pnow->ha = hob;
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pnow->ra = rob;
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pnow->dec = dob;
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}
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if(hnow){
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hnow->az = aob;
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hnow->zd = zob;
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}
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return 0;
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}
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#if 0
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typedef struct{
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double ra;
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double dec;
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} polar;
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/**
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* @brief J2000toJnow - convert ra/dec between epochs
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* @param in - J2000 (degrees)
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* @param out - Jnow (degrees)
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* @return
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*/
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int J2000toJnow(const polar *in, polar *out){
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if(!out) return 1;
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double utc1, utc2;
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time_t tsec;
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struct tm *ts;
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tsec = time(0); // number of seconds since the Epoch, 1970-01-01 00:00:00 +0000 (UTC)
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ts = gmtime(&tsec);
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int result = 0;
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result = iauDtf2d ( "UTC", ts->tm_year+1900, ts->tm_mon+1, ts->tm_mday, ts->tm_hour, ts->tm_min, ts->tm_sec, &utc1, &utc2 );
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if (result != 0) {
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fprintf(stderr, "iauDtf2d call failed\n");
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return 1;
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}
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// Make TT julian date for Atci13 call
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double tai1, tai2;
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double tt1, tt2;
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result = iauUtctai(utc1, utc2, &tai1, &tai2);
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if(result){
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fprintf(stderr, "iauUtctai call failed\n");
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return 1;
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}
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result = iauTaitt(tai1, tai2, &tt1, &tt2);
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if(result){
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fprintf(stderr, "iauTaitt call failed\n");
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return 1;
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}
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double pr = 0.0; // RA proper motion (radians/year; Note 2)
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double pd = 0.0; // Dec proper motion (radians/year)
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double px = 0.0; // parallax (arcsec)
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double rv = 0.0; // radial velocity (km/s, positive if receding)
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double rc = DD2R * in->ra, dc = DD2R * in->dec; // convert into radians
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double ri, di, eo;
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iauAtci13(rc, dc, pr, pd, px, rv, tt1, tt2, &ri, &di, &eo);
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out->ra = iauAnp(ri - eo) * DR2D;
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out->dec = di * DR2D;
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return 0;
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}
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#endif
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