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dan1da40a32009-09-19 17:00:31 +00001/*
2**
3** The author disclaims copyright to this source code. In place of
4** a legal notice, here is a blessing:
5**
6** May you do good and not evil.
7** May you find forgiveness for yourself and forgive others.
8** May you share freely, never taking more than you give.
9**
10*************************************************************************
11** This file contains code used by the compiler to add foreign key
12** support to compiled SQL statements.
13*/
14#include "sqliteInt.h"
15
16#ifndef SQLITE_OMIT_FOREIGN_KEY
dan75cbd982009-09-21 16:06:03 +000017#ifndef SQLITE_OMIT_TRIGGER
dan1da40a32009-09-19 17:00:31 +000018
19/*
20** Deferred and Immediate FKs
21** --------------------------
22**
23** Foreign keys in SQLite come in two flavours: deferred and immediate.
dan8a2fff72009-09-23 18:07:22 +000024** If an immediate foreign key constraint is violated, SQLITE_CONSTRAINT
25** is returned and the current statement transaction rolled back. If a
dan1da40a32009-09-19 17:00:31 +000026** deferred foreign key constraint is violated, no action is taken
27** immediately. However if the application attempts to commit the
28** transaction before fixing the constraint violation, the attempt fails.
29**
30** Deferred constraints are implemented using a simple counter associated
31** with the database handle. The counter is set to zero each time a
32** database transaction is opened. Each time a statement is executed
33** that causes a foreign key violation, the counter is incremented. Each
34** time a statement is executed that removes an existing violation from
35** the database, the counter is decremented. When the transaction is
36** committed, the commit fails if the current value of the counter is
37** greater than zero. This scheme has two big drawbacks:
38**
39** * When a commit fails due to a deferred foreign key constraint,
40** there is no way to tell which foreign constraint is not satisfied,
41** or which row it is not satisfied for.
42**
43** * If the database contains foreign key violations when the
44** transaction is opened, this may cause the mechanism to malfunction.
45**
46** Despite these problems, this approach is adopted as it seems simpler
47** than the alternatives.
48**
49** INSERT operations:
50**
dan8099ce62009-09-23 08:43:35 +000051** I.1) For each FK for which the table is the child table, search
dan8a2fff72009-09-23 18:07:22 +000052** the parent table for a match. If none is found increment the
53** constraint counter.
dan1da40a32009-09-19 17:00:31 +000054**
dan8a2fff72009-09-23 18:07:22 +000055** I.2) For each FK for which the table is the parent table,
dan8099ce62009-09-23 08:43:35 +000056** search the child table for rows that correspond to the new
57** row in the parent table. Decrement the counter for each row
dan1da40a32009-09-19 17:00:31 +000058** found (as the constraint is now satisfied).
59**
60** DELETE operations:
61**
dan8a2fff72009-09-23 18:07:22 +000062** D.1) For each FK for which the table is the child table,
dan8099ce62009-09-23 08:43:35 +000063** search the parent table for a row that corresponds to the
64** deleted row in the child table. If such a row is not found,
dan1da40a32009-09-19 17:00:31 +000065** decrement the counter.
66**
dan8099ce62009-09-23 08:43:35 +000067** D.2) For each FK for which the table is the parent table, search
68** the child table for rows that correspond to the deleted row
dan8a2fff72009-09-23 18:07:22 +000069** in the parent table. For each found increment the counter.
dan1da40a32009-09-19 17:00:31 +000070**
71** UPDATE operations:
72**
73** An UPDATE command requires that all 4 steps above are taken, but only
74** for FK constraints for which the affected columns are actually
75** modified (values must be compared at runtime).
76**
77** Note that I.1 and D.1 are very similar operations, as are I.2 and D.2.
78** This simplifies the implementation a bit.
79**
80** For the purposes of immediate FK constraints, the OR REPLACE conflict
81** resolution is considered to delete rows before the new row is inserted.
82** If a delete caused by OR REPLACE violates an FK constraint, an exception
83** is thrown, even if the FK constraint would be satisfied after the new
84** row is inserted.
85**
danbd747832009-09-25 12:00:01 +000086** Immediate constraints are usually handled similarly. The only difference
87** is that the counter used is stored as part of each individual statement
88** object (struct Vdbe). If, after the statement has run, its immediate
89** constraint counter is greater than zero, it returns SQLITE_CONSTRAINT
90** and the statement transaction is rolled back. An exception is an INSERT
91** statement that inserts a single row only (no triggers). In this case,
92** instead of using a counter, an exception is thrown immediately if the
93** INSERT violates a foreign key constraint. This is necessary as such
94** an INSERT does not open a statement transaction.
95**
dan1da40a32009-09-19 17:00:31 +000096** TODO: How should dropping a table be handled? How should renaming a
97** table be handled?
dan8099ce62009-09-23 08:43:35 +000098**
99**
dan1da40a32009-09-19 17:00:31 +0000100** Query API Notes
101** ---------------
102**
103** Before coding an UPDATE or DELETE row operation, the code-generator
104** for those two operations needs to know whether or not the operation
105** requires any FK processing and, if so, which columns of the original
106** row are required by the FK processing VDBE code (i.e. if FKs were
107** implemented using triggers, which of the old.* columns would be
108** accessed). No information is required by the code-generator before
dan8099ce62009-09-23 08:43:35 +0000109** coding an INSERT operation. The functions used by the UPDATE/DELETE
110** generation code to query for this information are:
dan1da40a32009-09-19 17:00:31 +0000111**
dan8099ce62009-09-23 08:43:35 +0000112** sqlite3FkRequired() - Test to see if FK processing is required.
113** sqlite3FkOldmask() - Query for the set of required old.* columns.
114**
115**
116** Externally accessible module functions
117** --------------------------------------
118**
119** sqlite3FkCheck() - Check for foreign key violations.
120** sqlite3FkActions() - Code triggers for ON UPDATE/ON DELETE actions.
121** sqlite3FkDelete() - Delete an FKey structure.
dan1da40a32009-09-19 17:00:31 +0000122*/
123
124/*
125** VDBE Calling Convention
126** -----------------------
127**
128** Example:
129**
130** For the following INSERT statement:
131**
132** CREATE TABLE t1(a, b INTEGER PRIMARY KEY, c);
133** INSERT INTO t1 VALUES(1, 2, 3.1);
134**
135** Register (x): 2 (type integer)
136** Register (x+1): 1 (type integer)
137** Register (x+2): NULL (type NULL)
138** Register (x+3): 3.1 (type real)
139*/
140
141/*
dan8099ce62009-09-23 08:43:35 +0000142** A foreign key constraint requires that the key columns in the parent
dan1da40a32009-09-19 17:00:31 +0000143** table are collectively subject to a UNIQUE or PRIMARY KEY constraint.
dan8099ce62009-09-23 08:43:35 +0000144** Given that pParent is the parent table for foreign key constraint pFKey,
145** search the schema a unique index on the parent key columns.
dan1da40a32009-09-19 17:00:31 +0000146**
dan8099ce62009-09-23 08:43:35 +0000147** If successful, zero is returned. If the parent key is an INTEGER PRIMARY
148** KEY column, then output variable *ppIdx is set to NULL. Otherwise, *ppIdx
149** is set to point to the unique index.
150**
151** If the parent key consists of a single column (the foreign key constraint
152** is not a composite foreign key), output variable *paiCol is set to NULL.
153** Otherwise, it is set to point to an allocated array of size N, where
154** N is the number of columns in the parent key. The first element of the
155** array is the index of the child table column that is mapped by the FK
156** constraint to the parent table column stored in the left-most column
157** of index *ppIdx. The second element of the array is the index of the
158** child table column that corresponds to the second left-most column of
159** *ppIdx, and so on.
160**
161** If the required index cannot be found, either because:
162**
163** 1) The named parent key columns do not exist, or
164**
165** 2) The named parent key columns do exist, but are not subject to a
166** UNIQUE or PRIMARY KEY constraint, or
167**
168** 3) No parent key columns were provided explicitly as part of the
169** foreign key definition, and the parent table does not have a
170** PRIMARY KEY, or
171**
172** 4) No parent key columns were provided explicitly as part of the
173** foreign key definition, and the PRIMARY KEY of the parent table
174** consists of a a different number of columns to the child key in
175** the child table.
176**
177** then non-zero is returned, and a "foreign key mismatch" error loaded
178** into pParse. If an OOM error occurs, non-zero is returned and the
179** pParse->db->mallocFailed flag is set.
dan1da40a32009-09-19 17:00:31 +0000180*/
181static int locateFkeyIndex(
182 Parse *pParse, /* Parse context to store any error in */
dan8099ce62009-09-23 08:43:35 +0000183 Table *pParent, /* Parent table of FK constraint pFKey */
dan1da40a32009-09-19 17:00:31 +0000184 FKey *pFKey, /* Foreign key to find index for */
dan8099ce62009-09-23 08:43:35 +0000185 Index **ppIdx, /* OUT: Unique index on parent table */
dan1da40a32009-09-19 17:00:31 +0000186 int **paiCol /* OUT: Map of index columns in pFKey */
187){
dan8099ce62009-09-23 08:43:35 +0000188 Index *pIdx = 0; /* Value to return via *ppIdx */
189 int *aiCol = 0; /* Value to return via *paiCol */
190 int nCol = pFKey->nCol; /* Number of columns in parent key */
191 char *zKey = pFKey->aCol[0].zCol; /* Name of left-most parent key column */
dan1da40a32009-09-19 17:00:31 +0000192
193 /* The caller is responsible for zeroing output parameters. */
194 assert( ppIdx && *ppIdx==0 );
195 assert( !paiCol || *paiCol==0 );
196
197 /* If this is a non-composite (single column) foreign key, check if it
dan8099ce62009-09-23 08:43:35 +0000198 ** maps to the INTEGER PRIMARY KEY of table pParent. If so, leave *ppIdx
dan1da40a32009-09-19 17:00:31 +0000199 ** and *paiCol set to zero and return early.
200 **
201 ** Otherwise, for a composite foreign key (more than one column), allocate
202 ** space for the aiCol array (returned via output parameter *paiCol).
203 ** Non-composite foreign keys do not require the aiCol array.
204 */
205 if( nCol==1 ){
206 /* The FK maps to the IPK if any of the following are true:
207 **
dand981d442009-09-23 13:59:17 +0000208 ** 1) There is an INTEGER PRIMARY KEY column and the FK is implicitly
209 ** mapped to the primary key of table pParent, or
210 ** 2) The FK is explicitly mapped to a column declared as INTEGER
dan1da40a32009-09-19 17:00:31 +0000211 ** PRIMARY KEY.
212 */
dan8099ce62009-09-23 08:43:35 +0000213 if( pParent->iPKey>=0 ){
214 if( !zKey ) return 0;
215 if( !sqlite3StrICmp(pParent->aCol[pParent->iPKey].zName, zKey) ) return 0;
dan1da40a32009-09-19 17:00:31 +0000216 }
217 }else if( paiCol ){
218 assert( nCol>1 );
219 aiCol = (int *)sqlite3DbMallocRaw(pParse->db, nCol*sizeof(int));
220 if( !aiCol ) return 1;
221 *paiCol = aiCol;
222 }
223
dan8099ce62009-09-23 08:43:35 +0000224 for(pIdx=pParent->pIndex; pIdx; pIdx=pIdx->pNext){
dan1da40a32009-09-19 17:00:31 +0000225 if( pIdx->nColumn==nCol && pIdx->onError!=OE_None ){
226 /* pIdx is a UNIQUE index (or a PRIMARY KEY) and has the right number
227 ** of columns. If each indexed column corresponds to a foreign key
228 ** column of pFKey, then this index is a winner. */
229
dan8099ce62009-09-23 08:43:35 +0000230 if( zKey==0 ){
231 /* If zKey is NULL, then this foreign key is implicitly mapped to
232 ** the PRIMARY KEY of table pParent. The PRIMARY KEY index may be
dan1da40a32009-09-19 17:00:31 +0000233 ** identified by the test (Index.autoIndex==2). */
234 if( pIdx->autoIndex==2 ){
dan8a2fff72009-09-23 18:07:22 +0000235 if( aiCol ){
236 int i;
237 for(i=0; i<nCol; i++) aiCol[i] = pFKey->aCol[i].iFrom;
238 }
dan1da40a32009-09-19 17:00:31 +0000239 break;
240 }
241 }else{
dan8099ce62009-09-23 08:43:35 +0000242 /* If zKey is non-NULL, then this foreign key was declared to
243 ** map to an explicit list of columns in table pParent. Check if this
dan1da40a32009-09-19 17:00:31 +0000244 ** index matches those columns. */
245 int i, j;
246 for(i=0; i<nCol; i++){
dan8099ce62009-09-23 08:43:35 +0000247 char *zIdxCol = pParent->aCol[pIdx->aiColumn[i]].zName;
dan1da40a32009-09-19 17:00:31 +0000248 for(j=0; j<nCol; j++){
249 if( sqlite3StrICmp(pFKey->aCol[j].zCol, zIdxCol)==0 ){
250 if( aiCol ) aiCol[i] = pFKey->aCol[j].iFrom;
251 break;
252 }
253 }
254 if( j==nCol ) break;
255 }
256 if( i==nCol ) break; /* pIdx is usable */
257 }
258 }
259 }
260
261 if( pParse && !pIdx ){
262 sqlite3ErrorMsg(pParse, "foreign key mismatch");
263 sqlite3DbFree(pParse->db, aiCol);
264 return 1;
265 }
266
267 *ppIdx = pIdx;
268 return 0;
269}
270
dan8099ce62009-09-23 08:43:35 +0000271/*
danbd747832009-09-25 12:00:01 +0000272** This function is called when a row is inserted into or deleted from the
273** child table of foreign key constraint pFKey. If an SQL UPDATE is executed
274** on the child table of pFKey, this function is invoked twice for each row
dan8099ce62009-09-23 08:43:35 +0000275** affected - once to "delete" the old row, and then again to "insert" the
276** new row.
277**
278** Each time it is called, this function generates VDBE code to locate the
279** row in the parent table that corresponds to the row being inserted into
280** or deleted from the child table. If the parent row can be found, no
281** special action is taken. Otherwise, if the parent row can *not* be
282** found in the parent table:
283**
284** Operation | FK type | Action taken
285** --------------------------------------------------------------------------
danbd747832009-09-25 12:00:01 +0000286** INSERT immediate Increment the "immediate constraint counter".
287**
288** DELETE immediate Decrement the "immediate constraint counter".
dan8099ce62009-09-23 08:43:35 +0000289**
290** INSERT deferred Increment the "deferred constraint counter".
291**
292** DELETE deferred Decrement the "deferred constraint counter".
293**
danbd747832009-09-25 12:00:01 +0000294** These operations are identified in the comment at the top of this file
295** (fkey.c) as "I.1" and "D.1".
dan8099ce62009-09-23 08:43:35 +0000296*/
297static void fkLookupParent(
dan1da40a32009-09-19 17:00:31 +0000298 Parse *pParse, /* Parse context */
299 int iDb, /* Index of database housing pTab */
dan8099ce62009-09-23 08:43:35 +0000300 Table *pTab, /* Parent table of FK pFKey */
301 Index *pIdx, /* Unique index on parent key columns in pTab */
302 FKey *pFKey, /* Foreign key constraint */
303 int *aiCol, /* Map from parent key columns to child table columns */
304 int regData, /* Address of array containing child table row */
dan32b09f22009-09-23 17:29:59 +0000305 int nIncr /* Increment constraint counter by this */
dan1da40a32009-09-19 17:00:31 +0000306){
dan8099ce62009-09-23 08:43:35 +0000307 int i; /* Iterator variable */
308 Vdbe *v = sqlite3GetVdbe(pParse); /* Vdbe to add code to */
309 int iCur = pParse->nTab - 1; /* Cursor number to use */
310 int iOk = sqlite3VdbeMakeLabel(v); /* jump here if parent key found */
dan1da40a32009-09-19 17:00:31 +0000311
dan0ff297e2009-09-25 17:03:14 +0000312 /* If nIncr is less than zero, then check at runtime if there are any
313 ** outstanding constraints to resolve. If there are not, there is no need
314 ** to check if deleting this row resolves any outstanding violations.
315 **
316 ** Check if any of the key columns in the child table row are NULL. If
317 ** any are, then the constraint is considered satisfied. No need to
318 ** search for a matching row in the parent table. */
319 if( nIncr<0 ){
320 sqlite3VdbeAddOp2(v, OP_FkIfZero, pFKey->isDeferred, iOk);
321 }
dan1da40a32009-09-19 17:00:31 +0000322 for(i=0; i<pFKey->nCol; i++){
dan36062642009-09-21 18:56:23 +0000323 int iReg = aiCol[i] + regData + 1;
dan1da40a32009-09-19 17:00:31 +0000324 sqlite3VdbeAddOp2(v, OP_IsNull, iReg, iOk);
325 }
326
327 if( pIdx==0 ){
dan8099ce62009-09-23 08:43:35 +0000328 /* If pIdx is NULL, then the parent key is the INTEGER PRIMARY KEY
329 ** column of the parent table (table pTab). */
dan9277efa2009-09-28 11:54:21 +0000330 int iMustBeInt; /* Address of MustBeInt instruction */
dan140026b2009-09-24 18:19:41 +0000331 int regTemp = sqlite3GetTempReg(pParse);
332
333 /* Invoke MustBeInt to coerce the child key value to an integer (i.e.
334 ** apply the affinity of the parent key). If this fails, then there
335 ** is no matching parent key. Before using MustBeInt, make a copy of
336 ** the value. Otherwise, the value inserted into the child key column
337 ** will have INTEGER affinity applied to it, which may not be correct. */
338 sqlite3VdbeAddOp2(v, OP_SCopy, aiCol[0]+1+regData, regTemp);
dan9277efa2009-09-28 11:54:21 +0000339 iMustBeInt = sqlite3VdbeAddOp2(v, OP_MustBeInt, regTemp, 0);
340
341 /* If the parent table is the same as the child table, and we are about
342 ** to increment the constraint-counter (i.e. this is an INSERT operation),
343 ** then check if the row being inserted matches itself. If so, do not
344 ** increment the constraint-counter. */
345 if( pTab==pFKey->pFrom && nIncr==1 ){
346 sqlite3VdbeAddOp3(v, OP_Eq, regData, iOk, regTemp);
347 }
348
dan1da40a32009-09-19 17:00:31 +0000349 sqlite3OpenTable(pParse, iCur, iDb, pTab, OP_OpenRead);
dan140026b2009-09-24 18:19:41 +0000350 sqlite3VdbeAddOp3(v, OP_NotExists, iCur, 0, regTemp);
dan1da40a32009-09-19 17:00:31 +0000351 sqlite3VdbeAddOp2(v, OP_Goto, 0, iOk);
352 sqlite3VdbeJumpHere(v, sqlite3VdbeCurrentAddr(v)-2);
dan9277efa2009-09-28 11:54:21 +0000353 sqlite3VdbeJumpHere(v, iMustBeInt);
dan140026b2009-09-24 18:19:41 +0000354 sqlite3ReleaseTempReg(pParse, regTemp);
dan1da40a32009-09-19 17:00:31 +0000355 }else{
dan140026b2009-09-24 18:19:41 +0000356 int nCol = pFKey->nCol;
357 int regTemp = sqlite3GetTempRange(pParse, nCol);
dan1da40a32009-09-19 17:00:31 +0000358 int regRec = sqlite3GetTempReg(pParse);
359 KeyInfo *pKey = sqlite3IndexKeyinfo(pParse, pIdx);
360
361 sqlite3VdbeAddOp3(v, OP_OpenRead, iCur, pIdx->tnum, iDb);
362 sqlite3VdbeChangeP4(v, -1, (char*)pKey, P4_KEYINFO_HANDOFF);
dan9277efa2009-09-28 11:54:21 +0000363 for(i=0; i<nCol; i++){
dan140026b2009-09-24 18:19:41 +0000364 sqlite3VdbeAddOp2(v, OP_SCopy, aiCol[i]+1+regData, regTemp+i);
dan1da40a32009-09-19 17:00:31 +0000365 }
dan9277efa2009-09-28 11:54:21 +0000366
367 /* If the parent table is the same as the child table, and we are about
368 ** to increment the constraint-counter (i.e. this is an INSERT operation),
369 ** then check if the row being inserted matches itself. If so, do not
370 ** increment the constraint-counter. */
371 if( pTab==pFKey->pFrom && nIncr==1 ){
372 int iJump = sqlite3VdbeCurrentAddr(v) + nCol + 1;
373 for(i=0; i<nCol; i++){
374 int iChild = aiCol[i]+1+regData;
375 int iParent = pIdx->aiColumn[i]+1+regData;
376 sqlite3VdbeAddOp3(v, OP_Ne, iChild, iJump, iParent);
377 }
378 sqlite3VdbeAddOp2(v, OP_Goto, 0, iOk);
379 }
380
dan140026b2009-09-24 18:19:41 +0000381 sqlite3VdbeAddOp3(v, OP_MakeRecord, regTemp, nCol, regRec);
382 sqlite3VdbeChangeP4(v, -1, sqlite3IndexAffinityStr(v, pIdx), 0);
dan1da40a32009-09-19 17:00:31 +0000383 sqlite3VdbeAddOp3(v, OP_Found, iCur, iOk, regRec);
dan9277efa2009-09-28 11:54:21 +0000384
dan1da40a32009-09-19 17:00:31 +0000385 sqlite3ReleaseTempReg(pParse, regRec);
dan140026b2009-09-24 18:19:41 +0000386 sqlite3ReleaseTempRange(pParse, regTemp, nCol);
dan1da40a32009-09-19 17:00:31 +0000387 }
388
dan32b09f22009-09-23 17:29:59 +0000389 if( !pFKey->isDeferred && !pParse->pToplevel && !pParse->isMultiWrite ){
390 /* Special case: If this is an INSERT statement that will insert exactly
391 ** one row into the table, raise a constraint immediately instead of
392 ** incrementing a counter. This is necessary as the VM code is being
393 ** generated for will not open a statement transaction. */
394 assert( nIncr==1 );
dan1da40a32009-09-19 17:00:31 +0000395 sqlite3HaltConstraint(
396 pParse, OE_Abort, "foreign key constraint failed", P4_STATIC
397 );
dan32b09f22009-09-23 17:29:59 +0000398 }else{
399 if( nIncr>0 && pFKey->isDeferred==0 ){
400 sqlite3ParseToplevel(pParse)->mayAbort = 1;
401 }
dan0ff297e2009-09-25 17:03:14 +0000402 sqlite3VdbeAddOp2(v, OP_FkCounter, pFKey->isDeferred, nIncr);
dan1da40a32009-09-19 17:00:31 +0000403 }
404
405 sqlite3VdbeResolveLabel(v, iOk);
406}
407
dan8099ce62009-09-23 08:43:35 +0000408/*
409** This function is called to generate code executed when a row is deleted
410** from the parent table of foreign key constraint pFKey and, if pFKey is
411** deferred, when a row is inserted into the same table. When generating
412** code for an SQL UPDATE operation, this function may be called twice -
413** once to "delete" the old row and once to "insert" the new row.
414**
415** The code generated by this function scans through the rows in the child
416** table that correspond to the parent table row being deleted or inserted.
417** For each child row found, one of the following actions is taken:
418**
419** Operation | FK type | Action taken
420** --------------------------------------------------------------------------
danbd747832009-09-25 12:00:01 +0000421** DELETE immediate Increment the "immediate constraint counter".
422** Or, if the ON (UPDATE|DELETE) action is RESTRICT,
423** throw a "foreign key constraint failed" exception.
424**
425** INSERT immediate Decrement the "immediate constraint counter".
dan8099ce62009-09-23 08:43:35 +0000426**
427** DELETE deferred Increment the "deferred constraint counter".
428** Or, if the ON (UPDATE|DELETE) action is RESTRICT,
429** throw a "foreign key constraint failed" exception.
430**
431** INSERT deferred Decrement the "deferred constraint counter".
432**
danbd747832009-09-25 12:00:01 +0000433** These operations are identified in the comment at the top of this file
434** (fkey.c) as "I.2" and "D.2".
dan8099ce62009-09-23 08:43:35 +0000435*/
436static void fkScanChildren(
dan1da40a32009-09-19 17:00:31 +0000437 Parse *pParse, /* Parse context */
438 SrcList *pSrc, /* SrcList containing the table to scan */
dan9277efa2009-09-28 11:54:21 +0000439 Table *pTab,
dan1da40a32009-09-19 17:00:31 +0000440 Index *pIdx, /* Foreign key index */
441 FKey *pFKey, /* Foreign key relationship */
dan8099ce62009-09-23 08:43:35 +0000442 int *aiCol, /* Map from pIdx cols to child table cols */
dan1da40a32009-09-19 17:00:31 +0000443 int regData, /* Referenced table data starts here */
444 int nIncr /* Amount to increment deferred counter by */
445){
446 sqlite3 *db = pParse->db; /* Database handle */
447 int i; /* Iterator variable */
448 Expr *pWhere = 0; /* WHERE clause to scan with */
449 NameContext sNameContext; /* Context used to resolve WHERE clause */
450 WhereInfo *pWInfo; /* Context used by sqlite3WhereXXX() */
dan0ff297e2009-09-25 17:03:14 +0000451 int iFkIfZero = 0; /* Address of OP_FkIfZero */
452 Vdbe *v = sqlite3GetVdbe(pParse);
453
dan9277efa2009-09-28 11:54:21 +0000454 assert( !pIdx || pIdx->pTable==pTab );
455
dan0ff297e2009-09-25 17:03:14 +0000456 if( nIncr<0 ){
457 iFkIfZero = sqlite3VdbeAddOp2(v, OP_FkIfZero, pFKey->isDeferred, 0);
458 }
dan1da40a32009-09-19 17:00:31 +0000459
danbd747832009-09-25 12:00:01 +0000460 /* Create an Expr object representing an SQL expression like:
461 **
462 ** <parent-key1> = <child-key1> AND <parent-key2> = <child-key2> ...
463 **
464 ** The collation sequence used for the comparison should be that of
465 ** the parent key columns. The affinity of the parent key column should
466 ** be applied to each child key value before the comparison takes place.
467 */
dan1da40a32009-09-19 17:00:31 +0000468 for(i=0; i<pFKey->nCol; i++){
dan8099ce62009-09-23 08:43:35 +0000469 Expr *pLeft; /* Value from parent table row */
470 Expr *pRight; /* Column ref to child table */
dan1da40a32009-09-19 17:00:31 +0000471 Expr *pEq; /* Expression (pLeft = pRight) */
dan8099ce62009-09-23 08:43:35 +0000472 int iCol; /* Index of column in child table */
473 const char *zCol; /* Name of column in child table */
dan1da40a32009-09-19 17:00:31 +0000474
475 pLeft = sqlite3Expr(db, TK_REGISTER, 0);
476 if( pLeft ){
danbd747832009-09-25 12:00:01 +0000477 /* Set the collation sequence and affinity of the LHS of each TK_EQ
478 ** expression to the parent key column defaults. */
dan140026b2009-09-24 18:19:41 +0000479 if( pIdx ){
480 int iCol = pIdx->aiColumn[i];
481 Column *pCol = &pIdx->pTable->aCol[iCol];
482 pLeft->iTable = regData+iCol+1;
483 pLeft->affinity = pCol->affinity;
484 pLeft->pColl = sqlite3LocateCollSeq(pParse, pCol->zColl);
485 }else{
486 pLeft->iTable = regData;
487 pLeft->affinity = SQLITE_AFF_INTEGER;
488 }
dan1da40a32009-09-19 17:00:31 +0000489 }
490 iCol = aiCol ? aiCol[i] : pFKey->aCol[0].iFrom;
dana8f0bf62009-09-23 12:06:52 +0000491 assert( iCol>=0 );
492 zCol = pFKey->pFrom->aCol[iCol].zName;
dan1da40a32009-09-19 17:00:31 +0000493 pRight = sqlite3Expr(db, TK_ID, zCol);
494 pEq = sqlite3PExpr(pParse, TK_EQ, pLeft, pRight, 0);
495 pWhere = sqlite3ExprAnd(db, pWhere, pEq);
496 }
497
dan9277efa2009-09-28 11:54:21 +0000498 /* If the child table is the same as the parent table, and this scan
499 ** is taking place as part of a DELETE operation (operation D.2), omit the
500 ** row being deleted from the scan by adding ($rowid != rowid) to the WHERE
501 ** clause, where $rowid is the rowid of the row being deleted. */
502 if( pTab==pFKey->pFrom && nIncr>0 ){
503 Expr *pEq; /* Expression (pLeft = pRight) */
504 Expr *pLeft; /* Value from parent table row */
505 Expr *pRight; /* Column ref to child table */
506 pLeft = sqlite3Expr(db, TK_REGISTER, 0);
507 pRight = sqlite3Expr(db, TK_COLUMN, 0);
508 if( pLeft && pRight ){
509 pLeft->iTable = regData;
510 pLeft->affinity = SQLITE_AFF_INTEGER;
511 pRight->iTable = pSrc->a[0].iCursor;
512 pRight->iColumn = -1;
513 }
514 pEq = sqlite3PExpr(pParse, TK_NE, pLeft, pRight, 0);
515 pWhere = sqlite3ExprAnd(db, pWhere, pEq);
516 }
517
dan1da40a32009-09-19 17:00:31 +0000518 /* Resolve the references in the WHERE clause. */
519 memset(&sNameContext, 0, sizeof(NameContext));
520 sNameContext.pSrcList = pSrc;
521 sNameContext.pParse = pParse;
522 sqlite3ResolveExprNames(&sNameContext, pWhere);
523
524 /* Create VDBE to loop through the entries in pSrc that match the WHERE
525 ** clause. If the constraint is not deferred, throw an exception for
526 ** each row found. Otherwise, for deferred constraints, increment the
527 ** deferred constraint counter by nIncr for each row selected. */
528 pWInfo = sqlite3WhereBegin(pParse, pSrc, pWhere, 0, 0);
dan32b09f22009-09-23 17:29:59 +0000529 if( nIncr==0 ){
danbd747832009-09-25 12:00:01 +0000530 /* Special case: A RESTRICT Action. Throw an error immediately if one
531 ** of these is encountered. */
dan1da40a32009-09-19 17:00:31 +0000532 sqlite3HaltConstraint(
533 pParse, OE_Abort, "foreign key constraint failed", P4_STATIC
534 );
dan32b09f22009-09-23 17:29:59 +0000535 }else{
536 if( nIncr>0 && pFKey->isDeferred==0 ){
537 sqlite3ParseToplevel(pParse)->mayAbort = 1;
538 }
dan0ff297e2009-09-25 17:03:14 +0000539 sqlite3VdbeAddOp2(v, OP_FkCounter, pFKey->isDeferred, nIncr);
dan1da40a32009-09-19 17:00:31 +0000540 }
danf59c5ca2009-09-22 16:55:38 +0000541 if( pWInfo ){
542 sqlite3WhereEnd(pWInfo);
543 }
dan1da40a32009-09-19 17:00:31 +0000544
545 /* Clean up the WHERE clause constructed above. */
546 sqlite3ExprDelete(db, pWhere);
dan0ff297e2009-09-25 17:03:14 +0000547 if( iFkIfZero ){
548 sqlite3VdbeJumpHere(v, iFkIfZero);
549 }
dan1da40a32009-09-19 17:00:31 +0000550}
551
552/*
553** This function returns a pointer to the head of a linked list of FK
dan8099ce62009-09-23 08:43:35 +0000554** constraints for which table pTab is the parent table. For example,
dan1da40a32009-09-19 17:00:31 +0000555** given the following schema:
556**
557** CREATE TABLE t1(a PRIMARY KEY);
558** CREATE TABLE t2(b REFERENCES t1(a);
559**
560** Calling this function with table "t1" as an argument returns a pointer
561** to the FKey structure representing the foreign key constraint on table
562** "t2". Calling this function with "t2" as the argument would return a
dan8099ce62009-09-23 08:43:35 +0000563** NULL pointer (as there are no FK constraints for which t2 is the parent
564** table).
dan1da40a32009-09-19 17:00:31 +0000565*/
dan432cc5b2009-09-26 17:51:48 +0000566FKey *sqlite3FkReferences(Table *pTab){
dan1da40a32009-09-19 17:00:31 +0000567 int nName = sqlite3Strlen30(pTab->zName);
568 return (FKey *)sqlite3HashFind(&pTab->pSchema->fkeyHash, pTab->zName, nName);
569}
570
dan8099ce62009-09-23 08:43:35 +0000571/*
572** The second argument is a Trigger structure allocated by the
573** fkActionTrigger() routine. This function deletes the Trigger structure
574** and all of its sub-components.
575**
576** The Trigger structure or any of its sub-components may be allocated from
577** the lookaside buffer belonging to database handle dbMem.
578*/
dan75cbd982009-09-21 16:06:03 +0000579static void fkTriggerDelete(sqlite3 *dbMem, Trigger *p){
580 if( p ){
581 TriggerStep *pStep = p->step_list;
582 sqlite3ExprDelete(dbMem, pStep->pWhere);
583 sqlite3ExprListDelete(dbMem, pStep->pExprList);
dan9277efa2009-09-28 11:54:21 +0000584 sqlite3SelectDelete(dbMem, pStep->pSelect);
drh788536b2009-09-23 03:01:58 +0000585 sqlite3ExprDelete(dbMem, p->pWhen);
dan75cbd982009-09-21 16:06:03 +0000586 sqlite3DbFree(dbMem, p);
587 }
588}
589
dan8099ce62009-09-23 08:43:35 +0000590/*
dand66c8302009-09-28 14:49:01 +0000591** This function is called to generate code that runs when table pTab is
592** being dropped from the database. The SrcList passed as the second argument
593** to this function contains a single entry guaranteed to resolve to
594** table pTab.
595**
596** Normally, no code is required. However, if either
597**
598** (a) The table is the parent table of a FK constraint, or
599** (b) The table is the child table of a deferred FK constraint and it is
600** determined at runtime that there are outstanding deferred FK
601** constraint violations in the database,
602**
603** then the equivalent of "DELETE FROM <tbl>" is executed before dropping
604** the table from the database. Triggers are disabled while running this
605** DELETE, but foreign key actions are not.
606*/
607void sqlite3FkDropTable(Parse *pParse, SrcList *pName, Table *pTab){
608 sqlite3 *db = pParse->db;
609 if( (db->flags&SQLITE_ForeignKeys) && !IsVirtual(pTab) && !pTab->pSelect ){
610 int iSkip = 0;
611 Vdbe *v = sqlite3GetVdbe(pParse);
612
613 assert( v ); /* VDBE has already been allocated */
614 if( sqlite3FkReferences(pTab)==0 ){
615 /* Search for a deferred foreign key constraint for which this table
616 ** is the child table. If one cannot be found, return without
617 ** generating any VDBE code. If one can be found, then jump over
618 ** the entire DELETE if there are no outstanding deferred constraints
619 ** when this statement is run. */
620 FKey *p;
621 for(p=pTab->pFKey; p; p=p->pNextFrom){
622 if( p->isDeferred ) break;
623 }
624 if( !p ) return;
625 iSkip = sqlite3VdbeMakeLabel(v);
626 sqlite3VdbeAddOp2(v, OP_FkIfZero, 1, iSkip);
627 }
628
629 pParse->disableTriggers = 1;
630 sqlite3DeleteFrom(pParse, sqlite3SrcListDup(db, pName, 0), 0);
631 pParse->disableTriggers = 0;
632
633 /* If the DELETE has generated immediate foreign key constraint
634 ** violations, halt the VDBE and return an error at this point, before
635 ** any modifications to the schema are made. This is because statement
636 ** transactions are not able to rollback schema changes. */
637 sqlite3VdbeAddOp2(v, OP_FkIfZero, 0, sqlite3VdbeCurrentAddr(v)+2);
638 sqlite3HaltConstraint(
639 pParse, OE_Abort, "foreign key constraint failed", P4_STATIC
640 );
641
642 if( iSkip ){
643 sqlite3VdbeResolveLabel(v, iSkip);
644 }
645 }
646}
647
648/*
dan8099ce62009-09-23 08:43:35 +0000649** This function is called when inserting, deleting or updating a row of
650** table pTab to generate VDBE code to perform foreign key constraint
651** processing for the operation.
652**
653** For a DELETE operation, parameter regOld is passed the index of the
654** first register in an array of (pTab->nCol+1) registers containing the
655** rowid of the row being deleted, followed by each of the column values
656** of the row being deleted, from left to right. Parameter regNew is passed
657** zero in this case.
658**
dan8099ce62009-09-23 08:43:35 +0000659** For an INSERT operation, regOld is passed zero and regNew is passed the
660** first register of an array of (pTab->nCol+1) registers containing the new
661** row data.
662**
dan9277efa2009-09-28 11:54:21 +0000663** For an UPDATE operation, this function is called twice. Once before
664** the original record is deleted from the table using the calling convention
665** described for DELETE. Then again after the original record is deleted
666** but before the new record is inserted using the INSERT convention. In
667** both cases parameter pChanges is passed the list of columns being
668** updated by the statement.
dan8099ce62009-09-23 08:43:35 +0000669*/
dan1da40a32009-09-19 17:00:31 +0000670void sqlite3FkCheck(
671 Parse *pParse, /* Parse context */
672 Table *pTab, /* Row is being deleted from this table */
673 ExprList *pChanges, /* Changed columns if this is an UPDATE */
674 int regOld, /* Previous row data is stored here */
675 int regNew /* New row data is stored here */
676){
677 sqlite3 *db = pParse->db; /* Database handle */
678 Vdbe *v; /* VM to write code to */
679 FKey *pFKey; /* Used to iterate through FKs */
680 int iDb; /* Index of database containing pTab */
681 const char *zDb; /* Name of database containing pTab */
682
dan9277efa2009-09-28 11:54:21 +0000683 assert( ( pChanges && (regOld==0)!=(regNew==0)) /* UPDATE operation */
dan1da40a32009-09-19 17:00:31 +0000684 || (!pChanges && !regOld && regNew) /* INSERT operation */
685 || (!pChanges && regOld && !regNew) /* DELETE operation */
686 );
687
688 /* If foreign-keys are disabled, this function is a no-op. */
689 if( (db->flags&SQLITE_ForeignKeys)==0 ) return;
690
691 v = sqlite3GetVdbe(pParse);
692 iDb = sqlite3SchemaToIndex(db, pTab->pSchema);
693 zDb = db->aDb[iDb].zName;
694
dan8099ce62009-09-23 08:43:35 +0000695 /* Loop through all the foreign key constraints for which pTab is the
696 ** child table (the table that the foreign key definition is part of). */
dan1da40a32009-09-19 17:00:31 +0000697 for(pFKey=pTab->pFKey; pFKey; pFKey=pFKey->pNextFrom){
dan8099ce62009-09-23 08:43:35 +0000698 Table *pTo; /* Parent table of foreign key pFKey */
dan1da40a32009-09-19 17:00:31 +0000699 Index *pIdx = 0; /* Index on key columns in pTo */
dan36062642009-09-21 18:56:23 +0000700 int *aiFree = 0;
701 int *aiCol;
702 int iCol;
703 int i;
dan1da40a32009-09-19 17:00:31 +0000704
dan8099ce62009-09-23 08:43:35 +0000705 /* Find the parent table of this foreign key. Also find a unique index
706 ** on the parent key columns in the parent table. If either of these
707 ** schema items cannot be located, set an error in pParse and return
708 ** early. */
dan1da40a32009-09-19 17:00:31 +0000709 pTo = sqlite3LocateTable(pParse, 0, pFKey->zTo, zDb);
dan36062642009-09-21 18:56:23 +0000710 if( !pTo || locateFkeyIndex(pParse, pTo, pFKey, &pIdx, &aiFree) ) return;
711 assert( pFKey->nCol==1 || (aiFree && pIdx) );
dan1da40a32009-09-19 17:00:31 +0000712
713 /* If the key does not overlap with the pChanges list, skip this FK. */
714 if( pChanges ){
715 /* TODO */
716 }
717
dan36062642009-09-21 18:56:23 +0000718 if( aiFree ){
719 aiCol = aiFree;
720 }else{
721 iCol = pFKey->aCol[0].iFrom;
722 aiCol = &iCol;
723 }
724 for(i=0; i<pFKey->nCol; i++){
725 if( aiCol[i]==pTab->iPKey ){
726 aiCol[i] = -1;
727 }
728 }
729
dan8099ce62009-09-23 08:43:35 +0000730 /* Take a shared-cache advisory read-lock on the parent table. Allocate
731 ** a cursor to use to search the unique index on the parent key columns
732 ** in the parent table. */
dan1da40a32009-09-19 17:00:31 +0000733 sqlite3TableLock(pParse, iDb, pTo->tnum, 0, pTo->zName);
734 pParse->nTab++;
735
dan32b09f22009-09-23 17:29:59 +0000736 if( regOld!=0 ){
737 /* A row is being removed from the child table. Search for the parent.
738 ** If the parent does not exist, removing the child row resolves an
739 ** outstanding foreign key constraint violation. */
dan8099ce62009-09-23 08:43:35 +0000740 fkLookupParent(pParse, iDb, pTo, pIdx, pFKey, aiCol, regOld, -1);
dan1da40a32009-09-19 17:00:31 +0000741 }
742 if( regNew!=0 ){
dan32b09f22009-09-23 17:29:59 +0000743 /* A row is being added to the child table. If a parent row cannot
744 ** be found, adding the child row has violated the FK constraint. */
dan8099ce62009-09-23 08:43:35 +0000745 fkLookupParent(pParse, iDb, pTo, pIdx, pFKey, aiCol, regNew, +1);
dan1da40a32009-09-19 17:00:31 +0000746 }
747
dan36062642009-09-21 18:56:23 +0000748 sqlite3DbFree(db, aiFree);
dan1da40a32009-09-19 17:00:31 +0000749 }
750
751 /* Loop through all the foreign key constraints that refer to this table */
dan432cc5b2009-09-26 17:51:48 +0000752 for(pFKey = sqlite3FkReferences(pTab); pFKey; pFKey=pFKey->pNextTo){
dan1da40a32009-09-19 17:00:31 +0000753 int iGoto; /* Address of OP_Goto instruction */
754 Index *pIdx = 0; /* Foreign key index for pFKey */
755 SrcList *pSrc;
756 int *aiCol = 0;
757
dan32b09f22009-09-23 17:29:59 +0000758 if( !pFKey->isDeferred && !pParse->pToplevel && !pParse->isMultiWrite ){
759 assert( regOld==0 && regNew!=0 );
760 /* Inserting a single row into a parent table cannot cause an immediate
761 ** foreign key violation. So do nothing in this case. */
762 return;
dan1da40a32009-09-19 17:00:31 +0000763 }
764
765 if( locateFkeyIndex(pParse, pTab, pFKey, &pIdx, &aiCol) ) return;
766 assert( aiCol || pFKey->nCol==1 );
767
dan8099ce62009-09-23 08:43:35 +0000768 /* Check if this update statement has modified any of the child key
769 ** columns for this foreign key constraint. If it has not, there is
770 ** no need to search the child table for rows in violation. This is
dan1da40a32009-09-19 17:00:31 +0000771 ** just an optimization. Things would work fine without this check. */
772 if( pChanges ){
773 /* TODO */
774 }
775
776 /* Create a SrcList structure containing a single table (the table
777 ** the foreign key that refers to this table is attached to). This
778 ** is required for the sqlite3WhereXXX() interface. */
779 pSrc = sqlite3SrcListAppend(db, 0, 0, 0);
danf59c5ca2009-09-22 16:55:38 +0000780 if( pSrc ){
781 pSrc->a->pTab = pFKey->pFrom;
782 pSrc->a->pTab->nRef++;
783 pSrc->a->iCursor = pParse->nTab++;
784
dan32b09f22009-09-23 17:29:59 +0000785 if( regNew!=0 ){
dan9277efa2009-09-28 11:54:21 +0000786 fkScanChildren(pParse, pSrc, pTab, pIdx, pFKey, aiCol, regNew, -1);
danf59c5ca2009-09-22 16:55:38 +0000787 }
788 if( regOld!=0 ){
789 /* If there is a RESTRICT action configured for the current operation
dan8099ce62009-09-23 08:43:35 +0000790 ** on the parent table of this FK, then throw an exception
danf59c5ca2009-09-22 16:55:38 +0000791 ** immediately if the FK constraint is violated, even if this is a
792 ** deferred trigger. That's what RESTRICT means. To defer checking
793 ** the constraint, the FK should specify NO ACTION (represented
794 ** using OE_None). NO ACTION is the default. */
dan9277efa2009-09-28 11:54:21 +0000795 fkScanChildren(pParse, pSrc, pTab, pIdx, pFKey, aiCol, regOld, 1);
danf59c5ca2009-09-22 16:55:38 +0000796 }
797
798 if( pChanges ){
799 sqlite3VdbeJumpHere(v, iGoto);
800 }
801 sqlite3SrcListDelete(db, pSrc);
dan1da40a32009-09-19 17:00:31 +0000802 }
dan1da40a32009-09-19 17:00:31 +0000803 sqlite3DbFree(db, aiCol);
804 }
805}
806
807#define COLUMN_MASK(x) (((x)>31) ? 0xffffffff : ((u32)1<<(x)))
808
809/*
810** This function is called before generating code to update or delete a
811** row contained in table pTab. If the operation is an update, then
812** pChanges is a pointer to the list of columns to modify. If this is a
813** delete, then pChanges is NULL.
814*/
815u32 sqlite3FkOldmask(
816 Parse *pParse, /* Parse context */
817 Table *pTab, /* Table being modified */
818 ExprList *pChanges /* Non-NULL for UPDATE operations */
819){
820 u32 mask = 0;
821 if( pParse->db->flags&SQLITE_ForeignKeys ){
822 FKey *p;
823 int i;
824 for(p=pTab->pFKey; p; p=p->pNextFrom){
dan32b09f22009-09-23 17:29:59 +0000825 for(i=0; i<p->nCol; i++) mask |= COLUMN_MASK(p->aCol[i].iFrom);
dan1da40a32009-09-19 17:00:31 +0000826 }
dan432cc5b2009-09-26 17:51:48 +0000827 for(p=sqlite3FkReferences(pTab); p; p=p->pNextTo){
dan1da40a32009-09-19 17:00:31 +0000828 Index *pIdx = 0;
829 locateFkeyIndex(0, pTab, p, &pIdx, 0);
830 if( pIdx ){
831 for(i=0; i<pIdx->nColumn; i++) mask |= COLUMN_MASK(pIdx->aiColumn[i]);
832 }
833 }
834 }
835 return mask;
836}
837
838/*
839** This function is called before generating code to update or delete a
840** row contained in table pTab. If the operation is an update, then
841** pChanges is a pointer to the list of columns to modify. If this is a
842** delete, then pChanges is NULL.
843**
844** If any foreign key processing will be required, this function returns
845** true. If there is no foreign key related processing, this function
846** returns false.
847*/
848int sqlite3FkRequired(
849 Parse *pParse, /* Parse context */
850 Table *pTab, /* Table being modified */
851 ExprList *pChanges /* Non-NULL for UPDATE operations */
852){
853 if( pParse->db->flags&SQLITE_ForeignKeys ){
dan432cc5b2009-09-26 17:51:48 +0000854 if( sqlite3FkReferences(pTab) || pTab->pFKey ) return 1;
dan1da40a32009-09-19 17:00:31 +0000855 }
856 return 0;
857}
858
dan8099ce62009-09-23 08:43:35 +0000859/*
860** This function is called when an UPDATE or DELETE operation is being
861** compiled on table pTab, which is the parent table of foreign-key pFKey.
862** If the current operation is an UPDATE, then the pChanges parameter is
863** passed a pointer to the list of columns being modified. If it is a
864** DELETE, pChanges is passed a NULL pointer.
865**
866** It returns a pointer to a Trigger structure containing a trigger
867** equivalent to the ON UPDATE or ON DELETE action specified by pFKey.
868** If the action is "NO ACTION" or "RESTRICT", then a NULL pointer is
869** returned (these actions require no special handling by the triggers
870** sub-system, code for them is created by fkScanChildren()).
871**
872** For example, if pFKey is the foreign key and pTab is table "p" in
873** the following schema:
874**
875** CREATE TABLE p(pk PRIMARY KEY);
876** CREATE TABLE c(ck REFERENCES p ON DELETE CASCADE);
877**
878** then the returned trigger structure is equivalent to:
879**
880** CREATE TRIGGER ... DELETE ON p BEGIN
881** DELETE FROM c WHERE ck = old.pk;
882** END;
883**
884** The returned pointer is cached as part of the foreign key object. It
885** is eventually freed along with the rest of the foreign key object by
886** sqlite3FkDelete().
887*/
dan1da40a32009-09-19 17:00:31 +0000888static Trigger *fkActionTrigger(
dan8099ce62009-09-23 08:43:35 +0000889 Parse *pParse, /* Parse context */
dan1da40a32009-09-19 17:00:31 +0000890 Table *pTab, /* Table being updated or deleted from */
891 FKey *pFKey, /* Foreign key to get action for */
892 ExprList *pChanges /* Change-list for UPDATE, NULL for DELETE */
893){
894 sqlite3 *db = pParse->db; /* Database handle */
dan29c7f9c2009-09-22 15:53:47 +0000895 int action; /* One of OE_None, OE_Cascade etc. */
896 Trigger *pTrigger; /* Trigger definition to return */
dan8099ce62009-09-23 08:43:35 +0000897 int iAction = (pChanges!=0); /* 1 for UPDATE, 0 for DELETE */
dan1da40a32009-09-19 17:00:31 +0000898
dan8099ce62009-09-23 08:43:35 +0000899 action = pFKey->aAction[iAction];
900 pTrigger = pFKey->apTrigger[iAction];
dan1da40a32009-09-19 17:00:31 +0000901
dan9277efa2009-09-28 11:54:21 +0000902 if( action!=OE_None && !pTrigger ){
dan29c7f9c2009-09-22 15:53:47 +0000903 u8 enableLookaside; /* Copy of db->lookaside.bEnabled */
dan8099ce62009-09-23 08:43:35 +0000904 char const *zFrom; /* Name of child table */
dan1da40a32009-09-19 17:00:31 +0000905 int nFrom; /* Length in bytes of zFrom */
dan29c7f9c2009-09-22 15:53:47 +0000906 Index *pIdx = 0; /* Parent key index for this FK */
907 int *aiCol = 0; /* child table cols -> parent key cols */
908 TriggerStep *pStep; /* First (only) step of trigger program */
909 Expr *pWhere = 0; /* WHERE clause of trigger step */
910 ExprList *pList = 0; /* Changes list if ON UPDATE CASCADE */
dan9277efa2009-09-28 11:54:21 +0000911 Select *pSelect = 0; /* If RESTRICT, "SELECT RAISE(...)" */
dan29c7f9c2009-09-22 15:53:47 +0000912 int i; /* Iterator variable */
drh788536b2009-09-23 03:01:58 +0000913 Expr *pWhen = 0; /* WHEN clause for the trigger */
dan1da40a32009-09-19 17:00:31 +0000914
915 if( locateFkeyIndex(pParse, pTab, pFKey, &pIdx, &aiCol) ) return 0;
916 assert( aiCol || pFKey->nCol==1 );
917
dan1da40a32009-09-19 17:00:31 +0000918 for(i=0; i<pFKey->nCol; i++){
dan1da40a32009-09-19 17:00:31 +0000919 Token tOld = { "old", 3 }; /* Literal "old" token */
920 Token tNew = { "new", 3 }; /* Literal "new" token */
dan8099ce62009-09-23 08:43:35 +0000921 Token tFromCol; /* Name of column in child table */
922 Token tToCol; /* Name of column in parent table */
923 int iFromCol; /* Idx of column in child table */
dan29c7f9c2009-09-22 15:53:47 +0000924 Expr *pEq; /* tFromCol = OLD.tToCol */
dan1da40a32009-09-19 17:00:31 +0000925
926 iFromCol = aiCol ? aiCol[i] : pFKey->aCol[0].iFrom;
dana8f0bf62009-09-23 12:06:52 +0000927 assert( iFromCol>=0 );
dan1da40a32009-09-19 17:00:31 +0000928 tToCol.z = pIdx ? pTab->aCol[pIdx->aiColumn[i]].zName : "oid";
dana8f0bf62009-09-23 12:06:52 +0000929 tFromCol.z = pFKey->pFrom->aCol[iFromCol].zName;
dan1da40a32009-09-19 17:00:31 +0000930
931 tToCol.n = sqlite3Strlen30(tToCol.z);
932 tFromCol.n = sqlite3Strlen30(tFromCol.z);
933
934 /* Create the expression "zFromCol = OLD.zToCol" */
935 pEq = sqlite3PExpr(pParse, TK_EQ,
936 sqlite3PExpr(pParse, TK_ID, 0, 0, &tFromCol),
937 sqlite3PExpr(pParse, TK_DOT,
938 sqlite3PExpr(pParse, TK_ID, 0, 0, &tOld),
939 sqlite3PExpr(pParse, TK_ID, 0, 0, &tToCol)
940 , 0)
941 , 0);
dan29c7f9c2009-09-22 15:53:47 +0000942 pWhere = sqlite3ExprAnd(db, pWhere, pEq);
dan1da40a32009-09-19 17:00:31 +0000943
drh788536b2009-09-23 03:01:58 +0000944 /* For ON UPDATE, construct the next term of the WHEN clause.
945 ** The final WHEN clause will be like this:
946 **
947 ** WHEN NOT(old.col1 IS new.col1 AND ... AND old.colN IS new.colN)
948 */
949 if( pChanges ){
950 pEq = sqlite3PExpr(pParse, TK_IS,
951 sqlite3PExpr(pParse, TK_DOT,
952 sqlite3PExpr(pParse, TK_ID, 0, 0, &tOld),
953 sqlite3PExpr(pParse, TK_ID, 0, 0, &tToCol),
954 0),
955 sqlite3PExpr(pParse, TK_DOT,
956 sqlite3PExpr(pParse, TK_ID, 0, 0, &tNew),
957 sqlite3PExpr(pParse, TK_ID, 0, 0, &tToCol),
958 0),
959 0);
960 pWhen = sqlite3ExprAnd(db, pWhen, pEq);
961 }
962
dan9277efa2009-09-28 11:54:21 +0000963 if( action!=OE_Restrict && (action!=OE_Cascade || pChanges) ){
dan1da40a32009-09-19 17:00:31 +0000964 Expr *pNew;
965 if( action==OE_Cascade ){
966 pNew = sqlite3PExpr(pParse, TK_DOT,
967 sqlite3PExpr(pParse, TK_ID, 0, 0, &tNew),
968 sqlite3PExpr(pParse, TK_ID, 0, 0, &tToCol)
969 , 0);
970 }else if( action==OE_SetDflt ){
dan934ce302009-09-22 16:08:58 +0000971 Expr *pDflt = pFKey->pFrom->aCol[iFromCol].pDflt;
dan1da40a32009-09-19 17:00:31 +0000972 if( pDflt ){
973 pNew = sqlite3ExprDup(db, pDflt, 0);
974 }else{
975 pNew = sqlite3PExpr(pParse, TK_NULL, 0, 0, 0);
976 }
977 }else{
978 pNew = sqlite3PExpr(pParse, TK_NULL, 0, 0, 0);
979 }
980 pList = sqlite3ExprListAppend(pParse, pList, pNew);
981 sqlite3ExprListSetName(pParse, pList, &tFromCol, 0);
982 }
983 }
dan29c7f9c2009-09-22 15:53:47 +0000984 sqlite3DbFree(db, aiCol);
dan1da40a32009-09-19 17:00:31 +0000985
dan9277efa2009-09-28 11:54:21 +0000986 zFrom = pFKey->pFrom->zName;
987 nFrom = sqlite3Strlen30(zFrom);
988
989 if( action==OE_Restrict ){
990 Token tFrom;
991 Expr *pRaise;
992
993 tFrom.z = zFrom;
994 tFrom.n = nFrom;
995 pRaise = sqlite3Expr(db, TK_RAISE, "foreign key constraint failed");
996 if( pRaise ){
997 pRaise->affinity = OE_Abort;
998 }
999 pSelect = sqlite3SelectNew(pParse,
1000 sqlite3ExprListAppend(pParse, 0, pRaise),
1001 sqlite3SrcListAppend(db, 0, &tFrom, 0),
1002 pWhere,
1003 0, 0, 0, 0, 0, 0
1004 );
1005 pWhere = 0;
1006 }
1007
drh1f638ce2009-09-24 13:48:10 +00001008 /* In the current implementation, pTab->dbMem==0 for all tables except
1009 ** for temporary tables used to describe subqueries. And temporary
1010 ** tables do not have foreign key constraints. Hence, pTab->dbMem
1011 ** should always be 0 there.
1012 */
dan29c7f9c2009-09-22 15:53:47 +00001013 enableLookaside = db->lookaside.bEnabled;
drh46803c32009-09-24 14:27:33 +00001014 db->lookaside.bEnabled = 0;
dan29c7f9c2009-09-22 15:53:47 +00001015
dan29c7f9c2009-09-22 15:53:47 +00001016 pTrigger = (Trigger *)sqlite3DbMallocZero(db,
1017 sizeof(Trigger) + /* struct Trigger */
1018 sizeof(TriggerStep) + /* Single step in trigger program */
1019 nFrom + 1 /* Space for pStep->target.z */
1020 );
1021 if( pTrigger ){
1022 pStep = pTrigger->step_list = (TriggerStep *)&pTrigger[1];
1023 pStep->target.z = (char *)&pStep[1];
1024 pStep->target.n = nFrom;
1025 memcpy((char *)pStep->target.z, zFrom, nFrom);
1026
1027 pStep->pWhere = sqlite3ExprDup(db, pWhere, EXPRDUP_REDUCE);
1028 pStep->pExprList = sqlite3ExprListDup(db, pList, EXPRDUP_REDUCE);
dan9277efa2009-09-28 11:54:21 +00001029 pStep->pSelect = sqlite3SelectDup(db, pSelect, EXPRDUP_REDUCE);
drh788536b2009-09-23 03:01:58 +00001030 if( pWhen ){
1031 pWhen = sqlite3PExpr(pParse, TK_NOT, pWhen, 0, 0);
1032 pTrigger->pWhen = sqlite3ExprDup(db, pWhen, EXPRDUP_REDUCE);
1033 }
dan29c7f9c2009-09-22 15:53:47 +00001034 }
1035
1036 /* Re-enable the lookaside buffer, if it was disabled earlier. */
1037 db->lookaside.bEnabled = enableLookaside;
1038
drh788536b2009-09-23 03:01:58 +00001039 sqlite3ExprDelete(db, pWhere);
1040 sqlite3ExprDelete(db, pWhen);
1041 sqlite3ExprListDelete(db, pList);
dan9277efa2009-09-28 11:54:21 +00001042 sqlite3SelectDelete(db, pSelect);
dan29c7f9c2009-09-22 15:53:47 +00001043 if( db->mallocFailed==1 ){
1044 fkTriggerDelete(db, pTrigger);
1045 return 0;
1046 }
dan1da40a32009-09-19 17:00:31 +00001047
dan9277efa2009-09-28 11:54:21 +00001048 switch( action ){
1049 case OE_Restrict:
1050 pStep->op = TK_SELECT;
1051 break;
1052 case OE_Cascade:
1053 if( !pChanges ){
1054 pStep->op = TK_DELETE;
1055 break;
1056 }
1057 default:
1058 pStep->op = TK_UPDATE;
1059 }
dan1da40a32009-09-19 17:00:31 +00001060 pStep->pTrig = pTrigger;
1061 pTrigger->pSchema = pTab->pSchema;
1062 pTrigger->pTabSchema = pTab->pSchema;
dan8099ce62009-09-23 08:43:35 +00001063 pFKey->apTrigger[iAction] = pTrigger;
1064 pTrigger->op = (pChanges ? TK_UPDATE : TK_DELETE);
dan1da40a32009-09-19 17:00:31 +00001065 }
1066
1067 return pTrigger;
1068}
1069
dan1da40a32009-09-19 17:00:31 +00001070/*
1071** This function is called when deleting or updating a row to implement
1072** any required CASCADE, SET NULL or SET DEFAULT actions.
1073*/
1074void sqlite3FkActions(
1075 Parse *pParse, /* Parse context */
1076 Table *pTab, /* Table being updated or deleted from */
1077 ExprList *pChanges, /* Change-list for UPDATE, NULL for DELETE */
1078 int regOld /* Address of array containing old row */
1079){
1080 /* If foreign-key support is enabled, iterate through all FKs that
1081 ** refer to table pTab. If there is an action associated with the FK
1082 ** for this operation (either update or delete), invoke the associated
1083 ** trigger sub-program. */
1084 if( pParse->db->flags&SQLITE_ForeignKeys ){
1085 FKey *pFKey; /* Iterator variable */
dan432cc5b2009-09-26 17:51:48 +00001086 for(pFKey = sqlite3FkReferences(pTab); pFKey; pFKey=pFKey->pNextTo){
dan1da40a32009-09-19 17:00:31 +00001087 Trigger *pAction = fkActionTrigger(pParse, pTab, pFKey, pChanges);
1088 if( pAction ){
1089 sqlite3CodeRowTriggerDirect(pParse, pAction, pTab, regOld, OE_Abort, 0);
1090 }
1091 }
1092 }
1093}
1094
dan75cbd982009-09-21 16:06:03 +00001095#endif /* ifndef SQLITE_OMIT_TRIGGER */
1096
dan1da40a32009-09-19 17:00:31 +00001097/*
1098** Free all memory associated with foreign key definitions attached to
1099** table pTab. Remove the deleted foreign keys from the Schema.fkeyHash
1100** hash table.
1101*/
1102void sqlite3FkDelete(Table *pTab){
1103 FKey *pFKey; /* Iterator variable */
1104 FKey *pNext; /* Copy of pFKey->pNextFrom */
1105
1106 for(pFKey=pTab->pFKey; pFKey; pFKey=pNext){
1107
1108 /* Remove the FK from the fkeyHash hash table. */
1109 if( pFKey->pPrevTo ){
1110 pFKey->pPrevTo->pNextTo = pFKey->pNextTo;
1111 }else{
1112 void *data = (void *)pFKey->pNextTo;
1113 const char *z = (data ? pFKey->pNextTo->zTo : pFKey->zTo);
1114 sqlite3HashInsert(&pTab->pSchema->fkeyHash, z, sqlite3Strlen30(z), data);
1115 }
1116 if( pFKey->pNextTo ){
1117 pFKey->pNextTo->pPrevTo = pFKey->pPrevTo;
1118 }
1119
1120 /* Delete any triggers created to implement actions for this FK. */
dan75cbd982009-09-21 16:06:03 +00001121#ifndef SQLITE_OMIT_TRIGGER
dan8099ce62009-09-23 08:43:35 +00001122 fkTriggerDelete(pTab->dbMem, pFKey->apTrigger[0]);
1123 fkTriggerDelete(pTab->dbMem, pFKey->apTrigger[1]);
dan75cbd982009-09-21 16:06:03 +00001124#endif
dan1da40a32009-09-19 17:00:31 +00001125
1126 /* Delete the memory allocated for the FK structure. */
1127 pNext = pFKey->pNextFrom;
1128 sqlite3DbFree(pTab->dbMem, pFKey);
1129 }
1130}
dan75cbd982009-09-21 16:06:03 +00001131#endif /* ifndef SQLITE_OMIT_FOREIGN_KEY */