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drh75897232000-05-29 14:26:00 +00001/*
drhb19a2bc2001-09-16 00:13:26 +00002** 2001 September 15
drh75897232000-05-29 14:26:00 +00003**
drhb19a2bc2001-09-16 00:13:26 +00004** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
drh75897232000-05-29 14:26:00 +00006**
drhb19a2bc2001-09-16 00:13:26 +00007** 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.
drh75897232000-05-29 14:26:00 +000010**
11*************************************************************************
12** Main file for the SQLite library. The routines in this file
13** implement the programmer interface to the library. Routines in
14** other files are for internal use by SQLite and should not be
15** accessed by users of the library.
16**
drh74e24cd2002-01-09 03:19:59 +000017** $Id: main.c,v 1.54 2002/01/09 03:20:00 drh Exp $
drh75897232000-05-29 14:26:00 +000018*/
19#include "sqliteInt.h"
drh8cfbf082001-09-19 13:22:39 +000020#include "os.h"
drh75897232000-05-29 14:26:00 +000021
22/*
23** This is the callback routine for the code that initializes the
drh382c0242001-10-06 16:33:02 +000024** database. See sqliteInit() below for additional information.
25**
26** Each callback contains the following information:
drh28037572000-08-02 13:47:41 +000027**
drh4a324312001-12-21 14:30:42 +000028** argv[0] = "file-format" or "schema-cookie" or "table" or "index"
drhe3c41372001-09-17 20:25:58 +000029** argv[1] = table or index name or meta statement type.
30** argv[2] = root page number for table or index. NULL for meta.
drhadbca9c2001-09-27 15:11:53 +000031** argv[3] = SQL create statement for the table or index
drhd78eeee2001-09-13 16:18:53 +000032**
drh75897232000-05-29 14:26:00 +000033*/
34static int sqliteOpenCb(void *pDb, int argc, char **argv, char **azColName){
35 sqlite *db = (sqlite*)pDb;
36 Parse sParse;
drhd78eeee2001-09-13 16:18:53 +000037 int nErr = 0;
drh75897232000-05-29 14:26:00 +000038
drh382c0242001-10-06 16:33:02 +000039 /* TODO: Do some validity checks on all fields. In particular,
40 ** make sure fields do not contain NULLs. Otherwise we might core
41 ** when attempting to initialize from a corrupt database file. */
drhe3c41372001-09-17 20:25:58 +000042
drhadbca9c2001-09-27 15:11:53 +000043 assert( argc==4 );
drhd78eeee2001-09-13 16:18:53 +000044 switch( argv[0][0] ){
drh4a324312001-12-21 14:30:42 +000045 case 'f': { /* File format */
46 db->file_format = atoi(argv[3]);
47 break;
48 }
49 case 's': { /* Schema cookie */
50 db->schema_cookie = atoi(argv[3]);
51 db->next_cookie = db->schema_cookie;
drhd78eeee2001-09-13 16:18:53 +000052 break;
drh28037572000-08-02 13:47:41 +000053 }
drhd78eeee2001-09-13 16:18:53 +000054 case 'i':
55 case 't': { /* CREATE TABLE and CREATE INDEX statements */
drhadbca9c2001-09-27 15:11:53 +000056 if( argv[3] && argv[3][0] ){
drh382c0242001-10-06 16:33:02 +000057 /* Call the parser to process a CREATE TABLE or CREATE INDEX statement.
58 ** But because sParse.initFlag is set to 1, no VDBE code is generated
59 ** or executed. All the parser does is build the internal data
60 ** structures that describe the table or index.
61 */
drhadbca9c2001-09-27 15:11:53 +000062 memset(&sParse, 0, sizeof(sParse));
63 sParse.db = db;
64 sParse.initFlag = 1;
65 sParse.newTnum = atoi(argv[2]);
drhf5bf0a72001-11-23 00:24:12 +000066 sqliteRunParser(&sParse, argv[3], 0);
drhadbca9c2001-09-27 15:11:53 +000067 }else{
drh382c0242001-10-06 16:33:02 +000068 /* If the SQL column is blank it means this is an index that
69 ** was created to be the PRIMARY KEY or to fulfill a UNIQUE
drhaacc5432002-01-06 17:07:40 +000070 ** constraint for a CREATE TABLE. The index should have already
drh382c0242001-10-06 16:33:02 +000071 ** been created when we processed the CREATE TABLE. All we have
drhaacc5432002-01-06 17:07:40 +000072 ** to do here is record the root page number for that index.
drh382c0242001-10-06 16:33:02 +000073 */
drhadbca9c2001-09-27 15:11:53 +000074 Index *pIndex = sqliteFindIndex(db, argv[1]);
75 if( pIndex==0 || pIndex->tnum!=0 ){
76 nErr++;
77 }else{
78 pIndex->tnum = atoi(argv[2]);
79 }
80 }
drhd78eeee2001-09-13 16:18:53 +000081 break;
82 }
83 default: {
84 /* This can not happen! */
85 nErr = 1;
86 assert( nErr==0 );
87 }
drh28037572000-08-02 13:47:41 +000088 }
drh75897232000-05-29 14:26:00 +000089 return nErr;
90}
91
92/*
drh58b95762000-06-02 01:17:37 +000093** Attempt to read the database schema and initialize internal
94** data structures. Return one of the SQLITE_ error codes to
95** indicate success or failure.
drhbed86902000-06-02 13:27:59 +000096**
97** After the database is initialized, the SQLITE_Initialized
98** bit is set in the flags field of the sqlite structure. An
99** attempt is made to initialize the database as soon as it
100** is opened. If that fails (perhaps because another process
101** has the sqlite_master table locked) than another attempt
102** is made the first time the database is accessed.
drh75897232000-05-29 14:26:00 +0000103*/
drh58b95762000-06-02 01:17:37 +0000104static int sqliteInit(sqlite *db, char **pzErrMsg){
drh75897232000-05-29 14:26:00 +0000105 Vdbe *vdbe;
drh58b95762000-06-02 01:17:37 +0000106 int rc;
107
108 /*
109 ** The master database table has a structure like this
110 */
drh75897232000-05-29 14:26:00 +0000111 static char master_schema[] =
112 "CREATE TABLE " MASTER_NAME " (\n"
113 " type text,\n"
114 " name text,\n"
115 " tbl_name text,\n"
drhadbca9c2001-09-27 15:11:53 +0000116 " rootpage integer,\n"
drh75897232000-05-29 14:26:00 +0000117 " sql text\n"
118 ")"
119 ;
120
drhaacc5432002-01-06 17:07:40 +0000121 /* The following VDBE program is used to initialize the internal
drh75897232000-05-29 14:26:00 +0000122 ** structure holding the tables and indexes of the database.
123 ** The database contains a special table named "sqlite_master"
124 ** defined as follows:
125 **
126 ** CREATE TABLE sqlite_master (
drh28037572000-08-02 13:47:41 +0000127 ** type text, -- Either "table" or "index" or "meta"
drh75897232000-05-29 14:26:00 +0000128 ** name text, -- Name of table or index
129 ** tbl_name text, -- Associated table
drhadbca9c2001-09-27 15:11:53 +0000130 ** rootpage integer, -- The integer page number of root page
drh75897232000-05-29 14:26:00 +0000131 ** sql text -- The CREATE statement for this object
132 ** );
133 **
134 ** The sqlite_master table contains a single entry for each table
drh967e8b72000-06-21 13:59:10 +0000135 ** and each index. The "type" column tells whether the entry is
136 ** a table or index. The "name" column is the name of the object.
drh75897232000-05-29 14:26:00 +0000137 ** The "tbl_name" is the name of the associated table. For tables,
drh967e8b72000-06-21 13:59:10 +0000138 ** the tbl_name column is always the same as name. For indices, the
139 ** tbl_name column contains the name of the table that the index
drh382c0242001-10-06 16:33:02 +0000140 ** indexes. The "rootpage" column holds the number of the root page
141 ** for the b-tree for the table or index. Finally, the "sql" column
142 ** contains the complete text of the CREATE TABLE or CREATE INDEX
143 ** statement that originally created the table or index. If an index
144 ** was created to fulfill a PRIMARY KEY or UNIQUE constraint on a table,
145 ** then the "sql" column is NULL.
drh75897232000-05-29 14:26:00 +0000146 **
drh28037572000-08-02 13:47:41 +0000147 ** If the "type" column has the value "meta", then the "sql" column
148 ** contains extra information about the database, such as the
149 ** file format version number. All meta information must be processed
150 ** before any tables or indices are constructed.
151 **
drh75897232000-05-29 14:26:00 +0000152 ** The following program invokes its callback on the SQL for each
153 ** table then goes back and invokes the callback on the
154 ** SQL for each index. The callback will invoke the
155 ** parser to build the internal representation of the
156 ** database scheme.
157 */
158 static VdbeOp initProg[] = {
drh4a324312001-12-21 14:30:42 +0000159 { OP_Open, 0, 2, 0},
160 { OP_String, 0, 0, "file-format"},
161 { OP_String, 0, 0, 0},
162 { OP_String, 0, 0, 0},
163 { OP_ReadCookie, 0, 1, 0},
164 { OP_Callback, 4, 0, 0},
165 { OP_String, 0, 0, "schema_cookie"},
166 { OP_String, 0, 0, 0},
167 { OP_String, 0, 0, 0},
168 { OP_ReadCookie, 0, 0, 0},
169 { OP_Callback, 4, 0, 0},
170 { OP_Rewind, 0, 31, 0},
171 { OP_Column, 0, 0, 0}, /* 12 */
172 { OP_String, 0, 0, "table"},
173 { OP_Ne, 0, 20, 0},
174 { OP_Column, 0, 0, 0},
175 { OP_Column, 0, 1, 0},
176 { OP_Column, 0, 3, 0},
177 { OP_Column, 0, 4, 0},
178 { OP_Callback, 4, 0, 0},
179 { OP_Next, 0, 12, 0}, /* 20 */
180 { OP_Rewind, 0, 31, 0}, /* 21 */
181 { OP_Column, 0, 0, 0}, /* 22 */
182 { OP_String, 0, 0, "index"},
183 { OP_Ne, 0, 30, 0},
184 { OP_Column, 0, 0, 0},
185 { OP_Column, 0, 1, 0},
186 { OP_Column, 0, 3, 0},
187 { OP_Column, 0, 4, 0},
188 { OP_Callback, 4, 0, 0},
189 { OP_Next, 0, 22, 0}, /* 30 */
190 { OP_Close, 0, 0, 0}, /* 31 */
191 { OP_Halt, 0, 0, 0},
drh75897232000-05-29 14:26:00 +0000192 };
193
drh58b95762000-06-02 01:17:37 +0000194 /* Create a virtual machine to run the initialization program. Run
drh382c0242001-10-06 16:33:02 +0000195 ** the program. Then delete the virtual machine.
drh58b95762000-06-02 01:17:37 +0000196 */
drh4c504392000-10-16 22:06:40 +0000197 vdbe = sqliteVdbeCreate(db);
drhd8bc7082000-06-07 23:51:50 +0000198 if( vdbe==0 ){
drh6d4abfb2001-10-22 02:58:08 +0000199 sqliteSetString(pzErrMsg, "out of memory", 0);
drhdaffd0e2001-04-11 14:28:42 +0000200 return SQLITE_NOMEM;
drhd8bc7082000-06-07 23:51:50 +0000201 }
drh58b95762000-06-02 01:17:37 +0000202 sqliteVdbeAddOpList(vdbe, sizeof(initProg)/sizeof(initProg[0]), initProg);
drh2dfbbca2000-07-28 14:32:48 +0000203 rc = sqliteVdbeExec(vdbe, sqliteOpenCb, db, pzErrMsg,
204 db->pBusyArg, db->xBusyCallback);
drh58b95762000-06-02 01:17:37 +0000205 sqliteVdbeDelete(vdbe);
drh4a324312001-12-21 14:30:42 +0000206 if( rc==SQLITE_OK && db->nTable==0 ){
207 db->file_format = FILE_FORMAT;
208 }
209 if( rc==SQLITE_OK && db->file_format>FILE_FORMAT ){
drhd78eeee2001-09-13 16:18:53 +0000210 sqliteSetString(pzErrMsg, "unsupported file format", 0);
drh28037572000-08-02 13:47:41 +0000211 rc = SQLITE_ERROR;
212 }
drhaacc5432002-01-06 17:07:40 +0000213
214 /* The schema for the SQLITE_MASTER table is not stored in the
215 ** database itself. We have to invoke the callback one extra
216 ** time to get it to process the SQLITE_MASTER table defintion.
217 */
drh58b95762000-06-02 01:17:37 +0000218 if( rc==SQLITE_OK ){
219 Table *pTab;
drhe3c41372001-09-17 20:25:58 +0000220 char *azArg[6];
drhd78eeee2001-09-13 16:18:53 +0000221 azArg[0] = "table";
222 azArg[1] = MASTER_NAME;
223 azArg[2] = "2";
drhadbca9c2001-09-27 15:11:53 +0000224 azArg[3] = master_schema;
225 azArg[4] = 0;
226 sqliteOpenCb(db, 4, azArg, 0);
drh58b95762000-06-02 01:17:37 +0000227 pTab = sqliteFindTable(db, MASTER_NAME);
228 if( pTab ){
229 pTab->readOnly = 1;
230 }
231 db->flags |= SQLITE_Initialized;
drh5e00f6c2001-09-13 13:46:56 +0000232 sqliteCommitInternalChanges(db);
drh58b95762000-06-02 01:17:37 +0000233 }
234 return rc;
235}
236
237/*
drhb217a572000-08-22 13:40:18 +0000238** The version of the library
239*/
drh3d0b5592000-08-22 13:40:51 +0000240const char sqlite_version[] = SQLITE_VERSION;
drhb217a572000-08-22 13:40:18 +0000241
242/*
drh297ecf12001-04-05 15:57:13 +0000243** Does the library expect data to be encoded as UTF-8 or iso8859? The
244** following global constant always lets us know.
245*/
246#ifdef SQLITE_UTF8
drhfbc3eab2001-04-06 16:13:42 +0000247const char sqlite_encoding[] = "UTF-8";
drh297ecf12001-04-05 15:57:13 +0000248#else
drhfbc3eab2001-04-06 16:13:42 +0000249const char sqlite_encoding[] = "iso8859";
drh297ecf12001-04-05 15:57:13 +0000250#endif
251
252/*
drh58b95762000-06-02 01:17:37 +0000253** Open a new SQLite database. Construct an "sqlite" structure to define
254** the state of this database and return a pointer to that structure.
255**
256** An attempt is made to initialize the in-memory data structures that
257** hold the database schema. But if this fails (because the schema file
258** is locked) then that step is deferred until the first call to
259** sqlite_exec().
260*/
261sqlite *sqlite_open(const char *zFilename, int mode, char **pzErrMsg){
262 sqlite *db;
263 int rc;
264
265 /* Allocate the sqlite data structure */
drh75897232000-05-29 14:26:00 +0000266 db = sqliteMalloc( sizeof(sqlite) );
267 if( pzErrMsg ) *pzErrMsg = 0;
drhdaffd0e2001-04-11 14:28:42 +0000268 if( db==0 ) goto no_mem_on_open;
drhbeae3192001-09-22 18:12:08 +0000269 sqliteHashInit(&db->tblHash, SQLITE_HASH_STRING, 0);
270 sqliteHashInit(&db->idxHash, SQLITE_HASH_STRING, 0);
drh74e24cd2002-01-09 03:19:59 +0000271 sqliteHashInit(&db->tblDrop, SQLITE_HASH_POINTER, 0);
272 sqliteHashInit(&db->idxDrop, SQLITE_HASH_POINTER, 0);
drhb8ca3072001-12-05 00:21:20 +0000273 db->nextRowid = sqliteRandomInteger();
drh75897232000-05-29 14:26:00 +0000274
275 /* Open the backend database driver */
drha1b351a2001-09-14 16:42:12 +0000276 rc = sqliteBtreeOpen(zFilename, mode, MAX_PAGES, &db->pBe);
drh5e00f6c2001-09-13 13:46:56 +0000277 if( rc!=SQLITE_OK ){
278 switch( rc ){
279 default: {
drhaacc5432002-01-06 17:07:40 +0000280 sqliteSetString(pzErrMsg, "unable to open database: ", zFilename, 0);
drh5e00f6c2001-09-13 13:46:56 +0000281 }
282 }
drh75897232000-05-29 14:26:00 +0000283 sqliteFree(db);
drh5edc3122001-09-13 21:53:09 +0000284 sqliteStrRealloc(pzErrMsg);
drhbe0072d2001-09-13 14:46:09 +0000285 return 0;
drh75897232000-05-29 14:26:00 +0000286 }
287
drh58b95762000-06-02 01:17:37 +0000288 /* Attempt to read the schema */
289 rc = sqliteInit(db, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000290 if( sqlite_malloc_failed ){
drh6d4abfb2001-10-22 02:58:08 +0000291 sqlite_close(db);
drhdaffd0e2001-04-11 14:28:42 +0000292 goto no_mem_on_open;
293 }else if( rc!=SQLITE_OK && rc!=SQLITE_BUSY ){
drh58b95762000-06-02 01:17:37 +0000294 sqlite_close(db);
drh5edc3122001-09-13 21:53:09 +0000295 sqliteStrRealloc(pzErrMsg);
drh58b95762000-06-02 01:17:37 +0000296 return 0;
drhaacc5432002-01-06 17:07:40 +0000297 }else if( pzErrMsg ){
drhdaffd0e2001-04-11 14:28:42 +0000298 sqliteFree(*pzErrMsg);
drhbed86902000-06-02 13:27:59 +0000299 *pzErrMsg = 0;
drh75897232000-05-29 14:26:00 +0000300 }
drh75897232000-05-29 14:26:00 +0000301 return db;
drhdaffd0e2001-04-11 14:28:42 +0000302
303no_mem_on_open:
304 sqliteSetString(pzErrMsg, "out of memory", 0);
305 sqliteStrRealloc(pzErrMsg);
306 return 0;
drh75897232000-05-29 14:26:00 +0000307}
308
309/*
drhf57b3392001-10-08 13:22:32 +0000310** Erase all schema information from the schema hash table. Except
311** tables that are created using CREATE TEMPORARY TABLE are preserved
drhaacc5432002-01-06 17:07:40 +0000312** if the preserveTemps flag is true.
drh50e5dad2001-09-15 00:57:28 +0000313**
314** The database schema is normally read in once when the database
315** is first opened and stored in a hash table in the sqlite structure.
316** This routine erases the stored schema. This erasure occurs because
317** either the database is being closed or because some other process
318** changed the schema and this process needs to reread it.
drh75897232000-05-29 14:26:00 +0000319*/
drhf57b3392001-10-08 13:22:32 +0000320static void clearHashTable(sqlite *db, int preserveTemps){
drhbeae3192001-09-22 18:12:08 +0000321 HashElem *pElem;
322 Hash temp1;
drh74e24cd2002-01-09 03:19:59 +0000323 assert( sqliteHashFirst(&db->tblDrop)==0 ); /* There can not be uncommitted */
324 assert( sqliteHashFirst(&db->idxDrop)==0 ); /* DROP TABLEs or DROP INDEXs */
drhbeae3192001-09-22 18:12:08 +0000325 temp1 = db->tblHash;
326 sqliteHashInit(&db->tblHash, SQLITE_HASH_STRING, 0);
327 sqliteHashClear(&db->idxHash);
328 for(pElem=sqliteHashFirst(&temp1); pElem; pElem=sqliteHashNext(pElem)){
drhf57b3392001-10-08 13:22:32 +0000329 Table *pTab = sqliteHashData(pElem);
330 if( preserveTemps && pTab->isTemp ){
331 Index *pIdx;
drh6d4abfb2001-10-22 02:58:08 +0000332 int nName = strlen(pTab->zName);
333 Table *pOld = sqliteHashInsert(&db->tblHash, pTab->zName, nName+1, pTab);
334 if( pOld!=0 ){
335 assert( pOld==pTab ); /* Malloc failed on the HashInsert */
336 sqliteDeleteTable(db, pOld);
337 continue;
338 }
drhf57b3392001-10-08 13:22:32 +0000339 for(pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext){
340 int n = strlen(pIdx->zName)+1;
drh6d4abfb2001-10-22 02:58:08 +0000341 Index *pOldIdx;
342 pOldIdx = sqliteHashInsert(&db->idxHash, pIdx->zName, n, pIdx);
343 if( pOld ){
344 assert( pOldIdx==pIdx );
345 sqliteUnlinkAndDeleteIndex(db, pOldIdx);
346 }
drhf57b3392001-10-08 13:22:32 +0000347 }
348 }else{
349 sqliteDeleteTable(db, pTab);
350 }
drh75897232000-05-29 14:26:00 +0000351 }
drhbeae3192001-09-22 18:12:08 +0000352 sqliteHashClear(&temp1);
drh50e5dad2001-09-15 00:57:28 +0000353 db->flags &= ~SQLITE_Initialized;
354}
355
356/*
357** Close an existing SQLite database
358*/
359void sqlite_close(sqlite *db){
360 sqliteBtreeClose(db->pBe);
drhf57b3392001-10-08 13:22:32 +0000361 clearHashTable(db, 0);
362 if( db->pBeTemp ){
363 sqliteBtreeClose(db->pBeTemp);
364 }
drh75897232000-05-29 14:26:00 +0000365 sqliteFree(db);
366}
367
368/*
369** Return TRUE if the given SQL string ends in a semicolon.
370*/
371int sqlite_complete(const char *zSql){
drh8c82b352000-12-10 18:23:50 +0000372 int isComplete = 0;
373 while( *zSql ){
374 switch( *zSql ){
375 case ';': {
376 isComplete = 1;
drh75897232000-05-29 14:26:00 +0000377 break;
drh8c82b352000-12-10 18:23:50 +0000378 }
379 case ' ':
380 case '\t':
381 case '\n':
382 case '\f': {
drh75897232000-05-29 14:26:00 +0000383 break;
drh8c82b352000-12-10 18:23:50 +0000384 }
385 case '\'': {
386 isComplete = 0;
387 zSql++;
388 while( *zSql && *zSql!='\'' ){ zSql++; }
389 if( *zSql==0 ) return 0;
drh75897232000-05-29 14:26:00 +0000390 break;
drh8c82b352000-12-10 18:23:50 +0000391 }
392 case '"': {
393 isComplete = 0;
394 zSql++;
395 while( *zSql && *zSql!='"' ){ zSql++; }
396 if( *zSql==0 ) return 0;
397 break;
398 }
399 case '-': {
400 if( zSql[1]!='-' ){
401 isComplete = 0;
402 break;
403 }
404 while( *zSql && *zSql!='\n' ){ zSql++; }
405 if( *zSql==0 ) return isComplete;
406 break;
407 }
408 default: {
409 isComplete = 0;
410 break;
411 }
drh75897232000-05-29 14:26:00 +0000412 }
drh8c82b352000-12-10 18:23:50 +0000413 zSql++;
drh75897232000-05-29 14:26:00 +0000414 }
drh8c82b352000-12-10 18:23:50 +0000415 return isComplete;
drh75897232000-05-29 14:26:00 +0000416}
417
418/*
drhbed86902000-06-02 13:27:59 +0000419** Execute SQL code. Return one of the SQLITE_ success/failure
420** codes. Also write an error message into memory obtained from
421** malloc() and make *pzErrMsg point to that message.
422**
423** If the SQL is a query, then for each row in the query result
424** the xCallback() function is called. pArg becomes the first
425** argument to xCallback(). If xCallback=NULL then no callback
426** is invoked, even for queries.
drh75897232000-05-29 14:26:00 +0000427*/
428int sqlite_exec(
429 sqlite *db, /* The database on which the SQL executes */
drh9f71c2e2001-11-03 23:57:09 +0000430 const char *zSql, /* The SQL to be executed */
drh75897232000-05-29 14:26:00 +0000431 sqlite_callback xCallback, /* Invoke this callback routine */
432 void *pArg, /* First argument to xCallback() */
433 char **pzErrMsg /* Write error messages here */
434){
435 Parse sParse;
drh75897232000-05-29 14:26:00 +0000436
437 if( pzErrMsg ) *pzErrMsg = 0;
drh58b95762000-06-02 01:17:37 +0000438 if( (db->flags & SQLITE_Initialized)==0 ){
439 int rc = sqliteInit(db, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000440 if( rc!=SQLITE_OK ){
441 sqliteStrRealloc(pzErrMsg);
442 return rc;
443 }
drh58b95762000-06-02 01:17:37 +0000444 }
drh75897232000-05-29 14:26:00 +0000445 memset(&sParse, 0, sizeof(sParse));
446 sParse.db = db;
drh5e00f6c2001-09-13 13:46:56 +0000447 sParse.pBe = db->pBe;
drh75897232000-05-29 14:26:00 +0000448 sParse.xCallback = xCallback;
449 sParse.pArg = pArg;
drh4c504392000-10-16 22:06:40 +0000450 sqliteRunParser(&sParse, zSql, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000451 if( sqlite_malloc_failed ){
452 sqliteSetString(pzErrMsg, "out of memory", 0);
453 sParse.rc = SQLITE_NOMEM;
drh6d4abfb2001-10-22 02:58:08 +0000454 sqliteBtreeRollback(db->pBe);
455 if( db->pBeTemp ) sqliteBtreeRollback(db->pBeTemp);
456 db->flags &= ~SQLITE_InTrans;
457 clearHashTable(db, 0);
drhdaffd0e2001-04-11 14:28:42 +0000458 }
459 sqliteStrRealloc(pzErrMsg);
drh50e5dad2001-09-15 00:57:28 +0000460 if( sParse.rc==SQLITE_SCHEMA ){
drhf57b3392001-10-08 13:22:32 +0000461 clearHashTable(db, 1);
drh50e5dad2001-09-15 00:57:28 +0000462 }
drh4c504392000-10-16 22:06:40 +0000463 return sParse.rc;
drh75897232000-05-29 14:26:00 +0000464}
drh2dfbbca2000-07-28 14:32:48 +0000465
466/*
467** This routine implements a busy callback that sleeps and tries
468** again until a timeout value is reached. The timeout value is
469** an integer number of milliseconds passed in as the first
470** argument.
471*/
drhdaffd0e2001-04-11 14:28:42 +0000472static int sqliteDefaultBusyCallback(
drh2dfbbca2000-07-28 14:32:48 +0000473 void *Timeout, /* Maximum amount of time to wait */
474 const char *NotUsed, /* The name of the table that is busy */
475 int count /* Number of times table has been busy */
476){
drh8cfbf082001-09-19 13:22:39 +0000477#if SQLITE_MIN_SLEEP_MS==1
478 int delay = 10;
drh2dfbbca2000-07-28 14:32:48 +0000479 int prior_delay = 0;
480 int timeout = (int)Timeout;
481 int i;
482
483 for(i=1; i<count; i++){
484 prior_delay += delay;
485 delay = delay*2;
drh8cfbf082001-09-19 13:22:39 +0000486 if( delay>=1000 ){
487 delay = 1000;
488 prior_delay += 1000*(count - i - 1);
drh2dfbbca2000-07-28 14:32:48 +0000489 break;
490 }
491 }
drh3109e022001-10-09 13:46:01 +0000492 if( prior_delay + delay > timeout ){
493 delay = timeout - prior_delay;
drh2dfbbca2000-07-28 14:32:48 +0000494 if( delay<=0 ) return 0;
495 }
drh8cfbf082001-09-19 13:22:39 +0000496 sqliteOsSleep(delay);
drh2dfbbca2000-07-28 14:32:48 +0000497 return 1;
498#else
499 int timeout = (int)Timeout;
500 if( (count+1)*1000 > timeout ){
501 return 0;
502 }
drh8cfbf082001-09-19 13:22:39 +0000503 sqliteOsSleep(1000);
drh2dfbbca2000-07-28 14:32:48 +0000504 return 1;
505#endif
506}
507
508/*
509** This routine sets the busy callback for an Sqlite database to the
510** given callback function with the given argument.
511*/
512void sqlite_busy_handler(
513 sqlite *db,
514 int (*xBusy)(void*,const char*,int),
515 void *pArg
516){
517 db->xBusyCallback = xBusy;
518 db->pBusyArg = pArg;
519}
520
521/*
522** This routine installs a default busy handler that waits for the
523** specified number of milliseconds before returning 0.
524*/
525void sqlite_busy_timeout(sqlite *db, int ms){
526 if( ms>0 ){
drhdaffd0e2001-04-11 14:28:42 +0000527 sqlite_busy_handler(db, sqliteDefaultBusyCallback, (void*)ms);
drh2dfbbca2000-07-28 14:32:48 +0000528 }else{
529 sqlite_busy_handler(db, 0, 0);
530 }
531}
drh4c504392000-10-16 22:06:40 +0000532
533/*
534** Cause any pending operation to stop at its earliest opportunity.
535*/
536void sqlite_interrupt(sqlite *db){
537 db->flags |= SQLITE_Interrupt;
538}