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localtime.c revision 1.82.2.1
      1  1.82.2.1    martin /*	$NetBSD: localtime.c,v 1.82.2.1 2015/01/25 09:11:03 martin Exp $	*/
      2       1.7       jtc 
      3       1.7       jtc /*
      4       1.7       jtc ** This file is in the public domain, so clarified as of
      5      1.45   mlelstv ** 1996-06-05 by Arthur David Olson.
      6       1.7       jtc */
      7       1.2       jtc 
      8      1.11  christos #include <sys/cdefs.h>
      9      1.24   msaitoh #if defined(LIBC_SCCS) && !defined(lint)
     10      1.11  christos #if 0
     11      1.58  christos static char	elsieid[] = "@(#)localtime.c	8.17";
     12      1.11  christos #else
     13  1.82.2.1    martin __RCSID("$NetBSD: localtime.c,v 1.82.2.1 2015/01/25 09:11:03 martin Exp $");
     14      1.11  christos #endif
     15      1.24   msaitoh #endif /* LIBC_SCCS and not lint */
     16       1.1       jtc 
     17       1.1       jtc /*
     18      1.45   mlelstv ** Leap second handling from Bradley White.
     19      1.45   mlelstv ** POSIX-style TZ environment variable handling from Guy Harris.
     20       1.1       jtc */
     21       1.1       jtc 
     22       1.1       jtc /*LINTLIBRARY*/
     23       1.1       jtc 
     24      1.12       jtc #include "namespace.h"
     25      1.78  christos #include <assert.h>
     26  1.82.2.1    martin #define LOCALTIME_IMPLEMENTATION
     27       1.1       jtc #include "private.h"
     28  1.82.2.1    martin 
     29       1.1       jtc #include "tzfile.h"
     30       1.1       jtc #include "fcntl.h"
     31      1.19    kleink #include "reentrant.h"
     32      1.12       jtc 
     33  1.82.2.1    martin #if NETBSD_INSPIRED
     34  1.82.2.1    martin # define NETBSD_INSPIRED_EXTERN
     35  1.82.2.1    martin #else
     36  1.82.2.1    martin # define NETBSD_INSPIRED_EXTERN static
     37  1.82.2.1    martin #endif
     38  1.82.2.1    martin 
     39      1.42  christos #if defined(__weak_alias)
     40      1.25    kleink __weak_alias(daylight,_daylight)
     41      1.23   mycroft __weak_alias(tzname,_tzname)
     42      1.12       jtc #endif
     43       1.1       jtc 
     44      1.45   mlelstv #ifndef TZ_ABBR_MAX_LEN
     45      1.45   mlelstv #define TZ_ABBR_MAX_LEN	16
     46      1.45   mlelstv #endif /* !defined TZ_ABBR_MAX_LEN */
     47      1.45   mlelstv 
     48      1.45   mlelstv #ifndef TZ_ABBR_CHAR_SET
     49      1.45   mlelstv #define TZ_ABBR_CHAR_SET \
     50      1.45   mlelstv 	"abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789 :+-._"
     51      1.45   mlelstv #endif /* !defined TZ_ABBR_CHAR_SET */
     52      1.45   mlelstv 
     53      1.45   mlelstv #ifndef TZ_ABBR_ERR_CHAR
     54      1.45   mlelstv #define TZ_ABBR_ERR_CHAR	'_'
     55      1.45   mlelstv #endif /* !defined TZ_ABBR_ERR_CHAR */
     56      1.45   mlelstv 
     57       1.1       jtc /*
     58       1.1       jtc ** SunOS 4.1.1 headers lack O_BINARY.
     59       1.1       jtc */
     60       1.1       jtc 
     61       1.1       jtc #ifdef O_BINARY
     62  1.82.2.1    martin #define OPEN_MODE	(O_RDONLY | O_BINARY | O_CLOEXEC)
     63       1.1       jtc #endif /* defined O_BINARY */
     64       1.1       jtc #ifndef O_BINARY
     65  1.82.2.1    martin #define OPEN_MODE	(O_RDONLY | O_CLOEXEC)
     66       1.1       jtc #endif /* !defined O_BINARY */
     67       1.1       jtc 
     68       1.1       jtc #ifndef WILDABBR
     69       1.1       jtc /*
     70       1.1       jtc ** Someone might make incorrect use of a time zone abbreviation:
     71       1.1       jtc **	1.	They might reference tzname[0] before calling tzset (explicitly
     72       1.1       jtc **		or implicitly).
     73       1.1       jtc **	2.	They might reference tzname[1] before calling tzset (explicitly
     74       1.1       jtc **		or implicitly).
     75       1.1       jtc **	3.	They might reference tzname[1] after setting to a time zone
     76       1.1       jtc **		in which Daylight Saving Time is never observed.
     77       1.1       jtc **	4.	They might reference tzname[0] after setting to a time zone
     78       1.1       jtc **		in which Standard Time is never observed.
     79       1.1       jtc **	5.	They might reference tm.TM_ZONE after calling offtime.
     80       1.1       jtc ** What's best to do in the above cases is open to debate;
     81       1.1       jtc ** for now, we just set things up so that in any of the five cases
     82      1.45   mlelstv ** WILDABBR is used. Another possibility: initialize tzname[0] to the
     83       1.1       jtc ** string "tzname[0] used before set", and similarly for the other cases.
     84      1.45   mlelstv ** And another: initialize tzname[0] to "ERA", with an explanation in the
     85       1.1       jtc ** manual page of what this "time zone abbreviation" means (doing this so
     86       1.1       jtc ** that tzname[0] has the "normal" length of three characters).
     87       1.1       jtc */
     88       1.1       jtc #define WILDABBR	"   "
     89       1.1       jtc #endif /* !defined WILDABBR */
     90       1.1       jtc 
     91      1.45   mlelstv static const char	wildabbr[] = WILDABBR;
     92       1.1       jtc 
     93      1.71  christos static const char	gmt[] = "GMT";
     94       1.1       jtc 
     95      1.22    kleink /*
     96      1.22    kleink ** The DST rules to use if TZ has no rules and we can't load TZDEFRULES.
     97      1.22    kleink ** We default to US rules as of 1999-08-17.
     98      1.22    kleink ** POSIX 1003.1 section 8.1.1 says that the default DST rules are
     99      1.22    kleink ** implementation dependent; for historical reasons, US rules are a
    100      1.22    kleink ** common default.
    101      1.22    kleink */
    102      1.22    kleink #ifndef TZDEFRULESTRING
    103      1.22    kleink #define TZDEFRULESTRING ",M4.1.0,M10.5.0"
    104      1.22    kleink #endif /* !defined TZDEFDST */
    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  1.82.2.1    martin 	bool		tt_isdst;	/* used to set tm_isdst */
    109       1.1       jtc 	int		tt_abbrind;	/* abbreviation list index */
    110  1.82.2.1    martin 	bool		tt_ttisstd;	/* transition is std time */
    111  1.82.2.1    martin 	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  1.82.2.1    martin #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  1.82.2.1    martin #define state __state
    130  1.82.2.1    martin 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  1.82.2.1    martin 	bool		goback;
    136  1.82.2.1    martin 	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      1.74  christos 	int		defaulttype; /* for early times or if no transitions */
    144       1.1       jtc };
    145       1.1       jtc 
    146       1.1       jtc struct rule {
    147  1.82.2.1    martin 	int		r_type;		/* type of rule; see below */
    148       1.1       jtc 	int		r_day;		/* day number of rule */
    149       1.1       jtc 	int		r_week;		/* week number of rule */
    150       1.1       jtc 	int		r_mon;		/* month number of rule */
    151      1.74  christos 	int_fast32_t	r_time;		/* transition time of rule */
    152       1.1       jtc };
    153       1.1       jtc 
    154  1.82.2.1    martin #define JULIAN_DAY		0	/* Jn = Julian day */
    155  1.82.2.1    martin #define DAY_OF_YEAR		1	/* n = day of year */
    156  1.82.2.1    martin #define MONTH_NTH_DAY_OF_WEEK	2	/* Mm.n.d = month, week, day of week */
    157  1.82.2.1    martin 
    158  1.82.2.1    martin static struct tm *gmtsub(struct state const *, time_t const *, int_fast32_t,
    159  1.82.2.1    martin 			 struct tm *);
    160  1.82.2.1    martin static bool increment_overflow(int *, int);
    161  1.82.2.1    martin static bool increment_overflow_time(time_t *, int_fast32_t);
    162  1.82.2.1    martin static bool normalize_overflow32(int_fast32_t *, int *, int);
    163  1.82.2.1    martin static struct tm *timesub(time_t const *, int_fast32_t, struct state const *,
    164  1.82.2.1    martin 			  struct tm *);
    165  1.82.2.1    martin static bool typesequiv(struct state const *, int, int);
    166  1.82.2.1    martin static bool tzparse(char const *, struct state *, bool);
    167       1.1       jtc 
    168      1.49  christos static timezone_t lclptr;
    169      1.49  christos static timezone_t gmtptr;
    170       1.1       jtc 
    171       1.1       jtc #ifndef TZ_STRLEN_MAX
    172       1.1       jtc #define TZ_STRLEN_MAX 255
    173       1.1       jtc #endif /* !defined TZ_STRLEN_MAX */
    174       1.1       jtc 
    175      1.45   mlelstv static char		lcl_TZname[TZ_STRLEN_MAX + 1];
    176      1.45   mlelstv static int		lcl_is_set;
    177      1.42  christos 
    178      1.42  christos #if !defined(__LIBC12_SOURCE__)
    179       1.1       jtc 
    180      1.16   mycroft __aconst char *		tzname[2] = {
    181      1.37  christos 	(__aconst char *)__UNCONST(wildabbr),
    182      1.37  christos 	(__aconst char *)__UNCONST(wildabbr)
    183       1.1       jtc };
    184       1.1       jtc 
    185      1.42  christos #else
    186      1.42  christos 
    187      1.42  christos extern __aconst char *	tzname[2];
    188      1.42  christos 
    189      1.42  christos #endif
    190      1.42  christos 
    191      1.33  christos #ifdef _REENTRANT
    192      1.45   mlelstv static rwlock_t lcl_lock = RWLOCK_INITIALIZER;
    193      1.19    kleink #endif
    194      1.19    kleink 
    195       1.1       jtc /*
    196       1.1       jtc ** Section 4.12.3 of X3.159-1989 requires that
    197       1.1       jtc **	Except for the strftime function, these functions [asctime,
    198       1.1       jtc **	ctime, gmtime, localtime] return values in one of two static
    199       1.1       jtc **	objects: a broken-down time structure and an array of char.
    200      1.45   mlelstv ** Thanks to Paul Eggert for noting this.
    201       1.1       jtc */
    202       1.1       jtc 
    203       1.1       jtc static struct tm	tm;
    204       1.1       jtc 
    205       1.1       jtc #ifdef USG_COMPAT
    206      1.42  christos #if !defined(__LIBC12_SOURCE__)
    207      1.42  christos long 			timezone = 0;
    208       1.1       jtc int			daylight = 0;
    209      1.42  christos #else
    210      1.42  christos extern int		daylight;
    211      1.42  christos extern long		timezone __RENAME(__timezone13);
    212      1.42  christos #endif
    213       1.1       jtc #endif /* defined USG_COMPAT */
    214       1.1       jtc 
    215       1.1       jtc #ifdef ALTZONE
    216      1.81  christos long			altzone = 0;
    217       1.1       jtc #endif /* defined ALTZONE */
    218       1.1       jtc 
    219  1.82.2.1    martin /* Initialize *S to a value based on GMTOFF, ISDST, and ABBRIND.  */
    220  1.82.2.1    martin static void
    221  1.82.2.1    martin init_ttinfo(struct ttinfo *s, int_fast32_t gmtoff, bool isdst, int abbrind)
    222  1.82.2.1    martin {
    223  1.82.2.1    martin 	s->tt_gmtoff = gmtoff;
    224  1.82.2.1    martin 	s->tt_isdst = isdst;
    225  1.82.2.1    martin 	s->tt_abbrind = abbrind;
    226  1.82.2.1    martin 	s->tt_ttisstd = false;
    227  1.82.2.1    martin 	s->tt_ttisgmt = false;
    228  1.82.2.1    martin }
    229  1.82.2.1    martin 
    230      1.74  christos static int_fast32_t
    231      1.49  christos detzcode(const char *const codep)
    232       1.1       jtc {
    233      1.74  christos 	int_fast32_t	result;
    234  1.82.2.1    martin 	int		i;
    235      1.45   mlelstv 
    236      1.74  christos 	result = (codep[0] & 0x80) ? -1 : 0;
    237      1.45   mlelstv 	for (i = 0; i < 4; ++i)
    238      1.45   mlelstv 		result = (result << 8) | (codep[i] & 0xff);
    239      1.45   mlelstv 	return result;
    240      1.45   mlelstv }
    241      1.45   mlelstv 
    242      1.81  christos static int_fast64_t
    243      1.49  christos detzcode64(const char *const codep)
    244      1.45   mlelstv {
    245  1.82.2.1    martin 	int_fast64_t result;
    246      1.49  christos 	int	i;
    247       1.1       jtc 
    248      1.81  christos 	result = (codep[0] & 0x80) ? -1 : 0;
    249      1.45   mlelstv 	for (i = 0; i < 8; ++i)
    250      1.81  christos 		result = (result << 8) | (codep[i] & 0xff);
    251       1.1       jtc 	return result;
    252       1.1       jtc }
    253       1.1       jtc 
    254      1.49  christos const char *
    255      1.49  christos tzgetname(const timezone_t sp, int isdst)
    256      1.49  christos {
    257      1.49  christos 	int i;
    258      1.49  christos 	for (i = 0; i < sp->timecnt; ++i) {
    259      1.49  christos 		const struct ttinfo *const ttisp = &sp->ttis[sp->types[i]];
    260      1.49  christos 
    261      1.49  christos 		if (ttisp->tt_isdst == isdst)
    262      1.49  christos 			return &sp->chars[ttisp->tt_abbrind];
    263      1.49  christos 	}
    264  1.82.2.1    martin 	errno = ESRCH;
    265      1.49  christos 	return NULL;
    266      1.49  christos }
    267      1.49  christos 
    268      1.49  christos static void
    269      1.49  christos settzname_z(timezone_t sp)
    270      1.49  christos {
    271      1.49  christos 	int			i;
    272      1.49  christos 
    273      1.49  christos 	/*
    274      1.49  christos 	** Scrub the abbreviations.
    275      1.49  christos 	** First, replace bogus characters.
    276      1.49  christos 	*/
    277      1.49  christos 	for (i = 0; i < sp->charcnt; ++i)
    278      1.49  christos 		if (strchr(TZ_ABBR_CHAR_SET, sp->chars[i]) == NULL)
    279      1.49  christos 			sp->chars[i] = TZ_ABBR_ERR_CHAR;
    280      1.49  christos 	/*
    281      1.49  christos 	** Second, truncate long abbreviations.
    282      1.49  christos 	*/
    283      1.49  christos 	for (i = 0; i < sp->typecnt; ++i) {
    284      1.49  christos 		const struct ttinfo * const	ttisp = &sp->ttis[i];
    285      1.49  christos 		char *				cp = &sp->chars[ttisp->tt_abbrind];
    286      1.49  christos 
    287      1.49  christos 		if (strlen(cp) > TZ_ABBR_MAX_LEN &&
    288      1.49  christos 			strcmp(cp, GRANDPARENTED) != 0)
    289      1.49  christos 				*(cp + TZ_ABBR_MAX_LEN) = '\0';
    290      1.49  christos 	}
    291      1.49  christos }
    292      1.49  christos 
    293  1.82.2.1    martin static char *
    294  1.82.2.1    martin setzone(const struct state *sp, const struct ttinfo *ttisp, int_fast32_t offset)
    295  1.82.2.1    martin {
    296  1.82.2.1    martin 	char *zn = __UNCONST(&sp->chars[ttisp->tt_abbrind]);
    297  1.82.2.1    martin 	if (offset) {
    298  1.82.2.1    martin #ifdef USG_COMPAT
    299  1.82.2.1    martin 		if (ttisp->tt_isdst)
    300  1.82.2.1    martin 			daylight = 1;
    301  1.82.2.1    martin 		if (!ttisp->tt_isdst)
    302  1.82.2.1    martin 			timezone = -(ttisp->tt_gmtoff);
    303  1.82.2.1    martin #endif /* defined USG_COMPAT */
    304  1.82.2.1    martin #ifdef ALTZONE
    305  1.82.2.1    martin 		if (ttisp->tt_isdst)
    306  1.82.2.1    martin 			altzone = -(ttisp->tt_gmtoff);
    307  1.82.2.1    martin #endif /* defined ALTZONE */
    308  1.82.2.1    martin 	}
    309  1.82.2.1    martin 
    310  1.82.2.1    martin 	tzname[ttisp->tt_isdst] = zn;
    311  1.82.2.1    martin 	return zn;
    312  1.82.2.1    martin }
    313  1.82.2.1    martin 
    314      1.45   mlelstv static void
    315      1.45   mlelstv settzname(void)
    316       1.1       jtc {
    317      1.49  christos 	timezone_t const	sp = lclptr;
    318      1.49  christos 	int			i;
    319       1.1       jtc 
    320      1.37  christos 	tzname[0] = (__aconst char *)__UNCONST(wildabbr);
    321      1.37  christos 	tzname[1] = (__aconst char *)__UNCONST(wildabbr);
    322       1.1       jtc #ifdef USG_COMPAT
    323       1.1       jtc 	daylight = 0;
    324       1.1       jtc 	timezone = 0;
    325       1.1       jtc #endif /* defined USG_COMPAT */
    326       1.1       jtc #ifdef ALTZONE
    327       1.1       jtc 	altzone = 0;
    328       1.1       jtc #endif /* defined ALTZONE */
    329       1.1       jtc 	if (sp == NULL) {
    330      1.37  christos 		tzname[0] = tzname[1] = (__aconst char *)__UNCONST(gmt);
    331       1.1       jtc 		return;
    332       1.1       jtc 	}
    333      1.58  christos 	/*
    334      1.58  christos 	** And to get the latest zone names into tzname. . .
    335      1.58  christos 	*/
    336  1.82.2.1    martin 	for (i = 0; i < sp->typecnt; ++i)
    337  1.82.2.1    martin 		setzone(sp, &sp->ttis[i], -1);
    338       1.1       jtc 
    339      1.49  christos 	settzname_z(sp);
    340       1.1       jtc }
    341       1.1       jtc 
    342  1.82.2.1    martin static bool
    343      1.49  christos differ_by_repeat(const time_t t1, const time_t t0)
    344      1.45   mlelstv {
    345      1.78  christos 	if (TYPE_BIT(time_t) - TYPE_SIGNED(time_t) < SECSPERREPEAT_BITS)
    346      1.78  christos 		return 0;
    347      1.45   mlelstv 	return (int_fast64_t)t1 - (int_fast64_t)t0 == SECSPERREPEAT;
    348      1.45   mlelstv }
    349      1.45   mlelstv 
    350  1.82.2.1    martin union input_buffer {
    351  1.82.2.1    martin 	/* The first part of the buffer, interpreted as a header.  */
    352  1.82.2.1    martin 	struct tzhead tzhead;
    353  1.82.2.1    martin 
    354  1.82.2.1    martin 	/* The entire buffer.  */
    355  1.82.2.1    martin 	char buf[2 * sizeof(struct tzhead) + 2 * sizeof (struct state)
    356  1.82.2.1    martin 	  + 4 * TZ_MAX_TIMES];
    357  1.82.2.1    martin };
    358  1.82.2.1    martin 
    359  1.82.2.1    martin /* Local storage needed for 'tzloadbody'.  */
    360  1.82.2.1    martin union local_storage {
    361  1.82.2.1    martin 	/* The file name to be opened.  */
    362  1.82.2.1    martin 	char fullname[FILENAME_MAX + 1];
    363  1.82.2.1    martin 
    364  1.82.2.1    martin 	/* The results of analyzing the file's contents after it is opened.  */
    365  1.82.2.1    martin 	struct {
    366  1.82.2.1    martin 		/* The input buffer.  */
    367  1.82.2.1    martin 		union input_buffer u;
    368  1.82.2.1    martin 
    369  1.82.2.1    martin 		/* A temporary state used for parsing a TZ string in the file.  */
    370  1.82.2.1    martin 		struct state st;
    371  1.82.2.1    martin 	} u;
    372  1.82.2.1    martin };
    373  1.82.2.1    martin 
    374  1.82.2.1    martin /* Load tz data from the file named NAME into *SP.  Read extended
    375  1.82.2.1    martin    format if DOEXTEND.  Use *LSP for temporary storage.  Return 0 on
    376  1.82.2.1    martin    success, an errno value on failure.  */
    377      1.45   mlelstv static int
    378  1.82.2.1    martin tzloadbody(char const *name, struct state *sp, bool doextend,
    379  1.82.2.1    martin   union local_storage *lsp)
    380      1.49  christos {
    381      1.49  christos 	int			i;
    382      1.49  christos 	int			fid;
    383      1.49  christos 	int			stored;
    384      1.66  christos 	ssize_t			nread;
    385  1.82.2.1    martin 	bool			doaccess;
    386  1.82.2.1    martin 	char			*fullname = lsp->fullname;
    387  1.82.2.1    martin 	union input_buffer	*up = &lsp->u.u;
    388  1.82.2.1    martin 	size_t			tzheadsize = sizeof(struct tzhead);
    389  1.82.2.1    martin 
    390  1.82.2.1    martin 	sp->goback = sp->goahead = false;
    391  1.82.2.1    martin 
    392  1.82.2.1    martin 	if (! name) {
    393  1.82.2.1    martin 		name = TZDEFAULT;
    394  1.82.2.1    martin 		if (! name)
    395  1.82.2.1    martin 			return EINVAL;
    396  1.82.2.1    martin 	}
    397  1.82.2.1    martin 
    398  1.82.2.1    martin 	if (name[0] == ':')
    399  1.82.2.1    martin 		++name;
    400  1.82.2.1    martin 	doaccess = name[0] == '/';
    401  1.82.2.1    martin 	if (!doaccess) {
    402  1.82.2.1    martin 		char const *p = TZDIR;
    403  1.82.2.1    martin 		if (! p)
    404  1.82.2.1    martin 			return EINVAL;
    405  1.82.2.1    martin 		if (sizeof lsp->fullname - 1 <= strlen(p) + strlen(name))
    406  1.82.2.1    martin 			return ENAMETOOLONG;
    407  1.82.2.1    martin 		strcpy(fullname, p);
    408  1.82.2.1    martin 		strcat(fullname, "/");
    409  1.82.2.1    martin 		strcat(fullname, name);
    410  1.82.2.1    martin 		/* Set doaccess if '.' (as in "../") shows up in name.  */
    411  1.82.2.1    martin 		if (strchr(name, '.'))
    412  1.82.2.1    martin 			doaccess = true;
    413  1.82.2.1    martin 		name = fullname;
    414  1.82.2.1    martin 	}
    415  1.82.2.1    martin 	if (doaccess && access(name, R_OK) != 0)
    416  1.82.2.1    martin 		return errno;
    417  1.82.2.1    martin 
    418  1.82.2.1    martin 	fid = open(name, OPEN_MODE);
    419  1.82.2.1    martin 	if (fid < 0)
    420  1.82.2.1    martin 		return errno;
    421      1.58  christos 	nread = read(fid, up->buf, sizeof up->buf);
    422  1.82.2.1    martin 	if (nread < (ssize_t)tzheadsize) {
    423  1.82.2.1    martin 		int err = nread < 0 ? errno : EINVAL;
    424  1.82.2.1    martin 		close(fid);
    425  1.82.2.1    martin 		return err;
    426  1.82.2.1    martin 	}
    427  1.82.2.1    martin 	if (close(fid) < 0)
    428  1.82.2.1    martin 		return errno;
    429      1.45   mlelstv 	for (stored = 4; stored <= 8; stored *= 2) {
    430  1.82.2.1    martin 		int_fast32_t ttisstdcnt = detzcode(up->tzhead.tzh_ttisstdcnt);
    431  1.82.2.1    martin 		int_fast32_t ttisgmtcnt = detzcode(up->tzhead.tzh_ttisgmtcnt);
    432  1.82.2.1    martin 		int_fast32_t leapcnt = detzcode(up->tzhead.tzh_leapcnt);
    433  1.82.2.1    martin 		int_fast32_t timecnt = detzcode(up->tzhead.tzh_timecnt);
    434  1.82.2.1    martin 		int_fast32_t typecnt = detzcode(up->tzhead.tzh_typecnt);
    435  1.82.2.1    martin 		int_fast32_t charcnt = detzcode(up->tzhead.tzh_charcnt);
    436  1.82.2.1    martin 		char const *p = up->buf + tzheadsize;
    437  1.82.2.1    martin 		if (! (0 <= leapcnt && leapcnt < TZ_MAX_LEAPS
    438  1.82.2.1    martin 		       && 0 < typecnt && typecnt < TZ_MAX_TYPES
    439  1.82.2.1    martin 		       && 0 <= timecnt && timecnt < TZ_MAX_TIMES
    440  1.82.2.1    martin 		       && 0 <= charcnt && charcnt < TZ_MAX_CHARS
    441  1.82.2.1    martin 		       && (ttisstdcnt == typecnt || ttisstdcnt == 0)
    442  1.82.2.1    martin 		       && (ttisgmtcnt == typecnt || ttisgmtcnt == 0)))
    443  1.82.2.1    martin 		  return EINVAL;
    444  1.82.2.1    martin 		if ((size_t)nread
    445  1.82.2.1    martin 		    < (tzheadsize		/* struct tzhead */
    446  1.82.2.1    martin 		       + timecnt * stored	/* ats */
    447  1.82.2.1    martin 		       + timecnt		/* types */
    448  1.82.2.1    martin 		       + typecnt * 6		/* ttinfos */
    449  1.82.2.1    martin 		       + charcnt		/* chars */
    450  1.82.2.1    martin 		       + leapcnt * (stored + 4)	/* lsinfos */
    451  1.82.2.1    martin 		       + ttisstdcnt		/* ttisstds */
    452  1.82.2.1    martin 		       + ttisgmtcnt))		/* ttisgmts */
    453  1.82.2.1    martin 		  return EINVAL;
    454  1.82.2.1    martin 		sp->leapcnt = leapcnt;
    455  1.82.2.1    martin 		sp->timecnt = timecnt;
    456  1.82.2.1    martin 		sp->typecnt = typecnt;
    457  1.82.2.1    martin 		sp->charcnt = charcnt;
    458  1.82.2.1    martin 
    459  1.82.2.1    martin 		/* Read transitions, discarding those out of time_t range.
    460  1.82.2.1    martin 		   But pretend the last transition before time_t_min
    461  1.82.2.1    martin 		   occurred at time_t_min.  */
    462      1.81  christos 		timecnt = 0;
    463       1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    464      1.81  christos 			int_fast64_t at
    465      1.81  christos 			  = stored == 4 ? detzcode(p) : detzcode64(p);
    466  1.82.2.1    martin 			sp->types[i] = at <= time_t_max;
    467      1.81  christos 			if (sp->types[i]) {
    468  1.82.2.1    martin 				time_t attime
    469  1.82.2.1    martin 				    = ((TYPE_SIGNED(time_t) ?
    470  1.82.2.1    martin 				    at < time_t_min : at < 0)
    471  1.82.2.1    martin 				    ? time_t_min : (time_t)at);
    472  1.82.2.1    martin 				if (timecnt && attime <= sp->ats[timecnt - 1]) {
    473  1.82.2.1    martin 					if (attime < sp->ats[timecnt - 1])
    474  1.82.2.1    martin 						return EINVAL;
    475  1.82.2.1    martin 					sp->types[i - 1] = 0;
    476  1.82.2.1    martin 					timecnt--;
    477      1.81  christos 				}
    478  1.82.2.1    martin 				sp->ats[timecnt++] = attime;
    479      1.81  christos 			}
    480      1.45   mlelstv 			p += stored;
    481       1.1       jtc 		}
    482  1.82.2.1    martin 
    483      1.81  christos 		timecnt = 0;
    484       1.1       jtc 		for (i = 0; i < sp->timecnt; ++i) {
    485      1.81  christos 			unsigned char typ = *p++;
    486      1.81  christos 			if (sp->typecnt <= typ)
    487  1.82.2.1    martin 			  return EINVAL;
    488      1.81  christos 			if (sp->types[i])
    489      1.81  christos 				sp->types[timecnt++] = typ;
    490       1.1       jtc 		}
    491  1.82.2.1    martin 		sp->timecnt = timecnt;
    492       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    493      1.49  christos 			struct ttinfo *	ttisp;
    494  1.82.2.1    martin 			unsigned char isdst, abbrind;
    495       1.1       jtc 
    496       1.1       jtc 			ttisp = &sp->ttis[i];
    497       1.1       jtc 			ttisp->tt_gmtoff = detzcode(p);
    498       1.1       jtc 			p += 4;
    499  1.82.2.1    martin 			isdst = *p++;
    500  1.82.2.1    martin 			if (! (isdst < 2))
    501  1.82.2.1    martin 				return EINVAL;
    502  1.82.2.1    martin 			ttisp->tt_isdst = isdst;
    503  1.82.2.1    martin 			abbrind = *p++;
    504  1.82.2.1    martin 			if (! (abbrind < sp->charcnt))
    505  1.82.2.1    martin 				return EINVAL;
    506  1.82.2.1    martin 			ttisp->tt_abbrind = abbrind;
    507       1.1       jtc 		}
    508       1.1       jtc 		for (i = 0; i < sp->charcnt; ++i)
    509       1.1       jtc 			sp->chars[i] = *p++;
    510       1.1       jtc 		sp->chars[i] = '\0';	/* ensure '\0' at end */
    511       1.1       jtc 
    512  1.82.2.1    martin 		/* Read leap seconds, discarding those out of time_t range.  */
    513  1.82.2.1    martin 		leapcnt = 0;
    514  1.82.2.1    martin 		for (i = 0; i < sp->leapcnt; ++i) {
    515  1.82.2.1    martin 			int_fast64_t tr = stored == 4 ? detzcode(p) :
    516  1.82.2.1    martin 			    detzcode64(p);
    517  1.82.2.1    martin 			int_fast32_t corr = detzcode(p + stored);
    518  1.82.2.1    martin 			p += stored + 4;
    519  1.82.2.1    martin 			if (tr <= time_t_max) {
    520  1.82.2.1    martin 				time_t trans = ((TYPE_SIGNED(time_t) ?
    521  1.82.2.1    martin 				    tr < time_t_min : tr < 0)
    522  1.82.2.1    martin 				    ? time_t_min : (time_t)tr);
    523  1.82.2.1    martin 				if (leapcnt && trans <=
    524  1.82.2.1    martin 				    sp->lsis[leapcnt - 1].ls_trans) {
    525  1.82.2.1    martin 					if (trans <
    526  1.82.2.1    martin 					    sp->lsis[leapcnt - 1].ls_trans)
    527  1.82.2.1    martin 						return EINVAL;
    528  1.82.2.1    martin 					leapcnt--;
    529  1.82.2.1    martin 				}
    530  1.82.2.1    martin 				sp->lsis[leapcnt].ls_trans = trans;
    531  1.82.2.1    martin 				sp->lsis[leapcnt].ls_corr = corr;
    532  1.82.2.1    martin 				leapcnt++;
    533  1.82.2.1    martin 			}
    534       1.1       jtc 		}
    535  1.82.2.1    martin 		sp->leapcnt = leapcnt;
    536  1.82.2.1    martin 
    537       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    538      1.49  christos 			struct ttinfo *	ttisp;
    539       1.1       jtc 
    540       1.1       jtc 			ttisp = &sp->ttis[i];
    541       1.1       jtc 			if (ttisstdcnt == 0)
    542  1.82.2.1    martin 				ttisp->tt_ttisstd = false;
    543       1.1       jtc 			else {
    544  1.82.2.1    martin 				if (*p != true && *p != false)
    545  1.82.2.1    martin 				  return EINVAL;
    546       1.1       jtc 				ttisp->tt_ttisstd = *p++;
    547       1.1       jtc 			}
    548       1.1       jtc 		}
    549       1.1       jtc 		for (i = 0; i < sp->typecnt; ++i) {
    550      1.49  christos 			struct ttinfo *	ttisp;
    551       1.1       jtc 
    552       1.1       jtc 			ttisp = &sp->ttis[i];
    553       1.1       jtc 			if (ttisgmtcnt == 0)
    554  1.82.2.1    martin 				ttisp->tt_ttisgmt = false;
    555       1.1       jtc 			else {
    556  1.82.2.1    martin 				if (*p != true && *p != false)
    557  1.82.2.1    martin 						return EINVAL;
    558       1.1       jtc 				ttisp->tt_ttisgmt = *p++;
    559       1.1       jtc 			}
    560       1.1       jtc 		}
    561      1.45   mlelstv 		/*
    562      1.45   mlelstv 		** If this is an old file, we're done.
    563      1.45   mlelstv 		*/
    564      1.58  christos 		if (up->tzhead.tzh_version[0] == '\0')
    565      1.45   mlelstv 			break;
    566      1.58  christos 		nread -= p - up->buf;
    567  1.82.2.1    martin 		memmove(up->buf, p, (size_t)nread);
    568      1.45   mlelstv 		/*
    569      1.81  christos 		** If this is a signed narrow time_t system, we're done.
    570      1.45   mlelstv 		*/
    571      1.81  christos 		if (TYPE_SIGNED(time_t) && stored >= (int) sizeof(time_t))
    572      1.45   mlelstv 			break;
    573      1.45   mlelstv 	}
    574      1.45   mlelstv 	if (doextend && nread > 2 &&
    575      1.58  christos 		up->buf[0] == '\n' && up->buf[nread - 1] == '\n' &&
    576      1.45   mlelstv 		sp->typecnt + 2 <= TZ_MAX_TYPES) {
    577  1.82.2.1    martin 			struct state *ts = &lsp->u.st;
    578      1.45   mlelstv 
    579      1.58  christos 			up->buf[nread - 1] = '\0';
    580  1.82.2.1    martin 			if (tzparse(&up->buf[1], ts, false)
    581  1.82.2.1    martin 			    && ts->typecnt == 2
    582  1.82.2.1    martin 			    && sp->charcnt + ts->charcnt <= TZ_MAX_CHARS) {
    583      1.45   mlelstv 					for (i = 0; i < 2; ++i)
    584  1.82.2.1    martin 						ts->ttis[i].tt_abbrind +=
    585      1.45   mlelstv 							sp->charcnt;
    586  1.82.2.1    martin 					for (i = 0; i < ts->charcnt; ++i)
    587      1.45   mlelstv 						sp->chars[sp->charcnt++] =
    588  1.82.2.1    martin 							ts->chars[i];
    589      1.45   mlelstv 					i = 0;
    590  1.82.2.1    martin 					while (i < ts->timecnt &&
    591  1.82.2.1    martin 						ts->ats[i] <=
    592      1.45   mlelstv 						sp->ats[sp->timecnt - 1])
    593      1.45   mlelstv 							++i;
    594  1.82.2.1    martin 					while (i < ts->timecnt &&
    595      1.45   mlelstv 					    sp->timecnt < TZ_MAX_TIMES) {
    596      1.45   mlelstv 						sp->ats[sp->timecnt] =
    597  1.82.2.1    martin 							ts->ats[i];
    598      1.45   mlelstv 						sp->types[sp->timecnt] =
    599      1.45   mlelstv 							sp->typecnt +
    600  1.82.2.1    martin 							ts->types[i];
    601      1.45   mlelstv 						++sp->timecnt;
    602      1.45   mlelstv 						++i;
    603      1.45   mlelstv 					}
    604  1.82.2.1    martin 					sp->ttis[sp->typecnt++] = ts->ttis[0];
    605  1.82.2.1    martin 					sp->ttis[sp->typecnt++] = ts->ttis[1];
    606      1.45   mlelstv 			}
    607      1.45   mlelstv 	}
    608      1.45   mlelstv 	if (sp->timecnt > 1) {
    609      1.45   mlelstv 		for (i = 1; i < sp->timecnt; ++i)
    610      1.45   mlelstv 			if (typesequiv(sp, sp->types[i], sp->types[0]) &&
    611      1.45   mlelstv 				differ_by_repeat(sp->ats[i], sp->ats[0])) {
    612  1.82.2.1    martin 					sp->goback = true;
    613      1.45   mlelstv 					break;
    614      1.45   mlelstv 				}
    615      1.45   mlelstv 		for (i = sp->timecnt - 2; i >= 0; --i)
    616      1.45   mlelstv 			if (typesequiv(sp, sp->types[sp->timecnt - 1],
    617      1.45   mlelstv 				sp->types[i]) &&
    618      1.45   mlelstv 				differ_by_repeat(sp->ats[sp->timecnt - 1],
    619      1.45   mlelstv 				sp->ats[i])) {
    620  1.82.2.1    martin 					sp->goahead = true;
    621      1.45   mlelstv 					break;
    622      1.45   mlelstv 		}
    623       1.1       jtc 	}
    624      1.74  christos 	/*
    625      1.74  christos 	** If type 0 is is unused in transitions,
    626      1.74  christos 	** it's the type to use for early times.
    627      1.74  christos 	*/
    628  1.82.2.1    martin 	for (i = 0; i < sp->timecnt; ++i)
    629      1.74  christos 		if (sp->types[i] == 0)
    630      1.74  christos 			break;
    631  1.82.2.1    martin 	i = i < sp->timecnt ? -1 : 0;
    632      1.74  christos 	/*
    633      1.74  christos 	** Absent the above,
    634      1.74  christos 	** if there are transition times
    635      1.74  christos 	** and the first transition is to a daylight time
    636      1.74  christos 	** find the standard type less than and closest to
    637      1.74  christos 	** the type of the first transition.
    638      1.74  christos 	*/
    639      1.74  christos 	if (i < 0 && sp->timecnt > 0 && sp->ttis[sp->types[0]].tt_isdst) {
    640      1.74  christos 		i = sp->types[0];
    641      1.74  christos 		while (--i >= 0)
    642      1.74  christos 			if (!sp->ttis[i].tt_isdst)
    643      1.74  christos 				break;
    644      1.74  christos 	}
    645      1.74  christos 	/*
    646      1.74  christos 	** If no result yet, find the first standard type.
    647      1.74  christos 	** If there is none, punt to type zero.
    648      1.74  christos 	*/
    649      1.74  christos 	if (i < 0) {
    650      1.74  christos 		i = 0;
    651      1.74  christos 		while (sp->ttis[i].tt_isdst)
    652      1.74  christos 			if (++i >= sp->typecnt) {
    653      1.74  christos 				i = 0;
    654      1.74  christos 				break;
    655      1.74  christos 			}
    656      1.74  christos 	}
    657      1.74  christos 	sp->defaulttype = i;
    658       1.1       jtc 	return 0;
    659       1.1       jtc }
    660       1.1       jtc 
    661  1.82.2.1    martin /* Load tz data from the file named NAME into *SP.  Read extended
    662  1.82.2.1    martin    format if DOEXTEND.  Return 0 on success, an errno value on failure.  */
    663      1.45   mlelstv static int
    664  1.82.2.1    martin tzload(char const *name, struct state *sp, bool doextend)
    665      1.45   mlelstv {
    666  1.82.2.1    martin 	union local_storage *lsp = malloc(sizeof *lsp);
    667  1.82.2.1    martin 	if (!lsp)
    668  1.82.2.1    martin 		return errno;
    669  1.82.2.1    martin 	else {
    670  1.82.2.1    martin 		int err = tzloadbody(name, sp, doextend, lsp);
    671  1.82.2.1    martin 		free(lsp);
    672  1.82.2.1    martin 		return err;
    673  1.82.2.1    martin 	}
    674  1.82.2.1    martin }
    675  1.82.2.1    martin 
    676  1.82.2.1    martin static bool
    677  1.82.2.1    martin typesequiv(struct state const *sp, int a, int b)
    678  1.82.2.1    martin {
    679  1.82.2.1    martin 	bool result;
    680      1.45   mlelstv 
    681      1.45   mlelstv 	if (sp == NULL ||
    682      1.45   mlelstv 		a < 0 || a >= sp->typecnt ||
    683      1.45   mlelstv 		b < 0 || b >= sp->typecnt)
    684  1.82.2.1    martin 			result = false;
    685      1.45   mlelstv 	else {
    686      1.49  christos 		const struct ttinfo *	ap = &sp->ttis[a];
    687      1.49  christos 		const struct ttinfo *	bp = &sp->ttis[b];
    688      1.45   mlelstv 		result = ap->tt_gmtoff == bp->tt_gmtoff &&
    689      1.45   mlelstv 			ap->tt_isdst == bp->tt_isdst &&
    690      1.45   mlelstv 			ap->tt_ttisstd == bp->tt_ttisstd &&
    691      1.45   mlelstv 			ap->tt_ttisgmt == bp->tt_ttisgmt &&
    692      1.45   mlelstv 			strcmp(&sp->chars[ap->tt_abbrind],
    693      1.45   mlelstv 			&sp->chars[bp->tt_abbrind]) == 0;
    694      1.45   mlelstv 	}
    695      1.45   mlelstv 	return result;
    696      1.45   mlelstv }
    697      1.45   mlelstv 
    698       1.1       jtc static const int	mon_lengths[2][MONSPERYEAR] = {
    699       1.1       jtc 	{ 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 },
    700       1.1       jtc 	{ 31, 29, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 }
    701       1.1       jtc };
    702       1.1       jtc 
    703       1.1       jtc static const int	year_lengths[2] = {
    704       1.1       jtc 	DAYSPERNYEAR, DAYSPERLYEAR
    705       1.1       jtc };
    706       1.1       jtc 
    707       1.1       jtc /*
    708       1.1       jtc ** Given a pointer into a time zone string, scan until a character that is not
    709      1.45   mlelstv ** a valid character in a zone name is found. Return a pointer to that
    710       1.1       jtc ** character.
    711       1.1       jtc */
    712       1.1       jtc 
    713  1.82.2.1    martin static const char * ATTRIBUTE_PURE
    714      1.67      matt getzname(const char *strp)
    715       1.1       jtc {
    716      1.49  christos 	char	c;
    717       1.1       jtc 
    718       1.5       jtc 	while ((c = *strp) != '\0' && !is_digit(c) && c != ',' && c != '-' &&
    719       1.1       jtc 		c != '+')
    720       1.1       jtc 			++strp;
    721       1.1       jtc 	return strp;
    722       1.1       jtc }
    723       1.1       jtc 
    724       1.1       jtc /*
    725      1.45   mlelstv ** Given a pointer into an extended time zone string, scan until the ending
    726      1.45   mlelstv ** delimiter of the zone name is located. Return a pointer to the delimiter.
    727      1.45   mlelstv **
    728      1.45   mlelstv ** As with getzname above, the legal character set is actually quite
    729      1.45   mlelstv ** restricted, with other characters producing undefined results.
    730      1.45   mlelstv ** We don't do any checking here; checking is done later in common-case code.
    731      1.45   mlelstv */
    732      1.45   mlelstv 
    733  1.82.2.1    martin static const char * ATTRIBUTE_PURE
    734      1.49  christos getqzname(const char *strp, const int delim)
    735      1.45   mlelstv {
    736      1.49  christos 	int	c;
    737      1.45   mlelstv 
    738      1.45   mlelstv 	while ((c = *strp) != '\0' && c != delim)
    739      1.45   mlelstv 		++strp;
    740      1.45   mlelstv 	return strp;
    741      1.45   mlelstv }
    742      1.45   mlelstv 
    743      1.45   mlelstv /*
    744       1.1       jtc ** Given a pointer into a time zone string, extract a number from that string.
    745       1.1       jtc ** Check that the number is within a specified range; if it is not, return
    746       1.1       jtc ** NULL.
    747       1.1       jtc ** Otherwise, return a pointer to the first character not part of the number.
    748       1.1       jtc */
    749       1.1       jtc 
    750       1.1       jtc static const char *
    751      1.68  christos getnum(const char *strp, int *const nump, const int min, const int max)
    752       1.1       jtc {
    753      1.49  christos 	char	c;
    754      1.49  christos 	int	num;
    755       1.1       jtc 
    756      1.46  christos 	if (strp == NULL || !is_digit(c = *strp)) {
    757      1.46  christos 		errno = EINVAL;
    758       1.1       jtc 		return NULL;
    759      1.46  christos 	}
    760       1.1       jtc 	num = 0;
    761       1.5       jtc 	do {
    762       1.1       jtc 		num = num * 10 + (c - '0');
    763      1.46  christos 		if (num > max) {
    764      1.46  christos 			errno = EOVERFLOW;
    765       1.1       jtc 			return NULL;	/* illegal value */
    766      1.46  christos 		}
    767       1.5       jtc 		c = *++strp;
    768       1.5       jtc 	} while (is_digit(c));
    769      1.46  christos 	if (num < min) {
    770      1.46  christos 		errno = EINVAL;
    771       1.1       jtc 		return NULL;		/* illegal value */
    772      1.46  christos 	}
    773       1.1       jtc 	*nump = num;
    774       1.1       jtc 	return strp;
    775       1.1       jtc }
    776       1.1       jtc 
    777       1.1       jtc /*
    778       1.1       jtc ** Given a pointer into a time zone string, extract a number of seconds,
    779       1.1       jtc ** in hh[:mm[:ss]] form, from the string.
    780       1.1       jtc ** If any error occurs, return NULL.
    781       1.1       jtc ** Otherwise, return a pointer to the first character not part of the number
    782       1.1       jtc ** of seconds.
    783       1.1       jtc */
    784       1.1       jtc 
    785       1.1       jtc static const char *
    786      1.74  christos getsecs(const char *strp, int_fast32_t *const secsp)
    787       1.1       jtc {
    788       1.1       jtc 	int	num;
    789       1.1       jtc 
    790       1.1       jtc 	/*
    791  1.82.2.1    martin 	** 'HOURSPERDAY * DAYSPERWEEK - 1' allows quasi-Posix rules like
    792       1.1       jtc 	** "M10.4.6/26", which does not conform to Posix,
    793       1.1       jtc 	** but which specifies the equivalent of
    794  1.82.2.1    martin 	** "02:00 on the first Sunday on or after 23 Oct".
    795       1.1       jtc 	*/
    796       1.1       jtc 	strp = getnum(strp, &num, 0, HOURSPERDAY * DAYSPERWEEK - 1);
    797       1.1       jtc 	if (strp == NULL)
    798       1.1       jtc 		return NULL;
    799      1.74  christos 	*secsp = num * (int_fast32_t) SECSPERHOUR;
    800       1.1       jtc 	if (*strp == ':') {
    801       1.1       jtc 		++strp;
    802       1.1       jtc 		strp = getnum(strp, &num, 0, MINSPERHOUR - 1);
    803       1.1       jtc 		if (strp == NULL)
    804       1.1       jtc 			return NULL;
    805       1.1       jtc 		*secsp += num * SECSPERMIN;
    806       1.1       jtc 		if (*strp == ':') {
    807       1.1       jtc 			++strp;
    808  1.82.2.1    martin 			/* 'SECSPERMIN' allows for leap seconds.  */
    809       1.1       jtc 			strp = getnum(strp, &num, 0, SECSPERMIN);
    810       1.1       jtc 			if (strp == NULL)
    811       1.1       jtc 				return NULL;
    812       1.1       jtc 			*secsp += num;
    813       1.1       jtc 		}
    814       1.1       jtc 	}
    815       1.1       jtc 	return strp;
    816       1.1       jtc }
    817       1.1       jtc 
    818       1.1       jtc /*
    819       1.1       jtc ** Given a pointer into a time zone string, extract an offset, in
    820       1.1       jtc ** [+-]hh[:mm[:ss]] form, from the string.
    821       1.1       jtc ** If any error occurs, return NULL.
    822       1.1       jtc ** Otherwise, return a pointer to the first character not part of the time.
    823       1.1       jtc */
    824       1.1       jtc 
    825       1.1       jtc static const char *
    826      1.74  christos getoffset(const char *strp, int_fast32_t *const offsetp)
    827       1.1       jtc {
    828  1.82.2.1    martin 	bool neg = false;
    829       1.1       jtc 
    830       1.1       jtc 	if (*strp == '-') {
    831  1.82.2.1    martin 		neg = true;
    832       1.1       jtc 		++strp;
    833       1.5       jtc 	} else if (*strp == '+')
    834       1.5       jtc 		++strp;
    835       1.1       jtc 	strp = getsecs(strp, offsetp);
    836       1.1       jtc 	if (strp == NULL)
    837       1.1       jtc 		return NULL;		/* illegal time */
    838       1.1       jtc 	if (neg)
    839       1.1       jtc 		*offsetp = -*offsetp;
    840       1.1       jtc 	return strp;
    841       1.1       jtc }
    842       1.1       jtc 
    843       1.1       jtc /*
    844       1.1       jtc ** Given a pointer into a time zone string, extract a rule in the form
    845      1.45   mlelstv ** date[/time]. See POSIX section 8 for the format of "date" and "time".
    846       1.1       jtc ** If a valid rule is not found, return NULL.
    847       1.1       jtc ** Otherwise, return a pointer to the first character not part of the rule.
    848       1.1       jtc */
    849       1.1       jtc 
    850       1.1       jtc static const char *
    851      1.49  christos getrule(const char *strp, struct rule *const rulep)
    852       1.1       jtc {
    853       1.1       jtc 	if (*strp == 'J') {
    854       1.1       jtc 		/*
    855       1.1       jtc 		** Julian day.
    856       1.1       jtc 		*/
    857       1.1       jtc 		rulep->r_type = JULIAN_DAY;
    858       1.1       jtc 		++strp;
    859       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 1, DAYSPERNYEAR);
    860       1.1       jtc 	} else if (*strp == 'M') {
    861       1.1       jtc 		/*
    862       1.1       jtc 		** Month, week, day.
    863       1.1       jtc 		*/
    864       1.1       jtc 		rulep->r_type = MONTH_NTH_DAY_OF_WEEK;
    865       1.1       jtc 		++strp;
    866       1.1       jtc 		strp = getnum(strp, &rulep->r_mon, 1, MONSPERYEAR);
    867       1.1       jtc 		if (strp == NULL)
    868       1.1       jtc 			return NULL;
    869       1.1       jtc 		if (*strp++ != '.')
    870       1.1       jtc 			return NULL;
    871       1.1       jtc 		strp = getnum(strp, &rulep->r_week, 1, 5);
    872       1.1       jtc 		if (strp == NULL)
    873       1.1       jtc 			return NULL;
    874       1.1       jtc 		if (*strp++ != '.')
    875       1.1       jtc 			return NULL;
    876       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERWEEK - 1);
    877       1.5       jtc 	} else if (is_digit(*strp)) {
    878       1.1       jtc 		/*
    879       1.1       jtc 		** Day of year.
    880       1.1       jtc 		*/
    881       1.1       jtc 		rulep->r_type = DAY_OF_YEAR;
    882       1.1       jtc 		strp = getnum(strp, &rulep->r_day, 0, DAYSPERLYEAR - 1);
    883       1.1       jtc 	} else	return NULL;		/* invalid format */
    884       1.1       jtc 	if (strp == NULL)
    885       1.1       jtc 		return NULL;
    886       1.1       jtc 	if (*strp == '/') {
    887       1.1       jtc 		/*
    888       1.1       jtc 		** Time specified.
    889       1.1       jtc 		*/
    890       1.1       jtc 		++strp;
    891      1.78  christos 		strp = getoffset(strp, &rulep->r_time);
    892       1.1       jtc 	} else	rulep->r_time = 2 * SECSPERHOUR;	/* default = 2:00:00 */
    893       1.1       jtc 	return strp;
    894       1.1       jtc }
    895       1.1       jtc 
    896       1.1       jtc /*
    897      1.81  christos ** Given a year, a rule, and the offset from UT at the time that rule takes
    898      1.81  christos ** effect, calculate the year-relative time that rule takes effect.
    899       1.1       jtc */
    900       1.1       jtc 
    901  1.82.2.1    martin static int_fast32_t ATTRIBUTE_PURE
    902      1.81  christos transtime(const int year, const struct rule *const rulep,
    903      1.81  christos 	  const int_fast32_t offset)
    904      1.49  christos {
    905  1.82.2.1    martin 	bool	leapyear;
    906  1.82.2.1    martin 	int_fast32_t value;
    907      1.49  christos 	int	i;
    908       1.1       jtc 	int		d, m1, yy0, yy1, yy2, dow;
    909       1.1       jtc 
    910       1.1       jtc 	INITIALIZE(value);
    911       1.1       jtc 	leapyear = isleap(year);
    912       1.1       jtc 	switch (rulep->r_type) {
    913       1.1       jtc 
    914       1.1       jtc 	case JULIAN_DAY:
    915       1.1       jtc 		/*
    916       1.1       jtc 		** Jn - Julian day, 1 == January 1, 60 == March 1 even in leap
    917       1.1       jtc 		** years.
    918       1.1       jtc 		** In non-leap years, or if the day number is 59 or less, just
    919       1.1       jtc 		** add SECSPERDAY times the day number-1 to the time of
    920       1.1       jtc 		** January 1, midnight, to get the day.
    921       1.1       jtc 		*/
    922      1.81  christos 		value = (rulep->r_day - 1) * SECSPERDAY;
    923       1.1       jtc 		if (leapyear && rulep->r_day >= 60)
    924       1.1       jtc 			value += SECSPERDAY;
    925       1.1       jtc 		break;
    926       1.1       jtc 
    927       1.1       jtc 	case DAY_OF_YEAR:
    928       1.1       jtc 		/*
    929       1.1       jtc 		** n - day of year.
    930       1.1       jtc 		** Just add SECSPERDAY times the day number to the time of
    931       1.1       jtc 		** January 1, midnight, to get the day.
    932       1.1       jtc 		*/
    933      1.81  christos 		value = rulep->r_day * SECSPERDAY;
    934       1.1       jtc 		break;
    935       1.1       jtc 
    936       1.1       jtc 	case MONTH_NTH_DAY_OF_WEEK:
    937       1.1       jtc 		/*
    938       1.1       jtc 		** Mm.n.d - nth "dth day" of month m.
    939       1.1       jtc 		*/
    940       1.1       jtc 
    941       1.1       jtc 		/*
    942       1.1       jtc 		** Use Zeller's Congruence to get day-of-week of first day of
    943       1.1       jtc 		** month.
    944       1.1       jtc 		*/
    945       1.1       jtc 		m1 = (rulep->r_mon + 9) % 12 + 1;
    946       1.1       jtc 		yy0 = (rulep->r_mon <= 2) ? (year - 1) : year;
    947       1.1       jtc 		yy1 = yy0 / 100;
    948       1.1       jtc 		yy2 = yy0 % 100;
    949       1.1       jtc 		dow = ((26 * m1 - 2) / 10 +
    950       1.1       jtc 			1 + yy2 + yy2 / 4 + yy1 / 4 - 2 * yy1) % 7;
    951       1.1       jtc 		if (dow < 0)
    952       1.1       jtc 			dow += DAYSPERWEEK;
    953       1.1       jtc 
    954       1.1       jtc 		/*
    955      1.45   mlelstv 		** "dow" is the day-of-week of the first day of the month. Get
    956       1.1       jtc 		** the day-of-month (zero-origin) of the first "dow" day of the
    957       1.1       jtc 		** month.
    958       1.1       jtc 		*/
    959       1.1       jtc 		d = rulep->r_day - dow;
    960       1.1       jtc 		if (d < 0)
    961       1.1       jtc 			d += DAYSPERWEEK;
    962       1.1       jtc 		for (i = 1; i < rulep->r_week; ++i) {
    963       1.1       jtc 			if (d + DAYSPERWEEK >=
    964       1.1       jtc 				mon_lengths[leapyear][rulep->r_mon - 1])
    965       1.1       jtc 					break;
    966       1.1       jtc 			d += DAYSPERWEEK;
    967       1.1       jtc 		}
    968       1.1       jtc 
    969       1.1       jtc 		/*
    970       1.1       jtc 		** "d" is the day-of-month (zero-origin) of the day we want.
    971       1.1       jtc 		*/
    972      1.81  christos 		value = d * SECSPERDAY;
    973      1.81  christos 		for (i = 0; i < rulep->r_mon - 1; ++i)
    974      1.81  christos 			value += mon_lengths[leapyear][i] * SECSPERDAY;
    975       1.1       jtc 		break;
    976       1.1       jtc 	}
    977       1.1       jtc 
    978       1.1       jtc 	/*
    979      1.81  christos 	** "value" is the year-relative time of 00:00:00 UT on the day in
    980      1.81  christos 	** question. To get the year-relative time of the specified local
    981       1.1       jtc 	** time on that day, add the transition time and the current offset
    982      1.78  christos 	** from UT.
    983       1.1       jtc 	*/
    984      1.81  christos 	return value + rulep->r_time + offset;
    985       1.1       jtc }
    986       1.1       jtc 
    987       1.1       jtc /*
    988       1.1       jtc ** Given a POSIX section 8-style TZ string, fill in the rule tables as
    989       1.1       jtc ** appropriate.
    990       1.1       jtc */
    991       1.1       jtc 
    992  1.82.2.1    martin static bool
    993  1.82.2.1    martin tzparse(const char *name, timezone_t sp,
    994  1.82.2.1    martin 	bool lastditch)
    995  1.82.2.1    martin {
    996  1.82.2.1    martin 	const char *	stdname;
    997  1.82.2.1    martin 	const char *	dstname;
    998  1.82.2.1    martin 	size_t		stdlen;
    999  1.82.2.1    martin 	size_t		dstlen;
   1000  1.82.2.1    martin 	int_fast32_t	stdoffset;
   1001  1.82.2.1    martin 	int_fast32_t	dstoffset;
   1002  1.82.2.1    martin 	char *		cp;
   1003  1.82.2.1    martin 	bool		load_ok;
   1004       1.1       jtc 
   1005  1.82.2.1    martin 	dstname = NULL; /* XXX gcc */
   1006       1.1       jtc 	stdname = name;
   1007       1.1       jtc 	if (lastditch) {
   1008       1.1       jtc 		stdlen = strlen(name);	/* length of standard zone name */
   1009       1.1       jtc 		name += stdlen;
   1010       1.1       jtc 		if (stdlen >= sizeof sp->chars)
   1011       1.1       jtc 			stdlen = (sizeof sp->chars) - 1;
   1012      1.10       jtc 		stdoffset = 0;
   1013       1.1       jtc 	} else {
   1014      1.45   mlelstv 		if (*name == '<') {
   1015      1.45   mlelstv 			name++;
   1016      1.45   mlelstv 			stdname = name;
   1017      1.45   mlelstv 			name = getqzname(name, '>');
   1018      1.45   mlelstv 			if (*name != '>')
   1019  1.82.2.1    martin 			  return false;
   1020      1.45   mlelstv 			stdlen = name - stdname;
   1021      1.45   mlelstv 			name++;
   1022      1.45   mlelstv 		} else {
   1023      1.45   mlelstv 			name = getzname(name);
   1024      1.45   mlelstv 			stdlen = name - stdname;
   1025      1.45   mlelstv 		}
   1026      1.10       jtc 		if (*name == '\0')
   1027  1.82.2.1    martin 			return false;
   1028      1.45   mlelstv 		name = getoffset(name, &stdoffset);
   1029       1.1       jtc 		if (name == NULL)
   1030  1.82.2.1    martin 			return false;
   1031       1.1       jtc 	}
   1032  1.82.2.1    martin 	load_ok = tzload(TZDEFRULES, sp, false) == 0;
   1033  1.82.2.1    martin 	if (!load_ok)
   1034       1.1       jtc 		sp->leapcnt = 0;		/* so, we're off a little */
   1035       1.1       jtc 	if (*name != '\0') {
   1036      1.45   mlelstv 		if (*name == '<') {
   1037      1.45   mlelstv 			dstname = ++name;
   1038      1.45   mlelstv 			name = getqzname(name, '>');
   1039      1.45   mlelstv 			if (*name != '>')
   1040  1.82.2.1    martin 				return false;
   1041      1.45   mlelstv 			dstlen = name - dstname;
   1042      1.45   mlelstv 			name++;
   1043      1.45   mlelstv 		} else {
   1044      1.45   mlelstv 			dstname = name;
   1045      1.45   mlelstv 			name = getzname(name);
   1046      1.45   mlelstv 			dstlen = name - dstname; /* length of DST zone name */
   1047      1.45   mlelstv 		}
   1048       1.1       jtc 		if (*name != '\0' && *name != ',' && *name != ';') {
   1049      1.45   mlelstv 			name = getoffset(name, &dstoffset);
   1050       1.1       jtc 			if (name == NULL)
   1051  1.82.2.1    martin 			  return false;
   1052       1.1       jtc 		} else	dstoffset = stdoffset - SECSPERHOUR;
   1053  1.82.2.1    martin 		if (*name == '\0' && !load_ok)
   1054      1.22    kleink 			name = TZDEFRULESTRING;
   1055       1.1       jtc 		if (*name == ',' || *name == ';') {
   1056       1.1       jtc 			struct rule	start;
   1057       1.1       jtc 			struct rule	end;
   1058      1.78  christos 			int		year;
   1059      1.78  christos 			int		yearlim;
   1060      1.81  christos 			int		timecnt;
   1061      1.78  christos 			time_t		janfirst;
   1062       1.1       jtc 
   1063       1.1       jtc 			++name;
   1064      1.45   mlelstv 			if ((name = getrule(name, &start)) == NULL)
   1065  1.82.2.1    martin 				return false;
   1066       1.1       jtc 			if (*name++ != ',')
   1067  1.82.2.1    martin 				return false;
   1068      1.45   mlelstv 			if ((name = getrule(name, &end)) == NULL)
   1069  1.82.2.1    martin 				return false;
   1070       1.1       jtc 			if (*name != '\0')
   1071  1.82.2.1    martin 				return false;
   1072       1.1       jtc 			sp->typecnt = 2;	/* standard time and DST */
   1073       1.1       jtc 			/*
   1074      1.45   mlelstv 			** Two transitions per year, from EPOCH_YEAR forward.
   1075       1.1       jtc 			*/
   1076  1.82.2.1    martin 			init_ttinfo(&sp->ttis[0], -dstoffset, true,
   1077  1.82.2.1    martin 			    (int)(stdlen + 1));
   1078  1.82.2.1    martin 			init_ttinfo(&sp->ttis[1], -stdoffset, false, 0);
   1079      1.82  christos 			sp->defaulttype = 0;
   1080      1.81  christos 			timecnt = 0;
   1081       1.1       jtc 			janfirst = 0;
   1082      1.78  christos 			yearlim = EPOCH_YEAR + YEARSPERREPEAT;
   1083      1.78  christos 			for (year = EPOCH_YEAR; year < yearlim; year++) {
   1084      1.81  christos 				int_fast32_t
   1085      1.81  christos 				  starttime = transtime(year, &start, stdoffset),
   1086      1.81  christos 				  endtime = transtime(year, &end, dstoffset);
   1087      1.81  christos 				int_fast32_t
   1088      1.81  christos 				  yearsecs = (year_lengths[isleap(year)]
   1089      1.81  christos 					      * SECSPERDAY);
   1090  1.82.2.1    martin 				bool reversed = endtime < starttime;
   1091      1.81  christos 				if (reversed) {
   1092      1.81  christos 					int_fast32_t swap = starttime;
   1093      1.81  christos 					starttime = endtime;
   1094      1.81  christos 					endtime = swap;
   1095      1.81  christos 				}
   1096      1.81  christos 				if (reversed
   1097      1.78  christos 				    || (starttime < endtime
   1098      1.78  christos 					&& (endtime - starttime
   1099      1.78  christos 					    < (yearsecs
   1100      1.78  christos 					       + (stdoffset - dstoffset))))) {
   1101      1.81  christos 					if (TZ_MAX_TIMES - 2 < timecnt)
   1102      1.78  christos 						break;
   1103      1.78  christos 					yearlim = year + YEARSPERREPEAT + 1;
   1104      1.81  christos 					sp->ats[timecnt] = janfirst;
   1105      1.81  christos 					if (increment_overflow_time
   1106      1.81  christos 					    (&sp->ats[timecnt], starttime))
   1107      1.81  christos 						break;
   1108      1.81  christos 					sp->types[timecnt++] = reversed;
   1109      1.81  christos 					sp->ats[timecnt] = janfirst;
   1110      1.81  christos 					if (increment_overflow_time
   1111      1.81  christos 					    (&sp->ats[timecnt], endtime))
   1112      1.81  christos 						break;
   1113      1.81  christos 					sp->types[timecnt++] = !reversed;
   1114       1.1       jtc 				}
   1115      1.81  christos 				if (increment_overflow_time(&janfirst, yearsecs))
   1116      1.45   mlelstv 					break;
   1117       1.1       jtc 			}
   1118      1.81  christos 			sp->timecnt = timecnt;
   1119      1.81  christos 			if (!timecnt)
   1120      1.78  christos 				sp->typecnt = 1;	/* Perpetual DST.  */
   1121       1.1       jtc 		} else {
   1122      1.74  christos 			int_fast32_t	theirstdoffset;
   1123      1.74  christos 			int_fast32_t	theirdstoffset;
   1124      1.74  christos 			int_fast32_t	theiroffset;
   1125  1.82.2.1    martin 			bool		isdst;
   1126      1.74  christos 			int		i;
   1127      1.74  christos 			int		j;
   1128       1.1       jtc 
   1129       1.1       jtc 			if (*name != '\0')
   1130  1.82.2.1    martin 				return false;
   1131       1.1       jtc 			/*
   1132      1.69  christos 			** Initial values of theirstdoffset and theirdstoffset.
   1133       1.1       jtc 			*/
   1134       1.1       jtc 			theirstdoffset = 0;
   1135       1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
   1136       1.1       jtc 				j = sp->types[i];
   1137       1.1       jtc 				if (!sp->ttis[j].tt_isdst) {
   1138       1.5       jtc 					theirstdoffset =
   1139       1.5       jtc 						-sp->ttis[j].tt_gmtoff;
   1140       1.1       jtc 					break;
   1141       1.1       jtc 				}
   1142       1.1       jtc 			}
   1143      1.45   mlelstv 			theirdstoffset = 0;
   1144      1.45   mlelstv 			for (i = 0; i < sp->timecnt; ++i) {
   1145      1.45   mlelstv 				j = sp->types[i];
   1146      1.45   mlelstv 				if (sp->ttis[j].tt_isdst) {
   1147      1.45   mlelstv 					theirdstoffset =
   1148      1.45   mlelstv 						-sp->ttis[j].tt_gmtoff;
   1149      1.45   mlelstv 					break;
   1150      1.45   mlelstv 				}
   1151      1.45   mlelstv 			}
   1152       1.1       jtc 			/*
   1153       1.1       jtc 			** Initially we're assumed to be in standard time.
   1154       1.1       jtc 			*/
   1155  1.82.2.1    martin 			isdst = false;
   1156       1.1       jtc 			theiroffset = theirstdoffset;
   1157       1.1       jtc 			/*
   1158       1.1       jtc 			** Now juggle transition times and types
   1159       1.1       jtc 			** tracking offsets as you do.
   1160       1.1       jtc 			*/
   1161       1.1       jtc 			for (i = 0; i < sp->timecnt; ++i) {
   1162       1.1       jtc 				j = sp->types[i];
   1163       1.1       jtc 				sp->types[i] = sp->ttis[j].tt_isdst;
   1164       1.1       jtc 				if (sp->ttis[j].tt_ttisgmt) {
   1165       1.1       jtc 					/* No adjustment to transition time */
   1166       1.1       jtc 				} else {
   1167       1.1       jtc 					/*
   1168       1.1       jtc 					** If summer time is in effect, and the
   1169       1.1       jtc 					** transition time was not specified as
   1170       1.1       jtc 					** standard time, add the summer time
   1171       1.1       jtc 					** offset to the transition time;
   1172       1.1       jtc 					** otherwise, add the standard time
   1173       1.1       jtc 					** offset to the transition time.
   1174       1.1       jtc 					*/
   1175       1.1       jtc 					/*
   1176       1.1       jtc 					** Transitions from DST to DDST
   1177       1.1       jtc 					** will effectively disappear since
   1178       1.1       jtc 					** POSIX provides for only one DST
   1179       1.1       jtc 					** offset.
   1180       1.1       jtc 					*/
   1181      1.45   mlelstv 					if (isdst && !sp->ttis[j].tt_ttisstd) {
   1182      1.66  christos 						sp->ats[i] += (time_t)
   1183      1.66  christos 						    (dstoffset - theirdstoffset);
   1184      1.45   mlelstv 					} else {
   1185      1.66  christos 						sp->ats[i] += (time_t)
   1186      1.66  christos 						    (stdoffset - theirstdoffset);
   1187      1.45   mlelstv 					}
   1188       1.1       jtc 				}
   1189       1.1       jtc 				theiroffset = -sp->ttis[j].tt_gmtoff;
   1190  1.82.2.1    martin 				if (sp->ttis[j].tt_isdst)
   1191      1.39  christos 					theirstdoffset = theiroffset;
   1192      1.45   mlelstv 				else	theirdstoffset = theiroffset;
   1193       1.1       jtc 			}
   1194       1.1       jtc 			/*
   1195       1.1       jtc 			** Finally, fill in ttis.
   1196       1.1       jtc 			*/
   1197  1.82.2.1    martin 			init_ttinfo(&sp->ttis[0], -stdoffset, false, 0);
   1198  1.82.2.1    martin 			init_ttinfo(&sp->ttis[1], -dstoffset, true,
   1199  1.82.2.1    martin 			    (int)(stdlen + 1));
   1200       1.7       jtc 			sp->typecnt = 2;
   1201      1.82  christos 			sp->defaulttype = 0;
   1202       1.1       jtc 		}
   1203       1.1       jtc 	} else {
   1204       1.1       jtc 		dstlen = 0;
   1205       1.1       jtc 		sp->typecnt = 1;		/* only standard time */
   1206       1.1       jtc 		sp->timecnt = 0;
   1207  1.82.2.1    martin 		init_ttinfo(&sp->ttis[0], -stdoffset, false, 0);
   1208  1.82.2.1    martin 		init_ttinfo(&sp->ttis[1], 0, false, 0);
   1209      1.82  christos 		sp->defaulttype = 0;
   1210       1.1       jtc 	}
   1211      1.66  christos 	sp->charcnt = (int)(stdlen + 1);
   1212       1.1       jtc 	if (dstlen != 0)
   1213      1.66  christos 		sp->charcnt += (int)(dstlen + 1);
   1214      1.10       jtc 	if ((size_t) sp->charcnt > sizeof sp->chars)
   1215  1.82.2.1    martin 		return false;
   1216       1.1       jtc 	cp = sp->chars;
   1217  1.82.2.1    martin 	(void) memcpy(cp, stdname, stdlen);
   1218       1.1       jtc 	cp += stdlen;
   1219       1.1       jtc 	*cp++ = '\0';
   1220       1.1       jtc 	if (dstlen != 0) {
   1221  1.82.2.1    martin 		(void) memcpy(cp, dstname, dstlen);
   1222       1.1       jtc 		*(cp + dstlen) = '\0';
   1223       1.1       jtc 	}
   1224  1.82.2.1    martin 	return true;
   1225       1.1       jtc }
   1226       1.1       jtc 
   1227       1.1       jtc static void
   1228  1.82.2.1    martin gmtload(struct state *const sp)
   1229      1.49  christos {
   1230  1.82.2.1    martin 	if (tzload(gmt, sp, true) != 0)
   1231  1.82.2.1    martin 		(void) tzparse(gmt, sp, true);
   1232      1.49  christos }
   1233      1.49  christos 
   1234  1.82.2.1    martin static int
   1235  1.82.2.1    martin zoneinit(struct state *sp, char const *name)
   1236      1.49  christos {
   1237  1.82.2.1    martin 	if (name && ! name[0]) {
   1238  1.82.2.1    martin 		/*
   1239  1.82.2.1    martin 		** User wants it fast rather than right.
   1240  1.82.2.1    martin 		*/
   1241  1.82.2.1    martin 		sp->leapcnt = 0;		/* so, we're off a little */
   1242  1.82.2.1    martin 		sp->timecnt = 0;
   1243  1.82.2.1    martin 		sp->typecnt = 0;
   1244  1.82.2.1    martin 		sp->charcnt = 0;
   1245  1.82.2.1    martin 		sp->goback = sp->goahead = false;
   1246  1.82.2.1    martin 		init_ttinfo(&sp->ttis[0], 0, false, 0);
   1247  1.82.2.1    martin 		strcpy(sp->chars, gmt);
   1248  1.82.2.1    martin 		sp->defaulttype = 0;
   1249  1.82.2.1    martin 		return 0;
   1250  1.82.2.1    martin 	} else {
   1251  1.82.2.1    martin 		int err = tzload(name, sp, true);
   1252  1.82.2.1    martin 		if (err != 0 && name && name[0] != ':' &&
   1253  1.82.2.1    martin 		    tzparse(name, sp, false))
   1254  1.82.2.1    martin 			return 0;
   1255  1.82.2.1    martin 		return err;
   1256      1.49  christos 	}
   1257      1.49  christos }
   1258  1.82.2.1    martin 
   1259      1.19    kleink static void
   1260  1.82.2.1    martin tzsetlcl(char const *name)
   1261       1.1       jtc {
   1262  1.82.2.1    martin 	struct state *sp = lclptr;
   1263  1.82.2.1    martin 	int lcl = name ? strlen(name) < sizeof lcl_TZname : -1;
   1264  1.82.2.1    martin 	if (lcl < 0 ? lcl_is_set < 0
   1265  1.82.2.1    martin 	    : 0 < lcl_is_set && strcmp(lcl_TZname, name) == 0)
   1266       1.1       jtc 		return;
   1267       1.1       jtc 
   1268  1.82.2.1    martin 	if (! sp)
   1269  1.82.2.1    martin 		lclptr = sp = malloc(sizeof *lclptr);
   1270  1.82.2.1    martin 	if (sp) {
   1271  1.82.2.1    martin 		if (zoneinit(sp, name) != 0)
   1272  1.82.2.1    martin 			zoneinit(sp, "");
   1273  1.82.2.1    martin 		if (0 < lcl)
   1274  1.82.2.1    martin 			strcpy(lcl_TZname, name);
   1275       1.1       jtc 	}
   1276      1.45   mlelstv 	settzname();
   1277  1.82.2.1    martin 	lcl_is_set = lcl;
   1278       1.1       jtc }
   1279       1.1       jtc 
   1280  1.82.2.1    martin #ifdef STD_INSPIRED
   1281       1.1       jtc void
   1282      1.45   mlelstv tzsetwall(void)
   1283      1.19    kleink {
   1284      1.45   mlelstv 	rwlock_wrlock(&lcl_lock);
   1285  1.82.2.1    martin 	tzsetlcl(NULL);
   1286      1.45   mlelstv 	rwlock_unlock(&lcl_lock);
   1287      1.19    kleink }
   1288  1.82.2.1    martin #endif
   1289      1.19    kleink 
   1290  1.82.2.1    martin static void
   1291      1.45   mlelstv tzset_unlocked(void)
   1292       1.1       jtc {
   1293  1.82.2.1    martin 	tzsetlcl(getenv("TZ"));
   1294  1.82.2.1    martin }
   1295       1.1       jtc 
   1296  1.82.2.1    martin void
   1297  1.82.2.1    martin tzset(void)
   1298  1.82.2.1    martin {
   1299  1.82.2.1    martin 	rwlock_wrlock(&lcl_lock);
   1300  1.82.2.1    martin 	tzset_unlocked();
   1301  1.82.2.1    martin 	rwlock_unlock(&lcl_lock);
   1302  1.82.2.1    martin }
   1303  1.82.2.1    martin 
   1304  1.82.2.1    martin static void
   1305  1.82.2.1    martin gmtcheck(void)
   1306  1.82.2.1    martin {
   1307  1.82.2.1    martin 	static bool gmt_is_set;
   1308  1.82.2.1    martin 	rwlock_wrlock(&lcl_lock);
   1309  1.82.2.1    martin 	if (! gmt_is_set) {
   1310  1.82.2.1    martin 		gmtptr = malloc(sizeof *gmtptr);
   1311  1.82.2.1    martin 		if (gmtptr)
   1312  1.82.2.1    martin 			gmtload(gmtptr);
   1313  1.82.2.1    martin 		gmt_is_set = true;
   1314       1.1       jtc 	}
   1315  1.82.2.1    martin 	rwlock_unlock(&lcl_lock);
   1316  1.82.2.1    martin }
   1317       1.1       jtc 
   1318  1.82.2.1    martin #if NETBSD_INSPIRED
   1319  1.82.2.1    martin 
   1320  1.82.2.1    martin timezone_t
   1321  1.82.2.1    martin tzalloc(const char *name)
   1322  1.82.2.1    martin {
   1323  1.82.2.1    martin 	timezone_t sp = malloc(sizeof *sp);
   1324  1.82.2.1    martin 	if (sp) {
   1325  1.82.2.1    martin 		int err = zoneinit(sp, name);
   1326  1.82.2.1    martin 		if (err != 0) {
   1327  1.82.2.1    martin 			free(sp);
   1328  1.82.2.1    martin 			errno = err;
   1329  1.82.2.1    martin 			return NULL;
   1330       1.1       jtc 		}
   1331       1.1       jtc 	}
   1332  1.82.2.1    martin 	return sp;
   1333       1.1       jtc }
   1334       1.1       jtc 
   1335      1.19    kleink void
   1336  1.82.2.1    martin tzfree(timezone_t sp)
   1337      1.19    kleink {
   1338  1.82.2.1    martin 	free(sp);
   1339      1.19    kleink }
   1340      1.19    kleink 
   1341       1.1       jtc /*
   1342  1.82.2.1    martin ** NetBSD 6.1.4 has ctime_rz, but omit it because POSIX says ctime and
   1343  1.82.2.1    martin ** ctime_r are obsolescent and have potential security problems that
   1344  1.82.2.1    martin ** ctime_rz would share.  Callers can instead use localtime_rz + strftime.
   1345  1.82.2.1    martin **
   1346  1.82.2.1    martin ** NetBSD 6.1.4 has tzgetname, but omit it because it doesn't work
   1347  1.82.2.1    martin ** in zones with three or more time zone abbreviations.
   1348  1.82.2.1    martin ** Callers can instead use localtime_rz + strftime.
   1349  1.82.2.1    martin */
   1350  1.82.2.1    martin 
   1351  1.82.2.1    martin #endif
   1352  1.82.2.1    martin 
   1353  1.82.2.1    martin /*
   1354       1.1       jtc ** The easy way to behave "as if no library function calls" localtime
   1355  1.82.2.1    martin ** is to not call it, so we drop its guts into "localsub", which can be
   1356  1.82.2.1    martin ** freely called. (And no, the PANS doesn't require the above behavior,
   1357       1.1       jtc ** but it *is* desirable.)
   1358       1.1       jtc **
   1359  1.82.2.1    martin ** If successful and OFFSET is nonzero,
   1360  1.82.2.1    martin ** set the applicable parts of tzname, timezone and altzone;
   1361  1.82.2.1    martin ** however, it's OK to omit this step if the time zone is POSIX-compatible,
   1362  1.82.2.1    martin ** since in that case tzset should have already done this step correctly.
   1363  1.82.2.1    martin ** OFFSET's type is intfast32_t for compatibility with gmtsub.
   1364       1.1       jtc */
   1365       1.1       jtc 
   1366       1.1       jtc /*ARGSUSED*/
   1367      1.45   mlelstv static struct tm *
   1368  1.82.2.1    martin localsub(struct state const *sp, time_t const *timep, int_fast32_t offset,
   1369  1.82.2.1    martin 	 struct tm *const tmp)
   1370      1.49  christos {
   1371      1.49  christos 	const struct ttinfo *	ttisp;
   1372      1.49  christos 	int			i;
   1373      1.49  christos 	struct tm *		result;
   1374       1.1       jtc 	const time_t			t = *timep;
   1375       1.1       jtc 
   1376  1.82.2.1    martin 	if (sp == NULL) {
   1377  1.82.2.1    martin 		/* Don't bother to set tzname etc.; tzset has already done it.  */
   1378  1.82.2.1    martin 		return gmtsub(gmtptr, timep, 0, tmp);
   1379  1.82.2.1    martin 	}
   1380      1.45   mlelstv 	if ((sp->goback && t < sp->ats[0]) ||
   1381      1.45   mlelstv 		(sp->goahead && t > sp->ats[sp->timecnt - 1])) {
   1382      1.45   mlelstv 			time_t			newt = t;
   1383      1.49  christos 			time_t		seconds;
   1384      1.78  christos 			time_t		years;
   1385      1.45   mlelstv 
   1386      1.45   mlelstv 			if (t < sp->ats[0])
   1387      1.45   mlelstv 				seconds = sp->ats[0] - t;
   1388      1.45   mlelstv 			else	seconds = t - sp->ats[sp->timecnt - 1];
   1389      1.45   mlelstv 			--seconds;
   1390      1.78  christos 			years = (time_t)((seconds / SECSPERREPEAT + 1) * YEARSPERREPEAT);
   1391      1.78  christos 			seconds = (time_t)(years * AVGSECSPERYEAR);
   1392      1.45   mlelstv 			if (t < sp->ats[0])
   1393      1.45   mlelstv 				newt += seconds;
   1394      1.45   mlelstv 			else	newt -= seconds;
   1395      1.45   mlelstv 			if (newt < sp->ats[0] ||
   1396  1.82.2.1    martin 				newt > sp->ats[sp->timecnt - 1]) {
   1397  1.82.2.1    martin 				errno = EINVAL;
   1398  1.82.2.1    martin 				return NULL;	/* "cannot happen" */
   1399  1.82.2.1    martin 			}
   1400      1.49  christos 			result = localsub(sp, &newt, offset, tmp);
   1401  1.82.2.1    martin 			if (result) {
   1402  1.82.2.1    martin 				int_fast64_t newy;
   1403      1.45   mlelstv 
   1404  1.82.2.1    martin 				newy = result->tm_year;
   1405      1.45   mlelstv 				if (t < sp->ats[0])
   1406      1.78  christos 					newy -= years;
   1407      1.78  christos 				else	newy += years;
   1408  1.82.2.1    martin 				if (! (INT_MIN <= newy && newy <= INT_MAX)) {
   1409  1.82.2.1    martin 					errno = EOVERFLOW;
   1410      1.45   mlelstv 					return NULL;
   1411  1.82.2.1    martin 				}
   1412  1.82.2.1    martin 				result->tm_year = (int)newy;
   1413      1.45   mlelstv 			}
   1414      1.45   mlelstv 			return result;
   1415       1.1       jtc 	}
   1416       1.1       jtc 	if (sp->timecnt == 0 || t < sp->ats[0]) {
   1417      1.74  christos 		i = sp->defaulttype;
   1418       1.1       jtc 	} else {
   1419      1.49  christos 		int	lo = 1;
   1420      1.49  christos 		int	hi = sp->timecnt;
   1421      1.45   mlelstv 
   1422      1.45   mlelstv 		while (lo < hi) {
   1423      1.49  christos 			int	mid = (lo + hi) / 2;
   1424      1.45   mlelstv 
   1425      1.45   mlelstv 			if (t < sp->ats[mid])
   1426      1.45   mlelstv 				hi = mid;
   1427      1.45   mlelstv 			else	lo = mid + 1;
   1428      1.45   mlelstv 		}
   1429      1.45   mlelstv 		i = (int) sp->types[lo - 1];
   1430       1.1       jtc 	}
   1431       1.1       jtc 	ttisp = &sp->ttis[i];
   1432       1.1       jtc 	/*
   1433       1.1       jtc 	** To get (wrong) behavior that's compatible with System V Release 2.0
   1434       1.1       jtc 	** you'd replace the statement below with
   1435       1.1       jtc 	**	t += ttisp->tt_gmtoff;
   1436       1.1       jtc 	**	timesub(&t, 0L, sp, tmp);
   1437       1.1       jtc 	*/
   1438  1.82.2.1    martin 	result = timesub(&t, ttisp->tt_gmtoff, sp, tmp);
   1439  1.82.2.1    martin 	if (result) {
   1440  1.82.2.1    martin 		char *zn = setzone(sp, ttisp, offset);
   1441  1.82.2.1    martin 		result->tm_isdst = ttisp->tt_isdst;
   1442       1.1       jtc #ifdef TM_ZONE
   1443  1.82.2.1    martin 		result->TM_ZONE = zn;
   1444       1.1       jtc #endif /* defined TM_ZONE */
   1445  1.82.2.1    martin 	}
   1446      1.45   mlelstv 	return result;
   1447       1.1       jtc }
   1448       1.1       jtc 
   1449  1.82.2.1    martin #if NETBSD_INSPIRED
   1450      1.49  christos 
   1451       1.1       jtc struct tm *
   1452  1.82.2.1    martin localtime_rz(timezone_t sp, time_t const *timep, struct tm *tmp)
   1453       1.1       jtc {
   1454  1.82.2.1    martin 	return localsub(sp, timep, 0, tmp);
   1455  1.82.2.1    martin }
   1456  1.82.2.1    martin 
   1457  1.82.2.1    martin #endif
   1458  1.82.2.1    martin 
   1459  1.82.2.1    martin static struct tm *
   1460  1.82.2.1    martin localtime_tzset(time_t const *timep, struct tm *tmp, bool setname)
   1461  1.82.2.1    martin {
   1462  1.82.2.1    martin 	rwlock_wrlock(&lcl_lock);
   1463  1.82.2.1    martin 	if (setname || !lcl_is_set)
   1464  1.82.2.1    martin 		tzset_unlocked();
   1465  1.82.2.1    martin 	tmp = localsub(lclptr, timep, setname, tmp);
   1466      1.45   mlelstv 	rwlock_unlock(&lcl_lock);
   1467      1.49  christos 	return tmp;
   1468       1.1       jtc }
   1469       1.1       jtc 
   1470      1.49  christos struct tm *
   1471      1.49  christos localtime(const time_t *const timep)
   1472      1.49  christos {
   1473  1.82.2.1    martin 	return localtime_tzset(timep, &tm, true);
   1474      1.49  christos }
   1475      1.35    kleink 
   1476      1.18    kleink struct tm *
   1477  1.82.2.1    martin localtime_r(const time_t * __restrict timep, struct tm *tmp)
   1478      1.18    kleink {
   1479  1.82.2.1    martin 	return localtime_tzset(timep, tmp, false);
   1480      1.18    kleink }
   1481      1.18    kleink 
   1482      1.18    kleink /*
   1483       1.1       jtc ** gmtsub is to gmtime as localsub is to localtime.
   1484       1.1       jtc */
   1485       1.1       jtc 
   1486      1.45   mlelstv static struct tm *
   1487  1.82.2.1    martin gmtsub(struct state const *sp, const time_t *timep, int_fast32_t offset,
   1488  1.82.2.1    martin        struct tm *tmp)
   1489       1.1       jtc {
   1490      1.49  christos 	struct tm *	result;
   1491      1.19    kleink 
   1492  1.82.2.1    martin 	result = timesub(timep, offset, gmtptr, tmp);
   1493       1.1       jtc #ifdef TM_ZONE
   1494       1.1       jtc 	/*
   1495       1.1       jtc 	** Could get fancy here and deliver something such as
   1496      1.78  christos 	** "UT+xxxx" or "UT-xxxx" if offset is non-zero,
   1497       1.1       jtc 	** but this is no time for a treasure hunt.
   1498       1.1       jtc 	*/
   1499  1.82.2.1    martin 	if (result)
   1500  1.82.2.1    martin 		result->TM_ZONE = offset ? __UNCONST(wildabbr) : gmtptr ?
   1501  1.82.2.1    martin 		    gmtptr->chars : __UNCONST(gmt);
   1502       1.1       jtc #endif /* defined TM_ZONE */
   1503      1.45   mlelstv 	return result;
   1504       1.1       jtc }
   1505       1.1       jtc 
   1506       1.1       jtc struct tm *
   1507      1.49  christos gmtime(const time_t *const timep)
   1508       1.1       jtc {
   1509  1.82.2.1    martin 	return gmtime_r(timep, &tm);
   1510       1.1       jtc }
   1511       1.1       jtc 
   1512      1.18    kleink /*
   1513      1.35    kleink ** Re-entrant version of gmtime.
   1514      1.35    kleink */
   1515      1.35    kleink 
   1516      1.18    kleink struct tm *
   1517      1.49  christos gmtime_r(const time_t * const timep, struct tm *tmp)
   1518      1.18    kleink {
   1519  1.82.2.1    martin 	gmtcheck();
   1520  1.82.2.1    martin 	return gmtsub(NULL, timep, 0, tmp);
   1521      1.18    kleink }
   1522      1.18    kleink 
   1523       1.1       jtc #ifdef STD_INSPIRED
   1524       1.1       jtc 
   1525       1.1       jtc struct tm *
   1526      1.49  christos offtime(const time_t *const timep, long offset)
   1527       1.1       jtc {
   1528  1.82.2.1    martin 	gmtcheck();
   1529  1.82.2.1    martin 	return gmtsub(gmtptr, timep, (int_fast32_t)offset, &tm);
   1530      1.49  christos }
   1531      1.49  christos 
   1532      1.49  christos struct tm *
   1533      1.49  christos offtime_r(const time_t *timep, long offset, struct tm *tmp)
   1534      1.49  christos {
   1535  1.82.2.1    martin 	gmtcheck();
   1536  1.82.2.1    martin 	return gmtsub(NULL, timep, (int_fast32_t)offset, tmp);
   1537       1.1       jtc }
   1538       1.1       jtc 
   1539       1.1       jtc #endif /* defined STD_INSPIRED */
   1540       1.1       jtc 
   1541      1.45   mlelstv /*
   1542      1.45   mlelstv ** Return the number of leap years through the end of the given year
   1543      1.45   mlelstv ** where, to make the math easy, the answer for year zero is defined as zero.
   1544      1.45   mlelstv */
   1545      1.45   mlelstv 
   1546  1.82.2.1    martin static int ATTRIBUTE_PURE
   1547      1.49  christos leaps_thru_end_of(const int y)
   1548      1.45   mlelstv {
   1549      1.45   mlelstv 	return (y >= 0) ? (y / 4 - y / 100 + y / 400) :
   1550      1.45   mlelstv 		-(leaps_thru_end_of(-(y + 1)) + 1);
   1551      1.45   mlelstv }
   1552      1.45   mlelstv 
   1553      1.45   mlelstv static struct tm *
   1554  1.82.2.1    martin timesub(time_t const *timep, int_fast32_t offset, struct state const *sp,
   1555  1.82.2.1    martin 	struct tm *tmp)
   1556      1.49  christos {
   1557      1.49  christos 	const struct lsinfo *	lp;
   1558      1.49  christos 	time_t			tdays;
   1559      1.49  christos 	int			idays;	/* unsigned would be so 2003 */
   1560      1.74  christos 	int_fast64_t		rem;
   1561      1.49  christos 	int			y;
   1562      1.49  christos 	const int *		ip;
   1563      1.74  christos 	int_fast64_t		corr;
   1564  1.82.2.1    martin 	bool			hit;
   1565      1.49  christos 	int			i;
   1566       1.1       jtc 
   1567       1.1       jtc 	corr = 0;
   1568  1.82.2.1    martin 	hit = false;
   1569       1.1       jtc 	i = (sp == NULL) ? 0 : sp->leapcnt;
   1570       1.1       jtc 	while (--i >= 0) {
   1571       1.1       jtc 		lp = &sp->lsis[i];
   1572       1.1       jtc 		if (*timep >= lp->ls_trans) {
   1573       1.1       jtc 			if (*timep == lp->ls_trans) {
   1574       1.1       jtc 				hit = ((i == 0 && lp->ls_corr > 0) ||
   1575       1.1       jtc 					lp->ls_corr > sp->lsis[i - 1].ls_corr);
   1576       1.1       jtc 				if (hit)
   1577       1.1       jtc 					while (i > 0 &&
   1578       1.1       jtc 						sp->lsis[i].ls_trans ==
   1579       1.1       jtc 						sp->lsis[i - 1].ls_trans + 1 &&
   1580       1.1       jtc 						sp->lsis[i].ls_corr ==
   1581       1.1       jtc 						sp->lsis[i - 1].ls_corr + 1) {
   1582       1.1       jtc 							++hit;
   1583       1.1       jtc 							--i;
   1584       1.1       jtc 					}
   1585       1.1       jtc 			}
   1586       1.1       jtc 			corr = lp->ls_corr;
   1587       1.1       jtc 			break;
   1588       1.1       jtc 		}
   1589       1.1       jtc 	}
   1590      1.45   mlelstv 	y = EPOCH_YEAR;
   1591      1.66  christos 	tdays = (time_t)(*timep / SECSPERDAY);
   1592      1.74  christos 	rem = (int_fast64_t) (*timep - tdays * SECSPERDAY);
   1593      1.45   mlelstv 	while (tdays < 0 || tdays >= year_lengths[isleap(y)]) {
   1594      1.45   mlelstv 		int		newy;
   1595      1.49  christos 		time_t	tdelta;
   1596      1.49  christos 		int	idelta;
   1597      1.49  christos 		int	leapdays;
   1598      1.45   mlelstv 
   1599      1.45   mlelstv 		tdelta = tdays / DAYSPERLYEAR;
   1600      1.78  christos 		if (! ((! TYPE_SIGNED(time_t) || INT_MIN <= tdelta)
   1601      1.78  christos 		       && tdelta <= INT_MAX))
   1602  1.82.2.1    martin 			goto out_of_range;
   1603      1.81  christos 		_DIAGASSERT(__type_fit(int, tdelta));
   1604      1.81  christos 		idelta = (int)tdelta;
   1605      1.45   mlelstv 		if (idelta == 0)
   1606      1.45   mlelstv 			idelta = (tdays < 0) ? -1 : 1;
   1607      1.45   mlelstv 		newy = y;
   1608      1.51  christos 		if (increment_overflow(&newy, idelta))
   1609  1.82.2.1    martin 			goto out_of_range;
   1610      1.45   mlelstv 		leapdays = leaps_thru_end_of(newy - 1) -
   1611      1.45   mlelstv 			leaps_thru_end_of(y - 1);
   1612      1.45   mlelstv 		tdays -= ((time_t) newy - y) * DAYSPERNYEAR;
   1613      1.45   mlelstv 		tdays -= leapdays;
   1614      1.45   mlelstv 		y = newy;
   1615      1.45   mlelstv 	}
   1616      1.45   mlelstv 	{
   1617      1.74  christos 		int_fast32_t seconds;
   1618      1.45   mlelstv 
   1619      1.78  christos 		seconds = (int_fast32_t)(tdays * SECSPERDAY);
   1620      1.66  christos 		tdays = (time_t)(seconds / SECSPERDAY);
   1621      1.74  christos 		rem += (int_fast64_t)(seconds - tdays * SECSPERDAY);
   1622       1.1       jtc 	}
   1623      1.45   mlelstv 	/*
   1624      1.45   mlelstv 	** Given the range, we can now fearlessly cast...
   1625      1.45   mlelstv 	*/
   1626      1.45   mlelstv 	idays = (int) tdays;
   1627      1.45   mlelstv 	rem += offset - corr;
   1628       1.1       jtc 	while (rem < 0) {
   1629       1.1       jtc 		rem += SECSPERDAY;
   1630      1.45   mlelstv 		--idays;
   1631       1.1       jtc 	}
   1632       1.1       jtc 	while (rem >= SECSPERDAY) {
   1633       1.1       jtc 		rem -= SECSPERDAY;
   1634      1.45   mlelstv 		++idays;
   1635      1.45   mlelstv 	}
   1636      1.45   mlelstv 	while (idays < 0) {
   1637      1.51  christos 		if (increment_overflow(&y, -1))
   1638  1.82.2.1    martin 			goto out_of_range;
   1639      1.45   mlelstv 		idays += year_lengths[isleap(y)];
   1640       1.1       jtc 	}
   1641      1.45   mlelstv 	while (idays >= year_lengths[isleap(y)]) {
   1642      1.45   mlelstv 		idays -= year_lengths[isleap(y)];
   1643      1.51  christos 		if (increment_overflow(&y, 1))
   1644  1.82.2.1    martin 			goto out_of_range;
   1645      1.45   mlelstv 	}
   1646      1.45   mlelstv 	tmp->tm_year = y;
   1647      1.51  christos 	if (increment_overflow(&tmp->tm_year, -TM_YEAR_BASE))
   1648  1.82.2.1    martin 		goto out_of_range;
   1649      1.45   mlelstv 	tmp->tm_yday = idays;
   1650      1.45   mlelstv 	/*
   1651      1.45   mlelstv 	** The "extra" mods below avoid overflow problems.
   1652      1.45   mlelstv 	*/
   1653      1.45   mlelstv 	tmp->tm_wday = EPOCH_WDAY +
   1654      1.45   mlelstv 		((y - EPOCH_YEAR) % DAYSPERWEEK) *
   1655      1.45   mlelstv 		(DAYSPERNYEAR % DAYSPERWEEK) +
   1656      1.45   mlelstv 		leaps_thru_end_of(y - 1) -
   1657      1.45   mlelstv 		leaps_thru_end_of(EPOCH_YEAR - 1) +
   1658      1.45   mlelstv 		idays;
   1659      1.45   mlelstv 	tmp->tm_wday %= DAYSPERWEEK;
   1660      1.45   mlelstv 	if (tmp->tm_wday < 0)
   1661      1.45   mlelstv 		tmp->tm_wday += DAYSPERWEEK;
   1662       1.1       jtc 	tmp->tm_hour = (int) (rem / SECSPERHOUR);
   1663      1.45   mlelstv 	rem %= SECSPERHOUR;
   1664       1.1       jtc 	tmp->tm_min = (int) (rem / SECSPERMIN);
   1665       1.6       jtc 	/*
   1666       1.6       jtc 	** A positive leap second requires a special
   1667      1.45   mlelstv 	** representation. This uses "... ??:59:60" et seq.
   1668       1.6       jtc 	*/
   1669       1.6       jtc 	tmp->tm_sec = (int) (rem % SECSPERMIN) + hit;
   1670      1.45   mlelstv 	ip = mon_lengths[isleap(y)];
   1671      1.45   mlelstv 	for (tmp->tm_mon = 0; idays >= ip[tmp->tm_mon]; ++(tmp->tm_mon))
   1672      1.45   mlelstv 		idays -= ip[tmp->tm_mon];
   1673      1.45   mlelstv 	tmp->tm_mday = (int) (idays + 1);
   1674       1.1       jtc 	tmp->tm_isdst = 0;
   1675       1.1       jtc #ifdef TM_GMTOFF
   1676       1.1       jtc 	tmp->TM_GMTOFF = offset;
   1677       1.1       jtc #endif /* defined TM_GMTOFF */
   1678      1.45   mlelstv 	return tmp;
   1679  1.82.2.1    martin out_of_range:
   1680  1.82.2.1    martin 	errno = EOVERFLOW;
   1681  1.82.2.1    martin 	return NULL;
   1682       1.1       jtc }
   1683       1.1       jtc 
   1684       1.1       jtc char *
   1685      1.49  christos ctime(const time_t *const timep)
   1686       1.1       jtc {
   1687       1.1       jtc /*
   1688       1.1       jtc ** Section 4.12.3.2 of X3.159-1989 requires that
   1689      1.18    kleink **	The ctime function converts the calendar time pointed to by timer
   1690      1.45   mlelstv **	to local time in the form of a string. It is equivalent to
   1691       1.1       jtc **		asctime(localtime(timer))
   1692       1.1       jtc */
   1693  1.82.2.1    martin 	struct tm *tmp = localtime(timep);
   1694  1.82.2.1    martin 	return tmp ? asctime(tmp) : NULL;
   1695      1.18    kleink }
   1696      1.18    kleink 
   1697      1.18    kleink char *
   1698      1.49  christos ctime_r(const time_t *const timep, char *buf)
   1699      1.18    kleink {
   1700  1.82.2.1    martin 	struct tm mytm;
   1701  1.82.2.1    martin 	struct tm *tmp = localtime_r(timep, &mytm);
   1702  1.82.2.1    martin 	return tmp ? asctime_r(tmp, buf) : NULL;
   1703       1.1       jtc }
   1704       1.1       jtc 
   1705      1.49  christos char *
   1706      1.49  christos ctime_rz(const timezone_t sp, const time_t * timep, char *buf)
   1707      1.49  christos {
   1708      1.49  christos 	struct tm	mytm, *rtm;
   1709      1.49  christos 
   1710      1.49  christos 	rtm = localtime_rz(sp, timep, &mytm);
   1711      1.49  christos 	if (rtm == NULL)
   1712      1.49  christos 		return NULL;
   1713      1.49  christos 	return asctime_r(rtm, buf);
   1714      1.49  christos }
   1715      1.49  christos 
   1716       1.1       jtc /*
   1717       1.1       jtc ** Adapted from code provided by Robert Elz, who writes:
   1718       1.1       jtc **	The "best" way to do mktime I think is based on an idea of Bob
   1719       1.7       jtc **	Kridle's (so its said...) from a long time ago.
   1720      1.45   mlelstv **	It does a binary search of the time_t space. Since time_t's are
   1721       1.1       jtc **	just 32 bits, its a max of 32 iterations (even at 64 bits it
   1722       1.1       jtc **	would still be very reasonable).
   1723       1.1       jtc */
   1724       1.1       jtc 
   1725       1.1       jtc #ifndef WRONG
   1726      1.51  christos #define WRONG	((time_t)-1)
   1727       1.1       jtc #endif /* !defined WRONG */
   1728       1.1       jtc 
   1729       1.1       jtc /*
   1730  1.82.2.1    martin ** Normalize logic courtesy Paul Eggert.
   1731       1.1       jtc */
   1732       1.1       jtc 
   1733  1.82.2.1    martin static bool
   1734      1.68  christos increment_overflow(int *const ip, int j)
   1735       1.1       jtc {
   1736  1.82.2.1    martin 	int const	i = *ip;
   1737       1.1       jtc 
   1738      1.58  christos 	/*
   1739      1.58  christos 	** If i >= 0 there can only be overflow if i + j > INT_MAX
   1740      1.58  christos 	** or if j > INT_MAX - i; given i >= 0, INT_MAX - i cannot overflow.
   1741      1.58  christos 	** If i < 0 there can only be overflow if i + j < INT_MIN
   1742      1.58  christos 	** or if j < INT_MIN - i; given i < 0, INT_MIN - i cannot overflow.
   1743      1.58  christos 	*/
   1744      1.58  christos 	if ((i >= 0) ? (j > INT_MAX - i) : (j < INT_MIN - i))
   1745  1.82.2.1    martin 		return true;
   1746      1.58  christos 	*ip += j;
   1747  1.82.2.1    martin 	return false;
   1748       1.1       jtc }
   1749       1.1       jtc 
   1750  1.82.2.1    martin static bool
   1751      1.74  christos increment_overflow32(int_fast32_t *const lp, int const m)
   1752      1.45   mlelstv {
   1753  1.82.2.1    martin 	int_fast32_t const l = *lp;
   1754      1.45   mlelstv 
   1755      1.74  christos 	if ((l >= 0) ? (m > INT_FAST32_MAX - l) : (m < INT_FAST32_MIN - l))
   1756  1.82.2.1    martin 		return true;
   1757      1.58  christos 	*lp += m;
   1758  1.82.2.1    martin 	return false;
   1759      1.45   mlelstv }
   1760      1.45   mlelstv 
   1761  1.82.2.1    martin static bool
   1762      1.81  christos increment_overflow_time(time_t *tp, int_fast32_t j)
   1763      1.81  christos {
   1764      1.81  christos 	/*
   1765      1.81  christos 	** This is like
   1766      1.81  christos 	** 'if (! (time_t_min <= *tp + j && *tp + j <= time_t_max)) ...',
   1767      1.81  christos 	** except that it does the right thing even if *tp + j would overflow.
   1768      1.81  christos 	*/
   1769      1.81  christos 	if (! (j < 0
   1770      1.81  christos 	       ? (TYPE_SIGNED(time_t) ? time_t_min - j <= *tp : -1 - j < *tp)
   1771      1.81  christos 	       : *tp <= time_t_max - j))
   1772  1.82.2.1    martin 		return true;
   1773      1.81  christos 	*tp += j;
   1774  1.82.2.1    martin 	return false;
   1775      1.81  christos }
   1776      1.81  christos 
   1777  1.82.2.1    martin static bool
   1778      1.49  christos normalize_overflow(int *const tensptr, int *const unitsptr, const int base)
   1779       1.1       jtc {
   1780      1.49  christos 	int	tensdelta;
   1781       1.1       jtc 
   1782       1.1       jtc 	tensdelta = (*unitsptr >= 0) ?
   1783       1.1       jtc 		(*unitsptr / base) :
   1784       1.1       jtc 		(-1 - (-1 - *unitsptr) / base);
   1785       1.1       jtc 	*unitsptr -= tensdelta * base;
   1786       1.1       jtc 	return increment_overflow(tensptr, tensdelta);
   1787       1.1       jtc }
   1788       1.1       jtc 
   1789  1.82.2.1    martin static bool
   1790      1.74  christos normalize_overflow32(int_fast32_t *const tensptr, int *const unitsptr,
   1791  1.82.2.1    martin 		     const int base)
   1792      1.45   mlelstv {
   1793      1.49  christos 	int	tensdelta;
   1794      1.45   mlelstv 
   1795      1.45   mlelstv 	tensdelta = (*unitsptr >= 0) ?
   1796      1.45   mlelstv 		(*unitsptr / base) :
   1797      1.45   mlelstv 		(-1 - (-1 - *unitsptr) / base);
   1798      1.45   mlelstv 	*unitsptr -= tensdelta * base;
   1799      1.74  christos 	return increment_overflow32(tensptr, tensdelta);
   1800      1.45   mlelstv }
   1801      1.45   mlelstv 
   1802      1.45   mlelstv static int
   1803  1.82.2.1    martin tmcomp(const struct tm *const atmp,
   1804  1.82.2.1    martin        const struct tm *const btmp)
   1805       1.1       jtc {
   1806      1.49  christos 	int	result;
   1807       1.1       jtc 
   1808      1.78  christos 	if (atmp->tm_year != btmp->tm_year)
   1809      1.78  christos 		return atmp->tm_year < btmp->tm_year ? -1 : 1;
   1810      1.78  christos 	if ((result = (atmp->tm_mon - btmp->tm_mon)) == 0 &&
   1811       1.1       jtc 		(result = (atmp->tm_mday - btmp->tm_mday)) == 0 &&
   1812       1.1       jtc 		(result = (atmp->tm_hour - btmp->tm_hour)) == 0 &&
   1813       1.1       jtc 		(result = (atmp->tm_min - btmp->tm_min)) == 0)
   1814       1.1       jtc 			result = atmp->tm_sec - btmp->tm_sec;
   1815       1.1       jtc 	return result;
   1816       1.1       jtc }
   1817       1.1       jtc 
   1818       1.1       jtc static time_t
   1819  1.82.2.1    martin time2sub(struct tm *const tmp,
   1820  1.82.2.1    martin 	 struct tm *(*funcp)(struct state const *, time_t const *,
   1821  1.82.2.1    martin 			     int_fast32_t, struct tm *),
   1822  1.82.2.1    martin 	 struct state const *sp,
   1823  1.82.2.1    martin  	 const int_fast32_t offset,
   1824  1.82.2.1    martin 	 bool *okayp,
   1825  1.82.2.1    martin 	 bool do_norm_secs)
   1826      1.49  christos {
   1827      1.49  christos 	int			dir;
   1828      1.49  christos 	int			i, j;
   1829      1.49  christos 	int			saved_seconds;
   1830      1.74  christos 	int_fast32_t		li;
   1831      1.49  christos 	time_t			lo;
   1832      1.49  christos 	time_t			hi;
   1833      1.61  christos #ifdef NO_ERROR_IN_DST_GAP
   1834      1.61  christos 	time_t			ilo;
   1835      1.61  christos #endif
   1836      1.74  christos 	int_fast32_t		y;
   1837      1.74  christos 	time_t			newt;
   1838      1.74  christos 	time_t			t;
   1839      1.74  christos 	struct tm		yourtm, mytm;
   1840       1.1       jtc 
   1841  1.82.2.1    martin 	*okayp = false;
   1842       1.1       jtc 	yourtm = *tmp;
   1843      1.64  christos #ifdef NO_ERROR_IN_DST_GAP
   1844      1.64  christos again:
   1845      1.64  christos #endif
   1846      1.13       jtc 	if (do_norm_secs) {
   1847      1.13       jtc 		if (normalize_overflow(&yourtm.tm_min, &yourtm.tm_sec,
   1848      1.60  christos 		    SECSPERMIN))
   1849  1.82.2.1    martin 			goto out_of_range;
   1850      1.13       jtc 	}
   1851       1.1       jtc 	if (normalize_overflow(&yourtm.tm_hour, &yourtm.tm_min, MINSPERHOUR))
   1852  1.82.2.1    martin 		goto out_of_range;
   1853       1.1       jtc 	if (normalize_overflow(&yourtm.tm_mday, &yourtm.tm_hour, HOURSPERDAY))
   1854  1.82.2.1    martin 		goto out_of_range;
   1855      1.45   mlelstv 	y = yourtm.tm_year;
   1856      1.74  christos 	if (normalize_overflow32(&y, &yourtm.tm_mon, MONSPERYEAR))
   1857  1.82.2.1    martin 		goto out_of_range;
   1858       1.1       jtc 	/*
   1859      1.45   mlelstv 	** Turn y into an actual year number for now.
   1860       1.1       jtc 	** It is converted back to an offset from TM_YEAR_BASE later.
   1861       1.1       jtc 	*/
   1862      1.74  christos 	if (increment_overflow32(&y, TM_YEAR_BASE))
   1863  1.82.2.1    martin 		goto out_of_range;
   1864       1.1       jtc 	while (yourtm.tm_mday <= 0) {
   1865      1.74  christos 		if (increment_overflow32(&y, -1))
   1866  1.82.2.1    martin 			goto out_of_range;
   1867      1.45   mlelstv 		li = y + (1 < yourtm.tm_mon);
   1868      1.45   mlelstv 		yourtm.tm_mday += year_lengths[isleap(li)];
   1869       1.1       jtc 	}
   1870       1.1       jtc 	while (yourtm.tm_mday > DAYSPERLYEAR) {
   1871      1.45   mlelstv 		li = y + (1 < yourtm.tm_mon);
   1872      1.45   mlelstv 		yourtm.tm_mday -= year_lengths[isleap(li)];
   1873      1.74  christos 		if (increment_overflow32(&y, 1))
   1874  1.82.2.1    martin 			goto out_of_range;
   1875       1.1       jtc 	}
   1876       1.1       jtc 	for ( ; ; ) {
   1877      1.45   mlelstv 		i = mon_lengths[isleap(y)][yourtm.tm_mon];
   1878       1.1       jtc 		if (yourtm.tm_mday <= i)
   1879       1.1       jtc 			break;
   1880       1.1       jtc 		yourtm.tm_mday -= i;
   1881       1.1       jtc 		if (++yourtm.tm_mon >= MONSPERYEAR) {
   1882       1.1       jtc 			yourtm.tm_mon = 0;
   1883      1.74  christos 			if (increment_overflow32(&y, 1))
   1884  1.82.2.1    martin 				goto out_of_range;
   1885       1.1       jtc 		}
   1886       1.1       jtc 	}
   1887      1.74  christos 	if (increment_overflow32(&y, -TM_YEAR_BASE))
   1888  1.82.2.1    martin 		goto out_of_range;
   1889  1.82.2.1    martin 	if (! (INT_MIN <= y && y <= INT_MAX))
   1890  1.82.2.1    martin 		goto out_of_range;
   1891      1.66  christos 	yourtm.tm_year = (int)y;
   1892      1.29    kleink 	if (yourtm.tm_sec >= 0 && yourtm.tm_sec < SECSPERMIN)
   1893      1.29    kleink 		saved_seconds = 0;
   1894      1.45   mlelstv 	else if (y + TM_YEAR_BASE < EPOCH_YEAR) {
   1895       1.1       jtc 		/*
   1896       1.1       jtc 		** We can't set tm_sec to 0, because that might push the
   1897       1.1       jtc 		** time below the minimum representable time.
   1898       1.1       jtc 		** Set tm_sec to 59 instead.
   1899       1.1       jtc 		** This assumes that the minimum representable time is
   1900       1.1       jtc 		** not in the same minute that a leap second was deleted from,
   1901       1.1       jtc 		** which is a safer assumption than using 58 would be.
   1902       1.1       jtc 		*/
   1903       1.1       jtc 		if (increment_overflow(&yourtm.tm_sec, 1 - SECSPERMIN))
   1904  1.82.2.1    martin 			goto out_of_range;
   1905       1.1       jtc 		saved_seconds = yourtm.tm_sec;
   1906       1.1       jtc 		yourtm.tm_sec = SECSPERMIN - 1;
   1907       1.1       jtc 	} else {
   1908       1.1       jtc 		saved_seconds = yourtm.tm_sec;
   1909       1.1       jtc 		yourtm.tm_sec = 0;
   1910       1.1       jtc 	}
   1911       1.1       jtc 	/*
   1912      1.45   mlelstv 	** Do a binary search (this works whatever time_t's type is).
   1913       1.1       jtc 	*/
   1914      1.70  christos 	/* LINTED const not */
   1915      1.45   mlelstv 	if (!TYPE_SIGNED(time_t)) {
   1916      1.45   mlelstv 		lo = 0;
   1917      1.45   mlelstv 		hi = lo - 1;
   1918      1.45   mlelstv 	} else {
   1919      1.45   mlelstv 		lo = 1;
   1920      1.45   mlelstv 		for (i = 0; i < (int) TYPE_BIT(time_t) - 1; ++i)
   1921      1.45   mlelstv 			lo *= 2;
   1922      1.45   mlelstv 		hi = -(lo + 1);
   1923      1.45   mlelstv 	}
   1924      1.61  christos #ifdef NO_ERROR_IN_DST_GAP
   1925      1.61  christos 	ilo = lo;
   1926      1.61  christos #endif
   1927       1.1       jtc 	for ( ; ; ) {
   1928      1.45   mlelstv 		t = lo / 2 + hi / 2;
   1929      1.45   mlelstv 		if (t < lo)
   1930      1.45   mlelstv 			t = lo;
   1931      1.45   mlelstv 		else if (t > hi)
   1932      1.45   mlelstv 			t = hi;
   1933  1.82.2.1    martin 		if (! funcp(sp, &t, offset, &mytm)) {
   1934      1.45   mlelstv 			/*
   1935      1.45   mlelstv 			** Assume that t is too extreme to be represented in
   1936      1.45   mlelstv 			** a struct tm; arrange things so that it is less
   1937      1.45   mlelstv 			** extreme on the next pass.
   1938      1.45   mlelstv 			*/
   1939      1.45   mlelstv 			dir = (t > 0) ? 1 : -1;
   1940      1.45   mlelstv 		} else	dir = tmcomp(&mytm, &yourtm);
   1941       1.1       jtc 		if (dir != 0) {
   1942      1.45   mlelstv 			if (t == lo) {
   1943      1.78  christos 				if (t == time_t_max)
   1944  1.82.2.1    martin 					goto out_of_range;
   1945      1.45   mlelstv 				++t;
   1946      1.45   mlelstv 				++lo;
   1947      1.45   mlelstv 			} else if (t == hi) {
   1948      1.78  christos 				if (t == time_t_min)
   1949  1.82.2.1    martin 					goto out_of_range;
   1950      1.45   mlelstv 				--t;
   1951      1.45   mlelstv 				--hi;
   1952      1.45   mlelstv 			}
   1953      1.59  christos #ifdef NO_ERROR_IN_DST_GAP
   1954      1.64  christos 			if (ilo != lo && lo - 1 == hi && yourtm.tm_isdst < 0 &&
   1955      1.64  christos 			    do_norm_secs) {
   1956      1.59  christos 				for (i = sp->typecnt - 1; i >= 0; --i) {
   1957      1.59  christos 					for (j = sp->typecnt - 1; j >= 0; --j) {
   1958      1.64  christos 						time_t off;
   1959      1.59  christos 						if (sp->ttis[j].tt_isdst ==
   1960      1.59  christos 						    sp->ttis[i].tt_isdst)
   1961      1.59  christos 							continue;
   1962      1.59  christos 						off = sp->ttis[j].tt_gmtoff -
   1963      1.59  christos 						    sp->ttis[i].tt_gmtoff;
   1964      1.64  christos 						yourtm.tm_sec += off < 0 ?
   1965      1.64  christos 						    -off : off;
   1966      1.64  christos 						goto again;
   1967      1.59  christos 					}
   1968      1.59  christos 				}
   1969      1.59  christos 			}
   1970      1.59  christos #endif
   1971      1.45   mlelstv 			if (lo > hi)
   1972      1.60  christos 				goto invalid;
   1973      1.45   mlelstv 			if (dir > 0)
   1974      1.45   mlelstv 				hi = t;
   1975      1.45   mlelstv 			else	lo = t;
   1976       1.1       jtc 			continue;
   1977       1.1       jtc 		}
   1978  1.82.2.1    martin #if defined TM_GMTOFF && ! UNINIT_TRAP
   1979  1.82.2.1    martin 		if (mytm.TM_GMTOFF != yourtm.TM_GMTOFF
   1980  1.82.2.1    martin 		    && (yourtm.TM_GMTOFF < 0
   1981  1.82.2.1    martin 			? (-SECSPERDAY <= yourtm.TM_GMTOFF
   1982  1.82.2.1    martin 			   && (mytm.TM_GMTOFF <=
   1983  1.82.2.1    martin 			       (/*CONSTCOND*/SMALLEST (INT_FAST32_MAX, LONG_MAX)
   1984  1.82.2.1    martin 				+ yourtm.TM_GMTOFF)))
   1985  1.82.2.1    martin 			: (yourtm.TM_GMTOFF <= SECSPERDAY
   1986  1.82.2.1    martin 			   && ((/*CONSTCOND*/BIGGEST (INT_FAST32_MIN, LONG_MIN)
   1987  1.82.2.1    martin 				+ yourtm.TM_GMTOFF)
   1988  1.82.2.1    martin 			       <= mytm.TM_GMTOFF)))) {
   1989  1.82.2.1    martin 		  /* MYTM matches YOURTM except with the wrong UTC offset.
   1990  1.82.2.1    martin 		     YOURTM.TM_GMTOFF is plausible, so try it instead.
   1991  1.82.2.1    martin 		     It's OK if YOURTM.TM_GMTOFF contains uninitialized data,
   1992  1.82.2.1    martin 		     since the guess gets checked.  */
   1993  1.82.2.1    martin 		  time_t altt = t;
   1994  1.82.2.1    martin 		  int_fast32_t diff = (int_fast32_t)
   1995  1.82.2.1    martin 		      (mytm.TM_GMTOFF - yourtm.TM_GMTOFF);
   1996  1.82.2.1    martin 		  if (!increment_overflow_time(&altt, diff)) {
   1997  1.82.2.1    martin 		    struct tm alttm;
   1998  1.82.2.1    martin 		    if (! funcp(sp, &altt, offset, &alttm)
   1999  1.82.2.1    martin 			&& alttm.tm_isdst == mytm.tm_isdst
   2000  1.82.2.1    martin 			&& alttm.TM_GMTOFF == yourtm.TM_GMTOFF
   2001  1.82.2.1    martin 			&& tmcomp(&alttm, &yourtm)) {
   2002  1.82.2.1    martin 		      t = altt;
   2003  1.82.2.1    martin 		      mytm = alttm;
   2004  1.82.2.1    martin 		    }
   2005  1.82.2.1    martin 		  }
   2006  1.82.2.1    martin 		}
   2007  1.82.2.1    martin #endif
   2008       1.1       jtc 		if (yourtm.tm_isdst < 0 || mytm.tm_isdst == yourtm.tm_isdst)
   2009       1.1       jtc 			break;
   2010       1.1       jtc 		/*
   2011       1.1       jtc 		** Right time, wrong type.
   2012       1.1       jtc 		** Hunt for right time, right type.
   2013       1.1       jtc 		** It's okay to guess wrong since the guess
   2014       1.1       jtc 		** gets checked.
   2015       1.1       jtc 		*/
   2016       1.1       jtc 		if (sp == NULL)
   2017      1.60  christos 			goto invalid;
   2018       1.5       jtc 		for (i = sp->typecnt - 1; i >= 0; --i) {
   2019       1.1       jtc 			if (sp->ttis[i].tt_isdst != yourtm.tm_isdst)
   2020       1.1       jtc 				continue;
   2021       1.5       jtc 			for (j = sp->typecnt - 1; j >= 0; --j) {
   2022       1.1       jtc 				if (sp->ttis[j].tt_isdst == yourtm.tm_isdst)
   2023       1.1       jtc 					continue;
   2024      1.66  christos 				newt = (time_t)(t + sp->ttis[j].tt_gmtoff -
   2025      1.66  christos 				    sp->ttis[i].tt_gmtoff);
   2026  1.82.2.1    martin 				if (! funcp(sp, &newt, offset, &mytm))
   2027      1.45   mlelstv 					continue;
   2028       1.1       jtc 				if (tmcomp(&mytm, &yourtm) != 0)
   2029       1.1       jtc 					continue;
   2030       1.1       jtc 				if (mytm.tm_isdst != yourtm.tm_isdst)
   2031       1.1       jtc 					continue;
   2032       1.1       jtc 				/*
   2033       1.1       jtc 				** We have a match.
   2034       1.1       jtc 				*/
   2035       1.1       jtc 				t = newt;
   2036       1.1       jtc 				goto label;
   2037       1.1       jtc 			}
   2038       1.1       jtc 		}
   2039      1.60  christos 		goto invalid;
   2040       1.1       jtc 	}
   2041       1.1       jtc label:
   2042       1.1       jtc 	newt = t + saved_seconds;
   2043       1.1       jtc 	if ((newt < t) != (saved_seconds < 0))
   2044  1.82.2.1    martin 		goto out_of_range;
   2045       1.1       jtc 	t = newt;
   2046  1.82.2.1    martin 	if (funcp(sp, &t, offset, tmp)) {
   2047  1.82.2.1    martin 		*okayp = true;
   2048      1.51  christos 		return t;
   2049      1.60  christos 	}
   2050  1.82.2.1    martin out_of_range:
   2051      1.60  christos 	errno = EOVERFLOW;
   2052      1.60  christos 	return WRONG;
   2053      1.60  christos invalid:
   2054      1.60  christos 	errno = EINVAL;
   2055      1.60  christos 	return WRONG;
   2056      1.13       jtc }
   2057      1.13       jtc 
   2058      1.13       jtc static time_t
   2059  1.82.2.1    martin time2(struct tm * const	tmp,
   2060  1.82.2.1    martin       struct tm *(*funcp)(struct state const *, time_t const *,
   2061  1.82.2.1    martin 			  int_fast32_t, struct tm *),
   2062  1.82.2.1    martin       struct state const *sp,
   2063  1.82.2.1    martin       const int_fast32_t offset,
   2064  1.82.2.1    martin       bool *okayp)
   2065      1.13       jtc {
   2066      1.13       jtc 	time_t	t;
   2067      1.13       jtc 
   2068      1.13       jtc 	/*
   2069      1.13       jtc 	** First try without normalization of seconds
   2070      1.13       jtc 	** (in case tm_sec contains a value associated with a leap second).
   2071      1.13       jtc 	** If that fails, try with normalization of seconds.
   2072      1.13       jtc 	*/
   2073  1.82.2.1    martin 	t = time2sub(tmp, funcp, sp, offset, okayp, false);
   2074  1.82.2.1    martin 	return *okayp ? t : time2sub(tmp, funcp, sp, offset, okayp, true);
   2075       1.1       jtc }
   2076       1.1       jtc 
   2077       1.1       jtc static time_t
   2078  1.82.2.1    martin time1(struct tm *const tmp,
   2079  1.82.2.1    martin       struct tm *(*funcp) (struct state const *, time_t const *,
   2080  1.82.2.1    martin 			   int_fast32_t, struct tm *),
   2081  1.82.2.1    martin       struct state const *sp,
   2082  1.82.2.1    martin       const int_fast32_t offset)
   2083      1.49  christos {
   2084      1.49  christos 	time_t			t;
   2085      1.49  christos 	int			samei, otheri;
   2086      1.49  christos 	int			sameind, otherind;
   2087      1.49  christos 	int			i;
   2088      1.49  christos 	int			nseen;
   2089  1.82.2.1    martin 	int			save_errno;
   2090  1.82.2.1    martin 	char				seen[TZ_MAX_TYPES];
   2091  1.82.2.1    martin 	unsigned char			types[TZ_MAX_TYPES];
   2092  1.82.2.1    martin 	bool				okay;
   2093       1.1       jtc 
   2094      1.58  christos 	if (tmp == NULL) {
   2095      1.58  christos 		errno = EINVAL;
   2096      1.58  christos 		return WRONG;
   2097      1.58  christos 	}
   2098       1.1       jtc 	if (tmp->tm_isdst > 1)
   2099       1.1       jtc 		tmp->tm_isdst = 1;
   2100  1.82.2.1    martin 	save_errno = errno;
   2101  1.82.2.1    martin 	t = time2(tmp, funcp, sp, offset, &okay);
   2102  1.82.2.1    martin 	if (okay) {
   2103  1.82.2.1    martin 		errno = save_errno;
   2104       1.1       jtc 		return t;
   2105  1.82.2.1    martin 	}
   2106       1.1       jtc 	if (tmp->tm_isdst < 0)
   2107      1.82  christos #ifdef PCTS
   2108      1.82  christos 		/*
   2109      1.82  christos 		** POSIX Conformance Test Suite code courtesy Grant Sullivan.
   2110      1.82  christos 		*/
   2111       1.1       jtc 		tmp->tm_isdst = 0;	/* reset to std and try again */
   2112      1.82  christos #else
   2113       1.1       jtc 		return t;
   2114       1.1       jtc #endif /* !defined PCTS */
   2115       1.1       jtc 	/*
   2116       1.1       jtc 	** We're supposed to assume that somebody took a time of one type
   2117       1.1       jtc 	** and did some math on it that yielded a "struct tm" that's bad.
   2118       1.1       jtc 	** We try to divine the type they started from and adjust to the
   2119       1.1       jtc 	** type they need.
   2120       1.1       jtc 	*/
   2121      1.60  christos 	if (sp == NULL) {
   2122      1.60  christos 		errno = EINVAL;
   2123       1.1       jtc 		return WRONG;
   2124      1.60  christos 	}
   2125      1.35    kleink 	for (i = 0; i < sp->typecnt; ++i)
   2126  1.82.2.1    martin 		seen[i] = false;
   2127      1.35    kleink 	nseen = 0;
   2128      1.35    kleink 	for (i = sp->timecnt - 1; i >= 0; --i)
   2129      1.35    kleink 		if (!seen[sp->types[i]]) {
   2130  1.82.2.1    martin 			seen[sp->types[i]] = true;
   2131      1.35    kleink 			types[nseen++] = sp->types[i];
   2132      1.35    kleink 		}
   2133      1.35    kleink 	for (sameind = 0; sameind < nseen; ++sameind) {
   2134      1.35    kleink 		samei = types[sameind];
   2135       1.1       jtc 		if (sp->ttis[samei].tt_isdst != tmp->tm_isdst)
   2136       1.1       jtc 			continue;
   2137      1.35    kleink 		for (otherind = 0; otherind < nseen; ++otherind) {
   2138      1.35    kleink 			otheri = types[otherind];
   2139       1.1       jtc 			if (sp->ttis[otheri].tt_isdst == tmp->tm_isdst)
   2140       1.1       jtc 				continue;
   2141      1.21  christos 			tmp->tm_sec += (int)(sp->ttis[otheri].tt_gmtoff -
   2142      1.21  christos 					sp->ttis[samei].tt_gmtoff);
   2143       1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   2144  1.82.2.1    martin 			t = time2(tmp, funcp, sp, offset, &okay);
   2145  1.82.2.1    martin 			if (okay) {
   2146  1.82.2.1    martin 				errno = save_errno;
   2147       1.1       jtc 				return t;
   2148  1.82.2.1    martin 			}
   2149      1.21  christos 			tmp->tm_sec -= (int)(sp->ttis[otheri].tt_gmtoff -
   2150      1.21  christos 					sp->ttis[samei].tt_gmtoff);
   2151       1.1       jtc 			tmp->tm_isdst = !tmp->tm_isdst;
   2152       1.1       jtc 		}
   2153       1.1       jtc 	}
   2154      1.60  christos 	errno = EOVERFLOW;
   2155       1.1       jtc 	return WRONG;
   2156       1.1       jtc }
   2157       1.1       jtc 
   2158  1.82.2.1    martin static time_t
   2159  1.82.2.1    martin mktime_tzname(timezone_t sp, struct tm *tmp, bool setname)
   2160  1.82.2.1    martin {
   2161  1.82.2.1    martin 	if (sp)
   2162  1.82.2.1    martin 		return time1(tmp, localsub, sp, setname);
   2163  1.82.2.1    martin 	else {
   2164  1.82.2.1    martin 		gmtcheck();
   2165  1.82.2.1    martin 		return time1(tmp, gmtsub, gmtptr, 0);
   2166  1.82.2.1    martin 	}
   2167  1.82.2.1    martin }
   2168  1.82.2.1    martin 
   2169  1.82.2.1    martin #if NETBSD_INSPIRED
   2170  1.82.2.1    martin 
   2171       1.1       jtc time_t
   2172  1.82.2.1    martin mktime_z(timezone_t sp, struct tm *const tmp)
   2173      1.49  christos {
   2174  1.82.2.1    martin 	return mktime_tzname(sp, tmp, false);
   2175      1.49  christos }
   2176      1.49  christos 
   2177  1.82.2.1    martin #endif
   2178  1.82.2.1    martin 
   2179      1.49  christos time_t
   2180      1.68  christos mktime(struct tm *const tmp)
   2181       1.1       jtc {
   2182  1.82.2.1    martin 	time_t t;
   2183      1.19    kleink 
   2184      1.45   mlelstv 	rwlock_wrlock(&lcl_lock);
   2185      1.45   mlelstv 	tzset_unlocked();
   2186  1.82.2.1    martin 	t = mktime_tzname(lclptr, tmp, true);
   2187      1.45   mlelstv 	rwlock_unlock(&lcl_lock);
   2188  1.82.2.1    martin 	return t;
   2189       1.1       jtc }
   2190       1.1       jtc 
   2191       1.1       jtc #ifdef STD_INSPIRED
   2192       1.1       jtc 
   2193       1.1       jtc time_t
   2194      1.68  christos timelocal_z(const timezone_t sp, struct tm *const tmp)
   2195      1.49  christos {
   2196      1.49  christos 	if (tmp != NULL)
   2197      1.49  christos 		tmp->tm_isdst = -1;	/* in case it wasn't initialized */
   2198      1.49  christos 	return mktime_z(sp, tmp);
   2199      1.49  christos }
   2200      1.49  christos 
   2201      1.49  christos time_t
   2202      1.49  christos timelocal(struct tm *const tmp)
   2203       1.1       jtc {
   2204      1.58  christos 	if (tmp != NULL)
   2205      1.58  christos 		tmp->tm_isdst = -1;	/* in case it wasn't initialized */
   2206       1.1       jtc 	return mktime(tmp);
   2207       1.1       jtc }
   2208       1.1       jtc 
   2209       1.1       jtc time_t
   2210      1.49  christos timegm(struct tm *const tmp)
   2211       1.1       jtc {
   2212      1.51  christos 
   2213  1.82.2.1    martin 	return timeoff(tmp, 0);
   2214       1.1       jtc }
   2215       1.1       jtc 
   2216       1.1       jtc time_t
   2217      1.74  christos timeoff(struct tm *const tmp, long offset)
   2218       1.1       jtc {
   2219  1.82.2.1    martin 	if (tmp)
   2220      1.58  christos 		tmp->tm_isdst = 0;
   2221  1.82.2.1    martin 	gmtcheck();
   2222  1.82.2.1    martin 	return time1(tmp, gmtsub, gmtptr, (int_fast32_t)offset);
   2223       1.1       jtc }
   2224       1.1       jtc 
   2225       1.1       jtc #endif /* defined STD_INSPIRED */
   2226       1.1       jtc 
   2227       1.1       jtc /*
   2228       1.1       jtc ** XXX--is the below the right way to conditionalize??
   2229       1.1       jtc */
   2230       1.1       jtc 
   2231       1.1       jtc #ifdef STD_INSPIRED
   2232       1.1       jtc 
   2233       1.1       jtc /*
   2234       1.1       jtc ** IEEE Std 1003.1-1988 (POSIX) legislates that 536457599
   2235      1.14       jtc ** shall correspond to "Wed Dec 31 23:59:59 UTC 1986", which
   2236       1.1       jtc ** is not the case if we are accounting for leap seconds.
   2237       1.1       jtc ** So, we provide the following conversion routines for use
   2238       1.1       jtc ** when exchanging timestamps with POSIX conforming systems.
   2239       1.1       jtc */
   2240       1.1       jtc 
   2241      1.74  christos static int_fast64_t
   2242  1.82.2.1    martin leapcorr(const timezone_t sp, time_t t)
   2243       1.1       jtc {
   2244  1.82.2.1    martin 	struct lsinfo const * lp;
   2245      1.49  christos 	int		i;
   2246       1.1       jtc 
   2247       1.1       jtc 	i = sp->leapcnt;
   2248       1.1       jtc 	while (--i >= 0) {
   2249       1.1       jtc 		lp = &sp->lsis[i];
   2250  1.82.2.1    martin 		if (t >= lp->ls_trans)
   2251       1.1       jtc 			return lp->ls_corr;
   2252       1.1       jtc 	}
   2253       1.1       jtc 	return 0;
   2254       1.1       jtc }
   2255       1.1       jtc 
   2256  1.82.2.1    martin NETBSD_INSPIRED_EXTERN time_t ATTRIBUTE_PURE
   2257  1.82.2.1    martin time2posix_z(timezone_t sp, time_t t)
   2258      1.49  christos {
   2259  1.82.2.1    martin 	return (time_t)(t - leapcorr(sp, t));
   2260      1.49  christos }
   2261      1.49  christos 
   2262      1.49  christos time_t
   2263      1.49  christos time2posix(time_t t)
   2264       1.1       jtc {
   2265      1.45   mlelstv 	rwlock_wrlock(&lcl_lock);
   2266  1.82.2.1    martin 	if (!lcl_is_set)
   2267  1.82.2.1    martin 		tzset_unlocked();
   2268  1.82.2.1    martin 	if (lclptr)
   2269  1.82.2.1    martin 		t = (time_t)(t - leapcorr(lclptr, t));
   2270      1.45   mlelstv 	rwlock_unlock(&lcl_lock);
   2271  1.82.2.1    martin 	return t;
   2272       1.1       jtc }
   2273       1.1       jtc 
   2274  1.82.2.1    martin NETBSD_INSPIRED_EXTERN time_t ATTRIBUTE_PURE
   2275  1.82.2.1    martin posix2time_z(timezone_t sp, time_t t)
   2276       1.1       jtc {
   2277       1.1       jtc 	time_t	x;
   2278       1.1       jtc 	time_t	y;
   2279       1.1       jtc 
   2280       1.1       jtc 	/*
   2281       1.1       jtc 	** For a positive leap second hit, the result
   2282      1.45   mlelstv 	** is not unique. For a negative leap second
   2283       1.1       jtc 	** hit, the corresponding time doesn't exist,
   2284       1.1       jtc 	** so we return an adjacent second.
   2285       1.1       jtc 	*/
   2286  1.82.2.1    martin 	x = (time_t)(t + leapcorr(sp, t));
   2287  1.82.2.1    martin 	y = (time_t)(x - leapcorr(sp, x));
   2288       1.1       jtc 	if (y < t) {
   2289       1.1       jtc 		do {
   2290       1.1       jtc 			x++;
   2291  1.82.2.1    martin 			y = (time_t)(x - leapcorr(sp, x));
   2292       1.1       jtc 		} while (y < t);
   2293  1.82.2.1    martin 		x -= y != t;
   2294       1.1       jtc 	} else if (y > t) {
   2295       1.1       jtc 		do {
   2296       1.1       jtc 			--x;
   2297  1.82.2.1    martin 			y = (time_t)(x - leapcorr(sp, x));
   2298       1.1       jtc 		} while (y > t);
   2299  1.82.2.1    martin 		x += y != t;
   2300       1.1       jtc 	}
   2301      1.49  christos 	return x;
   2302      1.49  christos }
   2303      1.49  christos 
   2304      1.49  christos time_t
   2305      1.49  christos posix2time(time_t t)
   2306      1.49  christos {
   2307      1.49  christos 	rwlock_wrlock(&lcl_lock);
   2308  1.82.2.1    martin 	if (!lcl_is_set)
   2309  1.82.2.1    martin 		tzset_unlocked();
   2310  1.82.2.1    martin 	if (lclptr)
   2311  1.82.2.1    martin 		t = posix2time_z(lclptr, t);
   2312      1.45   mlelstv 	rwlock_unlock(&lcl_lock);
   2313  1.82.2.1    martin 	return t;
   2314       1.1       jtc }
   2315       1.1       jtc 
   2316       1.1       jtc #endif /* defined STD_INSPIRED */
   2317