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localtime.c revision 1.24.2.1
      1  1.24.2.1   nathanw /*	$NetBSD: localtime.c,v 1.24.2.1 2001/08/08 16:27:45 nathanw Exp $	*/
      2       1.7       jtc 
      3       1.7       jtc /*
      4       1.7       jtc ** This file is in the public domain, so clarified as of
      5      1.10       jtc ** 1996-06-05 by Arthur David Olson (arthur_david_olson (at) nih.gov).
      6       1.7       jtc */
      7       1.2       jtc 
      8      1.11  christos #include <sys/cdefs.h>
      9      1.24   msaitoh #if defined(LIBC_SCCS) && !defined(lint)
     10      1.11  christos #if 0
     11      1.22    kleink static char	elsieid[] = "@(#)localtime.c	7.70";
     12      1.11  christos #else
     13  1.24.2.1   nathanw __RCSID("$NetBSD: localtime.c,v 1.24.2.1 2001/08/08 16:27:45 nathanw Exp $");
     14      1.11  christos #endif
     15      1.24   msaitoh #endif /* LIBC_SCCS and not lint */
     16       1.1       jtc 
     17       1.1       jtc /*
     18       1.1       jtc ** Leap second handling from Bradley White (bww (at) k.gp.cs.cmu.edu).
     19       1.1       jtc ** POSIX-style TZ environment variable handling from Guy Harris
     20       1.1       jtc ** (guy (at) auspex.com).
     21       1.1       jtc */
     22       1.1       jtc 
     23       1.1       jtc /*LINTLIBRARY*/
     24       1.1       jtc 
     25      1.12       jtc #include "namespace.h"
     26       1.1       jtc #include "private.h"
     27       1.1       jtc #include "tzfile.h"
     28       1.1       jtc #include "fcntl.h"
     29      1.19    kleink #include "reentrant.h"
     30      1.12       jtc 
     31      1.12       jtc #ifdef __weak_alias
     32      1.23   mycroft __weak_alias(ctime_r,_ctime_r)
     33      1.23   mycroft __weak_alias(gmtime_r,_gmtime_r)
     34      1.23   mycroft __weak_alias(localtime_r,_localtime_r)
     35      1.23   mycroft __weak_alias(offtime,_offtime)
     36      1.23   mycroft __weak_alias(posix2time,_posix2time)
     37      1.23   mycroft __weak_alias(time2posix,_time2posix)
     38      1.23   mycroft __weak_alias(timegm,_timegm)
     39      1.23   mycroft __weak_alias(timelocal,_timelocal)
     40      1.23   mycroft __weak_alias(timeoff,_timeoff)
     41      1.23   mycroft __weak_alias(tzname,_tzname)
     42      1.23   mycroft __weak_alias(tzset,_tzset)
     43      1.23   mycroft __weak_alias(tzsetwall,_tzsetwall)
     44      1.12       jtc #endif
     45       1.1       jtc 
     46       1.1       jtc /*
     47       1.1       jtc ** SunOS 4.1.1 headers lack O_BINARY.
     48       1.1       jtc */
     49       1.1       jtc 
     50       1.1       jtc #ifdef O_BINARY
     51       1.1       jtc #define OPEN_MODE	(O_RDONLY | O_BINARY)
     52       1.1       jtc #endif /* defined O_BINARY */
     53       1.1       jtc #ifndef O_BINARY
     54       1.1       jtc #define OPEN_MODE	O_RDONLY
     55       1.1       jtc #endif /* !defined O_BINARY */
     56       1.1       jtc 
     57       1.1       jtc #ifndef WILDABBR
     58       1.1       jtc /*
     59       1.1       jtc ** Someone might make incorrect use of a time zone abbreviation:
     60       1.1       jtc **	1.	They might reference tzname[0] before calling tzset (explicitly
     61       1.1       jtc **		or implicitly).
     62       1.1       jtc **	2.	They might reference tzname[1] before calling tzset (explicitly
     63       1.1       jtc **		or implicitly).
     64       1.1       jtc **	3.	They might reference tzname[1] after setting to a time zone
     65       1.1       jtc **		in which Daylight Saving Time is never observed.
     66       1.1       jtc **	4.	They might reference tzname[0] after setting to a time zone
     67       1.1       jtc **		in which Standard Time is never observed.
     68       1.1       jtc **	5.	They might reference tm.TM_ZONE after calling offtime.
     69       1.1       jtc ** What's best to do in the above cases is open to debate;
     70       1.1       jtc ** for now, we just set things up so that in any of the five cases
     71       1.1       jtc ** WILDABBR is used.  Another possibility:  initialize tzname[0] to the
     72       1.1       jtc ** string "tzname[0] used before set", and similarly for the other cases.
     73       1.1       jtc ** And another:  initialize tzname[0] to "ERA", with an explanation in the
     74       1.1       jtc ** manual page of what this "time zone abbreviation" means (doing this so
     75       1.1       jtc ** that tzname[0] has the "normal" length of three characters).
     76       1.1       jtc */
     77       1.1       jtc #define WILDABBR	"   "
     78       1.1       jtc #endif /* !defined WILDABBR */
     79       1.1       jtc 
     80      1.15   mycroft static const char	wildabbr[] = "WILDABBR";
     81       1.1       jtc 
     82       1.1       jtc static const char	gmt[] = "GMT";
     83       1.1       jtc 
     84      1.22    kleink /*
     85      1.22    kleink ** The DST rules to use if TZ has no rules and we can't load TZDEFRULES.
     86      1.22    kleink ** We default to US rules as of 1999-08-17.
     87      1.22    kleink ** POSIX 1003.1 section 8.1.1 says that the default DST rules are
     88      1.22    kleink ** implementation dependent; for historical reasons, US rules are a
     89      1.22    kleink ** common default.
     90      1.22    kleink */
     91      1.22    kleink #ifndef TZDEFRULESTRING
     92      1.22    kleink #define TZDEFRULESTRING ",M4.1.0,M10.5.0"
     93      1.22    kleink #endif /* !defined TZDEFDST */
     94      1.22    kleink 
     95       1.1       jtc struct ttinfo {				/* time type information */
     96      1.14       jtc 	long		tt_gmtoff;	/* UTC offset in seconds */
     97       1.1       jtc 	int		tt_isdst;	/* used to set tm_isdst */
     98       1.1       jtc 	int		tt_abbrind;	/* abbreviation list index */
     99       1.1       jtc 	int		tt_ttisstd;	/* TRUE if transition is std time */
    100      1.14       jtc 	int		tt_ttisgmt;	/* TRUE if transition is UTC */
    101       1.1       jtc };
    102       1.1       jtc 
    103       1.1       jtc struct lsinfo {				/* leap second information */
    104       1.1       jtc 	time_t		ls_trans;	/* transition time */
    105       1.1       jtc 	long		ls_corr;	/* correction to apply */
    106       1.1       jtc };
    107       1.1       jtc 
    108       1.1       jtc #define BIGGEST(a, b)	(((a) > (b)) ? (a) : (b))
    109       1.1       jtc 
    110       1.1       jtc #ifdef TZNAME_MAX
    111       1.1       jtc #define MY_TZNAME_MAX	TZNAME_MAX
    112       1.1       jtc #endif /* defined TZNAME_MAX */
    113       1.1       jtc #ifndef TZNAME_MAX
    114       1.1       jtc #define MY_TZNAME_MAX	255
    115       1.1       jtc #endif /* !defined TZNAME_MAX */
    116       1.1       jtc 
    117       1.1       jtc struct state {
    118       1.1       jtc 	int		leapcnt;
    119       1.1       jtc 	int		timecnt;
    120       1.1       jtc 	int		typecnt;
    121       1.1       jtc 	int		charcnt;
    122       1.1       jtc 	time_t		ats[TZ_MAX_TIMES];
    123       1.1       jtc 	unsigned char	types[TZ_MAX_TIMES];
    124       1.1       jtc 	struct ttinfo	ttis[TZ_MAX_TYPES];
    125      1.21  christos 	char		chars[/* LINTED constant */BIGGEST(BIGGEST(TZ_MAX_CHARS + 1, sizeof gmt),
    126       1.1       jtc 				(2 * (MY_TZNAME_MAX + 1)))];
    127       1.1       jtc 	struct lsinfo	lsis[TZ_MAX_LEAPS];
    128       1.1       jtc };
    129       1.1       jtc 
    130       1.1       jtc struct rule {
    131       1.1       jtc 	int		r_type;		/* type of rule--see below */
    132       1.1       jtc 	int		r_day;		/* day number of rule */
    133       1.1       jtc 	int		r_week;		/* week number of rule */
    134       1.1       jtc 	int		r_mon;		/* month number of rule */
    135       1.1       jtc 	long		r_time;		/* transition time of rule */
    136       1.1       jtc };
    137       1.1       jtc 
    138       1.1       jtc #define JULIAN_DAY		0	/* Jn - Julian day */
    139       1.1       jtc #define DAY_OF_YEAR		1	/* n - day of year */
    140       1.1       jtc #define MONTH_NTH_DAY_OF_WEEK	2	/* Mm.n.d - month, week, day of week */
    141       1.1       jtc 
    142       1.1       jtc /*
    143       1.1       jtc ** Prototypes for static functions.
    144       1.1       jtc */
    145       1.1       jtc 
    146       1.1       jtc static long		detzcode P((const char * codep));
    147       1.1       jtc static const char *	getzname P((const char * strp));
    148       1.1       jtc static const char *	getnum P((const char * strp, int * nump, int min,
    149       1.1       jtc 				int max));
    150       1.1       jtc static const char *	getsecs P((const char * strp, long * secsp));
    151       1.1       jtc static const char *	getoffset P((const char * strp, long * offsetp));
    152       1.1       jtc static const char *	getrule P((const char * strp, struct rule * rulep));
    153       1.1       jtc static void		gmtload P((struct state * sp));
    154       1.1       jtc static void		gmtsub P((const time_t * timep, long offset,
    155       1.1       jtc 				struct tm * tmp));
    156       1.1       jtc static void		localsub P((const time_t * timep, long offset,
    157       1.1       jtc 				struct tm * tmp));
    158       1.1       jtc static int		increment_overflow P((int * number, int delta));
    159       1.1       jtc static int		normalize_overflow P((int * tensptr, int * unitsptr,
    160       1.1       jtc 				int base));
    161       1.1       jtc static void		settzname P((void));
    162       1.1       jtc static time_t		time1 P((struct tm * tmp,
    163       1.1       jtc 				void(*funcp) P((const time_t *,
    164       1.1       jtc 				long, struct tm *)),
    165       1.1       jtc 				long offset));
    166       1.1       jtc static time_t		time2 P((struct tm *tmp,
    167       1.1       jtc 				void(*funcp) P((const time_t *,
    168       1.1       jtc 				long, struct tm*)),
    169       1.1       jtc 				long offset, int * okayp));
    170      1.13       jtc static time_t		time2sub P((struct tm *tmp,
    171      1.13       jtc 				void(*funcp) P((const time_t *,
    172      1.13       jtc 				long, struct tm*)),
    173      1.13       jtc 				long offset, int * okayp, int do_norm_secs));
    174       1.1       jtc static void		timesub P((const time_t * timep, long offset,
    175       1.1       jtc 				const struct state * sp, struct tm * tmp));
    176       1.1       jtc static int		tmcomp P((const struct tm * atmp,
    177       1.1       jtc 				const struct tm * btmp));
    178       1.1       jtc static time_t		transtime P((time_t janfirst, int year,
    179       1.1       jtc 				const struct rule * rulep, long offset));
    180       1.1       jtc static int		tzload P((const char * name, struct state * sp));
    181       1.1       jtc static int		tzparse P((const char * name, struct state * sp,
    182       1.1       jtc 				int lastditch));
    183      1.19    kleink static void		tzset_unlocked P((void));
    184      1.19    kleink static void		tzsetwall_unlocked P((void));
    185      1.11  christos #ifdef STD_INSPIRED
    186      1.11  christos static long		leapcorr P((time_t * timep));
    187      1.11  christos #endif
    188       1.1       jtc 
    189       1.1       jtc #ifdef ALL_STATE
    190       1.1       jtc static struct state *	lclptr;
    191       1.1       jtc static struct state *	gmtptr;
    192       1.1       jtc #endif /* defined ALL_STATE */
    193       1.1       jtc 
    194       1.1       jtc #ifndef ALL_STATE
    195       1.1       jtc static struct state	lclmem;
    196       1.1       jtc static struct state	gmtmem;
    197       1.1       jtc #define lclptr		(&lclmem)
    198       1.1       jtc #define gmtptr		(&gmtmem)
    199       1.1       jtc #endif /* State Farm */
    200       1.1       jtc 
    201       1.1       jtc #ifndef TZ_STRLEN_MAX
    202       1.1       jtc #define TZ_STRLEN_MAX 255
    203       1.1       jtc #endif /* !defined TZ_STRLEN_MAX */
    204       1.1       jtc 
    205       1.1       jtc static char		lcl_TZname[TZ_STRLEN_MAX + 1];
    206       1.1       jtc static int		lcl_is_set;
    207       1.1       jtc static int		gmt_is_set;
    208       1.1       jtc 
    209      1.16   mycroft __aconst char *		tzname[2] = {
    210      1.21  christos 	/* LINTED const castaway */
    211      1.16   mycroft 	(__aconst char *)wildabbr,
    212      1.21  christos 	/* LINTED const castaway */
    213      1.16   mycroft 	(__aconst char *)wildabbr
    214       1.1       jtc };
    215       1.1       jtc 
    216  1.24.2.1   nathanw #ifdef _REENTRANT
    217      1.19    kleink static rwlock_t lcl_lock = RWLOCK_INITIALIZER;
    218      1.19    kleink #endif
    219      1.19    kleink 
    220       1.1       jtc /*
    221       1.1       jtc ** Section 4.12.3 of X3.159-1989 requires that
    222       1.1       jtc **	Except for the strftime function, these functions [asctime,
    223       1.1       jtc **	ctime, gmtime, localtime] return values in one of two static
    224       1.1       jtc **	objects: a broken-down time structure and an array of char.
    225       1.1       jtc ** Thanks to Paul Eggert (eggert (at) twinsun.com) for noting this.
    226       1.1       jtc */
    227       1.1       jtc 
    228       1.1       jtc static struct tm	tm;
    229       1.1       jtc 
    230       1.1       jtc #ifdef USG_COMPAT
    231       1.1       jtc time_t			timezone = 0;
    232       1.1       jtc int			daylight = 0;
    233       1.1       jtc #endif /* defined USG_COMPAT */
    234       1.1       jtc 
    235       1.1       jtc #ifdef ALTZONE
    236       1.1       jtc time_t			altzone = 0;
    237       1.1       jtc #endif /* defined ALTZONE */
    238       1.1       jtc 
    239       1.1       jtc static long
    240       1.1       jtc detzcode(codep)
    241       1.1       jtc const char * const	codep;
    242       1.1       jtc {
    243       1.1       jtc 	register long	result;
    244       1.1       jtc 
    245       1.4       jtc 	/*
    246       1.4       jtc         ** The first character must be sign extended on systems with >32bit
    247       1.4       jtc         ** longs.  This was solved differently in the master tzcode sources
    248       1.4       jtc         ** (the fix first appeared in tzcode95c.tar.gz).  But I believe
    249       1.4       jtc 	** that this implementation is superior.
    250       1.4       jtc         */
    251       1.4       jtc 
    252       1.4       jtc #ifdef __STDC__
    253       1.4       jtc #define SIGN_EXTEND_CHAR(x)	((signed char) x)
    254       1.4       jtc #else
    255       1.4       jtc #define SIGN_EXTEND_CHAR(x)	((x & 0x80) ? ((~0 << 8) | x) : x)
    256       1.4       jtc #endif
    257       1.4       jtc 
    258       1.4       jtc 	result = (SIGN_EXTEND_CHAR(codep[0]) << 24) \
    259       1.3       jtc 	       | (codep[1] & 0xff) << 16 \
    260       1.3       jtc 	       | (codep[2] & 0xff) << 8
    261       1.3       jtc 	       | (codep[3] & 0xff);
    262       1.1       jtc 	return result;
    263       1.1       jtc }
    264       1.1       jtc 
    265       1.1       jtc static void
    266       1.1       jtc settzname P((void))
    267       1.1       jtc {
    268       1.5       jtc 	register struct state * const	sp = lclptr;
    269       1.5       jtc 	register int			i;
    270       1.1       jtc 
    271      1.21  christos 	/* LINTED const castaway */
    272      1.16   mycroft 	tzname[0] = (__aconst char *)wildabbr;
    273      1.21  christos 	/* LINTED const castaway */
    274      1.16   mycroft 	tzname[1] = (__aconst char *)wildabbr;
    275       1.1       jtc #ifdef USG_COMPAT
    276       1.1       jtc 	daylight = 0;
    277       1.1       jtc 	timezone = 0;
    278       1.1       jtc #endif /* defined USG_COMPAT */
    279       1.1       jtc #ifdef ALTZONE
    280       1.1       jtc 	altzone = 0;
    281       1.1       jtc #endif /* defined ALTZONE */
    282       1.1       jtc #ifdef ALL_STATE
    283       1.1       jtc 	if (sp == NULL) {
    284      1.17   mycroft 		tzname[0] = tzname[1] = (__aconst char *)gmt;
    285       1.1       jtc 		return;
    286       1.1       jtc 	}
    287       1.1       jtc #endif /* defined ALL_STATE */
    288       1.1       jtc 	for (i = 0; i < sp->typecnt; ++i) {
    289       1.1       jtc 		register const struct ttinfo * const	ttisp = &sp->ttis[i];
    290       1.1       jtc 
    291       1.1       jtc 		tzname[ttisp->tt_isdst] =
    292       1.1       jtc 			&sp->chars[ttisp->tt_abbrind];
    293       1.1       jtc #ifdef USG_COMPAT
    294       1.1       jtc 		if (ttisp->tt_isdst)
    295       1.1       jtc 			daylight = 1;
    296       1.1       jtc 		if (i == 0 || !ttisp->tt_isdst)
    297       1.1       jtc 			timezone = -(ttisp->tt_gmtoff);
    298       1.1       jtc #endif /* defined USG_COMPAT */
    299       1.1       jtc #ifdef ALTZONE
    300       1.1       jtc 		if (i == 0 || ttisp->tt_isdst)
    301       1.1       jtc 			altzone = -(ttisp->tt_gmtoff);
    302       1.1       jtc #endif /* defined ALTZONE */
    303       1.1       jtc 	}
    304       1.1       jtc 	/*
    305       1.1       jtc 	** And to get the latest zone names into tzname. . .
    306       1.1       jtc 	*/
    307       1.1       jtc 	for (i = 0; i < sp->timecnt; ++i) {
    308       1.1       jtc 		register const struct ttinfo * const	ttisp =
    309       1.1       jtc 							&sp->ttis[
    310       1.1       jtc 								sp->types[i]];
    311       1.1       jtc 
    312       1.1       jtc 		tzname[ttisp->tt_isdst] =
    313       1.1       jtc 			&sp->chars[ttisp->tt_abbrind];
    314       1.1       jtc 	}
    315       1.1       jtc }
    316       1.1       jtc 
    317       1.1       jtc static int
    318       1.1       jtc tzload(name, sp)
    319       1.1       jtc register const char *		name;
    320       1.1       jtc register struct state * const	sp;
    321       1.1       jtc {
    322       1.1       jtc 	register const char *	p;
    323       1.1       jtc 	register int		i;
    324       1.1       jtc 	register int		fid;
    325       1.1       jtc 
    326       1.1       jtc 	if (name == NULL && (name = TZDEFAULT) == NULL)
    327       1.1       jtc 		return -1;
    328       1.9       mrg 
    329       1.1       jtc 	{
    330       1.1       jtc 		register int	doaccess;
    331       1.1       jtc 		/*
    332       1.1       jtc 		** Section 4.9.1 of the C standard says that
    333       1.1       jtc 		** "FILENAME_MAX expands to an integral constant expression
    334      1.10       jtc 		** that is the size needed for an array of char large enough
    335       1.1       jtc 		** to hold the longest file name string that the implementation
    336       1.1       jtc 		** guarantees can be opened."
    337       1.1       jtc 		*/
    338       1.1       jtc 		char		fullname[FILENAME_MAX + 1];
    339       1.1       jtc 
    340       1.1       jtc 		if (name[0] == ':')
    341       1.1       jtc 			++name;
    342       1.1       jtc 		doaccess = name[0] == '/';
    343       1.1       jtc 		if (!doaccess) {
    344       1.1       jtc 			if ((p = TZDIR) == NULL)
    345       1.1       jtc 				return -1;
    346       1.1       jtc 			if ((strlen(p) + strlen(name) + 1) >= sizeof fullname)
    347       1.1       jtc 				return -1;
    348       1.8       mrg 			(void) strcpy(fullname, p);	/* XXX strcpy is safe */
    349       1.8       mrg 			(void) strcat(fullname, "/");	/* XXX strcat is safe */
    350       1.8       mrg 			(void) strcat(fullname, name);	/* XXX strcat is safe */
    351       1.1       jtc 			/*
    352       1.1       jtc 			** Set doaccess if '.' (as in "../") shows up in name.
    353       1.1       jtc 			*/
    354       1.1       jtc 			if (strchr(name, '.') != NULL)
    355       1.1       jtc 				doaccess = TRUE;
    356       1.1       jtc 			name = fullname;
    357       1.1       jtc 		}
    358       1.1       jtc 		if (doaccess && access(name, R_OK) != 0)
    359       1.1       jtc 			return -1;
    360       1.9       mrg 		/*
    361       1.9       mrg 		 * XXX potential security problem here if user of a set-id
    362       1.9       mrg 		 * program has set TZ (which is passed in as name) here,
    363       1.9       mrg 		 * and uses a race condition trick to defeat the access(2)
    364       1.9       mrg 		 * above.
    365       1.9       mrg 		 */
    366       1.1       jtc 		if ((fid = open(name, OPEN_MODE)) == -1)
    367       1.1       jtc 			return -1;
    368       1.1       jtc 	}
    369       1.1       jtc 	{
    370       1.1       jtc 		struct tzhead *	tzhp;
    371      1.14       jtc 		union {
    372      1.14       jtc 		  struct tzhead tzhead;
    373      1.14       jtc 		  char		buf[sizeof *sp + sizeof *tzhp];
    374      1.14       jtc 		} u;
    375       1.1       jtc 		int		ttisstdcnt;
    376       1.1       jtc 		int		ttisgmtcnt;
    377       1.1       jtc 
    378      1.14       jtc 		i = read(fid, u.buf, sizeof u.buf);
    379       1.1       jtc 		if (close(fid) != 0)
    380       1.1       jtc 			return -1;
    381      1.14       jtc 		ttisstdcnt = (int) detzcode(u.tzhead.tzh_ttisgmtcnt);
    382      1.14       jtc 		ttisgmtcnt = (int) detzcode(u.tzhead.tzh_ttisstdcnt);
    383      1.14       jtc 		sp->leapcnt = (int) detzcode(u.tzhead.tzh_leapcnt);
    384      1.14       jtc 		sp->timecnt = (int) detzcode(u.tzhead.tzh_timecnt);
    385      1.14       jtc 		sp->typecnt = (int) detzcode(u.tzhead.tzh_typecnt);
    386      1.14       jtc 		sp->charcnt = (int) detzcode(u.tzhead.tzh_charcnt);
    387      1.14       jtc 		p = u.tzhead.tzh_charcnt + sizeof u.tzhead.tzh_charcnt;
    388       1.1       jtc 		if (sp->leapcnt < 0 || sp->leapcnt > TZ_MAX_LEAPS ||
    389       1.1       jtc 			sp->typecnt <= 0 || sp->typecnt > TZ_MAX_TYPES ||
    390       1.1       jtc 			sp->timecnt < 0 || sp->timecnt > TZ_MAX_TIMES ||
    391       1.1       jtc 			sp->charcnt < 0 || sp->charcnt > TZ_MAX_CHARS ||
    392       1.1       jtc 			(ttisstdcnt != sp->typecnt && ttisstdcnt != 0) ||
    393       1.1       jtc 			(ttisgmtcnt != sp->typecnt && ttisgmtcnt != 0))
    394       1.1       jtc 				return -1;
    395      1.14       jtc 		if (i - (p - u.buf) < sp->timecnt * 4 +	/* ats */
    396       1.1       jtc 			sp->timecnt +			/* types */
    397       1.1       jtc 			sp->typecnt * (4 + 2) +		/* ttinfos */
    398       1.1       jtc 			sp->charcnt +			/* chars */
    399       1.1       jtc 			sp->leapcnt * (4 + 4) +		/* lsinfos */
    400       1.1       jtc 			ttisstdcnt +			/* ttisstds */
    401       1.1       jtc 			ttisgmtcnt)			/* ttisgmts */
    402       1.1       jtc 				return -1;
    403       1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    404       1.1       jtc 			sp->ats[i] = detzcode(p);
    405       1.1       jtc 			p += 4;
    406       1.1       jtc 		}
    407       1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    408       1.1       jtc 			sp->types[i] = (unsigned char) *p++;
    409       1.1       jtc 			if (sp->types[i] >= sp->typecnt)
    410       1.1       jtc 				return -1;
    411       1.1       jtc 		}
    412       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    413       1.1       jtc 			register struct ttinfo *	ttisp;
    414       1.1       jtc 
    415       1.1       jtc 			ttisp = &sp->ttis[i];
    416       1.1       jtc 			ttisp->tt_gmtoff = detzcode(p);
    417       1.1       jtc 			p += 4;
    418       1.1       jtc 			ttisp->tt_isdst = (unsigned char) *p++;
    419       1.1       jtc 			if (ttisp->tt_isdst != 0 && ttisp->tt_isdst != 1)
    420       1.1       jtc 				return -1;
    421       1.1       jtc 			ttisp->tt_abbrind = (unsigned char) *p++;
    422       1.1       jtc 			if (ttisp->tt_abbrind < 0 ||
    423       1.1       jtc 				ttisp->tt_abbrind > sp->charcnt)
    424       1.1       jtc 					return -1;
    425       1.1       jtc 		}
    426       1.1       jtc 		for (i = 0; i < sp->charcnt; ++i)
    427       1.1       jtc 			sp->chars[i] = *p++;
    428       1.1       jtc 		sp->chars[i] = '\0';	/* ensure '\0' at end */
    429       1.1       jtc 		for (i = 0; i < sp->leapcnt; ++i) {
    430       1.1       jtc 			register struct lsinfo *	lsisp;
    431       1.1       jtc 
    432       1.1       jtc 			lsisp = &sp->lsis[i];
    433       1.1       jtc 			lsisp->ls_trans = detzcode(p);
    434       1.1       jtc 			p += 4;
    435       1.1       jtc 			lsisp->ls_corr = detzcode(p);
    436       1.1       jtc 			p += 4;
    437       1.1       jtc 		}
    438       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    439       1.1       jtc 			register struct ttinfo *	ttisp;
    440       1.1       jtc 
    441       1.1       jtc 			ttisp = &sp->ttis[i];
    442       1.1       jtc 			if (ttisstdcnt == 0)
    443       1.1       jtc 				ttisp->tt_ttisstd = FALSE;
    444       1.1       jtc 			else {
    445       1.1       jtc 				ttisp->tt_ttisstd = *p++;
    446       1.1       jtc 				if (ttisp->tt_ttisstd != TRUE &&
    447       1.1       jtc 					ttisp->tt_ttisstd != FALSE)
    448       1.1       jtc 						return -1;
    449       1.1       jtc 			}
    450       1.1       jtc 		}
    451       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    452       1.1       jtc 			register struct ttinfo *	ttisp;
    453       1.1       jtc 
    454       1.1       jtc 			ttisp = &sp->ttis[i];
    455       1.1       jtc 			if (ttisgmtcnt == 0)
    456       1.1       jtc 				ttisp->tt_ttisgmt = FALSE;
    457       1.1       jtc 			else {
    458       1.1       jtc 				ttisp->tt_ttisgmt = *p++;
    459       1.1       jtc 				if (ttisp->tt_ttisgmt != TRUE &&
    460       1.1       jtc 					ttisp->tt_ttisgmt != FALSE)
    461       1.1       jtc 						return -1;
    462       1.1       jtc 			}
    463       1.1       jtc 		}
    464       1.1       jtc 	}
    465       1.1       jtc 	return 0;
    466       1.1       jtc }
    467       1.1       jtc 
    468       1.1       jtc static const int	mon_lengths[2][MONSPERYEAR] = {
    469       1.1       jtc 	{ 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 },
    470       1.1       jtc 	{ 31, 29, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 }
    471       1.1       jtc };
    472       1.1       jtc 
    473       1.1       jtc static const int	year_lengths[2] = {
    474       1.1       jtc 	DAYSPERNYEAR, DAYSPERLYEAR
    475       1.1       jtc };
    476       1.1       jtc 
    477       1.1       jtc /*
    478       1.1       jtc ** Given a pointer into a time zone string, scan until a character that is not
    479       1.1       jtc ** a valid character in a zone name is found.  Return a pointer to that
    480       1.1       jtc ** character.
    481       1.1       jtc */
    482       1.1       jtc 
    483       1.1       jtc static const char *
    484       1.1       jtc getzname(strp)
    485       1.1       jtc register const char *	strp;
    486       1.1       jtc {
    487       1.1       jtc 	register char	c;
    488       1.1       jtc 
    489       1.5       jtc 	while ((c = *strp) != '\0' && !is_digit(c) && c != ',' && c != '-' &&
    490       1.1       jtc 		c != '+')
    491       1.1       jtc 			++strp;
    492       1.1       jtc 	return strp;
    493       1.1       jtc }
    494       1.1       jtc 
    495       1.1       jtc /*
    496       1.1       jtc ** Given a pointer into a time zone string, extract a number from that string.
    497       1.1       jtc ** Check that the number is within a specified range; if it is not, return
    498       1.1       jtc ** NULL.
    499       1.1       jtc ** Otherwise, return a pointer to the first character not part of the number.
    500       1.1       jtc */
    501       1.1       jtc 
    502       1.1       jtc static const char *
    503       1.1       jtc getnum(strp, nump, min, max)
    504       1.1       jtc register const char *	strp;
    505       1.1       jtc int * const		nump;
    506       1.1       jtc const int		min;
    507       1.1       jtc const int		max;
    508       1.1       jtc {
    509       1.1       jtc 	register char	c;
    510       1.1       jtc 	register int	num;
    511       1.1       jtc 
    512       1.5       jtc 	if (strp == NULL || !is_digit(c = *strp))
    513       1.1       jtc 		return NULL;
    514       1.1       jtc 	num = 0;
    515       1.5       jtc 	do {
    516       1.1       jtc 		num = num * 10 + (c - '0');
    517       1.1       jtc 		if (num > max)
    518       1.1       jtc 			return NULL;	/* illegal value */
    519       1.5       jtc 		c = *++strp;
    520       1.5       jtc 	} while (is_digit(c));
    521       1.1       jtc 	if (num < min)
    522       1.1       jtc 		return NULL;		/* illegal value */
    523       1.1       jtc 	*nump = num;
    524       1.1       jtc 	return strp;
    525       1.1       jtc }
    526       1.1       jtc 
    527       1.1       jtc /*
    528       1.1       jtc ** Given a pointer into a time zone string, extract a number of seconds,
    529       1.1       jtc ** in hh[:mm[:ss]] form, from the string.
    530       1.1       jtc ** If any error occurs, return NULL.
    531       1.1       jtc ** Otherwise, return a pointer to the first character not part of the number
    532       1.1       jtc ** of seconds.
    533       1.1       jtc */
    534       1.1       jtc 
    535       1.1       jtc static const char *
    536       1.1       jtc getsecs(strp, secsp)
    537       1.1       jtc register const char *	strp;
    538       1.1       jtc long * const		secsp;
    539       1.1       jtc {
    540       1.1       jtc 	int	num;
    541       1.1       jtc 
    542       1.1       jtc 	/*
    543       1.1       jtc 	** `HOURSPERDAY * DAYSPERWEEK - 1' allows quasi-Posix rules like
    544       1.1       jtc 	** "M10.4.6/26", which does not conform to Posix,
    545       1.1       jtc 	** but which specifies the equivalent of
    546       1.1       jtc 	** ``02:00 on the first Sunday on or after 23 Oct''.
    547       1.1       jtc 	*/
    548       1.1       jtc 	strp = getnum(strp, &num, 0, HOURSPERDAY * DAYSPERWEEK - 1);
    549       1.1       jtc 	if (strp == NULL)
    550       1.1       jtc 		return NULL;
    551       1.1       jtc 	*secsp = num * (long) SECSPERHOUR;
    552       1.1       jtc 	if (*strp == ':') {
    553       1.1       jtc 		++strp;
    554       1.1       jtc 		strp = getnum(strp, &num, 0, MINSPERHOUR - 1);
    555       1.1       jtc 		if (strp == NULL)
    556       1.1       jtc 			return NULL;
    557       1.1       jtc 		*secsp += num * SECSPERMIN;
    558       1.1       jtc 		if (*strp == ':') {
    559       1.1       jtc 			++strp;
    560       1.1       jtc 			/* `SECSPERMIN' allows for leap seconds.  */
    561       1.1       jtc 			strp = getnum(strp, &num, 0, SECSPERMIN);
    562       1.1       jtc 			if (strp == NULL)
    563       1.1       jtc 				return NULL;
    564       1.1       jtc 			*secsp += num;
    565       1.1       jtc 		}
    566       1.1       jtc 	}
    567       1.1       jtc 	return strp;
    568       1.1       jtc }
    569       1.1       jtc 
    570       1.1       jtc /*
    571       1.1       jtc ** Given a pointer into a time zone string, extract an offset, in
    572       1.1       jtc ** [+-]hh[:mm[:ss]] form, from the string.
    573       1.1       jtc ** If any error occurs, return NULL.
    574       1.1       jtc ** Otherwise, return a pointer to the first character not part of the time.
    575       1.1       jtc */
    576       1.1       jtc 
    577       1.1       jtc static const char *
    578       1.1       jtc getoffset(strp, offsetp)
    579       1.1       jtc register const char *	strp;
    580       1.1       jtc long * const		offsetp;
    581       1.1       jtc {
    582       1.5       jtc 	register int	neg = 0;
    583       1.1       jtc 
    584       1.1       jtc 	if (*strp == '-') {
    585       1.1       jtc 		neg = 1;
    586       1.1       jtc 		++strp;
    587       1.5       jtc 	} else if (*strp == '+')
    588       1.5       jtc 		++strp;
    589       1.1       jtc 	strp = getsecs(strp, offsetp);
    590       1.1       jtc 	if (strp == NULL)
    591       1.1       jtc 		return NULL;		/* illegal time */
    592       1.1       jtc 	if (neg)
    593       1.1       jtc 		*offsetp = -*offsetp;
    594       1.1       jtc 	return strp;
    595       1.1       jtc }
    596       1.1       jtc 
    597       1.1       jtc /*
    598       1.1       jtc ** Given a pointer into a time zone string, extract a rule in the form
    599       1.1       jtc ** date[/time].  See POSIX section 8 for the format of "date" and "time".
    600       1.1       jtc ** If a valid rule is not found, return NULL.
    601       1.1       jtc ** Otherwise, return a pointer to the first character not part of the rule.
    602       1.1       jtc */
    603       1.1       jtc 
    604       1.1       jtc static const char *
    605       1.1       jtc getrule(strp, rulep)
    606       1.1       jtc const char *			strp;
    607       1.1       jtc register struct rule * const	rulep;
    608       1.1       jtc {
    609       1.1       jtc 	if (*strp == 'J') {
    610       1.1       jtc 		/*
    611       1.1       jtc 		** Julian day.
    612       1.1       jtc 		*/
    613       1.1       jtc 		rulep->r_type = JULIAN_DAY;
    614       1.1       jtc 		++strp;
    615       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 1, DAYSPERNYEAR);
    616       1.1       jtc 	} else if (*strp == 'M') {
    617       1.1       jtc 		/*
    618       1.1       jtc 		** Month, week, day.
    619       1.1       jtc 		*/
    620       1.1       jtc 		rulep->r_type = MONTH_NTH_DAY_OF_WEEK;
    621       1.1       jtc 		++strp;
    622       1.1       jtc 		strp = getnum(strp, &rulep->r_mon, 1, MONSPERYEAR);
    623       1.1       jtc 		if (strp == NULL)
    624       1.1       jtc 			return NULL;
    625       1.1       jtc 		if (*strp++ != '.')
    626       1.1       jtc 			return NULL;
    627       1.1       jtc 		strp = getnum(strp, &rulep->r_week, 1, 5);
    628       1.1       jtc 		if (strp == NULL)
    629       1.1       jtc 			return NULL;
    630       1.1       jtc 		if (*strp++ != '.')
    631       1.1       jtc 			return NULL;
    632       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERWEEK - 1);
    633       1.5       jtc 	} else if (is_digit(*strp)) {
    634       1.1       jtc 		/*
    635       1.1       jtc 		** Day of year.
    636       1.1       jtc 		*/
    637       1.1       jtc 		rulep->r_type = DAY_OF_YEAR;
    638       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERLYEAR - 1);
    639       1.1       jtc 	} else	return NULL;		/* invalid format */
    640       1.1       jtc 	if (strp == NULL)
    641       1.1       jtc 		return NULL;
    642       1.1       jtc 	if (*strp == '/') {
    643       1.1       jtc 		/*
    644       1.1       jtc 		** Time specified.
    645       1.1       jtc 		*/
    646       1.1       jtc 		++strp;
    647       1.1       jtc 		strp = getsecs(strp, &rulep->r_time);
    648       1.1       jtc 	} else	rulep->r_time = 2 * SECSPERHOUR;	/* default = 2:00:00 */
    649       1.1       jtc 	return strp;
    650       1.1       jtc }
    651       1.1       jtc 
    652       1.1       jtc /*
    653      1.14       jtc ** Given the Epoch-relative time of January 1, 00:00:00 UTC, in a year, the
    654      1.14       jtc ** year, a rule, and the offset from UTC at the time that rule takes effect,
    655       1.1       jtc ** calculate the Epoch-relative time that rule takes effect.
    656       1.1       jtc */
    657       1.1       jtc 
    658       1.1       jtc static time_t
    659       1.1       jtc transtime(janfirst, year, rulep, offset)
    660       1.1       jtc const time_t				janfirst;
    661       1.1       jtc const int				year;
    662       1.1       jtc register const struct rule * const	rulep;
    663       1.1       jtc const long				offset;
    664       1.1       jtc {
    665       1.1       jtc 	register int	leapyear;
    666       1.1       jtc 	register time_t	value;
    667       1.1       jtc 	register int	i;
    668       1.1       jtc 	int		d, m1, yy0, yy1, yy2, dow;
    669       1.1       jtc 
    670       1.1       jtc 	INITIALIZE(value);
    671       1.1       jtc 	leapyear = isleap(year);
    672       1.1       jtc 	switch (rulep->r_type) {
    673       1.1       jtc 
    674       1.1       jtc 	case JULIAN_DAY:
    675       1.1       jtc 		/*
    676       1.1       jtc 		** Jn - Julian day, 1 == January 1, 60 == March 1 even in leap
    677       1.1       jtc 		** years.
    678       1.1       jtc 		** In non-leap years, or if the day number is 59 or less, just
    679       1.1       jtc 		** add SECSPERDAY times the day number-1 to the time of
    680       1.1       jtc 		** January 1, midnight, to get the day.
    681       1.1       jtc 		*/
    682       1.1       jtc 		value = janfirst + (rulep->r_day - 1) * SECSPERDAY;
    683       1.1       jtc 		if (leapyear && rulep->r_day >= 60)
    684       1.1       jtc 			value += SECSPERDAY;
    685       1.1       jtc 		break;
    686       1.1       jtc 
    687       1.1       jtc 	case DAY_OF_YEAR:
    688       1.1       jtc 		/*
    689       1.1       jtc 		** n - day of year.
    690       1.1       jtc 		** Just add SECSPERDAY times the day number to the time of
    691       1.1       jtc 		** January 1, midnight, to get the day.
    692       1.1       jtc 		*/
    693       1.1       jtc 		value = janfirst + rulep->r_day * SECSPERDAY;
    694       1.1       jtc 		break;
    695       1.1       jtc 
    696       1.1       jtc 	case MONTH_NTH_DAY_OF_WEEK:
    697       1.1       jtc 		/*
    698       1.1       jtc 		** Mm.n.d - nth "dth day" of month m.
    699       1.1       jtc 		*/
    700       1.1       jtc 		value = janfirst;
    701       1.1       jtc 		for (i = 0; i < rulep->r_mon - 1; ++i)
    702       1.1       jtc 			value += mon_lengths[leapyear][i] * SECSPERDAY;
    703       1.1       jtc 
    704       1.1       jtc 		/*
    705       1.1       jtc 		** Use Zeller's Congruence to get day-of-week of first day of
    706       1.1       jtc 		** month.
    707       1.1       jtc 		*/
    708       1.1       jtc 		m1 = (rulep->r_mon + 9) % 12 + 1;
    709       1.1       jtc 		yy0 = (rulep->r_mon <= 2) ? (year - 1) : year;
    710       1.1       jtc 		yy1 = yy0 / 100;
    711       1.1       jtc 		yy2 = yy0 % 100;
    712       1.1       jtc 		dow = ((26 * m1 - 2) / 10 +
    713       1.1       jtc 			1 + yy2 + yy2 / 4 + yy1 / 4 - 2 * yy1) % 7;
    714       1.1       jtc 		if (dow < 0)
    715       1.1       jtc 			dow += DAYSPERWEEK;
    716       1.1       jtc 
    717       1.1       jtc 		/*
    718       1.1       jtc 		** "dow" is the day-of-week of the first day of the month.  Get
    719       1.1       jtc 		** the day-of-month (zero-origin) of the first "dow" day of the
    720       1.1       jtc 		** month.
    721       1.1       jtc 		*/
    722       1.1       jtc 		d = rulep->r_day - dow;
    723       1.1       jtc 		if (d < 0)
    724       1.1       jtc 			d += DAYSPERWEEK;
    725       1.1       jtc 		for (i = 1; i < rulep->r_week; ++i) {
    726       1.1       jtc 			if (d + DAYSPERWEEK >=
    727       1.1       jtc 				mon_lengths[leapyear][rulep->r_mon - 1])
    728       1.1       jtc 					break;
    729       1.1       jtc 			d += DAYSPERWEEK;
    730       1.1       jtc 		}
    731       1.1       jtc 
    732       1.1       jtc 		/*
    733       1.1       jtc 		** "d" is the day-of-month (zero-origin) of the day we want.
    734       1.1       jtc 		*/
    735       1.1       jtc 		value += d * SECSPERDAY;
    736       1.1       jtc 		break;
    737       1.1       jtc 	}
    738       1.1       jtc 
    739       1.1       jtc 	/*
    740      1.14       jtc 	** "value" is the Epoch-relative time of 00:00:00 UTC on the day in
    741       1.1       jtc 	** question.  To get the Epoch-relative time of the specified local
    742       1.1       jtc 	** time on that day, add the transition time and the current offset
    743      1.14       jtc 	** from UTC.
    744       1.1       jtc 	*/
    745       1.1       jtc 	return value + rulep->r_time + offset;
    746       1.1       jtc }
    747       1.1       jtc 
    748       1.1       jtc /*
    749       1.1       jtc ** Given a POSIX section 8-style TZ string, fill in the rule tables as
    750       1.1       jtc ** appropriate.
    751       1.1       jtc */
    752       1.1       jtc 
    753       1.1       jtc static int
    754       1.1       jtc tzparse(name, sp, lastditch)
    755       1.1       jtc const char *			name;
    756       1.1       jtc register struct state * const	sp;
    757       1.1       jtc const int			lastditch;
    758       1.1       jtc {
    759       1.1       jtc 	const char *			stdname;
    760       1.1       jtc 	const char *			dstname;
    761       1.1       jtc 	size_t				stdlen;
    762       1.1       jtc 	size_t				dstlen;
    763       1.1       jtc 	long				stdoffset;
    764       1.1       jtc 	long				dstoffset;
    765       1.1       jtc 	register time_t *		atp;
    766       1.1       jtc 	register unsigned char *	typep;
    767       1.1       jtc 	register char *			cp;
    768       1.1       jtc 	register int			load_result;
    769       1.1       jtc 
    770       1.1       jtc 	INITIALIZE(dstname);
    771       1.1       jtc 	stdname = name;
    772       1.1       jtc 	if (lastditch) {
    773       1.1       jtc 		stdlen = strlen(name);	/* length of standard zone name */
    774       1.1       jtc 		name += stdlen;
    775       1.1       jtc 		if (stdlen >= sizeof sp->chars)
    776       1.1       jtc 			stdlen = (sizeof sp->chars) - 1;
    777      1.10       jtc 		stdoffset = 0;
    778       1.1       jtc 	} else {
    779       1.1       jtc 		name = getzname(name);
    780       1.1       jtc 		stdlen = name - stdname;
    781       1.1       jtc 		if (stdlen < 3)
    782       1.1       jtc 			return -1;
    783      1.10       jtc 		if (*name == '\0')
    784      1.10       jtc 			return -1;
    785       1.1       jtc 		name = getoffset(name, &stdoffset);
    786       1.1       jtc 		if (name == NULL)
    787       1.1       jtc 			return -1;
    788       1.1       jtc 	}
    789       1.1       jtc 	load_result = tzload(TZDEFRULES, sp);
    790       1.1       jtc 	if (load_result != 0)
    791       1.1       jtc 		sp->leapcnt = 0;		/* so, we're off a little */
    792       1.1       jtc 	if (*name != '\0') {
    793       1.1       jtc 		dstname = name;
    794       1.1       jtc 		name = getzname(name);
    795       1.1       jtc 		dstlen = name - dstname;	/* length of DST zone name */
    796       1.1       jtc 		if (dstlen < 3)
    797       1.1       jtc 			return -1;
    798       1.1       jtc 		if (*name != '\0' && *name != ',' && *name != ';') {
    799       1.1       jtc 			name = getoffset(name, &dstoffset);
    800       1.1       jtc 			if (name == NULL)
    801       1.1       jtc 				return -1;
    802       1.1       jtc 		} else	dstoffset = stdoffset - SECSPERHOUR;
    803      1.22    kleink 		if (*name == '\0' && load_result != 0)
    804      1.22    kleink 			name = TZDEFRULESTRING;
    805       1.1       jtc 		if (*name == ',' || *name == ';') {
    806       1.1       jtc 			struct rule	start;
    807       1.1       jtc 			struct rule	end;
    808       1.1       jtc 			register int	year;
    809       1.1       jtc 			register time_t	janfirst;
    810       1.1       jtc 			time_t		starttime;
    811       1.1       jtc 			time_t		endtime;
    812       1.1       jtc 
    813       1.1       jtc 			++name;
    814       1.1       jtc 			if ((name = getrule(name, &start)) == NULL)
    815       1.1       jtc 				return -1;
    816       1.1       jtc 			if (*name++ != ',')
    817       1.1       jtc 				return -1;
    818       1.1       jtc 			if ((name = getrule(name, &end)) == NULL)
    819       1.1       jtc 				return -1;
    820       1.1       jtc 			if (*name != '\0')
    821       1.1       jtc 				return -1;
    822       1.1       jtc 			sp->typecnt = 2;	/* standard time and DST */
    823       1.1       jtc 			/*
    824       1.1       jtc 			** Two transitions per year, from EPOCH_YEAR to 2037.
    825       1.1       jtc 			*/
    826       1.1       jtc 			sp->timecnt = 2 * (2037 - EPOCH_YEAR + 1);
    827       1.1       jtc 			if (sp->timecnt > TZ_MAX_TIMES)
    828       1.1       jtc 				return -1;
    829       1.1       jtc 			sp->ttis[0].tt_gmtoff = -dstoffset;
    830       1.1       jtc 			sp->ttis[0].tt_isdst = 1;
    831       1.1       jtc 			sp->ttis[0].tt_abbrind = stdlen + 1;
    832       1.1       jtc 			sp->ttis[1].tt_gmtoff = -stdoffset;
    833       1.1       jtc 			sp->ttis[1].tt_isdst = 0;
    834       1.1       jtc 			sp->ttis[1].tt_abbrind = 0;
    835       1.1       jtc 			atp = sp->ats;
    836       1.1       jtc 			typep = sp->types;
    837       1.1       jtc 			janfirst = 0;
    838       1.1       jtc 			for (year = EPOCH_YEAR; year <= 2037; ++year) {
    839       1.1       jtc 				starttime = transtime(janfirst, year, &start,
    840       1.1       jtc 					stdoffset);
    841       1.1       jtc 				endtime = transtime(janfirst, year, &end,
    842       1.1       jtc 					dstoffset);
    843       1.1       jtc 				if (starttime > endtime) {
    844       1.1       jtc 					*atp++ = endtime;
    845       1.1       jtc 					*typep++ = 1;	/* DST ends */
    846       1.1       jtc 					*atp++ = starttime;
    847       1.1       jtc 					*typep++ = 0;	/* DST begins */
    848       1.1       jtc 				} else {
    849       1.1       jtc 					*atp++ = starttime;
    850       1.1       jtc 					*typep++ = 0;	/* DST begins */
    851       1.1       jtc 					*atp++ = endtime;
    852       1.1       jtc 					*typep++ = 1;	/* DST ends */
    853       1.1       jtc 				}
    854       1.1       jtc 				janfirst += year_lengths[isleap(year)] *
    855       1.1       jtc 					SECSPERDAY;
    856       1.1       jtc 			}
    857       1.1       jtc 		} else {
    858       1.1       jtc 			register long	theirstdoffset;
    859       1.1       jtc 			register long	theirdstoffset;
    860       1.1       jtc 			register long	theiroffset;
    861       1.1       jtc 			register int	isdst;
    862       1.1       jtc 			register int	i;
    863       1.1       jtc 			register int	j;
    864       1.1       jtc 
    865       1.1       jtc 			if (*name != '\0')
    866       1.1       jtc 				return -1;
    867       1.1       jtc 			/*
    868       1.1       jtc 			** Initial values of theirstdoffset and theirdstoffset.
    869       1.1       jtc 			*/
    870       1.1       jtc 			theirstdoffset = 0;
    871       1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
    872       1.1       jtc 				j = sp->types[i];
    873       1.1       jtc 				if (!sp->ttis[j].tt_isdst) {
    874       1.5       jtc 					theirstdoffset =
    875       1.5       jtc 						-sp->ttis[j].tt_gmtoff;
    876       1.1       jtc 					break;
    877       1.1       jtc 				}
    878       1.1       jtc 			}
    879       1.1       jtc 			theirdstoffset = 0;
    880       1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
    881       1.1       jtc 				j = sp->types[i];
    882       1.1       jtc 				if (sp->ttis[j].tt_isdst) {
    883       1.5       jtc 					theirdstoffset =
    884       1.5       jtc 						-sp->ttis[j].tt_gmtoff;
    885       1.1       jtc 					break;
    886       1.1       jtc 				}
    887       1.1       jtc 			}
    888       1.1       jtc 			/*
    889       1.1       jtc 			** Initially we're assumed to be in standard time.
    890       1.1       jtc 			*/
    891       1.1       jtc 			isdst = FALSE;
    892       1.1       jtc 			theiroffset = theirstdoffset;
    893       1.1       jtc 			/*
    894       1.1       jtc 			** Now juggle transition times and types
    895       1.1       jtc 			** tracking offsets as you do.
    896       1.1       jtc 			*/
    897       1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
    898       1.1       jtc 				j = sp->types[i];
    899       1.1       jtc 				sp->types[i] = sp->ttis[j].tt_isdst;
    900       1.1       jtc 				if (sp->ttis[j].tt_ttisgmt) {
    901       1.1       jtc 					/* No adjustment to transition time */
    902       1.1       jtc 				} else {
    903       1.1       jtc 					/*
    904       1.1       jtc 					** If summer time is in effect, and the
    905       1.1       jtc 					** transition time was not specified as
    906       1.1       jtc 					** standard time, add the summer time
    907       1.1       jtc 					** offset to the transition time;
    908       1.1       jtc 					** otherwise, add the standard time
    909       1.1       jtc 					** offset to the transition time.
    910       1.1       jtc 					*/
    911       1.1       jtc 					/*
    912       1.1       jtc 					** Transitions from DST to DDST
    913       1.1       jtc 					** will effectively disappear since
    914       1.1       jtc 					** POSIX provides for only one DST
    915       1.1       jtc 					** offset.
    916       1.1       jtc 					*/
    917       1.1       jtc 					if (isdst && !sp->ttis[j].tt_ttisstd) {
    918       1.1       jtc 						sp->ats[i] += dstoffset -
    919       1.1       jtc 							theirdstoffset;
    920       1.1       jtc 					} else {
    921       1.1       jtc 						sp->ats[i] += stdoffset -
    922       1.1       jtc 							theirstdoffset;
    923       1.1       jtc 					}
    924       1.1       jtc 				}
    925       1.1       jtc 				theiroffset = -sp->ttis[j].tt_gmtoff;
    926       1.1       jtc 				if (sp->ttis[j].tt_isdst)
    927       1.1       jtc 					theirdstoffset = theiroffset;
    928       1.1       jtc 				else	theirstdoffset = theiroffset;
    929       1.1       jtc 			}
    930       1.1       jtc 			/*
    931       1.1       jtc 			** Finally, fill in ttis.
    932       1.1       jtc 			** ttisstd and ttisgmt need not be handled.
    933       1.1       jtc 			*/
    934       1.1       jtc 			sp->ttis[0].tt_gmtoff = -stdoffset;
    935       1.1       jtc 			sp->ttis[0].tt_isdst = FALSE;
    936       1.1       jtc 			sp->ttis[0].tt_abbrind = 0;
    937       1.1       jtc 			sp->ttis[1].tt_gmtoff = -dstoffset;
    938       1.1       jtc 			sp->ttis[1].tt_isdst = TRUE;
    939       1.1       jtc 			sp->ttis[1].tt_abbrind = stdlen + 1;
    940       1.7       jtc 			sp->typecnt = 2;
    941       1.1       jtc 		}
    942       1.1       jtc 	} else {
    943       1.1       jtc 		dstlen = 0;
    944       1.1       jtc 		sp->typecnt = 1;		/* only standard time */
    945       1.1       jtc 		sp->timecnt = 0;
    946       1.1       jtc 		sp->ttis[0].tt_gmtoff = -stdoffset;
    947       1.1       jtc 		sp->ttis[0].tt_isdst = 0;
    948       1.1       jtc 		sp->ttis[0].tt_abbrind = 0;
    949       1.1       jtc 	}
    950       1.1       jtc 	sp->charcnt = stdlen + 1;
    951       1.1       jtc 	if (dstlen != 0)
    952       1.1       jtc 		sp->charcnt += dstlen + 1;
    953      1.10       jtc 	if ((size_t) sp->charcnt > sizeof sp->chars)
    954       1.1       jtc 		return -1;
    955       1.1       jtc 	cp = sp->chars;
    956       1.1       jtc 	(void) strncpy(cp, stdname, stdlen);
    957       1.1       jtc 	cp += stdlen;
    958       1.1       jtc 	*cp++ = '\0';
    959       1.1       jtc 	if (dstlen != 0) {
    960       1.1       jtc 		(void) strncpy(cp, dstname, dstlen);
    961       1.1       jtc 		*(cp + dstlen) = '\0';
    962       1.1       jtc 	}
    963       1.1       jtc 	return 0;
    964       1.1       jtc }
    965       1.1       jtc 
    966       1.1       jtc static void
    967       1.1       jtc gmtload(sp)
    968       1.1       jtc struct state * const	sp;
    969       1.1       jtc {
    970       1.1       jtc 	if (tzload(gmt, sp) != 0)
    971       1.1       jtc 		(void) tzparse(gmt, sp, TRUE);
    972       1.1       jtc }
    973       1.1       jtc 
    974      1.19    kleink static void
    975      1.19    kleink tzsetwall_unlocked P((void))
    976       1.1       jtc {
    977       1.1       jtc 	if (lcl_is_set < 0)
    978       1.1       jtc 		return;
    979       1.1       jtc 	lcl_is_set = -1;
    980       1.1       jtc 
    981       1.1       jtc #ifdef ALL_STATE
    982       1.1       jtc 	if (lclptr == NULL) {
    983       1.1       jtc 		lclptr = (struct state *) malloc(sizeof *lclptr);
    984       1.1       jtc 		if (lclptr == NULL) {
    985       1.1       jtc 			settzname();	/* all we can do */
    986       1.1       jtc 			return;
    987       1.1       jtc 		}
    988       1.1       jtc 	}
    989       1.1       jtc #endif /* defined ALL_STATE */
    990       1.1       jtc 	if (tzload((char *) NULL, lclptr) != 0)
    991       1.1       jtc 		gmtload(lclptr);
    992       1.1       jtc 	settzname();
    993       1.1       jtc }
    994       1.1       jtc 
    995      1.19    kleink #ifndef STD_INSPIRED
    996      1.19    kleink /*
    997      1.19    kleink ** A non-static declaration of tzsetwall in a system header file
    998      1.19    kleink ** may cause a warning about this upcoming static declaration...
    999      1.19    kleink */
   1000      1.19    kleink static
   1001      1.19    kleink #endif /* !defined STD_INSPIRED */
   1002       1.1       jtc void
   1003      1.19    kleink tzsetwall P((void))
   1004      1.19    kleink {
   1005      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1006      1.19    kleink 	tzsetwall_unlocked();
   1007      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1008      1.19    kleink }
   1009      1.19    kleink 
   1010      1.19    kleink static void
   1011      1.19    kleink tzset_unlocked P((void))
   1012       1.1       jtc {
   1013       1.1       jtc 	register const char *	name;
   1014       1.1       jtc 
   1015       1.1       jtc 	name = getenv("TZ");
   1016       1.1       jtc 	if (name == NULL) {
   1017      1.19    kleink 		tzsetwall_unlocked();
   1018       1.1       jtc 		return;
   1019       1.1       jtc 	}
   1020       1.1       jtc 
   1021       1.1       jtc 	if (lcl_is_set > 0  &&  strcmp(lcl_TZname, name) == 0)
   1022       1.1       jtc 		return;
   1023       1.1       jtc 	lcl_is_set = (strlen(name) < sizeof(lcl_TZname));
   1024       1.1       jtc 	if (lcl_is_set)
   1025       1.8       mrg 		(void)strncpy(lcl_TZname, name, sizeof(lcl_TZname) - 1);
   1026       1.1       jtc 
   1027       1.1       jtc #ifdef ALL_STATE
   1028       1.1       jtc 	if (lclptr == NULL) {
   1029       1.1       jtc 		lclptr = (struct state *) malloc(sizeof *lclptr);
   1030       1.1       jtc 		if (lclptr == NULL) {
   1031       1.1       jtc 			settzname();	/* all we can do */
   1032       1.1       jtc 			return;
   1033       1.1       jtc 		}
   1034       1.1       jtc 	}
   1035       1.1       jtc #endif /* defined ALL_STATE */
   1036       1.1       jtc 	if (*name == '\0') {
   1037       1.1       jtc 		/*
   1038       1.1       jtc 		** User wants it fast rather than right.
   1039       1.1       jtc 		*/
   1040       1.1       jtc 		lclptr->leapcnt = 0;		/* so, we're off a little */
   1041       1.1       jtc 		lclptr->timecnt = 0;
   1042       1.1       jtc 		lclptr->ttis[0].tt_gmtoff = 0;
   1043       1.1       jtc 		lclptr->ttis[0].tt_abbrind = 0;
   1044       1.8       mrg 		(void)strncpy(lclptr->chars, gmt, sizeof(lclptr->chars) - 1);
   1045       1.1       jtc 	} else if (tzload(name, lclptr) != 0)
   1046       1.1       jtc 		if (name[0] == ':' || tzparse(name, lclptr, FALSE) != 0)
   1047       1.1       jtc 			(void) gmtload(lclptr);
   1048       1.1       jtc 	settzname();
   1049       1.1       jtc }
   1050       1.1       jtc 
   1051      1.19    kleink void
   1052      1.19    kleink tzset P((void))
   1053      1.19    kleink {
   1054      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1055      1.19    kleink 	tzset_unlocked();
   1056      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1057      1.19    kleink }
   1058      1.19    kleink 
   1059       1.1       jtc /*
   1060       1.1       jtc ** The easy way to behave "as if no library function calls" localtime
   1061       1.1       jtc ** is to not call it--so we drop its guts into "localsub", which can be
   1062       1.1       jtc ** freely called.  (And no, the PANS doesn't require the above behavior--
   1063       1.1       jtc ** but it *is* desirable.)
   1064       1.1       jtc **
   1065       1.1       jtc ** The unused offset argument is for the benefit of mktime variants.
   1066       1.1       jtc */
   1067       1.1       jtc 
   1068       1.1       jtc /*ARGSUSED*/
   1069       1.1       jtc static void
   1070       1.1       jtc localsub(timep, offset, tmp)
   1071       1.1       jtc const time_t * const	timep;
   1072       1.1       jtc const long		offset;
   1073       1.1       jtc struct tm * const	tmp;
   1074       1.1       jtc {
   1075       1.1       jtc 	register struct state *		sp;
   1076       1.1       jtc 	register const struct ttinfo *	ttisp;
   1077       1.1       jtc 	register int			i;
   1078       1.1       jtc 	const time_t			t = *timep;
   1079       1.1       jtc 
   1080       1.1       jtc 	sp = lclptr;
   1081       1.1       jtc #ifdef ALL_STATE
   1082       1.1       jtc 	if (sp == NULL) {
   1083       1.1       jtc 		gmtsub(timep, offset, tmp);
   1084       1.1       jtc 		return;
   1085       1.1       jtc 	}
   1086       1.1       jtc #endif /* defined ALL_STATE */
   1087       1.1       jtc 	if (sp->timecnt == 0 || t < sp->ats[0]) {
   1088       1.1       jtc 		i = 0;
   1089       1.1       jtc 		while (sp->ttis[i].tt_isdst)
   1090       1.1       jtc 			if (++i >= sp->typecnt) {
   1091       1.1       jtc 				i = 0;
   1092       1.1       jtc 				break;
   1093       1.1       jtc 			}
   1094       1.1       jtc 	} else {
   1095       1.1       jtc 		for (i = 1; i < sp->timecnt; ++i)
   1096       1.1       jtc 			if (t < sp->ats[i])
   1097       1.1       jtc 				break;
   1098       1.1       jtc 		i = sp->types[i - 1];
   1099       1.1       jtc 	}
   1100       1.1       jtc 	ttisp = &sp->ttis[i];
   1101       1.1       jtc 	/*
   1102       1.1       jtc 	** To get (wrong) behavior that's compatible with System V Release 2.0
   1103       1.1       jtc 	** you'd replace the statement below with
   1104       1.1       jtc 	**	t += ttisp->tt_gmtoff;
   1105       1.1       jtc 	**	timesub(&t, 0L, sp, tmp);
   1106       1.1       jtc 	*/
   1107       1.1       jtc 	timesub(&t, ttisp->tt_gmtoff, sp, tmp);
   1108       1.1       jtc 	tmp->tm_isdst = ttisp->tt_isdst;
   1109       1.1       jtc 	tzname[tmp->tm_isdst] = &sp->chars[ttisp->tt_abbrind];
   1110       1.1       jtc #ifdef TM_ZONE
   1111       1.1       jtc 	tmp->TM_ZONE = &sp->chars[ttisp->tt_abbrind];
   1112       1.1       jtc #endif /* defined TM_ZONE */
   1113       1.1       jtc }
   1114       1.1       jtc 
   1115       1.1       jtc struct tm *
   1116       1.1       jtc localtime(timep)
   1117       1.1       jtc const time_t * const	timep;
   1118       1.1       jtc {
   1119      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1120      1.19    kleink 	tzset_unlocked();
   1121       1.1       jtc 	localsub(timep, 0L, &tm);
   1122      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1123       1.1       jtc 	return &tm;
   1124       1.1       jtc }
   1125       1.1       jtc 
   1126       1.1       jtc /*
   1127      1.18    kleink  * Re-entrant version of localtime
   1128      1.18    kleink  */
   1129      1.18    kleink struct tm *
   1130      1.18    kleink localtime_r(timep, tm)
   1131      1.18    kleink const time_t * const	timep;
   1132      1.18    kleink struct tm *		tm;
   1133      1.18    kleink {
   1134      1.19    kleink 	rwlock_rdlock(&lcl_lock);
   1135      1.18    kleink 	localsub(timep, 0L, tm);
   1136      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1137      1.18    kleink 	return tm;
   1138      1.18    kleink }
   1139      1.18    kleink 
   1140      1.18    kleink /*
   1141       1.1       jtc ** gmtsub is to gmtime as localsub is to localtime.
   1142       1.1       jtc */
   1143       1.1       jtc 
   1144       1.1       jtc static void
   1145       1.1       jtc gmtsub(timep, offset, tmp)
   1146       1.1       jtc const time_t * const	timep;
   1147       1.1       jtc const long		offset;
   1148       1.1       jtc struct tm * const	tmp;
   1149       1.1       jtc {
   1150  1.24.2.1   nathanw #ifdef _REENTRANT
   1151      1.19    kleink 	static mutex_t gmt_mutex = MUTEX_INITIALIZER;
   1152      1.19    kleink #endif
   1153      1.19    kleink 
   1154      1.19    kleink 	mutex_lock(&gmt_mutex);
   1155       1.1       jtc 	if (!gmt_is_set) {
   1156       1.1       jtc 		gmt_is_set = TRUE;
   1157       1.1       jtc #ifdef ALL_STATE
   1158       1.1       jtc 		gmtptr = (struct state *) malloc(sizeof *gmtptr);
   1159       1.1       jtc 		if (gmtptr != NULL)
   1160       1.1       jtc #endif /* defined ALL_STATE */
   1161       1.1       jtc 			gmtload(gmtptr);
   1162       1.1       jtc 	}
   1163      1.19    kleink 	mutex_unlock(&gmt_mutex);
   1164       1.1       jtc 	timesub(timep, offset, gmtptr, tmp);
   1165       1.1       jtc #ifdef TM_ZONE
   1166       1.1       jtc 	/*
   1167       1.1       jtc 	** Could get fancy here and deliver something such as
   1168      1.14       jtc 	** "UTC+xxxx" or "UTC-xxxx" if offset is non-zero,
   1169       1.1       jtc 	** but this is no time for a treasure hunt.
   1170       1.1       jtc 	*/
   1171       1.1       jtc 	if (offset != 0)
   1172      1.21  christos 		/* LINTED const castaway */
   1173      1.16   mycroft 		tmp->TM_ZONE = (__aconst char *)wildabbr;
   1174       1.1       jtc 	else {
   1175       1.1       jtc #ifdef ALL_STATE
   1176       1.1       jtc 		if (gmtptr == NULL)
   1177      1.17   mycroft 			tmp->TM_ZONE = (__aconst char *)gmt;
   1178       1.1       jtc 		else	tmp->TM_ZONE = gmtptr->chars;
   1179       1.1       jtc #endif /* defined ALL_STATE */
   1180       1.1       jtc #ifndef ALL_STATE
   1181       1.1       jtc 		tmp->TM_ZONE = gmtptr->chars;
   1182       1.1       jtc #endif /* State Farm */
   1183       1.1       jtc 	}
   1184       1.1       jtc #endif /* defined TM_ZONE */
   1185       1.1       jtc }
   1186       1.1       jtc 
   1187       1.1       jtc struct tm *
   1188       1.1       jtc gmtime(timep)
   1189       1.1       jtc const time_t * const	timep;
   1190       1.1       jtc {
   1191       1.1       jtc 	gmtsub(timep, 0L, &tm);
   1192       1.1       jtc 	return &tm;
   1193       1.1       jtc }
   1194       1.1       jtc 
   1195      1.18    kleink /*
   1196      1.18    kleink  * Re-entrant version of gmtime
   1197      1.18    kleink  */
   1198      1.18    kleink struct tm *
   1199      1.18    kleink gmtime_r(timep, tm)
   1200      1.18    kleink const time_t * const	timep;
   1201      1.18    kleink struct tm *		tm;
   1202      1.18    kleink {
   1203      1.18    kleink 	gmtsub(timep, 0L, tm);
   1204      1.18    kleink 	return tm;
   1205      1.18    kleink }
   1206      1.18    kleink 
   1207       1.1       jtc #ifdef STD_INSPIRED
   1208       1.1       jtc 
   1209       1.1       jtc struct tm *
   1210       1.1       jtc offtime(timep, offset)
   1211       1.1       jtc const time_t * const	timep;
   1212       1.1       jtc const long		offset;
   1213       1.1       jtc {
   1214       1.1       jtc 	gmtsub(timep, offset, &tm);
   1215       1.1       jtc 	return &tm;
   1216       1.1       jtc }
   1217       1.1       jtc 
   1218       1.1       jtc #endif /* defined STD_INSPIRED */
   1219       1.1       jtc 
   1220       1.1       jtc static void
   1221       1.1       jtc timesub(timep, offset, sp, tmp)
   1222       1.1       jtc const time_t * const			timep;
   1223       1.1       jtc const long				offset;
   1224       1.1       jtc register const struct state * const	sp;
   1225       1.1       jtc register struct tm * const		tmp;
   1226       1.1       jtc {
   1227       1.1       jtc 	register const struct lsinfo *	lp;
   1228       1.1       jtc 	register long			days;
   1229       1.1       jtc 	register long			rem;
   1230       1.1       jtc 	register int			y;
   1231       1.1       jtc 	register int			yleap;
   1232       1.1       jtc 	register const int *		ip;
   1233       1.1       jtc 	register long			corr;
   1234       1.1       jtc 	register int			hit;
   1235       1.1       jtc 	register int			i;
   1236       1.1       jtc 
   1237       1.1       jtc 	corr = 0;
   1238       1.1       jtc 	hit = 0;
   1239       1.1       jtc #ifdef ALL_STATE
   1240       1.1       jtc 	i = (sp == NULL) ? 0 : sp->leapcnt;
   1241       1.1       jtc #endif /* defined ALL_STATE */
   1242       1.1       jtc #ifndef ALL_STATE
   1243       1.1       jtc 	i = sp->leapcnt;
   1244       1.1       jtc #endif /* State Farm */
   1245       1.1       jtc 	while (--i >= 0) {
   1246       1.1       jtc 		lp = &sp->lsis[i];
   1247       1.1       jtc 		if (*timep >= lp->ls_trans) {
   1248       1.1       jtc 			if (*timep == lp->ls_trans) {
   1249       1.1       jtc 				hit = ((i == 0 && lp->ls_corr > 0) ||
   1250       1.1       jtc 					lp->ls_corr > sp->lsis[i - 1].ls_corr);
   1251       1.1       jtc 				if (hit)
   1252       1.1       jtc 					while (i > 0 &&
   1253       1.1       jtc 						sp->lsis[i].ls_trans ==
   1254       1.1       jtc 						sp->lsis[i - 1].ls_trans + 1 &&
   1255       1.1       jtc 						sp->lsis[i].ls_corr ==
   1256       1.1       jtc 						sp->lsis[i - 1].ls_corr + 1) {
   1257       1.1       jtc 							++hit;
   1258       1.1       jtc 							--i;
   1259       1.1       jtc 					}
   1260       1.1       jtc 			}
   1261       1.1       jtc 			corr = lp->ls_corr;
   1262       1.1       jtc 			break;
   1263       1.1       jtc 		}
   1264       1.1       jtc 	}
   1265       1.1       jtc 	days = *timep / SECSPERDAY;
   1266       1.1       jtc 	rem = *timep % SECSPERDAY;
   1267       1.1       jtc #ifdef mc68k
   1268       1.1       jtc 	if (*timep == 0x80000000) {
   1269       1.1       jtc 		/*
   1270       1.1       jtc 		** A 3B1 muffs the division on the most negative number.
   1271       1.1       jtc 		*/
   1272       1.1       jtc 		days = -24855;
   1273       1.1       jtc 		rem = -11648;
   1274       1.1       jtc 	}
   1275       1.1       jtc #endif /* defined mc68k */
   1276       1.1       jtc 	rem += (offset - corr);
   1277       1.1       jtc 	while (rem < 0) {
   1278       1.1       jtc 		rem += SECSPERDAY;
   1279       1.1       jtc 		--days;
   1280       1.1       jtc 	}
   1281       1.1       jtc 	while (rem >= SECSPERDAY) {
   1282       1.1       jtc 		rem -= SECSPERDAY;
   1283       1.1       jtc 		++days;
   1284       1.1       jtc 	}
   1285       1.1       jtc 	tmp->tm_hour = (int) (rem / SECSPERHOUR);
   1286       1.1       jtc 	rem = rem % SECSPERHOUR;
   1287       1.1       jtc 	tmp->tm_min = (int) (rem / SECSPERMIN);
   1288       1.6       jtc 	/*
   1289       1.6       jtc 	** A positive leap second requires a special
   1290       1.6       jtc 	** representation.  This uses "... ??:59:60" et seq.
   1291       1.6       jtc 	*/
   1292       1.6       jtc 	tmp->tm_sec = (int) (rem % SECSPERMIN) + hit;
   1293       1.1       jtc 	tmp->tm_wday = (int) ((EPOCH_WDAY + days) % DAYSPERWEEK);
   1294       1.1       jtc 	if (tmp->tm_wday < 0)
   1295       1.1       jtc 		tmp->tm_wday += DAYSPERWEEK;
   1296       1.1       jtc 	y = EPOCH_YEAR;
   1297       1.5       jtc #define LEAPS_THRU_END_OF(y)	((y) / 4 - (y) / 100 + (y) / 400)
   1298       1.5       jtc 	while (days < 0 || days >= (long) year_lengths[yleap = isleap(y)]) {
   1299       1.5       jtc 		register int	newy;
   1300       1.5       jtc 
   1301      1.21  christos 		newy = (int)(y + days / DAYSPERNYEAR);
   1302       1.5       jtc 		if (days < 0)
   1303       1.5       jtc 			--newy;
   1304       1.5       jtc 		days -= (newy - y) * DAYSPERNYEAR +
   1305       1.5       jtc 			LEAPS_THRU_END_OF(newy - 1) -
   1306       1.5       jtc 			LEAPS_THRU_END_OF(y - 1);
   1307       1.5       jtc 		y = newy;
   1308       1.5       jtc 	}
   1309       1.1       jtc 	tmp->tm_year = y - TM_YEAR_BASE;
   1310       1.1       jtc 	tmp->tm_yday = (int) days;
   1311       1.1       jtc 	ip = mon_lengths[yleap];
   1312       1.1       jtc 	for (tmp->tm_mon = 0; days >= (long) ip[tmp->tm_mon]; ++(tmp->tm_mon))
   1313       1.1       jtc 		days = days - (long) ip[tmp->tm_mon];
   1314       1.1       jtc 	tmp->tm_mday = (int) (days + 1);
   1315       1.1       jtc 	tmp->tm_isdst = 0;
   1316       1.1       jtc #ifdef TM_GMTOFF
   1317       1.1       jtc 	tmp->TM_GMTOFF = offset;
   1318       1.1       jtc #endif /* defined TM_GMTOFF */
   1319       1.1       jtc }
   1320       1.1       jtc 
   1321       1.1       jtc char *
   1322       1.1       jtc ctime(timep)
   1323       1.1       jtc const time_t * const	timep;
   1324       1.1       jtc {
   1325       1.1       jtc /*
   1326       1.1       jtc ** Section 4.12.3.2 of X3.159-1989 requires that
   1327      1.18    kleink **	The ctime function converts the calendar time pointed to by timer
   1328       1.1       jtc **	to local time in the form of a string.  It is equivalent to
   1329       1.1       jtc **		asctime(localtime(timer))
   1330       1.1       jtc */
   1331       1.1       jtc 	return asctime(localtime(timep));
   1332      1.18    kleink }
   1333      1.18    kleink 
   1334      1.18    kleink char *
   1335      1.18    kleink ctime_r(timep, buf)
   1336      1.18    kleink const time_t * const	timep;
   1337      1.18    kleink char *			buf;
   1338      1.18    kleink {
   1339      1.21  christos 	struct tm	tmp;
   1340      1.18    kleink 
   1341      1.21  christos 	return asctime_r(localtime_r(timep, &tmp), buf);
   1342       1.1       jtc }
   1343       1.1       jtc 
   1344       1.1       jtc /*
   1345       1.1       jtc ** Adapted from code provided by Robert Elz, who writes:
   1346       1.1       jtc **	The "best" way to do mktime I think is based on an idea of Bob
   1347       1.7       jtc **	Kridle's (so its said...) from a long time ago.
   1348       1.7       jtc **	[kridle (at) xinet.com as of 1996-01-16.]
   1349       1.1       jtc **	It does a binary search of the time_t space.  Since time_t's are
   1350       1.1       jtc **	just 32 bits, its a max of 32 iterations (even at 64 bits it
   1351       1.1       jtc **	would still be very reasonable).
   1352       1.1       jtc */
   1353       1.1       jtc 
   1354       1.1       jtc #ifndef WRONG
   1355       1.1       jtc #define WRONG	(-1)
   1356       1.1       jtc #endif /* !defined WRONG */
   1357       1.1       jtc 
   1358       1.1       jtc /*
   1359       1.1       jtc ** Simplified normalize logic courtesy Paul Eggert (eggert (at) twinsun.com).
   1360       1.1       jtc */
   1361       1.1       jtc 
   1362       1.1       jtc static int
   1363       1.1       jtc increment_overflow(number, delta)
   1364       1.1       jtc int *	number;
   1365       1.1       jtc int	delta;
   1366       1.1       jtc {
   1367       1.1       jtc 	int	number0;
   1368       1.1       jtc 
   1369       1.1       jtc 	number0 = *number;
   1370       1.1       jtc 	*number += delta;
   1371       1.1       jtc 	return (*number < number0) != (delta < 0);
   1372       1.1       jtc }
   1373       1.1       jtc 
   1374       1.1       jtc static int
   1375       1.1       jtc normalize_overflow(tensptr, unitsptr, base)
   1376       1.1       jtc int * const	tensptr;
   1377       1.1       jtc int * const	unitsptr;
   1378       1.1       jtc const int	base;
   1379       1.1       jtc {
   1380       1.1       jtc 	register int	tensdelta;
   1381       1.1       jtc 
   1382       1.1       jtc 	tensdelta = (*unitsptr >= 0) ?
   1383       1.1       jtc 		(*unitsptr / base) :
   1384       1.1       jtc 		(-1 - (-1 - *unitsptr) / base);
   1385       1.1       jtc 	*unitsptr -= tensdelta * base;
   1386       1.1       jtc 	return increment_overflow(tensptr, tensdelta);
   1387       1.1       jtc }
   1388       1.1       jtc 
   1389       1.1       jtc static int
   1390       1.1       jtc tmcomp(atmp, btmp)
   1391       1.1       jtc register const struct tm * const atmp;
   1392       1.1       jtc register const struct tm * const btmp;
   1393       1.1       jtc {
   1394       1.1       jtc 	register int	result;
   1395       1.1       jtc 
   1396       1.1       jtc 	if ((result = (atmp->tm_year - btmp->tm_year)) == 0 &&
   1397       1.1       jtc 		(result = (atmp->tm_mon - btmp->tm_mon)) == 0 &&
   1398       1.1       jtc 		(result = (atmp->tm_mday - btmp->tm_mday)) == 0 &&
   1399       1.1       jtc 		(result = (atmp->tm_hour - btmp->tm_hour)) == 0 &&
   1400       1.1       jtc 		(result = (atmp->tm_min - btmp->tm_min)) == 0)
   1401       1.1       jtc 			result = atmp->tm_sec - btmp->tm_sec;
   1402       1.1       jtc 	return result;
   1403       1.1       jtc }
   1404       1.1       jtc 
   1405       1.1       jtc static time_t
   1406      1.13       jtc time2sub(tmp, funcp, offset, okayp, do_norm_secs)
   1407       1.1       jtc struct tm * const	tmp;
   1408       1.1       jtc void (* const		funcp) P((const time_t*, long, struct tm*));
   1409       1.1       jtc const long		offset;
   1410       1.1       jtc int * const		okayp;
   1411      1.13       jtc const int		do_norm_secs;
   1412       1.1       jtc {
   1413       1.1       jtc 	register const struct state *	sp;
   1414       1.1       jtc 	register int			dir;
   1415       1.1       jtc 	register int			bits;
   1416       1.1       jtc 	register int			i, j ;
   1417       1.1       jtc 	register int			saved_seconds;
   1418       1.1       jtc 	time_t				newt;
   1419       1.1       jtc 	time_t				t;
   1420       1.1       jtc 	struct tm			yourtm, mytm;
   1421       1.1       jtc 
   1422       1.1       jtc 	*okayp = FALSE;
   1423       1.1       jtc 	yourtm = *tmp;
   1424      1.13       jtc 	if (do_norm_secs) {
   1425      1.13       jtc 		if (normalize_overflow(&yourtm.tm_min, &yourtm.tm_sec,
   1426      1.13       jtc 			SECSPERMIN))
   1427      1.13       jtc 				return WRONG;
   1428      1.13       jtc 	}
   1429       1.1       jtc 	if (normalize_overflow(&yourtm.tm_hour, &yourtm.tm_min, MINSPERHOUR))
   1430       1.1       jtc 		return WRONG;
   1431       1.1       jtc 	if (normalize_overflow(&yourtm.tm_mday, &yourtm.tm_hour, HOURSPERDAY))
   1432       1.1       jtc 		return WRONG;
   1433       1.1       jtc 	if (normalize_overflow(&yourtm.tm_year, &yourtm.tm_mon, MONSPERYEAR))
   1434       1.1       jtc 		return WRONG;
   1435       1.1       jtc 	/*
   1436       1.1       jtc 	** Turn yourtm.tm_year into an actual year number for now.
   1437       1.1       jtc 	** It is converted back to an offset from TM_YEAR_BASE later.
   1438       1.1       jtc 	*/
   1439       1.1       jtc 	if (increment_overflow(&yourtm.tm_year, TM_YEAR_BASE))
   1440       1.1       jtc 		return WRONG;
   1441       1.1       jtc 	while (yourtm.tm_mday <= 0) {
   1442       1.1       jtc 		if (increment_overflow(&yourtm.tm_year, -1))
   1443       1.1       jtc 			return WRONG;
   1444       1.7       jtc 		i = yourtm.tm_year + (1 < yourtm.tm_mon);
   1445       1.7       jtc 		yourtm.tm_mday += year_lengths[isleap(i)];
   1446       1.1       jtc 	}
   1447       1.1       jtc 	while (yourtm.tm_mday > DAYSPERLYEAR) {
   1448       1.7       jtc 		i = yourtm.tm_year + (1 < yourtm.tm_mon);
   1449       1.7       jtc 		yourtm.tm_mday -= year_lengths[isleap(i)];
   1450       1.1       jtc 		if (increment_overflow(&yourtm.tm_year, 1))
   1451       1.1       jtc 			return WRONG;
   1452       1.1       jtc 	}
   1453       1.1       jtc 	for ( ; ; ) {
   1454       1.1       jtc 		i = mon_lengths[isleap(yourtm.tm_year)][yourtm.tm_mon];
   1455       1.1       jtc 		if (yourtm.tm_mday <= i)
   1456       1.1       jtc 			break;
   1457       1.1       jtc 		yourtm.tm_mday -= i;
   1458       1.1       jtc 		if (++yourtm.tm_mon >= MONSPERYEAR) {
   1459       1.1       jtc 			yourtm.tm_mon = 0;
   1460       1.1       jtc 			if (increment_overflow(&yourtm.tm_year, 1))
   1461       1.1       jtc 				return WRONG;
   1462       1.1       jtc 		}
   1463       1.1       jtc 	}
   1464       1.1       jtc 	if (increment_overflow(&yourtm.tm_year, -TM_YEAR_BASE))
   1465       1.1       jtc 		return WRONG;
   1466       1.1       jtc 	if (yourtm.tm_year + TM_YEAR_BASE < EPOCH_YEAR) {
   1467       1.1       jtc 		/*
   1468       1.1       jtc 		** We can't set tm_sec to 0, because that might push the
   1469       1.1       jtc 		** time below the minimum representable time.
   1470       1.1       jtc 		** Set tm_sec to 59 instead.
   1471       1.1       jtc 		** This assumes that the minimum representable time is
   1472       1.1       jtc 		** not in the same minute that a leap second was deleted from,
   1473       1.1       jtc 		** which is a safer assumption than using 58 would be.
   1474       1.1       jtc 		*/
   1475       1.1       jtc 		if (increment_overflow(&yourtm.tm_sec, 1 - SECSPERMIN))
   1476       1.1       jtc 			return WRONG;
   1477       1.1       jtc 		saved_seconds = yourtm.tm_sec;
   1478       1.1       jtc 		yourtm.tm_sec = SECSPERMIN - 1;
   1479       1.1       jtc 	} else {
   1480       1.1       jtc 		saved_seconds = yourtm.tm_sec;
   1481       1.1       jtc 		yourtm.tm_sec = 0;
   1482       1.1       jtc 	}
   1483       1.1       jtc 	/*
   1484       1.6       jtc 	** Divide the search space in half
   1485       1.6       jtc 	** (this works whether time_t is signed or unsigned).
   1486       1.1       jtc 	*/
   1487       1.6       jtc 	bits = TYPE_BIT(time_t) - 1;
   1488       1.1       jtc 	/*
   1489       1.6       jtc 	** If time_t is signed, then 0 is just above the median,
   1490       1.6       jtc 	** assuming two's complement arithmetic.
   1491       1.6       jtc 	** If time_t is unsigned, then (1 << bits) is just above the median.
   1492       1.1       jtc 	*/
   1493      1.21  christos 	/* LINTED constant in conditional context */
   1494       1.6       jtc 	t = TYPE_SIGNED(time_t) ? 0 : (((time_t) 1) << bits);
   1495       1.1       jtc 	for ( ; ; ) {
   1496       1.1       jtc 		(*funcp)(&t, offset, &mytm);
   1497       1.1       jtc 		dir = tmcomp(&mytm, &yourtm);
   1498       1.1       jtc 		if (dir != 0) {
   1499       1.1       jtc 			if (bits-- < 0)
   1500       1.1       jtc 				return WRONG;
   1501       1.1       jtc 			if (bits < 0)
   1502       1.6       jtc 				--t; /* may be needed if new t is minimal */
   1503       1.1       jtc 			else if (dir > 0)
   1504       1.6       jtc 				t -= ((time_t) 1) << bits;
   1505       1.6       jtc 			else	t += ((time_t) 1) << bits;
   1506       1.1       jtc 			continue;
   1507       1.1       jtc 		}
   1508       1.1       jtc 		if (yourtm.tm_isdst < 0 || mytm.tm_isdst == yourtm.tm_isdst)
   1509       1.1       jtc 			break;
   1510       1.1       jtc 		/*
   1511       1.1       jtc 		** Right time, wrong type.
   1512       1.1       jtc 		** Hunt for right time, right type.
   1513       1.1       jtc 		** It's okay to guess wrong since the guess
   1514       1.1       jtc 		** gets checked.
   1515       1.1       jtc 		*/
   1516       1.1       jtc 		/*
   1517       1.1       jtc 		** The (void *) casts are the benefit of SunOS 3.3 on Sun 2's.
   1518       1.1       jtc 		*/
   1519       1.1       jtc 		sp = (const struct state *)
   1520       1.1       jtc 			(((void *) funcp == (void *) localsub) ?
   1521       1.1       jtc 			lclptr : gmtptr);
   1522       1.1       jtc #ifdef ALL_STATE
   1523       1.1       jtc 		if (sp == NULL)
   1524       1.1       jtc 			return WRONG;
   1525       1.1       jtc #endif /* defined ALL_STATE */
   1526       1.5       jtc 		for (i = sp->typecnt - 1; i >= 0; --i) {
   1527       1.1       jtc 			if (sp->ttis[i].tt_isdst != yourtm.tm_isdst)
   1528       1.1       jtc 				continue;
   1529       1.5       jtc 			for (j = sp->typecnt - 1; j >= 0; --j) {
   1530       1.1       jtc 				if (sp->ttis[j].tt_isdst == yourtm.tm_isdst)
   1531       1.1       jtc 					continue;
   1532       1.1       jtc 				newt = t + sp->ttis[j].tt_gmtoff -
   1533       1.1       jtc 					sp->ttis[i].tt_gmtoff;
   1534       1.1       jtc 				(*funcp)(&newt, offset, &mytm);
   1535       1.1       jtc 				if (tmcomp(&mytm, &yourtm) != 0)
   1536       1.1       jtc 					continue;
   1537       1.1       jtc 				if (mytm.tm_isdst != yourtm.tm_isdst)
   1538       1.1       jtc 					continue;
   1539       1.1       jtc 				/*
   1540       1.1       jtc 				** We have a match.
   1541       1.1       jtc 				*/
   1542       1.1       jtc 				t = newt;
   1543       1.1       jtc 				goto label;
   1544       1.1       jtc 			}
   1545       1.1       jtc 		}
   1546       1.1       jtc 		return WRONG;
   1547       1.1       jtc 	}
   1548       1.1       jtc label:
   1549       1.1       jtc 	newt = t + saved_seconds;
   1550       1.1       jtc 	if ((newt < t) != (saved_seconds < 0))
   1551       1.1       jtc 		return WRONG;
   1552       1.1       jtc 	t = newt;
   1553       1.1       jtc 	(*funcp)(&t, offset, tmp);
   1554       1.1       jtc 	*okayp = TRUE;
   1555       1.1       jtc 	return t;
   1556      1.13       jtc }
   1557      1.13       jtc 
   1558      1.13       jtc static time_t
   1559      1.13       jtc time2(tmp, funcp, offset, okayp)
   1560      1.13       jtc struct tm * const	tmp;
   1561      1.13       jtc void (* const		funcp) P((const time_t*, long, struct tm*));
   1562      1.13       jtc const long		offset;
   1563      1.13       jtc int * const		okayp;
   1564      1.13       jtc {
   1565      1.13       jtc 	time_t	t;
   1566      1.13       jtc 
   1567      1.13       jtc 	/*
   1568      1.13       jtc 	** First try without normalization of seconds
   1569      1.13       jtc 	** (in case tm_sec contains a value associated with a leap second).
   1570      1.13       jtc 	** If that fails, try with normalization of seconds.
   1571      1.13       jtc 	*/
   1572      1.13       jtc 	t = time2sub(tmp, funcp, offset, okayp, FALSE);
   1573      1.13       jtc 	return *okayp ? t : time2sub(tmp, funcp, offset, okayp, TRUE);
   1574       1.1       jtc }
   1575       1.1       jtc 
   1576       1.1       jtc static time_t
   1577       1.1       jtc time1(tmp, funcp, offset)
   1578       1.1       jtc struct tm * const	tmp;
   1579       1.5       jtc void (* const		funcp) P((const time_t *, long, struct tm *));
   1580       1.1       jtc const long		offset;
   1581       1.1       jtc {
   1582       1.1       jtc 	register time_t			t;
   1583       1.1       jtc 	register const struct state *	sp;
   1584       1.1       jtc 	register int			samei, otheri;
   1585       1.1       jtc 	int				okay;
   1586       1.1       jtc 
   1587       1.1       jtc 	if (tmp->tm_isdst > 1)
   1588       1.1       jtc 		tmp->tm_isdst = 1;
   1589       1.1       jtc 	t = time2(tmp, funcp, offset, &okay);
   1590       1.1       jtc #ifdef PCTS
   1591       1.1       jtc 	/*
   1592       1.1       jtc 	** PCTS code courtesy Grant Sullivan (grant (at) osf.org).
   1593       1.1       jtc 	*/
   1594       1.1       jtc 	if (okay)
   1595       1.1       jtc 		return t;
   1596       1.1       jtc 	if (tmp->tm_isdst < 0)
   1597       1.1       jtc 		tmp->tm_isdst = 0;	/* reset to std and try again */
   1598       1.1       jtc #endif /* defined PCTS */
   1599       1.1       jtc #ifndef PCTS
   1600       1.1       jtc 	if (okay || tmp->tm_isdst < 0)
   1601       1.1       jtc 		return t;
   1602       1.1       jtc #endif /* !defined PCTS */
   1603       1.1       jtc 	/*
   1604       1.1       jtc 	** We're supposed to assume that somebody took a time of one type
   1605       1.1       jtc 	** and did some math on it that yielded a "struct tm" that's bad.
   1606       1.1       jtc 	** We try to divine the type they started from and adjust to the
   1607       1.1       jtc 	** type they need.
   1608       1.1       jtc 	*/
   1609       1.1       jtc 	/*
   1610       1.1       jtc 	** The (void *) casts are the benefit of SunOS 3.3 on Sun 2's.
   1611       1.1       jtc 	*/
   1612       1.1       jtc 	sp = (const struct state *) (((void *) funcp == (void *) localsub) ?
   1613       1.1       jtc 		lclptr : gmtptr);
   1614       1.1       jtc #ifdef ALL_STATE
   1615       1.1       jtc 	if (sp == NULL)
   1616       1.1       jtc 		return WRONG;
   1617       1.1       jtc #endif /* defined ALL_STATE */
   1618       1.5       jtc 	for (samei = sp->typecnt - 1; samei >= 0; --samei) {
   1619       1.1       jtc 		if (sp->ttis[samei].tt_isdst != tmp->tm_isdst)
   1620       1.1       jtc 			continue;
   1621       1.5       jtc 		for (otheri = sp->typecnt - 1; otheri >= 0; --otheri) {
   1622       1.1       jtc 			if (sp->ttis[otheri].tt_isdst == tmp->tm_isdst)
   1623       1.1       jtc 				continue;
   1624      1.21  christos 			tmp->tm_sec += (int)(sp->ttis[otheri].tt_gmtoff -
   1625      1.21  christos 					sp->ttis[samei].tt_gmtoff);
   1626       1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   1627       1.1       jtc 			t = time2(tmp, funcp, offset, &okay);
   1628       1.1       jtc 			if (okay)
   1629       1.1       jtc 				return t;
   1630      1.21  christos 			tmp->tm_sec -= (int)(sp->ttis[otheri].tt_gmtoff -
   1631      1.21  christos 					sp->ttis[samei].tt_gmtoff);
   1632       1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   1633       1.1       jtc 		}
   1634       1.1       jtc 	}
   1635       1.1       jtc 	return WRONG;
   1636       1.1       jtc }
   1637       1.1       jtc 
   1638       1.1       jtc time_t
   1639       1.1       jtc mktime(tmp)
   1640       1.1       jtc struct tm * const	tmp;
   1641       1.1       jtc {
   1642      1.19    kleink 	time_t result;
   1643      1.19    kleink 
   1644      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1645      1.19    kleink 	tzset_unlocked();
   1646      1.19    kleink 	result = time1(tmp, localsub, 0L);
   1647      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1648      1.19    kleink 	return (result);
   1649       1.1       jtc }
   1650       1.1       jtc 
   1651       1.1       jtc #ifdef STD_INSPIRED
   1652       1.1       jtc 
   1653       1.1       jtc time_t
   1654       1.1       jtc timelocal(tmp)
   1655       1.1       jtc struct tm * const	tmp;
   1656       1.1       jtc {
   1657       1.1       jtc 	tmp->tm_isdst = -1;	/* in case it wasn't initialized */
   1658       1.1       jtc 	return mktime(tmp);
   1659       1.1       jtc }
   1660       1.1       jtc 
   1661       1.1       jtc time_t
   1662       1.1       jtc timegm(tmp)
   1663       1.1       jtc struct tm * const	tmp;
   1664       1.1       jtc {
   1665       1.1       jtc 	tmp->tm_isdst = 0;
   1666       1.1       jtc 	return time1(tmp, gmtsub, 0L);
   1667       1.1       jtc }
   1668       1.1       jtc 
   1669       1.1       jtc time_t
   1670       1.1       jtc timeoff(tmp, offset)
   1671       1.1       jtc struct tm * const	tmp;
   1672       1.1       jtc const long		offset;
   1673       1.1       jtc {
   1674       1.1       jtc 	tmp->tm_isdst = 0;
   1675       1.1       jtc 	return time1(tmp, gmtsub, offset);
   1676       1.1       jtc }
   1677       1.1       jtc 
   1678       1.1       jtc #endif /* defined STD_INSPIRED */
   1679       1.1       jtc 
   1680       1.1       jtc #ifdef CMUCS
   1681       1.1       jtc 
   1682       1.1       jtc /*
   1683       1.1       jtc ** The following is supplied for compatibility with
   1684       1.1       jtc ** previous versions of the CMUCS runtime library.
   1685       1.1       jtc */
   1686       1.1       jtc 
   1687       1.1       jtc long
   1688       1.1       jtc gtime(tmp)
   1689       1.1       jtc struct tm * const	tmp;
   1690       1.1       jtc {
   1691       1.1       jtc 	const time_t	t = mktime(tmp);
   1692       1.1       jtc 
   1693       1.1       jtc 	if (t == WRONG)
   1694       1.1       jtc 		return -1;
   1695       1.1       jtc 	return t;
   1696       1.1       jtc }
   1697       1.1       jtc 
   1698       1.1       jtc #endif /* defined CMUCS */
   1699       1.1       jtc 
   1700       1.1       jtc /*
   1701       1.1       jtc ** XXX--is the below the right way to conditionalize??
   1702       1.1       jtc */
   1703       1.1       jtc 
   1704       1.1       jtc #ifdef STD_INSPIRED
   1705       1.1       jtc 
   1706       1.1       jtc /*
   1707       1.1       jtc ** IEEE Std 1003.1-1988 (POSIX) legislates that 536457599
   1708      1.14       jtc ** shall correspond to "Wed Dec 31 23:59:59 UTC 1986", which
   1709       1.1       jtc ** is not the case if we are accounting for leap seconds.
   1710       1.1       jtc ** So, we provide the following conversion routines for use
   1711       1.1       jtc ** when exchanging timestamps with POSIX conforming systems.
   1712       1.1       jtc */
   1713       1.1       jtc 
   1714       1.1       jtc static long
   1715       1.1       jtc leapcorr(timep)
   1716       1.1       jtc time_t *	timep;
   1717       1.1       jtc {
   1718       1.1       jtc 	register struct state *		sp;
   1719       1.1       jtc 	register struct lsinfo *	lp;
   1720       1.1       jtc 	register int			i;
   1721       1.1       jtc 
   1722       1.1       jtc 	sp = lclptr;
   1723       1.1       jtc 	i = sp->leapcnt;
   1724       1.1       jtc 	while (--i >= 0) {
   1725       1.1       jtc 		lp = &sp->lsis[i];
   1726       1.1       jtc 		if (*timep >= lp->ls_trans)
   1727       1.1       jtc 			return lp->ls_corr;
   1728       1.1       jtc 	}
   1729       1.1       jtc 	return 0;
   1730       1.1       jtc }
   1731       1.1       jtc 
   1732       1.1       jtc time_t
   1733       1.1       jtc time2posix(t)
   1734       1.1       jtc time_t	t;
   1735       1.1       jtc {
   1736      1.19    kleink 	time_t result;
   1737      1.19    kleink 
   1738      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1739      1.19    kleink 	tzset_unlocked();
   1740      1.19    kleink 	result = t - leapcorr(&t);
   1741      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1742      1.19    kleink 	return (result);
   1743       1.1       jtc }
   1744       1.1       jtc 
   1745       1.1       jtc time_t
   1746       1.1       jtc posix2time(t)
   1747       1.1       jtc time_t	t;
   1748       1.1       jtc {
   1749       1.1       jtc 	time_t	x;
   1750       1.1       jtc 	time_t	y;
   1751       1.1       jtc 
   1752      1.19    kleink 	rwlock_wrlock(&lcl_lock);
   1753      1.19    kleink 	tzset_unlocked();
   1754       1.1       jtc 	/*
   1755       1.1       jtc 	** For a positive leap second hit, the result
   1756       1.1       jtc 	** is not unique.  For a negative leap second
   1757       1.1       jtc 	** hit, the corresponding time doesn't exist,
   1758       1.1       jtc 	** so we return an adjacent second.
   1759       1.1       jtc 	*/
   1760       1.1       jtc 	x = t + leapcorr(&t);
   1761       1.1       jtc 	y = x - leapcorr(&x);
   1762       1.1       jtc 	if (y < t) {
   1763       1.1       jtc 		do {
   1764       1.1       jtc 			x++;
   1765       1.1       jtc 			y = x - leapcorr(&x);
   1766       1.1       jtc 		} while (y < t);
   1767      1.19    kleink 		if (t != y) {
   1768      1.19    kleink 			rwlock_unlock(&lcl_lock);
   1769       1.1       jtc 			return x - 1;
   1770      1.19    kleink 		}
   1771       1.1       jtc 	} else if (y > t) {
   1772       1.1       jtc 		do {
   1773       1.1       jtc 			--x;
   1774       1.1       jtc 			y = x - leapcorr(&x);
   1775       1.1       jtc 		} while (y > t);
   1776      1.19    kleink 		if (t != y) {
   1777      1.19    kleink 			rwlock_unlock(&lcl_lock);
   1778       1.1       jtc 			return x + 1;
   1779      1.19    kleink 		}
   1780       1.1       jtc 	}
   1781      1.19    kleink 	rwlock_unlock(&lcl_lock);
   1782       1.1       jtc 	return x;
   1783       1.1       jtc }
   1784       1.1       jtc 
   1785       1.1       jtc #endif /* defined STD_INSPIRED */
   1786