| [1457] | 1 | /* find rise and set circumstances, ie, riset_cir() and related functions. */
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 | 2 | 
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 | 3 | #include <stdio.h>
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 | 4 | #include <math.h>
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 | 5 | #if defined(__STDC__)
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 | 6 | #include <stdlib.h>
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 | 7 | #include <string.h>
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 | 8 | #endif
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 | 9 | 
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 | 10 | #include "P_.h"
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 | 11 | #include "astro.h"
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 | 12 | #include "circum.h"
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 | 13 | 
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 | 14 | #define TMACC   (10./3600./24.0)        /* convergence accuracy, days */
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 | 15 | 
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 | 16 | static void e_riset_cir P_((Now *np, Obj *op, double dis, RiseSet *rp));
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 | 17 | static int find_0alt P_((double dt, double dis, Now *np, Obj *op));
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 | 18 | static int find_transit P_((double dt, Now *np, Obj *op));
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 | 19 | static int find_max P_((Now *np, Obj *op, double tr, double ts, double *tp,
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 | 20 |     double *alp));
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 | 21 | 
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 | 22 | /* find where and when an object, op, will rise and set and
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 | 23 |  *   it's transit circumstances. all times are utc mjd, angles rads e of n.
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 | 24 |  * dis is the angle down from an ideal horizon, in rads (see riset()).
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 | 25 |  * N.B. dis should NOT include refraction, we do that here.
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 | 26 |  */
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 | 27 | void
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 | 28 | riset_cir (np, op, dis, rp)
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 | 29 | Now *np;
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 | 30 | Obj *op;
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 | 31 | double dis;
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 | 32 | RiseSet *rp;
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 | 33 | {
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 | 34 |         double mjdn;    /* mjd of local noon */
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 | 35 |         double lstn;    /* lst at local noon */
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 | 36 |         double lr, ls;  /* lst rise/set times */
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 | 37 |         double ar, as;  /* az of rise/set */
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 | 38 |         double ran;     /* RA at noon */
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 | 39 |         Now n;          /* copy to move time around */
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 | 40 |         Obj o;          /* copy to get circumstances at n */
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 | 41 |         int rss;        /* temp status */
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 | 42 | 
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 | 43 |         /* work with local copies so we can move the time around */
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 | 44 |         (void) memcpy ((void *)&n, (void *)np, sizeof(n));
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 | 45 |         (void) memcpy ((void *)&o, (void *)op, sizeof(o));
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 | 46 | 
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 | 47 |         /* fast Earth satellites need a different approach.
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 | 48 |          * "fast" here is pretty arbitrary -- just too fast to work with the
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 | 49 |          * iterative approach based on refining the times for a "fixed" object.
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 | 50 |          */
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 | 51 |         if (op->o_type == EARTHSAT && op->es_n > FAST_SAT_RPD) {
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 | 52 |             e_riset_cir (&n, &o, dis, rp);
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 | 53 |             return;
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 | 54 |         }
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 | 55 | 
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 | 56 |         /* assume no problems initially */
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 | 57 |         rp->rs_flags = 0;
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 | 58 | 
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 | 59 |         /* start the iteration at local noon */
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 | 60 |         mjdn = mjd_day(mjd - tz/24.0) + tz/24.0 + 0.5;
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 | 61 |         n.n_mjd = mjdn;
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 | 62 |         now_lst (&n, &lstn);
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 | 63 | 
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 | 64 |         /* first approximation is to find rise/set times of a fixed object
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 | 65 |          * at the current epoch in its position at local noon.
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 | 66 |          * N.B. add typical refraction for initial go/no-go test. if it
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 | 67 |          *   passes, real code does refraction rigorously.
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 | 68 |          */
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 | 69 |         n.n_mjd = mjdn;
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 | 70 |         if (obj_cir (&n, &o) < 0) {
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 | 71 |             rp->rs_flags = RS_ERROR;
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 | 72 |             return;
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 | 73 |         }
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 | 74 |         ran = o.s_gaera;
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 | 75 |         riset (o.s_gaera, o.s_gaedec, lat, dis+.01, &lr, &ls, &ar, &as, &rss);
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 | 76 |         switch (rss) {
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 | 77 |         case  0:  break;
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 | 78 |         case  1: rp->rs_flags = RS_NEVERUP; return;
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 | 79 |         case -1: rp->rs_flags = RS_CIRCUMPOLAR; goto dotransit;
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 | 80 |         default: rp->rs_flags = RS_ERROR; return;
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 | 81 |         }
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 | 82 | 
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 | 83 |         /* iterate to find better rise time */
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 | 84 |         n.n_mjd = mjdn;
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 | 85 |         switch (find_0alt ((lr - lstn)/SIDRATE, dis, &n, &o)) {
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 | 86 |         case 0: /* ok */
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 | 87 |             rp->rs_risetm = n.n_mjd;
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 | 88 |             rp->rs_riseaz = o.s_az;
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 | 89 |             break;
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 | 90 |         case -1: /* obj_cir error */
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 | 91 |             rp->rs_flags |= RS_RISERR;
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 | 92 |             break;
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 | 93 |         case -2: /* converged but not today */ /* FALLTHRU */
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 | 94 |         case -3: /* probably never up */
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 | 95 |             rp->rs_flags |= RS_NORISE;
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 | 96 |             break;
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 | 97 |         }
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 | 98 | 
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 | 99 |         /* iterate to find better set time */
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 | 100 |         n.n_mjd = mjdn;
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 | 101 |         switch (find_0alt ((ls - lstn)/SIDRATE, dis, &n, &o)) {
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 | 102 |         case 0: /* ok */
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 | 103 |             rp->rs_settm = n.n_mjd;
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 | 104 |             rp->rs_setaz = o.s_az;
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 | 105 |             break;
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 | 106 |         case -1: /* obj_cir error */
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 | 107 |             rp->rs_flags |= RS_SETERR;
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 | 108 |             break;
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 | 109 |         case -2: /* converged but not today */ /* FALLTHRU */
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 | 110 |         case -3: /* probably circumpolar */
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 | 111 |             rp->rs_flags |= RS_NOSET;
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 | 112 |             break;
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 | 113 |         }
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 | 114 | 
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 | 115 |         /* can try transit even if rise or set failed */
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 | 116 |     dotransit:
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 | 117 |         n.n_mjd = mjdn;
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 | 118 |         switch (find_transit ((radhr(ran) - lstn)/SIDRATE, &n, &o)) {
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 | 119 |         case 0: /* ok */
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 | 120 |             rp->rs_trantm = n.n_mjd;
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 | 121 |             rp->rs_tranalt = o.s_alt;
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 | 122 |             break;
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 | 123 |         case -1: /* did not converge */
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 | 124 |             rp->rs_flags |= RS_TRANSERR;
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 | 125 |             break;
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 | 126 |         case -2: /* converged but not today */
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 | 127 |             rp->rs_flags |= RS_NOTRANS;
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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 | /* find local times when sun is dis rads below horizon.
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 | 133 |  */
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 | 134 | void
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 | 135 | twilight_cir (np, dis, dawn, dusk, status)
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 | 136 | Now *np;
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 | 137 | double dis;
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 | 138 | double *dawn, *dusk;
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 | 139 | int *status;
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 | 140 | {
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 | 141 |         RiseSet rs;
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 | 142 |         Obj o;
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 | 143 | 
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 | 144 |         o.o_type = PLANET;
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 | 145 |         o.pl.pl_code = SUN;
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 | 146 |         (void) strcpy (o.o_name, "Sun");
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 | 147 |         riset_cir (np, &o, dis, &rs);
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 | 148 |         *dawn = rs.rs_risetm;
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 | 149 |         *dusk = rs.rs_settm;
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 | 150 |         *status = rs.rs_flags;
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 | 151 | }
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 | 152 | 
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 | 153 | /* find where and when a fast-moving Earth satellite, op, will rise and set and
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 | 154 |  *   it's transit circumstances. all times are mjd, angles rads e of n.
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 | 155 |  * dis is the angle down from the local topo horizon, in rads (see riset()).
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 | 156 |  * idea is to walk forward in time looking for alt+dis==0 crossings.
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 | 157 |  * initial time step is a few degrees (based on average daily motion).
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 | 158 |  * we stop as soon as we see both a rise and set.
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 | 159 |  * N.B. we assume *np and *op are working copies we can mess up.
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 | 160 |  */
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 | 161 | static void
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 | 162 | e_riset_cir (np, op, dis, rp)
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 | 163 | Now *np;
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 | 164 | Obj *op;
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 | 165 | double dis;
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 | 166 | RiseSet *rp;
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 | 167 | {
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 | 168 | #define DEGSTEP 5               /* time step is about this many degrees */
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 | 169 |         int steps;              /* max number of time steps */
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 | 170 |         double dt;              /* time change per step, days */
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 | 171 |         double t0, t1;          /* current and next mjd values */
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 | 172 |         double a0, a1;          /* altitude at t0 and t1 */
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 | 173 |         int rise, set;          /* flags to check when we find these events */
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 | 174 |         int i;
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 | 175 | 
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 | 176 |         dt = DEGSTEP * (1.0/360.0/op->es_n);
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 | 177 |         steps = (int)(1.0/dt);
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 | 178 |         rise = set = 0;
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 | 179 |         rp->rs_flags = 0;
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 | 180 | 
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 | 181 |         if (obj_cir (np, op) < 0) {
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 | 182 |             rp->rs_flags |= RS_ERROR;
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 | 183 |             return;
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 | 184 |         }
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 | 185 | 
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 | 186 |         t0 = mjd;
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 | 187 |         a0 = op->s_alt + dis;
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 | 188 | 
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 | 189 |         for (i = 0; i < steps && (!rise || !set); i++) {
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 | 190 |             mjd = t1 = t0 + dt;
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 | 191 |             if (obj_cir (np, op) < 0) {
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 | 192 |                 rp->rs_flags |= RS_ERROR;
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 | 193 |                 return;
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 | 194 |             }
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 | 195 |             a1 = op->s_alt + dis;
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 | 196 | 
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 | 197 |             if (a0 < 0 && a1 > 0 && !rise) {
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 | 198 |                 /* found a rise event -- interate to refine */
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 | 199 |                 switch (find_0alt (0.0, dis, np, op)) {
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 | 200 |                 case 0: /* ok */
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 | 201 |                     rp->rs_risetm = np->n_mjd;
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 | 202 |                     rp->rs_riseaz = op->s_az;
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 | 203 |                     rise = 1;
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 | 204 |                     break;
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 | 205 |                 case -1: /* obj_cir error */
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 | 206 |                     rp->rs_flags |= RS_RISERR;
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 | 207 |                     return;
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 | 208 |                 case -2: /* converged but not today */ /* FALLTHRU */
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 | 209 |                 case -3: /* probably never up */
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 | 210 |                     rp->rs_flags |= RS_NORISE;
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 | 211 |                     return;
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 | 212 |                 }
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 | 213 |             } else if (a0 > 0 && a1 < 0 && !set) {
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 | 214 |                 /* found a setting event -- interate to refine */
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 | 215 |                 switch (find_0alt (0.0, dis, np, op)) {
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 | 216 |                 case 0: /* ok */
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 | 217 |                     rp->rs_settm = np->n_mjd;
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 | 218 |                     rp->rs_setaz = op->s_az;
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 | 219 |                     set = 1;
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 | 220 |                     break;
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 | 221 |                 case -1: /* obj_cir error */
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 | 222 |                     rp->rs_flags |= RS_SETERR;
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 | 223 |                     return;
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 | 224 |                 case -2: /* converged but not today */ /* FALLTHRU */
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 | 225 |                 case -3: /* probably circumpolar */
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 | 226 |                     rp->rs_flags |= RS_NOSET;
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 | 227 |                     return;
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 | 228 |                 }
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 | 229 |             }
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 | 230 | 
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 | 231 |             t0 = t1;
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 | 232 |             a0 = a1;
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 | 233 |         }
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 | 234 | 
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 | 235 |         /* instead of transit, for satellites we find time of maximum
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 | 236 |          * altitude, if we know both the rise and set times and the former
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 | 237 |          * occurs before the latter.
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 | 238 |          */
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 | 239 |         if (rise && set && rp->rs_risetm < rp->rs_settm) {
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 | 240 |             double tt, al;
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 | 241 |             if (find_max (np, op, rp->rs_risetm, rp->rs_settm, &tt, &al) < 0) {
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 | 242 |                 rp->rs_flags |= RS_TRANSERR;
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 | 243 |                 return;
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 | 244 |             }
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 | 245 |             rp->rs_trantm = tt;
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 | 246 |             rp->rs_tranalt = al;
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 | 247 |         } else
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 | 248 |             rp->rs_flags |= RS_NOTRANS;
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 | 249 | 
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 | 250 |         /* check for some bad conditions */
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 | 251 |         if (!rise) {
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 | 252 |             if (a0 > 0)
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 | 253 |                 rp->rs_flags |= RS_CIRCUMPOLAR;
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 | 254 |             else
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 | 255 |                 rp->rs_flags |= RS_NORISE;
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 | 256 |         }
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 | 257 |         if (!set) {
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 | 258 |             if (a0 < 0)
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 | 259 |                 rp->rs_flags |= RS_NEVERUP;
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 | 260 |             else
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 | 261 |                 rp->rs_flags |= RS_NOSET;
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 | 262 |         }
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 | 263 | }
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 | 264 | 
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 | 265 | /* given a Now at noon and a dt from noon, in hours, for a first approximation
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 | 266 |  * to a rise or set event, refine the event by searching for when alt+dis = 0.
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 | 267 |  * return 0: if find one within 12 hours of noon with np and op set to the
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 | 268 |  *    better time and circumstances;
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 | 269 |  * return -1: if error from obj_cir;
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 | 270 |  * return -2: if converges but not today;
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 | 271 |  * return -3: if does not converge at all (probably circumpolar or never up);
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 | 272 |  */
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 | 273 | static int
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 | 274 | find_0alt (dt, dis, np, op)
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 | 275 | double dt;      /* hours from noon to first guess at event */
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 | 276 | double dis;     /* horizon displacement, rads */
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 | 277 | Now *np;        /* working Now -- starts with mjd is noon, returns as answer */
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 | 278 | Obj *op;        /* working object -- returns as answer */
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 | 279 | {
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 | 280 | #define MAXPASSES       20              /* max iterations to try */
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 | 281 | #define FIRSTSTEP       (1.0/60.0/24.0) /* first time step, days */
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 | 282 | 
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 | 283 |         double a0 = 0;
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 | 284 |         double mjdn = mjd;
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 | 285 |         int npasses;
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 | 286 | 
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 | 287 |         /* insure initial guess is today -- if not, move by 24 hours */
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 | 288 |         if (dt < -12.0)
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 | 289 |             dt += 24.0;
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 | 290 |         if (dt > 12.0)
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 | 291 |             dt -= 24.0;
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 | 292 |         
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 | 293 |         /* convert dt to days for remainder of algorithm */
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 | 294 |         dt /= 24.0;
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 | 295 | 
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 | 296 |         /* use secant method to look for s_alt + dis == 0 */
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 | 297 |         npasses = 0;
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 | 298 |         do {
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 | 299 |             double a1;
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 | 300 | 
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 | 301 |             mjd += dt;
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 | 302 |             if (obj_cir (np, op) < 0)
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 | 303 |                 return (-1);
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 | 304 |             a1 = op->s_alt;
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 | 305 | 
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 | 306 |             dt = (npasses == 0) ? FIRSTSTEP : (dis+a1)*dt/(a0-a1);
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 | 307 |             a0 = a1;
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 | 308 | 
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 | 309 |         } while (++npasses < MAXPASSES && fabs(dt) > TMACC);
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 | 310 | 
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 | 311 |         /* return codes */
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 | 312 |         if (npasses == MAXPASSES)
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 | 313 |             return (-3);
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 | 314 |         return (fabs(mjdn-mjd) < .5 ? 0 : -2);
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 | 315 | 
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 | 316 | #undef  MAXPASSES
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 | 317 | #undef  FIRSTSTEP
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 | 318 | }
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 | 319 | 
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 | 320 | /* find when the given object transits. start the search when LST matches the
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 | 321 |  *   object's RA at noon.
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 | 322 |  * if ok, return 0 with np and op set to the transit conditions; if can't
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 | 323 |  *   converge return -1; if converges ok but not today return -2.
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 | 324 |  * N.B. we assume np is passed set to local noon.
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 | 325 |  */
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 | 326 | static int
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 | 327 | find_transit (dt, np, op)
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 | 328 | double dt;
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 | 329 | Now *np;
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 | 330 | Obj *op;
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 | 331 | {
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 | 332 | #define MAXLOOPS        10
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 | 333 | #define MAXERR          (0.25/60.)              /* hours */
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 | 334 |         double mjdn = mjd;
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 | 335 |         double lst;
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 | 336 |         int i;
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 | 337 | 
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 | 338 |         /* insure initial guess is today -- if not, move by 24 hours */
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 | 339 |         if (dt < -12.0)
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 | 340 |             dt += 24.0;
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 | 341 |         if (dt > 12.0)
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 | 342 |             dt -= 24.0;
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 | 343 | 
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 | 344 |         i = 0;
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 | 345 |         do {
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 | 346 |             mjd += dt/24.0;
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 | 347 |             if (obj_cir (np, op) < 0)
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 | 348 |                 return (-1);
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 | 349 |             now_lst (np, &lst);
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 | 350 |             dt = (radhr(op->s_gaera) - lst);
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 | 351 |             if (dt < -12.0)
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 | 352 |                 dt += 24.0;
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 | 353 |             if (dt > 12.0)
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 | 354 |                 dt -= 24.0;
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 | 355 |         } while (++i < MAXLOOPS && fabs(dt) > MAXERR);
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 | 356 | 
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 | 357 |         /* return codes */
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 | 358 |         if (i == MAXLOOPS)
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 | 359 |             return (-1);
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 | 360 |         return (fabs(mjd - mjdn) < 0.5 ? 0 : -2);
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 | 361 | 
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 | 362 | #undef  MAXLOOPS
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 | 363 | #undef  MAXERR
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 | 364 | }
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 | 365 | 
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 | 366 | /* find the mjd time of max altitude between the given rise and set times.
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 | 367 |  * N.B. we assume *np and *op are working copies we can mess up.
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 | 368 |  * N.B. we just assume max occurs at the center time.
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 | 369 |  * return 0 if ok, else -1.
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 | 370 |  */
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 | 371 | static int
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 | 372 | find_max (np, op, tr, ts, tp, alp)
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 | 373 | Now *np;
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 | 374 | Obj *op;
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 | 375 | double tr, ts;          /* times of rise and set */
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 | 376 | double *tp, *alp;       /* time of max altitude, and that altitude */
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 | 377 | {
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 | 378 |         mjd = (ts + tr)/2;
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 | 379 |         if (obj_cir (np, op) < 0)
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 | 380 |             return (-1);
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 | 381 |         *tp = mjd;
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 | 382 |         *alp = op->s_alt;
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 | 383 |         return (0);
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 | 384 | }
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 | 385 | 
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 | 386 | /* For RCS Only -- Do Not Edit */
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| [1719] | 387 | static char *rcsid[2] = {(char *)rcsid, "@(#) $RCSfile: riset_cir.c,v $ $Date: 2001-10-22 12:08:28 $ $Revision: 1.2 $ $Name: not supported by cvs2svn $"};
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