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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**
drhcd61c282002-03-06 22:01:34 +000017** $Id: main.c,v 1.68 2002/03/06 22:01:36 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] ){
drh603240c2002-03-05 01:11:12 +000045 case 'c': { /* Recommended pager cache size */
46 int size = atoi(argv[3]);
drhcd61c282002-03-06 22:01:34 +000047 if( size==0 ){ size = MAX_PAGES; }
48 db->cache_size = size;
49 sqliteBtreeSetCacheSize(db->pBe, size);
drh603240c2002-03-05 01:11:12 +000050 break;
51 }
drh4a324312001-12-21 14:30:42 +000052 case 'f': { /* File format */
53 db->file_format = atoi(argv[3]);
54 break;
55 }
56 case 's': { /* Schema cookie */
57 db->schema_cookie = atoi(argv[3]);
58 db->next_cookie = db->schema_cookie;
drhd78eeee2001-09-13 16:18:53 +000059 break;
drh28037572000-08-02 13:47:41 +000060 }
drh17f71932002-02-21 12:01:27 +000061 case 'v':
drhd78eeee2001-09-13 16:18:53 +000062 case 'i':
drh17f71932002-02-21 12:01:27 +000063 case 't': { /* CREATE TABLE, CREATE INDEX, or CREATE VIEW statements */
drhadbca9c2001-09-27 15:11:53 +000064 if( argv[3] && argv[3][0] ){
drh17f71932002-02-21 12:01:27 +000065 /* Call the parser to process a CREATE TABLE, INDEX or VIEW.
drh382c0242001-10-06 16:33:02 +000066 ** But because sParse.initFlag is set to 1, no VDBE code is generated
67 ** or executed. All the parser does is build the internal data
drh17f71932002-02-21 12:01:27 +000068 ** structures that describe the table, index, or view.
drh382c0242001-10-06 16:33:02 +000069 */
drhadbca9c2001-09-27 15:11:53 +000070 memset(&sParse, 0, sizeof(sParse));
71 sParse.db = db;
72 sParse.initFlag = 1;
73 sParse.newTnum = atoi(argv[2]);
drhf5bf0a72001-11-23 00:24:12 +000074 sqliteRunParser(&sParse, argv[3], 0);
drhadbca9c2001-09-27 15:11:53 +000075 }else{
drh382c0242001-10-06 16:33:02 +000076 /* If the SQL column is blank it means this is an index that
77 ** was created to be the PRIMARY KEY or to fulfill a UNIQUE
drhaacc5432002-01-06 17:07:40 +000078 ** constraint for a CREATE TABLE. The index should have already
drh382c0242001-10-06 16:33:02 +000079 ** been created when we processed the CREATE TABLE. All we have
drhaacc5432002-01-06 17:07:40 +000080 ** to do here is record the root page number for that index.
drh382c0242001-10-06 16:33:02 +000081 */
drhadbca9c2001-09-27 15:11:53 +000082 Index *pIndex = sqliteFindIndex(db, argv[1]);
83 if( pIndex==0 || pIndex->tnum!=0 ){
drhda9e0342002-01-10 14:31:48 +000084 /* This can occur if there exists an index on a TEMP table which
85 ** has the same name as another index on a permanent index. Since
86 ** the permanent table is hidden by the TEMP table, we can also
87 ** safely ignore the index on the permanent table.
88 */
89 /* Do Nothing */;
drhadbca9c2001-09-27 15:11:53 +000090 }else{
91 pIndex->tnum = atoi(argv[2]);
92 }
93 }
drhd78eeee2001-09-13 16:18:53 +000094 break;
95 }
96 default: {
97 /* This can not happen! */
98 nErr = 1;
99 assert( nErr==0 );
100 }
drh28037572000-08-02 13:47:41 +0000101 }
drh75897232000-05-29 14:26:00 +0000102 return nErr;
103}
104
105/*
drh58b95762000-06-02 01:17:37 +0000106** Attempt to read the database schema and initialize internal
107** data structures. Return one of the SQLITE_ error codes to
108** indicate success or failure.
drhbed86902000-06-02 13:27:59 +0000109**
110** After the database is initialized, the SQLITE_Initialized
111** bit is set in the flags field of the sqlite structure. An
112** attempt is made to initialize the database as soon as it
113** is opened. If that fails (perhaps because another process
114** has the sqlite_master table locked) than another attempt
115** is made the first time the database is accessed.
drh75897232000-05-29 14:26:00 +0000116*/
drh58b95762000-06-02 01:17:37 +0000117static int sqliteInit(sqlite *db, char **pzErrMsg){
drh75897232000-05-29 14:26:00 +0000118 Vdbe *vdbe;
drh58b95762000-06-02 01:17:37 +0000119 int rc;
120
121 /*
122 ** The master database table has a structure like this
123 */
drh75897232000-05-29 14:26:00 +0000124 static char master_schema[] =
125 "CREATE TABLE " MASTER_NAME " (\n"
126 " type text,\n"
127 " name text,\n"
128 " tbl_name text,\n"
drhadbca9c2001-09-27 15:11:53 +0000129 " rootpage integer,\n"
drh75897232000-05-29 14:26:00 +0000130 " sql text\n"
131 ")"
132 ;
133
drhaacc5432002-01-06 17:07:40 +0000134 /* The following VDBE program is used to initialize the internal
drh75897232000-05-29 14:26:00 +0000135 ** structure holding the tables and indexes of the database.
136 ** The database contains a special table named "sqlite_master"
137 ** defined as follows:
138 **
139 ** CREATE TABLE sqlite_master (
drh28037572000-08-02 13:47:41 +0000140 ** type text, -- Either "table" or "index" or "meta"
drh75897232000-05-29 14:26:00 +0000141 ** name text, -- Name of table or index
142 ** tbl_name text, -- Associated table
drhadbca9c2001-09-27 15:11:53 +0000143 ** rootpage integer, -- The integer page number of root page
drh75897232000-05-29 14:26:00 +0000144 ** sql text -- The CREATE statement for this object
145 ** );
146 **
147 ** The sqlite_master table contains a single entry for each table
drh967e8b72000-06-21 13:59:10 +0000148 ** and each index. The "type" column tells whether the entry is
149 ** a table or index. The "name" column is the name of the object.
drh75897232000-05-29 14:26:00 +0000150 ** The "tbl_name" is the name of the associated table. For tables,
drh967e8b72000-06-21 13:59:10 +0000151 ** the tbl_name column is always the same as name. For indices, the
152 ** tbl_name column contains the name of the table that the index
drh382c0242001-10-06 16:33:02 +0000153 ** indexes. The "rootpage" column holds the number of the root page
154 ** for the b-tree for the table or index. Finally, the "sql" column
155 ** contains the complete text of the CREATE TABLE or CREATE INDEX
156 ** statement that originally created the table or index. If an index
157 ** was created to fulfill a PRIMARY KEY or UNIQUE constraint on a table,
158 ** then the "sql" column is NULL.
drh75897232000-05-29 14:26:00 +0000159 **
drh17f71932002-02-21 12:01:27 +0000160 ** In format 1, entries in the sqlite_master table are in a random
161 ** order. Two passes must be made through the table to initialize
162 ** internal data structures. The first pass reads table definitions
163 ** and the second pass read index definitions. Having two passes
164 ** insures that indices appear after their tables.
165 **
166 ** In format 2, entries appear in chronological order. Only a single
167 ** pass needs to be made through the table since everything will be
168 ** in the write order. VIEWs may only occur in format 2.
drh28037572000-08-02 13:47:41 +0000169 **
drh75897232000-05-29 14:26:00 +0000170 ** The following program invokes its callback on the SQL for each
171 ** table then goes back and invokes the callback on the
172 ** SQL for each index. The callback will invoke the
173 ** parser to build the internal representation of the
174 ** database scheme.
175 */
176 static VdbeOp initProg[] = {
drh17f71932002-02-21 12:01:27 +0000177 /* Send the file format to the callback routine
178 */
drh4a324312001-12-21 14:30:42 +0000179 { OP_Open, 0, 2, 0},
180 { OP_String, 0, 0, "file-format"},
181 { OP_String, 0, 0, 0},
182 { OP_String, 0, 0, 0},
183 { OP_ReadCookie, 0, 1, 0},
184 { OP_Callback, 4, 0, 0},
drh17f71932002-02-21 12:01:27 +0000185
drh603240c2002-03-05 01:11:12 +0000186 /* Send the recommended pager cache size to the callback routine
187 */
188 { OP_String, 0, 0, "cache-size"},
189 { OP_String, 0, 0, 0},
190 { OP_String, 0, 0, 0},
191 { OP_ReadCookie, 0, 2, 0},
192 { OP_Callback, 4, 0, 0},
193
drh17f71932002-02-21 12:01:27 +0000194 /* Send the initial schema cookie to the callback
195 */
drh4a324312001-12-21 14:30:42 +0000196 { OP_String, 0, 0, "schema_cookie"},
197 { OP_String, 0, 0, 0},
198 { OP_String, 0, 0, 0},
199 { OP_ReadCookie, 0, 0, 0},
200 { OP_Callback, 4, 0, 0},
drh17f71932002-02-21 12:01:27 +0000201
202 /* Check the file format. If the format number is 2 or more,
203 ** then do a single pass through the SQLITE_MASTER table. For
204 ** a format number of less than 2, jump forward to a different
205 ** algorithm that makes two passes through the SQLITE_MASTER table,
206 ** once for tables and a second time for indices.
207 */
208 { OP_ReadCookie, 0, 1, 0},
209 { OP_Integer, 2, 0, 0},
drh603240c2002-03-05 01:11:12 +0000210 { OP_Lt, 0, 28, 0},
drh17f71932002-02-21 12:01:27 +0000211
212 /* This is the code for doing a single scan through the SQLITE_MASTER
213 ** table. This code runs for format 2 and greater.
214 */
drh603240c2002-03-05 01:11:12 +0000215 { OP_Rewind, 0, 26, 0},
216 { OP_Column, 0, 0, 0}, /* 20 */
drh17f71932002-02-21 12:01:27 +0000217 { OP_Column, 0, 1, 0},
218 { OP_Column, 0, 3, 0},
219 { OP_Column, 0, 4, 0},
220 { OP_Callback, 4, 0, 0},
drh603240c2002-03-05 01:11:12 +0000221 { OP_Next, 0, 20, 0},
222 { OP_Close, 0, 0, 0}, /* 26 */
drh17f71932002-02-21 12:01:27 +0000223 { OP_Halt, 0, 0, 0},
224
225 /* This is the code for doing two passes through SQLITE_MASTER. This
226 ** code runs for file format 1.
227 */
drh603240c2002-03-05 01:11:12 +0000228 { OP_Rewind, 0, 48, 0}, /* 28 */
229 { OP_Column, 0, 0, 0}, /* 29 */
drh4a324312001-12-21 14:30:42 +0000230 { OP_String, 0, 0, "table"},
drh603240c2002-03-05 01:11:12 +0000231 { OP_Ne, 0, 37, 0},
drh4a324312001-12-21 14:30:42 +0000232 { OP_Column, 0, 0, 0},
233 { OP_Column, 0, 1, 0},
234 { OP_Column, 0, 3, 0},
235 { OP_Column, 0, 4, 0},
236 { OP_Callback, 4, 0, 0},
drh603240c2002-03-05 01:11:12 +0000237 { OP_Next, 0, 29, 0}, /* 37 */
238 { OP_Rewind, 0, 48, 0}, /* 38 */
239 { OP_Column, 0, 0, 0}, /* 39 */
drh4a324312001-12-21 14:30:42 +0000240 { OP_String, 0, 0, "index"},
drh603240c2002-03-05 01:11:12 +0000241 { OP_Ne, 0, 47, 0},
drh4a324312001-12-21 14:30:42 +0000242 { OP_Column, 0, 0, 0},
243 { OP_Column, 0, 1, 0},
244 { OP_Column, 0, 3, 0},
245 { OP_Column, 0, 4, 0},
246 { OP_Callback, 4, 0, 0},
drh603240c2002-03-05 01:11:12 +0000247 { OP_Next, 0, 39, 0}, /* 47 */
248 { OP_Close, 0, 0, 0}, /* 48 */
drh4a324312001-12-21 14:30:42 +0000249 { OP_Halt, 0, 0, 0},
drh75897232000-05-29 14:26:00 +0000250 };
251
drh58b95762000-06-02 01:17:37 +0000252 /* Create a virtual machine to run the initialization program. Run
drh382c0242001-10-06 16:33:02 +0000253 ** the program. Then delete the virtual machine.
drh58b95762000-06-02 01:17:37 +0000254 */
drh4c504392000-10-16 22:06:40 +0000255 vdbe = sqliteVdbeCreate(db);
drhd8bc7082000-06-07 23:51:50 +0000256 if( vdbe==0 ){
drh6d4abfb2001-10-22 02:58:08 +0000257 sqliteSetString(pzErrMsg, "out of memory", 0);
drhdaffd0e2001-04-11 14:28:42 +0000258 return SQLITE_NOMEM;
drhd8bc7082000-06-07 23:51:50 +0000259 }
drh58b95762000-06-02 01:17:37 +0000260 sqliteVdbeAddOpList(vdbe, sizeof(initProg)/sizeof(initProg[0]), initProg);
drh2dfbbca2000-07-28 14:32:48 +0000261 rc = sqliteVdbeExec(vdbe, sqliteOpenCb, db, pzErrMsg,
262 db->pBusyArg, db->xBusyCallback);
drh58b95762000-06-02 01:17:37 +0000263 sqliteVdbeDelete(vdbe);
drh4a324312001-12-21 14:30:42 +0000264 if( rc==SQLITE_OK && db->nTable==0 ){
drh17f71932002-02-21 12:01:27 +0000265 db->file_format = 2;
drh4a324312001-12-21 14:30:42 +0000266 }
drh17f71932002-02-21 12:01:27 +0000267 if( rc==SQLITE_OK && db->file_format>2 ){
drhd78eeee2001-09-13 16:18:53 +0000268 sqliteSetString(pzErrMsg, "unsupported file format", 0);
drh28037572000-08-02 13:47:41 +0000269 rc = SQLITE_ERROR;
270 }
drhaacc5432002-01-06 17:07:40 +0000271
272 /* The schema for the SQLITE_MASTER table is not stored in the
273 ** database itself. We have to invoke the callback one extra
274 ** time to get it to process the SQLITE_MASTER table defintion.
275 */
drh58b95762000-06-02 01:17:37 +0000276 if( rc==SQLITE_OK ){
277 Table *pTab;
drhe3c41372001-09-17 20:25:58 +0000278 char *azArg[6];
drhd78eeee2001-09-13 16:18:53 +0000279 azArg[0] = "table";
280 azArg[1] = MASTER_NAME;
281 azArg[2] = "2";
drhadbca9c2001-09-27 15:11:53 +0000282 azArg[3] = master_schema;
283 azArg[4] = 0;
284 sqliteOpenCb(db, 4, azArg, 0);
drh58b95762000-06-02 01:17:37 +0000285 pTab = sqliteFindTable(db, MASTER_NAME);
286 if( pTab ){
287 pTab->readOnly = 1;
288 }
289 db->flags |= SQLITE_Initialized;
drh5e00f6c2001-09-13 13:46:56 +0000290 sqliteCommitInternalChanges(db);
drh58b95762000-06-02 01:17:37 +0000291 }
292 return rc;
293}
294
295/*
drhb217a572000-08-22 13:40:18 +0000296** The version of the library
297*/
drh3d0b5592000-08-22 13:40:51 +0000298const char sqlite_version[] = SQLITE_VERSION;
drhb217a572000-08-22 13:40:18 +0000299
300/*
drh297ecf12001-04-05 15:57:13 +0000301** Does the library expect data to be encoded as UTF-8 or iso8859? The
302** following global constant always lets us know.
303*/
304#ifdef SQLITE_UTF8
drhfbc3eab2001-04-06 16:13:42 +0000305const char sqlite_encoding[] = "UTF-8";
drh297ecf12001-04-05 15:57:13 +0000306#else
drhfbc3eab2001-04-06 16:13:42 +0000307const char sqlite_encoding[] = "iso8859";
drh297ecf12001-04-05 15:57:13 +0000308#endif
309
310/*
drh58b95762000-06-02 01:17:37 +0000311** Open a new SQLite database. Construct an "sqlite" structure to define
312** the state of this database and return a pointer to that structure.
313**
314** An attempt is made to initialize the in-memory data structures that
315** hold the database schema. But if this fails (because the schema file
316** is locked) then that step is deferred until the first call to
317** sqlite_exec().
318*/
319sqlite *sqlite_open(const char *zFilename, int mode, char **pzErrMsg){
320 sqlite *db;
321 int rc;
322
323 /* Allocate the sqlite data structure */
drh75897232000-05-29 14:26:00 +0000324 db = sqliteMalloc( sizeof(sqlite) );
325 if( pzErrMsg ) *pzErrMsg = 0;
drhdaffd0e2001-04-11 14:28:42 +0000326 if( db==0 ) goto no_mem_on_open;
drhbeae3192001-09-22 18:12:08 +0000327 sqliteHashInit(&db->tblHash, SQLITE_HASH_STRING, 0);
328 sqliteHashInit(&db->idxHash, SQLITE_HASH_STRING, 0);
drh74e24cd2002-01-09 03:19:59 +0000329 sqliteHashInit(&db->tblDrop, SQLITE_HASH_POINTER, 0);
330 sqliteHashInit(&db->idxDrop, SQLITE_HASH_POINTER, 0);
drh0bce8352002-02-28 00:41:10 +0000331 sqliteHashInit(&db->aFunc, SQLITE_HASH_STRING, 1);
drhdc04c582002-02-24 01:55:15 +0000332 sqliteRegisterBuildinFunctions(db);
drh1c928532002-01-31 15:54:21 +0000333 db->onError = OE_Default;
drh5cf8e8c2002-02-19 22:42:05 +0000334 db->priorNewRowid = 0;
drh75897232000-05-29 14:26:00 +0000335
336 /* Open the backend database driver */
drha1b351a2001-09-14 16:42:12 +0000337 rc = sqliteBtreeOpen(zFilename, mode, MAX_PAGES, &db->pBe);
drh5e00f6c2001-09-13 13:46:56 +0000338 if( rc!=SQLITE_OK ){
339 switch( rc ){
340 default: {
drhaacc5432002-01-06 17:07:40 +0000341 sqliteSetString(pzErrMsg, "unable to open database: ", zFilename, 0);
drh5e00f6c2001-09-13 13:46:56 +0000342 }
343 }
drh75897232000-05-29 14:26:00 +0000344 sqliteFree(db);
drh5edc3122001-09-13 21:53:09 +0000345 sqliteStrRealloc(pzErrMsg);
drhbe0072d2001-09-13 14:46:09 +0000346 return 0;
drh75897232000-05-29 14:26:00 +0000347 }
348
drh58b95762000-06-02 01:17:37 +0000349 /* Attempt to read the schema */
350 rc = sqliteInit(db, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000351 if( sqlite_malloc_failed ){
drh6d4abfb2001-10-22 02:58:08 +0000352 sqlite_close(db);
drhdaffd0e2001-04-11 14:28:42 +0000353 goto no_mem_on_open;
354 }else if( rc!=SQLITE_OK && rc!=SQLITE_BUSY ){
drh58b95762000-06-02 01:17:37 +0000355 sqlite_close(db);
drh5edc3122001-09-13 21:53:09 +0000356 sqliteStrRealloc(pzErrMsg);
drh58b95762000-06-02 01:17:37 +0000357 return 0;
drhaacc5432002-01-06 17:07:40 +0000358 }else if( pzErrMsg ){
drhdaffd0e2001-04-11 14:28:42 +0000359 sqliteFree(*pzErrMsg);
drhbed86902000-06-02 13:27:59 +0000360 *pzErrMsg = 0;
drh75897232000-05-29 14:26:00 +0000361 }
drh75897232000-05-29 14:26:00 +0000362 return db;
drhdaffd0e2001-04-11 14:28:42 +0000363
364no_mem_on_open:
365 sqliteSetString(pzErrMsg, "out of memory", 0);
366 sqliteStrRealloc(pzErrMsg);
367 return 0;
drh75897232000-05-29 14:26:00 +0000368}
369
370/*
drhf57b3392001-10-08 13:22:32 +0000371** Erase all schema information from the schema hash table. Except
372** tables that are created using CREATE TEMPORARY TABLE are preserved
drhaacc5432002-01-06 17:07:40 +0000373** if the preserveTemps flag is true.
drh50e5dad2001-09-15 00:57:28 +0000374**
375** The database schema is normally read in once when the database
376** is first opened and stored in a hash table in the sqlite structure.
377** This routine erases the stored schema. This erasure occurs because
378** either the database is being closed or because some other process
379** changed the schema and this process needs to reread it.
drh75897232000-05-29 14:26:00 +0000380*/
drhf57b3392001-10-08 13:22:32 +0000381static void clearHashTable(sqlite *db, int preserveTemps){
drhbeae3192001-09-22 18:12:08 +0000382 HashElem *pElem;
383 Hash temp1;
drh74e24cd2002-01-09 03:19:59 +0000384 assert( sqliteHashFirst(&db->tblDrop)==0 ); /* There can not be uncommitted */
385 assert( sqliteHashFirst(&db->idxDrop)==0 ); /* DROP TABLEs or DROP INDEXs */
drhbeae3192001-09-22 18:12:08 +0000386 temp1 = db->tblHash;
387 sqliteHashInit(&db->tblHash, SQLITE_HASH_STRING, 0);
388 sqliteHashClear(&db->idxHash);
389 for(pElem=sqliteHashFirst(&temp1); pElem; pElem=sqliteHashNext(pElem)){
drhf57b3392001-10-08 13:22:32 +0000390 Table *pTab = sqliteHashData(pElem);
391 if( preserveTemps && pTab->isTemp ){
392 Index *pIdx;
drh6d4abfb2001-10-22 02:58:08 +0000393 int nName = strlen(pTab->zName);
394 Table *pOld = sqliteHashInsert(&db->tblHash, pTab->zName, nName+1, pTab);
395 if( pOld!=0 ){
396 assert( pOld==pTab ); /* Malloc failed on the HashInsert */
397 sqliteDeleteTable(db, pOld);
398 continue;
399 }
drhf57b3392001-10-08 13:22:32 +0000400 for(pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext){
401 int n = strlen(pIdx->zName)+1;
drh6d4abfb2001-10-22 02:58:08 +0000402 Index *pOldIdx;
403 pOldIdx = sqliteHashInsert(&db->idxHash, pIdx->zName, n, pIdx);
404 if( pOld ){
405 assert( pOldIdx==pIdx );
406 sqliteUnlinkAndDeleteIndex(db, pOldIdx);
407 }
drhf57b3392001-10-08 13:22:32 +0000408 }
409 }else{
410 sqliteDeleteTable(db, pTab);
411 }
drh75897232000-05-29 14:26:00 +0000412 }
drhbeae3192001-09-22 18:12:08 +0000413 sqliteHashClear(&temp1);
drh50e5dad2001-09-15 00:57:28 +0000414 db->flags &= ~SQLITE_Initialized;
415}
416
417/*
drhaf9ff332002-01-16 21:00:27 +0000418** Return the ROWID of the most recent insert
419*/
420int sqlite_last_insert_rowid(sqlite *db){
421 return db->lastRowid;
422}
423
424/*
drh50e5dad2001-09-15 00:57:28 +0000425** Close an existing SQLite database
426*/
427void sqlite_close(sqlite *db){
drh8e0a2f92002-02-23 23:45:45 +0000428 HashElem *i;
drh50e5dad2001-09-15 00:57:28 +0000429 sqliteBtreeClose(db->pBe);
drhf57b3392001-10-08 13:22:32 +0000430 clearHashTable(db, 0);
431 if( db->pBeTemp ){
432 sqliteBtreeClose(db->pBeTemp);
433 }
drh0bce8352002-02-28 00:41:10 +0000434 for(i=sqliteHashFirst(&db->aFunc); i; i=sqliteHashNext(i)){
435 FuncDef *pFunc, *pNext;
436 for(pFunc = (FuncDef*)sqliteHashData(i); pFunc; pFunc=pNext){
drh8e0a2f92002-02-23 23:45:45 +0000437 pNext = pFunc->pNext;
438 sqliteFree(pFunc);
439 }
440 }
drh0bce8352002-02-28 00:41:10 +0000441 sqliteHashClear(&db->aFunc);
drh75897232000-05-29 14:26:00 +0000442 sqliteFree(db);
443}
444
445/*
446** Return TRUE if the given SQL string ends in a semicolon.
447*/
448int sqlite_complete(const char *zSql){
drh8c82b352000-12-10 18:23:50 +0000449 int isComplete = 0;
450 while( *zSql ){
451 switch( *zSql ){
452 case ';': {
453 isComplete = 1;
drh75897232000-05-29 14:26:00 +0000454 break;
drh8c82b352000-12-10 18:23:50 +0000455 }
456 case ' ':
457 case '\t':
458 case '\n':
459 case '\f': {
drh75897232000-05-29 14:26:00 +0000460 break;
drh8c82b352000-12-10 18:23:50 +0000461 }
drh969fa7c2002-02-18 18:30:32 +0000462 case '[': {
463 isComplete = 0;
464 zSql++;
465 while( *zSql && *zSql!=']' ){ zSql++; }
466 if( *zSql==0 ) return 0;
467 break;
468 }
drh8c82b352000-12-10 18:23:50 +0000469 case '\'': {
470 isComplete = 0;
471 zSql++;
472 while( *zSql && *zSql!='\'' ){ zSql++; }
473 if( *zSql==0 ) return 0;
drh75897232000-05-29 14:26:00 +0000474 break;
drh8c82b352000-12-10 18:23:50 +0000475 }
476 case '"': {
477 isComplete = 0;
478 zSql++;
479 while( *zSql && *zSql!='"' ){ zSql++; }
480 if( *zSql==0 ) return 0;
481 break;
482 }
483 case '-': {
484 if( zSql[1]!='-' ){
485 isComplete = 0;
486 break;
487 }
488 while( *zSql && *zSql!='\n' ){ zSql++; }
489 if( *zSql==0 ) return isComplete;
490 break;
491 }
492 default: {
493 isComplete = 0;
494 break;
495 }
drh75897232000-05-29 14:26:00 +0000496 }
drh8c82b352000-12-10 18:23:50 +0000497 zSql++;
drh75897232000-05-29 14:26:00 +0000498 }
drh8c82b352000-12-10 18:23:50 +0000499 return isComplete;
drh75897232000-05-29 14:26:00 +0000500}
501
502/*
drhbed86902000-06-02 13:27:59 +0000503** Execute SQL code. Return one of the SQLITE_ success/failure
504** codes. Also write an error message into memory obtained from
505** malloc() and make *pzErrMsg point to that message.
506**
507** If the SQL is a query, then for each row in the query result
508** the xCallback() function is called. pArg becomes the first
509** argument to xCallback(). If xCallback=NULL then no callback
510** is invoked, even for queries.
drh75897232000-05-29 14:26:00 +0000511*/
512int sqlite_exec(
513 sqlite *db, /* The database on which the SQL executes */
drh9f71c2e2001-11-03 23:57:09 +0000514 const char *zSql, /* The SQL to be executed */
drh75897232000-05-29 14:26:00 +0000515 sqlite_callback xCallback, /* Invoke this callback routine */
516 void *pArg, /* First argument to xCallback() */
517 char **pzErrMsg /* Write error messages here */
518){
519 Parse sParse;
drh75897232000-05-29 14:26:00 +0000520
521 if( pzErrMsg ) *pzErrMsg = 0;
drh58b95762000-06-02 01:17:37 +0000522 if( (db->flags & SQLITE_Initialized)==0 ){
523 int rc = sqliteInit(db, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000524 if( rc!=SQLITE_OK ){
525 sqliteStrRealloc(pzErrMsg);
526 return rc;
527 }
drh58b95762000-06-02 01:17:37 +0000528 }
drh75897232000-05-29 14:26:00 +0000529 memset(&sParse, 0, sizeof(sParse));
530 sParse.db = db;
drh5e00f6c2001-09-13 13:46:56 +0000531 sParse.pBe = db->pBe;
drh75897232000-05-29 14:26:00 +0000532 sParse.xCallback = xCallback;
533 sParse.pArg = pArg;
drh4c504392000-10-16 22:06:40 +0000534 sqliteRunParser(&sParse, zSql, pzErrMsg);
drhdaffd0e2001-04-11 14:28:42 +0000535 if( sqlite_malloc_failed ){
536 sqliteSetString(pzErrMsg, "out of memory", 0);
537 sParse.rc = SQLITE_NOMEM;
drh6d4abfb2001-10-22 02:58:08 +0000538 sqliteBtreeRollback(db->pBe);
539 if( db->pBeTemp ) sqliteBtreeRollback(db->pBeTemp);
540 db->flags &= ~SQLITE_InTrans;
541 clearHashTable(db, 0);
drhdaffd0e2001-04-11 14:28:42 +0000542 }
543 sqliteStrRealloc(pzErrMsg);
drh50e5dad2001-09-15 00:57:28 +0000544 if( sParse.rc==SQLITE_SCHEMA ){
drhf57b3392001-10-08 13:22:32 +0000545 clearHashTable(db, 1);
drh50e5dad2001-09-15 00:57:28 +0000546 }
drh4c504392000-10-16 22:06:40 +0000547 return sParse.rc;
drh75897232000-05-29 14:26:00 +0000548}
drh2dfbbca2000-07-28 14:32:48 +0000549
550/*
551** This routine implements a busy callback that sleeps and tries
552** again until a timeout value is reached. The timeout value is
553** an integer number of milliseconds passed in as the first
554** argument.
555*/
drhdaffd0e2001-04-11 14:28:42 +0000556static int sqliteDefaultBusyCallback(
drh2dfbbca2000-07-28 14:32:48 +0000557 void *Timeout, /* Maximum amount of time to wait */
558 const char *NotUsed, /* The name of the table that is busy */
559 int count /* Number of times table has been busy */
560){
drh8cfbf082001-09-19 13:22:39 +0000561#if SQLITE_MIN_SLEEP_MS==1
562 int delay = 10;
drh2dfbbca2000-07-28 14:32:48 +0000563 int prior_delay = 0;
564 int timeout = (int)Timeout;
565 int i;
566
567 for(i=1; i<count; i++){
568 prior_delay += delay;
569 delay = delay*2;
drh8cfbf082001-09-19 13:22:39 +0000570 if( delay>=1000 ){
571 delay = 1000;
572 prior_delay += 1000*(count - i - 1);
drh2dfbbca2000-07-28 14:32:48 +0000573 break;
574 }
575 }
drh3109e022001-10-09 13:46:01 +0000576 if( prior_delay + delay > timeout ){
577 delay = timeout - prior_delay;
drh2dfbbca2000-07-28 14:32:48 +0000578 if( delay<=0 ) return 0;
579 }
drh8cfbf082001-09-19 13:22:39 +0000580 sqliteOsSleep(delay);
drh2dfbbca2000-07-28 14:32:48 +0000581 return 1;
582#else
583 int timeout = (int)Timeout;
584 if( (count+1)*1000 > timeout ){
585 return 0;
586 }
drh8cfbf082001-09-19 13:22:39 +0000587 sqliteOsSleep(1000);
drh2dfbbca2000-07-28 14:32:48 +0000588 return 1;
589#endif
590}
591
592/*
593** This routine sets the busy callback for an Sqlite database to the
594** given callback function with the given argument.
595*/
596void sqlite_busy_handler(
597 sqlite *db,
598 int (*xBusy)(void*,const char*,int),
599 void *pArg
600){
601 db->xBusyCallback = xBusy;
602 db->pBusyArg = pArg;
603}
604
605/*
606** This routine installs a default busy handler that waits for the
607** specified number of milliseconds before returning 0.
608*/
609void sqlite_busy_timeout(sqlite *db, int ms){
610 if( ms>0 ){
drhdaffd0e2001-04-11 14:28:42 +0000611 sqlite_busy_handler(db, sqliteDefaultBusyCallback, (void*)ms);
drh2dfbbca2000-07-28 14:32:48 +0000612 }else{
613 sqlite_busy_handler(db, 0, 0);
614 }
615}
drh4c504392000-10-16 22:06:40 +0000616
617/*
618** Cause any pending operation to stop at its earliest opportunity.
619*/
620void sqlite_interrupt(sqlite *db){
621 db->flags |= SQLITE_Interrupt;
622}
drhfa86c412002-02-02 15:01:15 +0000623
624/*
625** Windows systems should call this routine to free memory that
626** is returned in the in the errmsg parameter of sqlite_open() when
627** SQLite is a DLL. For some reason, it does not work to call free()
628** directly.
629**
630** Note that we need to call free() not sqliteFree() here, since every
631** string that is exported from SQLite should have already passed through
632** sqliteStrRealloc().
633*/
634void sqlite_freemem(void *p){ free(p); }
635
636/*
637** Windows systems need functions to call to return the sqlite_version
638** and sqlite_encoding strings.
639*/
640const char *sqlite_libversion(void){ return sqlite_version; }
641const char *sqlite_libencoding(void){ return sqlite_encoding; }
drh8e0a2f92002-02-23 23:45:45 +0000642
643/*
644** Create new user-defined functions. The sqlite_create_function()
645** routine creates a regular function and sqlite_create_aggregate()
646** creates an aggregate function.
647**
648** Passing a NULL xFunc argument or NULL xStep and xFinalize arguments
649** disables the function. Calling sqlite_create_function() with the
650** same name and number of arguments as a prior call to
651** sqlite_create_aggregate() disables the prior call to
652** sqlite_create_aggregate(), and vice versa.
653**
654** If nArg is -1 it means that this function will accept any number
655** of arguments, including 0.
656*/
657int sqlite_create_function(
658 sqlite *db, /* Add the function to this database connection */
659 const char *zName, /* Name of the function to add */
660 int nArg, /* Number of arguments */
drh1350b032002-02-27 19:00:20 +0000661 void (*xFunc)(sqlite_func*,int,const char**), /* The implementation */
662 void *pUserData /* User data */
drh8e0a2f92002-02-23 23:45:45 +0000663){
drh0bce8352002-02-28 00:41:10 +0000664 FuncDef *p;
drh8e0a2f92002-02-23 23:45:45 +0000665 if( db==0 || zName==0 ) return 1;
drh0bce8352002-02-28 00:41:10 +0000666 p = sqliteFindFunction(db, zName, strlen(zName), nArg, 1);
drh4e0f9952002-02-27 01:53:13 +0000667 if( p==0 ) return 1;
drh8e0a2f92002-02-23 23:45:45 +0000668 p->xFunc = xFunc;
669 p->xStep = 0;
670 p->xFinalize = 0;
drh1350b032002-02-27 19:00:20 +0000671 p->pUserData = pUserData;
drh8e0a2f92002-02-23 23:45:45 +0000672 return 0;
673}
674int sqlite_create_aggregate(
675 sqlite *db, /* Add the function to this database connection */
676 const char *zName, /* Name of the function to add */
677 int nArg, /* Number of arguments */
drh1350b032002-02-27 19:00:20 +0000678 void (*xStep)(sqlite_func*,int,const char**), /* The step function */
679 void (*xFinalize)(sqlite_func*), /* The finalizer */
680 void *pUserData /* User data */
drh8e0a2f92002-02-23 23:45:45 +0000681){
drh0bce8352002-02-28 00:41:10 +0000682 FuncDef *p;
drh8e0a2f92002-02-23 23:45:45 +0000683 if( db==0 || zName==0 ) return 1;
drh0bce8352002-02-28 00:41:10 +0000684 p = sqliteFindFunction(db, zName, strlen(zName), nArg, 1);
drh4e0f9952002-02-27 01:53:13 +0000685 if( p==0 ) return 1;
drh8e0a2f92002-02-23 23:45:45 +0000686 p->xFunc = 0;
687 p->xStep = xStep;
688 p->xFinalize = xFinalize;
drh1350b032002-02-27 19:00:20 +0000689 p->pUserData = pUserData;
drh8e0a2f92002-02-23 23:45:45 +0000690 return 0;
691}