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localtime.c revision 1.118
      1  1.118  christos /*	$NetBSD: localtime.c,v 1.118 2019/04/07 14:44:51 christos Exp $	*/
      2  1.113  christos 
      3  1.113  christos /* Convert timestamp from time_t to struct tm.  */
      4    1.7       jtc 
      5    1.7       jtc /*
      6    1.7       jtc ** This file is in the public domain, so clarified as of
      7   1.45   mlelstv ** 1996-06-05 by Arthur David Olson.
      8    1.7       jtc */
      9    1.2       jtc 
     10   1.11  christos #include <sys/cdefs.h>
     11   1.24   msaitoh #if defined(LIBC_SCCS) && !defined(lint)
     12   1.11  christos #if 0
     13   1.58  christos static char	elsieid[] = "@(#)localtime.c	8.17";
     14   1.11  christos #else
     15  1.118  christos __RCSID("$NetBSD: localtime.c,v 1.118 2019/04/07 14:44:51 christos Exp $");
     16   1.11  christos #endif
     17   1.24   msaitoh #endif /* LIBC_SCCS and not lint */
     18    1.1       jtc 
     19    1.1       jtc /*
     20   1.45   mlelstv ** Leap second handling from Bradley White.
     21   1.45   mlelstv ** POSIX-style TZ environment variable handling from Guy Harris.
     22    1.1       jtc */
     23    1.1       jtc 
     24    1.1       jtc /*LINTLIBRARY*/
     25    1.1       jtc 
     26   1.12       jtc #include "namespace.h"
     27   1.78  christos #include <assert.h>
     28   1.87  christos #define LOCALTIME_IMPLEMENTATION
     29    1.1       jtc #include "private.h"
     30   1.87  christos 
     31    1.1       jtc #include "tzfile.h"
     32  1.106  christos #include <fcntl.h>
     33   1.12       jtc 
     34   1.87  christos #if NETBSD_INSPIRED
     35   1.87  christos # define NETBSD_INSPIRED_EXTERN
     36   1.87  christos #else
     37   1.87  christos # define NETBSD_INSPIRED_EXTERN static
     38   1.87  christos #endif
     39   1.87  christos 
     40   1.42  christos #if defined(__weak_alias)
     41   1.25    kleink __weak_alias(daylight,_daylight)
     42   1.23   mycroft __weak_alias(tzname,_tzname)
     43   1.12       jtc #endif
     44    1.1       jtc 
     45   1.45   mlelstv #ifndef TZ_ABBR_MAX_LEN
     46   1.45   mlelstv #define TZ_ABBR_MAX_LEN	16
     47   1.45   mlelstv #endif /* !defined TZ_ABBR_MAX_LEN */
     48   1.45   mlelstv 
     49   1.45   mlelstv #ifndef TZ_ABBR_CHAR_SET
     50   1.45   mlelstv #define TZ_ABBR_CHAR_SET \
     51   1.45   mlelstv 	"abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789 :+-._"
     52   1.45   mlelstv #endif /* !defined TZ_ABBR_CHAR_SET */
     53   1.45   mlelstv 
     54   1.45   mlelstv #ifndef TZ_ABBR_ERR_CHAR
     55   1.45   mlelstv #define TZ_ABBR_ERR_CHAR	'_'
     56   1.45   mlelstv #endif /* !defined TZ_ABBR_ERR_CHAR */
     57   1.45   mlelstv 
     58    1.1       jtc /*
     59    1.1       jtc ** SunOS 4.1.1 headers lack O_BINARY.
     60    1.1       jtc */
     61    1.1       jtc 
     62    1.1       jtc #ifdef O_BINARY
     63   1.86  christos #define OPEN_MODE	(O_RDONLY | O_BINARY | O_CLOEXEC)
     64    1.1       jtc #endif /* defined O_BINARY */
     65    1.1       jtc #ifndef O_BINARY
     66   1.86  christos #define OPEN_MODE	(O_RDONLY | O_CLOEXEC)
     67    1.1       jtc #endif /* !defined O_BINARY */
     68    1.1       jtc 
     69    1.1       jtc #ifndef WILDABBR
     70    1.1       jtc /*
     71    1.1       jtc ** Someone might make incorrect use of a time zone abbreviation:
     72    1.1       jtc **	1.	They might reference tzname[0] before calling tzset (explicitly
     73    1.1       jtc **		or implicitly).
     74    1.1       jtc **	2.	They might reference tzname[1] before calling tzset (explicitly
     75    1.1       jtc **		or implicitly).
     76    1.1       jtc **	3.	They might reference tzname[1] after setting to a time zone
     77    1.1       jtc **		in which Daylight Saving Time is never observed.
     78    1.1       jtc **	4.	They might reference tzname[0] after setting to a time zone
     79    1.1       jtc **		in which Standard Time is never observed.
     80    1.1       jtc **	5.	They might reference tm.TM_ZONE after calling offtime.
     81    1.1       jtc ** What's best to do in the above cases is open to debate;
     82    1.1       jtc ** for now, we just set things up so that in any of the five cases
     83   1.45   mlelstv ** WILDABBR is used. Another possibility: initialize tzname[0] to the
     84    1.1       jtc ** string "tzname[0] used before set", and similarly for the other cases.
     85   1.45   mlelstv ** And another: initialize tzname[0] to "ERA", with an explanation in the
     86    1.1       jtc ** manual page of what this "time zone abbreviation" means (doing this so
     87    1.1       jtc ** that tzname[0] has the "normal" length of three characters).
     88    1.1       jtc */
     89    1.1       jtc #define WILDABBR	"   "
     90    1.1       jtc #endif /* !defined WILDABBR */
     91    1.1       jtc 
     92   1.45   mlelstv static const char	wildabbr[] = WILDABBR;
     93    1.1       jtc 
     94   1.71  christos static const char	gmt[] = "GMT";
     95    1.1       jtc 
     96   1.22    kleink /*
     97   1.22    kleink ** The DST rules to use if TZ has no rules and we can't load TZDEFRULES.
     98  1.109  christos ** Default to US rules as of 2017-05-07.
     99  1.112  christos ** POSIX does not specify the default DST rules;
    100  1.112  christos ** for historical reasons, US rules are a common default.
    101   1.22    kleink */
    102   1.22    kleink #ifndef TZDEFRULESTRING
    103  1.109  christos #define TZDEFRULESTRING ",M3.2.0,M11.1.0"
    104  1.109  christos #endif
    105   1.22    kleink 
    106    1.1       jtc struct ttinfo {				/* time type information */
    107   1.78  christos 	int_fast32_t	tt_gmtoff;	/* UT offset in seconds */
    108   1.87  christos 	bool		tt_isdst;	/* used to set tm_isdst */
    109    1.1       jtc 	int		tt_abbrind;	/* abbreviation list index */
    110   1.87  christos 	bool		tt_ttisstd;	/* transition is std time */
    111   1.87  christos 	bool		tt_ttisgmt;	/* transition is UT */
    112    1.1       jtc };
    113    1.1       jtc 
    114    1.1       jtc struct lsinfo {				/* leap second information */
    115    1.1       jtc 	time_t		ls_trans;	/* transition time */
    116   1.74  christos 	int_fast64_t	ls_corr;	/* correction to apply */
    117    1.1       jtc };
    118    1.1       jtc 
    119   1.87  christos #define SMALLEST(a, b)	(((a) < (b)) ? (a) : (b))
    120    1.1       jtc #define BIGGEST(a, b)	(((a) > (b)) ? (a) : (b))
    121    1.1       jtc 
    122    1.1       jtc #ifdef TZNAME_MAX
    123    1.1       jtc #define MY_TZNAME_MAX	TZNAME_MAX
    124    1.1       jtc #endif /* defined TZNAME_MAX */
    125    1.1       jtc #ifndef TZNAME_MAX
    126    1.1       jtc #define MY_TZNAME_MAX	255
    127    1.1       jtc #endif /* !defined TZNAME_MAX */
    128    1.1       jtc 
    129   1.87  christos #define state __state
    130   1.87  christos struct state {
    131    1.1       jtc 	int		leapcnt;
    132    1.1       jtc 	int		timecnt;
    133    1.1       jtc 	int		typecnt;
    134    1.1       jtc 	int		charcnt;
    135   1.87  christos 	bool		goback;
    136   1.87  christos 	bool		goahead;
    137   1.45   mlelstv 	time_t		ats[TZ_MAX_TIMES];
    138    1.1       jtc 	unsigned char	types[TZ_MAX_TIMES];
    139    1.1       jtc 	struct ttinfo	ttis[TZ_MAX_TYPES];
    140   1.69  christos 	char		chars[/*CONSTCOND*/BIGGEST(BIGGEST(TZ_MAX_CHARS + 1,
    141   1.69  christos 				sizeof gmt), (2 * (MY_TZNAME_MAX + 1)))];
    142    1.1       jtc 	struct lsinfo	lsis[TZ_MAX_LEAPS];
    143  1.113  christos 
    144  1.113  christos 	/* The time type to use for early times or if no transitions.
    145  1.113  christos 	   It is always zero for recent tzdb releases.
    146  1.113  christos 	   It might be nonzero for data from tzdb 2018e or earlier.  */
    147  1.113  christos 	int defaulttype;
    148    1.1       jtc };
    149    1.1       jtc 
    150   1.96  christos enum r_type {
    151   1.96  christos   JULIAN_DAY,		/* Jn = Julian day */
    152   1.96  christos   DAY_OF_YEAR,		/* n = day of year */
    153   1.96  christos   MONTH_NTH_DAY_OF_WEEK	/* Mm.n.d = month, week, day of week */
    154   1.96  christos };
    155   1.96  christos 
    156    1.1       jtc struct rule {
    157   1.96  christos 	enum r_type	r_type;		/* type of rule */
    158    1.1       jtc 	int		r_day;		/* day number of rule */
    159    1.1       jtc 	int		r_week;		/* week number of rule */
    160    1.1       jtc 	int		r_mon;		/* month number of rule */
    161   1.74  christos 	int_fast32_t	r_time;		/* transition time of rule */
    162    1.1       jtc };
    163    1.1       jtc 
    164   1.87  christos static struct tm *gmtsub(struct state const *, time_t const *, int_fast32_t,
    165   1.87  christos 			 struct tm *);
    166   1.87  christos static bool increment_overflow(int *, int);
    167   1.87  christos static bool increment_overflow_time(time_t *, int_fast32_t);
    168   1.87  christos static bool normalize_overflow32(int_fast32_t *, int *, int);
    169   1.87  christos static struct tm *timesub(time_t const *, int_fast32_t, struct state const *,
    170   1.87  christos 			  struct tm *);
    171   1.87  christos static bool typesequiv(struct state const *, int, int);
    172   1.87  christos static bool tzparse(char const *, struct state *, bool);
    173    1.1       jtc 
    174   1.49  christos static timezone_t gmtptr;
    175    1.1       jtc 
    176    1.1       jtc #ifndef TZ_STRLEN_MAX
    177    1.1       jtc #define TZ_STRLEN_MAX 255
    178    1.1       jtc #endif /* !defined TZ_STRLEN_MAX */
    179    1.1       jtc 
    180   1.45   mlelstv static char		lcl_TZname[TZ_STRLEN_MAX + 1];
    181   1.45   mlelstv static int		lcl_is_set;
    182   1.42  christos 
    183   1.42  christos 
    184  1.117  christos #if !defined(__LIBC12_SOURCE__)
    185  1.117  christos timezone_t __lclptr;
    186   1.33  christos #ifdef _REENTRANT
    187  1.117  christos rwlock_t __lcl_lock = RWLOCK_INITIALIZER;
    188  1.117  christos #endif
    189   1.19    kleink #endif
    190   1.19    kleink 
    191    1.1       jtc /*
    192    1.1       jtc ** Section 4.12.3 of X3.159-1989 requires that
    193    1.1       jtc **	Except for the strftime function, these functions [asctime,
    194    1.1       jtc **	ctime, gmtime, localtime] return values in one of two static
    195    1.1       jtc **	objects: a broken-down time structure and an array of char.
    196   1.45   mlelstv ** Thanks to Paul Eggert for noting this.
    197    1.1       jtc */
    198    1.1       jtc 
    199    1.1       jtc static struct tm	tm;
    200    1.1       jtc 
    201  1.109  christos #if !HAVE_POSIX_DECLS || TZ_TIME_T || defined(__NetBSD__)
    202  1.102  christos # if !defined(__LIBC12_SOURCE__)
    203  1.102  christos 
    204  1.102  christos __aconst char *		tzname[2] = {
    205  1.102  christos 	(__aconst char *)__UNCONST(wildabbr),
    206  1.102  christos 	(__aconst char *)__UNCONST(wildabbr)
    207  1.102  christos };
    208  1.102  christos 
    209  1.102  christos # else
    210  1.102  christos 
    211  1.102  christos extern __aconst char *	tzname[2];
    212  1.102  christos 
    213  1.102  christos # endif /* __LIBC12_SOURCE__ */
    214  1.102  christos 
    215  1.109  christos # if USG_COMPAT
    216  1.102  christos #  if !defined(__LIBC12_SOURCE__)
    217   1.42  christos long 			timezone = 0;
    218    1.1       jtc int			daylight = 0;
    219  1.109  christos #  else
    220   1.42  christos extern int		daylight;
    221   1.42  christos extern long		timezone __RENAME(__timezone13);
    222  1.102  christos #  endif /* __LIBC12_SOURCE__ */
    223  1.102  christos # endif /* defined USG_COMPAT */
    224    1.1       jtc 
    225  1.109  christos # ifdef ALTZONE
    226   1.81  christos long			altzone = 0;
    227  1.109  christos # endif /* defined ALTZONE */
    228  1.109  christos #endif /* !HAVE_POSIX_DECLS */
    229    1.1       jtc 
    230   1.91  christos /* Initialize *S to a value based on GMTOFF, ISDST, and ABBRIND.  */
    231   1.91  christos static void
    232   1.91  christos init_ttinfo(struct ttinfo *s, int_fast32_t gmtoff, bool isdst, int abbrind)
    233   1.91  christos {
    234   1.91  christos 	s->tt_gmtoff = gmtoff;
    235   1.91  christos 	s->tt_isdst = isdst;
    236   1.91  christos 	s->tt_abbrind = abbrind;
    237   1.91  christos 	s->tt_ttisstd = false;
    238   1.91  christos 	s->tt_ttisgmt = false;
    239   1.91  christos }
    240   1.91  christos 
    241   1.74  christos static int_fast32_t
    242   1.49  christos detzcode(const char *const codep)
    243    1.1       jtc {
    244   1.95  christos 	int_fast32_t result;
    245   1.95  christos 	int	i;
    246   1.95  christos 	int_fast32_t one = 1;
    247   1.95  christos 	int_fast32_t halfmaxval = one << (32 - 2);
    248   1.95  christos 	int_fast32_t maxval = halfmaxval - 1 + halfmaxval;
    249   1.95  christos 	int_fast32_t minval = -1 - maxval;
    250   1.45   mlelstv 
    251   1.95  christos 	result = codep[0] & 0x7f;
    252   1.95  christos 	for (i = 1; i < 4; ++i)
    253   1.45   mlelstv 		result = (result << 8) | (codep[i] & 0xff);
    254   1.95  christos 
    255   1.95  christos 	if (codep[0] & 0x80) {
    256   1.95  christos 	  /* Do two's-complement negation even on non-two's-complement machines.
    257   1.95  christos 	     If the result would be minval - 1, return minval.  */
    258   1.95  christos 	    result -= !TWOS_COMPLEMENT(int_fast32_t) && result != 0;
    259   1.95  christos 	    result += minval;
    260   1.95  christos 	}
    261   1.95  christos  	return result;
    262   1.45   mlelstv }
    263   1.45   mlelstv 
    264   1.81  christos static int_fast64_t
    265   1.49  christos detzcode64(const char *const codep)
    266   1.45   mlelstv {
    267   1.87  christos 	int_fast64_t result;
    268   1.49  christos 	int	i;
    269   1.95  christos 	int_fast64_t one = 1;
    270   1.95  christos 	int_fast64_t halfmaxval = one << (64 - 2);
    271   1.95  christos 	int_fast64_t maxval = halfmaxval - 1 + halfmaxval;
    272   1.95  christos 	int_fast64_t minval = -TWOS_COMPLEMENT(int_fast64_t) - maxval;
    273    1.1       jtc 
    274   1.95  christos 	result = codep[0] & 0x7f;
    275   1.95  christos 	for (i = 1; i < 8; ++i)
    276   1.81  christos 		result = (result << 8) | (codep[i] & 0xff);
    277   1.95  christos 
    278   1.95  christos 	if (codep[0] & 0x80) {
    279   1.95  christos 	  /* Do two's-complement negation even on non-two's-complement machines.
    280   1.95  christos 	     If the result would be minval - 1, return minval.  */
    281   1.95  christos 	  result -= !TWOS_COMPLEMENT(int_fast64_t) && result != 0;
    282   1.95  christos 	  result += minval;
    283   1.95  christos 	}
    284   1.95  christos  	return result;
    285    1.1       jtc }
    286    1.1       jtc 
    287   1.49  christos const char *
    288   1.49  christos tzgetname(const timezone_t sp, int isdst)
    289   1.49  christos {
    290   1.49  christos 	int i;
    291  1.103  ginsbach 	for (i = 0; i < sp->typecnt; ++i) {
    292   1.49  christos 		const struct ttinfo *const ttisp = &sp->ttis[sp->types[i]];
    293   1.49  christos 		if (ttisp->tt_isdst == isdst)
    294   1.49  christos 			return &sp->chars[ttisp->tt_abbrind];
    295   1.49  christos 	}
    296   1.88  christos 	errno = ESRCH;
    297   1.49  christos 	return NULL;
    298   1.49  christos }
    299   1.49  christos 
    300   1.99  christos long
    301   1.99  christos tzgetgmtoff(const timezone_t sp, int isdst)
    302   1.99  christos {
    303   1.99  christos 	int i;
    304   1.99  christos 	long l = -1;
    305  1.103  ginsbach 	for (i = 0; i < sp->typecnt; ++i) {
    306   1.99  christos 		const struct ttinfo *const ttisp = &sp->ttis[sp->types[i]];
    307   1.99  christos 
    308   1.99  christos 		if (ttisp->tt_isdst == isdst) {
    309   1.99  christos 			l = ttisp->tt_gmtoff;
    310   1.99  christos 			if (sp->types[i] != 0)
    311   1.99  christos 				return l;
    312   1.99  christos 		}
    313   1.99  christos 	}
    314   1.99  christos 	if (l == -1)
    315   1.99  christos 		errno = ESRCH;
    316   1.99  christos 	return l;
    317   1.99  christos }
    318   1.99  christos 
    319   1.49  christos static void
    320   1.93  christos scrub_abbrs(struct state *sp)
    321   1.49  christos {
    322   1.93  christos 	int i;
    323   1.49  christos 
    324   1.49  christos 	/*
    325   1.49  christos 	** First, replace bogus characters.
    326   1.49  christos 	*/
    327   1.49  christos 	for (i = 0; i < sp->charcnt; ++i)
    328   1.49  christos 		if (strchr(TZ_ABBR_CHAR_SET, sp->chars[i]) == NULL)
    329   1.49  christos 			sp->chars[i] = TZ_ABBR_ERR_CHAR;
    330   1.49  christos 	/*
    331   1.49  christos 	** Second, truncate long abbreviations.
    332   1.49  christos 	*/
    333   1.49  christos 	for (i = 0; i < sp->typecnt; ++i) {
    334   1.49  christos 		const struct ttinfo * const	ttisp = &sp->ttis[i];
    335   1.49  christos 		char *				cp = &sp->chars[ttisp->tt_abbrind];
    336   1.49  christos 
    337   1.49  christos 		if (strlen(cp) > TZ_ABBR_MAX_LEN &&
    338   1.49  christos 			strcmp(cp, GRANDPARENTED) != 0)
    339   1.49  christos 				*(cp + TZ_ABBR_MAX_LEN) = '\0';
    340   1.49  christos 	}
    341   1.49  christos }
    342   1.49  christos 
    343   1.93  christos static void
    344   1.93  christos update_tzname_etc(const struct state *sp, const struct ttinfo *ttisp)
    345   1.92  christos {
    346  1.109  christos #if HAVE_TZNAME
    347   1.93  christos 	tzname[ttisp->tt_isdst] = __UNCONST(&sp->chars[ttisp->tt_abbrind]);
    348  1.109  christos #endif
    349  1.109  christos #if USG_COMPAT
    350   1.93  christos 	if (!ttisp->tt_isdst)
    351   1.93  christos 		timezone = - ttisp->tt_gmtoff;
    352   1.93  christos #endif
    353   1.92  christos #ifdef ALTZONE
    354   1.93  christos 	if (ttisp->tt_isdst)
    355   1.93  christos 	    altzone = - ttisp->tt_gmtoff;
    356   1.92  christos #endif /* defined ALTZONE */
    357   1.92  christos }
    358   1.92  christos 
    359   1.45   mlelstv static void
    360   1.45   mlelstv settzname(void)
    361    1.1       jtc {
    362  1.117  christos 	timezone_t const	sp = __lclptr;
    363   1.49  christos 	int			i;
    364    1.1       jtc 
    365  1.109  christos #if HAVE_TZNAME
    366  1.109  christos 	tzname[0] = tzname[1] =
    367  1.109  christos 	    (__aconst char *) __UNCONST(sp ? wildabbr : gmt);
    368  1.109  christos #endif
    369  1.109  christos #if USG_COMPAT
    370    1.1       jtc 	daylight = 0;
    371    1.1       jtc 	timezone = 0;
    372  1.109  christos #endif
    373    1.1       jtc #ifdef ALTZONE
    374    1.1       jtc 	altzone = 0;
    375    1.1       jtc #endif /* defined ALTZONE */
    376    1.1       jtc 	if (sp == NULL) {
    377    1.1       jtc 		return;
    378    1.1       jtc 	}
    379   1.58  christos 	/*
    380  1.113  christos 	** And to get the latest time zone abbreviations into tzname. . .
    381   1.58  christos 	*/
    382   1.92  christos 	for (i = 0; i < sp->typecnt; ++i)
    383   1.93  christos 		update_tzname_etc(sp, &sp->ttis[i]);
    384    1.1       jtc 
    385   1.93  christos 	for (i = 0; i < sp->timecnt; ++i) {
    386   1.93  christos 		const struct ttinfo * const ttisp = &sp->ttis[sp->types[i]];
    387   1.93  christos 		update_tzname_etc(sp, ttisp);
    388  1.109  christos #if USG_COMPAT
    389   1.93  christos 		if (ttisp->tt_isdst)
    390   1.93  christos 			daylight = 1;
    391  1.109  christos #endif
    392   1.93  christos 	}
    393    1.1       jtc }
    394    1.1       jtc 
    395   1.87  christos static bool
    396   1.49  christos differ_by_repeat(const time_t t1, const time_t t0)
    397   1.45   mlelstv {
    398   1.78  christos 	if (TYPE_BIT(time_t) - TYPE_SIGNED(time_t) < SECSPERREPEAT_BITS)
    399   1.78  christos 		return 0;
    400   1.45   mlelstv 	return (int_fast64_t)t1 - (int_fast64_t)t0 == SECSPERREPEAT;
    401   1.45   mlelstv }
    402   1.45   mlelstv 
    403   1.91  christos union input_buffer {
    404   1.91  christos 	/* The first part of the buffer, interpreted as a header.  */
    405   1.91  christos 	struct tzhead tzhead;
    406   1.91  christos 
    407   1.91  christos 	/* The entire buffer.  */
    408   1.91  christos 	char buf[2 * sizeof(struct tzhead) + 2 * sizeof (struct state)
    409   1.91  christos 	  + 4 * TZ_MAX_TIMES];
    410   1.91  christos };
    411   1.91  christos 
    412  1.109  christos /* TZDIR with a trailing '/' rather than a trailing '\0'.  */
    413  1.109  christos static char const tzdirslash[sizeof TZDIR] = TZDIR "/";
    414  1.109  christos 
    415   1.91  christos /* Local storage needed for 'tzloadbody'.  */
    416   1.91  christos union local_storage {
    417   1.91  christos 	/* The results of analyzing the file's contents after it is opened.  */
    418  1.109  christos 	struct file_analysis {
    419   1.91  christos 		/* The input buffer.  */
    420   1.91  christos 		union input_buffer u;
    421   1.91  christos 
    422   1.91  christos 		/* A temporary state used for parsing a TZ string in the file.  */
    423   1.91  christos 		struct state st;
    424   1.91  christos 	} u;
    425  1.109  christos 
    426  1.109  christos 	/* The file name to be opened.  */
    427  1.109  christos 	char fullname[/*CONSTCOND*/BIGGEST(sizeof (struct file_analysis),
    428  1.109  christos 	    sizeof tzdirslash + 1024)];
    429   1.91  christos };
    430   1.91  christos 
    431   1.91  christos /* Load tz data from the file named NAME into *SP.  Read extended
    432   1.91  christos    format if DOEXTEND.  Use *LSP for temporary storage.  Return 0 on
    433   1.91  christos    success, an errno value on failure.  */
    434   1.91  christos static int
    435   1.91  christos tzloadbody(char const *name, struct state *sp, bool doextend,
    436   1.91  christos   union local_storage *lsp)
    437   1.49  christos {
    438   1.49  christos 	int			i;
    439   1.49  christos 	int			fid;
    440   1.49  christos 	int			stored;
    441   1.66  christos 	ssize_t			nread;
    442   1.91  christos 	bool			doaccess;
    443   1.91  christos 	union input_buffer	*up = &lsp->u.u;
    444   1.91  christos 	size_t			tzheadsize = sizeof(struct tzhead);
    445   1.83  christos 
    446   1.87  christos 	sp->goback = sp->goahead = false;
    447   1.83  christos 
    448   1.83  christos 	if (! name) {
    449   1.83  christos 		name = TZDEFAULT;
    450   1.83  christos 		if (! name)
    451   1.91  christos 			return EINVAL;
    452   1.83  christos 	}
    453   1.83  christos 
    454   1.83  christos 	if (name[0] == ':')
    455   1.83  christos 		++name;
    456  1.112  christos #ifdef SUPPRESS_TZDIR
    457  1.112  christos 	/* Do not prepend TZDIR.  This is intended for specialized
    458  1.112  christos 	   applications only, due to its security implications.  */
    459  1.112  christos 	doaccess = true;
    460  1.112  christos #else
    461   1.83  christos 	doaccess = name[0] == '/';
    462  1.112  christos #endif
    463   1.83  christos 	if (!doaccess) {
    464  1.114  christos 		char const *dot;
    465  1.109  christos 		size_t namelen = strlen(name);
    466  1.109  christos 		if (sizeof lsp->fullname - sizeof tzdirslash <= namelen)
    467   1.91  christos 			return ENAMETOOLONG;
    468  1.109  christos 
    469  1.109  christos 		/* Create a string "TZDIR/NAME".  Using sprintf here
    470  1.109  christos 		   would pull in stdio (and would fail if the
    471  1.109  christos 		   resulting string length exceeded INT_MAX!).  */
    472  1.109  christos 		memcpy(lsp->fullname, tzdirslash, sizeof tzdirslash);
    473  1.109  christos 		strcpy(lsp->fullname + sizeof tzdirslash, name);
    474  1.109  christos 
    475  1.114  christos 		/* Set doaccess if NAME contains a ".." file name
    476  1.114  christos 		   component, as such a name could read a file outside
    477  1.114  christos 		   the TZDIR virtual subtree.  */
    478  1.117  christos 		for (dot = name; (dot = strchr(dot, '.')) != NULL; dot++)
    479  1.114  christos 		  if ((dot == name || dot[-1] == '/') && dot[1] == '.'
    480  1.114  christos 		      && (dot[2] == '/' || !dot[2])) {
    481  1.114  christos 		    doaccess = true;
    482  1.114  christos 		    break;
    483  1.114  christos 		  }
    484  1.114  christos 
    485  1.110       kre 		name = lsp->fullname;
    486    1.1       jtc 	}
    487   1.83  christos 	if (doaccess && access(name, R_OK) != 0)
    488   1.91  christos 		return errno;
    489   1.83  christos 
    490   1.83  christos 	fid = open(name, OPEN_MODE);
    491   1.83  christos 	if (fid < 0)
    492   1.91  christos 		return errno;
    493   1.58  christos 	nread = read(fid, up->buf, sizeof up->buf);
    494   1.91  christos 	if (nread < (ssize_t)tzheadsize) {
    495   1.91  christos 		int err = nread < 0 ? errno : EINVAL;
    496   1.91  christos 		close(fid);
    497   1.91  christos 		return err;
    498   1.91  christos 	}
    499   1.91  christos 	if (close(fid) < 0)
    500   1.91  christos 		return errno;
    501   1.45   mlelstv 	for (stored = 4; stored <= 8; stored *= 2) {
    502   1.87  christos 		int_fast32_t ttisstdcnt = detzcode(up->tzhead.tzh_ttisstdcnt);
    503   1.87  christos 		int_fast32_t ttisgmtcnt = detzcode(up->tzhead.tzh_ttisgmtcnt);
    504  1.109  christos 		int_fast64_t prevtr = 0;
    505  1.109  christos 		int_fast32_t prevcorr = 0;
    506   1.87  christos 		int_fast32_t leapcnt = detzcode(up->tzhead.tzh_leapcnt);
    507   1.87  christos 		int_fast32_t timecnt = detzcode(up->tzhead.tzh_timecnt);
    508   1.87  christos 		int_fast32_t typecnt = detzcode(up->tzhead.tzh_typecnt);
    509   1.87  christos 		int_fast32_t charcnt = detzcode(up->tzhead.tzh_charcnt);
    510   1.91  christos 		char const *p = up->buf + tzheadsize;
    511  1.113  christos 		/* Although tzfile(5) currently requires typecnt to be nonzero,
    512  1.113  christos 		   support future formats that may allow zero typecnt
    513  1.113  christos 		   in files that have a TZ string and no transitions.  */
    514   1.87  christos 		if (! (0 <= leapcnt && leapcnt < TZ_MAX_LEAPS
    515  1.113  christos 		       && 0 <= typecnt && typecnt < TZ_MAX_TYPES
    516   1.87  christos 		       && 0 <= timecnt && timecnt < TZ_MAX_TIMES
    517   1.87  christos 		       && 0 <= charcnt && charcnt < TZ_MAX_CHARS
    518   1.87  christos 		       && (ttisstdcnt == typecnt || ttisstdcnt == 0)
    519   1.87  christos 		       && (ttisgmtcnt == typecnt || ttisgmtcnt == 0)))
    520   1.91  christos 		  return EINVAL;
    521   1.91  christos 		if ((size_t)nread
    522   1.91  christos 		    < (tzheadsize		/* struct tzhead */
    523   1.91  christos 		       + timecnt * stored	/* ats */
    524   1.87  christos 		       + timecnt		/* types */
    525   1.87  christos 		       + typecnt * 6		/* ttinfos */
    526   1.87  christos 		       + charcnt		/* chars */
    527   1.87  christos 		       + leapcnt * (stored + 4)	/* lsinfos */
    528   1.87  christos 		       + ttisstdcnt		/* ttisstds */
    529   1.87  christos 		       + ttisgmtcnt))		/* ttisgmts */
    530   1.91  christos 		  return EINVAL;
    531   1.87  christos 		sp->leapcnt = leapcnt;
    532   1.87  christos 		sp->timecnt = timecnt;
    533   1.87  christos 		sp->typecnt = typecnt;
    534   1.87  christos 		sp->charcnt = charcnt;
    535   1.87  christos 
    536   1.87  christos 		/* Read transitions, discarding those out of time_t range.
    537  1.109  christos 		   But pretend the last transition before TIME_T_MIN
    538  1.109  christos 		   occurred at TIME_T_MIN.  */
    539   1.81  christos 		timecnt = 0;
    540    1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    541   1.81  christos 			int_fast64_t at
    542   1.81  christos 			  = stored == 4 ? detzcode(p) : detzcode64(p);
    543  1.109  christos 			sp->types[i] = at <= TIME_T_MAX;
    544   1.81  christos 			if (sp->types[i]) {
    545   1.87  christos 				time_t attime
    546   1.87  christos 				    = ((TYPE_SIGNED(time_t) ?
    547  1.109  christos 				    at < TIME_T_MIN : at < 0)
    548  1.109  christos 				    ? TIME_T_MIN : (time_t)at);
    549   1.87  christos 				if (timecnt && attime <= sp->ats[timecnt - 1]) {
    550   1.87  christos 					if (attime < sp->ats[timecnt - 1])
    551   1.91  christos 						return EINVAL;
    552   1.87  christos 					sp->types[i - 1] = 0;
    553   1.87  christos 					timecnt--;
    554   1.81  christos 				}
    555   1.87  christos 				sp->ats[timecnt++] = attime;
    556   1.81  christos 			}
    557   1.45   mlelstv 			p += stored;
    558    1.1       jtc 		}
    559   1.87  christos 
    560   1.81  christos 		timecnt = 0;
    561    1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    562   1.81  christos 			unsigned char typ = *p++;
    563   1.81  christos 			if (sp->typecnt <= typ)
    564   1.91  christos 			  return EINVAL;
    565   1.81  christos 			if (sp->types[i])
    566   1.81  christos 				sp->types[timecnt++] = typ;
    567    1.1       jtc 		}
    568   1.87  christos 		sp->timecnt = timecnt;
    569    1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    570   1.49  christos 			struct ttinfo *	ttisp;
    571   1.87  christos 			unsigned char isdst, abbrind;
    572    1.1       jtc 
    573    1.1       jtc 			ttisp = &sp->ttis[i];
    574    1.1       jtc 			ttisp->tt_gmtoff = detzcode(p);
    575    1.1       jtc 			p += 4;
    576   1.87  christos 			isdst = *p++;
    577   1.87  christos 			if (! (isdst < 2))
    578   1.91  christos 				return EINVAL;
    579   1.87  christos 			ttisp->tt_isdst = isdst;
    580   1.87  christos 			abbrind = *p++;
    581   1.87  christos 			if (! (abbrind < sp->charcnt))
    582   1.91  christos 				return EINVAL;
    583   1.87  christos 			ttisp->tt_abbrind = abbrind;
    584    1.1       jtc 		}
    585    1.1       jtc 		for (i = 0; i < sp->charcnt; ++i)
    586    1.1       jtc 			sp->chars[i] = *p++;
    587    1.1       jtc 		sp->chars[i] = '\0';	/* ensure '\0' at end */
    588   1.87  christos 
    589   1.87  christos 		/* Read leap seconds, discarding those out of time_t range.  */
    590   1.87  christos 		leapcnt = 0;
    591    1.1       jtc 		for (i = 0; i < sp->leapcnt; ++i) {
    592   1.87  christos 			int_fast64_t tr = stored == 4 ? detzcode(p) :
    593   1.87  christos 			    detzcode64(p);
    594   1.87  christos 			int_fast32_t corr = detzcode(p + stored);
    595   1.87  christos 			p += stored + 4;
    596  1.109  christos 			/* Leap seconds cannot occur before the Epoch.  */
    597  1.109  christos 			if (tr < 0)
    598  1.109  christos 				return EINVAL;
    599  1.109  christos 			if (tr <= TIME_T_MAX) {
    600  1.109  christos 		    /* Leap seconds cannot occur more than once per UTC month,
    601  1.109  christos 		       and UTC months are at least 28 days long (minus 1
    602  1.109  christos 		       second for a negative leap second).  Each leap second's
    603  1.109  christos 		       correction must differ from the previous one's by 1
    604  1.109  christos 		       second.  */
    605  1.109  christos 				if (tr - prevtr < 28 * SECSPERDAY - 1
    606  1.109  christos 				    || (corr != prevcorr - 1
    607  1.109  christos 				    && corr != prevcorr + 1))
    608  1.109  christos 					  return EINVAL;
    609  1.109  christos 
    610  1.109  christos 				sp->lsis[leapcnt].ls_trans =
    611  1.109  christos 				    (time_t)(prevtr = tr);
    612  1.109  christos 				sp->lsis[leapcnt].ls_corr = prevcorr = corr;
    613   1.87  christos 				leapcnt++;
    614   1.87  christos 			}
    615   1.87  christos 		}
    616   1.87  christos 		sp->leapcnt = leapcnt;
    617    1.1       jtc 
    618    1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    619   1.49  christos 			struct ttinfo *	ttisp;
    620    1.1       jtc 
    621    1.1       jtc 			ttisp = &sp->ttis[i];
    622    1.1       jtc 			if (ttisstdcnt == 0)
    623   1.87  christos 				ttisp->tt_ttisstd = false;
    624    1.1       jtc 			else {
    625   1.87  christos 				if (*p != true && *p != false)
    626   1.91  christos 				  return EINVAL;
    627    1.1       jtc 				ttisp->tt_ttisstd = *p++;
    628    1.1       jtc 			}
    629    1.1       jtc 		}
    630    1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    631   1.49  christos 			struct ttinfo *	ttisp;
    632    1.1       jtc 
    633    1.1       jtc 			ttisp = &sp->ttis[i];
    634    1.1       jtc 			if (ttisgmtcnt == 0)
    635   1.87  christos 				ttisp->tt_ttisgmt = false;
    636    1.1       jtc 			else {
    637   1.87  christos 				if (*p != true && *p != false)
    638   1.91  christos 						return EINVAL;
    639    1.1       jtc 				ttisp->tt_ttisgmt = *p++;
    640    1.1       jtc 			}
    641    1.1       jtc 		}
    642   1.45   mlelstv 		/*
    643   1.45   mlelstv 		** If this is an old file, we're done.
    644   1.45   mlelstv 		*/
    645   1.58  christos 		if (up->tzhead.tzh_version[0] == '\0')
    646   1.45   mlelstv 			break;
    647   1.58  christos 		nread -= p - up->buf;
    648   1.91  christos 		memmove(up->buf, p, (size_t)nread);
    649   1.45   mlelstv 	}
    650   1.45   mlelstv 	if (doextend && nread > 2 &&
    651   1.58  christos 		up->buf[0] == '\n' && up->buf[nread - 1] == '\n' &&
    652   1.45   mlelstv 		sp->typecnt + 2 <= TZ_MAX_TYPES) {
    653   1.87  christos 			struct state *ts = &lsp->u.st;
    654   1.45   mlelstv 
    655   1.58  christos 			up->buf[nread - 1] = '\0';
    656  1.113  christos 			if (tzparse(&up->buf[1], ts, false)) {
    657   1.98  christos 
    658   1.98  christos 			  /* Attempt to reuse existing abbreviations.
    659  1.106  christos 			     Without this, America/Anchorage would be right on
    660  1.106  christos 			     the edge after 2037 when TZ_MAX_CHARS is 50, as
    661  1.106  christos 			     sp->charcnt equals 40 (for LMT AST AWT APT AHST
    662   1.98  christos 			     AHDT YST AKDT AKST) and ts->charcnt equals 10
    663   1.98  christos 			     (for AKST AKDT).  Reusing means sp->charcnt can
    664  1.106  christos 			     stay 40 in this example.  */
    665   1.98  christos 			  int gotabbr = 0;
    666   1.98  christos 			  int charcnt = sp->charcnt;
    667  1.113  christos 			  for (i = 0; i < ts->typecnt; i++) {
    668   1.98  christos 			    char *tsabbr = ts->chars + ts->ttis[i].tt_abbrind;
    669   1.98  christos 			    int j;
    670   1.98  christos 			    for (j = 0; j < charcnt; j++)
    671   1.98  christos 			      if (strcmp(sp->chars + j, tsabbr) == 0) {
    672   1.98  christos 				ts->ttis[i].tt_abbrind = j;
    673   1.98  christos 				gotabbr++;
    674   1.98  christos 				break;
    675   1.98  christos 			      }
    676   1.98  christos 			    if (! (j < charcnt)) {
    677   1.99  christos 			      size_t tsabbrlen = strlen(tsabbr);
    678   1.98  christos 			      if (j + tsabbrlen < TZ_MAX_CHARS) {
    679   1.98  christos 				strcpy(sp->chars + j, tsabbr);
    680  1.100  christos 				charcnt = (int_fast32_t)(j + tsabbrlen + 1);
    681   1.98  christos 				ts->ttis[i].tt_abbrind = j;
    682   1.98  christos 				gotabbr++;
    683   1.98  christos 			      }
    684   1.98  christos 			    }
    685   1.98  christos 			  }
    686  1.113  christos 			  if (gotabbr == ts->typecnt) {
    687   1.98  christos 			    sp->charcnt = charcnt;
    688  1.106  christos 
    689  1.106  christos 			    /* Ignore any trailing, no-op transitions generated
    690  1.106  christos 			       by zic as they don't help here and can run afoul
    691  1.106  christos 			       of bugs in zic 2016j or earlier.  */
    692  1.106  christos 			    while (1 < sp->timecnt
    693  1.106  christos 				   && (sp->types[sp->timecnt - 1]
    694  1.106  christos 				       == sp->types[sp->timecnt - 2]))
    695  1.106  christos 			      sp->timecnt--;
    696  1.106  christos 
    697   1.98  christos 			    for (i = 0; i < ts->timecnt; i++)
    698  1.113  christos 			      if (sp->timecnt == 0
    699  1.113  christos 				  || sp->ats[sp->timecnt - 1] < ts->ats[i])
    700   1.98  christos 				break;
    701   1.98  christos 			    while (i < ts->timecnt
    702   1.98  christos 				   && sp->timecnt < TZ_MAX_TIMES) {
    703   1.98  christos 			      sp->ats[sp->timecnt] = ts->ats[i];
    704   1.98  christos 			      sp->types[sp->timecnt] = (sp->typecnt
    705   1.98  christos 							+ ts->types[i]);
    706   1.98  christos 			      sp->timecnt++;
    707   1.98  christos 			      i++;
    708   1.98  christos 			    }
    709  1.113  christos 			    for (i = 0; i < ts->typecnt; i++)
    710  1.113  christos 			      sp->ttis[sp->typecnt++] = ts->ttis[i];
    711   1.98  christos 			  }
    712   1.45   mlelstv 			}
    713   1.45   mlelstv 	}
    714  1.113  christos 	if (sp->typecnt == 0)
    715  1.113  christos 	  return EINVAL;
    716   1.45   mlelstv 	if (sp->timecnt > 1) {
    717   1.45   mlelstv 		for (i = 1; i < sp->timecnt; ++i)
    718   1.45   mlelstv 			if (typesequiv(sp, sp->types[i], sp->types[0]) &&
    719   1.45   mlelstv 				differ_by_repeat(sp->ats[i], sp->ats[0])) {
    720   1.87  christos 					sp->goback = true;
    721   1.45   mlelstv 					break;
    722   1.45   mlelstv 				}
    723   1.45   mlelstv 		for (i = sp->timecnt - 2; i >= 0; --i)
    724   1.45   mlelstv 			if (typesequiv(sp, sp->types[sp->timecnt - 1],
    725   1.45   mlelstv 				sp->types[i]) &&
    726   1.45   mlelstv 				differ_by_repeat(sp->ats[sp->timecnt - 1],
    727   1.45   mlelstv 				sp->ats[i])) {
    728   1.87  christos 					sp->goahead = true;
    729   1.45   mlelstv 					break;
    730   1.45   mlelstv 		}
    731    1.1       jtc 	}
    732  1.113  christos 
    733  1.113  christos 	/* Infer sp->defaulttype from the data.  Although this default
    734  1.113  christos 	   type is always zero for data from recent tzdb releases,
    735  1.113  christos 	   things are trickier for data from tzdb 2018e or earlier.
    736  1.113  christos 
    737  1.113  christos 	   The first set of heuristics work around bugs in 32-bit data
    738  1.113  christos 	   generated by tzdb 2013c or earlier.  The workaround is for
    739  1.113  christos 	   zones like Australia/Macquarie where timestamps before the
    740  1.113  christos 	   first transition have a time type that is not the earliest
    741  1.113  christos 	   standard-time type.  See:
    742  1.113  christos 	   https://mm.icann.org/pipermail/tz/2013-May/019368.html */
    743   1.74  christos 	/*
    744  1.109  christos 	** If type 0 is unused in transitions,
    745   1.74  christos 	** it's the type to use for early times.
    746   1.74  christos 	*/
    747   1.87  christos 	for (i = 0; i < sp->timecnt; ++i)
    748   1.74  christos 		if (sp->types[i] == 0)
    749   1.74  christos 			break;
    750   1.87  christos 	i = i < sp->timecnt ? -1 : 0;
    751   1.74  christos 	/*
    752   1.74  christos 	** Absent the above,
    753   1.74  christos 	** if there are transition times
    754   1.74  christos 	** and the first transition is to a daylight time
    755   1.74  christos 	** find the standard type less than and closest to
    756   1.74  christos 	** the type of the first transition.
    757   1.74  christos 	*/
    758   1.74  christos 	if (i < 0 && sp->timecnt > 0 && sp->ttis[sp->types[0]].tt_isdst) {
    759   1.74  christos 		i = sp->types[0];
    760   1.74  christos 		while (--i >= 0)
    761   1.74  christos 			if (!sp->ttis[i].tt_isdst)
    762   1.74  christos 				break;
    763   1.74  christos 	}
    764  1.113  christos 	/* The next heuristics are for data generated by tzdb 2018e or
    765  1.113  christos 	   earlier, for zones like EST5EDT where the first transition
    766  1.113  christos 	   is to DST.  */
    767   1.74  christos 	/*
    768   1.74  christos 	** If no result yet, find the first standard type.
    769   1.74  christos 	** If there is none, punt to type zero.
    770   1.74  christos 	*/
    771   1.74  christos 	if (i < 0) {
    772   1.74  christos 		i = 0;
    773   1.74  christos 		while (sp->ttis[i].tt_isdst)
    774   1.74  christos 			if (++i >= sp->typecnt) {
    775   1.74  christos 				i = 0;
    776   1.74  christos 				break;
    777   1.74  christos 			}
    778   1.74  christos 	}
    779  1.113  christos 	/* A simple 'sp->defaulttype = 0;' would suffice here if we
    780  1.113  christos 	   didn't have to worry about 2018e-or-earlier data.  Even
    781  1.113  christos 	   simpler would be to remove the defaulttype member and just
    782  1.113  christos 	   use 0 in its place.  */
    783   1.74  christos 	sp->defaulttype = i;
    784  1.113  christos 
    785   1.91  christos 	return 0;
    786   1.91  christos }
    787   1.91  christos 
    788   1.91  christos /* Load tz data from the file named NAME into *SP.  Read extended
    789   1.91  christos    format if DOEXTEND.  Return 0 on success, an errno value on failure.  */
    790   1.91  christos static int
    791   1.91  christos tzload(char const *name, struct state *sp, bool doextend)
    792   1.91  christos {
    793   1.91  christos 	union local_storage *lsp = malloc(sizeof *lsp);
    794   1.91  christos 	if (!lsp)
    795   1.91  christos 		return errno;
    796   1.91  christos 	else {
    797   1.91  christos 		int err = tzloadbody(name, sp, doextend, lsp);
    798   1.91  christos 		free(lsp);
    799   1.91  christos 		return err;
    800   1.91  christos 	}
    801    1.1       jtc }
    802    1.1       jtc 
    803   1.87  christos static bool
    804   1.96  christos typesequiv(const struct state *sp, int a, int b)
    805   1.45   mlelstv {
    806   1.87  christos 	bool result;
    807   1.45   mlelstv 
    808   1.45   mlelstv 	if (sp == NULL ||
    809   1.45   mlelstv 		a < 0 || a >= sp->typecnt ||
    810   1.45   mlelstv 		b < 0 || b >= sp->typecnt)
    811   1.87  christos 			result = false;
    812   1.45   mlelstv 	else {
    813   1.49  christos 		const struct ttinfo *	ap = &sp->ttis[a];
    814   1.49  christos 		const struct ttinfo *	bp = &sp->ttis[b];
    815   1.45   mlelstv 		result = ap->tt_gmtoff == bp->tt_gmtoff &&
    816   1.45   mlelstv 			ap->tt_isdst == bp->tt_isdst &&
    817   1.45   mlelstv 			ap->tt_ttisstd == bp->tt_ttisstd &&
    818   1.45   mlelstv 			ap->tt_ttisgmt == bp->tt_ttisgmt &&
    819   1.45   mlelstv 			strcmp(&sp->chars[ap->tt_abbrind],
    820   1.45   mlelstv 			&sp->chars[bp->tt_abbrind]) == 0;
    821   1.45   mlelstv 	}
    822   1.45   mlelstv 	return result;
    823   1.45   mlelstv }
    824   1.45   mlelstv 
    825    1.1       jtc static const int	mon_lengths[2][MONSPERYEAR] = {
    826    1.1       jtc 	{ 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 },
    827    1.1       jtc 	{ 31, 29, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 }
    828    1.1       jtc };
    829    1.1       jtc 
    830    1.1       jtc static const int	year_lengths[2] = {
    831    1.1       jtc 	DAYSPERNYEAR, DAYSPERLYEAR
    832    1.1       jtc };
    833    1.1       jtc 
    834    1.1       jtc /*
    835  1.113  christos ** Given a pointer into a timezone string, scan until a character that is not
    836  1.113  christos ** a valid character in a time zone abbreviation is found.
    837  1.113  christos ** Return a pointer to that character.
    838    1.1       jtc */
    839    1.1       jtc 
    840  1.114  christos static ATTRIBUTE_PURE const char *
    841   1.67      matt getzname(const char *strp)
    842    1.1       jtc {
    843   1.49  christos 	char	c;
    844    1.1       jtc 
    845    1.5       jtc 	while ((c = *strp) != '\0' && !is_digit(c) && c != ',' && c != '-' &&
    846    1.1       jtc 		c != '+')
    847    1.1       jtc 			++strp;
    848    1.1       jtc 	return strp;
    849    1.1       jtc }
    850    1.1       jtc 
    851    1.1       jtc /*
    852  1.113  christos ** Given a pointer into an extended timezone string, scan until the ending
    853  1.113  christos ** delimiter of the time zone abbreviation is located.
    854  1.113  christos ** Return a pointer to the delimiter.
    855   1.45   mlelstv **
    856   1.45   mlelstv ** As with getzname above, the legal character set is actually quite
    857   1.45   mlelstv ** restricted, with other characters producing undefined results.
    858   1.45   mlelstv ** We don't do any checking here; checking is done later in common-case code.
    859   1.45   mlelstv */
    860   1.45   mlelstv 
    861  1.114  christos static ATTRIBUTE_PURE const char *
    862   1.49  christos getqzname(const char *strp, const int delim)
    863   1.45   mlelstv {
    864   1.49  christos 	int	c;
    865   1.45   mlelstv 
    866   1.45   mlelstv 	while ((c = *strp) != '\0' && c != delim)
    867   1.45   mlelstv 		++strp;
    868   1.45   mlelstv 	return strp;
    869   1.45   mlelstv }
    870   1.45   mlelstv 
    871   1.45   mlelstv /*
    872  1.113  christos ** Given a pointer into a timezone string, extract a number from that string.
    873    1.1       jtc ** Check that the number is within a specified range; if it is not, return
    874    1.1       jtc ** NULL.
    875    1.1       jtc ** Otherwise, return a pointer to the first character not part of the number.
    876    1.1       jtc */
    877    1.1       jtc 
    878    1.1       jtc static const char *
    879   1.68  christos getnum(const char *strp, int *const nump, const int min, const int max)
    880    1.1       jtc {
    881   1.49  christos 	char	c;
    882   1.49  christos 	int	num;
    883    1.1       jtc 
    884   1.46  christos 	if (strp == NULL || !is_digit(c = *strp)) {
    885   1.46  christos 		errno = EINVAL;
    886    1.1       jtc 		return NULL;
    887   1.46  christos 	}
    888    1.1       jtc 	num = 0;
    889    1.5       jtc 	do {
    890    1.1       jtc 		num = num * 10 + (c - '0');
    891   1.46  christos 		if (num > max) {
    892   1.46  christos 			errno = EOVERFLOW;
    893    1.1       jtc 			return NULL;	/* illegal value */
    894   1.46  christos 		}
    895    1.5       jtc 		c = *++strp;
    896    1.5       jtc 	} while (is_digit(c));
    897   1.46  christos 	if (num < min) {
    898   1.46  christos 		errno = EINVAL;
    899    1.1       jtc 		return NULL;		/* illegal value */
    900   1.46  christos 	}
    901    1.1       jtc 	*nump = num;
    902    1.1       jtc 	return strp;
    903    1.1       jtc }
    904    1.1       jtc 
    905    1.1       jtc /*
    906  1.113  christos ** Given a pointer into a timezone string, extract a number of seconds,
    907    1.1       jtc ** in hh[:mm[:ss]] form, from the string.
    908    1.1       jtc ** If any error occurs, return NULL.
    909    1.1       jtc ** Otherwise, return a pointer to the first character not part of the number
    910    1.1       jtc ** of seconds.
    911    1.1       jtc */
    912    1.1       jtc 
    913    1.1       jtc static const char *
    914   1.74  christos getsecs(const char *strp, int_fast32_t *const secsp)
    915    1.1       jtc {
    916    1.1       jtc 	int	num;
    917    1.1       jtc 
    918    1.1       jtc 	/*
    919   1.83  christos 	** 'HOURSPERDAY * DAYSPERWEEK - 1' allows quasi-Posix rules like
    920    1.1       jtc 	** "M10.4.6/26", which does not conform to Posix,
    921    1.1       jtc 	** but which specifies the equivalent of
    922   1.83  christos 	** "02:00 on the first Sunday on or after 23 Oct".
    923    1.1       jtc 	*/
    924    1.1       jtc 	strp = getnum(strp, &num, 0, HOURSPERDAY * DAYSPERWEEK - 1);
    925    1.1       jtc 	if (strp == NULL)
    926    1.1       jtc 		return NULL;
    927   1.74  christos 	*secsp = num * (int_fast32_t) SECSPERHOUR;
    928    1.1       jtc 	if (*strp == ':') {
    929    1.1       jtc 		++strp;
    930    1.1       jtc 		strp = getnum(strp, &num, 0, MINSPERHOUR - 1);
    931    1.1       jtc 		if (strp == NULL)
    932    1.1       jtc 			return NULL;
    933    1.1       jtc 		*secsp += num * SECSPERMIN;
    934    1.1       jtc 		if (*strp == ':') {
    935    1.1       jtc 			++strp;
    936   1.83  christos 			/* 'SECSPERMIN' allows for leap seconds.  */
    937    1.1       jtc 			strp = getnum(strp, &num, 0, SECSPERMIN);
    938    1.1       jtc 			if (strp == NULL)
    939    1.1       jtc 				return NULL;
    940    1.1       jtc 			*secsp += num;
    941    1.1       jtc 		}
    942    1.1       jtc 	}
    943    1.1       jtc 	return strp;
    944    1.1       jtc }
    945    1.1       jtc 
    946    1.1       jtc /*
    947  1.113  christos ** Given a pointer into a timezone string, extract an offset, in
    948    1.1       jtc ** [+-]hh[:mm[:ss]] form, from the string.
    949    1.1       jtc ** If any error occurs, return NULL.
    950    1.1       jtc ** Otherwise, return a pointer to the first character not part of the time.
    951    1.1       jtc */
    952    1.1       jtc 
    953    1.1       jtc static const char *
    954   1.74  christos getoffset(const char *strp, int_fast32_t *const offsetp)
    955    1.1       jtc {
    956   1.87  christos 	bool neg = false;
    957    1.1       jtc 
    958    1.1       jtc 	if (*strp == '-') {
    959   1.87  christos 		neg = true;
    960    1.1       jtc 		++strp;
    961    1.5       jtc 	} else if (*strp == '+')
    962    1.5       jtc 		++strp;
    963    1.1       jtc 	strp = getsecs(strp, offsetp);
    964    1.1       jtc 	if (strp == NULL)
    965    1.1       jtc 		return NULL;		/* illegal time */
    966    1.1       jtc 	if (neg)
    967    1.1       jtc 		*offsetp = -*offsetp;
    968    1.1       jtc 	return strp;
    969    1.1       jtc }
    970    1.1       jtc 
    971    1.1       jtc /*
    972  1.113  christos ** Given a pointer into a timezone string, extract a rule in the form
    973   1.45   mlelstv ** date[/time]. See POSIX section 8 for the format of "date" and "time".
    974    1.1       jtc ** If a valid rule is not found, return NULL.
    975    1.1       jtc ** Otherwise, return a pointer to the first character not part of the rule.
    976    1.1       jtc */
    977    1.1       jtc 
    978    1.1       jtc static const char *
    979   1.49  christos getrule(const char *strp, struct rule *const rulep)
    980    1.1       jtc {
    981    1.1       jtc 	if (*strp == 'J') {
    982    1.1       jtc 		/*
    983    1.1       jtc 		** Julian day.
    984    1.1       jtc 		*/
    985    1.1       jtc 		rulep->r_type = JULIAN_DAY;
    986    1.1       jtc 		++strp;
    987    1.1       jtc 		strp = getnum(strp, &rulep->r_day, 1, DAYSPERNYEAR);
    988    1.1       jtc 	} else if (*strp == 'M') {
    989    1.1       jtc 		/*
    990    1.1       jtc 		** Month, week, day.
    991    1.1       jtc 		*/
    992    1.1       jtc 		rulep->r_type = MONTH_NTH_DAY_OF_WEEK;
    993    1.1       jtc 		++strp;
    994    1.1       jtc 		strp = getnum(strp, &rulep->r_mon, 1, MONSPERYEAR);
    995    1.1       jtc 		if (strp == NULL)
    996    1.1       jtc 			return NULL;
    997    1.1       jtc 		if (*strp++ != '.')
    998    1.1       jtc 			return NULL;
    999    1.1       jtc 		strp = getnum(strp, &rulep->r_week, 1, 5);
   1000    1.1       jtc 		if (strp == NULL)
   1001    1.1       jtc 			return NULL;
   1002    1.1       jtc 		if (*strp++ != '.')
   1003    1.1       jtc 			return NULL;
   1004    1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERWEEK - 1);
   1005    1.5       jtc 	} else if (is_digit(*strp)) {
   1006    1.1       jtc 		/*
   1007    1.1       jtc 		** Day of year.
   1008    1.1       jtc 		*/
   1009    1.1       jtc 		rulep->r_type = DAY_OF_YEAR;
   1010    1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERLYEAR - 1);
   1011    1.1       jtc 	} else	return NULL;		/* invalid format */
   1012    1.1       jtc 	if (strp == NULL)
   1013    1.1       jtc 		return NULL;
   1014    1.1       jtc 	if (*strp == '/') {
   1015    1.1       jtc 		/*
   1016    1.1       jtc 		** Time specified.
   1017    1.1       jtc 		*/
   1018    1.1       jtc 		++strp;
   1019   1.78  christos 		strp = getoffset(strp, &rulep->r_time);
   1020    1.1       jtc 	} else	rulep->r_time = 2 * SECSPERHOUR;	/* default = 2:00:00 */
   1021    1.1       jtc 	return strp;
   1022    1.1       jtc }
   1023    1.1       jtc 
   1024    1.1       jtc /*
   1025   1.81  christos ** Given a year, a rule, and the offset from UT at the time that rule takes
   1026   1.81  christos ** effect, calculate the year-relative time that rule takes effect.
   1027    1.1       jtc */
   1028    1.1       jtc 
   1029  1.109  christos static int_fast32_t
   1030   1.81  christos transtime(const int year, const struct rule *const rulep,
   1031   1.81  christos 	  const int_fast32_t offset)
   1032   1.49  christos {
   1033   1.87  christos 	bool	leapyear;
   1034   1.87  christos 	int_fast32_t value;
   1035   1.49  christos 	int	i;
   1036    1.1       jtc 	int		d, m1, yy0, yy1, yy2, dow;
   1037    1.1       jtc 
   1038    1.1       jtc 	INITIALIZE(value);
   1039    1.1       jtc 	leapyear = isleap(year);
   1040    1.1       jtc 	switch (rulep->r_type) {
   1041    1.1       jtc 
   1042    1.1       jtc 	case JULIAN_DAY:
   1043    1.1       jtc 		/*
   1044    1.1       jtc 		** Jn - Julian day, 1 == January 1, 60 == March 1 even in leap
   1045    1.1       jtc 		** years.
   1046    1.1       jtc 		** In non-leap years, or if the day number is 59 or less, just
   1047    1.1       jtc 		** add SECSPERDAY times the day number-1 to the time of
   1048    1.1       jtc 		** January 1, midnight, to get the day.
   1049    1.1       jtc 		*/
   1050   1.81  christos 		value = (rulep->r_day - 1) * SECSPERDAY;
   1051    1.1       jtc 		if (leapyear && rulep->r_day >= 60)
   1052    1.1       jtc 			value += SECSPERDAY;
   1053    1.1       jtc 		break;
   1054    1.1       jtc 
   1055    1.1       jtc 	case DAY_OF_YEAR:
   1056    1.1       jtc 		/*
   1057    1.1       jtc 		** n - day of year.
   1058    1.1       jtc 		** Just add SECSPERDAY times the day number to the time of
   1059    1.1       jtc 		** January 1, midnight, to get the day.
   1060    1.1       jtc 		*/
   1061   1.81  christos 		value = rulep->r_day * SECSPERDAY;
   1062    1.1       jtc 		break;
   1063    1.1       jtc 
   1064    1.1       jtc 	case MONTH_NTH_DAY_OF_WEEK:
   1065    1.1       jtc 		/*
   1066    1.1       jtc 		** Mm.n.d - nth "dth day" of month m.
   1067    1.1       jtc 		*/
   1068    1.1       jtc 
   1069    1.1       jtc 		/*
   1070    1.1       jtc 		** Use Zeller's Congruence to get day-of-week of first day of
   1071    1.1       jtc 		** month.
   1072    1.1       jtc 		*/
   1073    1.1       jtc 		m1 = (rulep->r_mon + 9) % 12 + 1;
   1074    1.1       jtc 		yy0 = (rulep->r_mon <= 2) ? (year - 1) : year;
   1075    1.1       jtc 		yy1 = yy0 / 100;
   1076    1.1       jtc 		yy2 = yy0 % 100;
   1077    1.1       jtc 		dow = ((26 * m1 - 2) / 10 +
   1078    1.1       jtc 			1 + yy2 + yy2 / 4 + yy1 / 4 - 2 * yy1) % 7;
   1079    1.1       jtc 		if (dow < 0)
   1080    1.1       jtc 			dow += DAYSPERWEEK;
   1081    1.1       jtc 
   1082    1.1       jtc 		/*
   1083   1.45   mlelstv 		** "dow" is the day-of-week of the first day of the month. Get
   1084    1.1       jtc 		** the day-of-month (zero-origin) of the first "dow" day of the
   1085    1.1       jtc 		** month.
   1086    1.1       jtc 		*/
   1087    1.1       jtc 		d = rulep->r_day - dow;
   1088    1.1       jtc 		if (d < 0)
   1089    1.1       jtc 			d += DAYSPERWEEK;
   1090    1.1       jtc 		for (i = 1; i < rulep->r_week; ++i) {
   1091    1.1       jtc 			if (d + DAYSPERWEEK >=
   1092    1.1       jtc 				mon_lengths[leapyear][rulep->r_mon - 1])
   1093    1.1       jtc 					break;
   1094    1.1       jtc 			d += DAYSPERWEEK;
   1095    1.1       jtc 		}
   1096    1.1       jtc 
   1097    1.1       jtc 		/*
   1098    1.1       jtc 		** "d" is the day-of-month (zero-origin) of the day we want.
   1099    1.1       jtc 		*/
   1100   1.81  christos 		value = d * SECSPERDAY;
   1101   1.81  christos 		for (i = 0; i < rulep->r_mon - 1; ++i)
   1102   1.81  christos 			value += mon_lengths[leapyear][i] * SECSPERDAY;
   1103    1.1       jtc 		break;
   1104    1.1       jtc 	}
   1105    1.1       jtc 
   1106    1.1       jtc 	/*
   1107   1.81  christos 	** "value" is the year-relative time of 00:00:00 UT on the day in
   1108   1.81  christos 	** question. To get the year-relative time of the specified local
   1109    1.1       jtc 	** time on that day, add the transition time and the current offset
   1110   1.78  christos 	** from UT.
   1111    1.1       jtc 	*/
   1112   1.81  christos 	return value + rulep->r_time + offset;
   1113    1.1       jtc }
   1114    1.1       jtc 
   1115    1.1       jtc /*
   1116    1.1       jtc ** Given a POSIX section 8-style TZ string, fill in the rule tables as
   1117    1.1       jtc ** appropriate.
   1118    1.1       jtc */
   1119    1.1       jtc 
   1120   1.87  christos static bool
   1121   1.96  christos tzparse(const char *name, struct state *sp, bool lastditch)
   1122   1.87  christos {
   1123   1.87  christos 	const char *	stdname;
   1124   1.87  christos 	const char *	dstname;
   1125   1.87  christos 	size_t		stdlen;
   1126   1.87  christos 	size_t		dstlen;
   1127   1.96  christos 	size_t		charcnt;
   1128   1.87  christos 	int_fast32_t	stdoffset;
   1129   1.87  christos 	int_fast32_t	dstoffset;
   1130   1.87  christos 	char *		cp;
   1131   1.87  christos 	bool		load_ok;
   1132    1.1       jtc 
   1133   1.84    martin 	dstname = NULL; /* XXX gcc */
   1134    1.1       jtc 	stdname = name;
   1135    1.1       jtc 	if (lastditch) {
   1136   1.96  christos 		stdlen = sizeof gmt - 1;
   1137    1.1       jtc 		name += stdlen;
   1138   1.10       jtc 		stdoffset = 0;
   1139    1.1       jtc 	} else {
   1140   1.45   mlelstv 		if (*name == '<') {
   1141   1.45   mlelstv 			name++;
   1142   1.45   mlelstv 			stdname = name;
   1143   1.45   mlelstv 			name = getqzname(name, '>');
   1144   1.45   mlelstv 			if (*name != '>')
   1145   1.87  christos 			  return false;
   1146   1.45   mlelstv 			stdlen = name - stdname;
   1147   1.45   mlelstv 			name++;
   1148   1.45   mlelstv 		} else {
   1149   1.45   mlelstv 			name = getzname(name);
   1150   1.45   mlelstv 			stdlen = name - stdname;
   1151   1.45   mlelstv 		}
   1152   1.96  christos 		if (!stdlen)
   1153   1.87  christos 			return false;
   1154   1.45   mlelstv 		name = getoffset(name, &stdoffset);
   1155    1.1       jtc 		if (name == NULL)
   1156   1.87  christos 			return false;
   1157    1.1       jtc 	}
   1158   1.96  christos 	charcnt = stdlen + 1;
   1159   1.96  christos 	if (sizeof sp->chars < charcnt)
   1160   1.96  christos 		return false;
   1161   1.91  christos 	load_ok = tzload(TZDEFRULES, sp, false) == 0;
   1162   1.87  christos 	if (!load_ok)
   1163    1.1       jtc 		sp->leapcnt = 0;		/* so, we're off a little */
   1164    1.1       jtc 	if (*name != '\0') {
   1165   1.45   mlelstv 		if (*name == '<') {
   1166   1.45   mlelstv 			dstname = ++name;
   1167   1.45   mlelstv 			name = getqzname(name, '>');
   1168   1.45   mlelstv 			if (*name != '>')
   1169   1.87  christos 				return false;
   1170   1.45   mlelstv 			dstlen = name - dstname;
   1171   1.45   mlelstv 			name++;
   1172   1.45   mlelstv 		} else {
   1173   1.45   mlelstv 			dstname = name;
   1174   1.45   mlelstv 			name = getzname(name);
   1175  1.113  christos 			dstlen = name - dstname; /* length of DST abbr. */
   1176   1.45   mlelstv 		}
   1177   1.96  christos 		if (!dstlen)
   1178   1.96  christos 		  return false;
   1179   1.96  christos 		charcnt += dstlen + 1;
   1180   1.96  christos 		if (sizeof sp->chars < charcnt)
   1181   1.96  christos 		  return false;
   1182    1.1       jtc 		if (*name != '\0' && *name != ',' && *name != ';') {
   1183   1.45   mlelstv 			name = getoffset(name, &dstoffset);
   1184    1.1       jtc 			if (name == NULL)
   1185   1.87  christos 			  return false;
   1186    1.1       jtc 		} else	dstoffset = stdoffset - SECSPERHOUR;
   1187   1.87  christos 		if (*name == '\0' && !load_ok)
   1188   1.22    kleink 			name = TZDEFRULESTRING;
   1189    1.1       jtc 		if (*name == ',' || *name == ';') {
   1190    1.1       jtc 			struct rule	start;
   1191    1.1       jtc 			struct rule	end;
   1192   1.78  christos 			int		year;
   1193   1.78  christos 			int		yearlim;
   1194   1.81  christos 			int		timecnt;
   1195   1.78  christos 			time_t		janfirst;
   1196  1.106  christos 			int_fast32_t janoffset = 0;
   1197  1.106  christos 			int yearbeg;
   1198    1.1       jtc 
   1199    1.1       jtc 			++name;
   1200   1.45   mlelstv 			if ((name = getrule(name, &start)) == NULL)
   1201   1.87  christos 				return false;
   1202    1.1       jtc 			if (*name++ != ',')
   1203   1.87  christos 				return false;
   1204   1.45   mlelstv 			if ((name = getrule(name, &end)) == NULL)
   1205   1.87  christos 				return false;
   1206    1.1       jtc 			if (*name != '\0')
   1207   1.87  christos 				return false;
   1208    1.1       jtc 			sp->typecnt = 2;	/* standard time and DST */
   1209    1.1       jtc 			/*
   1210   1.45   mlelstv 			** Two transitions per year, from EPOCH_YEAR forward.
   1211    1.1       jtc 			*/
   1212  1.113  christos 			init_ttinfo(&sp->ttis[0], -stdoffset, false, 0);
   1213  1.113  christos 			init_ttinfo(&sp->ttis[1], -dstoffset, true,
   1214   1.91  christos 			    (int)(stdlen + 1));
   1215   1.82  christos 			sp->defaulttype = 0;
   1216   1.81  christos 			timecnt = 0;
   1217    1.1       jtc 			janfirst = 0;
   1218  1.106  christos 			yearbeg = EPOCH_YEAR;
   1219  1.106  christos 
   1220  1.106  christos 			do {
   1221  1.106  christos 			  int_fast32_t yearsecs
   1222  1.106  christos 			    = year_lengths[isleap(yearbeg - 1)] * SECSPERDAY;
   1223  1.106  christos 			  yearbeg--;
   1224  1.106  christos 			  if (increment_overflow_time(&janfirst, -yearsecs)) {
   1225  1.106  christos 			    janoffset = -yearsecs;
   1226  1.106  christos 			    break;
   1227  1.106  christos 			  }
   1228  1.106  christos 			} while (EPOCH_YEAR - YEARSPERREPEAT / 2 < yearbeg);
   1229  1.106  christos 
   1230  1.106  christos 			yearlim = yearbeg + YEARSPERREPEAT + 1;
   1231  1.106  christos 			for (year = yearbeg; year < yearlim; year++) {
   1232   1.81  christos 				int_fast32_t
   1233   1.81  christos 				  starttime = transtime(year, &start, stdoffset),
   1234   1.81  christos 				  endtime = transtime(year, &end, dstoffset);
   1235   1.81  christos 				int_fast32_t
   1236   1.81  christos 				  yearsecs = (year_lengths[isleap(year)]
   1237   1.81  christos 					      * SECSPERDAY);
   1238   1.87  christos 				bool reversed = endtime < starttime;
   1239   1.81  christos 				if (reversed) {
   1240   1.81  christos 					int_fast32_t swap = starttime;
   1241   1.81  christos 					starttime = endtime;
   1242   1.81  christos 					endtime = swap;
   1243   1.81  christos 				}
   1244   1.81  christos 				if (reversed
   1245   1.78  christos 				    || (starttime < endtime
   1246   1.78  christos 					&& (endtime - starttime
   1247   1.78  christos 					    < (yearsecs
   1248   1.78  christos 					       + (stdoffset - dstoffset))))) {
   1249   1.81  christos 					if (TZ_MAX_TIMES - 2 < timecnt)
   1250   1.78  christos 						break;
   1251   1.81  christos 					sp->ats[timecnt] = janfirst;
   1252  1.106  christos 					if (! increment_overflow_time
   1253  1.106  christos 					    (&sp->ats[timecnt],
   1254  1.106  christos 					     janoffset + starttime))
   1255  1.113  christos 					  sp->types[timecnt++] = !reversed;
   1256   1.81  christos 					sp->ats[timecnt] = janfirst;
   1257  1.106  christos 					if (! increment_overflow_time
   1258  1.106  christos 					    (&sp->ats[timecnt],
   1259  1.106  christos 					     janoffset + endtime)) {
   1260  1.113  christos 					  sp->types[timecnt++] = reversed;
   1261  1.106  christos 					  yearlim = year + YEARSPERREPEAT + 1;
   1262  1.113  christos 					}
   1263    1.1       jtc 				}
   1264  1.106  christos 				if (increment_overflow_time
   1265  1.106  christos 				    (&janfirst, janoffset + yearsecs))
   1266   1.45   mlelstv 					break;
   1267  1.106  christos 				janoffset = 0;
   1268    1.1       jtc 			}
   1269   1.81  christos 			sp->timecnt = timecnt;
   1270  1.113  christos 			if (! timecnt) {
   1271  1.113  christos 				sp->ttis[0] = sp->ttis[1];
   1272   1.78  christos 				sp->typecnt = 1;	/* Perpetual DST.  */
   1273  1.113  christos 			} else if (YEARSPERREPEAT < year - yearbeg)
   1274  1.106  christos 				sp->goback = sp->goahead = true;
   1275    1.1       jtc 		} else {
   1276   1.74  christos 			int_fast32_t	theirstdoffset;
   1277   1.74  christos 			int_fast32_t	theirdstoffset;
   1278   1.74  christos 			int_fast32_t	theiroffset;
   1279   1.87  christos 			bool		isdst;
   1280   1.74  christos 			int		i;
   1281   1.74  christos 			int		j;
   1282    1.1       jtc 
   1283    1.1       jtc 			if (*name != '\0')
   1284   1.87  christos 				return false;
   1285    1.1       jtc 			/*
   1286   1.69  christos 			** Initial values of theirstdoffset and theirdstoffset.
   1287    1.1       jtc 			*/
   1288    1.1       jtc 			theirstdoffset = 0;
   1289    1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
   1290    1.1       jtc 				j = sp->types[i];
   1291    1.1       jtc 				if (!sp->ttis[j].tt_isdst) {
   1292    1.5       jtc 					theirstdoffset =
   1293    1.5       jtc 						-sp->ttis[j].tt_gmtoff;
   1294    1.1       jtc 					break;
   1295    1.1       jtc 				}
   1296    1.1       jtc 			}
   1297   1.45   mlelstv 			theirdstoffset = 0;
   1298   1.45   mlelstv 			for (i = 0; i < sp->timecnt; ++i) {
   1299   1.45   mlelstv 				j = sp->types[i];
   1300   1.45   mlelstv 				if (sp->ttis[j].tt_isdst) {
   1301   1.45   mlelstv 					theirdstoffset =
   1302   1.45   mlelstv 						-sp->ttis[j].tt_gmtoff;
   1303   1.45   mlelstv 					break;
   1304   1.45   mlelstv 				}
   1305   1.45   mlelstv 			}
   1306    1.1       jtc 			/*
   1307    1.1       jtc 			** Initially we're assumed to be in standard time.
   1308    1.1       jtc 			*/
   1309   1.87  christos 			isdst = false;
   1310    1.1       jtc 			theiroffset = theirstdoffset;
   1311    1.1       jtc 			/*
   1312    1.1       jtc 			** Now juggle transition times and types
   1313    1.1       jtc 			** tracking offsets as you do.
   1314    1.1       jtc 			*/
   1315    1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
   1316    1.1       jtc 				j = sp->types[i];
   1317    1.1       jtc 				sp->types[i] = sp->ttis[j].tt_isdst;
   1318    1.1       jtc 				if (sp->ttis[j].tt_ttisgmt) {
   1319    1.1       jtc 					/* No adjustment to transition time */
   1320    1.1       jtc 				} else {
   1321    1.1       jtc 					/*
   1322  1.112  christos 					** If daylight saving time is in
   1323  1.112  christos 					** effect, and the transition time was
   1324  1.112  christos 					** not specified as standard time, add
   1325  1.112  christos 					** the daylight saving time offset to
   1326  1.112  christos 					** the transition time; otherwise, add
   1327  1.112  christos 					** the standard time offset to the
   1328  1.112  christos 					** transition time.
   1329    1.1       jtc 					*/
   1330    1.1       jtc 					/*
   1331    1.1       jtc 					** Transitions from DST to DDST
   1332    1.1       jtc 					** will effectively disappear since
   1333    1.1       jtc 					** POSIX provides for only one DST
   1334    1.1       jtc 					** offset.
   1335    1.1       jtc 					*/
   1336   1.45   mlelstv 					if (isdst && !sp->ttis[j].tt_ttisstd) {
   1337   1.66  christos 						sp->ats[i] += (time_t)
   1338   1.66  christos 						    (dstoffset - theirdstoffset);
   1339   1.45   mlelstv 					} else {
   1340   1.66  christos 						sp->ats[i] += (time_t)
   1341   1.66  christos 						    (stdoffset - theirstdoffset);
   1342   1.45   mlelstv 					}
   1343    1.1       jtc 				}
   1344    1.1       jtc 				theiroffset = -sp->ttis[j].tt_gmtoff;
   1345   1.87  christos 				if (sp->ttis[j].tt_isdst)
   1346   1.39  christos 					theirstdoffset = theiroffset;
   1347   1.45   mlelstv 				else	theirdstoffset = theiroffset;
   1348    1.1       jtc 			}
   1349    1.1       jtc 			/*
   1350    1.1       jtc 			** Finally, fill in ttis.
   1351    1.1       jtc 			*/
   1352   1.91  christos 			init_ttinfo(&sp->ttis[0], -stdoffset, false, 0);
   1353   1.91  christos 			init_ttinfo(&sp->ttis[1], -dstoffset, true,
   1354   1.91  christos 			    (int)(stdlen + 1));
   1355    1.7       jtc 			sp->typecnt = 2;
   1356   1.82  christos 			sp->defaulttype = 0;
   1357    1.1       jtc 		}
   1358    1.1       jtc 	} else {
   1359    1.1       jtc 		dstlen = 0;
   1360    1.1       jtc 		sp->typecnt = 1;		/* only standard time */
   1361    1.1       jtc 		sp->timecnt = 0;
   1362   1.91  christos 		init_ttinfo(&sp->ttis[0], -stdoffset, false, 0);
   1363   1.91  christos 		init_ttinfo(&sp->ttis[1], 0, false, 0);
   1364   1.82  christos 		sp->defaulttype = 0;
   1365    1.1       jtc 	}
   1366   1.99  christos 	sp->charcnt = (int)charcnt;
   1367    1.1       jtc 	cp = sp->chars;
   1368   1.87  christos 	(void) memcpy(cp, stdname, stdlen);
   1369    1.1       jtc 	cp += stdlen;
   1370    1.1       jtc 	*cp++ = '\0';
   1371    1.1       jtc 	if (dstlen != 0) {
   1372   1.87  christos 		(void) memcpy(cp, dstname, dstlen);
   1373    1.1       jtc 		*(cp + dstlen) = '\0';
   1374    1.1       jtc 	}
   1375   1.87  christos 	return true;
   1376    1.1       jtc }
   1377    1.1       jtc 
   1378    1.1       jtc static void
   1379   1.87  christos gmtload(struct state *const sp)
   1380   1.49  christos {
   1381   1.91  christos 	if (tzload(gmt, sp, true) != 0)
   1382   1.87  christos 		(void) tzparse(gmt, sp, true);
   1383   1.49  christos }
   1384   1.49  christos 
   1385   1.91  christos static int
   1386   1.87  christos zoneinit(struct state *sp, char const *name)
   1387   1.49  christos {
   1388   1.87  christos 	if (name && ! name[0]) {
   1389   1.91  christos 		/*
   1390   1.91  christos 		** User wants it fast rather than right.
   1391   1.91  christos 		*/
   1392   1.91  christos 		sp->leapcnt = 0;		/* so, we're off a little */
   1393   1.87  christos 		sp->timecnt = 0;
   1394  1.118  christos 		sp->typecnt = 1;
   1395   1.91  christos 		sp->charcnt = 0;
   1396   1.91  christos 		sp->goback = sp->goahead = false;
   1397  1.118  christos 		sp->types[0] = sp->types[1] = 0;
   1398   1.91  christos 		init_ttinfo(&sp->ttis[0], 0, false, 0);
   1399   1.87  christos 		strcpy(sp->chars, gmt);
   1400   1.91  christos 		sp->defaulttype = 0;
   1401   1.91  christos 		return 0;
   1402   1.91  christos 	} else {
   1403   1.91  christos 		int err = tzload(name, sp, true);
   1404   1.91  christos 		if (err != 0 && name && name[0] != ':' &&
   1405   1.91  christos 		    tzparse(name, sp, false))
   1406   1.93  christos 			err = 0;
   1407   1.93  christos 		if (err == 0)
   1408   1.93  christos 			scrub_abbrs(sp);
   1409   1.91  christos 		return err;
   1410   1.87  christos 	}
   1411   1.49  christos }
   1412   1.87  christos 
   1413   1.19    kleink static void
   1414   1.87  christos tzsetlcl(char const *name)
   1415    1.1       jtc {
   1416  1.117  christos 	struct state *sp = __lclptr;
   1417   1.87  christos 	int lcl = name ? strlen(name) < sizeof lcl_TZname : -1;
   1418   1.87  christos 	if (lcl < 0 ? lcl_is_set < 0
   1419   1.87  christos 	    : 0 < lcl_is_set && strcmp(lcl_TZname, name) == 0)
   1420    1.1       jtc 		return;
   1421    1.1       jtc 
   1422   1.91  christos 	if (! sp)
   1423  1.117  christos 		__lclptr = sp = malloc(sizeof *__lclptr);
   1424   1.91  christos 	if (sp) {
   1425   1.91  christos 		if (zoneinit(sp, name) != 0)
   1426   1.91  christos 			zoneinit(sp, "");
   1427   1.91  christos 		if (0 < lcl)
   1428   1.91  christos 			strcpy(lcl_TZname, name);
   1429   1.89  christos 	}
   1430   1.45   mlelstv 	settzname();
   1431   1.87  christos 	lcl_is_set = lcl;
   1432    1.1       jtc }
   1433    1.1       jtc 
   1434   1.87  christos #ifdef STD_INSPIRED
   1435    1.1       jtc void
   1436   1.45   mlelstv tzsetwall(void)
   1437   1.19    kleink {
   1438  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   1439   1.87  christos 	tzsetlcl(NULL);
   1440  1.117  christos 	rwlock_unlock(&__lcl_lock);
   1441   1.19    kleink }
   1442   1.87  christos #endif
   1443   1.87  christos 
   1444  1.117  christos void
   1445   1.87  christos tzset_unlocked(void)
   1446   1.87  christos {
   1447   1.87  christos 	tzsetlcl(getenv("TZ"));
   1448   1.87  christos }
   1449   1.19    kleink 
   1450   1.45   mlelstv void
   1451   1.87  christos tzset(void)
   1452    1.1       jtc {
   1453  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   1454   1.87  christos 	tzset_unlocked();
   1455  1.117  christos 	rwlock_unlock(&__lcl_lock);
   1456   1.87  christos }
   1457    1.1       jtc 
   1458   1.87  christos static void
   1459   1.87  christos gmtcheck(void)
   1460   1.87  christos {
   1461   1.87  christos 	static bool gmt_is_set;
   1462  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   1463   1.87  christos 	if (! gmt_is_set) {
   1464   1.87  christos 		gmtptr = malloc(sizeof *gmtptr);
   1465   1.87  christos 		if (gmtptr)
   1466   1.87  christos 			gmtload(gmtptr);
   1467   1.87  christos 		gmt_is_set = true;
   1468    1.1       jtc 	}
   1469  1.117  christos 	rwlock_unlock(&__lcl_lock);
   1470   1.87  christos }
   1471    1.1       jtc 
   1472   1.87  christos #if NETBSD_INSPIRED
   1473    1.1       jtc 
   1474   1.87  christos timezone_t
   1475   1.87  christos tzalloc(const char *name)
   1476   1.87  christos {
   1477   1.87  christos 	timezone_t sp = malloc(sizeof *sp);
   1478   1.91  christos 	if (sp) {
   1479   1.91  christos 		int err = zoneinit(sp, name);
   1480   1.91  christos 		if (err != 0) {
   1481   1.91  christos 			free(sp);
   1482   1.91  christos 			errno = err;
   1483   1.91  christos 			return NULL;
   1484   1.91  christos 		}
   1485   1.91  christos 	}
   1486   1.91  christos 	return sp;
   1487    1.1       jtc }
   1488    1.1       jtc 
   1489   1.19    kleink void
   1490   1.87  christos tzfree(timezone_t sp)
   1491   1.19    kleink {
   1492   1.87  christos 	free(sp);
   1493   1.19    kleink }
   1494   1.19    kleink 
   1495    1.1       jtc /*
   1496   1.87  christos ** NetBSD 6.1.4 has ctime_rz, but omit it because POSIX says ctime and
   1497   1.87  christos ** ctime_r are obsolescent and have potential security problems that
   1498   1.87  christos ** ctime_rz would share.  Callers can instead use localtime_rz + strftime.
   1499   1.87  christos **
   1500   1.87  christos ** NetBSD 6.1.4 has tzgetname, but omit it because it doesn't work
   1501   1.87  christos ** in zones with three or more time zone abbreviations.
   1502   1.87  christos ** Callers can instead use localtime_rz + strftime.
   1503   1.87  christos */
   1504   1.87  christos 
   1505   1.87  christos #endif
   1506   1.87  christos 
   1507   1.87  christos /*
   1508    1.1       jtc ** The easy way to behave "as if no library function calls" localtime
   1509   1.83  christos ** is to not call it, so we drop its guts into "localsub", which can be
   1510   1.83  christos ** freely called. (And no, the PANS doesn't require the above behavior,
   1511    1.1       jtc ** but it *is* desirable.)
   1512    1.1       jtc **
   1513   1.93  christos ** If successful and SETNAME is nonzero,
   1514   1.91  christos ** set the applicable parts of tzname, timezone and altzone;
   1515  1.113  christos ** however, it's OK to omit this step if the timezone is POSIX-compatible,
   1516   1.91  christos ** since in that case tzset should have already done this step correctly.
   1517   1.93  christos ** SETNAME's type is intfast32_t for compatibility with gmtsub,
   1518   1.93  christos ** but it is actually a boolean and its value should be 0 or 1.
   1519    1.1       jtc */
   1520    1.1       jtc 
   1521    1.1       jtc /*ARGSUSED*/
   1522   1.45   mlelstv static struct tm *
   1523   1.93  christos localsub(struct state const *sp, time_t const *timep, int_fast32_t setname,
   1524   1.87  christos 	 struct tm *const tmp)
   1525   1.49  christos {
   1526   1.49  christos 	const struct ttinfo *	ttisp;
   1527   1.49  christos 	int			i;
   1528   1.49  christos 	struct tm *		result;
   1529    1.1       jtc 	const time_t			t = *timep;
   1530    1.1       jtc 
   1531   1.87  christos 	if (sp == NULL) {
   1532   1.91  christos 		/* Don't bother to set tzname etc.; tzset has already done it.  */
   1533   1.91  christos 		return gmtsub(gmtptr, timep, 0, tmp);
   1534   1.87  christos 	}
   1535   1.45   mlelstv 	if ((sp->goback && t < sp->ats[0]) ||
   1536   1.45   mlelstv 		(sp->goahead && t > sp->ats[sp->timecnt - 1])) {
   1537   1.45   mlelstv 			time_t			newt = t;
   1538   1.49  christos 			time_t		seconds;
   1539   1.78  christos 			time_t		years;
   1540   1.45   mlelstv 
   1541   1.45   mlelstv 			if (t < sp->ats[0])
   1542   1.45   mlelstv 				seconds = sp->ats[0] - t;
   1543   1.45   mlelstv 			else	seconds = t - sp->ats[sp->timecnt - 1];
   1544   1.45   mlelstv 			--seconds;
   1545   1.78  christos 			years = (time_t)((seconds / SECSPERREPEAT + 1) * YEARSPERREPEAT);
   1546   1.78  christos 			seconds = (time_t)(years * AVGSECSPERYEAR);
   1547   1.45   mlelstv 			if (t < sp->ats[0])
   1548   1.45   mlelstv 				newt += seconds;
   1549   1.45   mlelstv 			else	newt -= seconds;
   1550   1.45   mlelstv 			if (newt < sp->ats[0] ||
   1551   1.88  christos 				newt > sp->ats[sp->timecnt - 1]) {
   1552   1.88  christos 				errno = EINVAL;
   1553   1.88  christos 				return NULL;	/* "cannot happen" */
   1554   1.88  christos 			}
   1555   1.93  christos 			result = localsub(sp, &newt, setname, tmp);
   1556   1.87  christos 			if (result) {
   1557   1.87  christos 				int_fast64_t newy;
   1558   1.45   mlelstv 
   1559   1.87  christos 				newy = result->tm_year;
   1560   1.45   mlelstv 				if (t < sp->ats[0])
   1561   1.78  christos 					newy -= years;
   1562   1.78  christos 				else	newy += years;
   1563   1.88  christos 				if (! (INT_MIN <= newy && newy <= INT_MAX)) {
   1564   1.88  christos 					errno = EOVERFLOW;
   1565   1.45   mlelstv 					return NULL;
   1566   1.88  christos 				}
   1567   1.87  christos 				result->tm_year = (int)newy;
   1568   1.45   mlelstv 			}
   1569   1.45   mlelstv 			return result;
   1570    1.1       jtc 	}
   1571    1.1       jtc 	if (sp->timecnt == 0 || t < sp->ats[0]) {
   1572   1.74  christos 		i = sp->defaulttype;
   1573    1.1       jtc 	} else {
   1574   1.49  christos 		int	lo = 1;
   1575   1.49  christos 		int	hi = sp->timecnt;
   1576   1.45   mlelstv 
   1577   1.45   mlelstv 		while (lo < hi) {
   1578   1.49  christos 			int	mid = (lo + hi) / 2;
   1579   1.45   mlelstv 
   1580   1.45   mlelstv 			if (t < sp->ats[mid])
   1581   1.45   mlelstv 				hi = mid;
   1582   1.45   mlelstv 			else	lo = mid + 1;
   1583   1.45   mlelstv 		}
   1584   1.45   mlelstv 		i = (int) sp->types[lo - 1];
   1585    1.1       jtc 	}
   1586    1.1       jtc 	ttisp = &sp->ttis[i];
   1587    1.1       jtc 	/*
   1588    1.1       jtc 	** To get (wrong) behavior that's compatible with System V Release 2.0
   1589    1.1       jtc 	** you'd replace the statement below with
   1590    1.1       jtc 	**	t += ttisp->tt_gmtoff;
   1591    1.1       jtc 	**	timesub(&t, 0L, sp, tmp);
   1592    1.1       jtc 	*/
   1593   1.87  christos 	result = timesub(&t, ttisp->tt_gmtoff, sp, tmp);
   1594   1.87  christos 	if (result) {
   1595   1.92  christos 		result->tm_isdst = ttisp->tt_isdst;
   1596   1.92  christos #ifdef TM_ZONE
   1597   1.93  christos 		result->TM_ZONE = __UNCONST(&sp->chars[ttisp->tt_abbrind]);
   1598   1.92  christos #endif /* defined TM_ZONE */
   1599   1.93  christos 		if (setname)
   1600   1.93  christos 			update_tzname_etc(sp, ttisp);
   1601   1.87  christos 	}
   1602   1.45   mlelstv 	return result;
   1603    1.1       jtc }
   1604    1.1       jtc 
   1605   1.87  christos #if NETBSD_INSPIRED
   1606   1.49  christos 
   1607    1.1       jtc struct tm *
   1608   1.87  christos localtime_rz(timezone_t sp, time_t const *timep, struct tm *tmp)
   1609   1.87  christos {
   1610   1.87  christos 	return localsub(sp, timep, 0, tmp);
   1611   1.87  christos }
   1612   1.87  christos 
   1613   1.87  christos #endif
   1614   1.87  christos 
   1615   1.87  christos static struct tm *
   1616   1.87  christos localtime_tzset(time_t const *timep, struct tm *tmp, bool setname)
   1617    1.1       jtc {
   1618  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   1619   1.87  christos 	if (setname || !lcl_is_set)
   1620   1.87  christos 		tzset_unlocked();
   1621  1.117  christos 	tmp = localsub(__lclptr, timep, setname, tmp);
   1622  1.117  christos 	rwlock_unlock(&__lcl_lock);
   1623   1.49  christos 	return tmp;
   1624    1.1       jtc }
   1625    1.1       jtc 
   1626   1.49  christos struct tm *
   1627   1.96  christos localtime(const time_t *timep)
   1628   1.49  christos {
   1629   1.87  christos 	return localtime_tzset(timep, &tm, true);
   1630   1.49  christos }
   1631   1.35    kleink 
   1632   1.18    kleink struct tm *
   1633   1.87  christos localtime_r(const time_t * __restrict timep, struct tm *tmp)
   1634   1.18    kleink {
   1635  1.101  christos 	return localtime_tzset(timep, tmp, true);
   1636   1.18    kleink }
   1637   1.18    kleink 
   1638   1.18    kleink /*
   1639    1.1       jtc ** gmtsub is to gmtime as localsub is to localtime.
   1640    1.1       jtc */
   1641    1.1       jtc 
   1642   1.45   mlelstv static struct tm *
   1643   1.87  christos gmtsub(struct state const *sp, const time_t *timep, int_fast32_t offset,
   1644   1.87  christos        struct tm *tmp)
   1645    1.1       jtc {
   1646   1.49  christos 	struct tm *	result;
   1647   1.19    kleink 
   1648   1.87  christos 	result = timesub(timep, offset, gmtptr, tmp);
   1649    1.1       jtc #ifdef TM_ZONE
   1650    1.1       jtc 	/*
   1651    1.1       jtc 	** Could get fancy here and deliver something such as
   1652  1.104  christos 	** "+xx" or "-xx" if offset is non-zero,
   1653    1.1       jtc 	** but this is no time for a treasure hunt.
   1654    1.1       jtc 	*/
   1655   1.88  christos 	if (result)
   1656   1.88  christos 		result->TM_ZONE = offset ? __UNCONST(wildabbr) : gmtptr ?
   1657   1.88  christos 		    gmtptr->chars : __UNCONST(gmt);
   1658    1.1       jtc #endif /* defined TM_ZONE */
   1659   1.45   mlelstv 	return result;
   1660    1.1       jtc }
   1661    1.1       jtc 
   1662    1.1       jtc 
   1663   1.18    kleink /*
   1664   1.35    kleink ** Re-entrant version of gmtime.
   1665   1.35    kleink */
   1666   1.35    kleink 
   1667   1.18    kleink struct tm *
   1668   1.96  christos gmtime_r(const time_t *timep, struct tm *tmp)
   1669   1.18    kleink {
   1670   1.87  christos 	gmtcheck();
   1671   1.90  christos 	return gmtsub(NULL, timep, 0, tmp);
   1672   1.18    kleink }
   1673   1.18    kleink 
   1674   1.96  christos struct tm *
   1675   1.96  christos gmtime(const time_t *timep)
   1676   1.96  christos {
   1677   1.96  christos 	return gmtime_r(timep, &tm);
   1678   1.96  christos }
   1679    1.1       jtc #ifdef STD_INSPIRED
   1680    1.1       jtc 
   1681    1.1       jtc struct tm *
   1682   1.96  christos offtime(const time_t *timep, long offset)
   1683    1.1       jtc {
   1684   1.87  christos 	gmtcheck();
   1685   1.90  christos 	return gmtsub(gmtptr, timep, (int_fast32_t)offset, &tm);
   1686   1.49  christos }
   1687   1.49  christos 
   1688   1.49  christos struct tm *
   1689   1.49  christos offtime_r(const time_t *timep, long offset, struct tm *tmp)
   1690   1.49  christos {
   1691   1.87  christos 	gmtcheck();
   1692   1.90  christos 	return gmtsub(NULL, timep, (int_fast32_t)offset, tmp);
   1693    1.1       jtc }
   1694    1.1       jtc 
   1695    1.1       jtc #endif /* defined STD_INSPIRED */
   1696    1.1       jtc 
   1697  1.109  christos #if TZ_TIME_T
   1698  1.105  christos 
   1699  1.109  christos # if USG_COMPAT
   1700  1.105  christos #  define daylight 0
   1701  1.105  christos #  define timezone 0
   1702  1.105  christos # endif
   1703  1.105  christos # ifndef ALTZONE
   1704  1.105  christos #  define altzone 0
   1705  1.105  christos # endif
   1706  1.105  christos 
   1707  1.105  christos /* Convert from the underlying system's time_t to the ersatz time_tz,
   1708  1.105  christos    which is called 'time_t' in this file.  Typically, this merely
   1709  1.105  christos    converts the time's integer width.  On some platforms, the system
   1710  1.105  christos    time is local time not UT, or uses some epoch other than the POSIX
   1711  1.105  christos    epoch.
   1712  1.105  christos 
   1713  1.105  christos    Although this code appears to define a function named 'time' that
   1714  1.105  christos    returns time_t, the macros in private.h cause this code to actually
   1715  1.105  christos    define a function named 'tz_time' that returns tz_time_t.  The call
   1716  1.105  christos    to sys_time invokes the underlying system's 'time' function.  */
   1717  1.105  christos 
   1718  1.105  christos time_t
   1719  1.105  christos time(time_t *p)
   1720  1.105  christos {
   1721  1.105  christos   time_t r = sys_time(0);
   1722  1.105  christos   if (r != (time_t) -1) {
   1723  1.105  christos     int_fast32_t offset = EPOCH_LOCAL ? (daylight ? timezone : altzone) : 0;
   1724  1.105  christos     if (increment_overflow32(&offset, -EPOCH_OFFSET)
   1725  1.105  christos 	|| increment_overflow_time (&r, offset)) {
   1726  1.105  christos       errno = EOVERFLOW;
   1727  1.105  christos       r = -1;
   1728  1.105  christos     }
   1729  1.105  christos   }
   1730  1.105  christos   if (p)
   1731  1.105  christos     *p = r;
   1732  1.105  christos   return r;
   1733  1.105  christos }
   1734  1.105  christos #endif
   1735  1.105  christos 
   1736   1.45   mlelstv /*
   1737   1.45   mlelstv ** Return the number of leap years through the end of the given year
   1738   1.45   mlelstv ** where, to make the math easy, the answer for year zero is defined as zero.
   1739   1.45   mlelstv */
   1740  1.109  christos static int
   1741  1.109  christos leaps_thru_end_of_nonneg(int y)
   1742  1.109  christos {
   1743  1.109  christos 	return y / 4 - y / 100 + y / 400;
   1744  1.109  christos }
   1745   1.45   mlelstv 
   1746   1.87  christos static int ATTRIBUTE_PURE
   1747   1.49  christos leaps_thru_end_of(const int y)
   1748   1.45   mlelstv {
   1749  1.109  christos 	return (y < 0
   1750  1.109  christos 		? -1 - leaps_thru_end_of_nonneg(-1 - y)
   1751  1.109  christos 		: leaps_thru_end_of_nonneg(y));
   1752   1.45   mlelstv }
   1753   1.45   mlelstv 
   1754   1.45   mlelstv static struct tm *
   1755   1.96  christos timesub(const time_t *timep, int_fast32_t offset,
   1756   1.97       riz     const struct state *sp, struct tm *tmp)
   1757   1.49  christos {
   1758   1.49  christos 	const struct lsinfo *	lp;
   1759   1.49  christos 	time_t			tdays;
   1760   1.49  christos 	int			idays;	/* unsigned would be so 2003 */
   1761   1.74  christos 	int_fast64_t		rem;
   1762   1.49  christos 	int			y;
   1763   1.49  christos 	const int *		ip;
   1764   1.74  christos 	int_fast64_t		corr;
   1765  1.108       kre 	int			hit;
   1766   1.49  christos 	int			i;
   1767    1.1       jtc 
   1768    1.1       jtc 	corr = 0;
   1769   1.87  christos 	hit = false;
   1770    1.1       jtc 	i = (sp == NULL) ? 0 : sp->leapcnt;
   1771    1.1       jtc 	while (--i >= 0) {
   1772    1.1       jtc 		lp = &sp->lsis[i];
   1773    1.1       jtc 		if (*timep >= lp->ls_trans) {
   1774    1.1       jtc 			corr = lp->ls_corr;
   1775  1.109  christos 			hit = (*timep == lp->ls_trans
   1776  1.109  christos 			       && (i == 0 ? 0 : lp[-1].ls_corr) < corr);
   1777    1.1       jtc 			break;
   1778    1.1       jtc 		}
   1779    1.1       jtc 	}
   1780   1.45   mlelstv 	y = EPOCH_YEAR;
   1781   1.66  christos 	tdays = (time_t)(*timep / SECSPERDAY);
   1782   1.96  christos 	rem = *timep % SECSPERDAY;
   1783   1.45   mlelstv 	while (tdays < 0 || tdays >= year_lengths[isleap(y)]) {
   1784   1.45   mlelstv 		int		newy;
   1785   1.49  christos 		time_t	tdelta;
   1786   1.49  christos 		int	idelta;
   1787   1.49  christos 		int	leapdays;
   1788   1.45   mlelstv 
   1789   1.45   mlelstv 		tdelta = tdays / DAYSPERLYEAR;
   1790   1.78  christos 		if (! ((! TYPE_SIGNED(time_t) || INT_MIN <= tdelta)
   1791   1.78  christos 		       && tdelta <= INT_MAX))
   1792   1.91  christos 			goto out_of_range;
   1793   1.81  christos 		_DIAGASSERT(__type_fit(int, tdelta));
   1794   1.81  christos 		idelta = (int)tdelta;
   1795   1.45   mlelstv 		if (idelta == 0)
   1796   1.45   mlelstv 			idelta = (tdays < 0) ? -1 : 1;
   1797   1.45   mlelstv 		newy = y;
   1798   1.51  christos 		if (increment_overflow(&newy, idelta))
   1799   1.91  christos 			goto out_of_range;
   1800   1.45   mlelstv 		leapdays = leaps_thru_end_of(newy - 1) -
   1801   1.45   mlelstv 			leaps_thru_end_of(y - 1);
   1802   1.45   mlelstv 		tdays -= ((time_t) newy - y) * DAYSPERNYEAR;
   1803   1.45   mlelstv 		tdays -= leapdays;
   1804   1.45   mlelstv 		y = newy;
   1805   1.45   mlelstv 	}
   1806   1.45   mlelstv 	/*
   1807   1.45   mlelstv 	** Given the range, we can now fearlessly cast...
   1808   1.45   mlelstv 	*/
   1809   1.45   mlelstv 	idays = (int) tdays;
   1810   1.45   mlelstv 	rem += offset - corr;
   1811    1.1       jtc 	while (rem < 0) {
   1812    1.1       jtc 		rem += SECSPERDAY;
   1813   1.45   mlelstv 		--idays;
   1814    1.1       jtc 	}
   1815    1.1       jtc 	while (rem >= SECSPERDAY) {
   1816    1.1       jtc 		rem -= SECSPERDAY;
   1817   1.45   mlelstv 		++idays;
   1818   1.45   mlelstv 	}
   1819   1.45   mlelstv 	while (idays < 0) {
   1820   1.51  christos 		if (increment_overflow(&y, -1))
   1821   1.91  christos 			goto out_of_range;
   1822   1.45   mlelstv 		idays += year_lengths[isleap(y)];
   1823    1.1       jtc 	}
   1824   1.45   mlelstv 	while (idays >= year_lengths[isleap(y)]) {
   1825   1.45   mlelstv 		idays -= year_lengths[isleap(y)];
   1826   1.51  christos 		if (increment_overflow(&y, 1))
   1827   1.91  christos 			goto out_of_range;
   1828   1.45   mlelstv 	}
   1829   1.45   mlelstv 	tmp->tm_year = y;
   1830   1.51  christos 	if (increment_overflow(&tmp->tm_year, -TM_YEAR_BASE))
   1831   1.91  christos 		goto out_of_range;
   1832   1.45   mlelstv 	tmp->tm_yday = idays;
   1833   1.45   mlelstv 	/*
   1834   1.45   mlelstv 	** The "extra" mods below avoid overflow problems.
   1835   1.45   mlelstv 	*/
   1836   1.45   mlelstv 	tmp->tm_wday = EPOCH_WDAY +
   1837   1.45   mlelstv 		((y - EPOCH_YEAR) % DAYSPERWEEK) *
   1838   1.45   mlelstv 		(DAYSPERNYEAR % DAYSPERWEEK) +
   1839   1.45   mlelstv 		leaps_thru_end_of(y - 1) -
   1840   1.45   mlelstv 		leaps_thru_end_of(EPOCH_YEAR - 1) +
   1841   1.45   mlelstv 		idays;
   1842   1.45   mlelstv 	tmp->tm_wday %= DAYSPERWEEK;
   1843   1.45   mlelstv 	if (tmp->tm_wday < 0)
   1844   1.45   mlelstv 		tmp->tm_wday += DAYSPERWEEK;
   1845    1.1       jtc 	tmp->tm_hour = (int) (rem / SECSPERHOUR);
   1846   1.45   mlelstv 	rem %= SECSPERHOUR;
   1847    1.1       jtc 	tmp->tm_min = (int) (rem / SECSPERMIN);
   1848    1.6       jtc 	/*
   1849    1.6       jtc 	** A positive leap second requires a special
   1850   1.45   mlelstv 	** representation. This uses "... ??:59:60" et seq.
   1851    1.6       jtc 	*/
   1852    1.6       jtc 	tmp->tm_sec = (int) (rem % SECSPERMIN) + hit;
   1853   1.45   mlelstv 	ip = mon_lengths[isleap(y)];
   1854   1.45   mlelstv 	for (tmp->tm_mon = 0; idays >= ip[tmp->tm_mon]; ++(tmp->tm_mon))
   1855   1.45   mlelstv 		idays -= ip[tmp->tm_mon];
   1856   1.45   mlelstv 	tmp->tm_mday = (int) (idays + 1);
   1857    1.1       jtc 	tmp->tm_isdst = 0;
   1858    1.1       jtc #ifdef TM_GMTOFF
   1859    1.1       jtc 	tmp->TM_GMTOFF = offset;
   1860    1.1       jtc #endif /* defined TM_GMTOFF */
   1861   1.45   mlelstv 	return tmp;
   1862   1.91  christos out_of_range:
   1863   1.88  christos 	errno = EOVERFLOW;
   1864   1.88  christos 	return NULL;
   1865    1.1       jtc }
   1866    1.1       jtc 
   1867    1.1       jtc char *
   1868   1.96  christos ctime(const time_t *timep)
   1869    1.1       jtc {
   1870    1.1       jtc /*
   1871    1.1       jtc ** Section 4.12.3.2 of X3.159-1989 requires that
   1872   1.18    kleink **	The ctime function converts the calendar time pointed to by timer
   1873   1.45   mlelstv **	to local time in the form of a string. It is equivalent to
   1874    1.1       jtc **		asctime(localtime(timer))
   1875    1.1       jtc */
   1876   1.91  christos 	struct tm *tmp = localtime(timep);
   1877   1.91  christos 	return tmp ? asctime(tmp) : NULL;
   1878   1.18    kleink }
   1879   1.18    kleink 
   1880   1.18    kleink char *
   1881   1.96  christos ctime_r(const time_t *timep, char *buf)
   1882   1.18    kleink {
   1883   1.91  christos 	struct tm mytm;
   1884   1.91  christos 	struct tm *tmp = localtime_r(timep, &mytm);
   1885   1.91  christos 	return tmp ? asctime_r(tmp, buf) : NULL;
   1886    1.1       jtc }
   1887    1.1       jtc 
   1888   1.49  christos char *
   1889   1.49  christos ctime_rz(const timezone_t sp, const time_t * timep, char *buf)
   1890   1.49  christos {
   1891   1.49  christos 	struct tm	mytm, *rtm;
   1892   1.49  christos 
   1893   1.49  christos 	rtm = localtime_rz(sp, timep, &mytm);
   1894   1.49  christos 	if (rtm == NULL)
   1895   1.49  christos 		return NULL;
   1896   1.49  christos 	return asctime_r(rtm, buf);
   1897   1.49  christos }
   1898   1.49  christos 
   1899    1.1       jtc /*
   1900    1.1       jtc ** Adapted from code provided by Robert Elz, who writes:
   1901    1.1       jtc **	The "best" way to do mktime I think is based on an idea of Bob
   1902    1.7       jtc **	Kridle's (so its said...) from a long time ago.
   1903   1.45   mlelstv **	It does a binary search of the time_t space. Since time_t's are
   1904    1.1       jtc **	just 32 bits, its a max of 32 iterations (even at 64 bits it
   1905    1.1       jtc **	would still be very reasonable).
   1906    1.1       jtc */
   1907    1.1       jtc 
   1908    1.1       jtc #ifndef WRONG
   1909   1.51  christos #define WRONG	((time_t)-1)
   1910    1.1       jtc #endif /* !defined WRONG */
   1911    1.1       jtc 
   1912    1.1       jtc /*
   1913   1.87  christos ** Normalize logic courtesy Paul Eggert.
   1914    1.1       jtc */
   1915    1.1       jtc 
   1916   1.87  christos static bool
   1917   1.96  christos increment_overflow(int *ip, int j)
   1918    1.1       jtc {
   1919   1.87  christos 	int const	i = *ip;
   1920    1.1       jtc 
   1921   1.58  christos 	/*
   1922   1.58  christos 	** If i >= 0 there can only be overflow if i + j > INT_MAX
   1923   1.58  christos 	** or if j > INT_MAX - i; given i >= 0, INT_MAX - i cannot overflow.
   1924   1.58  christos 	** If i < 0 there can only be overflow if i + j < INT_MIN
   1925   1.58  christos 	** or if j < INT_MIN - i; given i < 0, INT_MIN - i cannot overflow.
   1926   1.58  christos 	*/
   1927   1.58  christos 	if ((i >= 0) ? (j > INT_MAX - i) : (j < INT_MIN - i))
   1928   1.87  christos 		return true;
   1929   1.58  christos 	*ip += j;
   1930   1.87  christos 	return false;
   1931    1.1       jtc }
   1932    1.1       jtc 
   1933   1.87  christos static bool
   1934   1.74  christos increment_overflow32(int_fast32_t *const lp, int const m)
   1935   1.45   mlelstv {
   1936   1.87  christos 	int_fast32_t const l = *lp;
   1937   1.45   mlelstv 
   1938   1.74  christos 	if ((l >= 0) ? (m > INT_FAST32_MAX - l) : (m < INT_FAST32_MIN - l))
   1939   1.87  christos 		return true;
   1940   1.58  christos 	*lp += m;
   1941   1.87  christos 	return false;
   1942   1.45   mlelstv }
   1943   1.45   mlelstv 
   1944   1.87  christos static bool
   1945   1.81  christos increment_overflow_time(time_t *tp, int_fast32_t j)
   1946   1.81  christos {
   1947   1.81  christos 	/*
   1948   1.81  christos 	** This is like
   1949  1.109  christos 	** 'if (! (TIME_T_MIN <= *tp + j && *tp + j <= TIME_T_MAX)) ...',
   1950   1.81  christos 	** except that it does the right thing even if *tp + j would overflow.
   1951   1.81  christos 	*/
   1952   1.81  christos 	if (! (j < 0
   1953  1.109  christos 	       ? (TYPE_SIGNED(time_t) ? TIME_T_MIN - j <= *tp : -1 - j < *tp)
   1954  1.109  christos 	       : *tp <= TIME_T_MAX - j))
   1955   1.87  christos 		return true;
   1956   1.81  christos 	*tp += j;
   1957   1.87  christos 	return false;
   1958   1.81  christos }
   1959   1.81  christos 
   1960   1.87  christos static bool
   1961   1.49  christos normalize_overflow(int *const tensptr, int *const unitsptr, const int base)
   1962    1.1       jtc {
   1963   1.49  christos 	int	tensdelta;
   1964    1.1       jtc 
   1965    1.1       jtc 	tensdelta = (*unitsptr >= 0) ?
   1966    1.1       jtc 		(*unitsptr / base) :
   1967    1.1       jtc 		(-1 - (-1 - *unitsptr) / base);
   1968    1.1       jtc 	*unitsptr -= tensdelta * base;
   1969    1.1       jtc 	return increment_overflow(tensptr, tensdelta);
   1970    1.1       jtc }
   1971    1.1       jtc 
   1972   1.87  christos static bool
   1973   1.96  christos normalize_overflow32(int_fast32_t *tensptr, int *unitsptr, int base)
   1974   1.45   mlelstv {
   1975   1.49  christos 	int	tensdelta;
   1976   1.45   mlelstv 
   1977   1.45   mlelstv 	tensdelta = (*unitsptr >= 0) ?
   1978   1.45   mlelstv 		(*unitsptr / base) :
   1979   1.45   mlelstv 		(-1 - (-1 - *unitsptr) / base);
   1980   1.45   mlelstv 	*unitsptr -= tensdelta * base;
   1981   1.74  christos 	return increment_overflow32(tensptr, tensdelta);
   1982   1.45   mlelstv }
   1983   1.45   mlelstv 
   1984   1.45   mlelstv static int
   1985   1.87  christos tmcomp(const struct tm *const atmp,
   1986   1.87  christos        const struct tm *const btmp)
   1987    1.1       jtc {
   1988   1.49  christos 	int	result;
   1989    1.1       jtc 
   1990   1.78  christos 	if (atmp->tm_year != btmp->tm_year)
   1991   1.78  christos 		return atmp->tm_year < btmp->tm_year ? -1 : 1;
   1992   1.78  christos 	if ((result = (atmp->tm_mon - btmp->tm_mon)) == 0 &&
   1993    1.1       jtc 		(result = (atmp->tm_mday - btmp->tm_mday)) == 0 &&
   1994    1.1       jtc 		(result = (atmp->tm_hour - btmp->tm_hour)) == 0 &&
   1995    1.1       jtc 		(result = (atmp->tm_min - btmp->tm_min)) == 0)
   1996    1.1       jtc 			result = atmp->tm_sec - btmp->tm_sec;
   1997    1.1       jtc 	return result;
   1998    1.1       jtc }
   1999    1.1       jtc 
   2000    1.1       jtc static time_t
   2001   1.87  christos time2sub(struct tm *const tmp,
   2002   1.87  christos 	 struct tm *(*funcp)(struct state const *, time_t const *,
   2003   1.87  christos 			     int_fast32_t, struct tm *),
   2004   1.87  christos 	 struct state const *sp,
   2005   1.87  christos  	 const int_fast32_t offset,
   2006   1.87  christos 	 bool *okayp,
   2007   1.87  christos 	 bool do_norm_secs)
   2008   1.49  christos {
   2009   1.49  christos 	int			dir;
   2010   1.49  christos 	int			i, j;
   2011   1.49  christos 	int			saved_seconds;
   2012   1.74  christos 	int_fast32_t		li;
   2013   1.49  christos 	time_t			lo;
   2014   1.49  christos 	time_t			hi;
   2015   1.61  christos #ifdef NO_ERROR_IN_DST_GAP
   2016   1.61  christos 	time_t			ilo;
   2017   1.61  christos #endif
   2018   1.74  christos 	int_fast32_t		y;
   2019   1.74  christos 	time_t			newt;
   2020   1.74  christos 	time_t			t;
   2021   1.74  christos 	struct tm		yourtm, mytm;
   2022    1.1       jtc 
   2023   1.87  christos 	*okayp = false;
   2024    1.1       jtc 	yourtm = *tmp;
   2025   1.64  christos #ifdef NO_ERROR_IN_DST_GAP
   2026   1.64  christos again:
   2027   1.64  christos #endif
   2028   1.13       jtc 	if (do_norm_secs) {
   2029   1.13       jtc 		if (normalize_overflow(&yourtm.tm_min, &yourtm.tm_sec,
   2030   1.60  christos 		    SECSPERMIN))
   2031   1.91  christos 			goto out_of_range;
   2032   1.13       jtc 	}
   2033    1.1       jtc 	if (normalize_overflow(&yourtm.tm_hour, &yourtm.tm_min, MINSPERHOUR))
   2034   1.91  christos 		goto out_of_range;
   2035    1.1       jtc 	if (normalize_overflow(&yourtm.tm_mday, &yourtm.tm_hour, HOURSPERDAY))
   2036   1.91  christos 		goto out_of_range;
   2037   1.45   mlelstv 	y = yourtm.tm_year;
   2038   1.74  christos 	if (normalize_overflow32(&y, &yourtm.tm_mon, MONSPERYEAR))
   2039   1.91  christos 		goto out_of_range;
   2040    1.1       jtc 	/*
   2041   1.45   mlelstv 	** Turn y into an actual year number for now.
   2042    1.1       jtc 	** It is converted back to an offset from TM_YEAR_BASE later.
   2043    1.1       jtc 	*/
   2044   1.74  christos 	if (increment_overflow32(&y, TM_YEAR_BASE))
   2045   1.91  christos 		goto out_of_range;
   2046    1.1       jtc 	while (yourtm.tm_mday <= 0) {
   2047   1.74  christos 		if (increment_overflow32(&y, -1))
   2048   1.91  christos 			goto out_of_range;
   2049   1.45   mlelstv 		li = y + (1 < yourtm.tm_mon);
   2050   1.45   mlelstv 		yourtm.tm_mday += year_lengths[isleap(li)];
   2051    1.1       jtc 	}
   2052    1.1       jtc 	while (yourtm.tm_mday > DAYSPERLYEAR) {
   2053   1.45   mlelstv 		li = y + (1 < yourtm.tm_mon);
   2054   1.45   mlelstv 		yourtm.tm_mday -= year_lengths[isleap(li)];
   2055   1.74  christos 		if (increment_overflow32(&y, 1))
   2056   1.91  christos 			goto out_of_range;
   2057    1.1       jtc 	}
   2058    1.1       jtc 	for ( ; ; ) {
   2059   1.45   mlelstv 		i = mon_lengths[isleap(y)][yourtm.tm_mon];
   2060    1.1       jtc 		if (yourtm.tm_mday <= i)
   2061    1.1       jtc 			break;
   2062    1.1       jtc 		yourtm.tm_mday -= i;
   2063    1.1       jtc 		if (++yourtm.tm_mon >= MONSPERYEAR) {
   2064    1.1       jtc 			yourtm.tm_mon = 0;
   2065   1.74  christos 			if (increment_overflow32(&y, 1))
   2066   1.91  christos 				goto out_of_range;
   2067    1.1       jtc 		}
   2068    1.1       jtc 	}
   2069   1.74  christos 	if (increment_overflow32(&y, -TM_YEAR_BASE))
   2070   1.91  christos 		goto out_of_range;
   2071   1.87  christos 	if (! (INT_MIN <= y && y <= INT_MAX))
   2072   1.91  christos 		goto out_of_range;
   2073   1.66  christos 	yourtm.tm_year = (int)y;
   2074   1.29    kleink 	if (yourtm.tm_sec >= 0 && yourtm.tm_sec < SECSPERMIN)
   2075   1.29    kleink 		saved_seconds = 0;
   2076   1.45   mlelstv 	else if (y + TM_YEAR_BASE < EPOCH_YEAR) {
   2077    1.1       jtc 		/*
   2078    1.1       jtc 		** We can't set tm_sec to 0, because that might push the
   2079    1.1       jtc 		** time below the minimum representable time.
   2080    1.1       jtc 		** Set tm_sec to 59 instead.
   2081    1.1       jtc 		** This assumes that the minimum representable time is
   2082    1.1       jtc 		** not in the same minute that a leap second was deleted from,
   2083    1.1       jtc 		** which is a safer assumption than using 58 would be.
   2084    1.1       jtc 		*/
   2085    1.1       jtc 		if (increment_overflow(&yourtm.tm_sec, 1 - SECSPERMIN))
   2086   1.91  christos 			goto out_of_range;
   2087    1.1       jtc 		saved_seconds = yourtm.tm_sec;
   2088    1.1       jtc 		yourtm.tm_sec = SECSPERMIN - 1;
   2089    1.1       jtc 	} else {
   2090    1.1       jtc 		saved_seconds = yourtm.tm_sec;
   2091    1.1       jtc 		yourtm.tm_sec = 0;
   2092    1.1       jtc 	}
   2093    1.1       jtc 	/*
   2094   1.45   mlelstv 	** Do a binary search (this works whatever time_t's type is).
   2095    1.1       jtc 	*/
   2096  1.109  christos 	lo = TIME_T_MIN;
   2097  1.109  christos 	hi = TIME_T_MAX;
   2098   1.61  christos #ifdef NO_ERROR_IN_DST_GAP
   2099   1.61  christos 	ilo = lo;
   2100   1.61  christos #endif
   2101    1.1       jtc 	for ( ; ; ) {
   2102   1.45   mlelstv 		t = lo / 2 + hi / 2;
   2103   1.45   mlelstv 		if (t < lo)
   2104   1.45   mlelstv 			t = lo;
   2105   1.45   mlelstv 		else if (t > hi)
   2106   1.45   mlelstv 			t = hi;
   2107   1.87  christos 		if (! funcp(sp, &t, offset, &mytm)) {
   2108   1.45   mlelstv 			/*
   2109   1.45   mlelstv 			** Assume that t is too extreme to be represented in
   2110   1.45   mlelstv 			** a struct tm; arrange things so that it is less
   2111   1.45   mlelstv 			** extreme on the next pass.
   2112   1.45   mlelstv 			*/
   2113   1.45   mlelstv 			dir = (t > 0) ? 1 : -1;
   2114   1.45   mlelstv 		} else	dir = tmcomp(&mytm, &yourtm);
   2115    1.1       jtc 		if (dir != 0) {
   2116   1.45   mlelstv 			if (t == lo) {
   2117  1.109  christos 				if (t == TIME_T_MAX)
   2118   1.91  christos 					goto out_of_range;
   2119   1.45   mlelstv 				++t;
   2120   1.45   mlelstv 				++lo;
   2121   1.45   mlelstv 			} else if (t == hi) {
   2122  1.109  christos 				if (t == TIME_T_MIN)
   2123   1.91  christos 					goto out_of_range;
   2124   1.45   mlelstv 				--t;
   2125   1.45   mlelstv 				--hi;
   2126   1.45   mlelstv 			}
   2127   1.59  christos #ifdef NO_ERROR_IN_DST_GAP
   2128   1.64  christos 			if (ilo != lo && lo - 1 == hi && yourtm.tm_isdst < 0 &&
   2129   1.64  christos 			    do_norm_secs) {
   2130   1.59  christos 				for (i = sp->typecnt - 1; i >= 0; --i) {
   2131   1.59  christos 					for (j = sp->typecnt - 1; j >= 0; --j) {
   2132   1.64  christos 						time_t off;
   2133   1.59  christos 						if (sp->ttis[j].tt_isdst ==
   2134   1.59  christos 						    sp->ttis[i].tt_isdst)
   2135   1.59  christos 							continue;
   2136   1.59  christos 						off = sp->ttis[j].tt_gmtoff -
   2137   1.59  christos 						    sp->ttis[i].tt_gmtoff;
   2138   1.64  christos 						yourtm.tm_sec += off < 0 ?
   2139   1.64  christos 						    -off : off;
   2140   1.64  christos 						goto again;
   2141   1.59  christos 					}
   2142   1.59  christos 				}
   2143   1.59  christos 			}
   2144   1.59  christos #endif
   2145   1.45   mlelstv 			if (lo > hi)
   2146   1.60  christos 				goto invalid;
   2147   1.45   mlelstv 			if (dir > 0)
   2148   1.45   mlelstv 				hi = t;
   2149   1.45   mlelstv 			else	lo = t;
   2150    1.1       jtc 			continue;
   2151    1.1       jtc 		}
   2152   1.87  christos #if defined TM_GMTOFF && ! UNINIT_TRAP
   2153   1.87  christos 		if (mytm.TM_GMTOFF != yourtm.TM_GMTOFF
   2154   1.87  christos 		    && (yourtm.TM_GMTOFF < 0
   2155   1.87  christos 			? (-SECSPERDAY <= yourtm.TM_GMTOFF
   2156   1.87  christos 			   && (mytm.TM_GMTOFF <=
   2157   1.87  christos 			       (/*CONSTCOND*/SMALLEST (INT_FAST32_MAX, LONG_MAX)
   2158   1.87  christos 				+ yourtm.TM_GMTOFF)))
   2159   1.87  christos 			: (yourtm.TM_GMTOFF <= SECSPERDAY
   2160   1.87  christos 			   && ((/*CONSTCOND*/BIGGEST (INT_FAST32_MIN, LONG_MIN)
   2161   1.87  christos 				+ yourtm.TM_GMTOFF)
   2162   1.87  christos 			       <= mytm.TM_GMTOFF)))) {
   2163  1.111  christos 		  /* MYTM matches YOURTM except with the wrong UT offset.
   2164   1.87  christos 		     YOURTM.TM_GMTOFF is plausible, so try it instead.
   2165   1.87  christos 		     It's OK if YOURTM.TM_GMTOFF contains uninitialized data,
   2166   1.87  christos 		     since the guess gets checked.  */
   2167   1.87  christos 		  time_t altt = t;
   2168   1.87  christos 		  int_fast32_t diff = (int_fast32_t)
   2169   1.87  christos 		      (mytm.TM_GMTOFF - yourtm.TM_GMTOFF);
   2170   1.87  christos 		  if (!increment_overflow_time(&altt, diff)) {
   2171   1.87  christos 		    struct tm alttm;
   2172   1.87  christos 		    if (! funcp(sp, &altt, offset, &alttm)
   2173   1.87  christos 			&& alttm.tm_isdst == mytm.tm_isdst
   2174   1.87  christos 			&& alttm.TM_GMTOFF == yourtm.TM_GMTOFF
   2175   1.87  christos 			&& tmcomp(&alttm, &yourtm)) {
   2176   1.87  christos 		      t = altt;
   2177   1.87  christos 		      mytm = alttm;
   2178   1.87  christos 		    }
   2179   1.87  christos 		  }
   2180   1.87  christos 		}
   2181   1.87  christos #endif
   2182    1.1       jtc 		if (yourtm.tm_isdst < 0 || mytm.tm_isdst == yourtm.tm_isdst)
   2183    1.1       jtc 			break;
   2184    1.1       jtc 		/*
   2185    1.1       jtc 		** Right time, wrong type.
   2186    1.1       jtc 		** Hunt for right time, right type.
   2187    1.1       jtc 		** It's okay to guess wrong since the guess
   2188    1.1       jtc 		** gets checked.
   2189    1.1       jtc 		*/
   2190    1.1       jtc 		if (sp == NULL)
   2191   1.60  christos 			goto invalid;
   2192    1.5       jtc 		for (i = sp->typecnt - 1; i >= 0; --i) {
   2193    1.1       jtc 			if (sp->ttis[i].tt_isdst != yourtm.tm_isdst)
   2194    1.1       jtc 				continue;
   2195    1.5       jtc 			for (j = sp->typecnt - 1; j >= 0; --j) {
   2196    1.1       jtc 				if (sp->ttis[j].tt_isdst == yourtm.tm_isdst)
   2197    1.1       jtc 					continue;
   2198   1.66  christos 				newt = (time_t)(t + sp->ttis[j].tt_gmtoff -
   2199   1.66  christos 				    sp->ttis[i].tt_gmtoff);
   2200   1.87  christos 				if (! funcp(sp, &newt, offset, &mytm))
   2201   1.45   mlelstv 					continue;
   2202    1.1       jtc 				if (tmcomp(&mytm, &yourtm) != 0)
   2203    1.1       jtc 					continue;
   2204    1.1       jtc 				if (mytm.tm_isdst != yourtm.tm_isdst)
   2205    1.1       jtc 					continue;
   2206    1.1       jtc 				/*
   2207    1.1       jtc 				** We have a match.
   2208    1.1       jtc 				*/
   2209    1.1       jtc 				t = newt;
   2210    1.1       jtc 				goto label;
   2211    1.1       jtc 			}
   2212    1.1       jtc 		}
   2213   1.60  christos 		goto invalid;
   2214    1.1       jtc 	}
   2215    1.1       jtc label:
   2216    1.1       jtc 	newt = t + saved_seconds;
   2217    1.1       jtc 	if ((newt < t) != (saved_seconds < 0))
   2218   1.91  christos 		goto out_of_range;
   2219    1.1       jtc 	t = newt;
   2220   1.87  christos 	if (funcp(sp, &t, offset, tmp)) {
   2221   1.87  christos 		*okayp = true;
   2222   1.51  christos 		return t;
   2223   1.60  christos 	}
   2224   1.91  christos out_of_range:
   2225   1.60  christos 	errno = EOVERFLOW;
   2226   1.60  christos 	return WRONG;
   2227   1.60  christos invalid:
   2228   1.60  christos 	errno = EINVAL;
   2229   1.60  christos 	return WRONG;
   2230   1.13       jtc }
   2231   1.13       jtc 
   2232   1.13       jtc static time_t
   2233   1.87  christos time2(struct tm * const	tmp,
   2234   1.87  christos       struct tm *(*funcp)(struct state const *, time_t const *,
   2235   1.87  christos 			  int_fast32_t, struct tm *),
   2236   1.87  christos       struct state const *sp,
   2237   1.87  christos       const int_fast32_t offset,
   2238   1.87  christos       bool *okayp)
   2239   1.13       jtc {
   2240   1.13       jtc 	time_t	t;
   2241   1.13       jtc 
   2242   1.13       jtc 	/*
   2243   1.13       jtc 	** First try without normalization of seconds
   2244   1.13       jtc 	** (in case tm_sec contains a value associated with a leap second).
   2245   1.13       jtc 	** If that fails, try with normalization of seconds.
   2246   1.13       jtc 	*/
   2247   1.87  christos 	t = time2sub(tmp, funcp, sp, offset, okayp, false);
   2248   1.87  christos 	return *okayp ? t : time2sub(tmp, funcp, sp, offset, okayp, true);
   2249    1.1       jtc }
   2250    1.1       jtc 
   2251    1.1       jtc static time_t
   2252   1.87  christos time1(struct tm *const tmp,
   2253   1.87  christos       struct tm *(*funcp) (struct state const *, time_t const *,
   2254   1.87  christos 			   int_fast32_t, struct tm *),
   2255   1.87  christos       struct state const *sp,
   2256   1.87  christos       const int_fast32_t offset)
   2257   1.49  christos {
   2258   1.49  christos 	time_t			t;
   2259   1.49  christos 	int			samei, otheri;
   2260   1.49  christos 	int			sameind, otherind;
   2261   1.49  christos 	int			i;
   2262   1.49  christos 	int			nseen;
   2263   1.90  christos 	int			save_errno;
   2264   1.83  christos 	char				seen[TZ_MAX_TYPES];
   2265   1.83  christos 	unsigned char			types[TZ_MAX_TYPES];
   2266   1.87  christos 	bool				okay;
   2267    1.1       jtc 
   2268   1.58  christos 	if (tmp == NULL) {
   2269   1.58  christos 		errno = EINVAL;
   2270   1.58  christos 		return WRONG;
   2271   1.58  christos 	}
   2272    1.1       jtc 	if (tmp->tm_isdst > 1)
   2273    1.1       jtc 		tmp->tm_isdst = 1;
   2274   1.90  christos 	save_errno = errno;
   2275   1.87  christos 	t = time2(tmp, funcp, sp, offset, &okay);
   2276   1.90  christos 	if (okay) {
   2277   1.90  christos 		errno = save_errno;
   2278    1.1       jtc 		return t;
   2279   1.90  christos 	}
   2280    1.1       jtc 	if (tmp->tm_isdst < 0)
   2281   1.82  christos #ifdef PCTS
   2282   1.82  christos 		/*
   2283   1.82  christos 		** POSIX Conformance Test Suite code courtesy Grant Sullivan.
   2284   1.82  christos 		*/
   2285    1.1       jtc 		tmp->tm_isdst = 0;	/* reset to std and try again */
   2286   1.82  christos #else
   2287    1.1       jtc 		return t;
   2288    1.1       jtc #endif /* !defined PCTS */
   2289    1.1       jtc 	/*
   2290    1.1       jtc 	** We're supposed to assume that somebody took a time of one type
   2291    1.1       jtc 	** and did some math on it that yielded a "struct tm" that's bad.
   2292    1.1       jtc 	** We try to divine the type they started from and adjust to the
   2293    1.1       jtc 	** type they need.
   2294    1.1       jtc 	*/
   2295   1.60  christos 	if (sp == NULL) {
   2296   1.60  christos 		errno = EINVAL;
   2297    1.1       jtc 		return WRONG;
   2298   1.60  christos 	}
   2299   1.35    kleink 	for (i = 0; i < sp->typecnt; ++i)
   2300   1.87  christos 		seen[i] = false;
   2301   1.35    kleink 	nseen = 0;
   2302   1.35    kleink 	for (i = sp->timecnt - 1; i >= 0; --i)
   2303   1.35    kleink 		if (!seen[sp->types[i]]) {
   2304   1.87  christos 			seen[sp->types[i]] = true;
   2305   1.35    kleink 			types[nseen++] = sp->types[i];
   2306   1.35    kleink 		}
   2307   1.35    kleink 	for (sameind = 0; sameind < nseen; ++sameind) {
   2308   1.35    kleink 		samei = types[sameind];
   2309    1.1       jtc 		if (sp->ttis[samei].tt_isdst != tmp->tm_isdst)
   2310    1.1       jtc 			continue;
   2311   1.35    kleink 		for (otherind = 0; otherind < nseen; ++otherind) {
   2312   1.35    kleink 			otheri = types[otherind];
   2313    1.1       jtc 			if (sp->ttis[otheri].tt_isdst == tmp->tm_isdst)
   2314    1.1       jtc 				continue;
   2315   1.21  christos 			tmp->tm_sec += (int)(sp->ttis[otheri].tt_gmtoff -
   2316   1.21  christos 					sp->ttis[samei].tt_gmtoff);
   2317    1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   2318   1.87  christos 			t = time2(tmp, funcp, sp, offset, &okay);
   2319   1.90  christos 			if (okay) {
   2320   1.90  christos 				errno = save_errno;
   2321    1.1       jtc 				return t;
   2322   1.90  christos 			}
   2323   1.21  christos 			tmp->tm_sec -= (int)(sp->ttis[otheri].tt_gmtoff -
   2324   1.21  christos 					sp->ttis[samei].tt_gmtoff);
   2325    1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   2326    1.1       jtc 		}
   2327    1.1       jtc 	}
   2328   1.60  christos 	errno = EOVERFLOW;
   2329    1.1       jtc 	return WRONG;
   2330    1.1       jtc }
   2331    1.1       jtc 
   2332   1.87  christos static time_t
   2333   1.87  christos mktime_tzname(timezone_t sp, struct tm *tmp, bool setname)
   2334   1.87  christos {
   2335   1.87  christos 	if (sp)
   2336   1.87  christos 		return time1(tmp, localsub, sp, setname);
   2337   1.87  christos 	else {
   2338   1.87  christos 		gmtcheck();
   2339   1.87  christos 		return time1(tmp, gmtsub, gmtptr, 0);
   2340   1.87  christos 	}
   2341   1.87  christos }
   2342   1.87  christos 
   2343   1.87  christos #if NETBSD_INSPIRED
   2344   1.87  christos 
   2345    1.1       jtc time_t
   2346   1.87  christos mktime_z(timezone_t sp, struct tm *const tmp)
   2347   1.49  christos {
   2348   1.87  christos 	return mktime_tzname(sp, tmp, false);
   2349   1.49  christos }
   2350   1.49  christos 
   2351   1.87  christos #endif
   2352   1.87  christos 
   2353   1.49  christos time_t
   2354   1.96  christos mktime(struct tm *tmp)
   2355    1.1       jtc {
   2356   1.87  christos 	time_t t;
   2357   1.19    kleink 
   2358  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   2359   1.45   mlelstv 	tzset_unlocked();
   2360  1.117  christos 	t = mktime_tzname(__lclptr, tmp, true);
   2361  1.117  christos 	rwlock_unlock(&__lcl_lock);
   2362   1.87  christos 	return t;
   2363    1.1       jtc }
   2364    1.1       jtc 
   2365    1.1       jtc #ifdef STD_INSPIRED
   2366    1.1       jtc 
   2367    1.1       jtc time_t
   2368   1.68  christos timelocal_z(const timezone_t sp, struct tm *const tmp)
   2369   1.49  christos {
   2370   1.49  christos 	if (tmp != NULL)
   2371   1.49  christos 		tmp->tm_isdst = -1;	/* in case it wasn't initialized */
   2372   1.49  christos 	return mktime_z(sp, tmp);
   2373   1.49  christos }
   2374   1.49  christos 
   2375   1.49  christos time_t
   2376   1.96  christos timelocal(struct tm *tmp)
   2377    1.1       jtc {
   2378   1.58  christos 	if (tmp != NULL)
   2379   1.58  christos 		tmp->tm_isdst = -1;	/* in case it wasn't initialized */
   2380    1.1       jtc 	return mktime(tmp);
   2381    1.1       jtc }
   2382    1.1       jtc 
   2383    1.1       jtc time_t
   2384   1.96  christos timegm(struct tm *tmp)
   2385    1.1       jtc {
   2386   1.51  christos 
   2387   1.87  christos 	return timeoff(tmp, 0);
   2388    1.1       jtc }
   2389    1.1       jtc 
   2390    1.1       jtc time_t
   2391   1.96  christos timeoff(struct tm *tmp, long offset)
   2392    1.1       jtc {
   2393   1.87  christos 	if (tmp)
   2394   1.58  christos 		tmp->tm_isdst = 0;
   2395   1.87  christos 	gmtcheck();
   2396   1.87  christos 	return time1(tmp, gmtsub, gmtptr, (int_fast32_t)offset);
   2397    1.1       jtc }
   2398    1.1       jtc 
   2399    1.1       jtc #endif /* defined STD_INSPIRED */
   2400    1.1       jtc 
   2401    1.1       jtc /*
   2402    1.1       jtc ** XXX--is the below the right way to conditionalize??
   2403    1.1       jtc */
   2404    1.1       jtc 
   2405    1.1       jtc #ifdef STD_INSPIRED
   2406    1.1       jtc 
   2407    1.1       jtc /*
   2408  1.112  christos ** IEEE Std 1003.1 (POSIX) says that 536457599
   2409   1.14       jtc ** shall correspond to "Wed Dec 31 23:59:59 UTC 1986", which
   2410    1.1       jtc ** is not the case if we are accounting for leap seconds.
   2411    1.1       jtc ** So, we provide the following conversion routines for use
   2412    1.1       jtc ** when exchanging timestamps with POSIX conforming systems.
   2413    1.1       jtc */
   2414    1.1       jtc 
   2415   1.74  christos static int_fast64_t
   2416   1.87  christos leapcorr(const timezone_t sp, time_t t)
   2417    1.1       jtc {
   2418   1.87  christos 	struct lsinfo const * lp;
   2419   1.49  christos 	int		i;
   2420    1.1       jtc 
   2421    1.1       jtc 	i = sp->leapcnt;
   2422    1.1       jtc 	while (--i >= 0) {
   2423    1.1       jtc 		lp = &sp->lsis[i];
   2424   1.87  christos 		if (t >= lp->ls_trans)
   2425    1.1       jtc 			return lp->ls_corr;
   2426    1.1       jtc 	}
   2427    1.1       jtc 	return 0;
   2428    1.1       jtc }
   2429    1.1       jtc 
   2430  1.109  christos NETBSD_INSPIRED_EXTERN time_t
   2431   1.87  christos time2posix_z(timezone_t sp, time_t t)
   2432   1.49  christos {
   2433   1.87  christos 	return (time_t)(t - leapcorr(sp, t));
   2434   1.49  christos }
   2435   1.49  christos 
   2436   1.49  christos time_t
   2437   1.49  christos time2posix(time_t t)
   2438    1.1       jtc {
   2439  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   2440   1.87  christos 	if (!lcl_is_set)
   2441   1.87  christos 		tzset_unlocked();
   2442  1.117  christos 	if (__lclptr)
   2443  1.117  christos 		t = (time_t)(t - leapcorr(__lclptr, t));
   2444  1.117  christos 	rwlock_unlock(&__lcl_lock);
   2445   1.87  christos 	return t;
   2446    1.1       jtc }
   2447    1.1       jtc 
   2448  1.109  christos NETBSD_INSPIRED_EXTERN time_t
   2449   1.87  christos posix2time_z(timezone_t sp, time_t t)
   2450    1.1       jtc {
   2451    1.1       jtc 	time_t	x;
   2452    1.1       jtc 	time_t	y;
   2453    1.1       jtc 
   2454    1.1       jtc 	/*
   2455    1.1       jtc 	** For a positive leap second hit, the result
   2456   1.45   mlelstv 	** is not unique. For a negative leap second
   2457    1.1       jtc 	** hit, the corresponding time doesn't exist,
   2458    1.1       jtc 	** so we return an adjacent second.
   2459    1.1       jtc 	*/
   2460   1.87  christos 	x = (time_t)(t + leapcorr(sp, t));
   2461   1.87  christos 	y = (time_t)(x - leapcorr(sp, x));
   2462    1.1       jtc 	if (y < t) {
   2463    1.1       jtc 		do {
   2464    1.1       jtc 			x++;
   2465   1.87  christos 			y = (time_t)(x - leapcorr(sp, x));
   2466    1.1       jtc 		} while (y < t);
   2467   1.87  christos 		x -= y != t;
   2468    1.1       jtc 	} else if (y > t) {
   2469    1.1       jtc 		do {
   2470    1.1       jtc 			--x;
   2471   1.87  christos 			y = (time_t)(x - leapcorr(sp, x));
   2472    1.1       jtc 		} while (y > t);
   2473   1.87  christos 		x += y != t;
   2474    1.1       jtc 	}
   2475   1.49  christos 	return x;
   2476   1.49  christos }
   2477   1.49  christos 
   2478   1.49  christos time_t
   2479   1.49  christos posix2time(time_t t)
   2480   1.49  christos {
   2481  1.117  christos 	rwlock_wrlock(&__lcl_lock);
   2482   1.87  christos 	if (!lcl_is_set)
   2483   1.87  christos 		tzset_unlocked();
   2484  1.117  christos 	if (__lclptr)
   2485  1.117  christos 		t = posix2time_z(__lclptr, t);
   2486  1.117  christos 	rwlock_unlock(&__lcl_lock);
   2487   1.87  christos 	return t;
   2488    1.1       jtc }
   2489    1.1       jtc 
   2490    1.1       jtc #endif /* defined STD_INSPIRED */
   2491