1 /* 2 ** 2003 April 6 3 ** 4 ** The author disclaims copyright to this source code. In place of 5 ** a legal notice, here is a blessing: 6 ** 7 ** May you do good and not evil. 8 ** May you find forgiveness for yourself and forgive others. 9 ** May you share freely, never taking more than you give. 10 ** 11 ************************************************************************* 12 ** This file contains code used to implement the VACUUM command. 13 ** 14 ** Most of the code in this file may be omitted by defining the 15 ** SQLITE_OMIT_VACUUM macro. 16 */ 17 #include "sqliteInt.h" 18 #include "vdbeInt.h" 19 20 #if !defined(SQLITE_OMIT_VACUUM) && !defined(SQLITE_OMIT_ATTACH) 21 22 /* 23 ** Execute zSql on database db. 24 ** 25 ** If zSql returns rows, then each row will have exactly one 26 ** column. (This will only happen if zSql begins with "SELECT".) 27 ** Take each row of result and call execSql() again recursively. 28 ** 29 ** The execSqlF() routine does the same thing, except it accepts 30 ** a format string as its third argument 31 */ 32 static int execSql(sqlite3 *db, char **pzErrMsg, const char *zSql){ 33 sqlite3_stmt *pStmt; 34 int rc; 35 36 /* printf("SQL: [%s]\n", zSql); fflush(stdout); */ 37 rc = sqlite3_prepare_v2(db, zSql, -1, &pStmt, 0); 38 if( rc!=SQLITE_OK ) return rc; 39 while( SQLITE_ROW==(rc = sqlite3_step(pStmt)) ){ 40 const char *zSubSql = (const char*)sqlite3_column_text(pStmt,0); 41 assert( sqlite3_strnicmp(zSql,"SELECT",6)==0 ); 42 if( zSubSql ){ 43 assert( zSubSql[0]!='S' ); 44 rc = execSql(db, pzErrMsg, zSubSql); 45 if( rc!=SQLITE_OK ) break; 46 } 47 } 48 assert( rc!=SQLITE_ROW ); 49 if( rc==SQLITE_DONE ) rc = SQLITE_OK; 50 if( rc ){ 51 sqlite3SetString(pzErrMsg, db, sqlite3_errmsg(db)); 52 } 53 (void)sqlite3_finalize(pStmt); 54 return rc; 55 } 56 static int execSqlF(sqlite3 *db, char **pzErrMsg, const char *zSql, ...){ 57 char *z; 58 va_list ap; 59 int rc; 60 va_start(ap, zSql); 61 z = sqlite3VMPrintf(db, zSql, ap); 62 va_end(ap); 63 if( z==0 ) return SQLITE_NOMEM; 64 rc = execSql(db, pzErrMsg, z); 65 sqlite3DbFree(db, z); 66 return rc; 67 } 68 69 /* 70 ** The VACUUM command is used to clean up the database, 71 ** collapse free space, etc. It is modelled after the VACUUM command 72 ** in PostgreSQL. The VACUUM command works as follows: 73 ** 74 ** (1) Create a new transient database file 75 ** (2) Copy all content from the database being vacuumed into 76 ** the new transient database file 77 ** (3) Copy content from the transient database back into the 78 ** original database. 79 ** 80 ** The transient database requires temporary disk space approximately 81 ** equal to the size of the original database. The copy operation of 82 ** step (3) requires additional temporary disk space approximately equal 83 ** to the size of the original database for the rollback journal. 84 ** Hence, temporary disk space that is approximately 2x the size of the 85 ** original database is required. Every page of the database is written 86 ** approximately 3 times: Once for step (2) and twice for step (3). 87 ** Two writes per page are required in step (3) because the original 88 ** database content must be written into the rollback journal prior to 89 ** overwriting the database with the vacuumed content. 90 ** 91 ** Only 1x temporary space and only 1x writes would be required if 92 ** the copy of step (3) were replaced by deleting the original database 93 ** and renaming the transient database as the original. But that will 94 ** not work if other processes are attached to the original database. 95 ** And a power loss in between deleting the original and renaming the 96 ** transient would cause the database file to appear to be deleted 97 ** following reboot. 98 */ 99 void sqlite3Vacuum(Parse *pParse, Token *pNm){ 100 Vdbe *v = sqlite3GetVdbe(pParse); 101 int iDb = pNm ? sqlite3TwoPartName(pParse, pNm, pNm, &pNm) : 0; 102 if( v && (iDb>=2 || iDb==0) ){ 103 sqlite3VdbeAddOp1(v, OP_Vacuum, iDb); 104 sqlite3VdbeUsesBtree(v, iDb); 105 } 106 return; 107 } 108 109 /* 110 ** This routine implements the OP_Vacuum opcode of the VDBE. 111 */ 112 int sqlite3RunVacuum(char **pzErrMsg, sqlite3 *db, int iDb){ 113 int rc = SQLITE_OK; /* Return code from service routines */ 114 Btree *pMain; /* The database being vacuumed */ 115 Btree *pTemp; /* The temporary database we vacuum into */ 116 int saved_flags; /* Saved value of the db->flags */ 117 int saved_nChange; /* Saved value of db->nChange */ 118 int saved_nTotalChange; /* Saved value of db->nTotalChange */ 119 u8 saved_mTrace; /* Saved trace settings */ 120 Db *pDb = 0; /* Database to detach at end of vacuum */ 121 int isMemDb; /* True if vacuuming a :memory: database */ 122 int nRes; /* Bytes of reserved space at the end of each page */ 123 int nDb; /* Number of attached databases */ 124 const char *zDbMain; /* Schema name of database to vacuum */ 125 126 if( !db->autoCommit ){ 127 sqlite3SetString(pzErrMsg, db, "cannot VACUUM from within a transaction"); 128 return SQLITE_ERROR; 129 } 130 if( db->nVdbeActive>1 ){ 131 sqlite3SetString(pzErrMsg, db,"cannot VACUUM - SQL statements in progress"); 132 return SQLITE_ERROR; 133 } 134 135 /* Save the current value of the database flags so that it can be 136 ** restored before returning. Then set the writable-schema flag, and 137 ** disable CHECK and foreign key constraints. */ 138 saved_flags = db->flags; 139 saved_nChange = db->nChange; 140 saved_nTotalChange = db->nTotalChange; 141 saved_mTrace = db->mTrace; 142 db->flags |= (SQLITE_WriteSchema | SQLITE_IgnoreChecks 143 | SQLITE_PreferBuiltin | SQLITE_Vacuum); 144 db->flags &= ~(SQLITE_ForeignKeys | SQLITE_ReverseOrder | SQLITE_CountRows); 145 db->mTrace = 0; 146 147 zDbMain = db->aDb[iDb].zDbSName; 148 pMain = db->aDb[iDb].pBt; 149 isMemDb = sqlite3PagerIsMemdb(sqlite3BtreePager(pMain)); 150 151 /* Attach the temporary database as 'vacuum_db'. The synchronous pragma 152 ** can be set to 'off' for this file, as it is not recovered if a crash 153 ** occurs anyway. The integrity of the database is maintained by a 154 ** (possibly synchronous) transaction opened on the main database before 155 ** sqlite3BtreeCopyFile() is called. 156 ** 157 ** An optimisation would be to use a non-journaled pager. 158 ** (Later:) I tried setting "PRAGMA vacuum_db.journal_mode=OFF" but 159 ** that actually made the VACUUM run slower. Very little journalling 160 ** actually occurs when doing a vacuum since the vacuum_db is initially 161 ** empty. Only the journal header is written. Apparently it takes more 162 ** time to parse and run the PRAGMA to turn journalling off than it does 163 ** to write the journal header file. 164 */ 165 nDb = db->nDb; 166 rc = execSql(db, pzErrMsg, "ATTACH''AS vacuum_db"); 167 if( rc!=SQLITE_OK ) goto end_of_vacuum; 168 assert( (db->nDb-1)==nDb ); 169 pDb = &db->aDb[nDb]; 170 assert( strcmp(pDb->zDbSName,"vacuum_db")==0 ); 171 pTemp = pDb->pBt; 172 173 /* The call to execSql() to attach the temp database has left the file 174 ** locked (as there was more than one active statement when the transaction 175 ** to read the schema was concluded. Unlock it here so that this doesn't 176 ** cause problems for the call to BtreeSetPageSize() below. */ 177 sqlite3BtreeCommit(pTemp); 178 179 nRes = sqlite3BtreeGetOptimalReserve(pMain); 180 181 /* A VACUUM cannot change the pagesize of an encrypted database. */ 182 #ifdef SQLITE_HAS_CODEC 183 if( db->nextPagesize ){ 184 extern void sqlite3CodecGetKey(sqlite3*, int, void**, int*); 185 int nKey; 186 char *zKey; 187 sqlite3CodecGetKey(db, 0, (void**)&zKey, &nKey); 188 if( nKey ) db->nextPagesize = 0; 189 } 190 #endif 191 192 sqlite3BtreeSetCacheSize(pTemp, db->aDb[iDb].pSchema->cache_size); 193 sqlite3BtreeSetSpillSize(pTemp, sqlite3BtreeSetSpillSize(pMain,0)); 194 sqlite3BtreeSetPagerFlags(pTemp, PAGER_SYNCHRONOUS_OFF); 195 196 /* Begin a transaction and take an exclusive lock on the main database 197 ** file. This is done before the sqlite3BtreeGetPageSize(pMain) call below, 198 ** to ensure that we do not try to change the page-size on a WAL database. 199 */ 200 rc = execSql(db, pzErrMsg, "BEGIN"); 201 if( rc!=SQLITE_OK ) goto end_of_vacuum; 202 rc = sqlite3BtreeBeginTrans(pMain, 2); 203 if( rc!=SQLITE_OK ) goto end_of_vacuum; 204 205 /* Do not attempt to change the page size for a WAL database */ 206 if( sqlite3PagerGetJournalMode(sqlite3BtreePager(pMain)) 207 ==PAGER_JOURNALMODE_WAL ){ 208 db->nextPagesize = 0; 209 } 210 211 if( sqlite3BtreeSetPageSize(pTemp, sqlite3BtreeGetPageSize(pMain), nRes, 0) 212 || (!isMemDb && sqlite3BtreeSetPageSize(pTemp, db->nextPagesize, nRes, 0)) 213 || NEVER(db->mallocFailed) 214 ){ 215 rc = SQLITE_NOMEM_BKPT; 216 goto end_of_vacuum; 217 } 218 219 #ifndef SQLITE_OMIT_AUTOVACUUM 220 sqlite3BtreeSetAutoVacuum(pTemp, db->nextAutovac>=0 ? db->nextAutovac : 221 sqlite3BtreeGetAutoVacuum(pMain)); 222 #endif 223 224 /* Query the schema of the main database. Create a mirror schema 225 ** in the temporary database. 226 */ 227 db->init.iDb = nDb; /* force new CREATE statements into vacuum_db */ 228 rc = execSqlF(db, pzErrMsg, 229 "SELECT sql FROM \"%w\".sqlite_master" 230 " WHERE type='table'AND name<>'sqlite_sequence'" 231 " AND coalesce(rootpage,1)>0", 232 zDbMain 233 ); 234 if( rc!=SQLITE_OK ) goto end_of_vacuum; 235 rc = execSqlF(db, pzErrMsg, 236 "SELECT sql FROM \"%w\".sqlite_master" 237 " WHERE type='index' AND length(sql)>10", 238 zDbMain 239 ); 240 if( rc!=SQLITE_OK ) goto end_of_vacuum; 241 db->init.iDb = 0; 242 243 /* Loop through the tables in the main database. For each, do 244 ** an "INSERT INTO vacuum_db.xxx SELECT * FROM main.xxx;" to copy 245 ** the contents to the temporary database. 246 */ 247 rc = execSqlF(db, pzErrMsg, 248 "SELECT'INSERT INTO vacuum_db.'||quote(name)" 249 "||' SELECT*FROM\"%w\".'||quote(name)" 250 "FROM vacuum_db.sqlite_master " 251 "WHERE type='table'AND coalesce(rootpage,1)>0", 252 zDbMain 253 ); 254 assert( (db->flags & SQLITE_Vacuum)!=0 ); 255 db->flags &= ~SQLITE_Vacuum; 256 if( rc!=SQLITE_OK ) goto end_of_vacuum; 257 258 /* Copy the triggers, views, and virtual tables from the main database 259 ** over to the temporary database. None of these objects has any 260 ** associated storage, so all we have to do is copy their entries 261 ** from the SQLITE_MASTER table. 262 */ 263 rc = execSqlF(db, pzErrMsg, 264 "INSERT INTO vacuum_db.sqlite_master" 265 " SELECT*FROM \"%w\".sqlite_master" 266 " WHERE type IN('view','trigger')" 267 " OR(type='table'AND rootpage=0)", 268 zDbMain 269 ); 270 if( rc ) goto end_of_vacuum; 271 272 /* At this point, there is a write transaction open on both the 273 ** vacuum database and the main database. Assuming no error occurs, 274 ** both transactions are closed by this block - the main database 275 ** transaction by sqlite3BtreeCopyFile() and the other by an explicit 276 ** call to sqlite3BtreeCommit(). 277 */ 278 { 279 u32 meta; 280 int i; 281 282 /* This array determines which meta meta values are preserved in the 283 ** vacuum. Even entries are the meta value number and odd entries 284 ** are an increment to apply to the meta value after the vacuum. 285 ** The increment is used to increase the schema cookie so that other 286 ** connections to the same database will know to reread the schema. 287 */ 288 static const unsigned char aCopy[] = { 289 BTREE_SCHEMA_VERSION, 1, /* Add one to the old schema cookie */ 290 BTREE_DEFAULT_CACHE_SIZE, 0, /* Preserve the default page cache size */ 291 BTREE_TEXT_ENCODING, 0, /* Preserve the text encoding */ 292 BTREE_USER_VERSION, 0, /* Preserve the user version */ 293 BTREE_APPLICATION_ID, 0, /* Preserve the application id */ 294 }; 295 296 assert( 1==sqlite3BtreeIsInTrans(pTemp) ); 297 assert( 1==sqlite3BtreeIsInTrans(pMain) ); 298 299 /* Copy Btree meta values */ 300 for(i=0; i<ArraySize(aCopy); i+=2){ 301 /* GetMeta() and UpdateMeta() cannot fail in this context because 302 ** we already have page 1 loaded into cache and marked dirty. */ 303 sqlite3BtreeGetMeta(pMain, aCopy[i], &meta); 304 rc = sqlite3BtreeUpdateMeta(pTemp, aCopy[i], meta+aCopy[i+1]); 305 if( NEVER(rc!=SQLITE_OK) ) goto end_of_vacuum; 306 } 307 308 rc = sqlite3BtreeCopyFile(pMain, pTemp); 309 if( rc!=SQLITE_OK ) goto end_of_vacuum; 310 rc = sqlite3BtreeCommit(pTemp); 311 if( rc!=SQLITE_OK ) goto end_of_vacuum; 312 #ifndef SQLITE_OMIT_AUTOVACUUM 313 sqlite3BtreeSetAutoVacuum(pMain, sqlite3BtreeGetAutoVacuum(pTemp)); 314 #endif 315 } 316 317 assert( rc==SQLITE_OK ); 318 rc = sqlite3BtreeSetPageSize(pMain, sqlite3BtreeGetPageSize(pTemp), nRes,1); 319 320 end_of_vacuum: 321 /* Restore the original value of db->flags */ 322 db->init.iDb = 0; 323 db->flags = saved_flags; 324 db->nChange = saved_nChange; 325 db->nTotalChange = saved_nTotalChange; 326 db->mTrace = saved_mTrace; 327 sqlite3BtreeSetPageSize(pMain, -1, -1, 1); 328 329 /* Currently there is an SQL level transaction open on the vacuum 330 ** database. No locks are held on any other files (since the main file 331 ** was committed at the btree level). So it safe to end the transaction 332 ** by manually setting the autoCommit flag to true and detaching the 333 ** vacuum database. The vacuum_db journal file is deleted when the pager 334 ** is closed by the DETACH. 335 */ 336 db->autoCommit = 1; 337 338 if( pDb ){ 339 sqlite3BtreeClose(pDb->pBt); 340 pDb->pBt = 0; 341 pDb->pSchema = 0; 342 } 343 344 /* This both clears the schemas and reduces the size of the db->aDb[] 345 ** array. */ 346 sqlite3ResetAllSchemasOfConnection(db); 347 348 return rc; 349 } 350 351 #endif /* SQLITE_OMIT_VACUUM && SQLITE_OMIT_ATTACH */ 352