blob: 53b5c4472a18fd0468f55a0e07e534187342c8f1 [file] [log] [blame]
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**
drhc9e06862004-06-09 20:03:08 +000017** $Id: main.c,v 1.210 2004/06/09 20:03:09 drh Exp $
drh75897232000-05-29 14:26:00 +000018*/
19#include "sqliteInt.h"
drh8cfbf082001-09-19 13:22:39 +000020#include "os.h"
drhce9079c2002-05-15 14:17:44 +000021#include <ctype.h>
drh75897232000-05-29 14:26:00 +000022
23/*
drhc2311722002-07-19 17:46:38 +000024** A pointer to this structure is used to communicate information
danielk19774adee202004-05-08 08:23:19 +000025** from sqlite3Init into the sqlite3InitCallback.
drhc2311722002-07-19 17:46:38 +000026*/
27typedef struct {
28 sqlite *db; /* The database being initialized */
29 char **pzErrMsg; /* Error message stored here */
30} InitData;
31
drh8bf8dc92003-05-17 17:35:10 +000032/*
drh9c054832004-05-31 18:51:57 +000033** The following constant value is used by the SQLITE_BIGENDIAN and
34** SQLITE_LITTLEENDIAN macros.
drhbbd42a62004-05-22 17:41:58 +000035*/
36const int sqlite3one = 1;
37
38/*
drh8bf8dc92003-05-17 17:35:10 +000039** Fill the InitData structure with an error message that indicates
40** that the database is corrupt.
41*/
drh1d85d932004-02-14 23:05:52 +000042static void corruptSchema(InitData *pData, const char *zExtra){
danielk19774adee202004-05-08 08:23:19 +000043 sqlite3SetString(pData->pzErrMsg, "malformed database schema",
drh1d85d932004-02-14 23:05:52 +000044 zExtra!=0 && zExtra[0]!=0 ? " - " : (char*)0, zExtra, (char*)0);
drh8bf8dc92003-05-17 17:35:10 +000045}
drhc2311722002-07-19 17:46:38 +000046
47/*
drh75897232000-05-29 14:26:00 +000048** This is the callback routine for the code that initializes the
danielk19774adee202004-05-08 08:23:19 +000049** database. See sqlite3Init() below for additional information.
drh382c0242001-10-06 16:33:02 +000050**
51** Each callback contains the following information:
drh28037572000-08-02 13:47:41 +000052**
drh4a324312001-12-21 14:30:42 +000053** argv[0] = "file-format" or "schema-cookie" or "table" or "index"
drhe3c41372001-09-17 20:25:58 +000054** argv[1] = table or index name or meta statement type.
55** argv[2] = root page number for table or index. NULL for meta.
drhe78e8282003-01-19 03:59:45 +000056** argv[3] = SQL text for a CREATE TABLE or CREATE INDEX statement.
drh1c2d8412003-03-31 00:30:47 +000057** argv[4] = "1" for temporary files, "0" for main database, "2" or more
58** for auxiliary database files.
drhd78eeee2001-09-13 16:18:53 +000059**
drh75897232000-05-29 14:26:00 +000060*/
drhc2311722002-07-19 17:46:38 +000061static
danielk19774adee202004-05-08 08:23:19 +000062int sqlite3InitCallback(void *pInit, int argc, char **argv, char **azColName){
drhc2311722002-07-19 17:46:38 +000063 InitData *pData = (InitData*)pInit;
drhd78eeee2001-09-13 16:18:53 +000064 int nErr = 0;
drh75897232000-05-29 14:26:00 +000065
drhe0bc4042002-06-25 01:09:11 +000066 assert( argc==5 );
drh98e3e602003-07-27 17:26:22 +000067 if( argv==0 ) return 0; /* Might happen if EMPTY_RESULT_CALLBACKS are on */
drh8bf8dc92003-05-17 17:35:10 +000068 if( argv[0]==0 ){
drh1d85d932004-02-14 23:05:52 +000069 corruptSchema(pData, 0);
drh8bf8dc92003-05-17 17:35:10 +000070 return 1;
71 }
drhd78eeee2001-09-13 16:18:53 +000072 switch( argv[0][0] ){
drh17f71932002-02-21 12:01:27 +000073 case 'v':
drhd78eeee2001-09-13 16:18:53 +000074 case 'i':
drh17f71932002-02-21 12:01:27 +000075 case 't': { /* CREATE TABLE, CREATE INDEX, or CREATE VIEW statements */
drh1d85d932004-02-14 23:05:52 +000076 sqlite *db = pData->db;
drh8bf8dc92003-05-17 17:35:10 +000077 if( argv[2]==0 || argv[4]==0 ){
drh1d85d932004-02-14 23:05:52 +000078 corruptSchema(pData, 0);
drh8bf8dc92003-05-17 17:35:10 +000079 return 1;
80 }
drhadbca9c2001-09-27 15:11:53 +000081 if( argv[3] && argv[3][0] ){
drh17f71932002-02-21 12:01:27 +000082 /* Call the parser to process a CREATE TABLE, INDEX or VIEW.
drh1d85d932004-02-14 23:05:52 +000083 ** But because db->init.busy is set to 1, no VDBE code is generated
drh382c0242001-10-06 16:33:02 +000084 ** or executed. All the parser does is build the internal data
drh17f71932002-02-21 12:01:27 +000085 ** structures that describe the table, index, or view.
drh382c0242001-10-06 16:33:02 +000086 */
drh1d85d932004-02-14 23:05:52 +000087 char *zErr;
88 assert( db->init.busy );
89 db->init.iDb = atoi(argv[4]);
90 assert( db->init.iDb>=0 && db->init.iDb<db->nDb );
91 db->init.newTnum = atoi(argv[2]);
danielk197724b03fd2004-05-10 10:34:34 +000092 if( sqlite3_exec(db, argv[3], 0, 0, &zErr) ){
drh1d85d932004-02-14 23:05:52 +000093 corruptSchema(pData, zErr);
drh3f4fedb2004-05-31 19:34:33 +000094 sqlite3_free(zErr);
drh1d85d932004-02-14 23:05:52 +000095 }
96 db->init.iDb = 0;
drhadbca9c2001-09-27 15:11:53 +000097 }else{
drh382c0242001-10-06 16:33:02 +000098 /* If the SQL column is blank it means this is an index that
99 ** was created to be the PRIMARY KEY or to fulfill a UNIQUE
drhaacc5432002-01-06 17:07:40 +0000100 ** constraint for a CREATE TABLE. The index should have already
drh382c0242001-10-06 16:33:02 +0000101 ** been created when we processed the CREATE TABLE. All we have
drhaacc5432002-01-06 17:07:40 +0000102 ** to do here is record the root page number for that index.
drh382c0242001-10-06 16:33:02 +0000103 */
drhd24cc422003-03-27 12:51:24 +0000104 int iDb;
105 Index *pIndex;
106
107 iDb = atoi(argv[4]);
drh1d85d932004-02-14 23:05:52 +0000108 assert( iDb>=0 && iDb<db->nDb );
danielk19774adee202004-05-08 08:23:19 +0000109 pIndex = sqlite3FindIndex(db, argv[1], db->aDb[iDb].zName);
drhadbca9c2001-09-27 15:11:53 +0000110 if( pIndex==0 || pIndex->tnum!=0 ){
drhda9e0342002-01-10 14:31:48 +0000111 /* This can occur if there exists an index on a TEMP table which
112 ** has the same name as another index on a permanent index. Since
113 ** the permanent table is hidden by the TEMP table, we can also
114 ** safely ignore the index on the permanent table.
115 */
116 /* Do Nothing */;
drhadbca9c2001-09-27 15:11:53 +0000117 }else{
118 pIndex->tnum = atoi(argv[2]);
119 }
120 }
drhd78eeee2001-09-13 16:18:53 +0000121 break;
122 }
123 default: {
124 /* This can not happen! */
125 nErr = 1;
126 assert( nErr==0 );
127 }
drh28037572000-08-02 13:47:41 +0000128 }
drh75897232000-05-29 14:26:00 +0000129 return nErr;
130}
131
132/*
drh58b95762000-06-02 01:17:37 +0000133** Attempt to read the database schema and initialize internal
drh1c2d8412003-03-31 00:30:47 +0000134** data structures for a single database file. The index of the
135** database file is given by iDb. iDb==0 is used for the main
136** database. iDb==1 should never be used. iDb>=2 is used for
137** auxiliary databases. Return one of the SQLITE_ error codes to
drh58b95762000-06-02 01:17:37 +0000138** indicate success or failure.
drh75897232000-05-29 14:26:00 +0000139*/
danielk19774adee202004-05-08 08:23:19 +0000140static int sqlite3InitOne(sqlite *db, int iDb, char **pzErrMsg){
drh58b95762000-06-02 01:17:37 +0000141 int rc;
drhe0bc4042002-06-25 01:09:11 +0000142 BtCursor *curMain;
143 int size;
144 Table *pTab;
145 char *azArg[6];
drh1c2d8412003-03-31 00:30:47 +0000146 char zDbNum[30];
drha3b321d2004-05-11 09:31:31 +0000147 int meta[10];
drhc2311722002-07-19 17:46:38 +0000148 InitData initData;
drh58b95762000-06-02 01:17:37 +0000149
150 /*
151 ** The master database table has a structure like this
152 */
drh75897232000-05-29 14:26:00 +0000153 static char master_schema[] =
drhe0bc4042002-06-25 01:09:11 +0000154 "CREATE TABLE sqlite_master(\n"
155 " type text,\n"
156 " name text,\n"
157 " tbl_name text,\n"
158 " rootpage integer,\n"
159 " sql text\n"
160 ")"
161 ;
162 static char temp_master_schema[] =
163 "CREATE TEMP TABLE sqlite_temp_master(\n"
drh75897232000-05-29 14:26:00 +0000164 " type text,\n"
165 " name text,\n"
166 " tbl_name text,\n"
drhadbca9c2001-09-27 15:11:53 +0000167 " rootpage integer,\n"
drh75897232000-05-29 14:26:00 +0000168 " sql text\n"
169 ")"
170 ;
171
drhe0bc4042002-06-25 01:09:11 +0000172 /* The following SQL will read the schema from the master tables.
drh75897232000-05-29 14:26:00 +0000173 */
danielk1977bf57cfe2004-05-11 09:50:02 +0000174 static char init_script1[] =
175 "SELECT type, name, rootpage, sql, 1 FROM sqlite_temp_master";
176 static char init_script2[] =
drhe0bc4042002-06-25 01:09:11 +0000177 "SELECT type, name, rootpage, sql, 0 FROM sqlite_master";
drh603240c2002-03-05 01:11:12 +0000178
drh1c2d8412003-03-31 00:30:47 +0000179 assert( iDb>=0 && iDb!=1 && iDb<db->nDb );
180
drhe0bc4042002-06-25 01:09:11 +0000181 /* Construct the schema tables: sqlite_master and sqlite_temp_master
drh58b95762000-06-02 01:17:37 +0000182 */
danielk19774adee202004-05-08 08:23:19 +0000183 sqlite3SafetyOff(db);
drhe0bc4042002-06-25 01:09:11 +0000184 azArg[0] = "table";
185 azArg[1] = MASTER_NAME;
danielk19778e150812004-05-10 01:17:37 +0000186 azArg[2] = "1";
drhe0bc4042002-06-25 01:09:11 +0000187 azArg[3] = master_schema;
drh1c2d8412003-03-31 00:30:47 +0000188 sprintf(zDbNum, "%d", iDb);
189 azArg[4] = zDbNum;
drhe0bc4042002-06-25 01:09:11 +0000190 azArg[5] = 0;
drhc2311722002-07-19 17:46:38 +0000191 initData.db = db;
192 initData.pzErrMsg = pzErrMsg;
danielk19774adee202004-05-08 08:23:19 +0000193 sqlite3InitCallback(&initData, 5, azArg, 0);
194 pTab = sqlite3FindTable(db, MASTER_NAME, "main");
drhe0bc4042002-06-25 01:09:11 +0000195 if( pTab ){
196 pTab->readOnly = 1;
drhd8bc7082000-06-07 23:51:50 +0000197 }
drh1c2d8412003-03-31 00:30:47 +0000198 if( iDb==0 ){
199 azArg[1] = TEMP_MASTER_NAME;
200 azArg[3] = temp_master_schema;
201 azArg[4] = "1";
danielk19774adee202004-05-08 08:23:19 +0000202 sqlite3InitCallback(&initData, 5, azArg, 0);
203 pTab = sqlite3FindTable(db, TEMP_MASTER_NAME, "temp");
drh1c2d8412003-03-31 00:30:47 +0000204 if( pTab ){
205 pTab->readOnly = 1;
206 }
drhe0bc4042002-06-25 01:09:11 +0000207 }
danielk19774adee202004-05-08 08:23:19 +0000208 sqlite3SafetyOn(db);
drhe0bc4042002-06-25 01:09:11 +0000209
210 /* Create a cursor to hold the database open
211 */
drh1c2d8412003-03-31 00:30:47 +0000212 if( db->aDb[iDb].pBt==0 ) return SQLITE_OK;
danielk19778e150812004-05-10 01:17:37 +0000213 rc = sqlite3BtreeCursor(db->aDb[iDb].pBt, MASTER_ROOT, 0, 0, 0, &curMain);
drhf328bc82004-05-10 23:29:49 +0000214 if( rc!=SQLITE_OK && rc!=SQLITE_EMPTY ){
danielk1977f20b21c2004-05-31 23:56:42 +0000215 sqlite3SetString(pzErrMsg, sqlite3ErrStr(rc), (char*)0);
drh92ed08a2002-07-30 18:43:40 +0000216 return rc;
217 }
drhe0bc4042002-06-25 01:09:11 +0000218
drha3b321d2004-05-11 09:31:31 +0000219 /* Get the database meta information.
220 **
221 ** Meta values are as follows:
222 ** meta[0] Schema cookie. Changes with each schema change.
223 ** meta[1] File format of schema layer.
224 ** meta[2] Size of the page cache.
225 ** meta[3] Synchronous setting. 1:off, 2:normal, 3:full
danielk1977172bc392004-05-22 08:09:11 +0000226 ** meta[4] Db text encoding. 1:UTF-8 2:UTF-16 LE 3:UTF-16 BE
drha3b321d2004-05-11 09:31:31 +0000227 ** meta[5] Pragma temp_store value. See comments on BtreeFactory
228 ** meta[6]
229 ** meta[7]
230 ** meta[8]
231 ** meta[9]
danielk1977172bc392004-05-22 08:09:11 +0000232 **
233 ** Note: The hash defined TEXT_Utf* symbols in sqliteInt.h correspond to
234 ** the possible values of meta[4].
drhe0bc4042002-06-25 01:09:11 +0000235 */
drhf328bc82004-05-10 23:29:49 +0000236 if( rc==SQLITE_OK ){
237 int i;
drha3b321d2004-05-11 09:31:31 +0000238 for(i=0; rc==SQLITE_OK && i<sizeof(meta)/sizeof(meta[0]); i++){
239 rc = sqlite3BtreeGetMeta(db->aDb[iDb].pBt, i+1, &meta[i]);
danielk19774adee202004-05-08 08:23:19 +0000240 }
drhf328bc82004-05-10 23:29:49 +0000241 if( rc ){
danielk1977f20b21c2004-05-31 23:56:42 +0000242 sqlite3SetString(pzErrMsg, sqlite3ErrStr(rc), (char*)0);
drhf328bc82004-05-10 23:29:49 +0000243 sqlite3BtreeCloseCursor(curMain);
244 return rc;
245 }
246 }else{
247 memset(meta, 0, sizeof(meta));
drhe0bc4042002-06-25 01:09:11 +0000248 }
drha3b321d2004-05-11 09:31:31 +0000249 db->aDb[iDb].schema_cookie = meta[0];
danielk19773df6b252004-05-29 10:23:19 +0000250
251 /* If opening a non-empty database, check the text encoding. For the
252 ** main database, set sqlite3.enc to the encoding of the main database.
253 ** For an attached db, it is an error if the encoding is not the same
254 ** as sqlite3.enc.
255 */
256 if( meta[4] ){ /* text encoding */
257 if( iDb==0 ){
258 /* If opening the main database, set db->enc. */
danielk1977172bc392004-05-22 08:09:11 +0000259 db->enc = (u8)meta[4];
danielk19773df6b252004-05-29 10:23:19 +0000260 }else{
261 /* If opening an attached database, the encoding much match db->enc */
262 if( meta[4]!=db->enc ){
263 sqlite3BtreeCloseCursor(curMain);
264 sqlite3SetString(pzErrMsg, "attached databases must use the same"
265 " text encoding as main database", (char*)0);
266 return SQLITE_ERROR;
267 }
danielk1977172bc392004-05-22 08:09:11 +0000268 }
danielk19773df6b252004-05-29 10:23:19 +0000269 }
270
271 if( iDb==0 ){
drha3b321d2004-05-11 09:31:31 +0000272 size = meta[2];
drh1c2d8412003-03-31 00:30:47 +0000273 if( size==0 ){ size = MAX_PAGES; }
274 db->cache_size = size;
drha3b321d2004-05-11 09:31:31 +0000275 db->safety_level = meta[3];
276 if( meta[5]>0 && meta[5]<=2 && db->temp_store==0 ){
277 db->temp_store = meta[5];
drh1bdd9b52004-04-23 17:04:44 +0000278 }
drh1c2d8412003-03-31 00:30:47 +0000279 if( db->safety_level==0 ) db->safety_level = 2;
drhe0bc4042002-06-25 01:09:11 +0000280
danielk19773df6b252004-05-29 10:23:19 +0000281 /* FIX ME: Every struct Db will need a next_cookie */
282 db->next_cookie = meta[0];
283 db->file_format = meta[1];
drh1c2d8412003-03-31 00:30:47 +0000284 if( db->file_format==0 ){
285 /* This happens if the database was initially empty */
drhf328bc82004-05-10 23:29:49 +0000286 db->file_format = 1;
drh1c2d8412003-03-31 00:30:47 +0000287 }
drh28037572000-08-02 13:47:41 +0000288 }
danielk19773df6b252004-05-29 10:23:19 +0000289
290 /*
291 ** file_format==1 Version 3.0.0.
292 */
293 if( meta[1]>1 ){
294 sqlite3BtreeCloseCursor(curMain);
295 sqlite3SetString(pzErrMsg, "unsupported file format", (char*)0);
296 return SQLITE_ERROR;
297 }
298
danielk19774adee202004-05-08 08:23:19 +0000299 sqlite3BtreeSetCacheSize(db->aDb[iDb].pBt, db->cache_size);
drha3b321d2004-05-11 09:31:31 +0000300 sqlite3BtreeSetSafetyLevel(db->aDb[iDb].pBt, meta[3]==0 ? 2 : meta[3]);
drhaacc5432002-01-06 17:07:40 +0000301
drhe0bc4042002-06-25 01:09:11 +0000302 /* Read the schema information out of the schema tables
drhaacc5432002-01-06 17:07:40 +0000303 */
drh1d85d932004-02-14 23:05:52 +0000304 assert( db->init.busy );
drhf328bc82004-05-10 23:29:49 +0000305 if( rc==SQLITE_EMPTY ){
306 /* For an empty database, there is nothing to read */
307 rc = SQLITE_OK;
drh1c2d8412003-03-31 00:30:47 +0000308 }else{
danielk19773df6b252004-05-29 10:23:19 +0000309 sqlite3SafetyOff(db);
drhf328bc82004-05-10 23:29:49 +0000310 if( iDb==0 ){
danielk1977bf57cfe2004-05-11 09:50:02 +0000311 /* This SQL statement tries to read the temp.* schema from the
danielk19778d059842004-05-12 11:24:02 +0000312 ** sqlite_temp_master table. It might return SQLITE_EMPTY.
danielk1977bf57cfe2004-05-11 09:50:02 +0000313 */
danielk1977bf57cfe2004-05-11 09:50:02 +0000314 rc = sqlite3_exec(db, init_script1, sqlite3InitCallback, &initData, 0);
danielk1977bf57cfe2004-05-11 09:50:02 +0000315 if( rc==SQLITE_OK || rc==SQLITE_EMPTY ){
316 rc = sqlite3_exec(db, init_script2, sqlite3InitCallback, &initData, 0);
317 }
drhf328bc82004-05-10 23:29:49 +0000318 }else{
319 char *zSql = 0;
320 sqlite3SetString(&zSql,
321 "SELECT type, name, rootpage, sql, ", zDbNum, " FROM \"",
322 db->aDb[iDb].zName, "\".sqlite_master", (char*)0);
323 rc = sqlite3_exec(db, zSql, sqlite3InitCallback, &initData, 0);
324 sqliteFree(zSql);
325 }
326 sqlite3SafetyOn(db);
327 sqlite3BtreeCloseCursor(curMain);
drh1c2d8412003-03-31 00:30:47 +0000328 }
danielk197724b03fd2004-05-10 10:34:34 +0000329 if( sqlite3_malloc_failed ){
danielk19774adee202004-05-08 08:23:19 +0000330 sqlite3SetString(pzErrMsg, "out of memory", (char*)0);
drh1d85d932004-02-14 23:05:52 +0000331 rc = SQLITE_NOMEM;
danielk19774adee202004-05-08 08:23:19 +0000332 sqlite3ResetInternalSchema(db, 0);
drhe0bc4042002-06-25 01:09:11 +0000333 }
drh1d85d932004-02-14 23:05:52 +0000334 if( rc==SQLITE_OK ){
drh8bf8dc92003-05-17 17:35:10 +0000335 DbSetProperty(db, iDb, DB_SchemaLoaded);
336 if( iDb==0 ){
337 DbSetProperty(db, 1, DB_SchemaLoaded);
338 }
drh1c2d8412003-03-31 00:30:47 +0000339 }else{
danielk19774adee202004-05-08 08:23:19 +0000340 sqlite3ResetInternalSchema(db, iDb);
drh1c2d8412003-03-31 00:30:47 +0000341 }
drh1d85d932004-02-14 23:05:52 +0000342 return rc;
drh1c2d8412003-03-31 00:30:47 +0000343}
344
345/*
346** Initialize all database files - the main database file, the file
347** used to store temporary tables, and any additional database files
348** created using ATTACH statements. Return a success code. If an
349** error occurs, write an error message into *pzErrMsg.
350**
351** After the database is initialized, the SQLITE_Initialized
danielk19778e227872004-06-07 07:52:17 +0000352** bit is set in the flags field of the sqlite structure.
drh1c2d8412003-03-31 00:30:47 +0000353*/
danielk19774adee202004-05-08 08:23:19 +0000354int sqlite3Init(sqlite *db, char **pzErrMsg){
drh1c2d8412003-03-31 00:30:47 +0000355 int i, rc;
356
drh1d85d932004-02-14 23:05:52 +0000357 if( db->init.busy ) return SQLITE_OK;
drh1c2d8412003-03-31 00:30:47 +0000358 assert( (db->flags & SQLITE_Initialized)==0 );
359 rc = SQLITE_OK;
drh1d85d932004-02-14 23:05:52 +0000360 db->init.busy = 1;
drh1c2d8412003-03-31 00:30:47 +0000361 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){
drh8bf8dc92003-05-17 17:35:10 +0000362 if( DbHasProperty(db, i, DB_SchemaLoaded) ) continue;
363 assert( i!=1 ); /* Should have been initialized together with 0 */
danielk19774adee202004-05-08 08:23:19 +0000364 rc = sqlite3InitOne(db, i, pzErrMsg);
drh8ef83ff2004-02-12 15:31:21 +0000365 if( rc ){
danielk19774adee202004-05-08 08:23:19 +0000366 sqlite3ResetInternalSchema(db, i);
drh8ef83ff2004-02-12 15:31:21 +0000367 }
drh1c2d8412003-03-31 00:30:47 +0000368 }
drh1d85d932004-02-14 23:05:52 +0000369 db->init.busy = 0;
drh1c2d8412003-03-31 00:30:47 +0000370 if( rc==SQLITE_OK ){
drh58b95762000-06-02 01:17:37 +0000371 db->flags |= SQLITE_Initialized;
danielk19774adee202004-05-08 08:23:19 +0000372 sqlite3CommitInternalChanges(db);
drh2d71ca92004-02-10 02:27:04 +0000373 }
374
drh2d71ca92004-02-10 02:27:04 +0000375 if( rc!=SQLITE_OK ){
drhe0bc4042002-06-25 01:09:11 +0000376 db->flags &= ~SQLITE_Initialized;
drh58b95762000-06-02 01:17:37 +0000377 }
drh1c2d8412003-03-31 00:30:47 +0000378 return rc;
drh58b95762000-06-02 01:17:37 +0000379}
380
381/*
danielk19778e227872004-06-07 07:52:17 +0000382** This routine is a no-op if the database schema is already initialised.
383** Otherwise, the schema is loaded. An error code is returned.
384*/
danielk1977c0391392004-06-09 12:30:04 +0000385int sqlite3ReadSchema(sqlite *db, char **pzErrMsg){
danielk19778e227872004-06-07 07:52:17 +0000386 int rc = SQLITE_OK;
danielk19778e227872004-06-07 07:52:17 +0000387
388 if( !db->init.busy ){
389 if( (db->flags & SQLITE_Initialized)==0 ){
danielk1977c0391392004-06-09 12:30:04 +0000390 rc = sqlite3Init(db, pzErrMsg);
danielk19778e227872004-06-07 07:52:17 +0000391 }
392 }
danielk1977c0391392004-06-09 12:30:04 +0000393 assert( rc!=SQLITE_OK || (db->flags & SQLITE_Initialized)||db->init.busy );
danielk19778e227872004-06-07 07:52:17 +0000394 return rc;
395}
396
397/*
drhb217a572000-08-22 13:40:18 +0000398** The version of the library
399*/
drh096c4972002-07-19 19:03:41 +0000400const char rcsid[] = "@(#) \044Id: SQLite version " SQLITE_VERSION " $";
danielk197724b03fd2004-05-10 10:34:34 +0000401const char sqlite3_version[] = SQLITE_VERSION;
drhb217a572000-08-22 13:40:18 +0000402
403/*
drhd3d39e92004-05-20 22:16:29 +0000404** This is the default collating function named "BINARY" which is always
405** available.
406*/
407static int binaryCollatingFunc(
408 void *NotUsed,
409 int nKey1, const void *pKey1,
410 int nKey2, const void *pKey2
411){
412 int rc, n;
413 n = nKey1<nKey2 ? nKey1 : nKey2;
414 rc = memcmp(pKey1, pKey2, n);
415 if( rc==0 ){
416 rc = nKey1 - nKey2;
417 }
418 return rc;
419}
420
421/*
danielk19770202b292004-06-09 09:55:16 +0000422** Another built-in collating sequence: NOCASE. At the moment there is
423** only a UTF-8 implementation.
424*/
425static int nocaseCollatingFunc(
426 void *NotUsed,
427 int nKey1, const void *pKey1,
428 int nKey2, const void *pKey2
429){
430 int r = sqlite3StrNICmp(
431 (const char *)pKey1, (const char *)pKey2, (nKey1>nKey2)?nKey1:nKey2);
432 if( 0==r ){
433 r = nKey1-nKey2;
434 }
435 return r;
436}
437
438/*
drhaf9ff332002-01-16 21:00:27 +0000439** Return the ROWID of the most recent insert
440*/
drhf9b596e2004-05-26 16:54:42 +0000441long long int sqlite3_last_insert_rowid(sqlite *db){
drhaf9ff332002-01-16 21:00:27 +0000442 return db->lastRowid;
443}
444
445/*
danielk197724b03fd2004-05-10 10:34:34 +0000446** Return the number of changes in the most recent call to sqlite3_exec().
drhc8d30ac2002-04-12 10:08:59 +0000447*/
danielk197724b03fd2004-05-10 10:34:34 +0000448int sqlite3_changes(sqlite *db){
drhc8d30ac2002-04-12 10:08:59 +0000449 return db->nChange;
450}
451
rdcf146a772004-02-25 22:51:06 +0000452/*
453** Return the number of changes produced by the last INSERT, UPDATE, or
454** DELETE statement to complete execution. The count does not include
455** changes due to SQL statements executed in trigger programs that were
456** triggered by that statement
457*/
danielk197724b03fd2004-05-10 10:34:34 +0000458int sqlite3_last_statement_changes(sqlite *db){
rdcb0c374f2004-02-20 22:53:38 +0000459 return db->lsChange;
460}
461
drhc8d30ac2002-04-12 10:08:59 +0000462/*
drh50e5dad2001-09-15 00:57:28 +0000463** Close an existing SQLite database
464*/
danielk197724b03fd2004-05-10 10:34:34 +0000465void sqlite3_close(sqlite *db){
drh8e0a2f92002-02-23 23:45:45 +0000466 HashElem *i;
drh001bbcb2003-03-19 03:14:00 +0000467 int j;
drh94e92032003-02-16 22:21:32 +0000468 db->want_to_close = 1;
danielk19774adee202004-05-08 08:23:19 +0000469 if( sqlite3SafetyCheck(db) || sqlite3SafetyOn(db) ){
drh94e92032003-02-16 22:21:32 +0000470 /* printf("DID NOT CLOSE\n"); fflush(stdout); */
471 return;
472 }
drh247be432002-05-10 05:44:55 +0000473 db->magic = SQLITE_MAGIC_CLOSED;
drh001bbcb2003-03-19 03:14:00 +0000474 for(j=0; j<db->nDb; j++){
drh4d189ca2004-02-12 18:46:38 +0000475 struct Db *pDb = &db->aDb[j];
476 if( pDb->pBt ){
danielk19774adee202004-05-08 08:23:19 +0000477 sqlite3BtreeClose(pDb->pBt);
drh4d189ca2004-02-12 18:46:38 +0000478 pDb->pBt = 0;
drh113088e2003-03-20 01:16:58 +0000479 }
drhf57b3392001-10-08 13:22:32 +0000480 }
danielk19774adee202004-05-08 08:23:19 +0000481 sqlite3ResetInternalSchema(db, 0);
drh1c2d8412003-03-31 00:30:47 +0000482 assert( db->nDb<=2 );
483 assert( db->aDb==db->aDbStatic );
drh0bce8352002-02-28 00:41:10 +0000484 for(i=sqliteHashFirst(&db->aFunc); i; i=sqliteHashNext(i)){
485 FuncDef *pFunc, *pNext;
486 for(pFunc = (FuncDef*)sqliteHashData(i); pFunc; pFunc=pNext){
drh8e0a2f92002-02-23 23:45:45 +0000487 pNext = pFunc->pNext;
488 sqliteFree(pFunc);
489 }
490 }
danielk19774adee202004-05-08 08:23:19 +0000491 sqlite3HashClear(&db->aFunc);
danielk19776622cce2004-05-20 11:00:52 +0000492 sqlite3Error(db, SQLITE_OK, 0); /* Deallocates any cached error strings. */
drh75897232000-05-29 14:26:00 +0000493 sqliteFree(db);
494}
495
496/*
drh001bbcb2003-03-19 03:14:00 +0000497** Rollback all database files.
498*/
danielk19774adee202004-05-08 08:23:19 +0000499void sqlite3RollbackAll(sqlite *db){
drh001bbcb2003-03-19 03:14:00 +0000500 int i;
501 for(i=0; i<db->nDb; i++){
502 if( db->aDb[i].pBt ){
danielk19774adee202004-05-08 08:23:19 +0000503 sqlite3BtreeRollback(db->aDb[i].pBt);
drh001bbcb2003-03-19 03:14:00 +0000504 db->aDb[i].inTrans = 0;
505 }
506 }
danielk19774adee202004-05-08 08:23:19 +0000507 sqlite3ResetInternalSchema(db, 0);
508 /* sqlite3RollbackInternalChanges(db); */
drh001bbcb2003-03-19 03:14:00 +0000509}
510
511/*
drhc22bd472002-05-10 13:14:07 +0000512** Return a static string that describes the kind of error specified in the
513** argument.
drh247be432002-05-10 05:44:55 +0000514*/
danielk1977f20b21c2004-05-31 23:56:42 +0000515const char *sqlite3ErrStr(int rc){
drhc22bd472002-05-10 13:14:07 +0000516 const char *z;
517 switch( rc ){
518 case SQLITE_OK: z = "not an error"; break;
519 case SQLITE_ERROR: z = "SQL logic error or missing database"; break;
520 case SQLITE_INTERNAL: z = "internal SQLite implementation flaw"; break;
521 case SQLITE_PERM: z = "access permission denied"; break;
522 case SQLITE_ABORT: z = "callback requested query abort"; break;
523 case SQLITE_BUSY: z = "database is locked"; break;
524 case SQLITE_LOCKED: z = "database table is locked"; break;
525 case SQLITE_NOMEM: z = "out of memory"; break;
526 case SQLITE_READONLY: z = "attempt to write a readonly database"; break;
527 case SQLITE_INTERRUPT: z = "interrupted"; break;
528 case SQLITE_IOERR: z = "disk I/O error"; break;
529 case SQLITE_CORRUPT: z = "database disk image is malformed"; break;
530 case SQLITE_NOTFOUND: z = "table or record not found"; break;
531 case SQLITE_FULL: z = "database is full"; break;
532 case SQLITE_CANTOPEN: z = "unable to open database file"; break;
533 case SQLITE_PROTOCOL: z = "database locking protocol failure"; break;
534 case SQLITE_EMPTY: z = "table contains no data"; break;
535 case SQLITE_SCHEMA: z = "database schema has changed"; break;
536 case SQLITE_TOOBIG: z = "too much data for one table row"; break;
537 case SQLITE_CONSTRAINT: z = "constraint failed"; break;
538 case SQLITE_MISMATCH: z = "datatype mismatch"; break;
539 case SQLITE_MISUSE: z = "library routine called out of sequence";break;
drh8766c342002-11-09 00:33:15 +0000540 case SQLITE_NOLFS: z = "kernel lacks large file support"; break;
drhed6c8672003-01-12 18:02:16 +0000541 case SQLITE_AUTH: z = "authorization denied"; break;
jplyon892f6712003-06-12 08:59:00 +0000542 case SQLITE_FORMAT: z = "auxiliary database format error"; break;
drh7c972de2003-09-06 22:18:07 +0000543 case SQLITE_RANGE: z = "bind index out of range"; break;
drhc602f9a2004-02-12 19:01:04 +0000544 case SQLITE_NOTADB: z = "file is encrypted or is not a database";break;
drhc22bd472002-05-10 13:14:07 +0000545 default: z = "unknown error"; break;
drh247be432002-05-10 05:44:55 +0000546 }
drhc22bd472002-05-10 13:14:07 +0000547 return z;
drh247be432002-05-10 05:44:55 +0000548}
549
550/*
drh2dfbbca2000-07-28 14:32:48 +0000551** 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
drhd1bec472004-01-15 13:29:31 +0000562 static const char delays[] =
563 { 1, 2, 5, 10, 15, 20, 25, 25, 25, 50, 50, 50, 100};
564 static const short int totals[] =
565 { 0, 1, 3, 8, 18, 33, 53, 78, 103, 128, 178, 228, 287};
566# define NDELAY (sizeof(delays)/sizeof(delays[0]))
drh2dfbbca2000-07-28 14:32:48 +0000567 int timeout = (int)Timeout;
drhd1bec472004-01-15 13:29:31 +0000568 int delay, prior;
drh2dfbbca2000-07-28 14:32:48 +0000569
drhd1bec472004-01-15 13:29:31 +0000570 if( count <= NDELAY ){
571 delay = delays[count-1];
572 prior = totals[count-1];
573 }else{
574 delay = delays[NDELAY-1];
575 prior = totals[NDELAY-1] + delay*(count-NDELAY-1);
drh2dfbbca2000-07-28 14:32:48 +0000576 }
drhd1bec472004-01-15 13:29:31 +0000577 if( prior + delay > timeout ){
578 delay = timeout - prior;
drh2dfbbca2000-07-28 14:32:48 +0000579 if( delay<=0 ) return 0;
580 }
danielk19774adee202004-05-08 08:23:19 +0000581 sqlite3OsSleep(delay);
drh2dfbbca2000-07-28 14:32:48 +0000582 return 1;
583#else
584 int timeout = (int)Timeout;
585 if( (count+1)*1000 > timeout ){
586 return 0;
587 }
danielk19774adee202004-05-08 08:23:19 +0000588 sqlite3OsSleep(1000);
drh2dfbbca2000-07-28 14:32:48 +0000589 return 1;
590#endif
591}
592
593/*
594** This routine sets the busy callback for an Sqlite database to the
595** given callback function with the given argument.
596*/
danielk197724b03fd2004-05-10 10:34:34 +0000597void sqlite3_busy_handler(
drh2dfbbca2000-07-28 14:32:48 +0000598 sqlite *db,
599 int (*xBusy)(void*,const char*,int),
600 void *pArg
601){
danielk197724162fe2004-06-04 06:22:00 +0000602 db->busyHandler.xFunc = xBusy;
603 db->busyHandler.pArg = pArg;
drh2dfbbca2000-07-28 14:32:48 +0000604}
605
danielk1977348bb5d2003-10-18 09:37:26 +0000606#ifndef SQLITE_OMIT_PROGRESS_CALLBACK
607/*
608** This routine sets the progress callback for an Sqlite database to the
609** given callback function with the given argument. The progress callback will
610** be invoked every nOps opcodes.
611*/
danielk197724b03fd2004-05-10 10:34:34 +0000612void sqlite3_progress_handler(
danielk1977348bb5d2003-10-18 09:37:26 +0000613 sqlite *db,
614 int nOps,
615 int (*xProgress)(void*),
616 void *pArg
617){
618 if( nOps>0 ){
619 db->xProgress = xProgress;
620 db->nProgressOps = nOps;
621 db->pProgressArg = pArg;
622 }else{
623 db->xProgress = 0;
624 db->nProgressOps = 0;
625 db->pProgressArg = 0;
626 }
627}
628#endif
629
630
drh2dfbbca2000-07-28 14:32:48 +0000631/*
632** This routine installs a default busy handler that waits for the
633** specified number of milliseconds before returning 0.
634*/
danielk197724b03fd2004-05-10 10:34:34 +0000635void sqlite3_busy_timeout(sqlite *db, int ms){
drh2dfbbca2000-07-28 14:32:48 +0000636 if( ms>0 ){
danielk197724b03fd2004-05-10 10:34:34 +0000637 sqlite3_busy_handler(db, sqliteDefaultBusyCallback, (void*)ms);
drh2dfbbca2000-07-28 14:32:48 +0000638 }else{
danielk197724b03fd2004-05-10 10:34:34 +0000639 sqlite3_busy_handler(db, 0, 0);
drh2dfbbca2000-07-28 14:32:48 +0000640 }
641}
drh4c504392000-10-16 22:06:40 +0000642
643/*
644** Cause any pending operation to stop at its earliest opportunity.
645*/
danielk197724b03fd2004-05-10 10:34:34 +0000646void sqlite3_interrupt(sqlite *db){
drh4c504392000-10-16 22:06:40 +0000647 db->flags |= SQLITE_Interrupt;
648}
drhfa86c412002-02-02 15:01:15 +0000649
650/*
651** Windows systems should call this routine to free memory that
danielk197724b03fd2004-05-10 10:34:34 +0000652** is returned in the in the errmsg parameter of sqlite3_open() when
drhfa86c412002-02-02 15:01:15 +0000653** SQLite is a DLL. For some reason, it does not work to call free()
654** directly.
655**
656** Note that we need to call free() not sqliteFree() here, since every
657** string that is exported from SQLite should have already passed through
danielk19774adee202004-05-08 08:23:19 +0000658** sqlite3StrRealloc().
drhfa86c412002-02-02 15:01:15 +0000659*/
drh3f4fedb2004-05-31 19:34:33 +0000660void sqlite3_free(char *p){ free(p); }
drhfa86c412002-02-02 15:01:15 +0000661
662/*
drhdf014892004-06-02 00:41:09 +0000663** Create new user functions.
drhfa86c412002-02-02 15:01:15 +0000664*/
danielk197724b03fd2004-05-10 10:34:34 +0000665int sqlite3_create_function(
danielk197765904932004-05-26 06:18:37 +0000666 sqlite3 *db,
667 const char *zFunctionName,
668 int nArg,
669 int eTextRep,
670 int iCollateArg,
671 void *pUserData,
672 void (*xFunc)(sqlite3_context*,int,sqlite3_value **),
673 void (*xStep)(sqlite3_context*,int,sqlite3_value **),
674 void (*xFinal)(sqlite3_context*)
drh8e0a2f92002-02-23 23:45:45 +0000675){
drh0bce8352002-02-28 00:41:10 +0000676 FuncDef *p;
drh4b59ab52002-08-24 18:24:51 +0000677 int nName;
danielk197765904932004-05-26 06:18:37 +0000678
danielk1977398eae72004-05-26 06:58:43 +0000679 if( (db==0 || zFunctionName==0 || sqlite3SafetyCheck(db)) ||
680 (xFunc && (xFinal || xStep)) ||
681 (!xFunc && (xFinal && !xStep)) ||
682 (!xFunc && (!xFinal && xStep)) ||
683 (nArg<-1 || nArg>127) ||
684 (255<(nName = strlen(zFunctionName))) ){
danielk197765904932004-05-26 06:18:37 +0000685 return SQLITE_ERROR;
686 }
687
danielk1977d02eb1f2004-06-06 09:44:03 +0000688 p = sqlite3FindFunction(db, zFunctionName, nName, nArg, eTextRep, 1);
drh4e0f9952002-02-27 01:53:13 +0000689 if( p==0 ) return 1;
drh8e0a2f92002-02-23 23:45:45 +0000690 p->xFunc = xFunc;
drh8e0a2f92002-02-23 23:45:45 +0000691 p->xStep = xStep;
danielk197765904932004-05-26 06:18:37 +0000692 p->xFinalize = xFinal;
drh1350b032002-02-27 19:00:20 +0000693 p->pUserData = pUserData;
danielk197765904932004-05-26 06:18:37 +0000694 return SQLITE_OK;
695}
danielk197765904932004-05-26 06:18:37 +0000696int sqlite3_create_function16(
697 sqlite3 *db,
698 const void *zFunctionName,
699 int nArg,
700 int eTextRep,
701 int iCollateArg,
702 void *pUserData,
703 void (*xFunc)(sqlite3_context*,int,sqlite3_value**),
704 void (*xStep)(sqlite3_context*,int,sqlite3_value**),
705 void (*xFinal)(sqlite3_context*)
706){
707 int rc;
708 char *zFunctionName8;
drh9c054832004-05-31 18:51:57 +0000709 zFunctionName8 = sqlite3utf16to8(zFunctionName, -1, SQLITE_BIGENDIAN);
danielk197765904932004-05-26 06:18:37 +0000710 if( !zFunctionName8 ){
711 return SQLITE_NOMEM;
712 }
713 rc = sqlite3_create_function(db, zFunctionName8, nArg, eTextRep,
714 iCollateArg, pUserData, xFunc, xStep, xFinal);
715 sqliteFree(zFunctionName8);
716 return rc;
drh8e0a2f92002-02-23 23:45:45 +0000717}
drhc9b84a12002-06-20 11:36:48 +0000718
719/*
drh18de4822003-01-16 16:28:53 +0000720** Register a trace function. The pArg from the previously registered trace
721** is returned.
722**
723** A NULL trace function means that no tracing is executes. A non-NULL
724** trace is a pointer to a function that is invoked at the start of each
danielk197724b03fd2004-05-10 10:34:34 +0000725** sqlite3_exec().
drh18de4822003-01-16 16:28:53 +0000726*/
danielk197724b03fd2004-05-10 10:34:34 +0000727void *sqlite3_trace(sqlite *db, void (*xTrace)(void*,const char*), void *pArg){
drh18de4822003-01-16 16:28:53 +0000728 void *pOld = db->pTraceArg;
729 db->xTrace = xTrace;
730 db->pTraceArg = pArg;
731 return pOld;
drh0d1a6432003-04-03 15:46:04 +0000732}
paulb0208cc2003-04-13 18:26:49 +0000733
drhaa940ea2004-01-15 02:44:03 +0000734/*** EXPERIMENTAL ***
735**
736** Register a function to be invoked when a transaction comments.
737** If either function returns non-zero, then the commit becomes a
738** rollback.
739*/
danielk197724b03fd2004-05-10 10:34:34 +0000740void *sqlite3_commit_hook(
drhaa940ea2004-01-15 02:44:03 +0000741 sqlite *db, /* Attach the hook to this database */
742 int (*xCallback)(void*), /* Function to invoke on each commit */
743 void *pArg /* Argument to the function */
744){
745 void *pOld = db->pCommitArg;
746 db->xCommitCallback = xCallback;
747 db->pCommitArg = pArg;
748 return pOld;
749}
750
751
paulb0208cc2003-04-13 18:26:49 +0000752/*
drh13bff812003-04-15 01:19:47 +0000753** This routine is called to create a connection to a database BTree
754** driver. If zFilename is the name of a file, then that file is
755** opened and used. If zFilename is the magic name ":memory:" then
756** the database is stored in memory (and is thus forgotten as soon as
757** the connection is closed.) If zFilename is NULL then the database
758** is for temporary use only and is deleted as soon as the connection
759** is closed.
760**
drh13bff812003-04-15 01:19:47 +0000761** A temporary database can be either a disk file (that is automatically
762** deleted when the file is closed) or a set of red-black trees held in memory,
763** depending on the values of the TEMP_STORE compile-time macro and the
764** db->temp_store variable, according to the following chart:
765**
766** TEMP_STORE db->temp_store Location of temporary database
767** ---------- -------------- ------------------------------
768** 0 any file
769** 1 1 file
770** 1 2 memory
771** 1 0 file
772** 2 1 file
773** 2 2 memory
774** 2 0 memory
775** 3 any memory
paulb0208cc2003-04-13 18:26:49 +0000776*/
danielk19774adee202004-05-08 08:23:19 +0000777int sqlite3BtreeFactory(
paulb0208cc2003-04-13 18:26:49 +0000778 const sqlite *db, /* Main database when opening aux otherwise 0 */
779 const char *zFilename, /* Name of the file containing the BTree database */
780 int omitJournal, /* if TRUE then do not journal this file */
781 int nCache, /* How many pages in the page cache */
danielk19774adee202004-05-08 08:23:19 +0000782 Btree **ppBtree /* Pointer to new Btree object written here */
783){
danielk19774adee202004-05-08 08:23:19 +0000784 int btree_flags = 0;
785
drheec983e2004-05-08 10:11:36 +0000786 assert( ppBtree != 0);
danielk19774adee202004-05-08 08:23:19 +0000787 if( omitJournal ){
788 btree_flags |= BTREE_OMIT_JOURNAL;
paulb0208cc2003-04-13 18:26:49 +0000789 }
danielk19774adee202004-05-08 08:23:19 +0000790 if( !zFilename ){
791 btree_flags |= BTREE_MEMORY;
792 }
793
danielk197724162fe2004-06-04 06:22:00 +0000794 return sqlite3BtreeOpen(zFilename, ppBtree, nCache, btree_flags,
795 &db->busyHandler);
paulb0208cc2003-04-13 18:26:49 +0000796}
danielk19774adee202004-05-08 08:23:19 +0000797
danielk19774ad17132004-05-21 01:47:26 +0000798/*
799** Return UTF-8 encoded English language explanation of the most recent
800** error.
801*/
danielk19776622cce2004-05-20 11:00:52 +0000802const char *sqlite3_errmsg(sqlite3 *db){
danielk19774ad17132004-05-21 01:47:26 +0000803 if( !db ){
804 /* If db is NULL, then assume that a malloc() failed during an
805 ** sqlite3_open() call.
806 */
danielk1977f20b21c2004-05-31 23:56:42 +0000807 return sqlite3ErrStr(SQLITE_NOMEM);
danielk19774ad17132004-05-21 01:47:26 +0000808 }
danielk19776622cce2004-05-20 11:00:52 +0000809 if( db->zErrMsg ){
810 return db->zErrMsg;
811 }
danielk1977f20b21c2004-05-31 23:56:42 +0000812 return sqlite3ErrStr(db->errCode);
danielk19776622cce2004-05-20 11:00:52 +0000813}
814
danielk19774ad17132004-05-21 01:47:26 +0000815/*
816** Return UTF-16 encoded English language explanation of the most recent
817** error.
818*/
danielk19776622cce2004-05-20 11:00:52 +0000819const void *sqlite3_errmsg16(sqlite3 *db){
danielk19774ad17132004-05-21 01:47:26 +0000820 if( !db ){
821 /* If db is NULL, then assume that a malloc() failed during an
822 ** sqlite3_open() call. We have a static version of the string
823 ** "out of memory" encoded using UTF-16 just for this purpose.
824 **
825 ** Because all the characters in the string are in the unicode
826 ** range 0x00-0xFF, if we pad the big-endian string with a
827 ** zero byte, we can obtain the little-endian string with
828 ** &big_endian[1].
829 */
830 static char outOfMemBe[] = {
831 0, 'o', 0, 'u', 0, 't', 0, ' ',
832 0, 'o', 0, 'f', 0, ' ',
833 0, 'm', 0, 'e', 0, 'm', 0, 'o', 0, 'r', 0, 'y', 0, 0, 0
834 };
835 static char *outOfMemLe = &outOfMemBe[1];
836
drh9c054832004-05-31 18:51:57 +0000837 if( SQLITE_BIGENDIAN ){
danielk19774ad17132004-05-21 01:47:26 +0000838 return (void *)outOfMemBe;
839 }else{
840 return (void *)outOfMemLe;
841 }
842 }
danielk19776622cce2004-05-20 11:00:52 +0000843 if( !db->zErrMsg16 ){
844 char const *zErr8 = sqlite3_errmsg(db);
drh9c054832004-05-31 18:51:57 +0000845 if( SQLITE_BIGENDIAN ){
danielk19776622cce2004-05-20 11:00:52 +0000846 db->zErrMsg16 = sqlite3utf8to16be(zErr8, -1);
847 }else{
848 db->zErrMsg16 = sqlite3utf8to16le(zErr8, -1);
849 }
850 }
851 return db->zErrMsg16;
852}
853
854int sqlite3_errcode(sqlite3 *db){
855 return db->errCode;
856}
857
858/*
859** Compile the UTF-8 encoded SQL statement zSql into a statement handle.
860*/
861int sqlite3_prepare(
862 sqlite3 *db, /* Database handle. */
863 const char *zSql, /* UTF-8 encoded SQL statement. */
864 int nBytes, /* Length of zSql in bytes. */
865 sqlite3_stmt **ppStmt, /* OUT: A pointer to the prepared statement */
866 const char** pzTail /* OUT: End of parsed string */
867){
868 Parse sParse;
869 char *zErrMsg = 0;
870 int rc = SQLITE_OK;
871
872 if( sqlite3SafetyOn(db) ){
873 rc = SQLITE_MISUSE;
874 goto prepare_out;
875 }
876
danielk19776622cce2004-05-20 11:00:52 +0000877 if( db->pVdbe==0 ){ db->nChange = 0; }
878 memset(&sParse, 0, sizeof(sParse));
879 sParse.db = db;
880 sqlite3RunParser(&sParse, zSql, &zErrMsg);
881
882 if( db->xTrace && !db->init.busy ){
883 /* Trace only the statment that was compiled.
884 ** Make a copy of that part of the SQL string since zSQL is const
885 ** and we must pass a zero terminated string to the trace function
886 ** The copy is unnecessary if the tail pointer is pointing at the
887 ** beginnig or end of the SQL string.
888 */
889 if( sParse.zTail && sParse.zTail!=zSql && *sParse.zTail ){
890 char *tmpSql = sqliteStrNDup(zSql, sParse.zTail - zSql);
891 if( tmpSql ){
892 db->xTrace(db->pTraceArg, tmpSql);
893 free(tmpSql);
894 }else{
895 /* If a memory error occurred during the copy,
896 ** trace entire SQL string and fall through to the
897 ** sqlite3_malloc_failed test to report the error.
898 */
899 db->xTrace(db->pTraceArg, zSql);
900 }
901 }else{
902 db->xTrace(db->pTraceArg, zSql);
903 }
904 }
905
906 if( sqlite3_malloc_failed ){
907 rc = SQLITE_NOMEM;
908 sqlite3RollbackAll(db);
909 sqlite3ResetInternalSchema(db, 0);
910 db->flags &= ~SQLITE_InTrans;
911 goto prepare_out;
912 }
913 if( sParse.rc==SQLITE_DONE ) sParse.rc = SQLITE_OK;
914 if( sParse.rc==SQLITE_SCHEMA ){
915 sqlite3ResetInternalSchema(db, 0);
916 }
917 assert( ppStmt );
918 *ppStmt = (sqlite3_stmt*)sParse.pVdbe;
919 if( pzTail ) *pzTail = sParse.zTail;
danielk19776622cce2004-05-20 11:00:52 +0000920 rc = sParse.rc;
921
danielk197722322fd2004-05-25 23:35:17 +0000922 if( rc==SQLITE_OK && sParse.pVdbe && sParse.explain ){
923 sqlite3VdbeSetNumCols(sParse.pVdbe, 5);
danielk19773cf86062004-05-26 10:11:05 +0000924 sqlite3VdbeSetColName(sParse.pVdbe, 0, "addr", P3_STATIC);
925 sqlite3VdbeSetColName(sParse.pVdbe, 1, "opcode", P3_STATIC);
926 sqlite3VdbeSetColName(sParse.pVdbe, 2, "p1", P3_STATIC);
927 sqlite3VdbeSetColName(sParse.pVdbe, 3, "p2", P3_STATIC);
928 sqlite3VdbeSetColName(sParse.pVdbe, 4, "p3", P3_STATIC);
danielk197722322fd2004-05-25 23:35:17 +0000929 }
930
danielk19776622cce2004-05-20 11:00:52 +0000931prepare_out:
danielk197722322fd2004-05-25 23:35:17 +0000932 if( sqlite3SafetyOff(db) ){
933 rc = SQLITE_MISUSE;
934 }
danielk19776622cce2004-05-20 11:00:52 +0000935 if( zErrMsg ){
936 sqlite3Error(db, rc, "%s", zErrMsg);
937 }else{
938 sqlite3Error(db, rc, 0);
939 }
940 return rc;
941}
942
943/*
944** Compile the UTF-16 encoded SQL statement zSql into a statement handle.
945*/
946int sqlite3_prepare16(
947 sqlite3 *db, /* Database handle. */
948 const void *zSql, /* UTF-8 encoded SQL statement. */
949 int nBytes, /* Length of zSql in bytes. */
950 sqlite3_stmt **ppStmt, /* OUT: A pointer to the prepared statement */
951 const void **pzTail /* OUT: End of parsed string */
952){
953 /* This function currently works by first transforming the UTF-16
954 ** encoded string to UTF-8, then invoking sqlite3_prepare(). The
955 ** tricky bit is figuring out the pointer to return in *pzTail.
956 */
957 char *zSql8 = 0;
958 char const *zTail8 = 0;
959 int rc;
960
drh9c054832004-05-31 18:51:57 +0000961 zSql8 = sqlite3utf16to8(zSql, nBytes, SQLITE_BIGENDIAN);
danielk19776622cce2004-05-20 11:00:52 +0000962 if( !zSql8 ){
963 sqlite3Error(db, SQLITE_NOMEM, 0);
964 return SQLITE_NOMEM;
965 }
966 rc = sqlite3_prepare(db, zSql8, -1, ppStmt, &zTail8);
967
968 if( zTail8 && pzTail ){
969 /* If sqlite3_prepare returns a tail pointer, we calculate the
970 ** equivalent pointer into the UTF-16 string by counting the unicode
971 ** characters between zSql8 and zTail8, and then returning a pointer
972 ** the same number of characters into the UTF-16 string.
973 */
974 int chars_parsed = sqlite3utf8CharLen(zSql8, zTail8-zSql8);
975 *pzTail = (u8 *)zSql + sqlite3utf16ByteLen(zSql, chars_parsed);
976 }
977
978 return rc;
979}
980
danielk19774ad17132004-05-21 01:47:26 +0000981/*
982** This routine does the work of opening a database on behalf of
983** sqlite3_open() and sqlite3_open16(). The database filename "zFilename"
984** is UTF-8 encoded. The fourth argument, "def_enc" is one of the TEXT_*
985** macros from sqliteInt.h. If we end up creating a new database file
986** (not opening an existing one), the text encoding of the database
987** will be set to this value.
988*/
989static int openDatabase(
990 const char *zFilename, /* Database filename UTF-8 encoded */
danielk19778e227872004-06-07 07:52:17 +0000991 sqlite3 **ppDb /* OUT: Returned database handle */
danielk19774ad17132004-05-21 01:47:26 +0000992){
993 sqlite3 *db;
994 int rc, i;
995 char *zErrMsg = 0;
996
997 /* Allocate the sqlite data structure */
998 db = sqliteMalloc( sizeof(sqlite) );
999 if( db==0 ) goto opendb_out;
danielk19774ad17132004-05-21 01:47:26 +00001000 db->priorNewRowid = 0;
1001 db->magic = SQLITE_MAGIC_BUSY;
1002 db->nDb = 2;
1003 db->aDb = db->aDbStatic;
danielk19778e227872004-06-07 07:52:17 +00001004 db->enc = TEXT_Utf8;
danielk19771d850a72004-05-31 08:26:49 +00001005 db->autoCommit = 1;
danielk19774ad17132004-05-21 01:47:26 +00001006 /* db->flags |= SQLITE_ShortColNames; */
drhf9b596e2004-05-26 16:54:42 +00001007 sqlite3HashInit(&db->aFunc, SQLITE_HASH_STRING, 0);
danielk19774ad17132004-05-21 01:47:26 +00001008 sqlite3HashInit(&db->aCollSeq, SQLITE_HASH_STRING, 0);
1009 for(i=0; i<db->nDb; i++){
1010 sqlite3HashInit(&db->aDb[i].tblHash, SQLITE_HASH_STRING, 0);
1011 sqlite3HashInit(&db->aDb[i].idxHash, SQLITE_HASH_STRING, 0);
1012 sqlite3HashInit(&db->aDb[i].trigHash, SQLITE_HASH_STRING, 0);
1013 sqlite3HashInit(&db->aDb[i].aFKey, SQLITE_HASH_STRING, 1);
1014 }
danielk19774ad17132004-05-21 01:47:26 +00001015
danielk19770202b292004-06-09 09:55:16 +00001016 /* Add the default collation sequence BINARY. BINARY works for both UTF-8
1017 ** and UTF-16, so add a version for each to avoid any unnecessary
1018 ** conversions. The only error that can occur here is a malloc() failure.
1019 */
1020 sqlite3_create_collation(db, "BINARY", 0, 0, binaryCollatingFunc);
1021 sqlite3_create_collation(db, "BINARY", 1, 0, binaryCollatingFunc);
1022 db->pDfltColl = sqlite3FindCollSeq(db, "BINARY", 6, 0);
1023 if( !db->pDfltColl ){
1024 rc = db->errCode;
1025 assert( rc!=SQLITE_OK );
1026 db->magic = SQLITE_MAGIC_CLOSED;
1027 goto opendb_out;
1028 }
1029
1030 /* Also add a UTF-8 case-insensitive collation sequence. */
1031 sqlite3_create_collation(db, "NOCASE", 0, 0, nocaseCollatingFunc);
1032
danielk19774ad17132004-05-21 01:47:26 +00001033 /* Open the backend database driver */
1034 if( zFilename[0]==':' && strcmp(zFilename,":memory:")==0 ){
1035 db->temp_store = 2;
drhc9e06862004-06-09 20:03:08 +00001036 db->nMaster = 0; /* Disable atomic multi-file commit for :memory: */
1037 }else{
1038 db->nMaster = -1; /* Size of master journal filename initially unknown */
danielk19774ad17132004-05-21 01:47:26 +00001039 }
1040 rc = sqlite3BtreeFactory(db, zFilename, 0, MAX_PAGES, &db->aDb[0].pBt);
1041 if( rc!=SQLITE_OK ){
1042 /* FIX ME: sqlite3BtreeFactory() should call sqlite3Error(). */
1043 sqlite3Error(db, rc, 0);
1044 db->magic = SQLITE_MAGIC_CLOSED;
1045 goto opendb_out;
1046 }
1047 db->aDb[0].zName = "main";
1048 db->aDb[1].zName = "temp";
1049
danielk19778e227872004-06-07 07:52:17 +00001050 /* Register all built-in functions, but do not attempt to read the
1051 ** database schema yet. This is delayed until the first time the database
1052 ** is accessed.
1053 */
danielk19774ad17132004-05-21 01:47:26 +00001054 sqlite3RegisterBuiltinFunctions(db);
danielk19778e227872004-06-07 07:52:17 +00001055 if( rc==SQLITE_OK ){
danielk19774ad17132004-05-21 01:47:26 +00001056 db->magic = SQLITE_MAGIC_OPEN;
danielk19778e227872004-06-07 07:52:17 +00001057 }else{
1058 sqlite3Error(db, rc, "%s", zErrMsg, 0);
1059 if( zErrMsg ) sqliteFree(zErrMsg);
1060 db->magic = SQLITE_MAGIC_CLOSED;
danielk19774ad17132004-05-21 01:47:26 +00001061 }
danielk19774ad17132004-05-21 01:47:26 +00001062
1063opendb_out:
1064 *ppDb = db;
1065 return sqlite3_errcode(db);
1066}
1067
1068/*
1069** Open a new database handle.
1070*/
danielk197780290862004-05-22 09:21:21 +00001071int sqlite3_open(
danielk19774ad17132004-05-21 01:47:26 +00001072 const char *zFilename,
danielk19774f057f92004-06-08 00:02:33 +00001073 sqlite3 **ppDb
danielk19774ad17132004-05-21 01:47:26 +00001074){
danielk19778e227872004-06-07 07:52:17 +00001075 return openDatabase(zFilename, ppDb);
danielk197783ab5a82004-05-21 11:39:05 +00001076}
1077
danielk19774ad17132004-05-21 01:47:26 +00001078/*
1079** Open a new database handle.
1080*/
1081int sqlite3_open16(
1082 const void *zFilename,
danielk19774f057f92004-06-08 00:02:33 +00001083 sqlite3 **ppDb
danielk19774ad17132004-05-21 01:47:26 +00001084){
1085 char *zFilename8; /* zFilename encoded in UTF-8 instead of UTF-16 */
1086 int rc;
1087
1088 assert( ppDb );
1089
drh9c054832004-05-31 18:51:57 +00001090 zFilename8 = sqlite3utf16to8(zFilename, -1, SQLITE_BIGENDIAN);
danielk19774ad17132004-05-21 01:47:26 +00001091 if( !zFilename8 ){
1092 *ppDb = 0;
1093 return SQLITE_NOMEM;
1094 }
danielk19778e227872004-06-07 07:52:17 +00001095 rc = openDatabase(zFilename8, ppDb);
1096 if( rc==SQLITE_OK && *ppDb ){
1097 sqlite3_exec(*ppDb, "PRAGMA encoding = 'UTF-16'", 0, 0, 0);
danielk19774ad17132004-05-21 01:47:26 +00001098 }
danielk19774ad17132004-05-21 01:47:26 +00001099 sqliteFree(zFilename8);
danielk19778e227872004-06-07 07:52:17 +00001100
danielk19774ad17132004-05-21 01:47:26 +00001101 return rc;
1102}
1103
danielk1977106bb232004-05-21 10:08:53 +00001104/*
1105** The following routine destroys a virtual machine that is created by
1106** the sqlite3_compile() routine. The integer returned is an SQLITE_
1107** success/failure code that describes the result of executing the virtual
1108** machine.
1109**
1110** This routine sets the error code and string returned by
1111** sqlite3_errcode(), sqlite3_errmsg() and sqlite3_errmsg16().
1112*/
danielk1977fc57d7b2004-05-26 02:04:57 +00001113int sqlite3_finalize(sqlite3_stmt *pStmt){
danielk1977106bb232004-05-21 10:08:53 +00001114 return sqlite3VdbeFinalize((Vdbe*)pStmt, 0);
1115}
1116
1117/*
1118** Terminate the current execution of an SQL statement and reset it
1119** back to its starting state so that it can be reused. A success code from
1120** the prior execution is returned.
1121**
1122** This routine sets the error code and string returned by
1123** sqlite3_errcode(), sqlite3_errmsg() and sqlite3_errmsg16().
1124*/
danielk1977fc57d7b2004-05-26 02:04:57 +00001125int sqlite3_reset(sqlite3_stmt *pStmt){
danielk1977106bb232004-05-21 10:08:53 +00001126 int rc = sqlite3VdbeReset((Vdbe*)pStmt, 0);
1127 sqlite3VdbeMakeReady((Vdbe*)pStmt, -1, 0);
1128 return rc;
1129}
danielk19770202b292004-06-09 09:55:16 +00001130
1131int sqlite3_create_collation(
1132 sqlite3* db,
1133 const char *zName,
1134 int pref16,
1135 void* pCtx,
1136 int(*xCompare)(void*,int,const void*,int,const void*)
1137){
1138 CollSeq *pColl;
1139 int rc = SQLITE_OK;
1140 pColl = sqlite3FindCollSeq(db, zName, strlen(zName), 1);
1141 if( 0==pColl ){
1142 rc = SQLITE_NOMEM;
1143 }else if( pref16 ){
1144 pColl->xCmp16 = xCompare;
1145 pColl->pUser16 = pCtx;
1146 }else{
1147 pColl->xCmp = xCompare;
1148 pColl->pUser = pCtx;
1149 }
1150 sqlite3Error(db, rc, 0);
1151 return SQLITE_OK;
1152}
1153
1154int sqlite3_create_collation16(
1155 sqlite3* db,
1156 const char *zName,
1157 int pref16,
1158 void* pCtx,
1159 int(*xCompare)(void*,int,const void*,int,const void*)
1160){
1161 int rc;
1162 char *zName8 = sqlite3utf16to8(zName, -1, SQLITE_BIGENDIAN);
1163 rc = sqlite3_create_collation(db, zName8, pref16, pCtx, xCompare);
1164 sqliteFree(zName8);
1165 return rc;
1166}