1 /* 2 ** 2001 September 15 3 ** 4 ** The author disclaims copyright to this source code. In place of 5 ** a legal notice, here is a blessing: 6 ** 7 ** May you do good and not evil. 8 ** May you find forgiveness for yourself and forgive others. 9 ** May you share freely, never taking more than you give. 10 ** 11 ************************************************************************* 12 ** This file contains C code routines that are called by the parser 13 ** to handle UPDATE statements. 14 */ 15 #include "sqliteInt.h" 16 17 #ifndef SQLITE_OMIT_VIRTUALTABLE 18 /* Forward declaration */ 19 static void updateVirtualTable( 20 Parse *pParse, /* The parsing context */ 21 SrcList *pSrc, /* The virtual table to be modified */ 22 Table *pTab, /* The virtual table */ 23 ExprList *pChanges, /* The columns to change in the UPDATE statement */ 24 Expr *pRowidExpr, /* Expression used to recompute the rowid */ 25 int *aXRef, /* Mapping from columns of pTab to entries in pChanges */ 26 Expr *pWhere, /* WHERE clause of the UPDATE statement */ 27 int onError /* ON CONFLICT strategy */ 28 ); 29 #endif /* SQLITE_OMIT_VIRTUALTABLE */ 30 31 /* 32 ** The most recently coded instruction was an OP_Column to retrieve the 33 ** i-th column of table pTab. This routine sets the P4 parameter of the 34 ** OP_Column to the default value, if any. 35 ** 36 ** The default value of a column is specified by a DEFAULT clause in the 37 ** column definition. This was either supplied by the user when the table 38 ** was created, or added later to the table definition by an ALTER TABLE 39 ** command. If the latter, then the row-records in the table btree on disk 40 ** may not contain a value for the column and the default value, taken 41 ** from the P4 parameter of the OP_Column instruction, is returned instead. 42 ** If the former, then all row-records are guaranteed to include a value 43 ** for the column and the P4 value is not required. 44 ** 45 ** Column definitions created by an ALTER TABLE command may only have 46 ** literal default values specified: a number, null or a string. (If a more 47 ** complicated default expression value was provided, it is evaluated 48 ** when the ALTER TABLE is executed and one of the literal values written 49 ** into the sqlite_schema table.) 50 ** 51 ** Therefore, the P4 parameter is only required if the default value for 52 ** the column is a literal number, string or null. The sqlite3ValueFromExpr() 53 ** function is capable of transforming these types of expressions into 54 ** sqlite3_value objects. 55 ** 56 ** If column as REAL affinity and the table is an ordinary b-tree table 57 ** (not a virtual table) then the value might have been stored as an 58 ** integer. In that case, add an OP_RealAffinity opcode to make sure 59 ** it has been converted into REAL. 60 */ 61 void sqlite3ColumnDefault(Vdbe *v, Table *pTab, int i, int iReg){ 62 assert( pTab!=0 ); 63 if( !pTab->pSelect ){ 64 sqlite3_value *pValue = 0; 65 u8 enc = ENC(sqlite3VdbeDb(v)); 66 Column *pCol = &pTab->aCol[i]; 67 VdbeComment((v, "%s.%s", pTab->zName, pCol->zName)); 68 assert( i<pTab->nCol ); 69 sqlite3ValueFromExpr(sqlite3VdbeDb(v), pCol->pDflt, enc, 70 pCol->affinity, &pValue); 71 if( pValue ){ 72 sqlite3VdbeAppendP4(v, pValue, P4_MEM); 73 } 74 } 75 #ifndef SQLITE_OMIT_FLOATING_POINT 76 if( pTab->aCol[i].affinity==SQLITE_AFF_REAL && !IsVirtual(pTab) ){ 77 sqlite3VdbeAddOp1(v, OP_RealAffinity, iReg); 78 } 79 #endif 80 } 81 82 /* 83 ** Check to see if column iCol of index pIdx references any of the 84 ** columns defined by aXRef and chngRowid. Return true if it does 85 ** and false if not. This is an optimization. False-positives are a 86 ** performance degradation, but false-negatives can result in a corrupt 87 ** index and incorrect answers. 88 ** 89 ** aXRef[j] will be non-negative if column j of the original table is 90 ** being updated. chngRowid will be true if the rowid of the table is 91 ** being updated. 92 */ 93 static int indexColumnIsBeingUpdated( 94 Index *pIdx, /* The index to check */ 95 int iCol, /* Which column of the index to check */ 96 int *aXRef, /* aXRef[j]>=0 if column j is being updated */ 97 int chngRowid /* true if the rowid is being updated */ 98 ){ 99 i16 iIdxCol = pIdx->aiColumn[iCol]; 100 assert( iIdxCol!=XN_ROWID ); /* Cannot index rowid */ 101 if( iIdxCol>=0 ){ 102 return aXRef[iIdxCol]>=0; 103 } 104 assert( iIdxCol==XN_EXPR ); 105 assert( pIdx->aColExpr!=0 ); 106 assert( pIdx->aColExpr->a[iCol].pExpr!=0 ); 107 return sqlite3ExprReferencesUpdatedColumn(pIdx->aColExpr->a[iCol].pExpr, 108 aXRef,chngRowid); 109 } 110 111 /* 112 ** Check to see if index pIdx is a partial index whose conditional 113 ** expression might change values due to an UPDATE. Return true if 114 ** the index is subject to change and false if the index is guaranteed 115 ** to be unchanged. This is an optimization. False-positives are a 116 ** performance degradation, but false-negatives can result in a corrupt 117 ** index and incorrect answers. 118 ** 119 ** aXRef[j] will be non-negative if column j of the original table is 120 ** being updated. chngRowid will be true if the rowid of the table is 121 ** being updated. 122 */ 123 static int indexWhereClauseMightChange( 124 Index *pIdx, /* The index to check */ 125 int *aXRef, /* aXRef[j]>=0 if column j is being updated */ 126 int chngRowid /* true if the rowid is being updated */ 127 ){ 128 if( pIdx->pPartIdxWhere==0 ) return 0; 129 return sqlite3ExprReferencesUpdatedColumn(pIdx->pPartIdxWhere, 130 aXRef, chngRowid); 131 } 132 133 /* 134 ** Allocate and return a pointer to an expression of type TK_ROW with 135 ** Expr.iColumn set to value (iCol+1). The resolver will modify the 136 ** expression to be a TK_COLUMN reading column iCol of the first 137 ** table in the source-list (pSrc->a[0]). 138 */ 139 static Expr *exprRowColumn(Parse *pParse, int iCol){ 140 Expr *pRet = sqlite3PExpr(pParse, TK_ROW, 0, 0); 141 if( pRet ) pRet->iColumn = iCol+1; 142 return pRet; 143 } 144 145 /* 146 ** Assuming both the pLimit and pOrderBy parameters are NULL, this function 147 ** generates VM code to run the query: 148 ** 149 ** SELECT <other-columns>, pChanges FROM pTabList WHERE pWhere 150 ** 151 ** and write the results to the ephemeral table already opened as cursor 152 ** iEph. None of pChanges, pTabList or pWhere are modified or consumed by 153 ** this function, they must be deleted by the caller. 154 ** 155 ** Or, if pLimit and pOrderBy are not NULL, and pTab is not a view: 156 ** 157 ** SELECT <other-columns>, pChanges FROM pTabList 158 ** WHERE pWhere 159 ** GROUP BY <other-columns> 160 ** ORDER BY pOrderBy LIMIT pLimit 161 ** 162 ** If pTab is a view, the GROUP BY clause is omitted. 163 ** 164 ** Exactly how results are written to table iEph, and exactly what 165 ** the <other-columns> in the query above are is determined by the type 166 ** of table pTabList->a[0].pTab. 167 ** 168 ** If the table is a WITHOUT ROWID table, then argument pPk must be its 169 ** PRIMARY KEY. In this case <other-columns> are the primary key columns 170 ** of the table, in order. The results of the query are written to ephemeral 171 ** table iEph as index keys, using OP_IdxInsert. 172 ** 173 ** If the table is actually a view, then <other-columns> are all columns of 174 ** the view. The results are written to the ephemeral table iEph as records 175 ** with automatically assigned integer keys. 176 ** 177 ** If the table is a virtual or ordinary intkey table, then <other-columns> 178 ** is its rowid. For a virtual table, the results are written to iEph as 179 ** records with automatically assigned integer keys For intkey tables, the 180 ** rowid value in <other-columns> is used as the integer key, and the 181 ** remaining fields make up the table record. 182 */ 183 static void updateFromSelect( 184 Parse *pParse, /* Parse context */ 185 int iEph, /* Cursor for open eph. table */ 186 Index *pPk, /* PK if table 0 is WITHOUT ROWID */ 187 ExprList *pChanges, /* List of expressions to return */ 188 SrcList *pTabList, /* List of tables to select from */ 189 Expr *pWhere, /* WHERE clause for query */ 190 ExprList *pOrderBy, /* ORDER BY clause */ 191 Expr *pLimit /* LIMIT clause */ 192 ){ 193 int i; 194 SelectDest dest; 195 Select *pSelect = 0; 196 ExprList *pList = 0; 197 ExprList *pGrp = 0; 198 Expr *pLimit2 = 0; 199 ExprList *pOrderBy2 = 0; 200 sqlite3 *db = pParse->db; 201 Table *pTab = pTabList->a[0].pTab; 202 SrcList *pSrc; 203 Expr *pWhere2; 204 int eDest; 205 206 #ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT 207 if( pOrderBy && pLimit==0 ) { 208 sqlite3ErrorMsg(pParse, "ORDER BY without LIMIT on UPDATE"); 209 return; 210 } 211 pOrderBy2 = sqlite3ExprListDup(db, pOrderBy, 0); 212 pLimit2 = sqlite3ExprDup(db, pLimit, 0); 213 #else 214 UNUSED_PARAMETER(pOrderBy); 215 UNUSED_PARAMETER(pLimit); 216 #endif 217 218 pSrc = sqlite3SrcListDup(db, pTabList, 0); 219 pWhere2 = sqlite3ExprDup(db, pWhere, 0); 220 221 assert( pTabList->nSrc>1 ); 222 if( pSrc ){ 223 pSrc->a[0].iCursor = -1; 224 pSrc->a[0].pTab->nTabRef--; 225 pSrc->a[0].pTab = 0; 226 } 227 if( pPk ){ 228 for(i=0; i<pPk->nKeyCol; i++){ 229 Expr *pNew = exprRowColumn(pParse, pPk->aiColumn[i]); 230 #ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT 231 if( pLimit ){ 232 pGrp = sqlite3ExprListAppend(pParse, pGrp, sqlite3ExprDup(db, pNew, 0)); 233 } 234 #endif 235 pList = sqlite3ExprListAppend(pParse, pList, pNew); 236 } 237 eDest = IsVirtual(pTab) ? SRT_Table : SRT_Upfrom; 238 }else if( pTab->pSelect ){ 239 for(i=0; i<pTab->nCol; i++){ 240 pList = sqlite3ExprListAppend(pParse, pList, exprRowColumn(pParse, i)); 241 } 242 eDest = SRT_Table; 243 }else{ 244 eDest = IsVirtual(pTab) ? SRT_Table : SRT_Upfrom; 245 pList = sqlite3ExprListAppend(pParse, 0, sqlite3PExpr(pParse,TK_ROW,0,0)); 246 #ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT 247 if( pLimit ){ 248 pGrp = sqlite3ExprListAppend(pParse, 0, sqlite3PExpr(pParse,TK_ROW,0,0)); 249 } 250 #endif 251 } 252 if( ALWAYS(pChanges) ){ 253 for(i=0; i<pChanges->nExpr; i++){ 254 pList = sqlite3ExprListAppend(pParse, pList, 255 sqlite3ExprDup(db, pChanges->a[i].pExpr, 0) 256 ); 257 } 258 } 259 pSelect = sqlite3SelectNew(pParse, pList, 260 pSrc, pWhere2, pGrp, 0, pOrderBy2, SF_UpdateFrom|SF_IncludeHidden, pLimit2 261 ); 262 sqlite3SelectDestInit(&dest, eDest, iEph); 263 dest.iSDParm2 = (pPk ? pPk->nKeyCol : -1); 264 sqlite3Select(pParse, pSelect, &dest); 265 sqlite3SelectDelete(db, pSelect); 266 } 267 268 /* 269 ** Process an UPDATE statement. 270 ** 271 ** UPDATE OR IGNORE tbl SET a=b, c=d FROM tbl2... WHERE e<5 AND f NOT NULL; 272 ** \_______/ \_/ \______/ \_____/ \________________/ 273 ** onError | pChanges | pWhere 274 ** \_______________________/ 275 ** pTabList 276 */ 277 void sqlite3Update( 278 Parse *pParse, /* The parser context */ 279 SrcList *pTabList, /* The table in which we should change things */ 280 ExprList *pChanges, /* Things to be changed */ 281 Expr *pWhere, /* The WHERE clause. May be null */ 282 int onError, /* How to handle constraint errors */ 283 ExprList *pOrderBy, /* ORDER BY clause. May be null */ 284 Expr *pLimit, /* LIMIT clause. May be null */ 285 Upsert *pUpsert /* ON CONFLICT clause, or null */ 286 ){ 287 int i, j, k; /* Loop counters */ 288 Table *pTab; /* The table to be updated */ 289 int addrTop = 0; /* VDBE instruction address of the start of the loop */ 290 WhereInfo *pWInfo = 0; /* Information about the WHERE clause */ 291 Vdbe *v; /* The virtual database engine */ 292 Index *pIdx; /* For looping over indices */ 293 Index *pPk; /* The PRIMARY KEY index for WITHOUT ROWID tables */ 294 int nIdx; /* Number of indices that need updating */ 295 int nAllIdx; /* Total number of indexes */ 296 int iBaseCur; /* Base cursor number */ 297 int iDataCur; /* Cursor for the canonical data btree */ 298 int iIdxCur; /* Cursor for the first index */ 299 sqlite3 *db; /* The database structure */ 300 int *aRegIdx = 0; /* Registers for to each index and the main table */ 301 int *aXRef = 0; /* aXRef[i] is the index in pChanges->a[] of the 302 ** an expression for the i-th column of the table. 303 ** aXRef[i]==-1 if the i-th column is not changed. */ 304 u8 *aToOpen; /* 1 for tables and indices to be opened */ 305 u8 chngPk; /* PRIMARY KEY changed in a WITHOUT ROWID table */ 306 u8 chngRowid; /* Rowid changed in a normal table */ 307 u8 chngKey; /* Either chngPk or chngRowid */ 308 Expr *pRowidExpr = 0; /* Expression defining the new record number */ 309 int iRowidExpr = -1; /* Index of "rowid=" (or IPK) assignment in pChanges */ 310 AuthContext sContext; /* The authorization context */ 311 NameContext sNC; /* The name-context to resolve expressions in */ 312 int iDb; /* Database containing the table being updated */ 313 int eOnePass; /* ONEPASS_XXX value from where.c */ 314 int hasFK; /* True if foreign key processing is required */ 315 int labelBreak; /* Jump here to break out of UPDATE loop */ 316 int labelContinue; /* Jump here to continue next step of UPDATE loop */ 317 int flags; /* Flags for sqlite3WhereBegin() */ 318 319 #ifndef SQLITE_OMIT_TRIGGER 320 int isView; /* True when updating a view (INSTEAD OF trigger) */ 321 Trigger *pTrigger; /* List of triggers on pTab, if required */ 322 int tmask; /* Mask of TRIGGER_BEFORE|TRIGGER_AFTER */ 323 #endif 324 int newmask; /* Mask of NEW.* columns accessed by BEFORE triggers */ 325 int iEph = 0; /* Ephemeral table holding all primary key values */ 326 int nKey = 0; /* Number of elements in regKey for WITHOUT ROWID */ 327 int aiCurOnePass[2]; /* The write cursors opened by WHERE_ONEPASS */ 328 int addrOpen = 0; /* Address of OP_OpenEphemeral */ 329 int iPk = 0; /* First of nPk cells holding PRIMARY KEY value */ 330 i16 nPk = 0; /* Number of components of the PRIMARY KEY */ 331 int bReplace = 0; /* True if REPLACE conflict resolution might happen */ 332 int bFinishSeek = 1; /* The OP_FinishSeek opcode is needed */ 333 int nChangeFrom = 0; /* If there is a FROM, pChanges->nExpr, else 0 */ 334 335 /* Register Allocations */ 336 int regRowCount = 0; /* A count of rows changed */ 337 int regOldRowid = 0; /* The old rowid */ 338 int regNewRowid = 0; /* The new rowid */ 339 int regNew = 0; /* Content of the NEW.* table in triggers */ 340 int regOld = 0; /* Content of OLD.* table in triggers */ 341 int regRowSet = 0; /* Rowset of rows to be updated */ 342 int regKey = 0; /* composite PRIMARY KEY value */ 343 344 memset(&sContext, 0, sizeof(sContext)); 345 db = pParse->db; 346 if( pParse->nErr || db->mallocFailed ){ 347 goto update_cleanup; 348 } 349 350 /* Locate the table which we want to update. 351 */ 352 pTab = sqlite3SrcListLookup(pParse, pTabList); 353 if( pTab==0 ) goto update_cleanup; 354 iDb = sqlite3SchemaToIndex(pParse->db, pTab->pSchema); 355 356 /* Figure out if we have any triggers and if the table being 357 ** updated is a view. 358 */ 359 #ifndef SQLITE_OMIT_TRIGGER 360 pTrigger = sqlite3TriggersExist(pParse, pTab, TK_UPDATE, pChanges, &tmask); 361 isView = pTab->pSelect!=0; 362 assert( pTrigger || tmask==0 ); 363 #else 364 # define pTrigger 0 365 # define isView 0 366 # define tmask 0 367 #endif 368 #ifdef SQLITE_OMIT_VIEW 369 # undef isView 370 # define isView 0 371 #endif 372 373 /* If there was a FROM clause, set nChangeFrom to the number of expressions 374 ** in the change-list. Otherwise, set it to 0. There cannot be a FROM 375 ** clause if this function is being called to generate code for part of 376 ** an UPSERT statement. */ 377 nChangeFrom = (pTabList->nSrc>1) ? pChanges->nExpr : 0; 378 assert( nChangeFrom==0 || pUpsert==0 ); 379 380 #ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT 381 if( !isView && nChangeFrom==0 ){ 382 pWhere = sqlite3LimitWhere( 383 pParse, pTabList, pWhere, pOrderBy, pLimit, "UPDATE" 384 ); 385 pOrderBy = 0; 386 pLimit = 0; 387 } 388 #endif 389 390 if( sqlite3ViewGetColumnNames(pParse, pTab) ){ 391 goto update_cleanup; 392 } 393 if( sqlite3IsReadOnly(pParse, pTab, tmask) ){ 394 goto update_cleanup; 395 } 396 397 /* Allocate a cursors for the main database table and for all indices. 398 ** The index cursors might not be used, but if they are used they 399 ** need to occur right after the database cursor. So go ahead and 400 ** allocate enough space, just in case. 401 */ 402 iBaseCur = iDataCur = pParse->nTab++; 403 iIdxCur = iDataCur+1; 404 pPk = HasRowid(pTab) ? 0 : sqlite3PrimaryKeyIndex(pTab); 405 testcase( pPk!=0 && pPk!=pTab->pIndex ); 406 for(nIdx=0, pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext, nIdx++){ 407 if( pPk==pIdx ){ 408 iDataCur = pParse->nTab; 409 } 410 pParse->nTab++; 411 } 412 if( pUpsert ){ 413 /* On an UPSERT, reuse the same cursors already opened by INSERT */ 414 iDataCur = pUpsert->iDataCur; 415 iIdxCur = pUpsert->iIdxCur; 416 pParse->nTab = iBaseCur; 417 } 418 pTabList->a[0].iCursor = iDataCur; 419 420 /* Allocate space for aXRef[], aRegIdx[], and aToOpen[]. 421 ** Initialize aXRef[] and aToOpen[] to their default values. 422 */ 423 aXRef = sqlite3DbMallocRawNN(db, sizeof(int) * (pTab->nCol+nIdx+1) + nIdx+2 ); 424 if( aXRef==0 ) goto update_cleanup; 425 aRegIdx = aXRef+pTab->nCol; 426 aToOpen = (u8*)(aRegIdx+nIdx+1); 427 memset(aToOpen, 1, nIdx+1); 428 aToOpen[nIdx+1] = 0; 429 for(i=0; i<pTab->nCol; i++) aXRef[i] = -1; 430 431 /* Initialize the name-context */ 432 memset(&sNC, 0, sizeof(sNC)); 433 sNC.pParse = pParse; 434 sNC.pSrcList = pTabList; 435 sNC.uNC.pUpsert = pUpsert; 436 sNC.ncFlags = NC_UUpsert; 437 438 /* Begin generating code. */ 439 v = sqlite3GetVdbe(pParse); 440 if( v==0 ) goto update_cleanup; 441 442 /* Resolve the column names in all the expressions of the 443 ** of the UPDATE statement. Also find the column index 444 ** for each column to be updated in the pChanges array. For each 445 ** column to be updated, make sure we have authorization to change 446 ** that column. 447 */ 448 chngRowid = chngPk = 0; 449 for(i=0; i<pChanges->nExpr; i++){ 450 /* If this is an UPDATE with a FROM clause, do not resolve expressions 451 ** here. The call to sqlite3Select() below will do that. */ 452 if( nChangeFrom==0 && sqlite3ResolveExprNames(&sNC, pChanges->a[i].pExpr) ){ 453 goto update_cleanup; 454 } 455 for(j=0; j<pTab->nCol; j++){ 456 if( sqlite3StrICmp(pTab->aCol[j].zName, pChanges->a[i].zEName)==0 ){ 457 if( j==pTab->iPKey ){ 458 chngRowid = 1; 459 pRowidExpr = pChanges->a[i].pExpr; 460 iRowidExpr = i; 461 }else if( pPk && (pTab->aCol[j].colFlags & COLFLAG_PRIMKEY)!=0 ){ 462 chngPk = 1; 463 } 464 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 465 else if( pTab->aCol[j].colFlags & COLFLAG_GENERATED ){ 466 testcase( pTab->aCol[j].colFlags & COLFLAG_VIRTUAL ); 467 testcase( pTab->aCol[j].colFlags & COLFLAG_STORED ); 468 sqlite3ErrorMsg(pParse, 469 "cannot UPDATE generated column \"%s\"", 470 pTab->aCol[j].zName); 471 goto update_cleanup; 472 } 473 #endif 474 aXRef[j] = i; 475 break; 476 } 477 } 478 if( j>=pTab->nCol ){ 479 if( pPk==0 && sqlite3IsRowid(pChanges->a[i].zEName) ){ 480 j = -1; 481 chngRowid = 1; 482 pRowidExpr = pChanges->a[i].pExpr; 483 iRowidExpr = i; 484 }else{ 485 sqlite3ErrorMsg(pParse, "no such column: %s", pChanges->a[i].zEName); 486 pParse->checkSchema = 1; 487 goto update_cleanup; 488 } 489 } 490 #ifndef SQLITE_OMIT_AUTHORIZATION 491 { 492 int rc; 493 rc = sqlite3AuthCheck(pParse, SQLITE_UPDATE, pTab->zName, 494 j<0 ? "ROWID" : pTab->aCol[j].zName, 495 db->aDb[iDb].zDbSName); 496 if( rc==SQLITE_DENY ){ 497 goto update_cleanup; 498 }else if( rc==SQLITE_IGNORE ){ 499 aXRef[j] = -1; 500 } 501 } 502 #endif 503 } 504 assert( (chngRowid & chngPk)==0 ); 505 assert( chngRowid==0 || chngRowid==1 ); 506 assert( chngPk==0 || chngPk==1 ); 507 chngKey = chngRowid + chngPk; 508 509 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 510 /* Mark generated columns as changing if their generator expressions 511 ** reference any changing column. The actual aXRef[] value for 512 ** generated expressions is not used, other than to check to see that it 513 ** is non-negative, so the value of aXRef[] for generated columns can be 514 ** set to any non-negative number. We use 99999 so that the value is 515 ** obvious when looking at aXRef[] in a symbolic debugger. 516 */ 517 if( pTab->tabFlags & TF_HasGenerated ){ 518 int bProgress; 519 testcase( pTab->tabFlags & TF_HasVirtual ); 520 testcase( pTab->tabFlags & TF_HasStored ); 521 do{ 522 bProgress = 0; 523 for(i=0; i<pTab->nCol; i++){ 524 if( aXRef[i]>=0 ) continue; 525 if( (pTab->aCol[i].colFlags & COLFLAG_GENERATED)==0 ) continue; 526 if( sqlite3ExprReferencesUpdatedColumn(pTab->aCol[i].pDflt, 527 aXRef, chngRowid) ){ 528 aXRef[i] = 99999; 529 bProgress = 1; 530 } 531 } 532 }while( bProgress ); 533 } 534 #endif 535 536 /* The SET expressions are not actually used inside the WHERE loop. 537 ** So reset the colUsed mask. Unless this is a virtual table. In that 538 ** case, set all bits of the colUsed mask (to ensure that the virtual 539 ** table implementation makes all columns available). 540 */ 541 pTabList->a[0].colUsed = IsVirtual(pTab) ? ALLBITS : 0; 542 543 hasFK = sqlite3FkRequired(pParse, pTab, aXRef, chngKey); 544 545 /* There is one entry in the aRegIdx[] array for each index on the table 546 ** being updated. Fill in aRegIdx[] with a register number that will hold 547 ** the key for accessing each index. 548 */ 549 if( onError==OE_Replace ) bReplace = 1; 550 for(nAllIdx=0, pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext, nAllIdx++){ 551 int reg; 552 if( chngKey || hasFK>1 || pIdx==pPk 553 || indexWhereClauseMightChange(pIdx,aXRef,chngRowid) 554 ){ 555 reg = ++pParse->nMem; 556 pParse->nMem += pIdx->nColumn; 557 }else{ 558 reg = 0; 559 for(i=0; i<pIdx->nKeyCol; i++){ 560 if( indexColumnIsBeingUpdated(pIdx, i, aXRef, chngRowid) ){ 561 reg = ++pParse->nMem; 562 pParse->nMem += pIdx->nColumn; 563 if( onError==OE_Default && pIdx->onError==OE_Replace ){ 564 bReplace = 1; 565 } 566 break; 567 } 568 } 569 } 570 if( reg==0 ) aToOpen[nAllIdx+1] = 0; 571 aRegIdx[nAllIdx] = reg; 572 } 573 aRegIdx[nAllIdx] = ++pParse->nMem; /* Register storing the table record */ 574 if( bReplace ){ 575 /* If REPLACE conflict resolution might be invoked, open cursors on all 576 ** indexes in case they are needed to delete records. */ 577 memset(aToOpen, 1, nIdx+1); 578 } 579 580 if( pParse->nested==0 ) sqlite3VdbeCountChanges(v); 581 sqlite3BeginWriteOperation(pParse, pTrigger || hasFK, iDb); 582 583 /* Allocate required registers. */ 584 if( !IsVirtual(pTab) ){ 585 /* For now, regRowSet and aRegIdx[nAllIdx] share the same register. 586 ** If regRowSet turns out to be needed, then aRegIdx[nAllIdx] will be 587 ** reallocated. aRegIdx[nAllIdx] is the register in which the main 588 ** table record is written. regRowSet holds the RowSet for the 589 ** two-pass update algorithm. */ 590 assert( aRegIdx[nAllIdx]==pParse->nMem ); 591 regRowSet = aRegIdx[nAllIdx]; 592 regOldRowid = regNewRowid = ++pParse->nMem; 593 if( chngPk || pTrigger || hasFK ){ 594 regOld = pParse->nMem + 1; 595 pParse->nMem += pTab->nCol; 596 } 597 if( chngKey || pTrigger || hasFK ){ 598 regNewRowid = ++pParse->nMem; 599 } 600 regNew = pParse->nMem + 1; 601 pParse->nMem += pTab->nCol; 602 } 603 604 /* Start the view context. */ 605 if( isView ){ 606 sqlite3AuthContextPush(pParse, &sContext, pTab->zName); 607 } 608 609 /* If we are trying to update a view, realize that view into 610 ** an ephemeral table. 611 */ 612 #if !defined(SQLITE_OMIT_VIEW) && !defined(SQLITE_OMIT_TRIGGER) 613 if( nChangeFrom==0 && isView ){ 614 sqlite3MaterializeView(pParse, pTab, 615 pWhere, pOrderBy, pLimit, iDataCur 616 ); 617 pOrderBy = 0; 618 pLimit = 0; 619 } 620 #endif 621 622 /* Resolve the column names in all the expressions in the 623 ** WHERE clause. 624 */ 625 if( nChangeFrom==0 && sqlite3ResolveExprNames(&sNC, pWhere) ){ 626 goto update_cleanup; 627 } 628 629 #ifndef SQLITE_OMIT_VIRTUALTABLE 630 /* Virtual tables must be handled separately */ 631 if( IsVirtual(pTab) ){ 632 updateVirtualTable(pParse, pTabList, pTab, pChanges, pRowidExpr, aXRef, 633 pWhere, onError); 634 goto update_cleanup; 635 } 636 #endif 637 638 /* Jump to labelBreak to abandon further processing of this UPDATE */ 639 labelContinue = labelBreak = sqlite3VdbeMakeLabel(pParse); 640 641 /* Not an UPSERT. Normal processing. Begin by 642 ** initialize the count of updated rows */ 643 if( (db->flags&SQLITE_CountRows)!=0 644 && !pParse->pTriggerTab 645 && !pParse->nested 646 && pUpsert==0 647 ){ 648 regRowCount = ++pParse->nMem; 649 sqlite3VdbeAddOp2(v, OP_Integer, 0, regRowCount); 650 } 651 652 if( nChangeFrom==0 && HasRowid(pTab) ){ 653 sqlite3VdbeAddOp3(v, OP_Null, 0, regRowSet, regOldRowid); 654 iEph = pParse->nTab++; 655 addrOpen = sqlite3VdbeAddOp3(v, OP_OpenEphemeral, iEph, 0, regRowSet); 656 }else{ 657 assert( pPk!=0 || HasRowid(pTab) ); 658 nPk = pPk ? pPk->nKeyCol : 0; 659 iPk = pParse->nMem+1; 660 pParse->nMem += nPk; 661 pParse->nMem += nChangeFrom; 662 regKey = ++pParse->nMem; 663 if( pUpsert==0 ){ 664 int nEphCol = nPk + nChangeFrom + (isView ? pTab->nCol : 0); 665 iEph = pParse->nTab++; 666 if( pPk ) sqlite3VdbeAddOp3(v, OP_Null, 0, iPk, iPk+nPk-1); 667 addrOpen = sqlite3VdbeAddOp2(v, OP_OpenEphemeral, iEph, nEphCol); 668 if( pPk ){ 669 KeyInfo *pKeyInfo = sqlite3KeyInfoOfIndex(pParse, pPk); 670 if( pKeyInfo ){ 671 pKeyInfo->nAllField = nEphCol; 672 sqlite3VdbeAppendP4(v, pKeyInfo, P4_KEYINFO); 673 } 674 } 675 if( nChangeFrom ){ 676 updateFromSelect( 677 pParse, iEph, pPk, pChanges, pTabList, pWhere, pOrderBy, pLimit 678 ); 679 #ifndef SQLITE_OMIT_SUBQUERY 680 if( isView ) iDataCur = iEph; 681 #endif 682 } 683 } 684 } 685 686 if( nChangeFrom ){ 687 sqlite3MultiWrite(pParse); 688 eOnePass = ONEPASS_OFF; 689 nKey = nPk; 690 regKey = iPk; 691 }else{ 692 if( pUpsert ){ 693 /* If this is an UPSERT, then all cursors have already been opened by 694 ** the outer INSERT and the data cursor should be pointing at the row 695 ** that is to be updated. So bypass the code that searches for the 696 ** row(s) to be updated. 697 */ 698 pWInfo = 0; 699 eOnePass = ONEPASS_SINGLE; 700 sqlite3ExprIfFalse(pParse, pWhere, labelBreak, SQLITE_JUMPIFNULL); 701 bFinishSeek = 0; 702 }else{ 703 /* Begin the database scan. 704 ** 705 ** Do not consider a single-pass strategy for a multi-row update if 706 ** there are any triggers or foreign keys to process, or rows may 707 ** be deleted as a result of REPLACE conflict handling. Any of these 708 ** things might disturb a cursor being used to scan through the table 709 ** or index, causing a single-pass approach to malfunction. */ 710 flags = WHERE_ONEPASS_DESIRED; 711 if( !pParse->nested && !pTrigger && !hasFK && !chngKey && !bReplace ){ 712 flags |= WHERE_ONEPASS_MULTIROW; 713 } 714 pWInfo = sqlite3WhereBegin(pParse, pTabList, pWhere, 0, 0, flags,iIdxCur); 715 if( pWInfo==0 ) goto update_cleanup; 716 717 /* A one-pass strategy that might update more than one row may not 718 ** be used if any column of the index used for the scan is being 719 ** updated. Otherwise, if there is an index on "b", statements like 720 ** the following could create an infinite loop: 721 ** 722 ** UPDATE t1 SET b=b+1 WHERE b>? 723 ** 724 ** Fall back to ONEPASS_OFF if where.c has selected a ONEPASS_MULTI 725 ** strategy that uses an index for which one or more columns are being 726 ** updated. */ 727 eOnePass = sqlite3WhereOkOnePass(pWInfo, aiCurOnePass); 728 bFinishSeek = sqlite3WhereUsesDeferredSeek(pWInfo); 729 if( eOnePass!=ONEPASS_SINGLE ){ 730 sqlite3MultiWrite(pParse); 731 if( eOnePass==ONEPASS_MULTI ){ 732 int iCur = aiCurOnePass[1]; 733 if( iCur>=0 && iCur!=iDataCur && aToOpen[iCur-iBaseCur] ){ 734 eOnePass = ONEPASS_OFF; 735 } 736 assert( iCur!=iDataCur || !HasRowid(pTab) ); 737 } 738 } 739 } 740 741 if( HasRowid(pTab) ){ 742 /* Read the rowid of the current row of the WHERE scan. In ONEPASS_OFF 743 ** mode, write the rowid into the FIFO. In either of the one-pass modes, 744 ** leave it in register regOldRowid. */ 745 sqlite3VdbeAddOp2(v, OP_Rowid, iDataCur, regOldRowid); 746 if( eOnePass==ONEPASS_OFF ){ 747 aRegIdx[nAllIdx] = ++pParse->nMem; 748 sqlite3VdbeAddOp3(v, OP_Insert, iEph, regRowSet, regOldRowid); 749 }else{ 750 if( ALWAYS(addrOpen) ) sqlite3VdbeChangeToNoop(v, addrOpen); 751 } 752 }else{ 753 /* Read the PK of the current row into an array of registers. In 754 ** ONEPASS_OFF mode, serialize the array into a record and store it in 755 ** the ephemeral table. Or, in ONEPASS_SINGLE or MULTI mode, change 756 ** the OP_OpenEphemeral instruction to a Noop (the ephemeral table 757 ** is not required) and leave the PK fields in the array of registers. */ 758 for(i=0; i<nPk; i++){ 759 assert( pPk->aiColumn[i]>=0 ); 760 sqlite3ExprCodeGetColumnOfTable(v, pTab, iDataCur, 761 pPk->aiColumn[i], iPk+i); 762 } 763 if( eOnePass ){ 764 if( addrOpen ) sqlite3VdbeChangeToNoop(v, addrOpen); 765 nKey = nPk; 766 regKey = iPk; 767 }else{ 768 sqlite3VdbeAddOp4(v, OP_MakeRecord, iPk, nPk, regKey, 769 sqlite3IndexAffinityStr(db, pPk), nPk); 770 sqlite3VdbeAddOp4Int(v, OP_IdxInsert, iEph, regKey, iPk, nPk); 771 } 772 } 773 } 774 775 if( pUpsert==0 ){ 776 if( nChangeFrom==0 && eOnePass!=ONEPASS_MULTI ){ 777 sqlite3WhereEnd(pWInfo); 778 } 779 780 if( !isView ){ 781 int addrOnce = 0; 782 783 /* Open every index that needs updating. */ 784 if( eOnePass!=ONEPASS_OFF ){ 785 if( aiCurOnePass[0]>=0 ) aToOpen[aiCurOnePass[0]-iBaseCur] = 0; 786 if( aiCurOnePass[1]>=0 ) aToOpen[aiCurOnePass[1]-iBaseCur] = 0; 787 } 788 789 if( eOnePass==ONEPASS_MULTI && (nIdx-(aiCurOnePass[1]>=0))>0 ){ 790 addrOnce = sqlite3VdbeAddOp0(v, OP_Once); VdbeCoverage(v); 791 } 792 sqlite3OpenTableAndIndices(pParse, pTab, OP_OpenWrite, 0, iBaseCur, 793 aToOpen, 0, 0); 794 if( addrOnce ){ 795 sqlite3VdbeJumpHereOrPopInst(v, addrOnce); 796 } 797 } 798 799 /* Top of the update loop */ 800 if( eOnePass!=ONEPASS_OFF ){ 801 if( !isView && aiCurOnePass[0]!=iDataCur && aiCurOnePass[1]!=iDataCur ){ 802 assert( pPk ); 803 sqlite3VdbeAddOp4Int(v, OP_NotFound, iDataCur, labelBreak, regKey,nKey); 804 VdbeCoverage(v); 805 } 806 if( eOnePass!=ONEPASS_SINGLE ){ 807 labelContinue = sqlite3VdbeMakeLabel(pParse); 808 } 809 sqlite3VdbeAddOp2(v, OP_IsNull, pPk ? regKey : regOldRowid, labelBreak); 810 VdbeCoverageIf(v, pPk==0); 811 VdbeCoverageIf(v, pPk!=0); 812 }else if( pPk || nChangeFrom ){ 813 labelContinue = sqlite3VdbeMakeLabel(pParse); 814 sqlite3VdbeAddOp2(v, OP_Rewind, iEph, labelBreak); VdbeCoverage(v); 815 addrTop = sqlite3VdbeCurrentAddr(v); 816 if( nChangeFrom ){ 817 if( !isView ){ 818 if( pPk ){ 819 for(i=0; i<nPk; i++){ 820 sqlite3VdbeAddOp3(v, OP_Column, iEph, i, iPk+i); 821 } 822 sqlite3VdbeAddOp4Int( 823 v, OP_NotFound, iDataCur, labelContinue, iPk, nPk 824 ); VdbeCoverage(v); 825 }else{ 826 sqlite3VdbeAddOp2(v, OP_Rowid, iEph, regOldRowid); 827 sqlite3VdbeAddOp3( 828 v, OP_NotExists, iDataCur, labelContinue, regOldRowid 829 ); VdbeCoverage(v); 830 } 831 } 832 }else{ 833 sqlite3VdbeAddOp2(v, OP_RowData, iEph, regKey); 834 sqlite3VdbeAddOp4Int(v, OP_NotFound, iDataCur, labelContinue, regKey,0); 835 VdbeCoverage(v); 836 } 837 }else{ 838 sqlite3VdbeAddOp2(v, OP_Rewind, iEph, labelBreak); VdbeCoverage(v); 839 labelContinue = sqlite3VdbeMakeLabel(pParse); 840 addrTop = sqlite3VdbeAddOp2(v, OP_Rowid, iEph, regOldRowid); 841 VdbeCoverage(v); 842 sqlite3VdbeAddOp3(v, OP_NotExists, iDataCur, labelContinue, regOldRowid); 843 VdbeCoverage(v); 844 } 845 } 846 847 /* If the rowid value will change, set register regNewRowid to 848 ** contain the new value. If the rowid is not being modified, 849 ** then regNewRowid is the same register as regOldRowid, which is 850 ** already populated. */ 851 assert( chngKey || pTrigger || hasFK || regOldRowid==regNewRowid ); 852 if( chngRowid ){ 853 assert( iRowidExpr>=0 ); 854 if( nChangeFrom==0 ){ 855 sqlite3ExprCode(pParse, pRowidExpr, regNewRowid); 856 }else{ 857 sqlite3VdbeAddOp3(v, OP_Column, iEph, iRowidExpr, regNewRowid); 858 } 859 sqlite3VdbeAddOp1(v, OP_MustBeInt, regNewRowid); VdbeCoverage(v); 860 } 861 862 /* Compute the old pre-UPDATE content of the row being changed, if that 863 ** information is needed */ 864 if( chngPk || hasFK || pTrigger ){ 865 u32 oldmask = (hasFK ? sqlite3FkOldmask(pParse, pTab) : 0); 866 oldmask |= sqlite3TriggerColmask(pParse, 867 pTrigger, pChanges, 0, TRIGGER_BEFORE|TRIGGER_AFTER, pTab, onError 868 ); 869 for(i=0; i<pTab->nCol; i++){ 870 u32 colFlags = pTab->aCol[i].colFlags; 871 k = sqlite3TableColumnToStorage(pTab, i) + regOld; 872 if( oldmask==0xffffffff 873 || (i<32 && (oldmask & MASKBIT32(i))!=0) 874 || (colFlags & COLFLAG_PRIMKEY)!=0 875 ){ 876 testcase( oldmask!=0xffffffff && i==31 ); 877 sqlite3ExprCodeGetColumnOfTable(v, pTab, iDataCur, i, k); 878 }else{ 879 sqlite3VdbeAddOp2(v, OP_Null, 0, k); 880 } 881 } 882 if( chngRowid==0 && pPk==0 ){ 883 sqlite3VdbeAddOp2(v, OP_Copy, regOldRowid, regNewRowid); 884 } 885 } 886 887 /* Populate the array of registers beginning at regNew with the new 888 ** row data. This array is used to check constants, create the new 889 ** table and index records, and as the values for any new.* references 890 ** made by triggers. 891 ** 892 ** If there are one or more BEFORE triggers, then do not populate the 893 ** registers associated with columns that are (a) not modified by 894 ** this UPDATE statement and (b) not accessed by new.* references. The 895 ** values for registers not modified by the UPDATE must be reloaded from 896 ** the database after the BEFORE triggers are fired anyway (as the trigger 897 ** may have modified them). So not loading those that are not going to 898 ** be used eliminates some redundant opcodes. 899 */ 900 newmask = sqlite3TriggerColmask( 901 pParse, pTrigger, pChanges, 1, TRIGGER_BEFORE, pTab, onError 902 ); 903 for(i=0, k=regNew; i<pTab->nCol; i++, k++){ 904 if( i==pTab->iPKey ){ 905 sqlite3VdbeAddOp2(v, OP_Null, 0, k); 906 }else if( (pTab->aCol[i].colFlags & COLFLAG_GENERATED)!=0 ){ 907 if( pTab->aCol[i].colFlags & COLFLAG_VIRTUAL ) k--; 908 }else{ 909 j = aXRef[i]; 910 if( j>=0 ){ 911 if( nChangeFrom ){ 912 int nOff = (isView ? pTab->nCol : nPk); 913 assert( eOnePass==ONEPASS_OFF ); 914 sqlite3VdbeAddOp3(v, OP_Column, iEph, nOff+j, k); 915 }else{ 916 sqlite3ExprCode(pParse, pChanges->a[j].pExpr, k); 917 } 918 }else if( 0==(tmask&TRIGGER_BEFORE) || i>31 || (newmask & MASKBIT32(i)) ){ 919 /* This branch loads the value of a column that will not be changed 920 ** into a register. This is done if there are no BEFORE triggers, or 921 ** if there are one or more BEFORE triggers that use this value via 922 ** a new.* reference in a trigger program. 923 */ 924 testcase( i==31 ); 925 testcase( i==32 ); 926 sqlite3ExprCodeGetColumnOfTable(v, pTab, iDataCur, i, k); 927 bFinishSeek = 0; 928 }else{ 929 sqlite3VdbeAddOp2(v, OP_Null, 0, k); 930 } 931 } 932 } 933 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 934 if( pTab->tabFlags & TF_HasGenerated ){ 935 testcase( pTab->tabFlags & TF_HasVirtual ); 936 testcase( pTab->tabFlags & TF_HasStored ); 937 sqlite3ComputeGeneratedColumns(pParse, regNew, pTab); 938 } 939 #endif 940 941 /* Fire any BEFORE UPDATE triggers. This happens before constraints are 942 ** verified. One could argue that this is wrong. 943 */ 944 if( tmask&TRIGGER_BEFORE ){ 945 sqlite3TableAffinity(v, pTab, regNew); 946 sqlite3CodeRowTrigger(pParse, pTrigger, TK_UPDATE, pChanges, 947 TRIGGER_BEFORE, pTab, regOldRowid, onError, labelContinue); 948 949 if( !isView ){ 950 /* The row-trigger may have deleted the row being updated. In this 951 ** case, jump to the next row. No updates or AFTER triggers are 952 ** required. This behavior - what happens when the row being updated 953 ** is deleted or renamed by a BEFORE trigger - is left undefined in the 954 ** documentation. 955 */ 956 if( pPk ){ 957 sqlite3VdbeAddOp4Int(v, OP_NotFound,iDataCur,labelContinue,regKey,nKey); 958 VdbeCoverage(v); 959 }else{ 960 sqlite3VdbeAddOp3(v, OP_NotExists, iDataCur, labelContinue,regOldRowid); 961 VdbeCoverage(v); 962 } 963 964 /* After-BEFORE-trigger-reload-loop: 965 ** If it did not delete it, the BEFORE trigger may still have modified 966 ** some of the columns of the row being updated. Load the values for 967 ** all columns not modified by the update statement into their registers 968 ** in case this has happened. Only unmodified columns are reloaded. 969 ** The values computed for modified columns use the values before the 970 ** BEFORE trigger runs. See test case trigger1-18.0 (added 2018-04-26) 971 ** for an example. 972 */ 973 for(i=0, k=regNew; i<pTab->nCol; i++, k++){ 974 if( pTab->aCol[i].colFlags & COLFLAG_GENERATED ){ 975 if( pTab->aCol[i].colFlags & COLFLAG_VIRTUAL ) k--; 976 }else if( aXRef[i]<0 && i!=pTab->iPKey ){ 977 sqlite3ExprCodeGetColumnOfTable(v, pTab, iDataCur, i, k); 978 } 979 } 980 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 981 if( pTab->tabFlags & TF_HasGenerated ){ 982 testcase( pTab->tabFlags & TF_HasVirtual ); 983 testcase( pTab->tabFlags & TF_HasStored ); 984 sqlite3ComputeGeneratedColumns(pParse, regNew, pTab); 985 } 986 #endif 987 } 988 } 989 990 if( !isView ){ 991 /* Do constraint checks. */ 992 assert( regOldRowid>0 ); 993 sqlite3GenerateConstraintChecks(pParse, pTab, aRegIdx, iDataCur, iIdxCur, 994 regNewRowid, regOldRowid, chngKey, onError, labelContinue, &bReplace, 995 aXRef, 0); 996 997 /* If REPLACE conflict handling may have been used, or if the PK of the 998 ** row is changing, then the GenerateConstraintChecks() above may have 999 ** moved cursor iDataCur. Reseek it. */ 1000 if( bReplace || chngKey ){ 1001 if( pPk ){ 1002 sqlite3VdbeAddOp4Int(v, OP_NotFound,iDataCur,labelContinue,regKey,nKey); 1003 }else{ 1004 sqlite3VdbeAddOp3(v, OP_NotExists, iDataCur, labelContinue,regOldRowid); 1005 } 1006 VdbeCoverageNeverTaken(v); 1007 } 1008 1009 /* Do FK constraint checks. */ 1010 if( hasFK ){ 1011 sqlite3FkCheck(pParse, pTab, regOldRowid, 0, aXRef, chngKey); 1012 } 1013 1014 /* Delete the index entries associated with the current record. */ 1015 sqlite3GenerateRowIndexDelete(pParse, pTab, iDataCur, iIdxCur, aRegIdx, -1); 1016 1017 /* We must run the OP_FinishSeek opcode to resolve a prior 1018 ** OP_DeferredSeek if there is any possibility that there have been 1019 ** no OP_Column opcodes since the OP_DeferredSeek was issued. But 1020 ** we want to avoid the OP_FinishSeek if possible, as running it 1021 ** costs CPU cycles. */ 1022 if( bFinishSeek ){ 1023 sqlite3VdbeAddOp1(v, OP_FinishSeek, iDataCur); 1024 } 1025 1026 /* If changing the rowid value, or if there are foreign key constraints 1027 ** to process, delete the old record. Otherwise, add a noop OP_Delete 1028 ** to invoke the pre-update hook. 1029 ** 1030 ** That (regNew==regnewRowid+1) is true is also important for the 1031 ** pre-update hook. If the caller invokes preupdate_new(), the returned 1032 ** value is copied from memory cell (regNewRowid+1+iCol), where iCol 1033 ** is the column index supplied by the user. 1034 */ 1035 assert( regNew==regNewRowid+1 ); 1036 #ifdef SQLITE_ENABLE_PREUPDATE_HOOK 1037 sqlite3VdbeAddOp3(v, OP_Delete, iDataCur, 1038 OPFLAG_ISUPDATE | ((hasFK>1 || chngKey) ? 0 : OPFLAG_ISNOOP), 1039 regNewRowid 1040 ); 1041 if( eOnePass==ONEPASS_MULTI ){ 1042 assert( hasFK==0 && chngKey==0 ); 1043 sqlite3VdbeChangeP5(v, OPFLAG_SAVEPOSITION); 1044 } 1045 if( !pParse->nested ){ 1046 sqlite3VdbeAppendP4(v, pTab, P4_TABLE); 1047 } 1048 #else 1049 if( hasFK>1 || chngKey ){ 1050 sqlite3VdbeAddOp2(v, OP_Delete, iDataCur, 0); 1051 } 1052 #endif 1053 1054 if( hasFK ){ 1055 sqlite3FkCheck(pParse, pTab, 0, regNewRowid, aXRef, chngKey); 1056 } 1057 1058 /* Insert the new index entries and the new record. */ 1059 sqlite3CompleteInsertion( 1060 pParse, pTab, iDataCur, iIdxCur, regNewRowid, aRegIdx, 1061 OPFLAG_ISUPDATE | (eOnePass==ONEPASS_MULTI ? OPFLAG_SAVEPOSITION : 0), 1062 0, 0 1063 ); 1064 1065 /* Do any ON CASCADE, SET NULL or SET DEFAULT operations required to 1066 ** handle rows (possibly in other tables) that refer via a foreign key 1067 ** to the row just updated. */ 1068 if( hasFK ){ 1069 sqlite3FkActions(pParse, pTab, pChanges, regOldRowid, aXRef, chngKey); 1070 } 1071 } 1072 1073 /* Increment the row counter 1074 */ 1075 if( regRowCount ){ 1076 sqlite3VdbeAddOp2(v, OP_AddImm, regRowCount, 1); 1077 } 1078 1079 sqlite3CodeRowTrigger(pParse, pTrigger, TK_UPDATE, pChanges, 1080 TRIGGER_AFTER, pTab, regOldRowid, onError, labelContinue); 1081 1082 /* Repeat the above with the next record to be updated, until 1083 ** all record selected by the WHERE clause have been updated. 1084 */ 1085 if( eOnePass==ONEPASS_SINGLE ){ 1086 /* Nothing to do at end-of-loop for a single-pass */ 1087 }else if( eOnePass==ONEPASS_MULTI ){ 1088 sqlite3VdbeResolveLabel(v, labelContinue); 1089 sqlite3WhereEnd(pWInfo); 1090 }else{ 1091 sqlite3VdbeResolveLabel(v, labelContinue); 1092 sqlite3VdbeAddOp2(v, OP_Next, iEph, addrTop); VdbeCoverage(v); 1093 } 1094 sqlite3VdbeResolveLabel(v, labelBreak); 1095 1096 /* Update the sqlite_sequence table by storing the content of the 1097 ** maximum rowid counter values recorded while inserting into 1098 ** autoincrement tables. 1099 */ 1100 if( pParse->nested==0 && pParse->pTriggerTab==0 && pUpsert==0 ){ 1101 sqlite3AutoincrementEnd(pParse); 1102 } 1103 1104 /* 1105 ** Return the number of rows that were changed, if we are tracking 1106 ** that information. 1107 */ 1108 if( regRowCount ){ 1109 sqlite3VdbeAddOp2(v, OP_ResultRow, regRowCount, 1); 1110 sqlite3VdbeSetNumCols(v, 1); 1111 sqlite3VdbeSetColName(v, 0, COLNAME_NAME, "rows updated", SQLITE_STATIC); 1112 } 1113 1114 update_cleanup: 1115 sqlite3AuthContextPop(&sContext); 1116 sqlite3DbFree(db, aXRef); /* Also frees aRegIdx[] and aToOpen[] */ 1117 sqlite3SrcListDelete(db, pTabList); 1118 sqlite3ExprListDelete(db, pChanges); 1119 sqlite3ExprDelete(db, pWhere); 1120 #if defined(SQLITE_ENABLE_UPDATE_DELETE_LIMIT) 1121 sqlite3ExprListDelete(db, pOrderBy); 1122 sqlite3ExprDelete(db, pLimit); 1123 #endif 1124 return; 1125 } 1126 /* Make sure "isView" and other macros defined above are undefined. Otherwise 1127 ** they may interfere with compilation of other functions in this file 1128 ** (or in another file, if this file becomes part of the amalgamation). */ 1129 #ifdef isView 1130 #undef isView 1131 #endif 1132 #ifdef pTrigger 1133 #undef pTrigger 1134 #endif 1135 1136 #ifndef SQLITE_OMIT_VIRTUALTABLE 1137 /* 1138 ** Generate code for an UPDATE of a virtual table. 1139 ** 1140 ** There are two possible strategies - the default and the special 1141 ** "onepass" strategy. Onepass is only used if the virtual table 1142 ** implementation indicates that pWhere may match at most one row. 1143 ** 1144 ** The default strategy is to create an ephemeral table that contains 1145 ** for each row to be changed: 1146 ** 1147 ** (A) The original rowid of that row. 1148 ** (B) The revised rowid for the row. 1149 ** (C) The content of every column in the row. 1150 ** 1151 ** Then loop through the contents of this ephemeral table executing a 1152 ** VUpdate for each row. When finished, drop the ephemeral table. 1153 ** 1154 ** The "onepass" strategy does not use an ephemeral table. Instead, it 1155 ** stores the same values (A, B and C above) in a register array and 1156 ** makes a single invocation of VUpdate. 1157 */ 1158 static void updateVirtualTable( 1159 Parse *pParse, /* The parsing context */ 1160 SrcList *pSrc, /* The virtual table to be modified */ 1161 Table *pTab, /* The virtual table */ 1162 ExprList *pChanges, /* The columns to change in the UPDATE statement */ 1163 Expr *pRowid, /* Expression used to recompute the rowid */ 1164 int *aXRef, /* Mapping from columns of pTab to entries in pChanges */ 1165 Expr *pWhere, /* WHERE clause of the UPDATE statement */ 1166 int onError /* ON CONFLICT strategy */ 1167 ){ 1168 Vdbe *v = pParse->pVdbe; /* Virtual machine under construction */ 1169 int ephemTab; /* Table holding the result of the SELECT */ 1170 int i; /* Loop counter */ 1171 sqlite3 *db = pParse->db; /* Database connection */ 1172 const char *pVTab = (const char*)sqlite3GetVTable(db, pTab); 1173 WhereInfo *pWInfo = 0; 1174 int nArg = 2 + pTab->nCol; /* Number of arguments to VUpdate */ 1175 int regArg; /* First register in VUpdate arg array */ 1176 int regRec; /* Register in which to assemble record */ 1177 int regRowid; /* Register for ephem table rowid */ 1178 int iCsr = pSrc->a[0].iCursor; /* Cursor used for virtual table scan */ 1179 int aDummy[2]; /* Unused arg for sqlite3WhereOkOnePass() */ 1180 int eOnePass; /* True to use onepass strategy */ 1181 int addr; /* Address of OP_OpenEphemeral */ 1182 1183 /* Allocate nArg registers in which to gather the arguments for VUpdate. Then 1184 ** create and open the ephemeral table in which the records created from 1185 ** these arguments will be temporarily stored. */ 1186 assert( v ); 1187 ephemTab = pParse->nTab++; 1188 addr= sqlite3VdbeAddOp2(v, OP_OpenEphemeral, ephemTab, nArg); 1189 regArg = pParse->nMem + 1; 1190 pParse->nMem += nArg; 1191 if( pSrc->nSrc>1 ){ 1192 Index *pPk = 0; 1193 Expr *pRow; 1194 ExprList *pList; 1195 if( HasRowid(pTab) ){ 1196 if( pRowid ){ 1197 pRow = sqlite3ExprDup(db, pRowid, 0); 1198 }else{ 1199 pRow = sqlite3PExpr(pParse, TK_ROW, 0, 0); 1200 } 1201 }else{ 1202 i16 iPk; /* PRIMARY KEY column */ 1203 pPk = sqlite3PrimaryKeyIndex(pTab); 1204 assert( pPk!=0 ); 1205 assert( pPk->nKeyCol==1 ); 1206 iPk = pPk->aiColumn[0]; 1207 if( aXRef[iPk]>=0 ){ 1208 pRow = sqlite3ExprDup(db, pChanges->a[aXRef[iPk]].pExpr, 0); 1209 }else{ 1210 pRow = exprRowColumn(pParse, iPk); 1211 } 1212 } 1213 pList = sqlite3ExprListAppend(pParse, 0, pRow); 1214 1215 for(i=0; i<pTab->nCol; i++){ 1216 if( aXRef[i]>=0 ){ 1217 pList = sqlite3ExprListAppend(pParse, pList, 1218 sqlite3ExprDup(db, pChanges->a[aXRef[i]].pExpr, 0) 1219 ); 1220 }else{ 1221 pList = sqlite3ExprListAppend(pParse, pList, exprRowColumn(pParse, i)); 1222 } 1223 } 1224 1225 updateFromSelect(pParse, ephemTab, pPk, pList, pSrc, pWhere, 0, 0); 1226 sqlite3ExprListDelete(db, pList); 1227 eOnePass = ONEPASS_OFF; 1228 }else{ 1229 regRec = ++pParse->nMem; 1230 regRowid = ++pParse->nMem; 1231 1232 /* Start scanning the virtual table */ 1233 pWInfo = sqlite3WhereBegin(pParse, pSrc,pWhere,0,0,WHERE_ONEPASS_DESIRED,0); 1234 if( pWInfo==0 ) return; 1235 1236 /* Populate the argument registers. */ 1237 for(i=0; i<pTab->nCol; i++){ 1238 assert( (pTab->aCol[i].colFlags & COLFLAG_GENERATED)==0 ); 1239 if( aXRef[i]>=0 ){ 1240 sqlite3ExprCode(pParse, pChanges->a[aXRef[i]].pExpr, regArg+2+i); 1241 }else{ 1242 sqlite3VdbeAddOp3(v, OP_VColumn, iCsr, i, regArg+2+i); 1243 sqlite3VdbeChangeP5(v, OPFLAG_NOCHNG);/* For sqlite3_vtab_nochange() */ 1244 } 1245 } 1246 if( HasRowid(pTab) ){ 1247 sqlite3VdbeAddOp2(v, OP_Rowid, iCsr, regArg); 1248 if( pRowid ){ 1249 sqlite3ExprCode(pParse, pRowid, regArg+1); 1250 }else{ 1251 sqlite3VdbeAddOp2(v, OP_Rowid, iCsr, regArg+1); 1252 } 1253 }else{ 1254 Index *pPk; /* PRIMARY KEY index */ 1255 i16 iPk; /* PRIMARY KEY column */ 1256 pPk = sqlite3PrimaryKeyIndex(pTab); 1257 assert( pPk!=0 ); 1258 assert( pPk->nKeyCol==1 ); 1259 iPk = pPk->aiColumn[0]; 1260 sqlite3VdbeAddOp3(v, OP_VColumn, iCsr, iPk, regArg); 1261 sqlite3VdbeAddOp2(v, OP_SCopy, regArg+2+iPk, regArg+1); 1262 } 1263 1264 eOnePass = sqlite3WhereOkOnePass(pWInfo, aDummy); 1265 1266 /* There is no ONEPASS_MULTI on virtual tables */ 1267 assert( eOnePass==ONEPASS_OFF || eOnePass==ONEPASS_SINGLE ); 1268 1269 if( eOnePass ){ 1270 /* If using the onepass strategy, no-op out the OP_OpenEphemeral coded 1271 ** above. */ 1272 sqlite3VdbeChangeToNoop(v, addr); 1273 sqlite3VdbeAddOp1(v, OP_Close, iCsr); 1274 }else{ 1275 /* Create a record from the argument register contents and insert it into 1276 ** the ephemeral table. */ 1277 sqlite3MultiWrite(pParse); 1278 sqlite3VdbeAddOp3(v, OP_MakeRecord, regArg, nArg, regRec); 1279 #if defined(SQLITE_DEBUG) && !defined(SQLITE_ENABLE_NULL_TRIM) 1280 /* Signal an assert() within OP_MakeRecord that it is allowed to 1281 ** accept no-change records with serial_type 10 */ 1282 sqlite3VdbeChangeP5(v, OPFLAG_NOCHNG_MAGIC); 1283 #endif 1284 sqlite3VdbeAddOp2(v, OP_NewRowid, ephemTab, regRowid); 1285 sqlite3VdbeAddOp3(v, OP_Insert, ephemTab, regRec, regRowid); 1286 } 1287 } 1288 1289 1290 if( eOnePass==ONEPASS_OFF ){ 1291 /* End the virtual table scan */ 1292 if( pSrc->nSrc==1 ){ 1293 sqlite3WhereEnd(pWInfo); 1294 } 1295 1296 /* Begin scannning through the ephemeral table. */ 1297 addr = sqlite3VdbeAddOp1(v, OP_Rewind, ephemTab); VdbeCoverage(v); 1298 1299 /* Extract arguments from the current row of the ephemeral table and 1300 ** invoke the VUpdate method. */ 1301 for(i=0; i<nArg; i++){ 1302 sqlite3VdbeAddOp3(v, OP_Column, ephemTab, i, regArg+i); 1303 } 1304 } 1305 sqlite3VtabMakeWritable(pParse, pTab); 1306 sqlite3VdbeAddOp4(v, OP_VUpdate, 0, nArg, regArg, pVTab, P4_VTAB); 1307 sqlite3VdbeChangeP5(v, onError==OE_Default ? OE_Abort : onError); 1308 sqlite3MayAbort(pParse); 1309 1310 /* End of the ephemeral table scan. Or, if using the onepass strategy, 1311 ** jump to here if the scan visited zero rows. */ 1312 if( eOnePass==ONEPASS_OFF ){ 1313 sqlite3VdbeAddOp2(v, OP_Next, ephemTab, addr+1); VdbeCoverage(v); 1314 sqlite3VdbeJumpHere(v, addr); 1315 sqlite3VdbeAddOp2(v, OP_Close, ephemTab, 0); 1316 }else{ 1317 sqlite3WhereEnd(pWInfo); 1318 } 1319 } 1320 #endif /* SQLITE_OMIT_VIRTUALTABLE */ 1321