[1456] | 1 | #ifndef XASTROPACK_H
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| 2 | #define XASTROPACK_H
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| 3 |
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[1475] | 4 | #include "machdefs.h"
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[1456] | 5 | #include <string.h>
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| 6 | #include <string>
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| 7 |
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| 8 | #ifdef __cplusplus
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| 9 | extern "C" { /* extern "C" */
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| 10 | #endif
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| 11 | #include "XAstro/P_.h"
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| 12 | #include "XAstro/astro.h"
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| 13 | #ifdef __cplusplus
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| 14 | } /* extern "C" */
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| 15 | #endif
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| 16 |
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[1515] | 17 | enum TypAstroCoord {
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[1808] | 18 | //------ Coordonnees de type (A,B) avec:
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| 19 | // A,B <==> alpha,delta
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| 20 | // A,B <==> longitude,latitude
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| 21 | // A,B <==> azimuth,altitude ou elevation
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[1515] | 22 |
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[1808] | 23 | //------ Les unites des coordonnees
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| 24 | TypUniteH = (unsigned long) (1 << 0), // coord en heure
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| 25 | TypUniteD = (unsigned long) (1 << 1), // coord en degre
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| 26 | TypUniteR = (unsigned long) (1 << 2), // coord en radian
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[1682] | 27 |
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[1808] | 28 | //------ Les unites des coordonnees A et B
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| 29 | TypCoord1H = (unsigned long) (1 << 3), // coord A en heure
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| 30 | TypCoord1D = (unsigned long) (1 << 4), // coord A en degre
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| 31 | TypCoord1R = (unsigned long) (1 << 5), // coord A en radian
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| 32 | TypCoord2H = (unsigned long) (1 << 6), // coord B en heure
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| 33 | TypCoord2D = (unsigned long) (1 << 7), // coord B en degre
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| 34 | TypCoord2R = (unsigned long) (1 << 8), // coord B en radian
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[1515] | 35 |
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[1808] | 36 | //------ Le type d'intervalle des coordonnees A et B
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| 37 | // Coord A intervalle... ex: [0,24[ ou [0,360[ ou [0,2Pi[
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| 38 | TypCoord1C = (unsigned long) (1 << 10),
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| 39 | // Coord A intervalle centre... ex: ]-12,12] ou ]-180,180] ou ]-Pi,Pi]
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| 40 | TypCoord1L = (unsigned long) (1 << 11),
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| 41 | // Coord B intervalle... ex: [0,12] ou [0,180] ou [0,Pi] (colatitude)
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| 42 | TypCoord2C = (unsigned long) (1 << 12),
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| 43 | // Coord B intervalle centre... ex: [-6,6] ou [-90,90] ou [-Pi/2,Pi/2] (latitude)
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| 44 | TypCoord2L = (unsigned long) (1 << 13),
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| 45 |
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| 46 | //------ Les systemes de coordonnees astronomiques
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[1515] | 47 | // Coordonnees Equatoriales alpha,delta
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[1808] | 48 | TypCoordEq = (unsigned long) (1 << 15),
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[1515] | 49 | // Coordonnees Galactiques gLong, gLat
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[1808] | 50 | TypCoordGal = (unsigned long) (1 << 16),
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[1515] | 51 | // Coordonnees Horizontales azimuth,altitude
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[1808] | 52 | TypCoordHor = (unsigned long) (1 << 17),
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[1515] | 53 | // Coordonnees Ecliptiques EclLong,EclLat
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[1808] | 54 | TypCoordEcl = (unsigned long) (1 << 18),
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| 55 |
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| 56 | //------ Les systemes de coordonnees astronomiques "standard"
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| 57 | // Coordonnees Equatoriales alpha,delta
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| 58 | TypCoordEqStd = (unsigned long) (TypCoordEq |TypCoord1C|TypCoord1H|TypCoord2L|TypCoord2D),
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| 59 | // Coordonnees Galactiques gLong, gLat
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| 60 | TypCoordGalStd = (unsigned long) (TypCoordGal|TypCoord1C|TypCoord1D|TypCoord2L|TypCoord2D),
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| 61 | // Coordonnees Horizontales azimuth,altitude
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| 62 | TypCoordHorStd = (unsigned long) (TypCoordHor|TypCoord1C|TypCoord1D|TypCoord2L|TypCoord2D),
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| 63 | // Coordonnees Ecliptiques EclLong,EclLat
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| 64 | TypCoordEclStd = (unsigned long) (TypCoordEcl|TypCoord1C|TypCoord1D|TypCoord2L|TypCoord2D),
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| 65 |
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| 66 | //------ undef pour la forme
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| 67 | TypCoordUndef = (unsigned long) (0)
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[1515] | 68 | };
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| 69 |
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[1679] | 70 | // ------------------- Utilitaires -------------------
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[1808] | 71 | unsigned long CoordConvertToStd(unsigned long typ,double* coord1,double* coord2);
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| 72 | unsigned long GetCoordUnit(int coordnum,unsigned long typ);
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| 73 | unsigned long DecodeTypAstro(const char *ctype);
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| 74 | inline unsigned long DecodeTypAstro(const string stype)
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| 75 | {return DecodeTypAstro(stype.c_str());}
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| 76 | string DecodeTypAstro(unsigned long typ);
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| 77 | void ToCoLat(double* val,unsigned long typ);
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| 78 | void InRangeLat(double* val,unsigned long typ);
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| 79 | void InRangeCoLat(double* val,unsigned long typ);
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[1456] | 80 |
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[1678] | 81 | /*!
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| 82 | \brief Pour remettre la valeur "val" dans la dynamique [0.,range[.
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| 83 | Si "vmax" different de "range", c'est la borne superieure
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| 84 | qui peut etre atteinte
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| 85 | (si elle est depassee, on soustrait "range").
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| 86 | \verbatim
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| 87 | r>0 vmax>0
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[1808] | 88 | r=24. vmax=24. -> mets "val" dans [ 0,+24[ borne sup exclue
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| 89 | r=24. vmax=12. -> mets "val" dans ]-12,+12] borne inf exclue
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[1791] | 90 | (ATTENTION: ca ne marche pas pour la latitude [-90,90]
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| 91 | car -90 ne peut etre inclus dans l'intervalle)
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[1678] | 92 | \endverbatim
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| 93 | */
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| 94 | inline void InRange(double *val,double range)
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| 95 | {*val-=range*floor(*val/range);}
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| 96 | inline void InRange(double *val,double range,double vmax)
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| 97 | {InRange(val,range); if(*val>vmax) *val-=range;}
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| 98 |
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[1679] | 99 | // ------------------- Gestions des temps -------------------
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| 100 | /*! \ingroup XAstroPack
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| 101 | \brief Compute true Julian day from MJD
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| 102 | */
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| 103 | inline double TrueJDfrMJD(double mjd) {return mjd + MJD0;}
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| 104 |
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| 105 | /*! \ingroup XAstroPack
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| 106 | \brief Compute MJD from true Julian day
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| 107 | */
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| 108 | inline double MJDfrTrueJD(double jd) {return jd - MJD0;}
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| 109 |
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[1682] | 110 | double MJDfrDate(double dy,int mn,int yr);
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| 111 | void DatefrMJD(double mjd,double *dy,int *mn,int *yr);
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| 112 | double YearfrMJD(double mjd);
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| 113 | double MJDfrYear(double yr);
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| 114 | void YDfrMJD(double mjd,double *dy,int *yr);
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| 115 | int IsLeapYear(int y);
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| 116 | int DayOrder(double mjd,int *dow);
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| 117 | int DaysInMonth(double mjd);
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| 118 | double MJDat0hFrMJD(double mjd);
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| 119 | double HfrMJD(double mjd);
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| 120 | double GSTfrUTC(double mjd0,double utc);
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| 121 | double UTCfrGST(double mjd0,double gst);
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[1679] | 122 |
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| 123 | /*! \ingroup XAstroPack
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| 124 | \brief return local sidereal time from greenwich mean siderial time and longitude
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| 125 | \param precis : if not zero, then correct for obliquity and nutation
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| 126 | \warning no nutation or obliquity correction are done.
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| 127 | */
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| 128 | inline double LSTfrGST(double gst,double geolng)
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| 129 | {double lst = gst + deghr(geolng); InRange(&lst,24.); return lst;}
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| 130 |
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| 131 | double GST0(double mjd0);
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| 132 | double LSTfrMJD(double mjd,double geolng);
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| 133 | void HMSfrHdec(double hd,int *h,int *mn,double *s);
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| 134 | double HdecfrHMS(int h,int mn,double s);
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| 135 | string ToStringHMS(int h,int mn,double s);
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| 136 | string ToStringHdec(double hd);
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| 137 |
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| 138 | // ------------------- Calculs Divers -------------------
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| 139 | void Precess(double mjd1,double mjd2,double ra1,double dec1,double *ra2,double *dec2);
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[1720] | 140 | inline void PrecessInPlace(double mjd1,double mjd2,double* ra,double* dec) {
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| 141 | double ra1=*ra, dec1=*dec;
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| 142 | Precess(mjd1,mjd2,ra1,dec1,ra,dec);
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| 143 | }
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[1682] | 144 | double AirmassfrAlt(double alt);
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| 145 | double HelioCorr(double jd,double ra,double dec);
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[1679] | 146 |
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| 147 | // ------------------- Transformation de coordonnees -------------------
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| 148 | /*! \ingroup XAstroPack
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[1720] | 149 | \brief Give the hour angle from local sideral time and right ascension
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[1679] | 150 | \warning right ascencion should be first precessed to date of interest
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| 151 | \warning no nutation or obliquity correction are done.
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| 152 | */
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| 153 | // Attention au probleme de la discontinuite 0h <==> 24h
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| 154 | // ts=1 ra=23 ; (ts-ra)=-22 <-12 --> ha = +2 = +24 + (ts-ra)
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| 155 | // ts=23 ra=1 ; (ts-ra)=+22 >+12 --> ha = -2 = -24 + (ts-ra)
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| 156 | inline double HafrRaTS(double lst,double ra)
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| 157 | {double ha = lst - ra; InRange(&ha,24.,12.); return ha;}
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| 158 |
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| 159 | /*! \ingroup XAstroPack
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| 160 | \brief Give the local sideral time and the hour angle return the right ascencion
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| 161 | \warning right ascencion is the value precessed to date of interest
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| 162 | \warning no nutation or obliquity correction are done.
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| 163 | */
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| 164 | inline double RafrHaTS(double lst,double ha)
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| 165 | {double ra = lst - ha; InRange(&ra,24.); return ra;}
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| 166 |
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| 167 | void EqtoGal(double mjd,double ra,double dec,double *glng,double *glat);
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| 168 | void GaltoEq(double mjd,double glng,double glat,double *ra,double *dec);
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| 169 | void EqHtoHor(double geolat,double ha,double dec,double *az,double *alt);
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| 170 | void HortoEqH(double geolat,double az,double alt,double *ha,double *dec);
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| 171 | void EqtoHor(double geolat,double lst,double ra,double dec,double *az,double *alt);
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| 172 | void HortoEq(double geolat,double lst,double az,double alt,double *ra,double *dec);
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| 173 | void EqtoEcl(double mjd,double ra,double dec,double *eclng,double *eclat);
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| 174 | void EcltoEq(double mjd,double eclng,double eclat,double *ra,double *dec);
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| 175 |
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| 176 | // ------------------- Positions des astres -------------------
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| 177 | void SunPos(double mjd,double *eclsn,double *ecbsn,double *rsn);
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| 178 | void MoonPos(double mjd,double *lmn,double *bmn,double *rho);
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| 179 | void PlanetPos(double mjd,int numplan,double *sunecl,double *sunecb,double *sundist
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| 180 | ,double *geodist,double *geoecl,double *geoecb
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| 181 | ,double *diamang,double *mag);
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| 182 | /*! \ingroup XAstroPack
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| 183 | \brief Same as PlanetPos above with less arguments
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| 184 | */
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| 185 | inline void PlanetPos(double mjd,int numplan,double *geoecl,double *geoecb
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| 186 | ,double *geodist,double *diamang)
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| 187 | {
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| 188 | double sunecl,sunecb,sundist,mag;
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| 189 | PlanetPos(mjd,numplan,&sunecl,&sunecb,&sundist,geodist,geoecl,geoecb,diamang,&mag);
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| 190 | }
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| 191 |
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| 192 | /*! \ingroup XAstroPack
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| 193 | \brief Give Jupiter position
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| 194 | */
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| 195 | inline void JupiterPos(double mjd,double *ecl,double *ecb,double *geodist,double *diamang)
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| 196 | {
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| 197 | PlanetPos(mjd,JUPITER,ecl,ecb,geodist,diamang);
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| 198 | }
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| 199 |
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| 200 | /*! \ingroup XAstroPack
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| 201 | \brief Give Saturn position
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| 202 | */
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| 203 | inline void SaturnPos(double mjd,double *ecl,double *ecb,double *geodist,double *diamang)
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| 204 | {
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| 205 | PlanetPos(mjd,SATURN,ecl,ecb,geodist,diamang);
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| 206 | }
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| 207 |
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[1456] | 208 | #endif
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