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drh7014aff2003-11-01 01:53:53 +00001/*
2** 2003 October 31
3**
4** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
6**
7** May you do good and not evil.
8** May you find forgiveness for yourself and forgive others.
9** May you share freely, never taking more than you give.
10**
11*************************************************************************
12** This file contains the C functions that implement date and time
13** functions for SQLite.
14**
15** There is only one exported symbol in this file - the function
16** sqliteRegisterDateTimeFunctions() found at the bottom of the file.
17** All other code has file scope.
18**
drh33a9ad22004-02-29 00:40:32 +000019** $Id: date.c,v 1.13 2004/02/29 00:40:32 drh Exp $
drh7014aff2003-11-01 01:53:53 +000020**
21** NOTES:
22**
23** SQLite processes all times and dates as Julian Day numbers. The
24** dates and times are stored as the number of days since noon
25** in Greenwich on November 24, 4714 B.C. according to the Gregorian
26** calendar system.
27**
28** 1970-01-01 00:00:00 is JD 2440587.5
29** 2000-01-01 00:00:00 is JD 2451544.5
30**
31** This implemention requires years to be expressed as a 4-digit number
32** which means that only dates between 0000-01-01 and 9999-12-31 can
33** be represented, even though julian day numbers allow a much wider
34** range of dates.
35**
36** The Gregorian calendar system is used for all dates and times,
37** even those that predate the Gregorian calendar. Historians usually
38** use the Julian calendar for dates prior to 1582-10-15 and for some
39** dates afterwards, depending on locale. Beware of this difference.
40**
41** The conversion algorithms are implemented based on descriptions
42** in the following text:
43**
44** Jean Meeus
45** Astronomical Algorithms, 2nd Edition, 1998
46** ISBM 0-943396-61-1
47** Willmann-Bell, Inc
48** Richmond, Virginia (USA)
49*/
dougcurrieae534182003-12-24 01:41:19 +000050#include "os.h"
51#include "sqliteInt.h"
drh7014aff2003-11-01 01:53:53 +000052#include <ctype.h>
53#include <stdlib.h>
54#include <assert.h>
drh7091cb02003-12-23 16:22:18 +000055#include <time.h>
drh7014aff2003-11-01 01:53:53 +000056
drh4bc05852004-02-10 13:19:35 +000057#ifndef SQLITE_OMIT_DATETIME_FUNCS
58
drh7014aff2003-11-01 01:53:53 +000059/*
60** A structure for holding a single date and time.
61*/
62typedef struct DateTime DateTime;
63struct DateTime {
64 double rJD; /* The julian day number */
65 int Y, M, D; /* Year, month, and day */
66 int h, m; /* Hour and minutes */
67 int tz; /* Timezone offset in minutes */
68 double s; /* Seconds */
69 char validYMD; /* True if Y,M,D are valid */
70 char validHMS; /* True if h,m,s are valid */
71 char validJD; /* True if rJD is valid */
72 char validTZ; /* True if tz is valid */
73};
74
75
76/*
drheb9a9e82004-02-22 17:49:32 +000077** Convert zDate into one or more integers. Additional arguments
78** come in groups of 5 as follows:
79**
80** N number of digits in the integer
81** min minimum allowed value of the integer
82** max maximum allowed value of the integer
83** nextC first character after the integer
84** pVal where to write the integers value.
85**
86** Conversions continue until one with nextC==0 is encountered.
87** The function returns the number of successful conversions.
drh7014aff2003-11-01 01:53:53 +000088*/
drheb9a9e82004-02-22 17:49:32 +000089static int getDigits(const char *zDate, ...){
90 va_list ap;
91 int val;
92 int N;
93 int min;
94 int max;
95 int nextC;
96 int *pVal;
97 int cnt = 0;
98 va_start(ap, zDate);
99 do{
100 N = va_arg(ap, int);
101 min = va_arg(ap, int);
102 max = va_arg(ap, int);
103 nextC = va_arg(ap, int);
104 pVal = va_arg(ap, int*);
105 val = 0;
106 while( N-- ){
107 if( !isdigit(*zDate) ){
108 return cnt;
109 }
110 val = val*10 + *zDate - '0';
111 zDate++;
112 }
113 if( val<min || val>max || (nextC!=0 && nextC!=*zDate) ){
114 return cnt;
115 }
116 *pVal = val;
drh7014aff2003-11-01 01:53:53 +0000117 zDate++;
drheb9a9e82004-02-22 17:49:32 +0000118 cnt++;
119 }while( nextC );
120 return cnt;
drh7014aff2003-11-01 01:53:53 +0000121}
122
123/*
124** Read text from z[] and convert into a floating point number. Return
125** the number of digits converted.
126*/
127static int getValue(const char *z, double *pR){
drheb9a9e82004-02-22 17:49:32 +0000128 const char *zEnd;
129 *pR = sqliteAtoF(z, &zEnd);
130 return zEnd - z;
drh7014aff2003-11-01 01:53:53 +0000131}
132
133/*
134** Parse a timezone extension on the end of a date-time.
135** The extension is of the form:
136**
137** (+/-)HH:MM
138**
139** If the parse is successful, write the number of minutes
140** of change in *pnMin and return 0. If a parser error occurs,
141** return 0.
142**
143** A missing specifier is not considered an error.
144*/
145static int parseTimezone(const char *zDate, DateTime *p){
146 int sgn = 0;
147 int nHr, nMn;
148 while( isspace(*zDate) ){ zDate++; }
149 p->tz = 0;
150 if( *zDate=='-' ){
151 sgn = -1;
152 }else if( *zDate=='+' ){
153 sgn = +1;
154 }else{
155 return *zDate!=0;
156 }
157 zDate++;
drheb9a9e82004-02-22 17:49:32 +0000158 if( getDigits(zDate, 2, 0, 14, ':', &nHr, 2, 0, 59, 0, &nMn)!=2 ){
159 return 1;
160 }
161 zDate += 5;
drh7014aff2003-11-01 01:53:53 +0000162 p->tz = sgn*(nMn + nHr*60);
163 while( isspace(*zDate) ){ zDate++; }
164 return *zDate!=0;
165}
166
167/*
168** Parse times of the form HH:MM or HH:MM:SS or HH:MM:SS.FFFF.
169** The HH, MM, and SS must each be exactly 2 digits. The
170** fractional seconds FFFF can be one or more digits.
171**
172** Return 1 if there is a parsing error and 0 on success.
173*/
174static int parseHhMmSs(const char *zDate, DateTime *p){
175 int h, m, s;
176 double ms = 0.0;
drheb9a9e82004-02-22 17:49:32 +0000177 if( getDigits(zDate, 2, 0, 24, ':', &h, 2, 0, 59, 0, &m)!=2 ){
178 return 1;
179 }
180 zDate += 5;
drh7014aff2003-11-01 01:53:53 +0000181 if( *zDate==':' ){
drheb9a9e82004-02-22 17:49:32 +0000182 zDate++;
183 if( getDigits(zDate, 2, 0, 59, 0, &s)!=1 ){
184 return 1;
185 }
186 zDate += 2;
drh7014aff2003-11-01 01:53:53 +0000187 if( *zDate=='.' && isdigit(zDate[1]) ){
188 double rScale = 1.0;
189 zDate++;
190 while( isdigit(*zDate) ){
191 ms = ms*10.0 + *zDate - '0';
192 rScale *= 10.0;
193 zDate++;
194 }
195 ms /= rScale;
196 }
197 }else{
198 s = 0;
199 }
200 p->validJD = 0;
201 p->validHMS = 1;
202 p->h = h;
203 p->m = m;
204 p->s = s + ms;
205 if( parseTimezone(zDate, p) ) return 1;
206 p->validTZ = p->tz!=0;
207 return 0;
208}
209
210/*
211** Convert from YYYY-MM-DD HH:MM:SS to julian day. We always assume
212** that the YYYY-MM-DD is according to the Gregorian calendar.
213**
214** Reference: Meeus page 61
215*/
216static void computeJD(DateTime *p){
217 int Y, M, D, A, B, X1, X2;
218
219 if( p->validJD ) return;
220 if( p->validYMD ){
221 Y = p->Y;
222 M = p->M;
223 D = p->D;
224 }else{
drhba212562004-01-08 02:17:31 +0000225 Y = 2000; /* If no YMD specified, assume 2000-Jan-01 */
drh7014aff2003-11-01 01:53:53 +0000226 M = 1;
227 D = 1;
228 }
229 if( M<=2 ){
230 Y--;
231 M += 12;
232 }
233 A = Y/100;
234 B = 2 - A + (A/4);
235 X1 = 365.25*(Y+4716);
236 X2 = 30.6001*(M+1);
237 p->rJD = X1 + X2 + D + B - 1524.5;
238 p->validJD = 1;
239 p->validYMD = 0;
240 if( p->validHMS ){
241 p->rJD += (p->h*3600.0 + p->m*60.0 + p->s)/86400.0;
242 if( p->validTZ ){
243 p->rJD += p->tz*60/86400.0;
244 p->validHMS = 0;
245 p->validTZ = 0;
246 }
247 }
248}
249
250/*
251** Parse dates of the form
252**
253** YYYY-MM-DD HH:MM:SS.FFF
254** YYYY-MM-DD HH:MM:SS
255** YYYY-MM-DD HH:MM
256** YYYY-MM-DD
257**
258** Write the result into the DateTime structure and return 0
259** on success and 1 if the input string is not a well-formed
260** date.
261*/
262static int parseYyyyMmDd(const char *zDate, DateTime *p){
drh8eb2cce2004-02-21 03:28:18 +0000263 int Y, M, D, neg;
drh7014aff2003-11-01 01:53:53 +0000264
drh8eb2cce2004-02-21 03:28:18 +0000265 if( zDate[0]=='-' ){
266 zDate++;
267 neg = 1;
268 }else{
269 neg = 0;
270 }
drheb9a9e82004-02-22 17:49:32 +0000271 if( getDigits(zDate,4,0,9999,'-',&Y,2,1,12,'-',&M,2,1,31,0,&D)!=3 ){
272 return 1;
273 }
274 zDate += 10;
drh7014aff2003-11-01 01:53:53 +0000275 while( isspace(*zDate) ){ zDate++; }
drheb9a9e82004-02-22 17:49:32 +0000276 if( parseHhMmSs(zDate, p)==0 ){
277 /* We got the time */
drh7014aff2003-11-01 01:53:53 +0000278 }else if( *zDate==0 ){
279 p->validHMS = 0;
280 }else{
281 return 1;
282 }
283 p->validJD = 0;
284 p->validYMD = 1;
drh8eb2cce2004-02-21 03:28:18 +0000285 p->Y = neg ? -Y : Y;
drh7014aff2003-11-01 01:53:53 +0000286 p->M = M;
287 p->D = D;
288 if( p->validTZ ){
289 computeJD(p);
290 }
291 return 0;
292}
293
294/*
295** Attempt to parse the given string into a Julian Day Number. Return
296** the number of errors.
297**
298** The following are acceptable forms for the input string:
299**
300** YYYY-MM-DD HH:MM:SS.FFF +/-HH:MM
301** DDDD.DD
302** now
303**
304** In the first form, the +/-HH:MM is always optional. The fractional
305** seconds extension (the ".FFF") is optional. The seconds portion
306** (":SS.FFF") is option. The year and date can be omitted as long
307** as there is a time string. The time string can be omitted as long
308** as there is a year and date.
309*/
310static int parseDateOrTime(const char *zDate, DateTime *p){
drh7014aff2003-11-01 01:53:53 +0000311 memset(p, 0, sizeof(*p));
drh8eb2cce2004-02-21 03:28:18 +0000312 if( parseYyyyMmDd(zDate,p)==0 ){
drh7014aff2003-11-01 01:53:53 +0000313 return 0;
drh8eb2cce2004-02-21 03:28:18 +0000314 }else if( parseHhMmSs(zDate, p)==0 ){
315 return 0;
316 }else if( sqliteStrICmp(zDate,"now")==0){
drh7014aff2003-11-01 01:53:53 +0000317 double r;
318 if( sqliteOsCurrentTime(&r)==0 ){
319 p->rJD = r;
320 p->validJD = 1;
321 return 0;
322 }
323 return 1;
324 }else if( sqliteIsNumber(zDate) ){
drheb9a9e82004-02-22 17:49:32 +0000325 p->rJD = sqliteAtoF(zDate, 0);
drh7014aff2003-11-01 01:53:53 +0000326 p->validJD = 1;
327 return 0;
328 }
329 return 1;
330}
331
332/*
333** Compute the Year, Month, and Day from the julian day number.
334*/
335static void computeYMD(DateTime *p){
336 int Z, A, B, C, D, E, X1;
337 if( p->validYMD ) return;
drh33a9ad22004-02-29 00:40:32 +0000338 if( !p->validJD ){
339 p->Y = 2000;
340 p->M = 1;
341 p->D = 1;
342 }else{
343 Z = p->rJD + 0.5;
344 A = (Z - 1867216.25)/36524.25;
345 A = Z + 1 + A - (A/4);
346 B = A + 1524;
347 C = (B - 122.1)/365.25;
348 D = 365.25*C;
349 E = (B-D)/30.6001;
350 X1 = 30.6001*E;
351 p->D = B - D - X1;
352 p->M = E<14 ? E-1 : E-13;
353 p->Y = p->M>2 ? C - 4716 : C - 4715;
354 }
drh7014aff2003-11-01 01:53:53 +0000355 p->validYMD = 1;
356}
357
358/*
359** Compute the Hour, Minute, and Seconds from the julian day number.
360*/
361static void computeHMS(DateTime *p){
362 int Z, s;
363 if( p->validHMS ) return;
364 Z = p->rJD + 0.5;
365 s = (p->rJD + 0.5 - Z)*86400000.0 + 0.5;
366 p->s = 0.001*s;
367 s = p->s;
368 p->s -= s;
369 p->h = s/3600;
370 s -= p->h*3600;
371 p->m = s/60;
372 p->s += s - p->m*60;
373 p->validHMS = 1;
374}
375
376/*
drhba212562004-01-08 02:17:31 +0000377** Compute both YMD and HMS
378*/
379static void computeYMD_HMS(DateTime *p){
380 computeYMD(p);
381 computeHMS(p);
382}
383
384/*
385** Clear the YMD and HMS and the TZ
386*/
387static void clearYMD_HMS_TZ(DateTime *p){
388 p->validYMD = 0;
389 p->validHMS = 0;
390 p->validTZ = 0;
391}
392
393/*
drh7091cb02003-12-23 16:22:18 +0000394** Compute the difference (in days) between localtime and UTC (a.k.a. GMT)
395** for the time value p where p is in UTC.
396*/
397static double localtimeOffset(DateTime *p){
398 DateTime x, y;
399 time_t t;
400 struct tm *pTm;
drh7091cb02003-12-23 16:22:18 +0000401 x = *p;
drhba212562004-01-08 02:17:31 +0000402 computeYMD_HMS(&x);
drh7091cb02003-12-23 16:22:18 +0000403 if( x.Y<1971 || x.Y>=2038 ){
404 x.Y = 2000;
405 x.M = 1;
406 x.D = 1;
407 x.h = 0;
408 x.m = 0;
409 x.s = 0.0;
410 } else {
411 int s = x.s + 0.5;
412 x.s = s;
413 }
414 x.tz = 0;
415 x.validJD = 0;
416 computeJD(&x);
417 t = (x.rJD-2440587.5)*86400.0 + 0.5;
418 sqliteOsEnterMutex();
419 pTm = localtime(&t);
420 y.Y = pTm->tm_year + 1900;
421 y.M = pTm->tm_mon + 1;
422 y.D = pTm->tm_mday;
423 y.h = pTm->tm_hour;
424 y.m = pTm->tm_min;
425 y.s = pTm->tm_sec;
426 sqliteOsLeaveMutex();
427 y.validYMD = 1;
428 y.validHMS = 1;
429 y.validJD = 0;
430 y.validTZ = 0;
431 computeJD(&y);
drh7091cb02003-12-23 16:22:18 +0000432 return y.rJD - x.rJD;
433}
434
435/*
drh7014aff2003-11-01 01:53:53 +0000436** Process a modifier to a date-time stamp. The modifiers are
437** as follows:
438**
439** NNN days
440** NNN hours
441** NNN minutes
442** NNN.NNNN seconds
443** NNN months
444** NNN years
445** start of month
446** start of year
447** start of week
448** start of day
449** weekday N
450** unixepoch
drh7091cb02003-12-23 16:22:18 +0000451** localtime
452** utc
drh7014aff2003-11-01 01:53:53 +0000453**
454** Return 0 on success and 1 if there is any kind of error.
455*/
456static int parseModifier(const char *zMod, DateTime *p){
457 int rc = 1;
458 int n;
459 double r;
drh4d5b8362004-01-17 01:16:21 +0000460 char *z, zBuf[30];
461 z = zBuf;
462 for(n=0; n<sizeof(zBuf)-1 && zMod[n]; n++){
drh7014aff2003-11-01 01:53:53 +0000463 z[n] = tolower(zMod[n]);
464 }
465 z[n] = 0;
466 switch( z[0] ){
drh7091cb02003-12-23 16:22:18 +0000467 case 'l': {
468 /* localtime
469 **
470 ** Assuming the current time value is UTC (a.k.a. GMT), shift it to
471 ** show local time.
472 */
473 if( strcmp(z, "localtime")==0 ){
474 computeJD(p);
475 p->rJD += localtimeOffset(p);
drhba212562004-01-08 02:17:31 +0000476 clearYMD_HMS_TZ(p);
drh7091cb02003-12-23 16:22:18 +0000477 rc = 0;
478 }
479 break;
480 }
drh7014aff2003-11-01 01:53:53 +0000481 case 'u': {
482 /*
483 ** unixepoch
484 **
485 ** Treat the current value of p->rJD as the number of
486 ** seconds since 1970. Convert to a real julian day number.
487 */
488 if( strcmp(z, "unixepoch")==0 && p->validJD ){
489 p->rJD = p->rJD/86400.0 + 2440587.5;
drhba212562004-01-08 02:17:31 +0000490 clearYMD_HMS_TZ(p);
drh7014aff2003-11-01 01:53:53 +0000491 rc = 0;
drh7091cb02003-12-23 16:22:18 +0000492 }else if( strcmp(z, "utc")==0 ){
493 double c1;
494 computeJD(p);
495 c1 = localtimeOffset(p);
496 p->rJD -= c1;
drhba212562004-01-08 02:17:31 +0000497 clearYMD_HMS_TZ(p);
drh7091cb02003-12-23 16:22:18 +0000498 p->rJD += c1 - localtimeOffset(p);
drh7091cb02003-12-23 16:22:18 +0000499 rc = 0;
drh7014aff2003-11-01 01:53:53 +0000500 }
501 break;
502 }
503 case 'w': {
504 /*
505 ** weekday N
506 **
drhc5dd9fa2004-01-07 03:29:16 +0000507 ** Move the date to the same time on the next occurrance of
drh7014aff2003-11-01 01:53:53 +0000508 ** weekday N where 0==Sunday, 1==Monday, and so forth. If the
drhc5dd9fa2004-01-07 03:29:16 +0000509 ** date is already on the appropriate weekday, this is a no-op.
drh7014aff2003-11-01 01:53:53 +0000510 */
511 if( strncmp(z, "weekday ", 8)==0 && getValue(&z[8],&r)>0
512 && (n=r)==r && n>=0 && r<7 ){
513 int Z;
drhba212562004-01-08 02:17:31 +0000514 computeYMD_HMS(p);
drh7014aff2003-11-01 01:53:53 +0000515 p->validTZ = 0;
516 p->validJD = 0;
517 computeJD(p);
518 Z = p->rJD + 1.5;
519 Z %= 7;
520 if( Z>n ) Z -= 7;
521 p->rJD += n - Z;
drhba212562004-01-08 02:17:31 +0000522 clearYMD_HMS_TZ(p);
drh7014aff2003-11-01 01:53:53 +0000523 rc = 0;
524 }
525 break;
526 }
527 case 's': {
528 /*
529 ** start of TTTTT
530 **
531 ** Move the date backwards to the beginning of the current day,
532 ** or month or year.
533 */
534 if( strncmp(z, "start of ", 9)!=0 ) break;
drh4d5b8362004-01-17 01:16:21 +0000535 z += 9;
drh7014aff2003-11-01 01:53:53 +0000536 computeYMD(p);
537 p->validHMS = 1;
538 p->h = p->m = 0;
539 p->s = 0.0;
540 p->validTZ = 0;
541 p->validJD = 0;
drh4d5b8362004-01-17 01:16:21 +0000542 if( strcmp(z,"month")==0 ){
drh7014aff2003-11-01 01:53:53 +0000543 p->D = 1;
544 rc = 0;
drh4d5b8362004-01-17 01:16:21 +0000545 }else if( strcmp(z,"year")==0 ){
drh7014aff2003-11-01 01:53:53 +0000546 computeYMD(p);
547 p->M = 1;
548 p->D = 1;
549 rc = 0;
drh4d5b8362004-01-17 01:16:21 +0000550 }else if( strcmp(z,"day")==0 ){
drh7014aff2003-11-01 01:53:53 +0000551 rc = 0;
552 }
553 break;
554 }
555 case '+':
556 case '-':
557 case '0':
558 case '1':
559 case '2':
560 case '3':
561 case '4':
562 case '5':
563 case '6':
564 case '7':
565 case '8':
566 case '9': {
567 n = getValue(z, &r);
568 if( n<=0 ) break;
drh33a9ad22004-02-29 00:40:32 +0000569 if( z[n]==':' ){
570 /* A modifier of the form (+|-)HH:MM:SS.FFF adds (or subtracts) the
571 ** specified number of hours, minutes, seconds, and fractional seconds
572 ** to the time. The ".FFF" may be omitted. The ":SS.FFF" may be
573 ** omitted.
574 */
575 const char *z2 = z;
576 DateTime tx;
577 int day;
578 if( !isdigit(*z2) ) z2++;
579 memset(&tx, 0, sizeof(tx));
580 if( parseHhMmSs(z2, &tx) ) break;
581 computeJD(&tx);
582 if( z[0]=='-' ) tx.rJD = -tx.rJD;
583 day = (int)tx.rJD;
584 p->rJD += tx.rJD - day;
585 rc = 0;
586 break;
587 }
drh4d5b8362004-01-17 01:16:21 +0000588 z += n;
589 while( isspace(z[0]) ) z++;
590 n = strlen(z);
drh7014aff2003-11-01 01:53:53 +0000591 if( n>10 || n<3 ) break;
drh7014aff2003-11-01 01:53:53 +0000592 if( z[n-1]=='s' ){ z[n-1] = 0; n--; }
593 computeJD(p);
594 rc = 0;
595 if( n==3 && strcmp(z,"day")==0 ){
596 p->rJD += r;
597 }else if( n==4 && strcmp(z,"hour")==0 ){
drh7014aff2003-11-01 01:53:53 +0000598 p->rJD += r/24.0;
599 }else if( n==6 && strcmp(z,"minute")==0 ){
drh7014aff2003-11-01 01:53:53 +0000600 p->rJD += r/(24.0*60.0);
601 }else if( n==6 && strcmp(z,"second")==0 ){
drh7014aff2003-11-01 01:53:53 +0000602 p->rJD += r/(24.0*60.0*60.0);
603 }else if( n==5 && strcmp(z,"month")==0 ){
604 int x, y;
drhba212562004-01-08 02:17:31 +0000605 computeYMD_HMS(p);
drh7014aff2003-11-01 01:53:53 +0000606 p->M += r;
607 x = p->M>0 ? (p->M-1)/12 : (p->M-12)/12;
608 p->Y += x;
609 p->M -= x*12;
610 p->validJD = 0;
611 computeJD(p);
612 y = r;
613 if( y!=r ){
614 p->rJD += (r - y)*30.0;
615 }
616 }else if( n==4 && strcmp(z,"year")==0 ){
drhba212562004-01-08 02:17:31 +0000617 computeYMD_HMS(p);
drh7014aff2003-11-01 01:53:53 +0000618 p->Y += r;
619 p->validJD = 0;
620 computeJD(p);
621 }else{
622 rc = 1;
623 }
drhba212562004-01-08 02:17:31 +0000624 clearYMD_HMS_TZ(p);
drh7014aff2003-11-01 01:53:53 +0000625 break;
626 }
627 default: {
628 break;
629 }
630 }
631 return rc;
632}
633
634/*
635** Process time function arguments. argv[0] is a date-time stamp.
636** argv[1] and following are modifiers. Parse them all and write
637** the resulting time into the DateTime structure p. Return 0
638** on success and 1 if there are any errors.
639*/
640static int isDate(int argc, const char **argv, DateTime *p){
641 int i;
642 if( argc==0 ) return 1;
drhf586aa82003-12-23 16:34:12 +0000643 if( argv[0]==0 || parseDateOrTime(argv[0], p) ) return 1;
drh7014aff2003-11-01 01:53:53 +0000644 for(i=1; i<argc; i++){
drhf586aa82003-12-23 16:34:12 +0000645 if( argv[i]==0 || parseModifier(argv[i], p) ) return 1;
drh7014aff2003-11-01 01:53:53 +0000646 }
647 return 0;
648}
649
650
651/*
652** The following routines implement the various date and time functions
653** of SQLite.
654*/
655
656/*
657** julianday( TIMESTRING, MOD, MOD, ...)
658**
659** Return the julian day number of the date specified in the arguments
660*/
661static void juliandayFunc(sqlite_func *context, int argc, const char **argv){
662 DateTime x;
663 if( isDate(argc, argv, &x)==0 ){
664 computeJD(&x);
665 sqlite_set_result_double(context, x.rJD);
666 }
667}
668
669/*
670** datetime( TIMESTRING, MOD, MOD, ...)
671**
672** Return YYYY-MM-DD HH:MM:SS
673*/
674static void datetimeFunc(sqlite_func *context, int argc, const char **argv){
675 DateTime x;
676 if( isDate(argc, argv, &x)==0 ){
677 char zBuf[100];
drhba212562004-01-08 02:17:31 +0000678 computeYMD_HMS(&x);
drh7014aff2003-11-01 01:53:53 +0000679 sprintf(zBuf, "%04d-%02d-%02d %02d:%02d:%02d",x.Y, x.M, x.D, x.h, x.m,
680 (int)(x.s));
681 sqlite_set_result_string(context, zBuf, -1);
682 }
683}
684
685/*
686** time( TIMESTRING, MOD, MOD, ...)
687**
688** Return HH:MM:SS
689*/
690static void timeFunc(sqlite_func *context, int argc, const char **argv){
691 DateTime x;
692 if( isDate(argc, argv, &x)==0 ){
693 char zBuf[100];
694 computeHMS(&x);
695 sprintf(zBuf, "%02d:%02d:%02d", x.h, x.m, (int)x.s);
696 sqlite_set_result_string(context, zBuf, -1);
697 }
698}
699
700/*
701** date( TIMESTRING, MOD, MOD, ...)
702**
703** Return YYYY-MM-DD
704*/
705static void dateFunc(sqlite_func *context, int argc, const char **argv){
706 DateTime x;
707 if( isDate(argc, argv, &x)==0 ){
708 char zBuf[100];
709 computeYMD(&x);
710 sprintf(zBuf, "%04d-%02d-%02d", x.Y, x.M, x.D);
711 sqlite_set_result_string(context, zBuf, -1);
712 }
713}
714
715/*
716** strftime( FORMAT, TIMESTRING, MOD, MOD, ...)
717**
718** Return a string described by FORMAT. Conversions as follows:
719**
720** %d day of month
721** %f ** fractional seconds SS.SSS
722** %H hour 00-24
723** %j day of year 000-366
724** %J ** Julian day number
725** %m month 01-12
726** %M minute 00-59
727** %s seconds since 1970-01-01
728** %S seconds 00-59
729** %w day of week 0-6 sunday==0
730** %W week of year 00-53
731** %Y year 0000-9999
732** %% %
733*/
734static void strftimeFunc(sqlite_func *context, int argc, const char **argv){
735 DateTime x;
736 int n, i, j;
737 char *z;
738 const char *zFmt = argv[0];
739 char zBuf[100];
drhf586aa82003-12-23 16:34:12 +0000740 if( argv[0]==0 || isDate(argc-1, argv+1, &x) ) return;
drh7014aff2003-11-01 01:53:53 +0000741 for(i=0, n=1; zFmt[i]; i++, n++){
742 if( zFmt[i]=='%' ){
743 switch( zFmt[i+1] ){
744 case 'd':
745 case 'H':
746 case 'm':
747 case 'M':
748 case 'S':
749 case 'W':
750 n++;
751 /* fall thru */
752 case 'w':
753 case '%':
754 break;
755 case 'f':
756 n += 8;
757 break;
758 case 'j':
759 n += 3;
760 break;
761 case 'Y':
762 n += 8;
763 break;
764 case 's':
765 case 'J':
766 n += 50;
767 break;
768 default:
769 return; /* ERROR. return a NULL */
770 }
771 i++;
772 }
773 }
774 if( n<sizeof(zBuf) ){
775 z = zBuf;
776 }else{
777 z = sqliteMalloc( n );
778 if( z==0 ) return;
779 }
780 computeJD(&x);
drhba212562004-01-08 02:17:31 +0000781 computeYMD_HMS(&x);
drh7014aff2003-11-01 01:53:53 +0000782 for(i=j=0; zFmt[i]; i++){
783 if( zFmt[i]!='%' ){
784 z[j++] = zFmt[i];
785 }else{
786 i++;
787 switch( zFmt[i] ){
788 case 'd': sprintf(&z[j],"%02d",x.D); j+=2; break;
789 case 'f': {
790 int s = x.s;
791 int ms = (x.s - s)*1000.0;
792 sprintf(&z[j],"%02d.%03d",s,ms);
793 j += strlen(&z[j]);
794 break;
795 }
796 case 'H': sprintf(&z[j],"%02d",x.h); j+=2; break;
797 case 'W': /* Fall thru */
798 case 'j': {
799 int n;
800 DateTime y = x;
801 y.validJD = 0;
802 y.M = 1;
803 y.D = 1;
804 computeJD(&y);
805 n = x.rJD - y.rJD + 1;
806 if( zFmt[i]=='W' ){
807 sprintf(&z[j],"%02d",(n+6)/7);
808 j += 2;
809 }else{
810 sprintf(&z[j],"%03d",n);
811 j += 3;
812 }
813 break;
814 }
815 case 'J': sprintf(&z[j],"%.16g",x.rJD); j+=strlen(&z[j]); break;
816 case 'm': sprintf(&z[j],"%02d",x.M); j+=2; break;
817 case 'M': sprintf(&z[j],"%02d",x.m); j+=2; break;
818 case 's': {
drhc5dd9fa2004-01-07 03:29:16 +0000819 sprintf(&z[j],"%d",(int)((x.rJD-2440587.5)*86400.0 + 0.5));
drh7014aff2003-11-01 01:53:53 +0000820 j += strlen(&z[j]);
821 break;
822 }
drhc5dd9fa2004-01-07 03:29:16 +0000823 case 'S': sprintf(&z[j],"%02d",(int)(x.s+0.5)); j+=2; break;
drh7014aff2003-11-01 01:53:53 +0000824 case 'w': z[j++] = (((int)(x.rJD+1.5)) % 7) + '0'; break;
825 case 'Y': sprintf(&z[j],"%04d",x.Y); j+=strlen(&z[j]); break;
826 case '%': z[j++] = '%'; break;
827 }
828 }
829 }
830 z[j] = 0;
831 sqlite_set_result_string(context, z, -1);
832 if( z!=zBuf ){
833 sqliteFree(z);
834 }
835}
836
837
838#endif /* !defined(SQLITE_OMIT_DATETIME_FUNCS) */
839
840/*
841** This function registered all of the above C functions as SQL
842** functions. This should be the only routine in this file with
843** external linkage.
844*/
845void sqliteRegisterDateTimeFunctions(sqlite *db){
846 static struct {
847 char *zName;
848 int nArg;
849 int dataType;
850 void (*xFunc)(sqlite_func*,int,const char**);
851 } aFuncs[] = {
852#ifndef SQLITE_OMIT_DATETIME_FUNCS
853 { "julianday", -1, SQLITE_NUMERIC, juliandayFunc },
854 { "date", -1, SQLITE_TEXT, dateFunc },
drhf586aa82003-12-23 16:34:12 +0000855 { "time", -1, SQLITE_TEXT, timeFunc },
drh7014aff2003-11-01 01:53:53 +0000856 { "datetime", -1, SQLITE_TEXT, datetimeFunc },
857 { "strftime", -1, SQLITE_TEXT, strftimeFunc },
858#endif
859 };
860 int i;
861
862 for(i=0; i<sizeof(aFuncs)/sizeof(aFuncs[0]); i++){
863 sqlite_create_function(db, aFuncs[i].zName,
864 aFuncs[i].nArg, aFuncs[i].xFunc, 0);
865 if( aFuncs[i].xFunc ){
866 sqlite_function_type(db, aFuncs[i].zName, aFuncs[i].dataType);
867 }
868 }
869}