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libuser-0.63
lib/getdate.y
918 строк
21 KB
Miloslav Trmač
Correctly cast an argument to tolower ().
06 фев 2012, 19:37
06 фев 2012, 19:37
bf232f2
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%{ /* ** Originally written by Steven M. Bellovin <smb@research.att.com> while ** at the University of North Carolina at Chapel Hill. Later tweaked by ** a couple of people on Usenet. Completely overhauled by Rich $alz ** <rsalz@bbn.com> and Jim Berets <jberets@bbn.com> in August, 1990; ** ** This grammar has 13 shift/reduce conflicts. ** ** This code is in the public domain and has no copyright. */ #ifdef HAVE_CONFIG_H # include <config.h> #endif /* Since the code of getdate.y is not included in the Emacs executable itself, there is no need to #define static in this file. Even if the code were included in the Emacs executable, it probably wouldn't do any harm to #undef it here; this will only cause problems if we try to write to a static variable, which I don't think this code needs to do. */ #ifdef emacs # undef static #endif #include <stdio.h> #include <stdlib.h> #include <ctype.h> #include <time.h> #include <string.h> #define ISDIGIT(c) ((unsigned) (c) - '0' <= 9) #include "lib/internal.h" #define EPOCH 1970 #define HOUR(x) ((x) * 60) #define MAX_BUFF_LEN 128 /* size of buffer to read the date into */ /* ** An entry in the lexical lookup table. */ typedef struct _TABLE { const char *name; int type; int value; } TABLE; /* ** Meridian: am, pm, or 24-hour style. */ typedef enum _MERIDIAN { MERam, MERpm, MER24 } MERIDIAN; struct global { int DayOrdinal; int DayNumber; int HaveDate; int HaveDay; int HaveRel; int HaveTime; int HaveZone; int Timezone; int Day; int Hour; int Minutes; int Month; int Seconds; int Year; MERIDIAN Meridian; int RelDay; int RelHour; int RelMinutes; int RelMonth; int RelSeconds; int RelYear; }; union YYSTYPE; static int yylex (union YYSTYPE *lvalp, const char **yyInput); static int yyerror (const char **yyInput, struct global *yy, char *s); static int yyparse (const char **yyInput, struct global *yy); #define YYENABLE_NLS 0 #define YYLTYPE_IS_TRIVIAL 0 %} %name-prefix "lu_gd" %define api.pure %parse-param { const char **yyInput } %lex-param { const char **yyInput } %parse-param { struct global *yy } %union { int Number; enum _MERIDIAN Meridian; } %token tAGO tDAY tDAY_UNIT tDAYZONE tDST tHOUR_UNIT tID %token tMERIDIAN tMINUTE_UNIT tMONTH tMONTH_UNIT %token tSEC_UNIT tSNUMBER tUNUMBER tYEAR_UNIT tZONE %type <Number> tDAY tDAY_UNIT tDAYZONE tHOUR_UNIT tMINUTE_UNIT %type <Number> tMONTH tMONTH_UNIT %type <Number> tSEC_UNIT tSNUMBER tUNUMBER tYEAR_UNIT tZONE %type <Meridian> tMERIDIAN o_merid %expect 13 %% spec : /* NULL */ | spec item ; item : time { yy->HaveTime++; } | zone { yy->HaveZone++; } | date { yy->HaveDate++; } | day { yy->HaveDay++; } | rel { yy->HaveRel++; } | number ; time : tUNUMBER tMERIDIAN { yy->Hour = $1; yy->Minutes = 0; yy->Seconds = 0; yy->Meridian = $2; } | tUNUMBER ':' tUNUMBER o_merid { yy->Hour = $1; yy->Minutes = $3; yy->Seconds = 0; yy->Meridian = $4; } | tUNUMBER ':' tUNUMBER tSNUMBER { yy->Hour = $1; yy->Minutes = $3; yy->Meridian = MER24; yy->HaveZone++; yy->Timezone = ($4 < 0 ? -$4 % 100 + (-$4 / 100) * 60 : - ($4 % 100 + ($4 / 100) * 60)); } | tUNUMBER ':' tUNUMBER ':' tUNUMBER o_merid { yy->Hour = $1; yy->Minutes = $3; yy->Seconds = $5; yy->Meridian = $6; } | tUNUMBER ':' tUNUMBER ':' tUNUMBER tSNUMBER { yy->Hour = $1; yy->Minutes = $3; yy->Seconds = $5; yy->Meridian = MER24; yy->HaveZone++; yy->Timezone = ($6 < 0 ? -$6 % 100 + (-$6 / 100) * 60 : - ($6 % 100 + ($6 / 100) * 60)); } ; zone : tZONE { yy->Timezone = $1; } | tDAYZONE { yy->Timezone = $1 - 60; } | tZONE tDST { yy->Timezone = $1 - 60; } ; day : tDAY { yy->DayOrdinal = 1; yy->DayNumber = $1; } | tDAY ',' { yy->DayOrdinal = 1; yy->DayNumber = $1; } | tUNUMBER tDAY { yy->DayOrdinal = $1; yy->DayNumber = $2; } ; date : tUNUMBER '/' tUNUMBER { yy->Month = $1; yy->Day = $3; } | tUNUMBER '/' tUNUMBER '/' tUNUMBER { /* Interpret as YY->YY/MM/DD if $1 >= 1000, otherwise as MM/DD/YY. The goal in recognizing YY->YY/MM/DD is solely to support legacy machine-generated dates like those in an RCS log listing. If you want portability, use the ISO 8601 format. */ if ($1 >= 1000) { yy->Year = $1; yy->Month = $3; yy->Day = $5; } else { yy->Month = $1; yy->Day = $3; yy->Year = $5; } } | tUNUMBER tSNUMBER tSNUMBER { /* ISO 8601 format. yy->yy-mm-dd. */ yy->Year = $1; yy->Month = -$2; yy->Day = -$3; } | tUNUMBER tMONTH tSNUMBER { /* e.g. 17-JUN-1992. */ yy->Day = $1; yy->Month = $2; yy->Year = -$3; } | tMONTH tUNUMBER { yy->Month = $1; yy->Day = $2; } | tMONTH tUNUMBER ',' tUNUMBER { yy->Month = $1; yy->Day = $2; yy->Year = $4; } | tUNUMBER tMONTH { yy->Month = $2; yy->Day = $1; } | tUNUMBER tMONTH tUNUMBER { yy->Month = $2; yy->Day = $1; yy->Year = $3; } ; rel : relunit tAGO { yy->RelSeconds = -yy->RelSeconds; yy->RelMinutes = -yy->RelMinutes; yy->RelHour = -yy->RelHour; yy->RelDay = -yy->RelDay; yy->RelMonth = -yy->RelMonth; yy->RelYear = -yy->RelYear; } | relunit ; relunit : tUNUMBER tYEAR_UNIT { yy->RelYear += $1 * $2; } | tSNUMBER tYEAR_UNIT { yy->RelYear += $1 * $2; } | tYEAR_UNIT { yy->RelYear++; } | tUNUMBER tMONTH_UNIT { yy->RelMonth += $1 * $2; } | tSNUMBER tMONTH_UNIT { yy->RelMonth += $1 * $2; } | tMONTH_UNIT { yy->RelMonth++; } | tUNUMBER tDAY_UNIT { yy->RelDay += $1 * $2; } | tSNUMBER tDAY_UNIT { yy->RelDay += $1 * $2; } | tDAY_UNIT { yy->RelDay++; } | tUNUMBER tHOUR_UNIT { yy->RelHour += $1 * $2; } | tSNUMBER tHOUR_UNIT { yy->RelHour += $1 * $2; } | tHOUR_UNIT { yy->RelHour++; } | tUNUMBER tMINUTE_UNIT { yy->RelMinutes += $1 * $2; } | tSNUMBER tMINUTE_UNIT { yy->RelMinutes += $1 * $2; } | tMINUTE_UNIT { yy->RelMinutes++; } | tUNUMBER tSEC_UNIT { yy->RelSeconds += $1 * $2; } | tSNUMBER tSEC_UNIT { yy->RelSeconds += $1 * $2; } | tSEC_UNIT { yy->RelSeconds++; } ; number : tUNUMBER { if (yy->HaveTime && yy->HaveDate && !yy->HaveRel) yy->Year = $1; else { if ($1>10000) { yy->HaveDate++; yy->Day= ($1)%100; yy->Month= ($1/100)%100; yy->Year = $1/10000; } else { yy->HaveTime++; if ($1 < 100) { yy->Hour = $1; yy->Minutes = 0; } else { yy->Hour = $1 / 100; yy->Minutes = $1 % 100; } yy->Seconds = 0; yy->Meridian = MER24; } } } ; o_merid : /* NULL */ { $$ = MER24; } | tMERIDIAN { $$ = $1; } ; %% /* Month and day table. */ static TABLE const MonthDayTable[] = { { "january", tMONTH, 1 }, { "february", tMONTH, 2 }, { "march", tMONTH, 3 }, { "april", tMONTH, 4 }, { "may", tMONTH, 5 }, { "june", tMONTH, 6 }, { "july", tMONTH, 7 }, { "august", tMONTH, 8 }, { "september", tMONTH, 9 }, { "sept", tMONTH, 9 }, { "october", tMONTH, 10 }, { "november", tMONTH, 11 }, { "december", tMONTH, 12 }, { "sunday", tDAY, 0 }, { "monday", tDAY, 1 }, { "tuesday", tDAY, 2 }, { "tues", tDAY, 2 }, { "wednesday", tDAY, 3 }, { "wednes", tDAY, 3 }, { "thursday", tDAY, 4 }, { "thur", tDAY, 4 }, { "thurs", tDAY, 4 }, { "friday", tDAY, 5 }, { "saturday", tDAY, 6 }, { NULL, 0, 0 } }; /* Time units table. */ static TABLE const UnitsTable[] = { { "year", tYEAR_UNIT, 1 }, { "month", tMONTH_UNIT, 1 }, { "fortnight", tDAY_UNIT, 14 }, { "week", tDAY_UNIT, 7 }, { "day", tDAY_UNIT, 1 }, { "hour", tHOUR_UNIT, 1 }, { "minute", tMINUTE_UNIT, 1 }, { "min", tMINUTE_UNIT, 1 }, { "second", tSEC_UNIT, 1 }, { "sec", tSEC_UNIT, 1 }, { NULL, 0, 0 } }; /* Assorted relative-time words. */ static TABLE const OtherTable[] = { { "tomorrow", tMINUTE_UNIT, 1 * 24 * 60 }, { "yesterday", tMINUTE_UNIT, -1 * 24 * 60 }, { "today", tMINUTE_UNIT, 0 }, { "now", tMINUTE_UNIT, 0 }, { "last", tUNUMBER, -1 }, { "this", tMINUTE_UNIT, 0 }, { "next", tUNUMBER, 2 }, { "first", tUNUMBER, 1 }, /* { "second", tUNUMBER, 2 }, */ { "third", tUNUMBER, 3 }, { "fourth", tUNUMBER, 4 }, { "fifth", tUNUMBER, 5 }, { "sixth", tUNUMBER, 6 }, { "seventh", tUNUMBER, 7 }, { "eighth", tUNUMBER, 8 }, { "ninth", tUNUMBER, 9 }, { "tenth", tUNUMBER, 10 }, { "eleventh", tUNUMBER, 11 }, { "twelfth", tUNUMBER, 12 }, { "ago", tAGO, 1 }, { NULL, 0, 0 } }; /* The timezone table. */ static TABLE const TimezoneTable[] = { { "gmt", tZONE, HOUR ( 0) }, /* Greenwich Mean */ { "ut", tZONE, HOUR ( 0) }, /* Universal (Coordinated) */ { "utc", tZONE, HOUR ( 0) }, { "wet", tZONE, HOUR ( 0) }, /* Western European */ { "bst", tDAYZONE, HOUR ( 0) }, /* British Summer */ { "wat", tZONE, HOUR ( 1) }, /* West Africa */ { "at", tZONE, HOUR ( 2) }, /* Azores */ { "ast", tZONE, HOUR ( 4) }, /* Atlantic Standard */ { "adt", tDAYZONE, HOUR ( 4) }, /* Atlantic Daylight */ { "est", tZONE, HOUR ( 5) }, /* Eastern Standard */ { "edt", tDAYZONE, HOUR ( 5) }, /* Eastern Daylight */ { "cst", tZONE, HOUR ( 6) }, /* Central Standard */ { "cdt", tDAYZONE, HOUR ( 6) }, /* Central Daylight */ { "mst", tZONE, HOUR ( 7) }, /* Mountain Standard */ { "mdt", tDAYZONE, HOUR ( 7) }, /* Mountain Daylight */ { "pst", tZONE, HOUR ( 8) }, /* Pacific Standard */ { "pdt", tDAYZONE, HOUR ( 8) }, /* Pacific Daylight */ { "yst", tZONE, HOUR ( 9) }, /* Yukon Standard */ { "ydt", tDAYZONE, HOUR ( 9) }, /* Yukon Daylight */ { "hst", tZONE, HOUR (10) }, /* Hawaii Standard */ { "hdt", tDAYZONE, HOUR (10) }, /* Hawaii Daylight */ { "cat", tZONE, HOUR (10) }, /* Central Alaska */ { "ahst", tZONE, HOUR (10) }, /* Alaska-Hawaii Standard */ { "nt", tZONE, HOUR (11) }, /* Nome */ { "idlw", tZONE, HOUR (12) }, /* International Date Line West */ { "cet", tZONE, -HOUR (1) }, /* Central European */ { "met", tZONE, -HOUR (1) }, /* Middle European */ { "mewt", tZONE, -HOUR (1) }, /* Middle European Winter */ { "mest", tDAYZONE, -HOUR (1) }, /* Middle European Summer */ { "mesz", tDAYZONE, -HOUR (1) }, /* Middle European Summer */ { "swt", tZONE, -HOUR (1) }, /* Swedish Winter */ { "sst", tDAYZONE, -HOUR (1) }, /* Swedish Summer */ { "fwt", tZONE, -HOUR (1) }, /* French Winter */ { "fst", tDAYZONE, -HOUR (1) }, /* French Summer */ { "eet", tZONE, -HOUR (2) }, /* Eastern Europe, USSR Zone 1 */ { "bt", tZONE, -HOUR (3) }, /* Baghdad, USSR Zone 2 */ { "zp4", tZONE, -HOUR (4) }, /* USSR Zone 3 */ { "zp5", tZONE, -HOUR (5) }, /* USSR Zone 4 */ { "zp6", tZONE, -HOUR (6) }, /* USSR Zone 5 */ { "wast", tZONE, -HOUR (7) }, /* West Australian Standard */ { "wadt", tDAYZONE, -HOUR (7) }, /* West Australian Daylight */ { "cct", tZONE, -HOUR (8) }, /* China Coast, USSR Zone 7 */ { "jst", tZONE, -HOUR (9) }, /* Japan Standard, USSR Zone 8 */ { "east", tZONE, -HOUR (10) }, /* Eastern Australian Standard */ { "eadt", tDAYZONE, -HOUR (10) }, /* Eastern Australian Daylight */ { "gst", tZONE, -HOUR (10) }, /* Guam Standard, USSR Zone 9 */ { "nzt", tZONE, -HOUR (12) }, /* New Zealand */ { "nzst", tZONE, -HOUR (12) }, /* New Zealand Standard */ { "nzdt", tDAYZONE, -HOUR (12) }, /* New Zealand Daylight */ { "idle", tZONE, -HOUR (12) }, /* International Date Line East */ { NULL, 0, 0 } }; /* Military timezone table. */ static TABLE const MilitaryTable[] = { { "a", tZONE, HOUR ( 1) }, { "b", tZONE, HOUR ( 2) }, { "c", tZONE, HOUR ( 3) }, { "d", tZONE, HOUR ( 4) }, { "e", tZONE, HOUR ( 5) }, { "f", tZONE, HOUR ( 6) }, { "g", tZONE, HOUR ( 7) }, { "h", tZONE, HOUR ( 8) }, { "i", tZONE, HOUR ( 9) }, { "k", tZONE, HOUR ( 10) }, { "l", tZONE, HOUR ( 11) }, { "m", tZONE, HOUR ( 12) }, { "n", tZONE, HOUR (- 1) }, { "o", tZONE, HOUR (- 2) }, { "p", tZONE, HOUR (- 3) }, { "q", tZONE, HOUR (- 4) }, { "r", tZONE, HOUR (- 5) }, { "s", tZONE, HOUR (- 6) }, { "t", tZONE, HOUR (- 7) }, { "u", tZONE, HOUR (- 8) }, { "v", tZONE, HOUR (- 9) }, { "w", tZONE, HOUR (-10) }, { "x", tZONE, HOUR (-11) }, { "y", tZONE, HOUR (-12) }, { "z", tZONE, HOUR ( 0) }, { NULL, 0, 0 } }; /* ARGSUSED */ static int yyerror (const char **yyInput, struct global *yy, char *s) { (void)yyInput; (void)yy; (void)s; return 0; } static int ToHour (int Hours, MERIDIAN Meridian) { switch (Meridian) { case MER24: if (Hours < 0 || Hours > 23) return -1; return Hours; case MERam: if (Hours < 1 || Hours > 12) return -1; if (Hours == 12) Hours = 0; return Hours; case MERpm: if (Hours < 1 || Hours > 12) return -1; if (Hours == 12) Hours = 0; return Hours + 12; default: abort (); } /* NOTREACHED */ } static int ToYear (int Year) { if (Year < 0) Year = -Year; /* XPG4 suggests that years 00-68 map to 2000-2068, and years 69-99 map to 1969-1999. */ if (Year < 69) Year += 2000; else if (Year < 100) Year += 1900; return Year; } static int LookupWord (YYSTYPE *lvalp, char *buff) { register char *p; register char *q; register const TABLE *tp; int i; int abbrev; /* Make it lowercase. */ for (p = buff; *p; p++) if (isupper ((unsigned char)*p)) *p = tolower ((unsigned char)*p); if (strcmp (buff, "am") == 0 || strcmp (buff, "a.m.") == 0) { lvalp->Meridian = MERam; return tMERIDIAN; } if (strcmp (buff, "pm") == 0 || strcmp (buff, "p.m.") == 0) { lvalp->Meridian = MERpm; return tMERIDIAN; } /* See if we have an abbreviation for a month. */ if (strlen (buff) == 3) abbrev = 1; else if (strlen (buff) == 4 && buff[3] == '.') { abbrev = 1; buff[3] = '\0'; } else abbrev = 0; for (tp = MonthDayTable; tp->name; tp++) { if (abbrev) { if (strncmp (buff, tp->name, 3) == 0) { lvalp->Number = tp->value; return tp->type; } } else if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } } for (tp = TimezoneTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } if (strcmp (buff, "dst") == 0) return tDST; for (tp = UnitsTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } /* Strip off any plural and try the units table again. */ i = strlen (buff) - 1; if (buff[i] == 's') { buff[i] = '\0'; for (tp = UnitsTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } buff[i] = 's'; /* Put back for "this" in OtherTable. */ } for (tp = OtherTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } /* Military timezones. */ if (buff[1] == '\0' && isalpha ((unsigned char)*buff)) { for (tp = MilitaryTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } } /* Drop out any periods and try the timezone table again. */ for (i = 0, p = q = buff; *q; q++) if (*q != '.') *p++ = *q; else i++; *p = '\0'; if (i) for (tp = TimezoneTable; tp->name; tp++) if (strcmp (buff, tp->name) == 0) { lvalp->Number = tp->value; return tp->type; } return tID; } static int yylex (YYSTYPE *lvalp, const char **yyInput) { register char c; register char *p; char buff[20]; int Count; int sign; for (;;) { while (isspace ((unsigned char)**yyInput)) (*yyInput)++; if (ISDIGIT (c = **yyInput) || c == '-' || c == '+') { if (c == '-' || c == '+') { sign = c == '-' ? -1 : 1; if (!ISDIGIT (*++*yyInput)) /* skip the '-' sign */ continue; } else sign = 0; for (lvalp->Number = 0; ISDIGIT (c = *(*yyInput)++);) lvalp->Number = 10 * lvalp->Number + c - '0'; (*yyInput)--; if (sign < 0) lvalp->Number = -lvalp->Number; return sign ? tSNUMBER : tUNUMBER; } if (isalpha ((unsigned char)c)) { for (p = buff; (c = *(*yyInput)++, isalpha ((unsigned char)c)) || c == '.';) if (p < &buff[sizeof buff - 1]) *p++ = c; *p = '\0'; (*yyInput)--; return LookupWord (lvalp, buff); } if (c != '(') return *(*yyInput)++; Count = 0; do { c = *(*yyInput)++; if (c == '\0') return c; if (c == '(') Count++; else if (c == ')') Count--; } while (Count > 0); } } #define TM_YEAR_ORIGIN 1900 /* Yield A - B, measured in seconds. */ static long difftm (struct tm *a, struct tm *b) { int ay = a->tm_year + (TM_YEAR_ORIGIN - 1); int by = b->tm_year + (TM_YEAR_ORIGIN - 1); long days = ( /* difference in day of year */ a->tm_yday - b->tm_yday /* + intervening leap days */ + ((ay >> 2) - (by >> 2)) - (ay / 100 - by / 100) + ((ay / 100 >> 2) - (by / 100 >> 2)) /* + difference in years * 365 */ + (long) (ay - by) * 365 ); return (60 * (60 * (24 * days + (a->tm_hour - b->tm_hour)) + (a->tm_min - b->tm_min)) + (a->tm_sec - b->tm_sec)); } time_t lu_get_date (const char *p, const time_t *now) { struct tm tm, tm0, *tmp; struct global yy; time_t Start; Start = now ? *now : time ((time_t *) NULL); tmp = localtime (&Start); memset (&yy, 0, sizeof(yy)); yy.Year = tmp->tm_year + TM_YEAR_ORIGIN; yy.Month = tmp->tm_mon + 1; yy.Day = tmp->tm_mday; yy.Hour = tmp->tm_hour; yy.Minutes = tmp->tm_min; yy.Seconds = tmp->tm_sec; yy.Meridian = MER24; yy.RelSeconds = 0; yy.RelMinutes = 0; yy.RelHour = 0; yy.RelDay = 0; yy.RelMonth = 0; yy.RelYear = 0; yy.HaveDate = 0; yy.HaveDay = 0; yy.HaveRel = 0; yy.HaveTime = 0; yy.HaveZone = 0; if (yyparse (&p, &yy) || yy.HaveTime > 1 || yy.HaveZone > 1 || yy.HaveDate > 1 || yy.HaveDay > 1) return -1; tm.tm_year = ToYear (yy.Year) - TM_YEAR_ORIGIN + yy.RelYear; tm.tm_mon = yy.Month - 1 + yy.RelMonth; tm.tm_mday = yy.Day + yy.RelDay; if (yy.HaveTime || (yy.HaveRel && !yy.HaveDate && !yy.HaveDay)) { tm.tm_hour = ToHour (yy.Hour, yy.Meridian); if (tm.tm_hour < 0) return -1; tm.tm_min = yy.Minutes; tm.tm_sec = yy.Seconds; } else { tm.tm_hour = tm.tm_min = tm.tm_sec = 0; } tm.tm_hour += yy.RelHour; tm.tm_min += yy.RelMinutes; tm.tm_sec += yy.RelSeconds; tm.tm_isdst = -1; tm0 = tm; Start = mktime (&tm); if (Start == (time_t) -1) { /* Guard against falsely reporting errors near the time_t boundaries when parsing times in other time zones. For example, if the min time_t value is 1970-01-01 00:00:00 UTC and we are 8 hours ahead of UTC, then the min localtime value is 1970-01-01 08:00:00; if we apply mktime to 1970-01-01 00:00:00 we will get an error, so we apply mktime to 1970-01-02 08:00:00 instead and adjust the time zone by 24 hours to compensate. This algorithm assumes that there is no DST transition within a day of the time_t boundaries. */ if (yy.HaveZone) { tm = tm0; if (tm.tm_year <= EPOCH - TM_YEAR_ORIGIN) { tm.tm_mday++; yy.Timezone -= 24 * 60; } else { tm.tm_mday--; yy.Timezone += 24 * 60; } Start = mktime (&tm); } if (Start == (time_t) -1) return Start; } if (yy.HaveDay && !yy.HaveDate) { tm.tm_mday += ((yy.DayNumber - tm.tm_wday + 7) % 7 + 7 * (yy.DayOrdinal - (0 < yy.DayOrdinal))); Start = mktime (&tm); if (Start == (time_t) -1) return Start; } if (yy.HaveZone) { long delta = yy.Timezone * 60L + difftm (&tm, gmtime (&Start)); if ((Start + delta < Start) != (delta < 0)) return -1; /* time_t overflow */ Start += delta; } return Start; } #if defined (TEST) /* ARGSUSED */ int main (ac, av) int ac; char *av[]; { char buff[MAX_BUFF_LEN + 1]; time_t d; (void) printf ("Enter date, or blank line to exit.\n\t> "); (void) fflush (stdout); buff[MAX_BUFF_LEN] = 0; while (fgets (buff, MAX_BUFF_LEN, stdin) && buff[0]) { d = lu_get_date (buff, (time_t *) NULL); if (d == -1) (void) printf ("Bad format - couldn't convert.\n"); else (void) printf ("%s", ctime (&d)); (void) printf ("\t> "); (void) fflush (stdout); } exit (0); /* NOTREACHED */ } #endif /* defined (TEST) */