blob: 2d1c64ad130bbd82af83f83e7a04a6fca40726ba [file] [log] [blame]
drhc81c11f2009-11-10 01:30:52 +00001/*
2** 2001 September 15
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** Utility functions used throughout sqlite.
13**
14** This file contains functions for allocating memory, comparing
15** strings, and stuff like that.
16**
17*/
18#include "sqliteInt.h"
19#include <stdarg.h>
drhef9f7192020-01-17 19:14:08 +000020#ifndef SQLITE_OMIT_FLOATING_POINT
drh7e6dc5d2019-05-10 12:14:51 +000021#include <math.h>
drhef9f7192020-01-17 19:14:08 +000022#endif
drhc81c11f2009-11-10 01:30:52 +000023
24/*
25** Routine needed to support the testcase() macro.
26*/
27#ifdef SQLITE_COVERAGE_TEST
28void sqlite3Coverage(int x){
drh68bf0672011-04-11 15:35:24 +000029 static unsigned dummy = 0;
30 dummy += (unsigned)x;
drhc81c11f2009-11-10 01:30:52 +000031}
32#endif
33
drhc007f612014-05-16 14:17:01 +000034/*
drhce059e52019-04-05 17:22:50 +000035** Calls to sqlite3FaultSim() are used to simulate a failure during testing,
36** or to bypass normal error detection during testing in order to let
37** execute proceed futher downstream.
drhc007f612014-05-16 14:17:01 +000038**
drhce059e52019-04-05 17:22:50 +000039** In deployment, sqlite3FaultSim() *always* return SQLITE_OK (0). The
40** sqlite3FaultSim() function only returns non-zero during testing.
drhc007f612014-05-16 14:17:01 +000041**
drhce059e52019-04-05 17:22:50 +000042** During testing, if the test harness has set a fault-sim callback using
43** a call to sqlite3_test_control(SQLITE_TESTCTRL_FAULT_INSTALL), then
44** each call to sqlite3FaultSim() is relayed to that application-supplied
45** callback and the integer return value form the application-supplied
46** callback is returned by sqlite3FaultSim().
47**
48** The integer argument to sqlite3FaultSim() is a code to identify which
49** sqlite3FaultSim() instance is being invoked. Each call to sqlite3FaultSim()
50** should have a unique code. To prevent legacy testing applications from
51** breaking, the codes should not be changed or reused.
drhc007f612014-05-16 14:17:01 +000052*/
drhd12602a2016-12-07 15:49:02 +000053#ifndef SQLITE_UNTESTABLE
drhc007f612014-05-16 14:17:01 +000054int sqlite3FaultSim(int iTest){
55 int (*xCallback)(int) = sqlite3GlobalConfig.xTestCallback;
56 return xCallback ? xCallback(iTest) : SQLITE_OK;
57}
58#endif
59
drh85c8f292010-01-13 17:39:53 +000060#ifndef SQLITE_OMIT_FLOATING_POINT
drhc81c11f2009-11-10 01:30:52 +000061/*
62** Return true if the floating point value is Not a Number (NaN).
drhc81c11f2009-11-10 01:30:52 +000063*/
64int sqlite3IsNaN(double x){
drh05921222019-05-30 00:46:37 +000065 u64 y;
66 memcpy(&y,&x,sizeof(y));
67 return IsNaN(y);
drhc81c11f2009-11-10 01:30:52 +000068}
drh85c8f292010-01-13 17:39:53 +000069#endif /* SQLITE_OMIT_FLOATING_POINT */
drhc81c11f2009-11-10 01:30:52 +000070
71/*
72** Compute a string length that is limited to what can be stored in
73** lower 30 bits of a 32-bit signed integer.
74**
75** The value returned will never be negative. Nor will it ever be greater
76** than the actual length of the string. For very long strings (greater
77** than 1GiB) the value returned might be less than the true string length.
78*/
79int sqlite3Strlen30(const char *z){
drhc81c11f2009-11-10 01:30:52 +000080 if( z==0 ) return 0;
drh1116bf12015-06-30 03:18:33 +000081 return 0x3fffffff & (int)strlen(z);
drhc81c11f2009-11-10 01:30:52 +000082}
83
84/*
drhd7564862016-03-22 20:05:09 +000085** Return the declared type of a column. Or return zDflt if the column
86** has no declared type.
87**
88** The column type is an extra string stored after the zero-terminator on
89** the column name if and only if the COLFLAG_HASTYPE flag is set.
drh94eaafa2016-02-29 15:53:11 +000090*/
drhd7564862016-03-22 20:05:09 +000091char *sqlite3ColumnType(Column *pCol, char *zDflt){
drh77441fa2021-07-30 18:39:59 +000092 if( pCol->colFlags & COLFLAG_HASTYPE ){
drhcf9d36d2021-08-02 18:03:43 +000093 return pCol->zCnName + strlen(pCol->zCnName) + 1;
drhb70f2ea2021-08-18 12:05:22 +000094 }else if( pCol->eCType ){
95 assert( pCol->eCType<=SQLITE_N_STDTYPE );
96 return (char*)sqlite3StdType[pCol->eCType-1];
drh77441fa2021-07-30 18:39:59 +000097 }else{
98 return zDflt;
99 }
drh94eaafa2016-02-29 15:53:11 +0000100}
101
102/*
drh80fbee02016-03-21 11:57:13 +0000103** Helper function for sqlite3Error() - called rarely. Broken out into
104** a separate routine to avoid unnecessary register saves on entry to
105** sqlite3Error().
drh13f40da2014-08-22 18:00:11 +0000106*/
drh8d2f41c2016-03-21 11:38:01 +0000107static SQLITE_NOINLINE void sqlite3ErrorFinish(sqlite3 *db, int err_code){
108 if( db->pErr ) sqlite3ValueSetNull(db->pErr);
109 sqlite3SystemError(db, err_code);
110}
drh80fbee02016-03-21 11:57:13 +0000111
112/*
113** Set the current error code to err_code and clear any prior error message.
114** Also set iSysErrno (by calling sqlite3System) if the err_code indicates
115** that would be appropriate.
116*/
drh13f40da2014-08-22 18:00:11 +0000117void sqlite3Error(sqlite3 *db, int err_code){
118 assert( db!=0 );
119 db->errCode = err_code;
drh8d2f41c2016-03-21 11:38:01 +0000120 if( err_code || db->pErr ) sqlite3ErrorFinish(db, err_code);
drh13f40da2014-08-22 18:00:11 +0000121}
122
123/*
drh88efc792021-01-01 18:23:56 +0000124** The equivalent of sqlite3Error(db, SQLITE_OK). Clear the error state
125** and error message.
126*/
127void sqlite3ErrorClear(sqlite3 *db){
128 assert( db!=0 );
129 db->errCode = SQLITE_OK;
130 if( db->pErr ) sqlite3ValueSetNull(db->pErr);
131}
132
133/*
drh1b9f2142016-03-17 16:01:23 +0000134** Load the sqlite3.iSysErrno field if that is an appropriate thing
135** to do based on the SQLite error code in rc.
136*/
137void sqlite3SystemError(sqlite3 *db, int rc){
138 if( rc==SQLITE_IOERR_NOMEM ) return;
139 rc &= 0xff;
140 if( rc==SQLITE_CANTOPEN || rc==SQLITE_IOERR ){
141 db->iSysErrno = sqlite3OsGetLastError(db->pVfs);
142 }
143}
144
145/*
drhc81c11f2009-11-10 01:30:52 +0000146** Set the most recent error code and error string for the sqlite
147** handle "db". The error code is set to "err_code".
148**
149** If it is not NULL, string zFormat specifies the format of the
150** error string in the style of the printf functions: The following
151** format characters are allowed:
152**
153** %s Insert a string
154** %z A string that should be freed after use
155** %d Insert an integer
156** %T Insert a token
157** %S Insert the first element of a SrcList
158**
159** zFormat and any string tokens that follow it are assumed to be
160** encoded in UTF-8.
161**
162** To clear the most recent error for sqlite handle "db", sqlite3Error
163** should be called with err_code set to SQLITE_OK and zFormat set
164** to NULL.
165*/
drh13f40da2014-08-22 18:00:11 +0000166void sqlite3ErrorWithMsg(sqlite3 *db, int err_code, const char *zFormat, ...){
drha3cc0072013-12-13 16:23:55 +0000167 assert( db!=0 );
168 db->errCode = err_code;
drh8d2f41c2016-03-21 11:38:01 +0000169 sqlite3SystemError(db, err_code);
drh13f40da2014-08-22 18:00:11 +0000170 if( zFormat==0 ){
171 sqlite3Error(db, err_code);
172 }else if( db->pErr || (db->pErr = sqlite3ValueNew(db))!=0 ){
drha3cc0072013-12-13 16:23:55 +0000173 char *z;
174 va_list ap;
175 va_start(ap, zFormat);
176 z = sqlite3VMPrintf(db, zFormat, ap);
177 va_end(ap);
178 sqlite3ValueSetStr(db->pErr, -1, z, SQLITE_UTF8, SQLITE_DYNAMIC);
drhc81c11f2009-11-10 01:30:52 +0000179 }
180}
181
182/*
183** Add an error message to pParse->zErrMsg and increment pParse->nErr.
184** The following formatting characters are allowed:
185**
186** %s Insert a string
187** %z A string that should be freed after use
188** %d Insert an integer
189** %T Insert a token
190** %S Insert the first element of a SrcList
191**
drh13f40da2014-08-22 18:00:11 +0000192** This function should be used to report any error that occurs while
drhc81c11f2009-11-10 01:30:52 +0000193** compiling an SQL statement (i.e. within sqlite3_prepare()). The
194** last thing the sqlite3_prepare() function does is copy the error
195** stored by this function into the database handle using sqlite3Error().
drh13f40da2014-08-22 18:00:11 +0000196** Functions sqlite3Error() or sqlite3ErrorWithMsg() should be used
197** during statement execution (sqlite3_step() etc.).
drhc81c11f2009-11-10 01:30:52 +0000198*/
199void sqlite3ErrorMsg(Parse *pParse, const char *zFormat, ...){
drha7564662010-02-22 19:32:31 +0000200 char *zMsg;
drhc81c11f2009-11-10 01:30:52 +0000201 va_list ap;
202 sqlite3 *db = pParse->db;
drhc81c11f2009-11-10 01:30:52 +0000203 va_start(ap, zFormat);
drha7564662010-02-22 19:32:31 +0000204 zMsg = sqlite3VMPrintf(db, zFormat, ap);
drhc81c11f2009-11-10 01:30:52 +0000205 va_end(ap);
drha7564662010-02-22 19:32:31 +0000206 if( db->suppressErr ){
207 sqlite3DbFree(db, zMsg);
208 }else{
209 pParse->nErr++;
210 sqlite3DbFree(db, pParse->zErrMsg);
211 pParse->zErrMsg = zMsg;
212 pParse->rc = SQLITE_ERROR;
drh46a31cd2019-11-09 14:38:58 +0000213 pParse->pWith = 0;
drha7564662010-02-22 19:32:31 +0000214 }
drhc81c11f2009-11-10 01:30:52 +0000215}
216
217/*
drhc3dcdba2019-04-09 21:32:46 +0000218** If database connection db is currently parsing SQL, then transfer
219** error code errCode to that parser if the parser has not already
220** encountered some other kind of error.
221*/
222int sqlite3ErrorToParser(sqlite3 *db, int errCode){
223 Parse *pParse;
224 if( db==0 || (pParse = db->pParse)==0 ) return errCode;
225 pParse->rc = errCode;
226 pParse->nErr++;
227 return errCode;
228}
229
230/*
drhc81c11f2009-11-10 01:30:52 +0000231** Convert an SQL-style quoted string into a normal string by removing
232** the quote characters. The conversion is done in-place. If the
233** input does not begin with a quote character, then this routine
234** is a no-op.
235**
236** The input string must be zero-terminated. A new zero-terminator
237** is added to the dequoted string.
238**
239** The return value is -1 if no dequoting occurs or the length of the
240** dequoted string, exclusive of the zero terminator, if dequoting does
241** occur.
242**
drh51d35b02019-01-11 13:32:23 +0000243** 2002-02-14: This routine is extended to remove MS-Access style
peter.d.reid60ec9142014-09-06 16:39:46 +0000244** brackets from around identifiers. For example: "[a-b-c]" becomes
drhc81c11f2009-11-10 01:30:52 +0000245** "a-b-c".
246*/
drh244b9d62016-04-11 19:01:08 +0000247void sqlite3Dequote(char *z){
drhc81c11f2009-11-10 01:30:52 +0000248 char quote;
249 int i, j;
drh244b9d62016-04-11 19:01:08 +0000250 if( z==0 ) return;
drhc81c11f2009-11-10 01:30:52 +0000251 quote = z[0];
drh244b9d62016-04-11 19:01:08 +0000252 if( !sqlite3Isquote(quote) ) return;
253 if( quote=='[' ) quote = ']';
drh9ccd8652013-09-13 16:36:46 +0000254 for(i=1, j=0;; i++){
255 assert( z[i] );
drhc81c11f2009-11-10 01:30:52 +0000256 if( z[i]==quote ){
257 if( z[i+1]==quote ){
258 z[j++] = quote;
259 i++;
260 }else{
261 break;
262 }
263 }else{
264 z[j++] = z[i];
265 }
266 }
267 z[j] = 0;
drhc81c11f2009-11-10 01:30:52 +0000268}
drh51d35b02019-01-11 13:32:23 +0000269void sqlite3DequoteExpr(Expr *p){
270 assert( sqlite3Isquote(p->u.zToken[0]) );
271 p->flags |= p->u.zToken[0]=='"' ? EP_Quoted|EP_DblQuoted : EP_Quoted;
272 sqlite3Dequote(p->u.zToken);
273}
drhc81c11f2009-11-10 01:30:52 +0000274
drh40aced52016-01-22 17:48:09 +0000275/*
drh77441fa2021-07-30 18:39:59 +0000276** If the input token p is quoted, try to adjust the token to remove
277** the quotes. This is not always possible:
278**
279** "abc" -> abc
280** "ab""cd" -> (not possible because of the interior "")
281**
282** Remove the quotes if possible. This is a optimization. The overall
283** system should still return the correct answer even if this routine
284** is always a no-op.
285*/
286void sqlite3DequoteToken(Token *p){
drh15482bc2021-08-06 15:26:01 +0000287 unsigned int i;
drh77441fa2021-07-30 18:39:59 +0000288 if( p->n<2 ) return;
289 if( !sqlite3Isquote(p->z[0]) ) return;
290 for(i=1; i<p->n-1; i++){
291 if( sqlite3Isquote(p->z[i]) ) return;
292 }
293 p->n -= 2;
294 p->z++;
295}
296
297/*
drh40aced52016-01-22 17:48:09 +0000298** Generate a Token object from a string
299*/
300void sqlite3TokenInit(Token *p, char *z){
301 p->z = z;
302 p->n = sqlite3Strlen30(z);
303}
304
drhc81c11f2009-11-10 01:30:52 +0000305/* Convenient short-hand */
306#define UpperToLower sqlite3UpperToLower
307
308/*
309** Some systems have stricmp(). Others have strcasecmp(). Because
310** there is no consistency, we will define our own.
drh9f129f42010-08-31 15:27:32 +0000311**
drh0299b402012-03-19 17:42:46 +0000312** IMPLEMENTATION-OF: R-30243-02494 The sqlite3_stricmp() and
313** sqlite3_strnicmp() APIs allow applications and extensions to compare
314** the contents of two buffers containing UTF-8 strings in a
315** case-independent fashion, using the same definition of "case
316** independence" that SQLite uses internally when comparing identifiers.
drhc81c11f2009-11-10 01:30:52 +0000317*/
drh3fa97302012-02-22 16:58:36 +0000318int sqlite3_stricmp(const char *zLeft, const char *zRight){
drh9ca95732014-10-24 00:35:58 +0000319 if( zLeft==0 ){
320 return zRight ? -1 : 0;
321 }else if( zRight==0 ){
322 return 1;
323 }
drh80738d92016-02-15 00:34:16 +0000324 return sqlite3StrICmp(zLeft, zRight);
325}
326int sqlite3StrICmp(const char *zLeft, const char *zRight){
327 unsigned char *a, *b;
drh7e427332019-04-17 11:34:44 +0000328 int c, x;
drhc81c11f2009-11-10 01:30:52 +0000329 a = (unsigned char *)zLeft;
330 b = (unsigned char *)zRight;
drh80738d92016-02-15 00:34:16 +0000331 for(;;){
drh7e427332019-04-17 11:34:44 +0000332 c = *a;
333 x = *b;
334 if( c==x ){
335 if( c==0 ) break;
336 }else{
337 c = (int)UpperToLower[c] - (int)UpperToLower[x];
338 if( c ) break;
339 }
drh80738d92016-02-15 00:34:16 +0000340 a++;
341 b++;
342 }
343 return c;
drhc81c11f2009-11-10 01:30:52 +0000344}
345int sqlite3_strnicmp(const char *zLeft, const char *zRight, int N){
346 register unsigned char *a, *b;
drh9ca95732014-10-24 00:35:58 +0000347 if( zLeft==0 ){
348 return zRight ? -1 : 0;
349 }else if( zRight==0 ){
350 return 1;
351 }
drhc81c11f2009-11-10 01:30:52 +0000352 a = (unsigned char *)zLeft;
353 b = (unsigned char *)zRight;
354 while( N-- > 0 && *a!=0 && UpperToLower[*a]==UpperToLower[*b]){ a++; b++; }
355 return N<0 ? 0 : UpperToLower[*a] - UpperToLower[*b];
356}
357
358/*
drhd44390c2020-04-06 18:16:31 +0000359** Compute an 8-bit hash on a string that is insensitive to case differences
360*/
361u8 sqlite3StrIHash(const char *z){
362 u8 h = 0;
363 if( z==0 ) return 0;
364 while( z[0] ){
365 h += UpperToLower[(unsigned char)z[0]];
366 z++;
367 }
368 return h;
369}
370
371/*
drh02a43f62017-12-26 14:46:20 +0000372** Compute 10 to the E-th power. Examples: E==1 results in 10.
373** E==2 results in 100. E==50 results in 1.0e50.
374**
375** This routine only works for values of E between 1 and 341.
376*/
377static LONGDOUBLE_TYPE sqlite3Pow10(int E){
drh3dc97272018-01-17 21:14:17 +0000378#if defined(_MSC_VER)
379 static const LONGDOUBLE_TYPE x[] = {
drh38a59af2019-05-25 17:41:07 +0000380 1.0e+001L,
381 1.0e+002L,
382 1.0e+004L,
383 1.0e+008L,
384 1.0e+016L,
385 1.0e+032L,
386 1.0e+064L,
387 1.0e+128L,
388 1.0e+256L
drh3dc97272018-01-17 21:14:17 +0000389 };
390 LONGDOUBLE_TYPE r = 1.0;
391 int i;
392 assert( E>=0 && E<=307 );
393 for(i=0; E!=0; i++, E >>=1){
394 if( E & 1 ) r *= x[i];
395 }
396 return r;
397#else
drh02a43f62017-12-26 14:46:20 +0000398 LONGDOUBLE_TYPE x = 10.0;
399 LONGDOUBLE_TYPE r = 1.0;
400 while(1){
401 if( E & 1 ) r *= x;
402 E >>= 1;
403 if( E==0 ) break;
404 x *= x;
405 }
406 return r;
drh3dc97272018-01-17 21:14:17 +0000407#endif
drh02a43f62017-12-26 14:46:20 +0000408}
409
410/*
drh9339da12010-09-30 00:50:49 +0000411** The string z[] is an text representation of a real number.
drh025586a2010-09-30 17:33:11 +0000412** Convert this string to a double and write it into *pResult.
drhc81c11f2009-11-10 01:30:52 +0000413**
drh9339da12010-09-30 00:50:49 +0000414** The string z[] is length bytes in length (bytes, not characters) and
415** uses the encoding enc. The string is not necessarily zero-terminated.
drhc81c11f2009-11-10 01:30:52 +0000416**
drh9339da12010-09-30 00:50:49 +0000417** Return TRUE if the result is a valid real number (or integer) and FALSE
drh8a3884e2019-05-29 21:18:27 +0000418** if the string is empty or contains extraneous text. More specifically
419** return
420** 1 => The input string is a pure integer
421** 2 or more => The input has a decimal point or eNNN clause
drh9a278222019-06-07 22:26:08 +0000422** 0 or less => The input string is not a valid number
423** -1 => Not a valid number, but has a valid prefix which
424** includes a decimal point and/or an eNNN clause
drh8a3884e2019-05-29 21:18:27 +0000425**
426** Valid numbers are in one of these formats:
drh025586a2010-09-30 17:33:11 +0000427**
428** [+-]digits[E[+-]digits]
429** [+-]digits.[digits][E[+-]digits]
430** [+-].digits[E[+-]digits]
431**
432** Leading and trailing whitespace is ignored for the purpose of determining
433** validity.
434**
435** If some prefix of the input string is a valid number, this routine
436** returns FALSE but it still converts the prefix and writes the result
437** into *pResult.
drhc81c11f2009-11-10 01:30:52 +0000438*/
mistachkin6dcf9a42019-10-10 23:58:16 +0000439#if defined(_MSC_VER)
440#pragma warning(disable : 4756)
441#endif
drh9339da12010-09-30 00:50:49 +0000442int sqlite3AtoF(const char *z, double *pResult, int length, u8 enc){
drhc81c11f2009-11-10 01:30:52 +0000443#ifndef SQLITE_OMIT_FLOATING_POINT
drh0e5fba72013-03-20 12:04:29 +0000444 int incr;
drhe3a4f2c2019-12-13 23:38:57 +0000445 const char *zEnd;
drhc81c11f2009-11-10 01:30:52 +0000446 /* sign * significand * (10 ^ (esign * exponent)) */
drh025586a2010-09-30 17:33:11 +0000447 int sign = 1; /* sign of significand */
448 i64 s = 0; /* significand */
449 int d = 0; /* adjust exponent for shifting decimal point */
450 int esign = 1; /* sign of exponent */
451 int e = 0; /* exponent */
452 int eValid = 1; /* True exponent is either not used or is well-formed */
drhc81c11f2009-11-10 01:30:52 +0000453 double result;
drhc2b893a2019-05-25 18:17:53 +0000454 int nDigit = 0; /* Number of digits processed */
drh8a3884e2019-05-29 21:18:27 +0000455 int eType = 1; /* 1: pure integer, 2+: fractional -1 or less: bad UTF16 */
drhc81c11f2009-11-10 01:30:52 +0000456
drh0e5fba72013-03-20 12:04:29 +0000457 assert( enc==SQLITE_UTF8 || enc==SQLITE_UTF16LE || enc==SQLITE_UTF16BE );
drh025586a2010-09-30 17:33:11 +0000458 *pResult = 0.0; /* Default return value, in case of an error */
drhe3a4f2c2019-12-13 23:38:57 +0000459 if( length==0 ) return 0;
drh025586a2010-09-30 17:33:11 +0000460
drh0e5fba72013-03-20 12:04:29 +0000461 if( enc==SQLITE_UTF8 ){
462 incr = 1;
drhe3a4f2c2019-12-13 23:38:57 +0000463 zEnd = z + length;
drh0e5fba72013-03-20 12:04:29 +0000464 }else{
465 int i;
466 incr = 2;
drh87969b22020-01-08 12:17:46 +0000467 length &= ~1;
drh0e5fba72013-03-20 12:04:29 +0000468 assert( SQLITE_UTF16LE==2 && SQLITE_UTF16BE==3 );
drh84422db2019-05-30 13:47:10 +0000469 testcase( enc==SQLITE_UTF16LE );
470 testcase( enc==SQLITE_UTF16BE );
drh0e5fba72013-03-20 12:04:29 +0000471 for(i=3-enc; i<length && z[i]==0; i+=2){}
drh8a3884e2019-05-29 21:18:27 +0000472 if( i<length ) eType = -100;
drhad975d52016-04-27 15:24:13 +0000473 zEnd = &z[i^1];
drh0e5fba72013-03-20 12:04:29 +0000474 z += (enc&1);
475 }
drh9339da12010-09-30 00:50:49 +0000476
drhc81c11f2009-11-10 01:30:52 +0000477 /* skip leading spaces */
drh9339da12010-09-30 00:50:49 +0000478 while( z<zEnd && sqlite3Isspace(*z) ) z+=incr;
drh025586a2010-09-30 17:33:11 +0000479 if( z>=zEnd ) return 0;
drh9339da12010-09-30 00:50:49 +0000480
drhc81c11f2009-11-10 01:30:52 +0000481 /* get sign of significand */
482 if( *z=='-' ){
483 sign = -1;
drh9339da12010-09-30 00:50:49 +0000484 z+=incr;
drhc81c11f2009-11-10 01:30:52 +0000485 }else if( *z=='+' ){
drh9339da12010-09-30 00:50:49 +0000486 z+=incr;
drhc81c11f2009-11-10 01:30:52 +0000487 }
drh9339da12010-09-30 00:50:49 +0000488
drhc81c11f2009-11-10 01:30:52 +0000489 /* copy max significant digits to significand */
drhc2b893a2019-05-25 18:17:53 +0000490 while( z<zEnd && sqlite3Isdigit(*z) ){
drhc81c11f2009-11-10 01:30:52 +0000491 s = s*10 + (*z - '0');
drhc2b893a2019-05-25 18:17:53 +0000492 z+=incr; nDigit++;
493 if( s>=((LARGEST_INT64-9)/10) ){
494 /* skip non-significant significand digits
495 ** (increase exponent by d to shift decimal left) */
496 while( z<zEnd && sqlite3Isdigit(*z) ){ z+=incr; d++; }
497 }
drhc81c11f2009-11-10 01:30:52 +0000498 }
drh9339da12010-09-30 00:50:49 +0000499 if( z>=zEnd ) goto do_atof_calc;
drhc81c11f2009-11-10 01:30:52 +0000500
501 /* if decimal point is present */
502 if( *z=='.' ){
drh9339da12010-09-30 00:50:49 +0000503 z+=incr;
drh8a3884e2019-05-29 21:18:27 +0000504 eType++;
drhc81c11f2009-11-10 01:30:52 +0000505 /* copy digits from after decimal to significand
506 ** (decrease exponent by d to shift decimal right) */
drh15af62a2016-04-26 23:14:45 +0000507 while( z<zEnd && sqlite3Isdigit(*z) ){
508 if( s<((LARGEST_INT64-9)/10) ){
509 s = s*10 + (*z - '0');
510 d--;
drhc2b893a2019-05-25 18:17:53 +0000511 nDigit++;
drh15af62a2016-04-26 23:14:45 +0000512 }
drhc2b893a2019-05-25 18:17:53 +0000513 z+=incr;
drhc81c11f2009-11-10 01:30:52 +0000514 }
drhc81c11f2009-11-10 01:30:52 +0000515 }
drh9339da12010-09-30 00:50:49 +0000516 if( z>=zEnd ) goto do_atof_calc;
drhc81c11f2009-11-10 01:30:52 +0000517
518 /* if exponent is present */
519 if( *z=='e' || *z=='E' ){
drh9339da12010-09-30 00:50:49 +0000520 z+=incr;
drh025586a2010-09-30 17:33:11 +0000521 eValid = 0;
drh8a3884e2019-05-29 21:18:27 +0000522 eType++;
drhad975d52016-04-27 15:24:13 +0000523
524 /* This branch is needed to avoid a (harmless) buffer overread. The
525 ** special comment alerts the mutation tester that the correct answer
526 ** is obtained even if the branch is omitted */
527 if( z>=zEnd ) goto do_atof_calc; /*PREVENTS-HARMLESS-OVERREAD*/
528
drhc81c11f2009-11-10 01:30:52 +0000529 /* get sign of exponent */
530 if( *z=='-' ){
531 esign = -1;
drh9339da12010-09-30 00:50:49 +0000532 z+=incr;
drhc81c11f2009-11-10 01:30:52 +0000533 }else if( *z=='+' ){
drh9339da12010-09-30 00:50:49 +0000534 z+=incr;
drhc81c11f2009-11-10 01:30:52 +0000535 }
536 /* copy digits to exponent */
drh9339da12010-09-30 00:50:49 +0000537 while( z<zEnd && sqlite3Isdigit(*z) ){
drh57db4a72011-10-17 20:41:46 +0000538 e = e<10000 ? (e*10 + (*z - '0')) : 10000;
drh9339da12010-09-30 00:50:49 +0000539 z+=incr;
drh025586a2010-09-30 17:33:11 +0000540 eValid = 1;
drhc81c11f2009-11-10 01:30:52 +0000541 }
542 }
543
drh025586a2010-09-30 17:33:11 +0000544 /* skip trailing spaces */
drhc6daa012016-04-27 02:35:03 +0000545 while( z<zEnd && sqlite3Isspace(*z) ) z+=incr;
drh025586a2010-09-30 17:33:11 +0000546
drh9339da12010-09-30 00:50:49 +0000547do_atof_calc:
drhc81c11f2009-11-10 01:30:52 +0000548 /* adjust exponent by d, and update sign */
549 e = (e*esign) + d;
550 if( e<0 ) {
551 esign = -1;
552 e *= -1;
553 } else {
554 esign = 1;
555 }
556
drhad975d52016-04-27 15:24:13 +0000557 if( s==0 ) {
558 /* In the IEEE 754 standard, zero is signed. */
drhc6daa012016-04-27 02:35:03 +0000559 result = sign<0 ? -(double)0 : (double)0;
drhc81c11f2009-11-10 01:30:52 +0000560 } else {
drhad975d52016-04-27 15:24:13 +0000561 /* Attempt to reduce exponent.
562 **
563 ** Branches that are not required for the correct answer but which only
564 ** help to obtain the correct answer faster are marked with special
565 ** comments, as a hint to the mutation tester.
566 */
567 while( e>0 ){ /*OPTIMIZATION-IF-TRUE*/
568 if( esign>0 ){
569 if( s>=(LARGEST_INT64/10) ) break; /*OPTIMIZATION-IF-FALSE*/
570 s *= 10;
571 }else{
572 if( s%10!=0 ) break; /*OPTIMIZATION-IF-FALSE*/
573 s /= 10;
574 }
575 e--;
drhc81c11f2009-11-10 01:30:52 +0000576 }
577
578 /* adjust the sign of significand */
579 s = sign<0 ? -s : s;
580
drhad975d52016-04-27 15:24:13 +0000581 if( e==0 ){ /*OPTIMIZATION-IF-TRUE*/
582 result = (double)s;
583 }else{
drhc81c11f2009-11-10 01:30:52 +0000584 /* attempt to handle extremely small/large numbers better */
drhad975d52016-04-27 15:24:13 +0000585 if( e>307 ){ /*OPTIMIZATION-IF-TRUE*/
586 if( e<342 ){ /*OPTIMIZATION-IF-TRUE*/
drh02a43f62017-12-26 14:46:20 +0000587 LONGDOUBLE_TYPE scale = sqlite3Pow10(e-308);
drhad975d52016-04-27 15:24:13 +0000588 if( esign<0 ){
589 result = s / scale;
590 result /= 1.0e+308;
591 }else{
592 result = s * scale;
593 result *= 1.0e+308;
594 }
595 }else{ assert( e>=342 );
596 if( esign<0 ){
597 result = 0.0*s;
598 }else{
drhb9772e72017-09-12 13:27:43 +0000599#ifdef INFINITY
drh3ba18ad2017-09-12 15:05:34 +0000600 result = INFINITY*s;
drhb9772e72017-09-12 13:27:43 +0000601#else
drhad975d52016-04-27 15:24:13 +0000602 result = 1e308*1e308*s; /* Infinity */
drhb9772e72017-09-12 13:27:43 +0000603#endif
drhad975d52016-04-27 15:24:13 +0000604 }
drh2458a2e2011-10-17 12:14:26 +0000605 }
drhc81c11f2009-11-10 01:30:52 +0000606 }else{
drh02a43f62017-12-26 14:46:20 +0000607 LONGDOUBLE_TYPE scale = sqlite3Pow10(e);
drhc81c11f2009-11-10 01:30:52 +0000608 if( esign<0 ){
609 result = s / scale;
610 }else{
611 result = s * scale;
612 }
613 }
drhc81c11f2009-11-10 01:30:52 +0000614 }
615 }
616
617 /* store the result */
618 *pResult = result;
619
drh025586a2010-09-30 17:33:11 +0000620 /* return true if number and no extra non-whitespace chracters after */
drh9a278222019-06-07 22:26:08 +0000621 if( z==zEnd && nDigit>0 && eValid && eType>0 ){
622 return eType;
drh378a7d32019-06-10 23:45:10 +0000623 }else if( eType>=2 && (eType==3 || eValid) && nDigit>0 ){
drh9a278222019-06-07 22:26:08 +0000624 return -1;
625 }else{
626 return 0;
627 }
drhc81c11f2009-11-10 01:30:52 +0000628#else
shaneh5f1d6b62010-09-30 16:51:25 +0000629 return !sqlite3Atoi64(z, pResult, length, enc);
drhc81c11f2009-11-10 01:30:52 +0000630#endif /* SQLITE_OMIT_FLOATING_POINT */
631}
mistachkin6dcf9a42019-10-10 23:58:16 +0000632#if defined(_MSC_VER)
633#pragma warning(default : 4756)
634#endif
drhc81c11f2009-11-10 01:30:52 +0000635
636/*
drh82b0f102020-07-21 18:25:19 +0000637** Render an signed 64-bit integer as text. Store the result in zOut[].
638**
639** The caller must ensure that zOut[] is at least 21 bytes in size.
640*/
641void sqlite3Int64ToText(i64 v, char *zOut){
642 int i;
643 u64 x;
644 char zTemp[22];
645 if( v<0 ){
drh8deae5a2020-07-29 12:23:20 +0000646 x = (v==SMALLEST_INT64) ? ((u64)1)<<63 : (u64)-v;
drh82b0f102020-07-21 18:25:19 +0000647 }else{
648 x = v;
649 }
650 i = sizeof(zTemp)-2;
651 zTemp[sizeof(zTemp)-1] = 0;
652 do{
653 zTemp[i--] = (x%10) + '0';
654 x = x/10;
655 }while( x );
656 if( v<0 ) zTemp[i--] = '-';
657 memcpy(zOut, &zTemp[i+1], sizeof(zTemp)-1-i);
658}
659
660/*
drhc81c11f2009-11-10 01:30:52 +0000661** Compare the 19-character string zNum against the text representation
662** value 2^63: 9223372036854775808. Return negative, zero, or positive
663** if zNum is less than, equal to, or greater than the string.
shaneh5f1d6b62010-09-30 16:51:25 +0000664** Note that zNum must contain exactly 19 characters.
drhc81c11f2009-11-10 01:30:52 +0000665**
666** Unlike memcmp() this routine is guaranteed to return the difference
667** in the values of the last digit if the only difference is in the
668** last digit. So, for example,
669**
drh9339da12010-09-30 00:50:49 +0000670** compare2pow63("9223372036854775800", 1)
drhc81c11f2009-11-10 01:30:52 +0000671**
672** will return -8.
673*/
drh9339da12010-09-30 00:50:49 +0000674static int compare2pow63(const char *zNum, int incr){
675 int c = 0;
676 int i;
677 /* 012345678901234567 */
678 const char *pow63 = "922337203685477580";
679 for(i=0; c==0 && i<18; i++){
680 c = (zNum[i*incr]-pow63[i])*10;
681 }
drhc81c11f2009-11-10 01:30:52 +0000682 if( c==0 ){
drh9339da12010-09-30 00:50:49 +0000683 c = zNum[18*incr] - '8';
drh44dbca82010-01-13 04:22:20 +0000684 testcase( c==(-1) );
685 testcase( c==0 );
686 testcase( c==(+1) );
drhc81c11f2009-11-10 01:30:52 +0000687 }
688 return c;
689}
690
drhc81c11f2009-11-10 01:30:52 +0000691/*
drh9296c182014-07-23 13:40:49 +0000692** Convert zNum to a 64-bit signed integer. zNum must be decimal. This
693** routine does *not* accept hexadecimal notation.
drh158b9cb2011-03-05 20:59:46 +0000694**
drh84d4f1a2017-09-20 10:47:10 +0000695** Returns:
drh158b9cb2011-03-05 20:59:46 +0000696**
drh9a278222019-06-07 22:26:08 +0000697** -1 Not even a prefix of the input text looks like an integer
drh84d4f1a2017-09-20 10:47:10 +0000698** 0 Successful transformation. Fits in a 64-bit signed integer.
drh4eb57ce2018-01-26 18:37:34 +0000699** 1 Excess non-space text after the integer value
drh84d4f1a2017-09-20 10:47:10 +0000700** 2 Integer too large for a 64-bit signed integer or is malformed
701** 3 Special case of 9223372036854775808
drhc81c11f2009-11-10 01:30:52 +0000702**
drh9339da12010-09-30 00:50:49 +0000703** length is the number of bytes in the string (bytes, not characters).
704** The string is not necessarily zero-terminated. The encoding is
705** given by enc.
drhc81c11f2009-11-10 01:30:52 +0000706*/
drh9339da12010-09-30 00:50:49 +0000707int sqlite3Atoi64(const char *zNum, i64 *pNum, int length, u8 enc){
drh0e5fba72013-03-20 12:04:29 +0000708 int incr;
drh158b9cb2011-03-05 20:59:46 +0000709 u64 u = 0;
shaneh5f1d6b62010-09-30 16:51:25 +0000710 int neg = 0; /* assume positive */
drh9339da12010-09-30 00:50:49 +0000711 int i;
712 int c = 0;
drh609d5842016-04-28 00:32:16 +0000713 int nonNum = 0; /* True if input contains UTF16 with high byte non-zero */
drh84d4f1a2017-09-20 10:47:10 +0000714 int rc; /* Baseline return code */
drhc81c11f2009-11-10 01:30:52 +0000715 const char *zStart;
drh9339da12010-09-30 00:50:49 +0000716 const char *zEnd = zNum + length;
drh0e5fba72013-03-20 12:04:29 +0000717 assert( enc==SQLITE_UTF8 || enc==SQLITE_UTF16LE || enc==SQLITE_UTF16BE );
718 if( enc==SQLITE_UTF8 ){
719 incr = 1;
720 }else{
721 incr = 2;
drh359941b2020-08-27 16:28:30 +0000722 length &= ~1;
drh0e5fba72013-03-20 12:04:29 +0000723 assert( SQLITE_UTF16LE==2 && SQLITE_UTF16BE==3 );
724 for(i=3-enc; i<length && zNum[i]==0; i+=2){}
725 nonNum = i<length;
drh609d5842016-04-28 00:32:16 +0000726 zEnd = &zNum[i^1];
drh0e5fba72013-03-20 12:04:29 +0000727 zNum += (enc&1);
728 }
drh9339da12010-09-30 00:50:49 +0000729 while( zNum<zEnd && sqlite3Isspace(*zNum) ) zNum+=incr;
drh158b9cb2011-03-05 20:59:46 +0000730 if( zNum<zEnd ){
731 if( *zNum=='-' ){
732 neg = 1;
733 zNum+=incr;
734 }else if( *zNum=='+' ){
735 zNum+=incr;
736 }
drhc81c11f2009-11-10 01:30:52 +0000737 }
738 zStart = zNum;
drh9339da12010-09-30 00:50:49 +0000739 while( zNum<zEnd && zNum[0]=='0' ){ zNum+=incr; } /* Skip leading zeros. */
740 for(i=0; &zNum[i]<zEnd && (c=zNum[i])>='0' && c<='9'; i+=incr){
drh158b9cb2011-03-05 20:59:46 +0000741 u = u*10 + c - '0';
drhc81c11f2009-11-10 01:30:52 +0000742 }
drh4eb57ce2018-01-26 18:37:34 +0000743 testcase( i==18*incr );
744 testcase( i==19*incr );
745 testcase( i==20*incr );
drh1822ebf2018-01-27 14:25:27 +0000746 if( u>LARGEST_INT64 ){
747 /* This test and assignment is needed only to suppress UB warnings
748 ** from clang and -fsanitize=undefined. This test and assignment make
749 ** the code a little larger and slower, and no harm comes from omitting
750 ** them, but we must appaise the undefined-behavior pharisees. */
751 *pNum = neg ? SMALLEST_INT64 : LARGEST_INT64;
752 }else if( neg ){
drh158b9cb2011-03-05 20:59:46 +0000753 *pNum = -(i64)u;
754 }else{
755 *pNum = (i64)u;
756 }
drh4eb57ce2018-01-26 18:37:34 +0000757 rc = 0;
drh9a278222019-06-07 22:26:08 +0000758 if( i==0 && zStart==zNum ){ /* No digits */
759 rc = -1;
760 }else if( nonNum ){ /* UTF16 with high-order bytes non-zero */
drh84d4f1a2017-09-20 10:47:10 +0000761 rc = 1;
drh4eb57ce2018-01-26 18:37:34 +0000762 }else if( &zNum[i]<zEnd ){ /* Extra bytes at the end */
763 int jj = i;
764 do{
765 if( !sqlite3Isspace(zNum[jj]) ){
766 rc = 1; /* Extra non-space text after the integer */
767 break;
768 }
769 jj += incr;
770 }while( &zNum[jj]<zEnd );
drh84d4f1a2017-09-20 10:47:10 +0000771 }
drh4eb57ce2018-01-26 18:37:34 +0000772 if( i<19*incr ){
drhc81c11f2009-11-10 01:30:52 +0000773 /* Less than 19 digits, so we know that it fits in 64 bits */
drh158b9cb2011-03-05 20:59:46 +0000774 assert( u<=LARGEST_INT64 );
drh84d4f1a2017-09-20 10:47:10 +0000775 return rc;
drhc81c11f2009-11-10 01:30:52 +0000776 }else{
drh158b9cb2011-03-05 20:59:46 +0000777 /* zNum is a 19-digit numbers. Compare it against 9223372036854775808. */
drh4eb57ce2018-01-26 18:37:34 +0000778 c = i>19*incr ? 1 : compare2pow63(zNum, incr);
drh158b9cb2011-03-05 20:59:46 +0000779 if( c<0 ){
780 /* zNum is less than 9223372036854775808 so it fits */
781 assert( u<=LARGEST_INT64 );
drh84d4f1a2017-09-20 10:47:10 +0000782 return rc;
drh158b9cb2011-03-05 20:59:46 +0000783 }else{
drh4eb57ce2018-01-26 18:37:34 +0000784 *pNum = neg ? SMALLEST_INT64 : LARGEST_INT64;
785 if( c>0 ){
786 /* zNum is greater than 9223372036854775808 so it overflows */
787 return 2;
788 }else{
789 /* zNum is exactly 9223372036854775808. Fits if negative. The
790 ** special case 2 overflow if positive */
791 assert( u-1==LARGEST_INT64 );
792 return neg ? rc : 3;
793 }
drh158b9cb2011-03-05 20:59:46 +0000794 }
drhc81c11f2009-11-10 01:30:52 +0000795 }
796}
797
798/*
drh9296c182014-07-23 13:40:49 +0000799** Transform a UTF-8 integer literal, in either decimal or hexadecimal,
800** into a 64-bit signed integer. This routine accepts hexadecimal literals,
801** whereas sqlite3Atoi64() does not.
802**
803** Returns:
804**
805** 0 Successful transformation. Fits in a 64-bit signed integer.
drh84d4f1a2017-09-20 10:47:10 +0000806** 1 Excess text after the integer value
807** 2 Integer too large for a 64-bit signed integer or is malformed
808** 3 Special case of 9223372036854775808
drh9296c182014-07-23 13:40:49 +0000809*/
810int sqlite3DecOrHexToI64(const char *z, i64 *pOut){
811#ifndef SQLITE_OMIT_HEX_INTEGER
812 if( z[0]=='0'
813 && (z[1]=='x' || z[1]=='X')
drh9296c182014-07-23 13:40:49 +0000814 ){
815 u64 u = 0;
816 int i, k;
817 for(i=2; z[i]=='0'; i++){}
818 for(k=i; sqlite3Isxdigit(z[k]); k++){
819 u = u*16 + sqlite3HexToInt(z[k]);
820 }
821 memcpy(pOut, &u, 8);
drh84d4f1a2017-09-20 10:47:10 +0000822 return (z[k]==0 && k-i<=16) ? 0 : 2;
drh9296c182014-07-23 13:40:49 +0000823 }else
824#endif /* SQLITE_OMIT_HEX_INTEGER */
825 {
826 return sqlite3Atoi64(z, pOut, sqlite3Strlen30(z), SQLITE_UTF8);
827 }
828}
829
830/*
drhc81c11f2009-11-10 01:30:52 +0000831** If zNum represents an integer that will fit in 32-bits, then set
832** *pValue to that integer and return true. Otherwise return false.
833**
drh9296c182014-07-23 13:40:49 +0000834** This routine accepts both decimal and hexadecimal notation for integers.
835**
drhc81c11f2009-11-10 01:30:52 +0000836** Any non-numeric characters that following zNum are ignored.
837** This is different from sqlite3Atoi64() which requires the
838** input number to be zero-terminated.
839*/
840int sqlite3GetInt32(const char *zNum, int *pValue){
841 sqlite_int64 v = 0;
842 int i, c;
843 int neg = 0;
844 if( zNum[0]=='-' ){
845 neg = 1;
846 zNum++;
847 }else if( zNum[0]=='+' ){
848 zNum++;
849 }
drh28e048c2014-07-23 01:26:51 +0000850#ifndef SQLITE_OMIT_HEX_INTEGER
851 else if( zNum[0]=='0'
852 && (zNum[1]=='x' || zNum[1]=='X')
853 && sqlite3Isxdigit(zNum[2])
854 ){
855 u32 u = 0;
856 zNum += 2;
857 while( zNum[0]=='0' ) zNum++;
858 for(i=0; sqlite3Isxdigit(zNum[i]) && i<8; i++){
859 u = u*16 + sqlite3HexToInt(zNum[i]);
860 }
861 if( (u&0x80000000)==0 && sqlite3Isxdigit(zNum[i])==0 ){
862 memcpy(pValue, &u, 4);
863 return 1;
864 }else{
865 return 0;
866 }
867 }
868#endif
drh313e6fd2017-05-03 17:44:28 +0000869 if( !sqlite3Isdigit(zNum[0]) ) return 0;
drh935f2e72015-04-18 04:45:00 +0000870 while( zNum[0]=='0' ) zNum++;
drhc81c11f2009-11-10 01:30:52 +0000871 for(i=0; i<11 && (c = zNum[i] - '0')>=0 && c<=9; i++){
872 v = v*10 + c;
873 }
874
875 /* The longest decimal representation of a 32 bit integer is 10 digits:
876 **
877 ** 1234567890
878 ** 2^31 -> 2147483648
879 */
drh44dbca82010-01-13 04:22:20 +0000880 testcase( i==10 );
drhc81c11f2009-11-10 01:30:52 +0000881 if( i>10 ){
882 return 0;
883 }
drh44dbca82010-01-13 04:22:20 +0000884 testcase( v-neg==2147483647 );
drhc81c11f2009-11-10 01:30:52 +0000885 if( v-neg>2147483647 ){
886 return 0;
887 }
888 if( neg ){
889 v = -v;
890 }
891 *pValue = (int)v;
892 return 1;
893}
894
895/*
drh60ac3f42010-11-23 18:59:27 +0000896** Return a 32-bit integer value extracted from a string. If the
897** string is not an integer, just return 0.
898*/
899int sqlite3Atoi(const char *z){
900 int x = 0;
drh48bf2d72020-07-30 17:14:55 +0000901 sqlite3GetInt32(z, &x);
drh60ac3f42010-11-23 18:59:27 +0000902 return x;
903}
904
905/*
drhabc38152020-07-22 13:38:04 +0000906** Try to convert z into an unsigned 32-bit integer. Return true on
907** success and false if there is an error.
908**
909** Only decimal notation is accepted.
910*/
911int sqlite3GetUInt32(const char *z, u32 *pI){
912 u64 v = 0;
913 int i;
914 for(i=0; sqlite3Isdigit(z[i]); i++){
915 v = v*10 + z[i] - '0';
drh69306bf2020-07-22 20:12:10 +0000916 if( v>4294967296LL ){ *pI = 0; return 0; }
drhabc38152020-07-22 13:38:04 +0000917 }
drh69306bf2020-07-22 20:12:10 +0000918 if( i==0 || z[i]!=0 ){ *pI = 0; return 0; }
drhabc38152020-07-22 13:38:04 +0000919 *pI = (u32)v;
920 return 1;
921}
922
923/*
drhc81c11f2009-11-10 01:30:52 +0000924** The variable-length integer encoding is as follows:
925**
926** KEY:
927** A = 0xxxxxxx 7 bits of data and one flag bit
928** B = 1xxxxxxx 7 bits of data and one flag bit
929** C = xxxxxxxx 8 bits of data
930**
931** 7 bits - A
932** 14 bits - BA
933** 21 bits - BBA
934** 28 bits - BBBA
935** 35 bits - BBBBA
936** 42 bits - BBBBBA
937** 49 bits - BBBBBBA
938** 56 bits - BBBBBBBA
939** 64 bits - BBBBBBBBC
940*/
941
942/*
943** Write a 64-bit variable-length integer to memory starting at p[0].
944** The length of data write will be between 1 and 9 bytes. The number
945** of bytes written is returned.
946**
947** A variable-length integer consists of the lower 7 bits of each byte
948** for all bytes that have the 8th bit set and one byte with the 8th
949** bit clear. Except, if we get to the 9th byte, it stores the full
950** 8 bits and is the last byte.
951*/
drh2f2b2b82014-08-22 18:48:25 +0000952static int SQLITE_NOINLINE putVarint64(unsigned char *p, u64 v){
drhc81c11f2009-11-10 01:30:52 +0000953 int i, j, n;
954 u8 buf[10];
955 if( v & (((u64)0xff000000)<<32) ){
956 p[8] = (u8)v;
957 v >>= 8;
958 for(i=7; i>=0; i--){
959 p[i] = (u8)((v & 0x7f) | 0x80);
960 v >>= 7;
961 }
962 return 9;
963 }
964 n = 0;
965 do{
966 buf[n++] = (u8)((v & 0x7f) | 0x80);
967 v >>= 7;
968 }while( v!=0 );
969 buf[0] &= 0x7f;
970 assert( n<=9 );
971 for(i=0, j=n-1; j>=0; j--, i++){
972 p[i] = buf[j];
973 }
974 return n;
975}
drh2f2b2b82014-08-22 18:48:25 +0000976int sqlite3PutVarint(unsigned char *p, u64 v){
977 if( v<=0x7f ){
978 p[0] = v&0x7f;
drhc81c11f2009-11-10 01:30:52 +0000979 return 1;
980 }
drh2f2b2b82014-08-22 18:48:25 +0000981 if( v<=0x3fff ){
982 p[0] = ((v>>7)&0x7f)|0x80;
983 p[1] = v&0x7f;
drhc81c11f2009-11-10 01:30:52 +0000984 return 2;
985 }
drh2f2b2b82014-08-22 18:48:25 +0000986 return putVarint64(p,v);
drhc81c11f2009-11-10 01:30:52 +0000987}
988
989/*
drh0b2864c2010-03-03 15:18:38 +0000990** Bitmasks used by sqlite3GetVarint(). These precomputed constants
991** are defined here rather than simply putting the constant expressions
992** inline in order to work around bugs in the RVT compiler.
993**
994** SLOT_2_0 A mask for (0x7f<<14) | 0x7f
995**
996** SLOT_4_2_0 A mask for (0x7f<<28) | SLOT_2_0
997*/
998#define SLOT_2_0 0x001fc07f
999#define SLOT_4_2_0 0xf01fc07f
1000
1001
1002/*
drhc81c11f2009-11-10 01:30:52 +00001003** Read a 64-bit variable-length integer from memory starting at p[0].
1004** Return the number of bytes read. The value is stored in *v.
1005*/
1006u8 sqlite3GetVarint(const unsigned char *p, u64 *v){
1007 u32 a,b,s;
1008
drh698c86f2019-04-17 12:07:08 +00001009 if( ((signed char*)p)[0]>=0 ){
1010 *v = *p;
drhc81c11f2009-11-10 01:30:52 +00001011 return 1;
1012 }
drh698c86f2019-04-17 12:07:08 +00001013 if( ((signed char*)p)[1]>=0 ){
1014 *v = ((u32)(p[0]&0x7f)<<7) | p[1];
drhc81c11f2009-11-10 01:30:52 +00001015 return 2;
1016 }
1017
drh0b2864c2010-03-03 15:18:38 +00001018 /* Verify that constants are precomputed correctly */
1019 assert( SLOT_2_0 == ((0x7f<<14) | (0x7f)) );
shaneh1da207e2010-03-09 14:41:12 +00001020 assert( SLOT_4_2_0 == ((0xfU<<28) | (0x7f<<14) | (0x7f)) );
drh0b2864c2010-03-03 15:18:38 +00001021
drh698c86f2019-04-17 12:07:08 +00001022 a = ((u32)p[0])<<14;
1023 b = p[1];
1024 p += 2;
drhc81c11f2009-11-10 01:30:52 +00001025 a |= *p;
1026 /* a: p0<<14 | p2 (unmasked) */
1027 if (!(a&0x80))
1028 {
drh0b2864c2010-03-03 15:18:38 +00001029 a &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001030 b &= 0x7f;
1031 b = b<<7;
1032 a |= b;
1033 *v = a;
1034 return 3;
1035 }
1036
1037 /* CSE1 from below */
drh0b2864c2010-03-03 15:18:38 +00001038 a &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001039 p++;
1040 b = b<<14;
1041 b |= *p;
1042 /* b: p1<<14 | p3 (unmasked) */
1043 if (!(b&0x80))
1044 {
drh0b2864c2010-03-03 15:18:38 +00001045 b &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001046 /* moved CSE1 up */
1047 /* a &= (0x7f<<14)|(0x7f); */
1048 a = a<<7;
1049 a |= b;
1050 *v = a;
1051 return 4;
1052 }
1053
1054 /* a: p0<<14 | p2 (masked) */
1055 /* b: p1<<14 | p3 (unmasked) */
1056 /* 1:save off p0<<21 | p1<<14 | p2<<7 | p3 (masked) */
1057 /* moved CSE1 up */
1058 /* a &= (0x7f<<14)|(0x7f); */
drh0b2864c2010-03-03 15:18:38 +00001059 b &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001060 s = a;
1061 /* s: p0<<14 | p2 (masked) */
1062
1063 p++;
1064 a = a<<14;
1065 a |= *p;
1066 /* a: p0<<28 | p2<<14 | p4 (unmasked) */
1067 if (!(a&0x80))
1068 {
drh62aaa6c2015-11-21 17:27:42 +00001069 /* we can skip these cause they were (effectively) done above
1070 ** while calculating s */
drhc81c11f2009-11-10 01:30:52 +00001071 /* a &= (0x7f<<28)|(0x7f<<14)|(0x7f); */
1072 /* b &= (0x7f<<14)|(0x7f); */
1073 b = b<<7;
1074 a |= b;
1075 s = s>>18;
1076 *v = ((u64)s)<<32 | a;
1077 return 5;
1078 }
1079
1080 /* 2:save off p0<<21 | p1<<14 | p2<<7 | p3 (masked) */
1081 s = s<<7;
1082 s |= b;
1083 /* s: p0<<21 | p1<<14 | p2<<7 | p3 (masked) */
1084
1085 p++;
1086 b = b<<14;
1087 b |= *p;
1088 /* b: p1<<28 | p3<<14 | p5 (unmasked) */
1089 if (!(b&0x80))
1090 {
1091 /* we can skip this cause it was (effectively) done above in calc'ing s */
1092 /* b &= (0x7f<<28)|(0x7f<<14)|(0x7f); */
drh0b2864c2010-03-03 15:18:38 +00001093 a &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001094 a = a<<7;
1095 a |= b;
1096 s = s>>18;
1097 *v = ((u64)s)<<32 | a;
1098 return 6;
1099 }
1100
1101 p++;
1102 a = a<<14;
1103 a |= *p;
1104 /* a: p2<<28 | p4<<14 | p6 (unmasked) */
1105 if (!(a&0x80))
1106 {
drh0b2864c2010-03-03 15:18:38 +00001107 a &= SLOT_4_2_0;
1108 b &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001109 b = b<<7;
1110 a |= b;
1111 s = s>>11;
1112 *v = ((u64)s)<<32 | a;
1113 return 7;
1114 }
1115
1116 /* CSE2 from below */
drh0b2864c2010-03-03 15:18:38 +00001117 a &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001118 p++;
1119 b = b<<14;
1120 b |= *p;
1121 /* b: p3<<28 | p5<<14 | p7 (unmasked) */
1122 if (!(b&0x80))
1123 {
drh0b2864c2010-03-03 15:18:38 +00001124 b &= SLOT_4_2_0;
drhc81c11f2009-11-10 01:30:52 +00001125 /* moved CSE2 up */
1126 /* a &= (0x7f<<14)|(0x7f); */
1127 a = a<<7;
1128 a |= b;
1129 s = s>>4;
1130 *v = ((u64)s)<<32 | a;
1131 return 8;
1132 }
1133
1134 p++;
1135 a = a<<15;
1136 a |= *p;
1137 /* a: p4<<29 | p6<<15 | p8 (unmasked) */
1138
1139 /* moved CSE2 up */
1140 /* a &= (0x7f<<29)|(0x7f<<15)|(0xff); */
drh0b2864c2010-03-03 15:18:38 +00001141 b &= SLOT_2_0;
drhc81c11f2009-11-10 01:30:52 +00001142 b = b<<8;
1143 a |= b;
1144
1145 s = s<<4;
1146 b = p[-4];
1147 b &= 0x7f;
1148 b = b>>3;
1149 s |= b;
1150
1151 *v = ((u64)s)<<32 | a;
1152
1153 return 9;
1154}
1155
1156/*
1157** Read a 32-bit variable-length integer from memory starting at p[0].
1158** Return the number of bytes read. The value is stored in *v.
1159**
1160** If the varint stored in p[0] is larger than can fit in a 32-bit unsigned
1161** integer, then set *v to 0xffffffff.
1162**
1163** A MACRO version, getVarint32, is provided which inlines the
1164** single-byte case. All code should use the MACRO version as
1165** this function assumes the single-byte case has already been handled.
1166*/
1167u8 sqlite3GetVarint32(const unsigned char *p, u32 *v){
1168 u32 a,b;
1169
1170 /* The 1-byte case. Overwhelmingly the most common. Handled inline
1171 ** by the getVarin32() macro */
1172 a = *p;
1173 /* a: p0 (unmasked) */
1174#ifndef getVarint32
1175 if (!(a&0x80))
1176 {
1177 /* Values between 0 and 127 */
1178 *v = a;
1179 return 1;
1180 }
1181#endif
1182
1183 /* The 2-byte case */
1184 p++;
1185 b = *p;
1186 /* b: p1 (unmasked) */
1187 if (!(b&0x80))
1188 {
1189 /* Values between 128 and 16383 */
1190 a &= 0x7f;
1191 a = a<<7;
1192 *v = a | b;
1193 return 2;
1194 }
1195
1196 /* The 3-byte case */
1197 p++;
1198 a = a<<14;
1199 a |= *p;
1200 /* a: p0<<14 | p2 (unmasked) */
1201 if (!(a&0x80))
1202 {
1203 /* Values between 16384 and 2097151 */
1204 a &= (0x7f<<14)|(0x7f);
1205 b &= 0x7f;
1206 b = b<<7;
1207 *v = a | b;
1208 return 3;
1209 }
1210
1211 /* A 32-bit varint is used to store size information in btrees.
1212 ** Objects are rarely larger than 2MiB limit of a 3-byte varint.
1213 ** A 3-byte varint is sufficient, for example, to record the size
1214 ** of a 1048569-byte BLOB or string.
1215 **
1216 ** We only unroll the first 1-, 2-, and 3- byte cases. The very
1217 ** rare larger cases can be handled by the slower 64-bit varint
1218 ** routine.
1219 */
1220#if 1
1221 {
1222 u64 v64;
1223 u8 n;
1224
drh15cedda2020-07-02 17:05:11 +00001225 n = sqlite3GetVarint(p-2, &v64);
drhc81c11f2009-11-10 01:30:52 +00001226 assert( n>3 && n<=9 );
1227 if( (v64 & SQLITE_MAX_U32)!=v64 ){
1228 *v = 0xffffffff;
1229 }else{
1230 *v = (u32)v64;
1231 }
1232 return n;
1233 }
1234
1235#else
1236 /* For following code (kept for historical record only) shows an
1237 ** unrolling for the 3- and 4-byte varint cases. This code is
1238 ** slightly faster, but it is also larger and much harder to test.
1239 */
1240 p++;
1241 b = b<<14;
1242 b |= *p;
1243 /* b: p1<<14 | p3 (unmasked) */
1244 if (!(b&0x80))
1245 {
1246 /* Values between 2097152 and 268435455 */
1247 b &= (0x7f<<14)|(0x7f);
1248 a &= (0x7f<<14)|(0x7f);
1249 a = a<<7;
1250 *v = a | b;
1251 return 4;
1252 }
1253
1254 p++;
1255 a = a<<14;
1256 a |= *p;
1257 /* a: p0<<28 | p2<<14 | p4 (unmasked) */
1258 if (!(a&0x80))
1259 {
dan3bbe7612010-03-03 16:02:05 +00001260 /* Values between 268435456 and 34359738367 */
1261 a &= SLOT_4_2_0;
1262 b &= SLOT_4_2_0;
drhc81c11f2009-11-10 01:30:52 +00001263 b = b<<7;
1264 *v = a | b;
1265 return 5;
1266 }
1267
1268 /* We can only reach this point when reading a corrupt database
1269 ** file. In that case we are not in any hurry. Use the (relatively
1270 ** slow) general-purpose sqlite3GetVarint() routine to extract the
1271 ** value. */
1272 {
1273 u64 v64;
1274 u8 n;
1275
1276 p -= 4;
1277 n = sqlite3GetVarint(p, &v64);
1278 assert( n>5 && n<=9 );
1279 *v = (u32)v64;
1280 return n;
1281 }
1282#endif
1283}
1284
1285/*
1286** Return the number of bytes that will be needed to store the given
1287** 64-bit integer.
1288*/
1289int sqlite3VarintLen(u64 v){
drh59a53642015-09-01 22:29:07 +00001290 int i;
drh6f17c092016-03-04 21:18:09 +00001291 for(i=1; (v >>= 7)!=0; i++){ assert( i<10 ); }
drhc81c11f2009-11-10 01:30:52 +00001292 return i;
1293}
1294
1295
1296/*
1297** Read or write a four-byte big-endian integer value.
1298*/
1299u32 sqlite3Get4byte(const u8 *p){
drh5372e4d2015-06-30 12:47:09 +00001300#if SQLITE_BYTEORDER==4321
1301 u32 x;
1302 memcpy(&x,p,4);
1303 return x;
drhdc5ece82017-02-15 15:09:09 +00001304#elif SQLITE_BYTEORDER==1234 && GCC_VERSION>=4003000
drh5372e4d2015-06-30 12:47:09 +00001305 u32 x;
1306 memcpy(&x,p,4);
1307 return __builtin_bswap32(x);
drha39284b2017-02-09 17:12:22 +00001308#elif SQLITE_BYTEORDER==1234 && MSVC_VERSION>=1300
mistachkin647ca462015-06-30 17:28:40 +00001309 u32 x;
1310 memcpy(&x,p,4);
1311 return _byteswap_ulong(x);
drh5372e4d2015-06-30 12:47:09 +00001312#else
drh693e6712014-01-24 22:58:00 +00001313 testcase( p[0]&0x80 );
1314 return ((unsigned)p[0]<<24) | (p[1]<<16) | (p[2]<<8) | p[3];
drh5372e4d2015-06-30 12:47:09 +00001315#endif
drhc81c11f2009-11-10 01:30:52 +00001316}
1317void sqlite3Put4byte(unsigned char *p, u32 v){
drh5372e4d2015-06-30 12:47:09 +00001318#if SQLITE_BYTEORDER==4321
1319 memcpy(p,&v,4);
drhdc5ece82017-02-15 15:09:09 +00001320#elif SQLITE_BYTEORDER==1234 && GCC_VERSION>=4003000
drh5372e4d2015-06-30 12:47:09 +00001321 u32 x = __builtin_bswap32(v);
1322 memcpy(p,&x,4);
drha39284b2017-02-09 17:12:22 +00001323#elif SQLITE_BYTEORDER==1234 && MSVC_VERSION>=1300
mistachkin647ca462015-06-30 17:28:40 +00001324 u32 x = _byteswap_ulong(v);
1325 memcpy(p,&x,4);
drh5372e4d2015-06-30 12:47:09 +00001326#else
drhc81c11f2009-11-10 01:30:52 +00001327 p[0] = (u8)(v>>24);
1328 p[1] = (u8)(v>>16);
1329 p[2] = (u8)(v>>8);
1330 p[3] = (u8)v;
drh5372e4d2015-06-30 12:47:09 +00001331#endif
drhc81c11f2009-11-10 01:30:52 +00001332}
1333
drh9296c182014-07-23 13:40:49 +00001334
1335
1336/*
1337** Translate a single byte of Hex into an integer.
1338** This routine only works if h really is a valid hexadecimal
1339** character: 0..9a..fA..F
1340*/
1341u8 sqlite3HexToInt(int h){
1342 assert( (h>='0' && h<='9') || (h>='a' && h<='f') || (h>='A' && h<='F') );
1343#ifdef SQLITE_ASCII
1344 h += 9*(1&(h>>6));
1345#endif
1346#ifdef SQLITE_EBCDIC
1347 h += 9*(1&~(h>>4));
1348#endif
1349 return (u8)(h & 0xf);
1350}
1351
drhb48c0d52020-02-07 01:12:53 +00001352#if !defined(SQLITE_OMIT_BLOB_LITERAL)
drhc81c11f2009-11-10 01:30:52 +00001353/*
1354** Convert a BLOB literal of the form "x'hhhhhh'" into its binary
1355** value. Return a pointer to its binary value. Space to hold the
1356** binary value has been obtained from malloc and must be freed by
1357** the calling routine.
1358*/
1359void *sqlite3HexToBlob(sqlite3 *db, const char *z, int n){
1360 char *zBlob;
1361 int i;
1362
drh575fad62016-02-05 13:38:36 +00001363 zBlob = (char *)sqlite3DbMallocRawNN(db, n/2 + 1);
drhc81c11f2009-11-10 01:30:52 +00001364 n--;
1365 if( zBlob ){
1366 for(i=0; i<n; i+=2){
dancd74b612011-04-22 19:37:32 +00001367 zBlob[i/2] = (sqlite3HexToInt(z[i])<<4) | sqlite3HexToInt(z[i+1]);
drhc81c11f2009-11-10 01:30:52 +00001368 }
1369 zBlob[i/2] = 0;
1370 }
1371 return zBlob;
1372}
drhb48c0d52020-02-07 01:12:53 +00001373#endif /* !SQLITE_OMIT_BLOB_LITERAL */
drhc81c11f2009-11-10 01:30:52 +00001374
drh413c3d32010-02-23 20:11:56 +00001375/*
1376** Log an error that is an API call on a connection pointer that should
1377** not have been used. The "type" of connection pointer is given as the
1378** argument. The zType is a word like "NULL" or "closed" or "invalid".
1379*/
1380static void logBadConnection(const char *zType){
1381 sqlite3_log(SQLITE_MISUSE,
1382 "API call with %s database connection pointer",
1383 zType
1384 );
1385}
drhc81c11f2009-11-10 01:30:52 +00001386
1387/*
drhc81c11f2009-11-10 01:30:52 +00001388** Check to make sure we have a valid db pointer. This test is not
1389** foolproof but it does provide some measure of protection against
1390** misuse of the interface such as passing in db pointers that are
1391** NULL or which have been previously closed. If this routine returns
1392** 1 it means that the db pointer is valid and 0 if it should not be
1393** dereferenced for any reason. The calling function should invoke
1394** SQLITE_MISUSE immediately.
1395**
1396** sqlite3SafetyCheckOk() requires that the db pointer be valid for
1397** use. sqlite3SafetyCheckSickOrOk() allows a db pointer that failed to
1398** open properly and is not fit for general use but which can be
1399** used as an argument to sqlite3_errmsg() or sqlite3_close().
1400*/
1401int sqlite3SafetyCheckOk(sqlite3 *db){
drh5f9de6e2021-08-07 23:16:52 +00001402 u8 eOpenState;
drh413c3d32010-02-23 20:11:56 +00001403 if( db==0 ){
1404 logBadConnection("NULL");
1405 return 0;
1406 }
drh5f9de6e2021-08-07 23:16:52 +00001407 eOpenState = db->eOpenState;
1408 if( eOpenState!=SQLITE_STATE_OPEN ){
drhe294da02010-02-25 23:44:15 +00001409 if( sqlite3SafetyCheckSickOrOk(db) ){
1410 testcase( sqlite3GlobalConfig.xLog!=0 );
drh413c3d32010-02-23 20:11:56 +00001411 logBadConnection("unopened");
1412 }
drhc81c11f2009-11-10 01:30:52 +00001413 return 0;
1414 }else{
1415 return 1;
1416 }
1417}
1418int sqlite3SafetyCheckSickOrOk(sqlite3 *db){
drh5f9de6e2021-08-07 23:16:52 +00001419 u8 eOpenState;
1420 eOpenState = db->eOpenState;
1421 if( eOpenState!=SQLITE_STATE_SICK &&
1422 eOpenState!=SQLITE_STATE_OPEN &&
1423 eOpenState!=SQLITE_STATE_BUSY ){
drhe294da02010-02-25 23:44:15 +00001424 testcase( sqlite3GlobalConfig.xLog!=0 );
drhaf46dc12010-02-24 21:44:07 +00001425 logBadConnection("invalid");
drh413c3d32010-02-23 20:11:56 +00001426 return 0;
1427 }else{
1428 return 1;
1429 }
drhc81c11f2009-11-10 01:30:52 +00001430}
drh158b9cb2011-03-05 20:59:46 +00001431
1432/*
1433** Attempt to add, substract, or multiply the 64-bit signed value iB against
1434** the other 64-bit signed integer at *pA and store the result in *pA.
1435** Return 0 on success. Or if the operation would have resulted in an
1436** overflow, leave *pA unchanged and return 1.
1437*/
1438int sqlite3AddInt64(i64 *pA, i64 iB){
drhb9772e72017-09-12 13:27:43 +00001439#if GCC_VERSION>=5004000 && !defined(__INTEL_COMPILER)
drh4a477612017-01-03 17:33:43 +00001440 return __builtin_add_overflow(*pA, iB, pA);
1441#else
drh158b9cb2011-03-05 20:59:46 +00001442 i64 iA = *pA;
1443 testcase( iA==0 ); testcase( iA==1 );
1444 testcase( iB==-1 ); testcase( iB==0 );
1445 if( iB>=0 ){
1446 testcase( iA>0 && LARGEST_INT64 - iA == iB );
1447 testcase( iA>0 && LARGEST_INT64 - iA == iB - 1 );
1448 if( iA>0 && LARGEST_INT64 - iA < iB ) return 1;
drh158b9cb2011-03-05 20:59:46 +00001449 }else{
1450 testcase( iA<0 && -(iA + LARGEST_INT64) == iB + 1 );
1451 testcase( iA<0 && -(iA + LARGEST_INT64) == iB + 2 );
1452 if( iA<0 && -(iA + LARGEST_INT64) > iB + 1 ) return 1;
drh158b9cb2011-03-05 20:59:46 +00001453 }
drh53a6eb32014-02-10 12:59:15 +00001454 *pA += iB;
drh158b9cb2011-03-05 20:59:46 +00001455 return 0;
drh4a477612017-01-03 17:33:43 +00001456#endif
drh158b9cb2011-03-05 20:59:46 +00001457}
1458int sqlite3SubInt64(i64 *pA, i64 iB){
drhb9772e72017-09-12 13:27:43 +00001459#if GCC_VERSION>=5004000 && !defined(__INTEL_COMPILER)
drh4a477612017-01-03 17:33:43 +00001460 return __builtin_sub_overflow(*pA, iB, pA);
1461#else
drh158b9cb2011-03-05 20:59:46 +00001462 testcase( iB==SMALLEST_INT64+1 );
1463 if( iB==SMALLEST_INT64 ){
1464 testcase( (*pA)==(-1) ); testcase( (*pA)==0 );
1465 if( (*pA)>=0 ) return 1;
1466 *pA -= iB;
1467 return 0;
1468 }else{
1469 return sqlite3AddInt64(pA, -iB);
1470 }
drh4a477612017-01-03 17:33:43 +00001471#endif
drh158b9cb2011-03-05 20:59:46 +00001472}
drh158b9cb2011-03-05 20:59:46 +00001473int sqlite3MulInt64(i64 *pA, i64 iB){
drhb9772e72017-09-12 13:27:43 +00001474#if GCC_VERSION>=5004000 && !defined(__INTEL_COMPILER)
drh4a477612017-01-03 17:33:43 +00001475 return __builtin_mul_overflow(*pA, iB, pA);
1476#else
drh158b9cb2011-03-05 20:59:46 +00001477 i64 iA = *pA;
drh09952c62016-09-20 22:04:05 +00001478 if( iB>0 ){
1479 if( iA>LARGEST_INT64/iB ) return 1;
1480 if( iA<SMALLEST_INT64/iB ) return 1;
1481 }else if( iB<0 ){
1482 if( iA>0 ){
1483 if( iB<SMALLEST_INT64/iA ) return 1;
1484 }else if( iA<0 ){
1485 if( iB==SMALLEST_INT64 ) return 1;
1486 if( iA==SMALLEST_INT64 ) return 1;
1487 if( -iA>LARGEST_INT64/-iB ) return 1;
drh53a6eb32014-02-10 12:59:15 +00001488 }
drh53a6eb32014-02-10 12:59:15 +00001489 }
drh09952c62016-09-20 22:04:05 +00001490 *pA = iA*iB;
drh158b9cb2011-03-05 20:59:46 +00001491 return 0;
drh4a477612017-01-03 17:33:43 +00001492#endif
drh158b9cb2011-03-05 20:59:46 +00001493}
drhd50ffc42011-03-08 02:38:28 +00001494
1495/*
1496** Compute the absolute value of a 32-bit signed integer, of possible. Or
1497** if the integer has a value of -2147483648, return +2147483647
1498*/
1499int sqlite3AbsInt32(int x){
1500 if( x>=0 ) return x;
drh87e79ae2011-03-08 13:06:41 +00001501 if( x==(int)0x80000000 ) return 0x7fffffff;
drhd50ffc42011-03-08 02:38:28 +00001502 return -x;
1503}
drh81cc5162011-05-17 20:36:21 +00001504
1505#ifdef SQLITE_ENABLE_8_3_NAMES
1506/*
drhb51bf432011-07-21 21:29:35 +00001507** If SQLITE_ENABLE_8_3_NAMES is set at compile-time and if the database
drh81cc5162011-05-17 20:36:21 +00001508** filename in zBaseFilename is a URI with the "8_3_names=1" parameter and
1509** if filename in z[] has a suffix (a.k.a. "extension") that is longer than
1510** three characters, then shorten the suffix on z[] to be the last three
1511** characters of the original suffix.
1512**
drhb51bf432011-07-21 21:29:35 +00001513** If SQLITE_ENABLE_8_3_NAMES is set to 2 at compile-time, then always
1514** do the suffix shortening regardless of URI parameter.
1515**
drh81cc5162011-05-17 20:36:21 +00001516** Examples:
1517**
1518** test.db-journal => test.nal
1519** test.db-wal => test.wal
1520** test.db-shm => test.shm
drhf5808602011-12-16 00:33:04 +00001521** test.db-mj7f3319fa => test.9fa
drh81cc5162011-05-17 20:36:21 +00001522*/
1523void sqlite3FileSuffix3(const char *zBaseFilename, char *z){
drhb51bf432011-07-21 21:29:35 +00001524#if SQLITE_ENABLE_8_3_NAMES<2
drh7d39e172012-01-02 12:41:53 +00001525 if( sqlite3_uri_boolean(zBaseFilename, "8_3_names", 0) )
drhb51bf432011-07-21 21:29:35 +00001526#endif
1527 {
drh81cc5162011-05-17 20:36:21 +00001528 int i, sz;
1529 sz = sqlite3Strlen30(z);
drhc83f2d42011-05-18 02:41:10 +00001530 for(i=sz-1; i>0 && z[i]!='/' && z[i]!='.'; i--){}
drhc02a43a2012-01-10 23:18:38 +00001531 if( z[i]=='.' && ALWAYS(sz>i+4) ) memmove(&z[i+1], &z[sz-3], 4);
drh81cc5162011-05-17 20:36:21 +00001532 }
1533}
1534#endif
drhbf539c42013-10-05 18:16:02 +00001535
1536/*
1537** Find (an approximate) sum of two LogEst values. This computation is
1538** not a simple "+" operator because LogEst is stored as a logarithmic
1539** value.
1540**
1541*/
1542LogEst sqlite3LogEstAdd(LogEst a, LogEst b){
1543 static const unsigned char x[] = {
1544 10, 10, /* 0,1 */
1545 9, 9, /* 2,3 */
1546 8, 8, /* 4,5 */
1547 7, 7, 7, /* 6,7,8 */
1548 6, 6, 6, /* 9,10,11 */
1549 5, 5, 5, /* 12-14 */
1550 4, 4, 4, 4, /* 15-18 */
1551 3, 3, 3, 3, 3, 3, /* 19-24 */
1552 2, 2, 2, 2, 2, 2, 2, /* 25-31 */
1553 };
1554 if( a>=b ){
1555 if( a>b+49 ) return a;
1556 if( a>b+31 ) return a+1;
1557 return a+x[a-b];
1558 }else{
1559 if( b>a+49 ) return b;
1560 if( b>a+31 ) return b+1;
1561 return b+x[b-a];
1562 }
1563}
1564
1565/*
drh224155d2014-04-30 13:19:09 +00001566** Convert an integer into a LogEst. In other words, compute an
1567** approximation for 10*log2(x).
drhbf539c42013-10-05 18:16:02 +00001568*/
1569LogEst sqlite3LogEst(u64 x){
1570 static LogEst a[] = { 0, 2, 3, 5, 6, 7, 8, 9 };
1571 LogEst y = 40;
1572 if( x<8 ){
1573 if( x<2 ) return 0;
1574 while( x<8 ){ y -= 10; x <<= 1; }
1575 }else{
drhceb4b1d2017-08-17 20:53:07 +00001576#if GCC_VERSION>=5004000
1577 int i = 60 - __builtin_clzll(x);
1578 y += i*10;
1579 x >>= i;
1580#else
drh75ab50c2016-04-28 14:15:12 +00001581 while( x>255 ){ y += 40; x >>= 4; } /*OPTIMIZATION-IF-TRUE*/
drhbf539c42013-10-05 18:16:02 +00001582 while( x>15 ){ y += 10; x >>= 1; }
drhceb4b1d2017-08-17 20:53:07 +00001583#endif
drhbf539c42013-10-05 18:16:02 +00001584 }
1585 return a[x&7] + y - 10;
1586}
1587
1588#ifndef SQLITE_OMIT_VIRTUALTABLE
1589/*
1590** Convert a double into a LogEst
1591** In other words, compute an approximation for 10*log2(x).
1592*/
1593LogEst sqlite3LogEstFromDouble(double x){
1594 u64 a;
1595 LogEst e;
1596 assert( sizeof(x)==8 && sizeof(a)==8 );
1597 if( x<=1 ) return 0;
1598 if( x<=2000000000 ) return sqlite3LogEst((u64)x);
1599 memcpy(&a, &x, 8);
1600 e = (a>>52) - 1022;
1601 return e*10;
1602}
1603#endif /* SQLITE_OMIT_VIRTUALTABLE */
1604
drh14bfd992016-03-05 14:00:09 +00001605#if defined(SQLITE_ENABLE_STMT_SCANSTATUS) || \
drh175b8f02019-08-08 15:24:17 +00001606 defined(SQLITE_ENABLE_STAT4) || \
drhd566c952016-02-25 21:19:03 +00001607 defined(SQLITE_EXPLAIN_ESTIMATED_ROWS)
drhbf539c42013-10-05 18:16:02 +00001608/*
1609** Convert a LogEst into an integer.
drhd566c952016-02-25 21:19:03 +00001610**
1611** Note that this routine is only used when one or more of various
1612** non-standard compile-time options is enabled.
drhbf539c42013-10-05 18:16:02 +00001613*/
1614u64 sqlite3LogEstToInt(LogEst x){
1615 u64 n;
drhbf539c42013-10-05 18:16:02 +00001616 n = x%10;
1617 x /= 10;
1618 if( n>=5 ) n -= 2;
1619 else if( n>=1 ) n -= 1;
drhecdf20d2016-03-10 14:28:24 +00001620#if defined(SQLITE_ENABLE_STMT_SCANSTATUS) || \
1621 defined(SQLITE_EXPLAIN_ESTIMATED_ROWS)
1622 if( x>60 ) return (u64)LARGEST_INT64;
1623#else
drh175b8f02019-08-08 15:24:17 +00001624 /* If only SQLITE_ENABLE_STAT4 is on, then the largest input
drhecdf20d2016-03-10 14:28:24 +00001625 ** possible to this routine is 310, resulting in a maximum x of 31 */
1626 assert( x<=60 );
1627#endif
1628 return x>=3 ? (n+8)<<(x-3) : (n+8)>>(3-x);
drhbf539c42013-10-05 18:16:02 +00001629}
drhd566c952016-02-25 21:19:03 +00001630#endif /* defined SCANSTAT or STAT4 or ESTIMATED_ROWS */
drh9bf755c2016-12-23 03:59:31 +00001631
1632/*
1633** Add a new name/number pair to a VList. This might require that the
1634** VList object be reallocated, so return the new VList. If an OOM
drhce1bbe52016-12-23 13:52:45 +00001635** error occurs, the original VList returned and the
drh9bf755c2016-12-23 03:59:31 +00001636** db->mallocFailed flag is set.
1637**
1638** A VList is really just an array of integers. To destroy a VList,
1639** simply pass it to sqlite3DbFree().
1640**
1641** The first integer is the number of integers allocated for the whole
1642** VList. The second integer is the number of integers actually used.
1643** Each name/number pair is encoded by subsequent groups of 3 or more
1644** integers.
1645**
drhce1bbe52016-12-23 13:52:45 +00001646** Each name/number pair starts with two integers which are the numeric
drh9bf755c2016-12-23 03:59:31 +00001647** value for the pair and the size of the name/number pair, respectively.
1648** The text name overlays one or more following integers. The text name
1649** is always zero-terminated.
drhce1bbe52016-12-23 13:52:45 +00001650**
1651** Conceptually:
1652**
1653** struct VList {
1654** int nAlloc; // Number of allocated slots
1655** int nUsed; // Number of used slots
1656** struct VListEntry {
1657** int iValue; // Value for this entry
1658** int nSlot; // Slots used by this entry
1659** // ... variable name goes here
1660** } a[0];
1661** }
1662**
1663** During code generation, pointers to the variable names within the
1664** VList are taken. When that happens, nAlloc is set to zero as an
1665** indication that the VList may never again be enlarged, since the
1666** accompanying realloc() would invalidate the pointers.
drh9bf755c2016-12-23 03:59:31 +00001667*/
1668VList *sqlite3VListAdd(
1669 sqlite3 *db, /* The database connection used for malloc() */
1670 VList *pIn, /* The input VList. Might be NULL */
1671 const char *zName, /* Name of symbol to add */
1672 int nName, /* Bytes of text in zName */
1673 int iVal /* Value to associate with zName */
1674){
1675 int nInt; /* number of sizeof(int) objects needed for zName */
drhce1bbe52016-12-23 13:52:45 +00001676 char *z; /* Pointer to where zName will be stored */
1677 int i; /* Index in pIn[] where zName is stored */
drh9bf755c2016-12-23 03:59:31 +00001678
1679 nInt = nName/4 + 3;
drhce1bbe52016-12-23 13:52:45 +00001680 assert( pIn==0 || pIn[0]>=3 ); /* Verify ok to add new elements */
drh9bf755c2016-12-23 03:59:31 +00001681 if( pIn==0 || pIn[1]+nInt > pIn[0] ){
1682 /* Enlarge the allocation */
drh0aa32312019-04-13 04:01:12 +00001683 sqlite3_int64 nAlloc = (pIn ? 2*(sqlite3_int64)pIn[0] : 10) + nInt;
drh9bf755c2016-12-23 03:59:31 +00001684 VList *pOut = sqlite3DbRealloc(db, pIn, nAlloc*sizeof(int));
drhce1bbe52016-12-23 13:52:45 +00001685 if( pOut==0 ) return pIn;
drh9bf755c2016-12-23 03:59:31 +00001686 if( pIn==0 ) pOut[1] = 2;
1687 pIn = pOut;
1688 pIn[0] = nAlloc;
1689 }
1690 i = pIn[1];
1691 pIn[i] = iVal;
1692 pIn[i+1] = nInt;
1693 z = (char*)&pIn[i+2];
1694 pIn[1] = i+nInt;
1695 assert( pIn[1]<=pIn[0] );
1696 memcpy(z, zName, nName);
1697 z[nName] = 0;
1698 return pIn;
1699}
1700
1701/*
1702** Return a pointer to the name of a variable in the given VList that
1703** has the value iVal. Or return a NULL if there is no such variable in
1704** the list
1705*/
1706const char *sqlite3VListNumToName(VList *pIn, int iVal){
1707 int i, mx;
1708 if( pIn==0 ) return 0;
1709 mx = pIn[1];
1710 i = 2;
1711 do{
1712 if( pIn[i]==iVal ) return (char*)&pIn[i+2];
1713 i += pIn[i+1];
1714 }while( i<mx );
1715 return 0;
1716}
1717
1718/*
1719** Return the number of the variable named zName, if it is in VList.
1720** or return 0 if there is no such variable.
1721*/
1722int sqlite3VListNameToNum(VList *pIn, const char *zName, int nName){
1723 int i, mx;
1724 if( pIn==0 ) return 0;
1725 mx = pIn[1];
1726 i = 2;
1727 do{
1728 const char *z = (const char*)&pIn[i+2];
1729 if( strncmp(z,zName,nName)==0 && z[nName]==0 ) return pIn[i];
1730 i += pIn[i+1];
1731 }while( i<mx );
1732 return 0;
1733}