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drh9a324642003-09-06 20:12:01 +00001/*
2** 2003 September 6
3**
4** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
6**
7** May you do good and not evil.
8** May you find forgiveness for yourself and forgive others.
9** May you share freely, never taking more than you give.
10**
11*************************************************************************
12** This file contains code used for creating, destroying, and populating
danielk1977fc57d7b2004-05-26 02:04:57 +000013** a VDBE (or an "sqlite3_stmt" as it is known to the outside world.) Prior
drh9a324642003-09-06 20:12:01 +000014** to version 2.8.7, all this code was combined into the vdbe.c source file.
15** But that file was getting too big so this subroutines were split out.
16*/
17#include "sqliteInt.h"
drh9a324642003-09-06 20:12:01 +000018#include "vdbeInt.h"
19
20
drh46c99e02007-08-27 23:26:59 +000021
drh9a324642003-09-06 20:12:01 +000022/*
23** When debugging the code generator in a symbolic debugger, one can
mlcreech3a00f902008-03-04 17:45:01 +000024** set the sqlite3VdbeAddopTrace to 1 and all opcodes will be printed
drh9a324642003-09-06 20:12:01 +000025** as they are added to the instruction stream.
26*/
drh8d904f02005-06-14 17:47:58 +000027#ifdef SQLITE_DEBUG
mlcreech3a00f902008-03-04 17:45:01 +000028int sqlite3VdbeAddopTrace = 0;
drh9a324642003-09-06 20:12:01 +000029#endif
30
31
32/*
33** Create a new virtual database engine.
34*/
drh9bb575f2004-09-06 17:24:11 +000035Vdbe *sqlite3VdbeCreate(sqlite3 *db){
drh9a324642003-09-06 20:12:01 +000036 Vdbe *p;
drh17435752007-08-16 04:30:38 +000037 p = sqlite3DbMallocZero(db, sizeof(Vdbe) );
drh9a324642003-09-06 20:12:01 +000038 if( p==0 ) return 0;
39 p->db = db;
40 if( db->pVdbe ){
41 db->pVdbe->pPrev = p;
42 }
43 p->pNext = db->pVdbe;
44 p->pPrev = 0;
45 db->pVdbe = p;
46 p->magic = VDBE_MAGIC_INIT;
47 return p;
48}
49
50/*
drhb900aaf2006-11-09 00:24:53 +000051** Remember the SQL string for a prepared statement.
52*/
danielk19776ab3a2e2009-02-19 14:39:25 +000053void sqlite3VdbeSetSql(Vdbe *p, const char *z, int n, int isPrepareV2){
dan1d2ce4f2009-10-19 18:11:09 +000054 assert( isPrepareV2==1 || isPrepareV2==0 );
drhb900aaf2006-11-09 00:24:53 +000055 if( p==0 ) return;
danac455932012-11-26 19:50:41 +000056#if defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_ENABLE_SQLLOG)
danielk19776ab3a2e2009-02-19 14:39:25 +000057 if( !isPrepareV2 ) return;
58#endif
drhb900aaf2006-11-09 00:24:53 +000059 assert( p->zSql==0 );
drh17435752007-08-16 04:30:38 +000060 p->zSql = sqlite3DbStrNDup(p->db, z, n);
shanef639c402009-11-03 19:42:30 +000061 p->isPrepareV2 = (u8)isPrepareV2;
drhb900aaf2006-11-09 00:24:53 +000062}
63
64/*
65** Return the SQL associated with a prepared statement
66*/
danielk1977d0e2a852007-11-14 06:48:48 +000067const char *sqlite3_sql(sqlite3_stmt *pStmt){
danielk19776ab3a2e2009-02-19 14:39:25 +000068 Vdbe *p = (Vdbe *)pStmt;
drh87f5c5f2010-01-20 01:20:56 +000069 return (p && p->isPrepareV2) ? p->zSql : 0;
drhb900aaf2006-11-09 00:24:53 +000070}
71
72/*
drhc5155252007-01-08 21:07:17 +000073** Swap all content between two VDBE structures.
drhb900aaf2006-11-09 00:24:53 +000074*/
drhc5155252007-01-08 21:07:17 +000075void sqlite3VdbeSwap(Vdbe *pA, Vdbe *pB){
76 Vdbe tmp, *pTmp;
77 char *zTmp;
drhc5155252007-01-08 21:07:17 +000078 tmp = *pA;
79 *pA = *pB;
80 *pB = tmp;
81 pTmp = pA->pNext;
82 pA->pNext = pB->pNext;
83 pB->pNext = pTmp;
84 pTmp = pA->pPrev;
85 pA->pPrev = pB->pPrev;
86 pB->pPrev = pTmp;
87 zTmp = pA->zSql;
88 pA->zSql = pB->zSql;
89 pB->zSql = zTmp;
danielk19776ab3a2e2009-02-19 14:39:25 +000090 pB->isPrepareV2 = pA->isPrepareV2;
drhb900aaf2006-11-09 00:24:53 +000091}
92
drhcf1023c2007-05-08 20:59:49 +000093#ifdef SQLITE_DEBUG
drhb900aaf2006-11-09 00:24:53 +000094/*
drh9a324642003-09-06 20:12:01 +000095** Turn tracing on or off
96*/
danielk19774adee202004-05-08 08:23:19 +000097void sqlite3VdbeTrace(Vdbe *p, FILE *trace){
drh9a324642003-09-06 20:12:01 +000098 p->trace = trace;
99}
drhcf1023c2007-05-08 20:59:49 +0000100#endif
drh9a324642003-09-06 20:12:01 +0000101
102/*
danielk197700e13612008-11-17 19:18:54 +0000103** Resize the Vdbe.aOp array so that it is at least one op larger than
104** it was.
danielk1977ace3eb22006-01-26 10:35:04 +0000105**
danielk197700e13612008-11-17 19:18:54 +0000106** If an out-of-memory error occurs while resizing the array, return
107** SQLITE_NOMEM. In this case Vdbe.aOp and Vdbe.nOpAlloc remain
108** unchanged (this is so that any opcodes already allocated can be
109** correctly deallocated along with the rest of the Vdbe).
drh76ff3a02004-09-24 22:32:30 +0000110*/
danielk197700e13612008-11-17 19:18:54 +0000111static int growOpArray(Vdbe *p){
drha4e5d582007-10-20 15:41:57 +0000112 VdbeOp *pNew;
danielk197700e13612008-11-17 19:18:54 +0000113 int nNew = (p->nOpAlloc ? p->nOpAlloc*2 : (int)(1024/sizeof(Op)));
114 pNew = sqlite3DbRealloc(p->db, p->aOp, nNew*sizeof(Op));
drha4e5d582007-10-20 15:41:57 +0000115 if( pNew ){
drhb45f65d2009-03-01 19:42:11 +0000116 p->nOpAlloc = sqlite3DbMallocSize(p->db, pNew)/sizeof(Op);
drha4e5d582007-10-20 15:41:57 +0000117 p->aOp = pNew;
drh76ff3a02004-09-24 22:32:30 +0000118 }
danielk197700e13612008-11-17 19:18:54 +0000119 return (pNew ? SQLITE_OK : SQLITE_NOMEM);
drh76ff3a02004-09-24 22:32:30 +0000120}
121
122/*
drh9a324642003-09-06 20:12:01 +0000123** Add a new instruction to the list of instructions current in the
124** VDBE. Return the address of the new instruction.
125**
126** Parameters:
127**
128** p Pointer to the VDBE
129**
130** op The opcode for this instruction
131**
drh66a51672008-01-03 00:01:23 +0000132** p1, p2, p3 Operands
drh9a324642003-09-06 20:12:01 +0000133**
danielk19774adee202004-05-08 08:23:19 +0000134** Use the sqlite3VdbeResolveLabel() function to fix an address and
drh66a51672008-01-03 00:01:23 +0000135** the sqlite3VdbeChangeP4() function to change the value of the P4
drh9a324642003-09-06 20:12:01 +0000136** operand.
137*/
drh66a51672008-01-03 00:01:23 +0000138int sqlite3VdbeAddOp3(Vdbe *p, int op, int p1, int p2, int p3){
drh9a324642003-09-06 20:12:01 +0000139 int i;
drh701a0ae2004-02-22 20:05:00 +0000140 VdbeOp *pOp;
drh9a324642003-09-06 20:12:01 +0000141
142 i = p->nOp;
drh9a324642003-09-06 20:12:01 +0000143 assert( p->magic==VDBE_MAGIC_INIT );
drh8df32842008-12-09 02:51:23 +0000144 assert( op>0 && op<0xff );
drhfd2d26b2006-03-15 22:44:36 +0000145 if( p->nOpAlloc<=i ){
danielk197700e13612008-11-17 19:18:54 +0000146 if( growOpArray(p) ){
drhc42ed162009-06-26 14:04:51 +0000147 return 1;
drhfd2d26b2006-03-15 22:44:36 +0000148 }
drh9a324642003-09-06 20:12:01 +0000149 }
danielk197701256832007-04-18 14:24:32 +0000150 p->nOp++;
drh701a0ae2004-02-22 20:05:00 +0000151 pOp = &p->aOp[i];
drh8df32842008-12-09 02:51:23 +0000152 pOp->opcode = (u8)op;
drh26c9b5e2008-04-11 14:56:53 +0000153 pOp->p5 = 0;
drh701a0ae2004-02-22 20:05:00 +0000154 pOp->p1 = p1;
drh701a0ae2004-02-22 20:05:00 +0000155 pOp->p2 = p2;
drh66a51672008-01-03 00:01:23 +0000156 pOp->p3 = p3;
157 pOp->p4.p = 0;
158 pOp->p4type = P4_NOTUSED;
danielk19778b60e0f2005-01-12 09:10:39 +0000159#ifdef SQLITE_DEBUG
drh26c9b5e2008-04-11 14:56:53 +0000160 pOp->zComment = 0;
mlcreech3a00f902008-03-04 17:45:01 +0000161 if( sqlite3VdbeAddopTrace ) sqlite3VdbePrintOp(0, i, &p->aOp[i]);
drh9a324642003-09-06 20:12:01 +0000162#endif
drh26c9b5e2008-04-11 14:56:53 +0000163#ifdef VDBE_PROFILE
164 pOp->cycles = 0;
165 pOp->cnt = 0;
166#endif
drh9a324642003-09-06 20:12:01 +0000167 return i;
168}
drh66a51672008-01-03 00:01:23 +0000169int sqlite3VdbeAddOp0(Vdbe *p, int op){
170 return sqlite3VdbeAddOp3(p, op, 0, 0, 0);
171}
172int sqlite3VdbeAddOp1(Vdbe *p, int op, int p1){
173 return sqlite3VdbeAddOp3(p, op, p1, 0, 0);
174}
175int sqlite3VdbeAddOp2(Vdbe *p, int op, int p1, int p2){
176 return sqlite3VdbeAddOp3(p, op, p1, p2, 0);
drh701a0ae2004-02-22 20:05:00 +0000177}
178
drh66a51672008-01-03 00:01:23 +0000179
drh701a0ae2004-02-22 20:05:00 +0000180/*
drh66a51672008-01-03 00:01:23 +0000181** Add an opcode that includes the p4 value as a pointer.
drhd4e70eb2008-01-02 00:34:36 +0000182*/
drh66a51672008-01-03 00:01:23 +0000183int sqlite3VdbeAddOp4(
drhd4e70eb2008-01-02 00:34:36 +0000184 Vdbe *p, /* Add the opcode to this VM */
185 int op, /* The new opcode */
drh66a51672008-01-03 00:01:23 +0000186 int p1, /* The P1 operand */
187 int p2, /* The P2 operand */
188 int p3, /* The P3 operand */
189 const char *zP4, /* The P4 operand */
190 int p4type /* P4 operand type */
drhd4e70eb2008-01-02 00:34:36 +0000191){
drh66a51672008-01-03 00:01:23 +0000192 int addr = sqlite3VdbeAddOp3(p, op, p1, p2, p3);
193 sqlite3VdbeChangeP4(p, addr, zP4, p4type);
drhd4e70eb2008-01-02 00:34:36 +0000194 return addr;
195}
196
197/*
drh5d9c9da2011-06-03 20:11:17 +0000198** Add an OP_ParseSchema opcode. This routine is broken out from
drhe4c88c02012-01-04 12:57:45 +0000199** sqlite3VdbeAddOp4() since it needs to also needs to mark all btrees
200** as having been used.
drh5d9c9da2011-06-03 20:11:17 +0000201**
202** The zWhere string must have been obtained from sqlite3_malloc().
203** This routine will take ownership of the allocated memory.
204*/
205void sqlite3VdbeAddParseSchemaOp(Vdbe *p, int iDb, char *zWhere){
206 int j;
207 int addr = sqlite3VdbeAddOp3(p, OP_ParseSchema, iDb, 0, 0);
208 sqlite3VdbeChangeP4(p, addr, zWhere, P4_DYNAMIC);
209 for(j=0; j<p->db->nDb; j++) sqlite3VdbeUsesBtree(p, j);
210}
211
212/*
drh8cff69d2009-11-12 19:59:44 +0000213** Add an opcode that includes the p4 value as an integer.
214*/
215int sqlite3VdbeAddOp4Int(
216 Vdbe *p, /* Add the opcode to this VM */
217 int op, /* The new opcode */
218 int p1, /* The P1 operand */
219 int p2, /* The P2 operand */
220 int p3, /* The P3 operand */
221 int p4 /* The P4 operand as an integer */
222){
223 int addr = sqlite3VdbeAddOp3(p, op, p1, p2, p3);
224 sqlite3VdbeChangeP4(p, addr, SQLITE_INT_TO_PTR(p4), P4_INT32);
225 return addr;
226}
227
228/*
drh9a324642003-09-06 20:12:01 +0000229** Create a new symbolic label for an instruction that has yet to be
230** coded. The symbolic label is really just a negative number. The
231** label can be used as the P2 value of an operation. Later, when
232** the label is resolved to a specific address, the VDBE will scan
233** through its operation list and change all values of P2 which match
234** the label into the resolved address.
235**
236** The VDBE knows that a P2 value is a label because labels are
237** always negative and P2 values are suppose to be non-negative.
238** Hence, a negative P2 value is a label that has yet to be resolved.
danielk1977b5548a82004-06-26 13:51:33 +0000239**
240** Zero is returned if a malloc() fails.
drh9a324642003-09-06 20:12:01 +0000241*/
danielk19774adee202004-05-08 08:23:19 +0000242int sqlite3VdbeMakeLabel(Vdbe *p){
drhc35f3d52012-02-01 19:03:38 +0000243 int i = p->nLabel++;
drh9a324642003-09-06 20:12:01 +0000244 assert( p->magic==VDBE_MAGIC_INIT );
drhc35f3d52012-02-01 19:03:38 +0000245 if( (i & (i-1))==0 ){
246 p->aLabel = sqlite3DbReallocOrFree(p->db, p->aLabel,
247 (i*2+1)*sizeof(p->aLabel[0]));
drh9a324642003-09-06 20:12:01 +0000248 }
drh76ff3a02004-09-24 22:32:30 +0000249 if( p->aLabel ){
250 p->aLabel[i] = -1;
drh9a324642003-09-06 20:12:01 +0000251 }
drh9a324642003-09-06 20:12:01 +0000252 return -1-i;
253}
254
255/*
256** Resolve label "x" to be the address of the next instruction to
257** be inserted. The parameter "x" must have been obtained from
danielk19774adee202004-05-08 08:23:19 +0000258** a prior call to sqlite3VdbeMakeLabel().
drh9a324642003-09-06 20:12:01 +0000259*/
danielk19774adee202004-05-08 08:23:19 +0000260void sqlite3VdbeResolveLabel(Vdbe *p, int x){
drh76ff3a02004-09-24 22:32:30 +0000261 int j = -1-x;
drh9a324642003-09-06 20:12:01 +0000262 assert( p->magic==VDBE_MAGIC_INIT );
drh76ff3a02004-09-24 22:32:30 +0000263 assert( j>=0 && j<p->nLabel );
264 if( p->aLabel ){
265 p->aLabel[j] = p->nOp;
drh9a324642003-09-06 20:12:01 +0000266 }
267}
268
drh4611d922010-02-25 14:47:01 +0000269/*
270** Mark the VDBE as one that can only be run one time.
271*/
272void sqlite3VdbeRunOnlyOnce(Vdbe *p){
273 p->runOnlyOnce = 1;
274}
275
drhff738bc2009-09-24 00:09:58 +0000276#ifdef SQLITE_DEBUG /* sqlite3AssertMayAbort() logic */
dan144926d2009-09-09 11:37:20 +0000277
278/*
279** The following type and function are used to iterate through all opcodes
280** in a Vdbe main program and each of the sub-programs (triggers) it may
281** invoke directly or indirectly. It should be used as follows:
282**
283** Op *pOp;
284** VdbeOpIter sIter;
285**
286** memset(&sIter, 0, sizeof(sIter));
287** sIter.v = v; // v is of type Vdbe*
288** while( (pOp = opIterNext(&sIter)) ){
289** // Do something with pOp
290** }
291** sqlite3DbFree(v->db, sIter.apSub);
292**
293*/
294typedef struct VdbeOpIter VdbeOpIter;
295struct VdbeOpIter {
296 Vdbe *v; /* Vdbe to iterate through the opcodes of */
297 SubProgram **apSub; /* Array of subprograms */
298 int nSub; /* Number of entries in apSub */
299 int iAddr; /* Address of next instruction to return */
300 int iSub; /* 0 = main program, 1 = first sub-program etc. */
301};
302static Op *opIterNext(VdbeOpIter *p){
303 Vdbe *v = p->v;
304 Op *pRet = 0;
305 Op *aOp;
306 int nOp;
307
308 if( p->iSub<=p->nSub ){
309
310 if( p->iSub==0 ){
311 aOp = v->aOp;
312 nOp = v->nOp;
313 }else{
314 aOp = p->apSub[p->iSub-1]->aOp;
315 nOp = p->apSub[p->iSub-1]->nOp;
316 }
317 assert( p->iAddr<nOp );
318
319 pRet = &aOp[p->iAddr];
320 p->iAddr++;
321 if( p->iAddr==nOp ){
322 p->iSub++;
323 p->iAddr = 0;
324 }
325
326 if( pRet->p4type==P4_SUBPROGRAM ){
327 int nByte = (p->nSub+1)*sizeof(SubProgram*);
328 int j;
329 for(j=0; j<p->nSub; j++){
330 if( p->apSub[j]==pRet->p4.pProgram ) break;
331 }
332 if( j==p->nSub ){
333 p->apSub = sqlite3DbReallocOrFree(v->db, p->apSub, nByte);
334 if( !p->apSub ){
335 pRet = 0;
336 }else{
337 p->apSub[p->nSub++] = pRet->p4.pProgram;
338 }
339 }
340 }
341 }
342
343 return pRet;
344}
345
346/*
danf3677212009-09-10 16:14:50 +0000347** Check if the program stored in the VM associated with pParse may
drhff738bc2009-09-24 00:09:58 +0000348** throw an ABORT exception (causing the statement, but not entire transaction
dan144926d2009-09-09 11:37:20 +0000349** to be rolled back). This condition is true if the main program or any
350** sub-programs contains any of the following:
351**
352** * OP_Halt with P1=SQLITE_CONSTRAINT and P2=OE_Abort.
353** * OP_HaltIfNull with P1=SQLITE_CONSTRAINT and P2=OE_Abort.
354** * OP_Destroy
355** * OP_VUpdate
356** * OP_VRename
dan32b09f22009-09-23 17:29:59 +0000357** * OP_FkCounter with P2==0 (immediate foreign key constraint)
dan144926d2009-09-09 11:37:20 +0000358**
danf3677212009-09-10 16:14:50 +0000359** Then check that the value of Parse.mayAbort is true if an
360** ABORT may be thrown, or false otherwise. Return true if it does
361** match, or false otherwise. This function is intended to be used as
362** part of an assert statement in the compiler. Similar to:
363**
364** assert( sqlite3VdbeAssertMayAbort(pParse->pVdbe, pParse->mayAbort) );
dan144926d2009-09-09 11:37:20 +0000365*/
danf3677212009-09-10 16:14:50 +0000366int sqlite3VdbeAssertMayAbort(Vdbe *v, int mayAbort){
367 int hasAbort = 0;
dan144926d2009-09-09 11:37:20 +0000368 Op *pOp;
369 VdbeOpIter sIter;
370 memset(&sIter, 0, sizeof(sIter));
371 sIter.v = v;
372
373 while( (pOp = opIterNext(&sIter))!=0 ){
374 int opcode = pOp->opcode;
375 if( opcode==OP_Destroy || opcode==OP_VUpdate || opcode==OP_VRename
dan32b09f22009-09-23 17:29:59 +0000376#ifndef SQLITE_OMIT_FOREIGN_KEY
dan0ff297e2009-09-25 17:03:14 +0000377 || (opcode==OP_FkCounter && pOp->p1==0 && pOp->p2==1)
dan32b09f22009-09-23 17:29:59 +0000378#endif
dan144926d2009-09-09 11:37:20 +0000379 || ((opcode==OP_Halt || opcode==OP_HaltIfNull)
380 && (pOp->p1==SQLITE_CONSTRAINT && pOp->p2==OE_Abort))
381 ){
danf3677212009-09-10 16:14:50 +0000382 hasAbort = 1;
dan144926d2009-09-09 11:37:20 +0000383 break;
384 }
385 }
dan144926d2009-09-09 11:37:20 +0000386 sqlite3DbFree(v->db, sIter.apSub);
danf3677212009-09-10 16:14:50 +0000387
388 /* Return true if hasAbort==mayAbort. Or if a malloc failure occured.
389 ** If malloc failed, then the while() loop above may not have iterated
390 ** through all opcodes and hasAbort may be set incorrectly. Return
391 ** true for this case to prevent the assert() in the callers frame
392 ** from failing. */
393 return ( v->db->mallocFailed || hasAbort==mayAbort );
dan144926d2009-09-09 11:37:20 +0000394}
drhff738bc2009-09-24 00:09:58 +0000395#endif /* SQLITE_DEBUG - the sqlite3AssertMayAbort() function */
dan144926d2009-09-09 11:37:20 +0000396
drh9a324642003-09-06 20:12:01 +0000397/*
drh9cbf3422008-01-17 16:22:13 +0000398** Loop through the program looking for P2 values that are negative
399** on jump instructions. Each such value is a label. Resolve the
400** label by setting the P2 value to its correct non-zero value.
drh76ff3a02004-09-24 22:32:30 +0000401**
402** This routine is called once after all opcodes have been inserted.
danielk1977634f2982005-03-28 08:44:07 +0000403**
drh13449892005-09-07 21:22:45 +0000404** Variable *pMaxFuncArgs is set to the maximum value of any P2 argument
danielk1977399918f2006-06-14 13:03:23 +0000405** to an OP_Function, OP_AggStep or OP_VFilter opcode. This is used by
danielk1977634f2982005-03-28 08:44:07 +0000406** sqlite3VdbeMakeReady() to size the Vdbe.apArg[] array.
drha6c2ed92009-11-14 23:22:23 +0000407**
408** The Op.opflags field is set on all opcodes.
drh76ff3a02004-09-24 22:32:30 +0000409*/
drh9cbf3422008-01-17 16:22:13 +0000410static void resolveP2Values(Vdbe *p, int *pMaxFuncArgs){
drh76ff3a02004-09-24 22:32:30 +0000411 int i;
dan165921a2009-08-28 18:53:45 +0000412 int nMaxArgs = *pMaxFuncArgs;
drh76ff3a02004-09-24 22:32:30 +0000413 Op *pOp;
414 int *aLabel = p->aLabel;
drhad4a4b82008-11-05 16:37:34 +0000415 p->readOnly = 1;
drh76ff3a02004-09-24 22:32:30 +0000416 for(pOp=p->aOp, i=p->nOp-1; i>=0; i--, pOp++){
danielk1977634f2982005-03-28 08:44:07 +0000417 u8 opcode = pOp->opcode;
418
drha6c2ed92009-11-14 23:22:23 +0000419 pOp->opflags = sqlite3OpcodeProperty[opcode];
drha2baf3a2008-06-18 15:34:09 +0000420 if( opcode==OP_Function || opcode==OP_AggStep ){
drh98757152008-01-09 23:04:12 +0000421 if( pOp->p5>nMaxArgs ) nMaxArgs = pOp->p5;
drh10fc7272010-12-08 18:30:19 +0000422 }else if( (opcode==OP_Transaction && pOp->p2!=0) || opcode==OP_Vacuum ){
drhad4a4b82008-11-05 16:37:34 +0000423 p->readOnly = 0;
danielk1977182c4ba2007-06-27 15:53:34 +0000424#ifndef SQLITE_OMIT_VIRTUALTABLE
drha6c2ed92009-11-14 23:22:23 +0000425 }else if( opcode==OP_VUpdate ){
426 if( pOp->p2>nMaxArgs ) nMaxArgs = pOp->p2;
drh4be8b512006-06-13 23:51:34 +0000427 }else if( opcode==OP_VFilter ){
428 int n;
429 assert( p->nOp - i >= 3 );
drh4c583122008-01-04 22:01:03 +0000430 assert( pOp[-1].opcode==OP_Integer );
danielk19776dbee812008-01-03 18:39:41 +0000431 n = pOp[-1].p1;
drh4be8b512006-06-13 23:51:34 +0000432 if( n>nMaxArgs ) nMaxArgs = n;
danielk1977182c4ba2007-06-27 15:53:34 +0000433#endif
drhc6aff302011-09-01 15:32:47 +0000434 }else if( opcode==OP_Next || opcode==OP_SorterNext ){
dana205a482011-08-27 18:48:57 +0000435 pOp->p4.xAdvance = sqlite3BtreeNext;
436 pOp->p4type = P4_ADVANCE;
437 }else if( opcode==OP_Prev ){
438 pOp->p4.xAdvance = sqlite3BtreePrevious;
439 pOp->p4type = P4_ADVANCE;
danielk1977bc04f852005-03-29 08:26:13 +0000440 }
danielk1977634f2982005-03-28 08:44:07 +0000441
drha6c2ed92009-11-14 23:22:23 +0000442 if( (pOp->opflags & OPFLG_JUMP)!=0 && pOp->p2<0 ){
drhd2981512008-01-04 19:33:49 +0000443 assert( -1-pOp->p2<p->nLabel );
444 pOp->p2 = aLabel[-1-pOp->p2];
445 }
drh76ff3a02004-09-24 22:32:30 +0000446 }
drh633e6d52008-07-28 19:34:53 +0000447 sqlite3DbFree(p->db, p->aLabel);
drh76ff3a02004-09-24 22:32:30 +0000448 p->aLabel = 0;
danielk1977bc04f852005-03-29 08:26:13 +0000449
450 *pMaxFuncArgs = nMaxArgs;
drh76ff3a02004-09-24 22:32:30 +0000451}
452
453/*
drh9a324642003-09-06 20:12:01 +0000454** Return the address of the next instruction to be inserted.
455*/
danielk19774adee202004-05-08 08:23:19 +0000456int sqlite3VdbeCurrentAddr(Vdbe *p){
drh9a324642003-09-06 20:12:01 +0000457 assert( p->magic==VDBE_MAGIC_INIT );
458 return p->nOp;
459}
460
dan65a7cd12009-09-01 12:16:01 +0000461/*
462** This function returns a pointer to the array of opcodes associated with
463** the Vdbe passed as the first argument. It is the callers responsibility
464** to arrange for the returned array to be eventually freed using the
465** vdbeFreeOpArray() function.
466**
467** Before returning, *pnOp is set to the number of entries in the returned
468** array. Also, *pnMaxArg is set to the larger of its current value and
469** the number of entries in the Vdbe.apArg[] array required to execute the
470** returned program.
471*/
dan165921a2009-08-28 18:53:45 +0000472VdbeOp *sqlite3VdbeTakeOpArray(Vdbe *p, int *pnOp, int *pnMaxArg){
473 VdbeOp *aOp = p->aOp;
dan523a0872009-08-31 05:23:32 +0000474 assert( aOp && !p->db->mallocFailed );
dan65a7cd12009-09-01 12:16:01 +0000475
476 /* Check that sqlite3VdbeUsesBtree() was not called on this VM */
drhbdaec522011-04-04 00:14:43 +0000477 assert( p->btreeMask==0 );
dan65a7cd12009-09-01 12:16:01 +0000478
dan165921a2009-08-28 18:53:45 +0000479 resolveP2Values(p, pnMaxArg);
480 *pnOp = p->nOp;
481 p->aOp = 0;
482 return aOp;
483}
484
drh9a324642003-09-06 20:12:01 +0000485/*
486** Add a whole list of operations to the operation stack. Return the
487** address of the first operation added.
488*/
danielk19774adee202004-05-08 08:23:19 +0000489int sqlite3VdbeAddOpList(Vdbe *p, int nOp, VdbeOpList const *aOp){
drh9a324642003-09-06 20:12:01 +0000490 int addr;
491 assert( p->magic==VDBE_MAGIC_INIT );
danielk197700e13612008-11-17 19:18:54 +0000492 if( p->nOp + nOp > p->nOpAlloc && growOpArray(p) ){
drh76ff3a02004-09-24 22:32:30 +0000493 return 0;
drh9a324642003-09-06 20:12:01 +0000494 }
495 addr = p->nOp;
drh7b746032009-06-26 12:15:22 +0000496 if( ALWAYS(nOp>0) ){
drh9a324642003-09-06 20:12:01 +0000497 int i;
drh905793e2004-02-21 13:31:09 +0000498 VdbeOpList const *pIn = aOp;
499 for(i=0; i<nOp; i++, pIn++){
500 int p2 = pIn->p2;
501 VdbeOp *pOut = &p->aOp[i+addr];
502 pOut->opcode = pIn->opcode;
503 pOut->p1 = pIn->p1;
drha6c2ed92009-11-14 23:22:23 +0000504 if( p2<0 && (sqlite3OpcodeProperty[pOut->opcode] & OPFLG_JUMP)!=0 ){
drh8558cde2008-01-05 05:20:10 +0000505 pOut->p2 = addr + ADDR(p2);
506 }else{
507 pOut->p2 = p2;
508 }
drh24003452008-01-03 01:28:59 +0000509 pOut->p3 = pIn->p3;
510 pOut->p4type = P4_NOTUSED;
511 pOut->p4.p = 0;
512 pOut->p5 = 0;
danielk19778b60e0f2005-01-12 09:10:39 +0000513#ifdef SQLITE_DEBUG
drh26c9b5e2008-04-11 14:56:53 +0000514 pOut->zComment = 0;
mlcreech3a00f902008-03-04 17:45:01 +0000515 if( sqlite3VdbeAddopTrace ){
danielk19774adee202004-05-08 08:23:19 +0000516 sqlite3VdbePrintOp(0, i+addr, &p->aOp[i+addr]);
drh9a324642003-09-06 20:12:01 +0000517 }
518#endif
519 }
520 p->nOp += nOp;
521 }
522 return addr;
523}
524
525/*
526** Change the value of the P1 operand for a specific instruction.
527** This routine is useful when a large program is loaded from a
danielk19774adee202004-05-08 08:23:19 +0000528** static array using sqlite3VdbeAddOpList but we want to make a
drh9a324642003-09-06 20:12:01 +0000529** few minor changes to the program.
530*/
drh88caeac2011-08-24 15:12:08 +0000531void sqlite3VdbeChangeP1(Vdbe *p, u32 addr, int val){
drh7b746032009-06-26 12:15:22 +0000532 assert( p!=0 );
drh88caeac2011-08-24 15:12:08 +0000533 if( ((u32)p->nOp)>addr ){
drh9a324642003-09-06 20:12:01 +0000534 p->aOp[addr].p1 = val;
535 }
536}
537
538/*
539** Change the value of the P2 operand for a specific instruction.
540** This routine is useful for setting a jump destination.
541*/
drh88caeac2011-08-24 15:12:08 +0000542void sqlite3VdbeChangeP2(Vdbe *p, u32 addr, int val){
drh7b746032009-06-26 12:15:22 +0000543 assert( p!=0 );
drh88caeac2011-08-24 15:12:08 +0000544 if( ((u32)p->nOp)>addr ){
drh9a324642003-09-06 20:12:01 +0000545 p->aOp[addr].p2 = val;
546 }
547}
548
drhd654be82005-09-20 17:42:23 +0000549/*
danielk19771f4aa332008-01-03 09:51:55 +0000550** Change the value of the P3 operand for a specific instruction.
danielk1977207872a2008-01-03 07:54:23 +0000551*/
drh88caeac2011-08-24 15:12:08 +0000552void sqlite3VdbeChangeP3(Vdbe *p, u32 addr, int val){
drh7b746032009-06-26 12:15:22 +0000553 assert( p!=0 );
drh88caeac2011-08-24 15:12:08 +0000554 if( ((u32)p->nOp)>addr ){
danielk1977207872a2008-01-03 07:54:23 +0000555 p->aOp[addr].p3 = val;
556 }
557}
558
559/*
drh35573352008-01-08 23:54:25 +0000560** Change the value of the P5 operand for the most recently
561** added operation.
danielk19771f4aa332008-01-03 09:51:55 +0000562*/
drh35573352008-01-08 23:54:25 +0000563void sqlite3VdbeChangeP5(Vdbe *p, u8 val){
drh7b746032009-06-26 12:15:22 +0000564 assert( p!=0 );
565 if( p->aOp ){
drh35573352008-01-08 23:54:25 +0000566 assert( p->nOp>0 );
567 p->aOp[p->nOp-1].p5 = val;
danielk19771f4aa332008-01-03 09:51:55 +0000568 }
569}
570
571/*
drhf8875402006-03-17 13:56:34 +0000572** Change the P2 operand of instruction addr so that it points to
drhd654be82005-09-20 17:42:23 +0000573** the address of the next instruction to be coded.
574*/
575void sqlite3VdbeJumpHere(Vdbe *p, int addr){
drh8c2cd5d2011-08-16 02:07:04 +0000576 assert( addr>=0 || p->db->mallocFailed );
577 if( addr>=0 ) sqlite3VdbeChangeP2(p, addr, p->nOp);
drhd654be82005-09-20 17:42:23 +0000578}
drhb38ad992005-09-16 00:27:01 +0000579
drhb7f6f682006-07-08 17:06:43 +0000580
581/*
582** If the input FuncDef structure is ephemeral, then free it. If
583** the FuncDef is not ephermal, then do nothing.
584*/
drh633e6d52008-07-28 19:34:53 +0000585static void freeEphemeralFunction(sqlite3 *db, FuncDef *pDef){
drh7b746032009-06-26 12:15:22 +0000586 if( ALWAYS(pDef) && (pDef->flags & SQLITE_FUNC_EPHEM)!=0 ){
drh633e6d52008-07-28 19:34:53 +0000587 sqlite3DbFree(db, pDef);
drhb7f6f682006-07-08 17:06:43 +0000588 }
589}
590
dand46def72010-07-24 11:28:28 +0000591static void vdbeFreeOpArray(sqlite3 *, Op *, int);
592
drhb38ad992005-09-16 00:27:01 +0000593/*
drh66a51672008-01-03 00:01:23 +0000594** Delete a P4 value if necessary.
drhb38ad992005-09-16 00:27:01 +0000595*/
drh633e6d52008-07-28 19:34:53 +0000596static void freeP4(sqlite3 *db, int p4type, void *p4){
drh0acb7e42008-06-25 00:12:41 +0000597 if( p4 ){
dand46def72010-07-24 11:28:28 +0000598 assert( db );
drh66a51672008-01-03 00:01:23 +0000599 switch( p4type ){
600 case P4_REAL:
601 case P4_INT64:
drh66a51672008-01-03 00:01:23 +0000602 case P4_DYNAMIC:
603 case P4_KEYINFO:
drh0acb7e42008-06-25 00:12:41 +0000604 case P4_INTARRAY:
drh66a51672008-01-03 00:01:23 +0000605 case P4_KEYINFO_HANDOFF: {
drh633e6d52008-07-28 19:34:53 +0000606 sqlite3DbFree(db, p4);
drhac1733d2005-09-17 17:58:22 +0000607 break;
608 }
drhb9755982010-07-24 16:34:37 +0000609 case P4_MPRINTF: {
drh7043db92010-07-26 12:38:12 +0000610 if( db->pnBytesFreed==0 ) sqlite3_free(p4);
drhb9755982010-07-24 16:34:37 +0000611 break;
612 }
drh66a51672008-01-03 00:01:23 +0000613 case P4_VDBEFUNC: {
drh0acb7e42008-06-25 00:12:41 +0000614 VdbeFunc *pVdbeFunc = (VdbeFunc *)p4;
drh633e6d52008-07-28 19:34:53 +0000615 freeEphemeralFunction(db, pVdbeFunc->pFunc);
dand46def72010-07-24 11:28:28 +0000616 if( db->pnBytesFreed==0 ) sqlite3VdbeDeleteAuxData(pVdbeFunc, 0);
drh633e6d52008-07-28 19:34:53 +0000617 sqlite3DbFree(db, pVdbeFunc);
drhac1733d2005-09-17 17:58:22 +0000618 break;
619 }
drh66a51672008-01-03 00:01:23 +0000620 case P4_FUNCDEF: {
drh633e6d52008-07-28 19:34:53 +0000621 freeEphemeralFunction(db, (FuncDef*)p4);
drhb7f6f682006-07-08 17:06:43 +0000622 break;
623 }
drh66a51672008-01-03 00:01:23 +0000624 case P4_MEM: {
drhc176c272010-07-26 13:57:59 +0000625 if( db->pnBytesFreed==0 ){
626 sqlite3ValueFree((sqlite3_value*)p4);
627 }else{
drhf37c68e2010-07-26 14:20:06 +0000628 Mem *p = (Mem*)p4;
629 sqlite3DbFree(db, p->zMalloc);
630 sqlite3DbFree(db, p);
drhc176c272010-07-26 13:57:59 +0000631 }
drhac1733d2005-09-17 17:58:22 +0000632 break;
633 }
danielk1977595a5232009-07-24 17:58:53 +0000634 case P4_VTAB : {
dand46def72010-07-24 11:28:28 +0000635 if( db->pnBytesFreed==0 ) sqlite3VtabUnlock((VTable *)p4);
danielk1977595a5232009-07-24 17:58:53 +0000636 break;
637 }
drhb38ad992005-09-16 00:27:01 +0000638 }
639 }
640}
641
dan65a7cd12009-09-01 12:16:01 +0000642/*
643** Free the space allocated for aOp and any p4 values allocated for the
644** opcodes contained within. If aOp is not NULL it is assumed to contain
645** nOp entries.
646*/
dan165921a2009-08-28 18:53:45 +0000647static void vdbeFreeOpArray(sqlite3 *db, Op *aOp, int nOp){
648 if( aOp ){
649 Op *pOp;
650 for(pOp=aOp; pOp<&aOp[nOp]; pOp++){
651 freeP4(db, pOp->p4type, pOp->p4.p);
652#ifdef SQLITE_DEBUG
653 sqlite3DbFree(db, pOp->zComment);
654#endif
655 }
656 }
657 sqlite3DbFree(db, aOp);
658}
659
dan65a7cd12009-09-01 12:16:01 +0000660/*
dand19c9332010-07-26 12:05:17 +0000661** Link the SubProgram object passed as the second argument into the linked
662** list at Vdbe.pSubProgram. This list is used to delete all sub-program
663** objects when the VM is no longer required.
dan65a7cd12009-09-01 12:16:01 +0000664*/
dand19c9332010-07-26 12:05:17 +0000665void sqlite3VdbeLinkSubProgram(Vdbe *pVdbe, SubProgram *p){
666 p->pNext = pVdbe->pProgram;
667 pVdbe->pProgram = p;
dan165921a2009-08-28 18:53:45 +0000668}
669
drh9a324642003-09-06 20:12:01 +0000670/*
drh48f2d3b2011-09-16 01:34:43 +0000671** Change the opcode at addr into OP_Noop
drhf8875402006-03-17 13:56:34 +0000672*/
drh48f2d3b2011-09-16 01:34:43 +0000673void sqlite3VdbeChangeToNoop(Vdbe *p, int addr){
drh7b746032009-06-26 12:15:22 +0000674 if( p->aOp ){
danielk197792d4d7a2007-05-04 12:05:56 +0000675 VdbeOp *pOp = &p->aOp[addr];
drh633e6d52008-07-28 19:34:53 +0000676 sqlite3 *db = p->db;
drh48f2d3b2011-09-16 01:34:43 +0000677 freeP4(db, pOp->p4type, pOp->p4.p);
678 memset(pOp, 0, sizeof(pOp[0]));
679 pOp->opcode = OP_Noop;
drhf8875402006-03-17 13:56:34 +0000680 }
681}
682
683/*
drh66a51672008-01-03 00:01:23 +0000684** Change the value of the P4 operand for a specific instruction.
drh9a324642003-09-06 20:12:01 +0000685** This routine is useful when a large program is loaded from a
danielk19774adee202004-05-08 08:23:19 +0000686** static array using sqlite3VdbeAddOpList but we want to make a
drh9a324642003-09-06 20:12:01 +0000687** few minor changes to the program.
688**
drh66a51672008-01-03 00:01:23 +0000689** If n>=0 then the P4 operand is dynamic, meaning that a copy of
drh17435752007-08-16 04:30:38 +0000690** the string is made into memory obtained from sqlite3_malloc().
drh66a51672008-01-03 00:01:23 +0000691** A value of n==0 means copy bytes of zP4 up to and including the
692** first null byte. If n>0 then copy n+1 bytes of zP4.
drh9a324642003-09-06 20:12:01 +0000693**
drh66a51672008-01-03 00:01:23 +0000694** If n==P4_KEYINFO it means that zP4 is a pointer to a KeyInfo structure.
danielk19771f55c052005-05-19 08:42:59 +0000695** A copy is made of the KeyInfo structure into memory obtained from
drh17435752007-08-16 04:30:38 +0000696** sqlite3_malloc, to be freed when the Vdbe is finalized.
drh66a51672008-01-03 00:01:23 +0000697** n==P4_KEYINFO_HANDOFF indicates that zP4 points to a KeyInfo structure
drh17435752007-08-16 04:30:38 +0000698** stored in memory that the caller has obtained from sqlite3_malloc. The
danielk19771f55c052005-05-19 08:42:59 +0000699** caller should not free the allocation, it will be freed when the Vdbe is
700** finalized.
701**
drh66a51672008-01-03 00:01:23 +0000702** Other values of n (P4_STATIC, P4_COLLSEQ etc.) indicate that zP4 points
danielk19771f55c052005-05-19 08:42:59 +0000703** to a string or structure that is guaranteed to exist for the lifetime of
704** the Vdbe. In these cases we can just copy the pointer.
drh9a324642003-09-06 20:12:01 +0000705**
drh66a51672008-01-03 00:01:23 +0000706** If addr<0 then change P4 on the most recently inserted instruction.
drh9a324642003-09-06 20:12:01 +0000707*/
drh66a51672008-01-03 00:01:23 +0000708void sqlite3VdbeChangeP4(Vdbe *p, int addr, const char *zP4, int n){
drh9a324642003-09-06 20:12:01 +0000709 Op *pOp;
drh633e6d52008-07-28 19:34:53 +0000710 sqlite3 *db;
drh91fd4d42008-01-19 20:11:25 +0000711 assert( p!=0 );
drh633e6d52008-07-28 19:34:53 +0000712 db = p->db;
drh91fd4d42008-01-19 20:11:25 +0000713 assert( p->magic==VDBE_MAGIC_INIT );
drh633e6d52008-07-28 19:34:53 +0000714 if( p->aOp==0 || db->mallocFailed ){
danielk1977595a5232009-07-24 17:58:53 +0000715 if ( n!=P4_KEYINFO && n!=P4_VTAB ) {
drh633e6d52008-07-28 19:34:53 +0000716 freeP4(db, n, (void*)*(char**)&zP4);
danielk1977261919c2005-12-06 12:52:59 +0000717 }
danielk1977d5d56522005-03-16 12:15:20 +0000718 return;
719 }
drh7b746032009-06-26 12:15:22 +0000720 assert( p->nOp>0 );
drh91fd4d42008-01-19 20:11:25 +0000721 assert( addr<p->nOp );
722 if( addr<0 ){
drh9a324642003-09-06 20:12:01 +0000723 addr = p->nOp - 1;
drh9a324642003-09-06 20:12:01 +0000724 }
725 pOp = &p->aOp[addr];
drhfc5e5462012-12-03 17:04:40 +0000726 assert( pOp->p4type==P4_NOTUSED || pOp->p4type==P4_INT32 );
drh633e6d52008-07-28 19:34:53 +0000727 freeP4(db, pOp->p4type, pOp->p4.p);
drh66a51672008-01-03 00:01:23 +0000728 pOp->p4.p = 0;
drh98757152008-01-09 23:04:12 +0000729 if( n==P4_INT32 ){
mlcreech12d40822008-03-06 07:35:21 +0000730 /* Note: this cast is safe, because the origin data point was an int
731 ** that was cast to a (const char *). */
shane1fc41292008-07-08 22:28:48 +0000732 pOp->p4.i = SQLITE_PTR_TO_INT(zP4);
drh8df32842008-12-09 02:51:23 +0000733 pOp->p4type = P4_INT32;
drh98757152008-01-09 23:04:12 +0000734 }else if( zP4==0 ){
drh66a51672008-01-03 00:01:23 +0000735 pOp->p4.p = 0;
736 pOp->p4type = P4_NOTUSED;
737 }else if( n==P4_KEYINFO ){
drhd3d39e92004-05-20 22:16:29 +0000738 KeyInfo *pKeyInfo;
739 int nField, nByte;
drh4db38a72005-09-01 12:16:28 +0000740
drh66a51672008-01-03 00:01:23 +0000741 nField = ((KeyInfo*)zP4)->nField;
drhfdd6e852005-12-16 01:06:16 +0000742 nByte = sizeof(*pKeyInfo) + (nField-1)*sizeof(pKeyInfo->aColl[0]) + nField;
drhb9755982010-07-24 16:34:37 +0000743 pKeyInfo = sqlite3DbMallocRaw(0, nByte);
danielk19772dca4ac2008-01-03 11:50:29 +0000744 pOp->p4.pKeyInfo = pKeyInfo;
drhd3d39e92004-05-20 22:16:29 +0000745 if( pKeyInfo ){
drhb21e7c72008-06-22 12:37:57 +0000746 u8 *aSortOrder;
drha378c562010-04-02 12:55:38 +0000747 memcpy((char*)pKeyInfo, zP4, nByte - nField);
drhfdd6e852005-12-16 01:06:16 +0000748 aSortOrder = pKeyInfo->aSortOrder;
drhe1a022e2012-09-17 17:16:53 +0000749 assert( aSortOrder!=0 );
750 pKeyInfo->aSortOrder = (unsigned char*)&pKeyInfo->aColl[nField];
751 memcpy(pKeyInfo->aSortOrder, aSortOrder, nField);
drh66a51672008-01-03 00:01:23 +0000752 pOp->p4type = P4_KEYINFO;
drhd3d39e92004-05-20 22:16:29 +0000753 }else{
drh17435752007-08-16 04:30:38 +0000754 p->db->mallocFailed = 1;
drh66a51672008-01-03 00:01:23 +0000755 pOp->p4type = P4_NOTUSED;
drhd3d39e92004-05-20 22:16:29 +0000756 }
drh66a51672008-01-03 00:01:23 +0000757 }else if( n==P4_KEYINFO_HANDOFF ){
danielk19772dca4ac2008-01-03 11:50:29 +0000758 pOp->p4.p = (void*)zP4;
drh66a51672008-01-03 00:01:23 +0000759 pOp->p4type = P4_KEYINFO;
danielk1977595a5232009-07-24 17:58:53 +0000760 }else if( n==P4_VTAB ){
761 pOp->p4.p = (void*)zP4;
762 pOp->p4type = P4_VTAB;
763 sqlite3VtabLock((VTable *)zP4);
764 assert( ((VTable *)zP4)->db==p->db );
drh9a324642003-09-06 20:12:01 +0000765 }else if( n<0 ){
danielk19772dca4ac2008-01-03 11:50:29 +0000766 pOp->p4.p = (void*)zP4;
drh8df32842008-12-09 02:51:23 +0000767 pOp->p4type = (signed char)n;
drh9a324642003-09-06 20:12:01 +0000768 }else{
drhea678832008-12-10 19:26:22 +0000769 if( n==0 ) n = sqlite3Strlen30(zP4);
danielk19772dca4ac2008-01-03 11:50:29 +0000770 pOp->p4.z = sqlite3DbStrNDup(p->db, zP4, n);
drh66a51672008-01-03 00:01:23 +0000771 pOp->p4type = P4_DYNAMIC;
drh9a324642003-09-06 20:12:01 +0000772 }
773}
774
drhad6d9462004-09-19 02:15:24 +0000775#ifndef NDEBUG
776/*
mistachkind5578432012-08-25 10:01:29 +0000777** Change the comment on the most recently coded instruction. Or
drh16ee60f2008-06-20 18:13:25 +0000778** insert a No-op and add the comment to that new instruction. This
779** makes the code easier to read during debugging. None of this happens
780** in a production build.
drhad6d9462004-09-19 02:15:24 +0000781*/
drhb07028f2011-10-14 21:49:18 +0000782static void vdbeVComment(Vdbe *p, const char *zFormat, va_list ap){
danielk197701256832007-04-18 14:24:32 +0000783 assert( p->nOp>0 || p->aOp==0 );
drhd4e70eb2008-01-02 00:34:36 +0000784 assert( p->aOp==0 || p->aOp[p->nOp-1].zComment==0 || p->db->mallocFailed );
danielk1977dba01372008-01-05 18:44:29 +0000785 if( p->nOp ){
drhb07028f2011-10-14 21:49:18 +0000786 assert( p->aOp );
787 sqlite3DbFree(p->db, p->aOp[p->nOp-1].zComment);
788 p->aOp[p->nOp-1].zComment = sqlite3VMPrintf(p->db, zFormat, ap);
789 }
790}
791void sqlite3VdbeComment(Vdbe *p, const char *zFormat, ...){
792 va_list ap;
793 if( p ){
danielk1977dba01372008-01-05 18:44:29 +0000794 va_start(ap, zFormat);
drhb07028f2011-10-14 21:49:18 +0000795 vdbeVComment(p, zFormat, ap);
danielk1977dba01372008-01-05 18:44:29 +0000796 va_end(ap);
797 }
drhad6d9462004-09-19 02:15:24 +0000798}
drh16ee60f2008-06-20 18:13:25 +0000799void sqlite3VdbeNoopComment(Vdbe *p, const char *zFormat, ...){
800 va_list ap;
drhb07028f2011-10-14 21:49:18 +0000801 if( p ){
802 sqlite3VdbeAddOp0(p, OP_Noop);
drh16ee60f2008-06-20 18:13:25 +0000803 va_start(ap, zFormat);
drhb07028f2011-10-14 21:49:18 +0000804 vdbeVComment(p, zFormat, ap);
drh16ee60f2008-06-20 18:13:25 +0000805 va_end(ap);
806 }
807}
808#endif /* NDEBUG */
drhad6d9462004-09-19 02:15:24 +0000809
drh9a324642003-09-06 20:12:01 +0000810/*
drh20411ea2009-05-29 19:00:12 +0000811** Return the opcode for a given address. If the address is -1, then
812** return the most recently inserted opcode.
813**
814** If a memory allocation error has occurred prior to the calling of this
815** routine, then a pointer to a dummy VdbeOp will be returned. That opcode
drhf83dc1e2010-06-03 12:09:52 +0000816** is readable but not writable, though it is cast to a writable value.
817** The return of a dummy opcode allows the call to continue functioning
818** after a OOM fault without having to check to see if the return from
819** this routine is a valid pointer. But because the dummy.opcode is 0,
820** dummy will never be written to. This is verified by code inspection and
821** by running with Valgrind.
drh37b89a02009-06-19 00:33:31 +0000822**
823** About the #ifdef SQLITE_OMIT_TRACE: Normally, this routine is never called
824** unless p->nOp>0. This is because in the absense of SQLITE_OMIT_TRACE,
825** an OP_Trace instruction is always inserted by sqlite3VdbeGet() as soon as
826** a new VDBE is created. So we are free to set addr to p->nOp-1 without
827** having to double-check to make sure that the result is non-negative. But
828** if SQLITE_OMIT_TRACE is defined, the OP_Trace is omitted and we do need to
829** check the value of p->nOp-1 before continuing.
drh9a324642003-09-06 20:12:01 +0000830*/
danielk19774adee202004-05-08 08:23:19 +0000831VdbeOp *sqlite3VdbeGetOp(Vdbe *p, int addr){
drha0b75da2010-07-02 18:44:37 +0000832 /* C89 specifies that the constant "dummy" will be initialized to all
833 ** zeros, which is correct. MSVC generates a warning, nevertheless. */
mistachkin0fe5f952011-09-14 18:19:08 +0000834 static VdbeOp dummy; /* Ignore the MSVC warning about no initializer */
drh9a324642003-09-06 20:12:01 +0000835 assert( p->magic==VDBE_MAGIC_INIT );
drh37b89a02009-06-19 00:33:31 +0000836 if( addr<0 ){
837#ifdef SQLITE_OMIT_TRACE
drhf83dc1e2010-06-03 12:09:52 +0000838 if( p->nOp==0 ) return (VdbeOp*)&dummy;
drh37b89a02009-06-19 00:33:31 +0000839#endif
840 addr = p->nOp - 1;
841 }
drh17435752007-08-16 04:30:38 +0000842 assert( (addr>=0 && addr<p->nOp) || p->db->mallocFailed );
drh20411ea2009-05-29 19:00:12 +0000843 if( p->db->mallocFailed ){
drhf83dc1e2010-06-03 12:09:52 +0000844 return (VdbeOp*)&dummy;
drh20411ea2009-05-29 19:00:12 +0000845 }else{
846 return &p->aOp[addr];
847 }
drh9a324642003-09-06 20:12:01 +0000848}
849
drhb7f91642004-10-31 02:22:47 +0000850#if !defined(SQLITE_OMIT_EXPLAIN) || !defined(NDEBUG) \
851 || defined(VDBE_PROFILE) || defined(SQLITE_DEBUG)
drh9a324642003-09-06 20:12:01 +0000852/*
drh66a51672008-01-03 00:01:23 +0000853** Compute a string that describes the P4 parameter for an opcode.
drhd3d39e92004-05-20 22:16:29 +0000854** Use zTemp for any required temporary buffer space.
855*/
drh66a51672008-01-03 00:01:23 +0000856static char *displayP4(Op *pOp, char *zTemp, int nTemp){
857 char *zP4 = zTemp;
drhd3d39e92004-05-20 22:16:29 +0000858 assert( nTemp>=20 );
drh66a51672008-01-03 00:01:23 +0000859 switch( pOp->p4type ){
drh16ee60f2008-06-20 18:13:25 +0000860 case P4_KEYINFO_STATIC:
drh66a51672008-01-03 00:01:23 +0000861 case P4_KEYINFO: {
drhd3d39e92004-05-20 22:16:29 +0000862 int i, j;
danielk19772dca4ac2008-01-03 11:50:29 +0000863 KeyInfo *pKeyInfo = pOp->p4.pKeyInfo;
drhe1a022e2012-09-17 17:16:53 +0000864 assert( pKeyInfo->aSortOrder!=0 );
drh5bb3eb92007-05-04 13:15:55 +0000865 sqlite3_snprintf(nTemp, zTemp, "keyinfo(%d", pKeyInfo->nField);
drhea678832008-12-10 19:26:22 +0000866 i = sqlite3Strlen30(zTemp);
drhd3d39e92004-05-20 22:16:29 +0000867 for(j=0; j<pKeyInfo->nField; j++){
868 CollSeq *pColl = pKeyInfo->aColl[j];
869 if( pColl ){
drhea678832008-12-10 19:26:22 +0000870 int n = sqlite3Strlen30(pColl->zName);
drhd3d39e92004-05-20 22:16:29 +0000871 if( i+n>nTemp-6 ){
drh5bb3eb92007-05-04 13:15:55 +0000872 memcpy(&zTemp[i],",...",4);
drhd3d39e92004-05-20 22:16:29 +0000873 break;
874 }
875 zTemp[i++] = ',';
drhe1a022e2012-09-17 17:16:53 +0000876 if( pKeyInfo->aSortOrder[j] ){
drhd3d39e92004-05-20 22:16:29 +0000877 zTemp[i++] = '-';
878 }
drh5bb3eb92007-05-04 13:15:55 +0000879 memcpy(&zTemp[i], pColl->zName,n+1);
drhd3d39e92004-05-20 22:16:29 +0000880 i += n;
881 }else if( i+4<nTemp-6 ){
drh5bb3eb92007-05-04 13:15:55 +0000882 memcpy(&zTemp[i],",nil",4);
drhd3d39e92004-05-20 22:16:29 +0000883 i += 4;
884 }
885 }
886 zTemp[i++] = ')';
887 zTemp[i] = 0;
888 assert( i<nTemp );
drhd3d39e92004-05-20 22:16:29 +0000889 break;
890 }
drh66a51672008-01-03 00:01:23 +0000891 case P4_COLLSEQ: {
danielk19772dca4ac2008-01-03 11:50:29 +0000892 CollSeq *pColl = pOp->p4.pColl;
drh5bb3eb92007-05-04 13:15:55 +0000893 sqlite3_snprintf(nTemp, zTemp, "collseq(%.20s)", pColl->zName);
drhd3d39e92004-05-20 22:16:29 +0000894 break;
895 }
drh66a51672008-01-03 00:01:23 +0000896 case P4_FUNCDEF: {
danielk19772dca4ac2008-01-03 11:50:29 +0000897 FuncDef *pDef = pOp->p4.pFunc;
drha967e882006-06-13 01:04:52 +0000898 sqlite3_snprintf(nTemp, zTemp, "%s(%d)", pDef->zName, pDef->nArg);
drhf9b596e2004-05-26 16:54:42 +0000899 break;
900 }
drh66a51672008-01-03 00:01:23 +0000901 case P4_INT64: {
danielk19772dca4ac2008-01-03 11:50:29 +0000902 sqlite3_snprintf(nTemp, zTemp, "%lld", *pOp->p4.pI64);
drhd4e70eb2008-01-02 00:34:36 +0000903 break;
904 }
drh66a51672008-01-03 00:01:23 +0000905 case P4_INT32: {
906 sqlite3_snprintf(nTemp, zTemp, "%d", pOp->p4.i);
drh598f1342007-10-23 15:39:45 +0000907 break;
908 }
drh66a51672008-01-03 00:01:23 +0000909 case P4_REAL: {
danielk19772dca4ac2008-01-03 11:50:29 +0000910 sqlite3_snprintf(nTemp, zTemp, "%.16g", *pOp->p4.pReal);
drhd4e70eb2008-01-02 00:34:36 +0000911 break;
912 }
drh66a51672008-01-03 00:01:23 +0000913 case P4_MEM: {
danielk19772dca4ac2008-01-03 11:50:29 +0000914 Mem *pMem = pOp->p4.pMem;
drhd4e70eb2008-01-02 00:34:36 +0000915 if( pMem->flags & MEM_Str ){
drh66a51672008-01-03 00:01:23 +0000916 zP4 = pMem->z;
drhd4e70eb2008-01-02 00:34:36 +0000917 }else if( pMem->flags & MEM_Int ){
918 sqlite3_snprintf(nTemp, zTemp, "%lld", pMem->u.i);
919 }else if( pMem->flags & MEM_Real ){
920 sqlite3_snprintf(nTemp, zTemp, "%.16g", pMem->r);
drhb8475df2011-12-09 16:21:19 +0000921 }else if( pMem->flags & MEM_Null ){
922 sqlite3_snprintf(nTemp, zTemp, "NULL");
drh56016892009-08-25 14:24:04 +0000923 }else{
924 assert( pMem->flags & MEM_Blob );
925 zP4 = "(blob)";
drhd4e70eb2008-01-02 00:34:36 +0000926 }
drh598f1342007-10-23 15:39:45 +0000927 break;
928 }
drha967e882006-06-13 01:04:52 +0000929#ifndef SQLITE_OMIT_VIRTUALTABLE
drh66a51672008-01-03 00:01:23 +0000930 case P4_VTAB: {
danielk1977595a5232009-07-24 17:58:53 +0000931 sqlite3_vtab *pVtab = pOp->p4.pVtab->pVtab;
drh19146192006-06-26 19:10:32 +0000932 sqlite3_snprintf(nTemp, zTemp, "vtab:%p:%p", pVtab, pVtab->pModule);
drha967e882006-06-13 01:04:52 +0000933 break;
934 }
935#endif
drh0acb7e42008-06-25 00:12:41 +0000936 case P4_INTARRAY: {
937 sqlite3_snprintf(nTemp, zTemp, "intarray");
938 break;
939 }
dan165921a2009-08-28 18:53:45 +0000940 case P4_SUBPROGRAM: {
941 sqlite3_snprintf(nTemp, zTemp, "program");
942 break;
943 }
drh4a6f3aa2011-08-28 00:19:26 +0000944 case P4_ADVANCE: {
945 zTemp[0] = 0;
946 break;
947 }
drhd3d39e92004-05-20 22:16:29 +0000948 default: {
danielk19772dca4ac2008-01-03 11:50:29 +0000949 zP4 = pOp->p4.z;
drh949f9cd2008-01-12 21:35:57 +0000950 if( zP4==0 ){
drh66a51672008-01-03 00:01:23 +0000951 zP4 = zTemp;
drhd4e70eb2008-01-02 00:34:36 +0000952 zTemp[0] = 0;
drhd3d39e92004-05-20 22:16:29 +0000953 }
954 }
955 }
drh66a51672008-01-03 00:01:23 +0000956 assert( zP4!=0 );
drh66a51672008-01-03 00:01:23 +0000957 return zP4;
drhd3d39e92004-05-20 22:16:29 +0000958}
drhb7f91642004-10-31 02:22:47 +0000959#endif
drhd3d39e92004-05-20 22:16:29 +0000960
drh900b31e2007-08-28 02:27:51 +0000961/*
drhd0679ed2007-08-28 22:24:34 +0000962** Declare to the Vdbe that the BTree object at db->aDb[i] is used.
drh3ebaee92010-05-06 21:37:22 +0000963**
drhbdaec522011-04-04 00:14:43 +0000964** The prepared statements need to know in advance the complete set of
drhe4c88c02012-01-04 12:57:45 +0000965** attached databases that will be use. A mask of these databases
966** is maintained in p->btreeMask. The p->lockMask value is the subset of
967** p->btreeMask of databases that will require a lock.
drh900b31e2007-08-28 02:27:51 +0000968*/
drhfb982642007-08-30 01:19:59 +0000969void sqlite3VdbeUsesBtree(Vdbe *p, int i){
drhfcd71b62011-04-05 22:08:24 +0000970 assert( i>=0 && i<p->db->nDb && i<(int)sizeof(yDbMask)*8 );
danielk197700e13612008-11-17 19:18:54 +0000971 assert( i<(int)sizeof(p->btreeMask)*8 );
drhbdaec522011-04-04 00:14:43 +0000972 p->btreeMask |= ((yDbMask)1)<<i;
drhdc5b0472011-04-06 22:05:53 +0000973 if( i!=1 && sqlite3BtreeSharable(p->db->aDb[i].pBt) ){
974 p->lockMask |= ((yDbMask)1)<<i;
975 }
drh900b31e2007-08-28 02:27:51 +0000976}
977
drhe54e0512011-04-05 17:31:56 +0000978#if !defined(SQLITE_OMIT_SHARED_CACHE) && SQLITE_THREADSAFE>0
drhbdaec522011-04-04 00:14:43 +0000979/*
980** If SQLite is compiled to support shared-cache mode and to be threadsafe,
981** this routine obtains the mutex associated with each BtShared structure
982** that may be accessed by the VM passed as an argument. In doing so it also
983** sets the BtShared.db member of each of the BtShared structures, ensuring
984** that the correct busy-handler callback is invoked if required.
985**
986** If SQLite is not threadsafe but does support shared-cache mode, then
987** sqlite3BtreeEnter() is invoked to set the BtShared.db variables
988** of all of BtShared structures accessible via the database handle
989** associated with the VM.
990**
991** If SQLite is not threadsafe and does not support shared-cache mode, this
992** function is a no-op.
993**
994** The p->btreeMask field is a bitmask of all btrees that the prepared
995** statement p will ever use. Let N be the number of bits in p->btreeMask
996** corresponding to btrees that use shared cache. Then the runtime of
997** this routine is N*N. But as N is rarely more than 1, this should not
998** be a problem.
999*/
1000void sqlite3VdbeEnter(Vdbe *p){
drhbdaec522011-04-04 00:14:43 +00001001 int i;
1002 yDbMask mask;
drhdc5b0472011-04-06 22:05:53 +00001003 sqlite3 *db;
1004 Db *aDb;
1005 int nDb;
1006 if( p->lockMask==0 ) return; /* The common case */
1007 db = p->db;
1008 aDb = db->aDb;
1009 nDb = db->nDb;
drhbdaec522011-04-04 00:14:43 +00001010 for(i=0, mask=1; i<nDb; i++, mask += mask){
drhdc5b0472011-04-06 22:05:53 +00001011 if( i!=1 && (mask & p->lockMask)!=0 && ALWAYS(aDb[i].pBt!=0) ){
drhbdaec522011-04-04 00:14:43 +00001012 sqlite3BtreeEnter(aDb[i].pBt);
1013 }
1014 }
drhbdaec522011-04-04 00:14:43 +00001015}
drhe54e0512011-04-05 17:31:56 +00001016#endif
drhbdaec522011-04-04 00:14:43 +00001017
drhe54e0512011-04-05 17:31:56 +00001018#if !defined(SQLITE_OMIT_SHARED_CACHE) && SQLITE_THREADSAFE>0
drhbdaec522011-04-04 00:14:43 +00001019/*
1020** Unlock all of the btrees previously locked by a call to sqlite3VdbeEnter().
1021*/
1022void sqlite3VdbeLeave(Vdbe *p){
drhbdaec522011-04-04 00:14:43 +00001023 int i;
1024 yDbMask mask;
drhdc5b0472011-04-06 22:05:53 +00001025 sqlite3 *db;
1026 Db *aDb;
1027 int nDb;
1028 if( p->lockMask==0 ) return; /* The common case */
1029 db = p->db;
1030 aDb = db->aDb;
1031 nDb = db->nDb;
drhbdaec522011-04-04 00:14:43 +00001032 for(i=0, mask=1; i<nDb; i++, mask += mask){
drhdc5b0472011-04-06 22:05:53 +00001033 if( i!=1 && (mask & p->lockMask)!=0 && ALWAYS(aDb[i].pBt!=0) ){
drhbdaec522011-04-04 00:14:43 +00001034 sqlite3BtreeLeave(aDb[i].pBt);
1035 }
1036 }
drhbdaec522011-04-04 00:14:43 +00001037}
drhbdaec522011-04-04 00:14:43 +00001038#endif
drhd3d39e92004-05-20 22:16:29 +00001039
danielk19778b60e0f2005-01-12 09:10:39 +00001040#if defined(VDBE_PROFILE) || defined(SQLITE_DEBUG)
drh9a324642003-09-06 20:12:01 +00001041/*
1042** Print a single opcode. This routine is used for debugging only.
1043*/
danielk19774adee202004-05-08 08:23:19 +00001044void sqlite3VdbePrintOp(FILE *pOut, int pc, Op *pOp){
drh66a51672008-01-03 00:01:23 +00001045 char *zP4;
drhd3d39e92004-05-20 22:16:29 +00001046 char zPtr[50];
drh1db639c2008-01-17 02:36:28 +00001047 static const char *zFormat1 = "%4d %-13s %4d %4d %4d %-4s %.2X %s\n";
drh9a324642003-09-06 20:12:01 +00001048 if( pOut==0 ) pOut = stdout;
drh66a51672008-01-03 00:01:23 +00001049 zP4 = displayP4(pOp, zPtr, sizeof(zPtr));
danielk197711641c12008-01-03 08:18:30 +00001050 fprintf(pOut, zFormat1, pc,
drh1db639c2008-01-17 02:36:28 +00001051 sqlite3OpcodeName(pOp->opcode), pOp->p1, pOp->p2, pOp->p3, zP4, pOp->p5,
1052#ifdef SQLITE_DEBUG
1053 pOp->zComment ? pOp->zComment : ""
1054#else
1055 ""
1056#endif
1057 );
drh9a324642003-09-06 20:12:01 +00001058 fflush(pOut);
1059}
1060#endif
1061
1062/*
drh76ff3a02004-09-24 22:32:30 +00001063** Release an array of N Mem elements
1064*/
drhc890fec2008-08-01 20:10:08 +00001065static void releaseMemArray(Mem *p, int N){
danielk1977a7a8e142008-02-13 18:25:27 +00001066 if( p && N ){
danielk1977e972e032008-09-19 18:32:26 +00001067 Mem *pEnd;
danielk1977a7a8e142008-02-13 18:25:27 +00001068 sqlite3 *db = p->db;
drh8df32842008-12-09 02:51:23 +00001069 u8 malloc_failed = db->mallocFailed;
dand46def72010-07-24 11:28:28 +00001070 if( db->pnBytesFreed ){
1071 for(pEnd=&p[N]; p<pEnd; p++){
1072 sqlite3DbFree(db, p->zMalloc);
1073 }
drhc176c272010-07-26 13:57:59 +00001074 return;
1075 }
danielk1977e972e032008-09-19 18:32:26 +00001076 for(pEnd=&p[N]; p<pEnd; p++){
1077 assert( (&p[1])==pEnd || p[0].db==p[1].db );
1078
1079 /* This block is really an inlined version of sqlite3VdbeMemRelease()
1080 ** that takes advantage of the fact that the memory cell value is
1081 ** being set to NULL after releasing any dynamic resources.
1082 **
1083 ** The justification for duplicating code is that according to
1084 ** callgrind, this causes a certain test case to hit the CPU 4.7
1085 ** percent less (x86 linux, gcc version 4.1.2, -O6) than if
1086 ** sqlite3MemRelease() were called from here. With -O2, this jumps
1087 ** to 6.6 percent. The test case is inserting 1000 rows into a table
1088 ** with no indexes using a single prepared INSERT statement, bind()
1089 ** and reset(). Inserts are grouped into a transaction.
1090 */
dan165921a2009-08-28 18:53:45 +00001091 if( p->flags&(MEM_Agg|MEM_Dyn|MEM_Frame|MEM_RowSet) ){
danielk1977e972e032008-09-19 18:32:26 +00001092 sqlite3VdbeMemRelease(p);
1093 }else if( p->zMalloc ){
1094 sqlite3DbFree(db, p->zMalloc);
1095 p->zMalloc = 0;
1096 }
1097
drhb8475df2011-12-09 16:21:19 +00001098 p->flags = MEM_Invalid;
drh76ff3a02004-09-24 22:32:30 +00001099 }
danielk1977a7a8e142008-02-13 18:25:27 +00001100 db->mallocFailed = malloc_failed;
drh76ff3a02004-09-24 22:32:30 +00001101 }
1102}
1103
dan65a7cd12009-09-01 12:16:01 +00001104/*
1105** Delete a VdbeFrame object and its contents. VdbeFrame objects are
1106** allocated by the OP_Program opcode in sqlite3VdbeExec().
1107*/
dan165921a2009-08-28 18:53:45 +00001108void sqlite3VdbeFrameDelete(VdbeFrame *p){
1109 int i;
1110 Mem *aMem = VdbeFrameMem(p);
1111 VdbeCursor **apCsr = (VdbeCursor **)&aMem[p->nChildMem];
1112 for(i=0; i<p->nChildCsr; i++){
1113 sqlite3VdbeFreeCursor(p->v, apCsr[i]);
1114 }
1115 releaseMemArray(aMem, p->nChildMem);
1116 sqlite3DbFree(p->v->db, p);
1117}
1118
drhb7f91642004-10-31 02:22:47 +00001119#ifndef SQLITE_OMIT_EXPLAIN
drh76ff3a02004-09-24 22:32:30 +00001120/*
drh9a324642003-09-06 20:12:01 +00001121** Give a listing of the program in the virtual machine.
1122**
danielk19774adee202004-05-08 08:23:19 +00001123** The interface is the same as sqlite3VdbeExec(). But instead of
drh9a324642003-09-06 20:12:01 +00001124** running the code, it invokes the callback once for each instruction.
1125** This feature is used to implement "EXPLAIN".
drh9cbf3422008-01-17 16:22:13 +00001126**
1127** When p->explain==1, each instruction is listed. When
1128** p->explain==2, only OP_Explain instructions are listed and these
1129** are shown in a different format. p->explain==2 is used to implement
1130** EXPLAIN QUERY PLAN.
drh5cfa5842009-12-31 20:35:08 +00001131**
1132** When p->explain==1, first the main program is listed, then each of
1133** the trigger subprograms are listed one by one.
drh9a324642003-09-06 20:12:01 +00001134*/
danielk19774adee202004-05-08 08:23:19 +00001135int sqlite3VdbeList(
drh9a324642003-09-06 20:12:01 +00001136 Vdbe *p /* The VDBE */
1137){
drh5cfa5842009-12-31 20:35:08 +00001138 int nRow; /* Stop when row count reaches this */
dan165921a2009-08-28 18:53:45 +00001139 int nSub = 0; /* Number of sub-vdbes seen so far */
1140 SubProgram **apSub = 0; /* Array of sub-vdbes */
drh5cfa5842009-12-31 20:35:08 +00001141 Mem *pSub = 0; /* Memory cell hold array of subprogs */
1142 sqlite3 *db = p->db; /* The database connection */
1143 int i; /* Loop counter */
1144 int rc = SQLITE_OK; /* Return code */
drh9734e6e2011-10-07 18:24:25 +00001145 Mem *pMem = &p->aMem[1]; /* First Mem of result set */
drh9a324642003-09-06 20:12:01 +00001146
drh9a324642003-09-06 20:12:01 +00001147 assert( p->explain );
drh5f82e3c2009-07-06 00:44:08 +00001148 assert( p->magic==VDBE_MAGIC_RUN );
danielk19776c359f02008-11-21 16:58:03 +00001149 assert( p->rc==SQLITE_OK || p->rc==SQLITE_BUSY || p->rc==SQLITE_NOMEM );
danielk197718f41892004-05-22 07:27:46 +00001150
drh9cbf3422008-01-17 16:22:13 +00001151 /* Even though this opcode does not use dynamic strings for
1152 ** the result, result columns may become dynamic if the user calls
drh4f26d6c2004-05-26 23:25:30 +00001153 ** sqlite3_column_text16(), causing a translation to UTF-16 encoding.
danielk197718f41892004-05-22 07:27:46 +00001154 */
dan165921a2009-08-28 18:53:45 +00001155 releaseMemArray(pMem, 8);
drh9734e6e2011-10-07 18:24:25 +00001156 p->pResultSet = 0;
danielk197718f41892004-05-22 07:27:46 +00001157
danielk19776c359f02008-11-21 16:58:03 +00001158 if( p->rc==SQLITE_NOMEM ){
1159 /* This happens if a malloc() inside a call to sqlite3_column_text() or
1160 ** sqlite3_column_text16() failed. */
1161 db->mallocFailed = 1;
1162 return SQLITE_ERROR;
1163 }
1164
drh5cfa5842009-12-31 20:35:08 +00001165 /* When the number of output rows reaches nRow, that means the
1166 ** listing has finished and sqlite3_step() should return SQLITE_DONE.
1167 ** nRow is the sum of the number of rows in the main program, plus
1168 ** the sum of the number of rows in all trigger subprograms encountered
1169 ** so far. The nRow value will increase as new trigger subprograms are
1170 ** encountered, but p->pc will eventually catch up to nRow.
1171 */
dan165921a2009-08-28 18:53:45 +00001172 nRow = p->nOp;
1173 if( p->explain==1 ){
drh5cfa5842009-12-31 20:35:08 +00001174 /* The first 8 memory cells are used for the result set. So we will
1175 ** commandeer the 9th cell to use as storage for an array of pointers
1176 ** to trigger subprograms. The VDBE is guaranteed to have at least 9
1177 ** cells. */
1178 assert( p->nMem>9 );
dan165921a2009-08-28 18:53:45 +00001179 pSub = &p->aMem[9];
1180 if( pSub->flags&MEM_Blob ){
drh5cfa5842009-12-31 20:35:08 +00001181 /* On the first call to sqlite3_step(), pSub will hold a NULL. It is
1182 ** initialized to a BLOB by the P4_SUBPROGRAM processing logic below */
dan165921a2009-08-28 18:53:45 +00001183 nSub = pSub->n/sizeof(Vdbe*);
1184 apSub = (SubProgram **)pSub->z;
1185 }
1186 for(i=0; i<nSub; i++){
1187 nRow += apSub[i]->nOp;
1188 }
1189 }
1190
drhecc92422005-09-10 16:46:12 +00001191 do{
1192 i = p->pc++;
dan165921a2009-08-28 18:53:45 +00001193 }while( i<nRow && p->explain==2 && p->aOp[i].opcode!=OP_Explain );
1194 if( i>=nRow ){
drh826fb5a2004-02-14 23:59:57 +00001195 p->rc = SQLITE_OK;
1196 rc = SQLITE_DONE;
drh881feaa2006-07-26 01:39:30 +00001197 }else if( db->u1.isInterrupted ){
drhc5cdca62005-01-11 16:54:14 +00001198 p->rc = SQLITE_INTERRUPT;
drh826fb5a2004-02-14 23:59:57 +00001199 rc = SQLITE_ERROR;
drhf089aa42008-07-08 19:34:06 +00001200 sqlite3SetString(&p->zErrMsg, db, "%s", sqlite3ErrStr(p->rc));
drh826fb5a2004-02-14 23:59:57 +00001201 }else{
danielk1977a7a8e142008-02-13 18:25:27 +00001202 char *z;
dan165921a2009-08-28 18:53:45 +00001203 Op *pOp;
1204 if( i<p->nOp ){
drh5cfa5842009-12-31 20:35:08 +00001205 /* The output line number is small enough that we are still in the
1206 ** main program. */
dan165921a2009-08-28 18:53:45 +00001207 pOp = &p->aOp[i];
1208 }else{
drh5cfa5842009-12-31 20:35:08 +00001209 /* We are currently listing subprograms. Figure out which one and
1210 ** pick up the appropriate opcode. */
dan165921a2009-08-28 18:53:45 +00001211 int j;
1212 i -= p->nOp;
1213 for(j=0; i>=apSub[j]->nOp; j++){
1214 i -= apSub[j]->nOp;
1215 }
1216 pOp = &apSub[j]->aOp[i];
1217 }
danielk19770d78bae2008-01-03 07:09:48 +00001218 if( p->explain==1 ){
1219 pMem->flags = MEM_Int;
1220 pMem->type = SQLITE_INTEGER;
1221 pMem->u.i = i; /* Program counter */
1222 pMem++;
1223
1224 pMem->flags = MEM_Static|MEM_Str|MEM_Term;
1225 pMem->z = (char*)sqlite3OpcodeName(pOp->opcode); /* Opcode */
1226 assert( pMem->z!=0 );
drhea678832008-12-10 19:26:22 +00001227 pMem->n = sqlite3Strlen30(pMem->z);
danielk19770d78bae2008-01-03 07:09:48 +00001228 pMem->type = SQLITE_TEXT;
1229 pMem->enc = SQLITE_UTF8;
1230 pMem++;
dan165921a2009-08-28 18:53:45 +00001231
drh5cfa5842009-12-31 20:35:08 +00001232 /* When an OP_Program opcode is encounter (the only opcode that has
1233 ** a P4_SUBPROGRAM argument), expand the size of the array of subprograms
1234 ** kept in p->aMem[9].z to hold the new program - assuming this subprogram
1235 ** has not already been seen.
1236 */
dan165921a2009-08-28 18:53:45 +00001237 if( pOp->p4type==P4_SUBPROGRAM ){
1238 int nByte = (nSub+1)*sizeof(SubProgram*);
1239 int j;
1240 for(j=0; j<nSub; j++){
1241 if( apSub[j]==pOp->p4.pProgram ) break;
1242 }
dan2b9ee772012-03-31 09:59:44 +00001243 if( j==nSub && SQLITE_OK==sqlite3VdbeMemGrow(pSub, nByte, nSub!=0) ){
dan165921a2009-08-28 18:53:45 +00001244 apSub = (SubProgram **)pSub->z;
1245 apSub[nSub++] = pOp->p4.pProgram;
1246 pSub->flags |= MEM_Blob;
1247 pSub->n = nSub*sizeof(SubProgram*);
1248 }
1249 }
danielk19770d78bae2008-01-03 07:09:48 +00001250 }
drheb2e1762004-05-27 01:53:56 +00001251
1252 pMem->flags = MEM_Int;
drh3c024d62007-03-30 11:23:45 +00001253 pMem->u.i = pOp->p1; /* P1 */
drh9c054832004-05-31 18:51:57 +00001254 pMem->type = SQLITE_INTEGER;
drheb2e1762004-05-27 01:53:56 +00001255 pMem++;
1256
1257 pMem->flags = MEM_Int;
drh3c024d62007-03-30 11:23:45 +00001258 pMem->u.i = pOp->p2; /* P2 */
drh9c054832004-05-31 18:51:57 +00001259 pMem->type = SQLITE_INTEGER;
drheb2e1762004-05-27 01:53:56 +00001260 pMem++;
1261
dan2ce22452010-11-08 19:01:16 +00001262 pMem->flags = MEM_Int;
1263 pMem->u.i = pOp->p3; /* P3 */
1264 pMem->type = SQLITE_INTEGER;
1265 pMem++;
danielk19770d78bae2008-01-03 07:09:48 +00001266
danielk1977a7a8e142008-02-13 18:25:27 +00001267 if( sqlite3VdbeMemGrow(pMem, 32, 0) ){ /* P4 */
danielk1977357864e2009-03-25 15:43:08 +00001268 assert( p->db->mallocFailed );
1269 return SQLITE_ERROR;
danielk1977a7a8e142008-02-13 18:25:27 +00001270 }
1271 pMem->flags = MEM_Dyn|MEM_Str|MEM_Term;
1272 z = displayP4(pOp, pMem->z, 32);
1273 if( z!=pMem->z ){
1274 sqlite3VdbeMemSetStr(pMem, z, -1, SQLITE_UTF8, 0);
1275 }else{
1276 assert( pMem->z!=0 );
drhea678832008-12-10 19:26:22 +00001277 pMem->n = sqlite3Strlen30(pMem->z);
danielk1977a7a8e142008-02-13 18:25:27 +00001278 pMem->enc = SQLITE_UTF8;
1279 }
drh9c054832004-05-31 18:51:57 +00001280 pMem->type = SQLITE_TEXT;
danielk19770d78bae2008-01-03 07:09:48 +00001281 pMem++;
drheb2e1762004-05-27 01:53:56 +00001282
danielk19770d78bae2008-01-03 07:09:48 +00001283 if( p->explain==1 ){
drh85e5f0d2008-02-19 18:28:13 +00001284 if( sqlite3VdbeMemGrow(pMem, 4, 0) ){
danielk1977357864e2009-03-25 15:43:08 +00001285 assert( p->db->mallocFailed );
1286 return SQLITE_ERROR;
danielk1977a7a8e142008-02-13 18:25:27 +00001287 }
1288 pMem->flags = MEM_Dyn|MEM_Str|MEM_Term;
drh85e5f0d2008-02-19 18:28:13 +00001289 pMem->n = 2;
1290 sqlite3_snprintf(3, pMem->z, "%.2x", pOp->p5); /* P5 */
danielk19770d78bae2008-01-03 07:09:48 +00001291 pMem->type = SQLITE_TEXT;
1292 pMem->enc = SQLITE_UTF8;
1293 pMem++;
1294
drhaa9b8962008-01-08 02:57:55 +00001295#ifdef SQLITE_DEBUG
danielk19770d78bae2008-01-03 07:09:48 +00001296 if( pOp->zComment ){
1297 pMem->flags = MEM_Str|MEM_Term;
1298 pMem->z = pOp->zComment;
drhea678832008-12-10 19:26:22 +00001299 pMem->n = sqlite3Strlen30(pMem->z);
danielk19770d78bae2008-01-03 07:09:48 +00001300 pMem->enc = SQLITE_UTF8;
danielk19771e522b42008-09-16 09:09:19 +00001301 pMem->type = SQLITE_TEXT;
drh52391cb2008-02-14 23:44:13 +00001302 }else
drhaa9b8962008-01-08 02:57:55 +00001303#endif
drh52391cb2008-02-14 23:44:13 +00001304 {
1305 pMem->flags = MEM_Null; /* Comment */
1306 pMem->type = SQLITE_NULL;
1307 }
danielk19770d78bae2008-01-03 07:09:48 +00001308 }
1309
dan2ce22452010-11-08 19:01:16 +00001310 p->nResColumn = 8 - 4*(p->explain-1);
drh9734e6e2011-10-07 18:24:25 +00001311 p->pResultSet = &p->aMem[1];
drh826fb5a2004-02-14 23:59:57 +00001312 p->rc = SQLITE_OK;
1313 rc = SQLITE_ROW;
drh9a324642003-09-06 20:12:01 +00001314 }
drh826fb5a2004-02-14 23:59:57 +00001315 return rc;
drh9a324642003-09-06 20:12:01 +00001316}
drhb7f91642004-10-31 02:22:47 +00001317#endif /* SQLITE_OMIT_EXPLAIN */
drh9a324642003-09-06 20:12:01 +00001318
drh7c4ac0c2007-04-05 11:25:58 +00001319#ifdef SQLITE_DEBUG
drh9a324642003-09-06 20:12:01 +00001320/*
drh3f7d4e42004-07-24 14:35:58 +00001321** Print the SQL that was used to generate a VDBE program.
1322*/
1323void sqlite3VdbePrintSql(Vdbe *p){
drh3f7d4e42004-07-24 14:35:58 +00001324 int nOp = p->nOp;
1325 VdbeOp *pOp;
drhc16a03b2004-09-15 13:38:10 +00001326 if( nOp<1 ) return;
drh949f9cd2008-01-12 21:35:57 +00001327 pOp = &p->aOp[0];
1328 if( pOp->opcode==OP_Trace && pOp->p4.z!=0 ){
danielk19772dca4ac2008-01-03 11:50:29 +00001329 const char *z = pOp->p4.z;
danielk197778ca0e72009-01-20 16:53:39 +00001330 while( sqlite3Isspace(*z) ) z++;
drh3f7d4e42004-07-24 14:35:58 +00001331 printf("SQL: [%s]\n", z);
1332 }
drh3f7d4e42004-07-24 14:35:58 +00001333}
drh7c4ac0c2007-04-05 11:25:58 +00001334#endif
drh3f7d4e42004-07-24 14:35:58 +00001335
drh602c2372007-03-01 00:29:13 +00001336#if !defined(SQLITE_OMIT_TRACE) && defined(SQLITE_ENABLE_IOTRACE)
1337/*
1338** Print an IOTRACE message showing SQL content.
1339*/
1340void sqlite3VdbeIOTraceSql(Vdbe *p){
1341 int nOp = p->nOp;
1342 VdbeOp *pOp;
mlcreech3a00f902008-03-04 17:45:01 +00001343 if( sqlite3IoTrace==0 ) return;
drh602c2372007-03-01 00:29:13 +00001344 if( nOp<1 ) return;
drh949f9cd2008-01-12 21:35:57 +00001345 pOp = &p->aOp[0];
1346 if( pOp->opcode==OP_Trace && pOp->p4.z!=0 ){
drh602c2372007-03-01 00:29:13 +00001347 int i, j;
drh00a18e42007-08-13 11:10:34 +00001348 char z[1000];
drh949f9cd2008-01-12 21:35:57 +00001349 sqlite3_snprintf(sizeof(z), z, "%s", pOp->p4.z);
danielk197778ca0e72009-01-20 16:53:39 +00001350 for(i=0; sqlite3Isspace(z[i]); i++){}
drh602c2372007-03-01 00:29:13 +00001351 for(j=0; z[i]; i++){
danielk197778ca0e72009-01-20 16:53:39 +00001352 if( sqlite3Isspace(z[i]) ){
drh602c2372007-03-01 00:29:13 +00001353 if( z[i-1]!=' ' ){
1354 z[j++] = ' ';
1355 }
1356 }else{
1357 z[j++] = z[i];
1358 }
1359 }
1360 z[j] = 0;
mlcreech3a00f902008-03-04 17:45:01 +00001361 sqlite3IoTrace("SQL %s\n", z);
drh602c2372007-03-01 00:29:13 +00001362 }
1363}
1364#endif /* !SQLITE_OMIT_TRACE && SQLITE_ENABLE_IOTRACE */
1365
drhb2771ce2009-02-20 01:28:59 +00001366/*
drh4800b2e2009-12-08 15:35:22 +00001367** Allocate space from a fixed size buffer and return a pointer to
1368** that space. If insufficient space is available, return NULL.
1369**
1370** The pBuf parameter is the initial value of a pointer which will
1371** receive the new memory. pBuf is normally NULL. If pBuf is not
1372** NULL, it means that memory space has already been allocated and that
1373** this routine should not allocate any new memory. When pBuf is not
1374** NULL simply return pBuf. Only allocate new memory space when pBuf
1375** is NULL.
drhb2771ce2009-02-20 01:28:59 +00001376**
1377** nByte is the number of bytes of space needed.
1378**
drh19875c82009-12-08 19:58:19 +00001379** *ppFrom points to available space and pEnd points to the end of the
1380** available space. When space is allocated, *ppFrom is advanced past
1381** the end of the allocated space.
drhb2771ce2009-02-20 01:28:59 +00001382**
1383** *pnByte is a counter of the number of bytes of space that have failed
1384** to allocate. If there is insufficient space in *ppFrom to satisfy the
danielk1977d336e222009-02-20 10:58:41 +00001385** request, then increment *pnByte by the amount of the request.
drhb2771ce2009-02-20 01:28:59 +00001386*/
drh4800b2e2009-12-08 15:35:22 +00001387static void *allocSpace(
1388 void *pBuf, /* Where return pointer will be stored */
drhb2771ce2009-02-20 01:28:59 +00001389 int nByte, /* Number of bytes to allocate */
1390 u8 **ppFrom, /* IN/OUT: Allocate from *ppFrom */
danielk1977d336e222009-02-20 10:58:41 +00001391 u8 *pEnd, /* Pointer to 1 byte past the end of *ppFrom buffer */
drhb2771ce2009-02-20 01:28:59 +00001392 int *pnByte /* If allocation cannot be made, increment *pnByte */
1393){
drhea598cb2009-04-05 12:22:08 +00001394 assert( EIGHT_BYTE_ALIGNMENT(*ppFrom) );
drh4800b2e2009-12-08 15:35:22 +00001395 if( pBuf ) return pBuf;
1396 nByte = ROUND8(nByte);
1397 if( &(*ppFrom)[nByte] <= pEnd ){
1398 pBuf = (void*)*ppFrom;
1399 *ppFrom += nByte;
1400 }else{
1401 *pnByte += nByte;
drhb2771ce2009-02-20 01:28:59 +00001402 }
drh4800b2e2009-12-08 15:35:22 +00001403 return pBuf;
drhb2771ce2009-02-20 01:28:59 +00001404}
drh602c2372007-03-01 00:29:13 +00001405
drh3f7d4e42004-07-24 14:35:58 +00001406/*
drh124c0b42011-06-01 18:15:55 +00001407** Rewind the VDBE back to the beginning in preparation for
1408** running it.
drh9a324642003-09-06 20:12:01 +00001409*/
drh124c0b42011-06-01 18:15:55 +00001410void sqlite3VdbeRewind(Vdbe *p){
1411#if defined(SQLITE_DEBUG) || defined(VDBE_PROFILE)
1412 int i;
1413#endif
drh9a324642003-09-06 20:12:01 +00001414 assert( p!=0 );
drh9a324642003-09-06 20:12:01 +00001415 assert( p->magic==VDBE_MAGIC_INIT );
1416
drhc16a03b2004-09-15 13:38:10 +00001417 /* There should be at least one opcode.
drh9a324642003-09-06 20:12:01 +00001418 */
drhc16a03b2004-09-15 13:38:10 +00001419 assert( p->nOp>0 );
drh9a324642003-09-06 20:12:01 +00001420
danielk197700e13612008-11-17 19:18:54 +00001421 /* Set the magic to VDBE_MAGIC_RUN sooner rather than later. */
danielk1977634f2982005-03-28 08:44:07 +00001422 p->magic = VDBE_MAGIC_RUN;
1423
drh124c0b42011-06-01 18:15:55 +00001424#ifdef SQLITE_DEBUG
1425 for(i=1; i<p->nMem; i++){
1426 assert( p->aMem[i].db==p->db );
1427 }
1428#endif
1429 p->pc = -1;
1430 p->rc = SQLITE_OK;
1431 p->errorAction = OE_Abort;
1432 p->magic = VDBE_MAGIC_RUN;
1433 p->nChange = 0;
1434 p->cacheCtr = 1;
1435 p->minWriteFileFormat = 255;
1436 p->iStatement = 0;
1437 p->nFkConstraint = 0;
1438#ifdef VDBE_PROFILE
1439 for(i=0; i<p->nOp; i++){
1440 p->aOp[i].cnt = 0;
1441 p->aOp[i].cycles = 0;
1442 }
1443#endif
1444}
1445
1446/*
1447** Prepare a virtual machine for execution for the first time after
1448** creating the virtual machine. This involves things such
1449** as allocating stack space and initializing the program counter.
1450** After the VDBE has be prepped, it can be executed by one or more
1451** calls to sqlite3VdbeExec().
1452**
1453** This function may be called exact once on a each virtual machine.
1454** After this routine is called the VM has been "packaged" and is ready
1455** to run. After this routine is called, futher calls to
1456** sqlite3VdbeAddOp() functions are prohibited. This routine disconnects
1457** the Vdbe from the Parse object that helped generate it so that the
1458** the Vdbe becomes an independent entity and the Parse object can be
1459** destroyed.
1460**
1461** Use the sqlite3VdbeRewind() procedure to restore a virtual machine back
1462** to its initial state after it has been run.
1463*/
1464void sqlite3VdbeMakeReady(
1465 Vdbe *p, /* The VDBE */
1466 Parse *pParse /* Parsing context */
1467){
1468 sqlite3 *db; /* The database connection */
1469 int nVar; /* Number of parameters */
1470 int nMem; /* Number of VM memory registers */
1471 int nCursor; /* Number of cursors required */
1472 int nArg; /* Number of arguments in subprograms */
dan1d8cb212011-12-09 13:24:16 +00001473 int nOnce; /* Number of OP_Once instructions */
drh124c0b42011-06-01 18:15:55 +00001474 int n; /* Loop counter */
1475 u8 *zCsr; /* Memory available for allocation */
1476 u8 *zEnd; /* First byte past allocated memory */
1477 int nByte; /* How much extra memory is needed */
1478
1479 assert( p!=0 );
1480 assert( p->nOp>0 );
1481 assert( pParse!=0 );
1482 assert( p->magic==VDBE_MAGIC_INIT );
1483 db = p->db;
1484 assert( db->mallocFailed==0 );
1485 nVar = pParse->nVar;
1486 nMem = pParse->nMem;
1487 nCursor = pParse->nTab;
1488 nArg = pParse->nMaxArg;
dan1d8cb212011-12-09 13:24:16 +00001489 nOnce = pParse->nOnce;
drh20e226d2012-01-01 13:58:53 +00001490 if( nOnce==0 ) nOnce = 1; /* Ensure at least one byte in p->aOnceFlag[] */
drh124c0b42011-06-01 18:15:55 +00001491
danielk1977cd3e8f72008-03-25 09:47:35 +00001492 /* For each cursor required, also allocate a memory cell. Memory
1493 ** cells (nMem+1-nCursor)..nMem, inclusive, will never be used by
1494 ** the vdbe program. Instead they are used to allocate space for
drhdfe88ec2008-11-03 20:55:06 +00001495 ** VdbeCursor/BtCursor structures. The blob of memory associated with
danielk1977cd3e8f72008-03-25 09:47:35 +00001496 ** cursor 0 is stored in memory cell nMem. Memory cell (nMem-1)
1497 ** stores the blob of memory associated with cursor 1, etc.
1498 **
1499 ** See also: allocateCursor().
1500 */
1501 nMem += nCursor;
1502
danielk19776ab3a2e2009-02-19 14:39:25 +00001503 /* Allocate space for memory registers, SQL variables, VDBE cursors and
drh124c0b42011-06-01 18:15:55 +00001504 ** an array to marshal SQL function arguments in.
drh9a324642003-09-06 20:12:01 +00001505 */
drh124c0b42011-06-01 18:15:55 +00001506 zCsr = (u8*)&p->aOp[p->nOp]; /* Memory avaliable for allocation */
1507 zEnd = (u8*)&p->aOp[p->nOpAlloc]; /* First byte past end of zCsr[] */
drh19875c82009-12-08 19:58:19 +00001508
drh124c0b42011-06-01 18:15:55 +00001509 resolveP2Values(p, &nArg);
1510 p->usesStmtJournal = (u8)(pParse->isMultiWrite && pParse->mayAbort);
1511 if( pParse->explain && nMem<10 ){
1512 nMem = 10;
1513 }
1514 memset(zCsr, 0, zEnd-zCsr);
1515 zCsr += (zCsr - (u8*)0)&7;
1516 assert( EIGHT_BYTE_ALIGNMENT(zCsr) );
drhaab910c2011-06-27 00:01:22 +00001517 p->expired = 0;
drh124c0b42011-06-01 18:15:55 +00001518
1519 /* Memory for registers, parameters, cursor, etc, is allocated in two
1520 ** passes. On the first pass, we try to reuse unused space at the
1521 ** end of the opcode array. If we are unable to satisfy all memory
1522 ** requirements by reusing the opcode array tail, then the second
1523 ** pass will fill in the rest using a fresh allocation.
1524 **
1525 ** This two-pass approach that reuses as much memory as possible from
1526 ** the leftover space at the end of the opcode array can significantly
1527 ** reduce the amount of memory held by a prepared statement.
1528 */
1529 do {
1530 nByte = 0;
1531 p->aMem = allocSpace(p->aMem, nMem*sizeof(Mem), &zCsr, zEnd, &nByte);
1532 p->aVar = allocSpace(p->aVar, nVar*sizeof(Mem), &zCsr, zEnd, &nByte);
1533 p->apArg = allocSpace(p->apArg, nArg*sizeof(Mem*), &zCsr, zEnd, &nByte);
1534 p->azVar = allocSpace(p->azVar, nVar*sizeof(char*), &zCsr, zEnd, &nByte);
1535 p->apCsr = allocSpace(p->apCsr, nCursor*sizeof(VdbeCursor*),
1536 &zCsr, zEnd, &nByte);
drhb8475df2011-12-09 16:21:19 +00001537 p->aOnceFlag = allocSpace(p->aOnceFlag, nOnce, &zCsr, zEnd, &nByte);
drh124c0b42011-06-01 18:15:55 +00001538 if( nByte ){
1539 p->pFree = sqlite3DbMallocZero(db, nByte);
drh0f7eb612006-08-08 13:51:43 +00001540 }
drh124c0b42011-06-01 18:15:55 +00001541 zCsr = p->pFree;
1542 zEnd = &zCsr[nByte];
1543 }while( nByte && !db->mallocFailed );
drhb2771ce2009-02-20 01:28:59 +00001544
drh124c0b42011-06-01 18:15:55 +00001545 p->nCursor = (u16)nCursor;
dan1d8cb212011-12-09 13:24:16 +00001546 p->nOnceFlag = nOnce;
drh124c0b42011-06-01 18:15:55 +00001547 if( p->aVar ){
1548 p->nVar = (ynVar)nVar;
1549 for(n=0; n<nVar; n++){
1550 p->aVar[n].flags = MEM_Null;
1551 p->aVar[n].db = db;
danielk197754db47e2004-05-19 10:36:43 +00001552 }
drh82a48512003-09-06 22:45:20 +00001553 }
drh124c0b42011-06-01 18:15:55 +00001554 if( p->azVar ){
1555 p->nzVar = pParse->nzVar;
1556 memcpy(p->azVar, pParse->azVar, p->nzVar*sizeof(p->azVar[0]));
1557 memset(pParse->azVar, 0, pParse->nzVar*sizeof(pParse->azVar[0]));
danielk1977b3bce662005-01-29 08:32:43 +00001558 }
drh124c0b42011-06-01 18:15:55 +00001559 if( p->aMem ){
1560 p->aMem--; /* aMem[] goes from 1..nMem */
1561 p->nMem = nMem; /* not from 0..nMem-1 */
1562 for(n=1; n<=nMem; n++){
drhb8475df2011-12-09 16:21:19 +00001563 p->aMem[n].flags = MEM_Invalid;
drh124c0b42011-06-01 18:15:55 +00001564 p->aMem[n].db = db;
drhcf64d8b2003-12-31 17:57:10 +00001565 }
drh9a324642003-09-06 20:12:01 +00001566 }
drh124c0b42011-06-01 18:15:55 +00001567 p->explain = pParse->explain;
1568 sqlite3VdbeRewind(p);
drh9a324642003-09-06 20:12:01 +00001569}
1570
drh9a324642003-09-06 20:12:01 +00001571/*
danielk1977cd3e8f72008-03-25 09:47:35 +00001572** Close a VDBE cursor and release all the resources that cursor
1573** happens to hold.
drh9a324642003-09-06 20:12:01 +00001574*/
drhdfe88ec2008-11-03 20:55:06 +00001575void sqlite3VdbeFreeCursor(Vdbe *p, VdbeCursor *pCx){
drh4774b132004-06-12 20:12:51 +00001576 if( pCx==0 ){
1577 return;
1578 }
dana20fde62011-07-12 14:28:05 +00001579 sqlite3VdbeSorterClose(p->db, pCx);
drh9a324642003-09-06 20:12:01 +00001580 if( pCx->pBt ){
danielk19774adee202004-05-08 08:23:19 +00001581 sqlite3BtreeClose(pCx->pBt);
drh34004ce2008-07-11 16:15:17 +00001582 /* The pCx->pCursor will be close automatically, if it exists, by
1583 ** the call above. */
1584 }else if( pCx->pCursor ){
1585 sqlite3BtreeCloseCursor(pCx->pCursor);
drh9a324642003-09-06 20:12:01 +00001586 }
drh9eff6162006-06-12 21:59:13 +00001587#ifndef SQLITE_OMIT_VIRTUALTABLE
1588 if( pCx->pVtabCursor ){
1589 sqlite3_vtab_cursor *pVtabCursor = pCx->pVtabCursor;
danielk1977be718892006-06-23 08:05:19 +00001590 const sqlite3_module *pModule = pCx->pModule;
1591 p->inVtabMethod = 1;
drh9eff6162006-06-12 21:59:13 +00001592 pModule->xClose(pVtabCursor);
danielk1977be718892006-06-23 08:05:19 +00001593 p->inVtabMethod = 0;
drh9eff6162006-06-12 21:59:13 +00001594 }
1595#endif
drh9a324642003-09-06 20:12:01 +00001596}
1597
dan65a7cd12009-09-01 12:16:01 +00001598/*
1599** Copy the values stored in the VdbeFrame structure to its Vdbe. This
1600** is used, for example, when a trigger sub-program is halted to restore
1601** control to the main program.
1602*/
dan165921a2009-08-28 18:53:45 +00001603int sqlite3VdbeFrameRestore(VdbeFrame *pFrame){
1604 Vdbe *v = pFrame->v;
dan1d8cb212011-12-09 13:24:16 +00001605 v->aOnceFlag = pFrame->aOnceFlag;
1606 v->nOnceFlag = pFrame->nOnceFlag;
dan165921a2009-08-28 18:53:45 +00001607 v->aOp = pFrame->aOp;
1608 v->nOp = pFrame->nOp;
1609 v->aMem = pFrame->aMem;
1610 v->nMem = pFrame->nMem;
1611 v->apCsr = pFrame->apCsr;
1612 v->nCursor = pFrame->nCursor;
dan76d462e2009-08-30 11:42:51 +00001613 v->db->lastRowid = pFrame->lastRowid;
1614 v->nChange = pFrame->nChange;
dan165921a2009-08-28 18:53:45 +00001615 return pFrame->pc;
1616}
1617
drh9a324642003-09-06 20:12:01 +00001618/*
drh5f82e3c2009-07-06 00:44:08 +00001619** Close all cursors.
dan165921a2009-08-28 18:53:45 +00001620**
1621** Also release any dynamic memory held by the VM in the Vdbe.aMem memory
1622** cell array. This is necessary as the memory cell array may contain
1623** pointers to VdbeFrame objects, which may in turn contain pointers to
1624** open cursors.
drh9a324642003-09-06 20:12:01 +00001625*/
drh5f82e3c2009-07-06 00:44:08 +00001626static void closeAllCursors(Vdbe *p){
dan165921a2009-08-28 18:53:45 +00001627 if( p->pFrame ){
drh23272752011-03-06 21:54:33 +00001628 VdbeFrame *pFrame;
dan165921a2009-08-28 18:53:45 +00001629 for(pFrame=p->pFrame; pFrame->pParent; pFrame=pFrame->pParent);
1630 sqlite3VdbeFrameRestore(pFrame);
1631 }
1632 p->pFrame = 0;
1633 p->nFrame = 0;
1634
dan523a0872009-08-31 05:23:32 +00001635 if( p->apCsr ){
1636 int i;
1637 for(i=0; i<p->nCursor; i++){
1638 VdbeCursor *pC = p->apCsr[i];
1639 if( pC ){
1640 sqlite3VdbeFreeCursor(p, pC);
1641 p->apCsr[i] = 0;
1642 }
danielk1977be718892006-06-23 08:05:19 +00001643 }
drh9a324642003-09-06 20:12:01 +00001644 }
dan523a0872009-08-31 05:23:32 +00001645 if( p->aMem ){
1646 releaseMemArray(&p->aMem[1], p->nMem);
1647 }
dan27106572010-12-01 08:04:47 +00001648 while( p->pDelFrame ){
1649 VdbeFrame *pDel = p->pDelFrame;
1650 p->pDelFrame = pDel->pParent;
1651 sqlite3VdbeFrameDelete(pDel);
1652 }
drh9a324642003-09-06 20:12:01 +00001653}
1654
1655/*
drh9a324642003-09-06 20:12:01 +00001656** Clean up the VM after execution.
1657**
1658** This routine will automatically close any cursors, lists, and/or
1659** sorters that were left open. It also deletes the values of
drh5a12e682004-05-19 11:24:25 +00001660** variables in the aVar[] array.
drh9a324642003-09-06 20:12:01 +00001661*/
drhc890fec2008-08-01 20:10:08 +00001662static void Cleanup(Vdbe *p){
drh633e6d52008-07-28 19:34:53 +00001663 sqlite3 *db = p->db;
dan165921a2009-08-28 18:53:45 +00001664
1665#ifdef SQLITE_DEBUG
1666 /* Execute assert() statements to ensure that the Vdbe.apCsr[] and
1667 ** Vdbe.aMem[] arrays have already been cleaned up. */
1668 int i;
drhb8475df2011-12-09 16:21:19 +00001669 if( p->apCsr ) for(i=0; i<p->nCursor; i++) assert( p->apCsr[i]==0 );
1670 if( p->aMem ){
1671 for(i=1; i<=p->nMem; i++) assert( p->aMem[i].flags==MEM_Invalid );
1672 }
dan165921a2009-08-28 18:53:45 +00001673#endif
1674
drh633e6d52008-07-28 19:34:53 +00001675 sqlite3DbFree(db, p->zErrMsg);
drh9a324642003-09-06 20:12:01 +00001676 p->zErrMsg = 0;
drhd4e70eb2008-01-02 00:34:36 +00001677 p->pResultSet = 0;
drh9a324642003-09-06 20:12:01 +00001678}
1679
1680/*
danielk197722322fd2004-05-25 23:35:17 +00001681** Set the number of result columns that will be returned by this SQL
1682** statement. This is now set at compile time, rather than during
1683** execution of the vdbe program so that sqlite3_column_count() can
1684** be called on an SQL statement before sqlite3_step().
1685*/
1686void sqlite3VdbeSetNumCols(Vdbe *p, int nResColumn){
drh76ff3a02004-09-24 22:32:30 +00001687 Mem *pColName;
1688 int n;
drh633e6d52008-07-28 19:34:53 +00001689 sqlite3 *db = p->db;
drh4a50aac2007-08-23 02:47:53 +00001690
drhc890fec2008-08-01 20:10:08 +00001691 releaseMemArray(p->aColName, p->nResColumn*COLNAME_N);
drh633e6d52008-07-28 19:34:53 +00001692 sqlite3DbFree(db, p->aColName);
danielk1977955de522006-02-10 02:27:42 +00001693 n = nResColumn*COLNAME_N;
shane36840fd2009-06-26 16:32:13 +00001694 p->nResColumn = (u16)nResColumn;
drh633e6d52008-07-28 19:34:53 +00001695 p->aColName = pColName = (Mem*)sqlite3DbMallocZero(db, sizeof(Mem)*n );
drh76ff3a02004-09-24 22:32:30 +00001696 if( p->aColName==0 ) return;
1697 while( n-- > 0 ){
drh4a50aac2007-08-23 02:47:53 +00001698 pColName->flags = MEM_Null;
drh153c62c2007-08-24 03:51:33 +00001699 pColName->db = p->db;
drh4a50aac2007-08-23 02:47:53 +00001700 pColName++;
drh76ff3a02004-09-24 22:32:30 +00001701 }
danielk197722322fd2004-05-25 23:35:17 +00001702}
1703
1704/*
danielk19773cf86062004-05-26 10:11:05 +00001705** Set the name of the idx'th column to be returned by the SQL statement.
1706** zName must be a pointer to a nul terminated string.
1707**
1708** This call must be made after a call to sqlite3VdbeSetNumCols().
1709**
danielk197710fb7492008-10-31 10:53:22 +00001710** The final parameter, xDel, must be one of SQLITE_DYNAMIC, SQLITE_STATIC
1711** or SQLITE_TRANSIENT. If it is SQLITE_DYNAMIC, then the buffer pointed
1712** to by zName will be freed by sqlite3DbFree() when the vdbe is destroyed.
danielk19773cf86062004-05-26 10:11:05 +00001713*/
danielk197710fb7492008-10-31 10:53:22 +00001714int sqlite3VdbeSetColName(
1715 Vdbe *p, /* Vdbe being configured */
1716 int idx, /* Index of column zName applies to */
1717 int var, /* One of the COLNAME_* constants */
1718 const char *zName, /* Pointer to buffer containing name */
1719 void (*xDel)(void*) /* Memory management strategy for zName */
1720){
danielk19773cf86062004-05-26 10:11:05 +00001721 int rc;
1722 Mem *pColName;
danielk1977955de522006-02-10 02:27:42 +00001723 assert( idx<p->nResColumn );
1724 assert( var<COLNAME_N );
danielk197710fb7492008-10-31 10:53:22 +00001725 if( p->db->mallocFailed ){
1726 assert( !zName || xDel!=SQLITE_DYNAMIC );
1727 return SQLITE_NOMEM;
1728 }
drh76ff3a02004-09-24 22:32:30 +00001729 assert( p->aColName!=0 );
danielk1977955de522006-02-10 02:27:42 +00001730 pColName = &(p->aColName[idx+var*p->nResColumn]);
danielk197710fb7492008-10-31 10:53:22 +00001731 rc = sqlite3VdbeMemSetStr(pColName, zName, -1, SQLITE_UTF8, xDel);
drh0793f1b2008-11-05 17:41:19 +00001732 assert( rc!=0 || !zName || (pColName->flags&MEM_Term)!=0 );
danielk19773cf86062004-05-26 10:11:05 +00001733 return rc;
1734}
1735
danielk197713adf8a2004-06-03 16:08:41 +00001736/*
1737** A read or write transaction may or may not be active on database handle
1738** db. If a transaction is active, commit it. If there is a
1739** write-transaction spanning more than one database file, this routine
1740** takes care of the master journal trickery.
1741*/
danielk19773e3a84d2008-08-01 17:37:40 +00001742static int vdbeCommit(sqlite3 *db, Vdbe *p){
danielk197713adf8a2004-06-03 16:08:41 +00001743 int i;
1744 int nTrans = 0; /* Number of databases with an active write-transaction */
1745 int rc = SQLITE_OK;
1746 int needXcommit = 0;
1747
shane36840fd2009-06-26 16:32:13 +00001748#ifdef SQLITE_OMIT_VIRTUALTABLE
1749 /* With this option, sqlite3VtabSync() is defined to be simply
1750 ** SQLITE_OK so p is not used.
1751 */
1752 UNUSED_PARAMETER(p);
1753#endif
1754
danielk19775bd270b2006-07-25 15:14:52 +00001755 /* Before doing anything else, call the xSync() callback for any
1756 ** virtual module tables written in this transaction. This has to
1757 ** be done before determining whether a master journal file is
1758 ** required, as an xSync() callback may add an attached database
1759 ** to the transaction.
1760 */
danielk19773e3a84d2008-08-01 17:37:40 +00001761 rc = sqlite3VtabSync(db, &p->zErrMsg);
danielk19775bd270b2006-07-25 15:14:52 +00001762
1763 /* This loop determines (a) if the commit hook should be invoked and
1764 ** (b) how many database files have open write transactions, not
1765 ** including the temp database. (b) is important because if more than
1766 ** one database file has an open write transaction, a master journal
1767 ** file is required for an atomic commit.
1768 */
drhabfb62f2010-07-30 11:20:35 +00001769 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){
danielk197713adf8a2004-06-03 16:08:41 +00001770 Btree *pBt = db->aDb[i].pBt;
drhd0679ed2007-08-28 22:24:34 +00001771 if( sqlite3BtreeIsInTrans(pBt) ){
danielk197713adf8a2004-06-03 16:08:41 +00001772 needXcommit = 1;
1773 if( i!=1 ) nTrans++;
dan6b9bb592012-10-05 19:43:02 +00001774 sqlite3BtreeEnter(pBt);
drhabfb62f2010-07-30 11:20:35 +00001775 rc = sqlite3PagerExclusiveLock(sqlite3BtreePager(pBt));
dan6b9bb592012-10-05 19:43:02 +00001776 sqlite3BtreeLeave(pBt);
danielk197713adf8a2004-06-03 16:08:41 +00001777 }
1778 }
drhabfb62f2010-07-30 11:20:35 +00001779 if( rc!=SQLITE_OK ){
1780 return rc;
1781 }
danielk197713adf8a2004-06-03 16:08:41 +00001782
1783 /* If there are any write-transactions at all, invoke the commit hook */
1784 if( needXcommit && db->xCommitCallback ){
drh92f02c32004-09-02 14:57:08 +00001785 rc = db->xCommitCallback(db->pCommitArg);
drh92f02c32004-09-02 14:57:08 +00001786 if( rc ){
danielk197713adf8a2004-06-03 16:08:41 +00001787 return SQLITE_CONSTRAINT;
1788 }
1789 }
1790
danielk197740b38dc2004-06-26 08:38:24 +00001791 /* The simple case - no more than one database file (not counting the
1792 ** TEMP database) has a transaction active. There is no need for the
drh2ac3ee92004-06-07 16:27:46 +00001793 ** master-journal.
drhc9e06862004-06-09 20:03:08 +00001794 **
danielk197740b38dc2004-06-26 08:38:24 +00001795 ** If the return value of sqlite3BtreeGetFilename() is a zero length
danielk197717b90b52008-06-06 11:11:25 +00001796 ** string, it means the main database is :memory: or a temp file. In
1797 ** that case we do not support atomic multi-file commits, so use the
1798 ** simple case then too.
danielk197713adf8a2004-06-03 16:08:41 +00001799 */
drhea678832008-12-10 19:26:22 +00001800 if( 0==sqlite3Strlen30(sqlite3BtreeGetFilename(db->aDb[0].pBt))
1801 || nTrans<=1
1802 ){
danielk197704103022009-02-03 16:51:24 +00001803 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){
danielk197713adf8a2004-06-03 16:08:41 +00001804 Btree *pBt = db->aDb[i].pBt;
1805 if( pBt ){
drh80e35f42007-03-30 14:06:34 +00001806 rc = sqlite3BtreeCommitPhaseOne(pBt, 0);
drh2ac3ee92004-06-07 16:27:46 +00001807 }
1808 }
1809
drh80e35f42007-03-30 14:06:34 +00001810 /* Do the commit only if all databases successfully complete phase 1.
1811 ** If one of the BtreeCommitPhaseOne() calls fails, this indicates an
1812 ** IO error while deleting or truncating a journal file. It is unlikely,
1813 ** but could happen. In this case abandon processing and return the error.
danielk1977979f38e2007-03-27 16:19:51 +00001814 */
1815 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){
1816 Btree *pBt = db->aDb[i].pBt;
1817 if( pBt ){
dan60939d02011-03-29 15:40:55 +00001818 rc = sqlite3BtreeCommitPhaseTwo(pBt, 0);
danielk197713adf8a2004-06-03 16:08:41 +00001819 }
danielk1977979f38e2007-03-27 16:19:51 +00001820 }
1821 if( rc==SQLITE_OK ){
danielk1977f9e7dda2006-06-16 16:08:53 +00001822 sqlite3VtabCommit(db);
danielk197713adf8a2004-06-03 16:08:41 +00001823 }
1824 }
1825
1826 /* The complex case - There is a multi-file write-transaction active.
1827 ** This requires a master journal file to ensure the transaction is
1828 ** committed atomicly.
1829 */
danielk197744ee5bf2005-05-27 09:41:12 +00001830#ifndef SQLITE_OMIT_DISKIO
danielk197713adf8a2004-06-03 16:08:41 +00001831 else{
danielk1977b4b47412007-08-17 15:53:36 +00001832 sqlite3_vfs *pVfs = db->pVfs;
drh2c8997b2005-08-27 16:36:48 +00001833 int needSync = 0;
danielk197713adf8a2004-06-03 16:08:41 +00001834 char *zMaster = 0; /* File-name for the master journal */
1835 char const *zMainFile = sqlite3BtreeGetFilename(db->aDb[0].pBt);
danielk1977b4b47412007-08-17 15:53:36 +00001836 sqlite3_file *pMaster = 0;
danielk197762079062007-08-15 17:08:46 +00001837 i64 offset = 0;
danielk1977861f7452008-06-05 11:39:11 +00001838 int res;
drhf5808602011-12-16 00:33:04 +00001839 int retryCount = 0;
drh5c531a42011-12-16 01:21:31 +00001840 int nMainFile;
danielk197713adf8a2004-06-03 16:08:41 +00001841
1842 /* Select a master journal file name */
drh5c531a42011-12-16 01:21:31 +00001843 nMainFile = sqlite3Strlen30(zMainFile);
drh52bcde02012-01-03 14:50:45 +00001844 zMaster = sqlite3MPrintf(db, "%s-mjXXXXXX9XXz", zMainFile);
drh5c531a42011-12-16 01:21:31 +00001845 if( zMaster==0 ) return SQLITE_NOMEM;
danielk197713adf8a2004-06-03 16:08:41 +00001846 do {
drhdc5ea5c2008-12-10 17:19:59 +00001847 u32 iRandom;
drh84968c02011-12-16 15:11:39 +00001848 if( retryCount ){
1849 if( retryCount>100 ){
1850 sqlite3_log(SQLITE_FULL, "MJ delete: %s", zMaster);
1851 sqlite3OsDelete(pVfs, zMaster, 0);
1852 break;
1853 }else if( retryCount==1 ){
1854 sqlite3_log(SQLITE_FULL, "MJ collide: %s", zMaster);
1855 }
danielk197713adf8a2004-06-03 16:08:41 +00001856 }
drh84968c02011-12-16 15:11:39 +00001857 retryCount++;
danielk197713adf8a2004-06-03 16:08:41 +00001858 sqlite3_randomness(sizeof(iRandom), &iRandom);
drh5c531a42011-12-16 01:21:31 +00001859 sqlite3_snprintf(13, &zMaster[nMainFile], "-mj%06X9%02X",
drhf5808602011-12-16 00:33:04 +00001860 (iRandom>>8)&0xffffff, iRandom&0xff);
drhf5808602011-12-16 00:33:04 +00001861 /* The antipenultimate character of the master journal name must
1862 ** be "9" to avoid name collisions when using 8+3 filenames. */
drh5c531a42011-12-16 01:21:31 +00001863 assert( zMaster[sqlite3Strlen30(zMaster)-3]=='9' );
drh81cc5162011-05-17 20:36:21 +00001864 sqlite3FileSuffix3(zMainFile, zMaster);
danielk1977861f7452008-06-05 11:39:11 +00001865 rc = sqlite3OsAccess(pVfs, zMaster, SQLITE_ACCESS_EXISTS, &res);
1866 }while( rc==SQLITE_OK && res );
1867 if( rc==SQLITE_OK ){
drh19db9352008-03-27 22:42:51 +00001868 /* Open the master journal. */
1869 rc = sqlite3OsOpenMalloc(pVfs, zMaster, &pMaster,
1870 SQLITE_OPEN_READWRITE|SQLITE_OPEN_CREATE|
1871 SQLITE_OPEN_EXCLUSIVE|SQLITE_OPEN_MASTER_JOURNAL, 0
1872 );
1873 }
danielk197713adf8a2004-06-03 16:08:41 +00001874 if( rc!=SQLITE_OK ){
drh633e6d52008-07-28 19:34:53 +00001875 sqlite3DbFree(db, zMaster);
danielk197713adf8a2004-06-03 16:08:41 +00001876 return rc;
1877 }
1878
1879 /* Write the name of each database file in the transaction into the new
1880 ** master journal file. If an error occurs at this point close
1881 ** and delete the master journal file. All the individual journal files
1882 ** still have 'null' as the master journal pointer, so they will roll
danielk1977aca790a2005-01-13 11:07:52 +00001883 ** back independently if a failure occurs.
danielk197713adf8a2004-06-03 16:08:41 +00001884 */
danielk19771e536952007-08-16 10:09:01 +00001885 for(i=0; i<db->nDb; i++){
danielk197713adf8a2004-06-03 16:08:41 +00001886 Btree *pBt = db->aDb[i].pBt;
drhd0679ed2007-08-28 22:24:34 +00001887 if( sqlite3BtreeIsInTrans(pBt) ){
danielk19775865e3d2004-06-14 06:03:57 +00001888 char const *zFile = sqlite3BtreeGetJournalname(pBt);
drh8c96a6e2010-08-31 01:09:15 +00001889 if( zFile==0 ){
drhb290e1c2009-12-08 13:36:55 +00001890 continue; /* Ignore TEMP and :memory: databases */
1891 }
drh8c96a6e2010-08-31 01:09:15 +00001892 assert( zFile[0]!=0 );
drh2c8997b2005-08-27 16:36:48 +00001893 if( !needSync && !sqlite3BtreeSyncDisabled(pBt) ){
1894 needSync = 1;
1895 }
drhea678832008-12-10 19:26:22 +00001896 rc = sqlite3OsWrite(pMaster, zFile, sqlite3Strlen30(zFile)+1, offset);
1897 offset += sqlite3Strlen30(zFile)+1;
danielk197713adf8a2004-06-03 16:08:41 +00001898 if( rc!=SQLITE_OK ){
danielk1977fee2d252007-08-18 10:59:19 +00001899 sqlite3OsCloseFree(pMaster);
1900 sqlite3OsDelete(pVfs, zMaster, 0);
drh633e6d52008-07-28 19:34:53 +00001901 sqlite3DbFree(db, zMaster);
danielk197713adf8a2004-06-03 16:08:41 +00001902 return rc;
1903 }
1904 }
1905 }
1906
danielk19779663b8f2007-08-24 11:52:28 +00001907 /* Sync the master journal file. If the IOCAP_SEQUENTIAL device
1908 ** flag is set this is not required.
1909 */
danielk1977bea2a942009-01-20 17:06:27 +00001910 if( needSync
1911 && 0==(sqlite3OsDeviceCharacteristics(pMaster)&SQLITE_IOCAP_SEQUENTIAL)
1912 && SQLITE_OK!=(rc = sqlite3OsSync(pMaster, SQLITE_SYNC_NORMAL))
1913 ){
danielk1977fee2d252007-08-18 10:59:19 +00001914 sqlite3OsCloseFree(pMaster);
1915 sqlite3OsDelete(pVfs, zMaster, 0);
drh633e6d52008-07-28 19:34:53 +00001916 sqlite3DbFree(db, zMaster);
danielk19775865e3d2004-06-14 06:03:57 +00001917 return rc;
1918 }
drhc9e06862004-06-09 20:03:08 +00001919
danielk197713adf8a2004-06-03 16:08:41 +00001920 /* Sync all the db files involved in the transaction. The same call
1921 ** sets the master journal pointer in each individual journal. If
1922 ** an error occurs here, do not delete the master journal file.
1923 **
drh80e35f42007-03-30 14:06:34 +00001924 ** If the error occurs during the first call to
1925 ** sqlite3BtreeCommitPhaseOne(), then there is a chance that the
1926 ** master journal file will be orphaned. But we cannot delete it,
1927 ** in case the master journal file name was written into the journal
shanebe217792009-03-05 04:20:31 +00001928 ** file before the failure occurred.
danielk197713adf8a2004-06-03 16:08:41 +00001929 */
danielk19775bd270b2006-07-25 15:14:52 +00001930 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){
danielk197713adf8a2004-06-03 16:08:41 +00001931 Btree *pBt = db->aDb[i].pBt;
drhd0679ed2007-08-28 22:24:34 +00001932 if( pBt ){
drh80e35f42007-03-30 14:06:34 +00001933 rc = sqlite3BtreeCommitPhaseOne(pBt, zMaster);
danielk197713adf8a2004-06-03 16:08:41 +00001934 }
1935 }
danielk1977fee2d252007-08-18 10:59:19 +00001936 sqlite3OsCloseFree(pMaster);
drhabfb62f2010-07-30 11:20:35 +00001937 assert( rc!=SQLITE_BUSY );
danielk19775bd270b2006-07-25 15:14:52 +00001938 if( rc!=SQLITE_OK ){
drh633e6d52008-07-28 19:34:53 +00001939 sqlite3DbFree(db, zMaster);
danielk19775bd270b2006-07-25 15:14:52 +00001940 return rc;
1941 }
danielk197713adf8a2004-06-03 16:08:41 +00001942
danielk1977962398d2004-06-14 09:35:16 +00001943 /* Delete the master journal file. This commits the transaction. After
1944 ** doing this the directory is synced again before any individual
1945 ** transaction files are deleted.
1946 */
danielk1977fee2d252007-08-18 10:59:19 +00001947 rc = sqlite3OsDelete(pVfs, zMaster, 1);
drh633e6d52008-07-28 19:34:53 +00001948 sqlite3DbFree(db, zMaster);
drhc416ba92007-03-30 18:42:55 +00001949 zMaster = 0;
drh29a01382006-08-13 19:04:18 +00001950 if( rc ){
1951 return rc;
1952 }
danielk197713adf8a2004-06-03 16:08:41 +00001953
1954 /* All files and directories have already been synced, so the following
drh80e35f42007-03-30 14:06:34 +00001955 ** calls to sqlite3BtreeCommitPhaseTwo() are only closing files and
1956 ** deleting or truncating journals. If something goes wrong while
1957 ** this is happening we don't really care. The integrity of the
1958 ** transaction is already guaranteed, but some stray 'cold' journals
1959 ** may be lying around. Returning an error code won't help matters.
danielk197713adf8a2004-06-03 16:08:41 +00001960 */
danielk1977979f38e2007-03-27 16:19:51 +00001961 disable_simulated_io_errors();
danielk19772d1d86f2008-06-20 14:59:51 +00001962 sqlite3BeginBenignMalloc();
danielk197713adf8a2004-06-03 16:08:41 +00001963 for(i=0; i<db->nDb; i++){
1964 Btree *pBt = db->aDb[i].pBt;
1965 if( pBt ){
dan60939d02011-03-29 15:40:55 +00001966 sqlite3BtreeCommitPhaseTwo(pBt, 1);
danielk197713adf8a2004-06-03 16:08:41 +00001967 }
1968 }
danielk19772d1d86f2008-06-20 14:59:51 +00001969 sqlite3EndBenignMalloc();
danielk1977979f38e2007-03-27 16:19:51 +00001970 enable_simulated_io_errors();
1971
danielk1977f9e7dda2006-06-16 16:08:53 +00001972 sqlite3VtabCommit(db);
danielk197713adf8a2004-06-03 16:08:41 +00001973 }
danielk197744ee5bf2005-05-27 09:41:12 +00001974#endif
danielk1977026d2702004-06-14 13:14:59 +00001975
drh2ac3ee92004-06-07 16:27:46 +00001976 return rc;
danielk197713adf8a2004-06-03 16:08:41 +00001977}
1978
danielk19771d850a72004-05-31 08:26:49 +00001979/*
1980** This routine checks that the sqlite3.activeVdbeCnt count variable
1981** matches the number of vdbe's in the list sqlite3.pVdbe that are
1982** currently active. An assertion fails if the two counts do not match.
drh92f02c32004-09-02 14:57:08 +00001983** This is an internal self-check only - it is not an essential processing
1984** step.
danielk19771d850a72004-05-31 08:26:49 +00001985**
1986** This is a no-op if NDEBUG is defined.
1987*/
1988#ifndef NDEBUG
drh9bb575f2004-09-06 17:24:11 +00001989static void checkActiveVdbeCnt(sqlite3 *db){
danielk19771d850a72004-05-31 08:26:49 +00001990 Vdbe *p;
1991 int cnt = 0;
drhad4a4b82008-11-05 16:37:34 +00001992 int nWrite = 0;
danielk19771d850a72004-05-31 08:26:49 +00001993 p = db->pVdbe;
1994 while( p ){
drh92f02c32004-09-02 14:57:08 +00001995 if( p->magic==VDBE_MAGIC_RUN && p->pc>=0 ){
danielk19771d850a72004-05-31 08:26:49 +00001996 cnt++;
drhad4a4b82008-11-05 16:37:34 +00001997 if( p->readOnly==0 ) nWrite++;
danielk19771d850a72004-05-31 08:26:49 +00001998 }
1999 p = p->pNext;
2000 }
danielk19771d850a72004-05-31 08:26:49 +00002001 assert( cnt==db->activeVdbeCnt );
drhad4a4b82008-11-05 16:37:34 +00002002 assert( nWrite==db->writeVdbeCnt );
danielk19771d850a72004-05-31 08:26:49 +00002003}
2004#else
2005#define checkActiveVdbeCnt(x)
2006#endif
2007
danielk19773cf86062004-05-26 10:11:05 +00002008/*
danielk1977bd434552009-03-18 10:33:00 +00002009** If the Vdbe passed as the first argument opened a statement-transaction,
2010** close it now. Argument eOp must be either SAVEPOINT_ROLLBACK or
2011** SAVEPOINT_RELEASE. If it is SAVEPOINT_ROLLBACK, then the statement
2012** transaction is rolled back. If eOp is SAVEPOINT_RELEASE, then the
2013** statement transaction is commtted.
2014**
2015** If an IO error occurs, an SQLITE_IOERR_XXX error code is returned.
2016** Otherwise SQLITE_OK.
2017*/
2018int sqlite3VdbeCloseStatement(Vdbe *p, int eOp){
danielk1977c926b6a2009-03-20 14:42:11 +00002019 sqlite3 *const db = p->db;
danielk1977bd434552009-03-18 10:33:00 +00002020 int rc = SQLITE_OK;
danielk1977ecaecf92009-07-08 08:05:35 +00002021
danielk1977e4948172009-07-17 17:25:43 +00002022 /* If p->iStatement is greater than zero, then this Vdbe opened a
2023 ** statement transaction that should be closed here. The only exception
2024 ** is that an IO error may have occured, causing an emergency rollback.
2025 ** In this case (db->nStatement==0), and there is nothing to do.
2026 */
2027 if( db->nStatement && p->iStatement ){
danielk1977bd434552009-03-18 10:33:00 +00002028 int i;
2029 const int iSavepoint = p->iStatement-1;
danielk1977bd434552009-03-18 10:33:00 +00002030
2031 assert( eOp==SAVEPOINT_ROLLBACK || eOp==SAVEPOINT_RELEASE);
2032 assert( db->nStatement>0 );
2033 assert( p->iStatement==(db->nStatement+db->nSavepoint) );
2034
2035 for(i=0; i<db->nDb; i++){
2036 int rc2 = SQLITE_OK;
2037 Btree *pBt = db->aDb[i].pBt;
2038 if( pBt ){
2039 if( eOp==SAVEPOINT_ROLLBACK ){
2040 rc2 = sqlite3BtreeSavepoint(pBt, SAVEPOINT_ROLLBACK, iSavepoint);
2041 }
2042 if( rc2==SQLITE_OK ){
2043 rc2 = sqlite3BtreeSavepoint(pBt, SAVEPOINT_RELEASE, iSavepoint);
2044 }
2045 if( rc==SQLITE_OK ){
2046 rc = rc2;
2047 }
2048 }
2049 }
2050 db->nStatement--;
2051 p->iStatement = 0;
dan1da40a32009-09-19 17:00:31 +00002052
dana311b802011-04-26 19:21:34 +00002053 if( rc==SQLITE_OK ){
2054 if( eOp==SAVEPOINT_ROLLBACK ){
2055 rc = sqlite3VtabSavepoint(db, SAVEPOINT_ROLLBACK, iSavepoint);
2056 }
2057 if( rc==SQLITE_OK ){
2058 rc = sqlite3VtabSavepoint(db, SAVEPOINT_RELEASE, iSavepoint);
2059 }
2060 }
2061
dan1da40a32009-09-19 17:00:31 +00002062 /* If the statement transaction is being rolled back, also restore the
2063 ** database handles deferred constraint counter to the value it had when
2064 ** the statement transaction was opened. */
2065 if( eOp==SAVEPOINT_ROLLBACK ){
2066 db->nDeferredCons = p->nStmtDefCons;
2067 }
danielk1977bd434552009-03-18 10:33:00 +00002068 }
2069 return rc;
2070}
2071
2072/*
dan1da40a32009-09-19 17:00:31 +00002073** This function is called when a transaction opened by the database
2074** handle associated with the VM passed as an argument is about to be
2075** committed. If there are outstanding deferred foreign key constraint
2076** violations, return SQLITE_ERROR. Otherwise, SQLITE_OK.
2077**
2078** If there are outstanding FK violations and this function returns
2079** SQLITE_ERROR, set the result of the VM to SQLITE_CONSTRAINT and write
2080** an error message to it. Then return SQLITE_ERROR.
2081*/
2082#ifndef SQLITE_OMIT_FOREIGN_KEY
dan32b09f22009-09-23 17:29:59 +00002083int sqlite3VdbeCheckFk(Vdbe *p, int deferred){
dan1da40a32009-09-19 17:00:31 +00002084 sqlite3 *db = p->db;
dan32b09f22009-09-23 17:29:59 +00002085 if( (deferred && db->nDeferredCons>0) || (!deferred && p->nFkConstraint>0) ){
dan1da40a32009-09-19 17:00:31 +00002086 p->rc = SQLITE_CONSTRAINT;
dan32b09f22009-09-23 17:29:59 +00002087 p->errorAction = OE_Abort;
dan1da40a32009-09-19 17:00:31 +00002088 sqlite3SetString(&p->zErrMsg, db, "foreign key constraint failed");
2089 return SQLITE_ERROR;
2090 }
2091 return SQLITE_OK;
2092}
2093#endif
2094
2095/*
drh92f02c32004-09-02 14:57:08 +00002096** This routine is called the when a VDBE tries to halt. If the VDBE
2097** has made changes and is in autocommit mode, then commit those
2098** changes. If a rollback is needed, then do the rollback.
drh9a324642003-09-06 20:12:01 +00002099**
drh92f02c32004-09-02 14:57:08 +00002100** This routine is the only way to move the state of a VM from
drhff0587c2007-08-29 17:43:19 +00002101** SQLITE_MAGIC_RUN to SQLITE_MAGIC_HALT. It is harmless to
2102** call this on a VM that is in the SQLITE_MAGIC_HALT state.
drh92f02c32004-09-02 14:57:08 +00002103**
2104** Return an error code. If the commit could not complete because of
2105** lock contention, return SQLITE_BUSY. If SQLITE_BUSY is returned, it
2106** means the close did not happen and needs to be repeated.
drh9a324642003-09-06 20:12:01 +00002107*/
drhff0587c2007-08-29 17:43:19 +00002108int sqlite3VdbeHalt(Vdbe *p){
danielk1977bd434552009-03-18 10:33:00 +00002109 int rc; /* Used to store transient return codes */
drh9bb575f2004-09-06 17:24:11 +00002110 sqlite3 *db = p->db;
danielk197707cb5602006-01-20 10:55:05 +00002111
2112 /* This function contains the logic that determines if a statement or
2113 ** transaction will be committed or rolled back as a result of the
2114 ** execution of this virtual machine.
2115 **
drh71b890a2007-10-03 15:30:52 +00002116 ** If any of the following errors occur:
danielk197707cb5602006-01-20 10:55:05 +00002117 **
drh71b890a2007-10-03 15:30:52 +00002118 ** SQLITE_NOMEM
2119 ** SQLITE_IOERR
2120 ** SQLITE_FULL
2121 ** SQLITE_INTERRUPT
danielk197707cb5602006-01-20 10:55:05 +00002122 **
drh71b890a2007-10-03 15:30:52 +00002123 ** Then the internal cache might have been left in an inconsistent
2124 ** state. We need to rollback the statement transaction, if there is
2125 ** one, or the complete transaction if there is no statement transaction.
danielk197707cb5602006-01-20 10:55:05 +00002126 */
drh9a324642003-09-06 20:12:01 +00002127
drh17435752007-08-16 04:30:38 +00002128 if( p->db->mallocFailed ){
danielk1977261919c2005-12-06 12:52:59 +00002129 p->rc = SQLITE_NOMEM;
2130 }
drh6e856bc2011-12-09 18:06:44 +00002131 if( p->aOnceFlag ) memset(p->aOnceFlag, 0, p->nOnceFlag);
drh5f82e3c2009-07-06 00:44:08 +00002132 closeAllCursors(p);
drh92f02c32004-09-02 14:57:08 +00002133 if( p->magic!=VDBE_MAGIC_RUN ){
drh92f02c32004-09-02 14:57:08 +00002134 return SQLITE_OK;
drh9a324642003-09-06 20:12:01 +00002135 }
danielk19771d850a72004-05-31 08:26:49 +00002136 checkActiveVdbeCnt(db);
danielk1977261919c2005-12-06 12:52:59 +00002137
danielk197707cb5602006-01-20 10:55:05 +00002138 /* No commit or rollback needed if the program never started */
2139 if( p->pc>=0 ){
drhaac2f552006-09-23 21:44:23 +00002140 int mrc; /* Primary error code from p->rc */
danielk1977bd434552009-03-18 10:33:00 +00002141 int eStatementOp = 0;
2142 int isSpecialError; /* Set to true if a 'special' error */
drhff0587c2007-08-29 17:43:19 +00002143
2144 /* Lock all btrees used by the statement */
drhbdaec522011-04-04 00:14:43 +00002145 sqlite3VdbeEnter(p);
drhff0587c2007-08-29 17:43:19 +00002146
drh71b890a2007-10-03 15:30:52 +00002147 /* Check for one of the special errors */
drhaac2f552006-09-23 21:44:23 +00002148 mrc = p->rc & 0xff;
drhfa3be902009-07-07 02:44:07 +00002149 assert( p->rc!=SQLITE_IOERR_BLOCKED ); /* This error no longer exists */
drh71b890a2007-10-03 15:30:52 +00002150 isSpecialError = mrc==SQLITE_NOMEM || mrc==SQLITE_IOERR
drh77658e22007-12-04 16:54:52 +00002151 || mrc==SQLITE_INTERRUPT || mrc==SQLITE_FULL;
danielk197707cb5602006-01-20 10:55:05 +00002152 if( isSpecialError ){
dan5653e4d2010-08-12 11:25:47 +00002153 /* If the query was read-only and the error code is SQLITE_INTERRUPT,
2154 ** no rollback is necessary. Otherwise, at least a savepoint
2155 ** transaction must be rolled back to restore the database to a
2156 ** consistent state.
2157 **
2158 ** Even if the statement is read-only, it is important to perform
2159 ** a statement or transaction rollback operation. If the error
2160 ** occured while writing to the journal, sub-journal or database
2161 ** file as part of an effort to free up cache space (see function
2162 ** pagerStress() in pager.c), the rollback is required to restore
2163 ** the pager to a consistent state.
danielk197707cb5602006-01-20 10:55:05 +00002164 */
drhad4a4b82008-11-05 16:37:34 +00002165 if( !p->readOnly || mrc!=SQLITE_INTERRUPT ){
drhfa3be902009-07-07 02:44:07 +00002166 if( (mrc==SQLITE_NOMEM || mrc==SQLITE_FULL) && p->usesStmtJournal ){
danielk1977bd434552009-03-18 10:33:00 +00002167 eStatementOp = SAVEPOINT_ROLLBACK;
danielk197707cb5602006-01-20 10:55:05 +00002168 }else{
2169 /* We are forced to roll back the active transaction. Before doing
2170 ** so, abort any other statements this handle currently has active.
2171 */
drh21021a52012-02-13 17:01:51 +00002172 sqlite3RollbackAll(db, SQLITE_ABORT_ROLLBACK);
danielk1977fc158bf2009-01-07 08:12:16 +00002173 sqlite3CloseSavepoints(db);
danielk197707cb5602006-01-20 10:55:05 +00002174 db->autoCommit = 1;
2175 }
danielk1977261919c2005-12-06 12:52:59 +00002176 }
2177 }
dan32b09f22009-09-23 17:29:59 +00002178
2179 /* Check for immediate foreign key violations. */
2180 if( p->rc==SQLITE_OK ){
2181 sqlite3VdbeCheckFk(p, 0);
2182 }
danielk197707cb5602006-01-20 10:55:05 +00002183
danielk1977bd434552009-03-18 10:33:00 +00002184 /* If the auto-commit flag is set and this is the only active writer
2185 ** VM, then we do either a commit or rollback of the current transaction.
danielk197707cb5602006-01-20 10:55:05 +00002186 **
2187 ** Note: This block also runs if one of the special errors handled
drhad4a4b82008-11-05 16:37:34 +00002188 ** above has occurred.
danielk197707cb5602006-01-20 10:55:05 +00002189 */
danielk1977093e0f62008-11-13 18:00:14 +00002190 if( !sqlite3VtabInSync(db)
2191 && db->autoCommit
2192 && db->writeVdbeCnt==(p->readOnly==0)
2193 ){
danielk197707cb5602006-01-20 10:55:05 +00002194 if( p->rc==SQLITE_OK || (p->errorAction==OE_Fail && !isSpecialError) ){
dan19611b12011-01-24 16:00:58 +00002195 rc = sqlite3VdbeCheckFk(p, 1);
2196 if( rc!=SQLITE_OK ){
drhe9ce5852011-02-11 22:54:28 +00002197 if( NEVER(p->readOnly) ){
drhbdaec522011-04-04 00:14:43 +00002198 sqlite3VdbeLeave(p);
dan19611b12011-01-24 16:00:58 +00002199 return SQLITE_ERROR;
2200 }
2201 rc = SQLITE_CONSTRAINT;
2202 }else{
2203 /* The auto-commit flag is true, the vdbe program was successful
2204 ** or hit an 'OR FAIL' constraint and there are no deferred foreign
2205 ** key constraints to hold up the transaction. This means a commit
2206 ** is required. */
2207 rc = vdbeCommit(db, p);
dan1da40a32009-09-19 17:00:31 +00002208 }
dan19611b12011-01-24 16:00:58 +00002209 if( rc==SQLITE_BUSY && p->readOnly ){
drhbdaec522011-04-04 00:14:43 +00002210 sqlite3VdbeLeave(p);
danielk197707cb5602006-01-20 10:55:05 +00002211 return SQLITE_BUSY;
2212 }else if( rc!=SQLITE_OK ){
2213 p->rc = rc;
drh0f198a72012-02-13 16:43:16 +00002214 sqlite3RollbackAll(db, SQLITE_OK);
danielk197707cb5602006-01-20 10:55:05 +00002215 }else{
dan1da40a32009-09-19 17:00:31 +00002216 db->nDeferredCons = 0;
danielk197707cb5602006-01-20 10:55:05 +00002217 sqlite3CommitInternalChanges(db);
2218 }
2219 }else{
drh0f198a72012-02-13 16:43:16 +00002220 sqlite3RollbackAll(db, SQLITE_OK);
danielk197707cb5602006-01-20 10:55:05 +00002221 }
danielk1977bd434552009-03-18 10:33:00 +00002222 db->nStatement = 0;
2223 }else if( eStatementOp==0 ){
danielk197707cb5602006-01-20 10:55:05 +00002224 if( p->rc==SQLITE_OK || p->errorAction==OE_Fail ){
danielk1977bd434552009-03-18 10:33:00 +00002225 eStatementOp = SAVEPOINT_RELEASE;
danielk197707cb5602006-01-20 10:55:05 +00002226 }else if( p->errorAction==OE_Abort ){
danielk1977bd434552009-03-18 10:33:00 +00002227 eStatementOp = SAVEPOINT_ROLLBACK;
danielk197707cb5602006-01-20 10:55:05 +00002228 }else{
drh21021a52012-02-13 17:01:51 +00002229 sqlite3RollbackAll(db, SQLITE_ABORT_ROLLBACK);
danielk1977fc158bf2009-01-07 08:12:16 +00002230 sqlite3CloseSavepoints(db);
danielk197707cb5602006-01-20 10:55:05 +00002231 db->autoCommit = 1;
2232 }
danielk19771d850a72004-05-31 08:26:49 +00002233 }
danielk197707cb5602006-01-20 10:55:05 +00002234
danielk1977bd434552009-03-18 10:33:00 +00002235 /* If eStatementOp is non-zero, then a statement transaction needs to
2236 ** be committed or rolled back. Call sqlite3VdbeCloseStatement() to
2237 ** do so. If this operation returns an error, and the current statement
drh35173242010-03-08 21:40:13 +00002238 ** error code is SQLITE_OK or SQLITE_CONSTRAINT, then promote the
2239 ** current statement error code.
danielk197707cb5602006-01-20 10:55:05 +00002240 */
danielk1977bd434552009-03-18 10:33:00 +00002241 if( eStatementOp ){
2242 rc = sqlite3VdbeCloseStatement(p, eStatementOp);
dan40ad9d22010-06-03 09:17:38 +00002243 if( rc ){
drh346506f2011-05-25 01:16:42 +00002244 if( p->rc==SQLITE_OK || p->rc==SQLITE_CONSTRAINT ){
dan40ad9d22010-06-03 09:17:38 +00002245 p->rc = rc;
2246 sqlite3DbFree(db, p->zErrMsg);
2247 p->zErrMsg = 0;
2248 }
drh21021a52012-02-13 17:01:51 +00002249 sqlite3RollbackAll(db, SQLITE_ABORT_ROLLBACK);
dan40ad9d22010-06-03 09:17:38 +00002250 sqlite3CloseSavepoints(db);
2251 db->autoCommit = 1;
danielk197707cb5602006-01-20 10:55:05 +00002252 }
danielk197777d83ba2004-05-31 10:08:14 +00002253 }
danielk197707cb5602006-01-20 10:55:05 +00002254
danielk1977bd434552009-03-18 10:33:00 +00002255 /* If this was an INSERT, UPDATE or DELETE and no statement transaction
2256 ** has been rolled back, update the database connection change-counter.
danielk197707cb5602006-01-20 10:55:05 +00002257 */
drh6be240e2009-07-14 02:33:02 +00002258 if( p->changeCntOn ){
danielk1977bd434552009-03-18 10:33:00 +00002259 if( eStatementOp!=SAVEPOINT_ROLLBACK ){
danielk197707cb5602006-01-20 10:55:05 +00002260 sqlite3VdbeSetChanges(db, p->nChange);
2261 }else{
2262 sqlite3VdbeSetChanges(db, 0);
2263 }
2264 p->nChange = 0;
danielk1977b28af712004-06-21 06:50:26 +00002265 }
drhff0587c2007-08-29 17:43:19 +00002266
2267 /* Release the locks */
drhbdaec522011-04-04 00:14:43 +00002268 sqlite3VdbeLeave(p);
drh9a324642003-09-06 20:12:01 +00002269 }
danielk19771d850a72004-05-31 08:26:49 +00002270
danielk197765fd59f2006-06-24 11:51:33 +00002271 /* We have successfully halted and closed the VM. Record this fact. */
2272 if( p->pc>=0 ){
danielk19771d850a72004-05-31 08:26:49 +00002273 db->activeVdbeCnt--;
drhad4a4b82008-11-05 16:37:34 +00002274 if( !p->readOnly ){
2275 db->writeVdbeCnt--;
2276 }
2277 assert( db->activeVdbeCnt>=db->writeVdbeCnt );
drh9a324642003-09-06 20:12:01 +00002278 }
drh92f02c32004-09-02 14:57:08 +00002279 p->magic = VDBE_MAGIC_HALT;
2280 checkActiveVdbeCnt(db);
drhff0587c2007-08-29 17:43:19 +00002281 if( p->db->mallocFailed ){
2282 p->rc = SQLITE_NOMEM;
2283 }
danielk19771d850a72004-05-31 08:26:49 +00002284
danielk1977404ca072009-03-16 13:19:36 +00002285 /* If the auto-commit flag is set to true, then any locks that were held
2286 ** by connection db have now been released. Call sqlite3ConnectionUnlocked()
2287 ** to invoke any required unlock-notify callbacks.
2288 */
2289 if( db->autoCommit ){
2290 sqlite3ConnectionUnlocked(db);
2291 }
2292
danielk1977bd434552009-03-18 10:33:00 +00002293 assert( db->activeVdbeCnt>0 || db->autoCommit==0 || db->nStatement==0 );
dan19611b12011-01-24 16:00:58 +00002294 return (p->rc==SQLITE_BUSY ? SQLITE_BUSY : SQLITE_OK);
drh92f02c32004-09-02 14:57:08 +00002295}
drh4cf7c7f2007-08-28 23:28:07 +00002296
drh92f02c32004-09-02 14:57:08 +00002297
2298/*
drh3c23a882007-01-09 14:01:13 +00002299** Each VDBE holds the result of the most recent sqlite3_step() call
2300** in p->rc. This routine sets that result back to SQLITE_OK.
2301*/
2302void sqlite3VdbeResetStepResult(Vdbe *p){
2303 p->rc = SQLITE_OK;
2304}
2305
2306/*
dan029ead62011-10-27 15:19:58 +00002307** Copy the error code and error message belonging to the VDBE passed
2308** as the first argument to its database handle (so that they will be
2309** returned by calls to sqlite3_errcode() and sqlite3_errmsg()).
2310**
2311** This function does not clear the VDBE error code or message, just
2312** copies them to the database handle.
2313*/
2314int sqlite3VdbeTransferError(Vdbe *p){
2315 sqlite3 *db = p->db;
2316 int rc = p->rc;
2317 if( p->zErrMsg ){
drh81bdd6d2011-10-29 01:33:24 +00002318 u8 mallocFailed = db->mallocFailed;
dan029ead62011-10-27 15:19:58 +00002319 sqlite3BeginBenignMalloc();
2320 sqlite3ValueSetStr(db->pErr, -1, p->zErrMsg, SQLITE_UTF8, SQLITE_TRANSIENT);
2321 sqlite3EndBenignMalloc();
drh81bdd6d2011-10-29 01:33:24 +00002322 db->mallocFailed = mallocFailed;
dan029ead62011-10-27 15:19:58 +00002323 db->errCode = rc;
2324 }else{
2325 sqlite3Error(db, rc, 0);
2326 }
2327 return rc;
2328}
2329
danac455932012-11-26 19:50:41 +00002330#ifdef SQLITE_ENABLE_SQLLOG
2331/*
2332** If an SQLITE_CONFIG_SQLLOG hook is registered and the VM has been run,
2333** invoke it.
2334*/
2335static void vdbeInvokeSqllog(Vdbe *v){
2336 if( sqlite3GlobalConfig.xSqllog && v->rc==SQLITE_OK && v->zSql && v->pc>=0 ){
2337 char *zExpanded = sqlite3VdbeExpandSql(v, v->zSql);
2338 assert( v->db->init.busy==0 );
2339 if( zExpanded ){
2340 sqlite3GlobalConfig.xSqllog(
2341 sqlite3GlobalConfig.pSqllogArg, v->db, zExpanded, 1
2342 );
2343 sqlite3DbFree(v->db, zExpanded);
2344 }
2345 }
2346}
2347#else
2348# define vdbeInvokeSqllog(x)
2349#endif
2350
dan029ead62011-10-27 15:19:58 +00002351/*
drh92f02c32004-09-02 14:57:08 +00002352** Clean up a VDBE after execution but do not delete the VDBE just yet.
2353** Write any error messages into *pzErrMsg. Return the result code.
2354**
2355** After this routine is run, the VDBE should be ready to be executed
2356** again.
2357**
2358** To look at it another way, this routine resets the state of the
2359** virtual machine from VDBE_MAGIC_RUN or VDBE_MAGIC_HALT back to
2360** VDBE_MAGIC_INIT.
2361*/
drhc890fec2008-08-01 20:10:08 +00002362int sqlite3VdbeReset(Vdbe *p){
drh4ac285a2006-09-15 07:28:50 +00002363 sqlite3 *db;
drh4ac285a2006-09-15 07:28:50 +00002364 db = p->db;
drh92f02c32004-09-02 14:57:08 +00002365
2366 /* If the VM did not run to completion or if it encountered an
2367 ** error, then it might not have been halted properly. So halt
2368 ** it now.
2369 */
2370 sqlite3VdbeHalt(p);
2371
drhfb7e7652005-01-24 00:28:42 +00002372 /* If the VDBE has be run even partially, then transfer the error code
2373 ** and error message from the VDBE into the main database structure. But
2374 ** if the VDBE has just been set to run but has not actually executed any
2375 ** instructions yet, leave the main database error information unchanged.
drh92f02c32004-09-02 14:57:08 +00002376 */
drhfb7e7652005-01-24 00:28:42 +00002377 if( p->pc>=0 ){
danac455932012-11-26 19:50:41 +00002378 vdbeInvokeSqllog(p);
dan029ead62011-10-27 15:19:58 +00002379 sqlite3VdbeTransferError(p);
2380 sqlite3DbFree(db, p->zErrMsg);
2381 p->zErrMsg = 0;
drh4611d922010-02-25 14:47:01 +00002382 if( p->runOnlyOnce ) p->expired = 1;
danielk1977a21c6b62005-01-24 10:25:59 +00002383 }else if( p->rc && p->expired ){
2384 /* The expired flag was set on the VDBE before the first call
2385 ** to sqlite3_step(). For consistency (since sqlite3_step() was
2386 ** called), set the database error in this case as well.
2387 */
drh4ac285a2006-09-15 07:28:50 +00002388 sqlite3Error(db, p->rc, 0);
drh633e6d52008-07-28 19:34:53 +00002389 sqlite3ValueSetStr(db->pErr, -1, p->zErrMsg, SQLITE_UTF8, SQLITE_TRANSIENT);
2390 sqlite3DbFree(db, p->zErrMsg);
danielk19778e556522007-11-13 10:30:24 +00002391 p->zErrMsg = 0;
drh92f02c32004-09-02 14:57:08 +00002392 }
2393
2394 /* Reclaim all memory used by the VDBE
2395 */
drhc890fec2008-08-01 20:10:08 +00002396 Cleanup(p);
drh92f02c32004-09-02 14:57:08 +00002397
2398 /* Save profiling information from this VDBE run.
2399 */
drh9a324642003-09-06 20:12:01 +00002400#ifdef VDBE_PROFILE
2401 {
2402 FILE *out = fopen("vdbe_profile.out", "a");
2403 if( out ){
2404 int i;
2405 fprintf(out, "---- ");
2406 for(i=0; i<p->nOp; i++){
2407 fprintf(out, "%02x", p->aOp[i].opcode);
2408 }
2409 fprintf(out, "\n");
2410 for(i=0; i<p->nOp; i++){
2411 fprintf(out, "%6d %10lld %8lld ",
2412 p->aOp[i].cnt,
2413 p->aOp[i].cycles,
2414 p->aOp[i].cnt>0 ? p->aOp[i].cycles/p->aOp[i].cnt : 0
2415 );
danielk19774adee202004-05-08 08:23:19 +00002416 sqlite3VdbePrintOp(out, i, &p->aOp[i]);
drh9a324642003-09-06 20:12:01 +00002417 }
2418 fclose(out);
2419 }
2420 }
2421#endif
2422 p->magic = VDBE_MAGIC_INIT;
drh4ac285a2006-09-15 07:28:50 +00002423 return p->rc & db->errMask;
drh9a324642003-09-06 20:12:01 +00002424}
drh92f02c32004-09-02 14:57:08 +00002425
drh9a324642003-09-06 20:12:01 +00002426/*
2427** Clean up and delete a VDBE after execution. Return an integer which is
2428** the result code. Write any error message text into *pzErrMsg.
2429*/
danielk19779e6db7d2004-06-21 08:18:51 +00002430int sqlite3VdbeFinalize(Vdbe *p){
danielk1977b5548a82004-06-26 13:51:33 +00002431 int rc = SQLITE_OK;
danielk1977b5548a82004-06-26 13:51:33 +00002432 if( p->magic==VDBE_MAGIC_RUN || p->magic==VDBE_MAGIC_HALT ){
drhc890fec2008-08-01 20:10:08 +00002433 rc = sqlite3VdbeReset(p);
drh4ac285a2006-09-15 07:28:50 +00002434 assert( (rc & p->db->errMask)==rc );
drh9a324642003-09-06 20:12:01 +00002435 }
danielk19774adee202004-05-08 08:23:19 +00002436 sqlite3VdbeDelete(p);
drh9a324642003-09-06 20:12:01 +00002437 return rc;
2438}
2439
2440/*
drhf92c7ff2004-06-19 15:40:23 +00002441** Call the destructor for each auxdata entry in pVdbeFunc for which
danielk1977e159fdf2004-06-21 10:45:06 +00002442** the corresponding bit in mask is clear. Auxdata entries beyond 31
drhf92c7ff2004-06-19 15:40:23 +00002443** are always destroyed. To destroy all auxdata entries, call this
danielk1977e159fdf2004-06-21 10:45:06 +00002444** routine with mask==0.
drhf92c7ff2004-06-19 15:40:23 +00002445*/
2446void sqlite3VdbeDeleteAuxData(VdbeFunc *pVdbeFunc, int mask){
2447 int i;
2448 for(i=0; i<pVdbeFunc->nAux; i++){
2449 struct AuxData *pAux = &pVdbeFunc->apAux[i];
drh3500ed62009-05-05 15:46:43 +00002450 if( (i>31 || !(mask&(((u32)1)<<i))) && pAux->pAux ){
drhf92c7ff2004-06-19 15:40:23 +00002451 if( pAux->xDelete ){
2452 pAux->xDelete(pAux->pAux);
2453 }
2454 pAux->pAux = 0;
2455 }
2456 }
2457}
2458
2459/*
drhcb103b92012-10-26 00:11:23 +00002460** Free all memory associated with the Vdbe passed as the second argument,
2461** except for object itself, which is preserved.
2462**
dand46def72010-07-24 11:28:28 +00002463** The difference between this function and sqlite3VdbeDelete() is that
2464** VdbeDelete() also unlinks the Vdbe from the list of VMs associated with
drhcb103b92012-10-26 00:11:23 +00002465** the database connection and frees the object itself.
dand46def72010-07-24 11:28:28 +00002466*/
drhcb103b92012-10-26 00:11:23 +00002467void sqlite3VdbeClearObject(sqlite3 *db, Vdbe *p){
dand19c9332010-07-26 12:05:17 +00002468 SubProgram *pSub, *pNext;
drh124c0b42011-06-01 18:15:55 +00002469 int i;
dand46def72010-07-24 11:28:28 +00002470 assert( p->db==0 || p->db==db );
2471 releaseMemArray(p->aVar, p->nVar);
2472 releaseMemArray(p->aColName, p->nResColumn*COLNAME_N);
dand19c9332010-07-26 12:05:17 +00002473 for(pSub=p->pProgram; pSub; pSub=pNext){
2474 pNext = pSub->pNext;
2475 vdbeFreeOpArray(db, pSub->aOp, pSub->nOp);
2476 sqlite3DbFree(db, pSub);
2477 }
drh124c0b42011-06-01 18:15:55 +00002478 for(i=p->nzVar-1; i>=0; i--) sqlite3DbFree(db, p->azVar[i]);
dand46def72010-07-24 11:28:28 +00002479 vdbeFreeOpArray(db, p->aOp, p->nOp);
2480 sqlite3DbFree(db, p->aLabel);
2481 sqlite3DbFree(db, p->aColName);
2482 sqlite3DbFree(db, p->zSql);
2483 sqlite3DbFree(db, p->pFree);
drh678a9aa2011-12-10 15:55:01 +00002484#if defined(SQLITE_ENABLE_TREE_EXPLAIN)
2485 sqlite3DbFree(db, p->zExplain);
2486 sqlite3DbFree(db, p->pExplain);
drh7e02e5e2011-12-06 19:44:51 +00002487#endif
dand46def72010-07-24 11:28:28 +00002488}
2489
2490/*
drh9a324642003-09-06 20:12:01 +00002491** Delete an entire VDBE.
2492*/
danielk19774adee202004-05-08 08:23:19 +00002493void sqlite3VdbeDelete(Vdbe *p){
drh633e6d52008-07-28 19:34:53 +00002494 sqlite3 *db;
2495
drhfa3be902009-07-07 02:44:07 +00002496 if( NEVER(p==0) ) return;
drh633e6d52008-07-28 19:34:53 +00002497 db = p->db;
drh4245c402012-06-02 14:32:21 +00002498 assert( sqlite3_mutex_held(db->mutex) );
drhcb103b92012-10-26 00:11:23 +00002499 sqlite3VdbeClearObject(db, p);
drh9a324642003-09-06 20:12:01 +00002500 if( p->pPrev ){
2501 p->pPrev->pNext = p->pNext;
2502 }else{
drh633e6d52008-07-28 19:34:53 +00002503 assert( db->pVdbe==p );
2504 db->pVdbe = p->pNext;
drh9a324642003-09-06 20:12:01 +00002505 }
2506 if( p->pNext ){
2507 p->pNext->pPrev = p->pPrev;
2508 }
drh9a324642003-09-06 20:12:01 +00002509 p->magic = VDBE_MAGIC_DEAD;
drh87f5c5f2010-01-20 01:20:56 +00002510 p->db = 0;
drhcb103b92012-10-26 00:11:23 +00002511 sqlite3DbFree(db, p);
drh9a324642003-09-06 20:12:01 +00002512}
drha11846b2004-01-07 18:52:56 +00002513
2514/*
drh9a65f2c2009-06-22 19:05:40 +00002515** Make sure the cursor p is ready to read or write the row to which it
2516** was last positioned. Return an error code if an OOM fault or I/O error
2517** prevents us from positioning the cursor to its correct position.
2518**
drha11846b2004-01-07 18:52:56 +00002519** If a MoveTo operation is pending on the given cursor, then do that
drh9a65f2c2009-06-22 19:05:40 +00002520** MoveTo now. If no move is pending, check to see if the row has been
2521** deleted out from under the cursor and if it has, mark the row as
2522** a NULL row.
2523**
2524** If the cursor is already pointing to the correct row and that row has
2525** not been deleted out from under the cursor, then this routine is a no-op.
drha11846b2004-01-07 18:52:56 +00002526*/
drhdfe88ec2008-11-03 20:55:06 +00002527int sqlite3VdbeCursorMoveto(VdbeCursor *p){
drha11846b2004-01-07 18:52:56 +00002528 if( p->deferredMoveto ){
drh536065a2005-01-26 21:55:31 +00002529 int res, rc;
adamd4fc93082006-09-14 16:57:19 +00002530#ifdef SQLITE_TEST
danielk1977132872b2004-05-10 10:37:18 +00002531 extern int sqlite3_search_count;
adamd4fc93082006-09-14 16:57:19 +00002532#endif
drhf0863fe2005-06-12 21:35:51 +00002533 assert( p->isTable );
drhe63d9992008-08-13 19:11:48 +00002534 rc = sqlite3BtreeMovetoUnpacked(p->pCursor, 0, p->movetoTarget, 0, &res);
drh536065a2005-01-26 21:55:31 +00002535 if( rc ) return rc;
drhaa736092009-06-22 00:55:30 +00002536 p->lastRowid = p->movetoTarget;
drhbe0b2372010-07-30 18:40:55 +00002537 if( res!=0 ) return SQLITE_CORRUPT_BKPT;
2538 p->rowidIsValid = 1;
drh10cfdd52006-08-08 15:42:59 +00002539#ifdef SQLITE_TEST
danielk1977132872b2004-05-10 10:37:18 +00002540 sqlite3_search_count++;
drh10cfdd52006-08-08 15:42:59 +00002541#endif
drha11846b2004-01-07 18:52:56 +00002542 p->deferredMoveto = 0;
drh76873ab2006-01-07 18:48:26 +00002543 p->cacheStatus = CACHE_STALE;
drh6be240e2009-07-14 02:33:02 +00002544 }else if( ALWAYS(p->pCursor) ){
drha3460582008-07-11 21:02:53 +00002545 int hasMoved;
2546 int rc = sqlite3BtreeCursorHasMoved(p->pCursor, &hasMoved);
2547 if( rc ) return rc;
2548 if( hasMoved ){
2549 p->cacheStatus = CACHE_STALE;
2550 p->nullRow = 1;
2551 }
drha11846b2004-01-07 18:52:56 +00002552 }
2553 return SQLITE_OK;
2554}
danielk19774adee202004-05-08 08:23:19 +00002555
drhab9f7f12004-05-08 10:56:11 +00002556/*
danielk1977cfcdaef2004-05-12 07:33:33 +00002557** The following functions:
danielk197790e4d952004-05-10 10:05:53 +00002558**
danielk1977cfcdaef2004-05-12 07:33:33 +00002559** sqlite3VdbeSerialType()
2560** sqlite3VdbeSerialTypeLen()
danielk197790e4d952004-05-10 10:05:53 +00002561** sqlite3VdbeSerialLen()
shane92003092008-07-31 01:43:13 +00002562** sqlite3VdbeSerialPut()
2563** sqlite3VdbeSerialGet()
danielk197790e4d952004-05-10 10:05:53 +00002564**
2565** encapsulate the code that serializes values for storage in SQLite
danielk1977cfcdaef2004-05-12 07:33:33 +00002566** data and index records. Each serialized value consists of a
2567** 'serial-type' and a blob of data. The serial type is an 8-byte unsigned
2568** integer, stored as a varint.
danielk197790e4d952004-05-10 10:05:53 +00002569**
danielk1977cfcdaef2004-05-12 07:33:33 +00002570** In an SQLite index record, the serial type is stored directly before
2571** the blob of data that it corresponds to. In a table record, all serial
2572** types are stored at the start of the record, and the blobs of data at
2573** the end. Hence these functions allow the caller to handle the
2574** serial-type and data blob seperately.
2575**
2576** The following table describes the various storage classes for data:
2577**
2578** serial type bytes of data type
danielk197790e4d952004-05-10 10:05:53 +00002579** -------------- --------------- ---------------
drha19b7752004-05-30 21:14:58 +00002580** 0 0 NULL
danielk197790e4d952004-05-10 10:05:53 +00002581** 1 1 signed integer
2582** 2 2 signed integer
drha19b7752004-05-30 21:14:58 +00002583** 3 3 signed integer
2584** 4 4 signed integer
2585** 5 6 signed integer
2586** 6 8 signed integer
2587** 7 8 IEEE float
drhd946db02005-12-29 19:23:06 +00002588** 8 0 Integer constant 0
2589** 9 0 Integer constant 1
2590** 10,11 reserved for expansion
danielk197790e4d952004-05-10 10:05:53 +00002591** N>=12 and even (N-12)/2 BLOB
2592** N>=13 and odd (N-13)/2 text
2593**
drh35a59652006-01-02 18:24:40 +00002594** The 8 and 9 types were added in 3.3.0, file format 4. Prior versions
2595** of SQLite will not understand those serial types.
danielk197790e4d952004-05-10 10:05:53 +00002596*/
2597
2598/*
danielk1977cfcdaef2004-05-12 07:33:33 +00002599** Return the serial-type for the value stored in pMem.
danielk1977192ac1d2004-05-10 07:17:30 +00002600*/
drhd946db02005-12-29 19:23:06 +00002601u32 sqlite3VdbeSerialType(Mem *pMem, int file_format){
danielk1977cfcdaef2004-05-12 07:33:33 +00002602 int flags = pMem->flags;
drhfdf972a2007-05-02 13:30:27 +00002603 int n;
danielk1977cfcdaef2004-05-12 07:33:33 +00002604
2605 if( flags&MEM_Null ){
drha19b7752004-05-30 21:14:58 +00002606 return 0;
danielk197790e4d952004-05-10 10:05:53 +00002607 }
danielk1977cfcdaef2004-05-12 07:33:33 +00002608 if( flags&MEM_Int ){
drhfe2093d2005-01-20 22:48:47 +00002609 /* Figure out whether to use 1, 2, 4, 6 or 8 bytes. */
drh5284a052008-05-08 15:18:10 +00002610# define MAX_6BYTE ((((i64)0x00008000)<<32)-1)
drh3c024d62007-03-30 11:23:45 +00002611 i64 i = pMem->u.i;
drhd946db02005-12-29 19:23:06 +00002612 u64 u;
drhcfd654b2011-03-05 13:54:15 +00002613 if( i<0 ){
2614 if( i<(-MAX_6BYTE) ) return 6;
2615 /* Previous test prevents: u = -(-9223372036854775808) */
2616 u = -i;
2617 }else{
2618 u = i;
2619 }
drh56690b32012-09-17 15:36:31 +00002620 if( u<=127 ){
2621 return ((i&1)==i && file_format>=4) ? 8+(u32)u : 1;
2622 }
drh5742b632005-01-26 17:47:02 +00002623 if( u<=32767 ) return 2;
2624 if( u<=8388607 ) return 3;
2625 if( u<=2147483647 ) return 4;
2626 if( u<=MAX_6BYTE ) return 5;
drha19b7752004-05-30 21:14:58 +00002627 return 6;
danielk197790e4d952004-05-10 10:05:53 +00002628 }
danielk1977cfcdaef2004-05-12 07:33:33 +00002629 if( flags&MEM_Real ){
drha19b7752004-05-30 21:14:58 +00002630 return 7;
danielk197790e4d952004-05-10 10:05:53 +00002631 }
danielk1977e4359752008-11-03 09:39:45 +00002632 assert( pMem->db->mallocFailed || flags&(MEM_Str|MEM_Blob) );
drhfdf972a2007-05-02 13:30:27 +00002633 n = pMem->n;
2634 if( flags & MEM_Zero ){
drh8df32842008-12-09 02:51:23 +00002635 n += pMem->u.nZero;
danielk197790e4d952004-05-10 10:05:53 +00002636 }
drhfdf972a2007-05-02 13:30:27 +00002637 assert( n>=0 );
2638 return ((n*2) + 12 + ((flags&MEM_Str)!=0));
danielk1977192ac1d2004-05-10 07:17:30 +00002639}
2640
2641/*
danielk1977cfcdaef2004-05-12 07:33:33 +00002642** Return the length of the data corresponding to the supplied serial-type.
danielk1977192ac1d2004-05-10 07:17:30 +00002643*/
drh35cd6432009-06-05 14:17:21 +00002644u32 sqlite3VdbeSerialTypeLen(u32 serial_type){
drha19b7752004-05-30 21:14:58 +00002645 if( serial_type>=12 ){
drh51846b52004-05-28 16:00:21 +00002646 return (serial_type-12)/2;
2647 }else{
drh57196282004-10-06 15:41:16 +00002648 static const u8 aSize[] = { 0, 1, 2, 3, 4, 6, 8, 8, 0, 0, 0, 0 };
drh51846b52004-05-28 16:00:21 +00002649 return aSize[serial_type];
2650 }
danielk1977192ac1d2004-05-10 07:17:30 +00002651}
2652
2653/*
drh110daac2007-05-04 11:59:31 +00002654** If we are on an architecture with mixed-endian floating
drh7a4f5022007-05-23 07:20:08 +00002655** points (ex: ARM7) then swap the lower 4 bytes with the
drh110daac2007-05-04 11:59:31 +00002656** upper 4 bytes. Return the result.
2657**
drh7a4f5022007-05-23 07:20:08 +00002658** For most architectures, this is a no-op.
2659**
2660** (later): It is reported to me that the mixed-endian problem
2661** on ARM7 is an issue with GCC, not with the ARM7 chip. It seems
2662** that early versions of GCC stored the two words of a 64-bit
2663** float in the wrong order. And that error has been propagated
2664** ever since. The blame is not necessarily with GCC, though.
2665** GCC might have just copying the problem from a prior compiler.
2666** I am also told that newer versions of GCC that follow a different
2667** ABI get the byte order right.
2668**
2669** Developers using SQLite on an ARM7 should compile and run their
2670** application using -DSQLITE_DEBUG=1 at least once. With DEBUG
2671** enabled, some asserts below will ensure that the byte order of
2672** floating point values is correct.
drh60d09a72007-08-30 15:05:08 +00002673**
2674** (2007-08-30) Frank van Vugt has studied this problem closely
2675** and has send his findings to the SQLite developers. Frank
2676** writes that some Linux kernels offer floating point hardware
2677** emulation that uses only 32-bit mantissas instead of a full
2678** 48-bits as required by the IEEE standard. (This is the
2679** CONFIG_FPE_FASTFPE option.) On such systems, floating point
2680** byte swapping becomes very complicated. To avoid problems,
2681** the necessary byte swapping is carried out using a 64-bit integer
2682** rather than a 64-bit float. Frank assures us that the code here
2683** works for him. We, the developers, have no way to independently
2684** verify this, but Frank seems to know what he is talking about
2685** so we trust him.
drh110daac2007-05-04 11:59:31 +00002686*/
2687#ifdef SQLITE_MIXED_ENDIAN_64BIT_FLOAT
drh60d09a72007-08-30 15:05:08 +00002688static u64 floatSwap(u64 in){
drh110daac2007-05-04 11:59:31 +00002689 union {
drh60d09a72007-08-30 15:05:08 +00002690 u64 r;
drh110daac2007-05-04 11:59:31 +00002691 u32 i[2];
2692 } u;
2693 u32 t;
2694
2695 u.r = in;
2696 t = u.i[0];
2697 u.i[0] = u.i[1];
2698 u.i[1] = t;
2699 return u.r;
2700}
2701# define swapMixedEndianFloat(X) X = floatSwap(X)
2702#else
2703# define swapMixedEndianFloat(X)
2704#endif
2705
2706/*
danielk1977cfcdaef2004-05-12 07:33:33 +00002707** Write the serialized data blob for the value stored in pMem into
2708** buf. It is assumed that the caller has allocated sufficient space.
2709** Return the number of bytes written.
drhfdf972a2007-05-02 13:30:27 +00002710**
2711** nBuf is the amount of space left in buf[]. nBuf must always be
2712** large enough to hold the entire field. Except, if the field is
2713** a blob with a zero-filled tail, then buf[] might be just the right
2714** size to hold everything except for the zero-filled tail. If buf[]
2715** is only big enough to hold the non-zero prefix, then only write that
2716** prefix into buf[]. But if buf[] is large enough to hold both the
2717** prefix and the tail then write the prefix and set the tail to all
2718** zeros.
2719**
2720** Return the number of bytes actually written into buf[]. The number
2721** of bytes in the zero-filled tail is included in the return value only
2722** if those bytes were zeroed in buf[].
danielk1977cfcdaef2004-05-12 07:33:33 +00002723*/
drh35cd6432009-06-05 14:17:21 +00002724u32 sqlite3VdbeSerialPut(u8 *buf, int nBuf, Mem *pMem, int file_format){
drhd946db02005-12-29 19:23:06 +00002725 u32 serial_type = sqlite3VdbeSerialType(pMem, file_format);
drh35cd6432009-06-05 14:17:21 +00002726 u32 len;
danielk1977183f9f72004-05-13 05:20:26 +00002727
drh1483e142004-05-21 21:12:42 +00002728 /* Integer and Real */
drhd946db02005-12-29 19:23:06 +00002729 if( serial_type<=7 && serial_type>0 ){
drh1483e142004-05-21 21:12:42 +00002730 u64 v;
drh35cd6432009-06-05 14:17:21 +00002731 u32 i;
drha19b7752004-05-30 21:14:58 +00002732 if( serial_type==7 ){
drh4f0c5872007-03-26 22:05:01 +00002733 assert( sizeof(v)==sizeof(pMem->r) );
2734 memcpy(&v, &pMem->r, sizeof(v));
drh60d09a72007-08-30 15:05:08 +00002735 swapMixedEndianFloat(v);
drh1483e142004-05-21 21:12:42 +00002736 }else{
drh3c024d62007-03-30 11:23:45 +00002737 v = pMem->u.i;
danielk1977cfcdaef2004-05-12 07:33:33 +00002738 }
drh1483e142004-05-21 21:12:42 +00002739 len = i = sqlite3VdbeSerialTypeLen(serial_type);
shane75ac1de2009-06-09 18:58:52 +00002740 assert( len<=(u32)nBuf );
drh1483e142004-05-21 21:12:42 +00002741 while( i-- ){
drh8df32842008-12-09 02:51:23 +00002742 buf[i] = (u8)(v&0xFF);
drh1483e142004-05-21 21:12:42 +00002743 v >>= 8;
2744 }
2745 return len;
danielk1977cfcdaef2004-05-12 07:33:33 +00002746 }
drhd946db02005-12-29 19:23:06 +00002747
danielk1977cfcdaef2004-05-12 07:33:33 +00002748 /* String or blob */
drhd946db02005-12-29 19:23:06 +00002749 if( serial_type>=12 ){
drh8df32842008-12-09 02:51:23 +00002750 assert( pMem->n + ((pMem->flags & MEM_Zero)?pMem->u.nZero:0)
shane75ac1de2009-06-09 18:58:52 +00002751 == (int)sqlite3VdbeSerialTypeLen(serial_type) );
drhfdf972a2007-05-02 13:30:27 +00002752 assert( pMem->n<=nBuf );
2753 len = pMem->n;
drhd946db02005-12-29 19:23:06 +00002754 memcpy(buf, pMem->z, len);
drhfdf972a2007-05-02 13:30:27 +00002755 if( pMem->flags & MEM_Zero ){
drh8df32842008-12-09 02:51:23 +00002756 len += pMem->u.nZero;
drh35cd6432009-06-05 14:17:21 +00002757 assert( nBuf>=0 );
2758 if( len > (u32)nBuf ){
2759 len = (u32)nBuf;
drhfdf972a2007-05-02 13:30:27 +00002760 }
2761 memset(&buf[pMem->n], 0, len-pMem->n);
2762 }
drhd946db02005-12-29 19:23:06 +00002763 return len;
2764 }
2765
2766 /* NULL or constants 0 or 1 */
2767 return 0;
danielk1977cfcdaef2004-05-12 07:33:33 +00002768}
2769
2770/*
2771** Deserialize the data blob pointed to by buf as serial type serial_type
2772** and store the result in pMem. Return the number of bytes read.
2773*/
drh35cd6432009-06-05 14:17:21 +00002774u32 sqlite3VdbeSerialGet(
danielk197793d46752004-05-23 13:30:58 +00002775 const unsigned char *buf, /* Buffer to deserialize from */
drh25aa1b42004-05-28 01:39:01 +00002776 u32 serial_type, /* Serial type to deserialize */
2777 Mem *pMem /* Memory cell to write value into */
danielk1977b1bc9532004-05-22 03:05:33 +00002778){
drh3c685822005-05-21 18:32:18 +00002779 switch( serial_type ){
drh3c685822005-05-21 18:32:18 +00002780 case 10: /* Reserved for future use */
2781 case 11: /* Reserved for future use */
2782 case 0: { /* NULL */
2783 pMem->flags = MEM_Null;
2784 break;
2785 }
2786 case 1: { /* 1-byte signed integer */
drh3c024d62007-03-30 11:23:45 +00002787 pMem->u.i = (signed char)buf[0];
drh1483e142004-05-21 21:12:42 +00002788 pMem->flags = MEM_Int;
drh3c685822005-05-21 18:32:18 +00002789 return 1;
drh1483e142004-05-21 21:12:42 +00002790 }
drh3c685822005-05-21 18:32:18 +00002791 case 2: { /* 2-byte signed integer */
drh3c024d62007-03-30 11:23:45 +00002792 pMem->u.i = (((signed char)buf[0])<<8) | buf[1];
drh3c685822005-05-21 18:32:18 +00002793 pMem->flags = MEM_Int;
2794 return 2;
2795 }
2796 case 3: { /* 3-byte signed integer */
drh3c024d62007-03-30 11:23:45 +00002797 pMem->u.i = (((signed char)buf[0])<<16) | (buf[1]<<8) | buf[2];
drh3c685822005-05-21 18:32:18 +00002798 pMem->flags = MEM_Int;
2799 return 3;
2800 }
2801 case 4: { /* 4-byte signed integer */
drh3c024d62007-03-30 11:23:45 +00002802 pMem->u.i = (buf[0]<<24) | (buf[1]<<16) | (buf[2]<<8) | buf[3];
drh3c685822005-05-21 18:32:18 +00002803 pMem->flags = MEM_Int;
2804 return 4;
2805 }
2806 case 5: { /* 6-byte signed integer */
2807 u64 x = (((signed char)buf[0])<<8) | buf[1];
2808 u32 y = (buf[2]<<24) | (buf[3]<<16) | (buf[4]<<8) | buf[5];
2809 x = (x<<32) | y;
drh3c024d62007-03-30 11:23:45 +00002810 pMem->u.i = *(i64*)&x;
drh3c685822005-05-21 18:32:18 +00002811 pMem->flags = MEM_Int;
2812 return 6;
2813 }
drh91124b32005-08-18 18:15:05 +00002814 case 6: /* 8-byte signed integer */
drh3c685822005-05-21 18:32:18 +00002815 case 7: { /* IEEE floating point */
drhd81bd4e2005-09-05 20:06:49 +00002816 u64 x;
2817 u32 y;
drh2a3e4a72006-01-23 21:44:53 +00002818#if !defined(NDEBUG) && !defined(SQLITE_OMIT_FLOATING_POINT)
drhde941c62005-08-28 01:34:21 +00002819 /* Verify that integers and floating point values use the same
drh110daac2007-05-04 11:59:31 +00002820 ** byte order. Or, that if SQLITE_MIXED_ENDIAN_64BIT_FLOAT is
2821 ** defined that 64-bit floating point values really are mixed
2822 ** endian.
drhbfd6b032005-08-28 01:38:44 +00002823 */
drhde941c62005-08-28 01:34:21 +00002824 static const u64 t1 = ((u64)0x3ff00000)<<32;
drh4f0c5872007-03-26 22:05:01 +00002825 static const double r1 = 1.0;
drh60d09a72007-08-30 15:05:08 +00002826 u64 t2 = t1;
2827 swapMixedEndianFloat(t2);
2828 assert( sizeof(r1)==sizeof(t2) && memcmp(&r1, &t2, sizeof(r1))==0 );
drhde941c62005-08-28 01:34:21 +00002829#endif
drhbfd6b032005-08-28 01:38:44 +00002830
drhd81bd4e2005-09-05 20:06:49 +00002831 x = (buf[0]<<24) | (buf[1]<<16) | (buf[2]<<8) | buf[3];
2832 y = (buf[4]<<24) | (buf[5]<<16) | (buf[6]<<8) | buf[7];
drh3c685822005-05-21 18:32:18 +00002833 x = (x<<32) | y;
2834 if( serial_type==6 ){
drh3c024d62007-03-30 11:23:45 +00002835 pMem->u.i = *(i64*)&x;
drh3c685822005-05-21 18:32:18 +00002836 pMem->flags = MEM_Int;
2837 }else{
drh4f0c5872007-03-26 22:05:01 +00002838 assert( sizeof(x)==8 && sizeof(pMem->r)==8 );
drh60d09a72007-08-30 15:05:08 +00002839 swapMixedEndianFloat(x);
drh4f0c5872007-03-26 22:05:01 +00002840 memcpy(&pMem->r, &x, sizeof(x));
drh2eaf93d2008-04-29 00:15:20 +00002841 pMem->flags = sqlite3IsNaN(pMem->r) ? MEM_Null : MEM_Real;
drh3c685822005-05-21 18:32:18 +00002842 }
2843 return 8;
2844 }
drhd946db02005-12-29 19:23:06 +00002845 case 8: /* Integer 0 */
2846 case 9: { /* Integer 1 */
drh3c024d62007-03-30 11:23:45 +00002847 pMem->u.i = serial_type-8;
drhd946db02005-12-29 19:23:06 +00002848 pMem->flags = MEM_Int;
2849 return 0;
2850 }
drh3c685822005-05-21 18:32:18 +00002851 default: {
drh35cd6432009-06-05 14:17:21 +00002852 u32 len = (serial_type-12)/2;
drh3c685822005-05-21 18:32:18 +00002853 pMem->z = (char *)buf;
2854 pMem->n = len;
2855 pMem->xDel = 0;
2856 if( serial_type&0x01 ){
2857 pMem->flags = MEM_Str | MEM_Ephem;
2858 }else{
2859 pMem->flags = MEM_Blob | MEM_Ephem;
2860 }
2861 return len;
drh696b32f2004-05-30 01:51:52 +00002862 }
danielk1977cfcdaef2004-05-12 07:33:33 +00002863 }
drh3c685822005-05-21 18:32:18 +00002864 return 0;
danielk1977192ac1d2004-05-10 07:17:30 +00002865}
2866
drh1e968a02008-03-25 00:22:21 +00002867/*
dan03e9cfc2011-09-05 14:20:27 +00002868** This routine is used to allocate sufficient space for an UnpackedRecord
2869** structure large enough to be used with sqlite3VdbeRecordUnpack() if
2870** the first argument is a pointer to KeyInfo structure pKeyInfo.
drh1e968a02008-03-25 00:22:21 +00002871**
dan03e9cfc2011-09-05 14:20:27 +00002872** The space is either allocated using sqlite3DbMallocRaw() or from within
2873** the unaligned buffer passed via the second and third arguments (presumably
2874** stack space). If the former, then *ppFree is set to a pointer that should
2875** be eventually freed by the caller using sqlite3DbFree(). Or, if the
2876** allocation comes from the pSpace/szSpace buffer, *ppFree is set to NULL
2877** before returning.
drh1e968a02008-03-25 00:22:21 +00002878**
dan03e9cfc2011-09-05 14:20:27 +00002879** If an OOM error occurs, NULL is returned.
2880*/
2881UnpackedRecord *sqlite3VdbeAllocUnpackedRecord(
2882 KeyInfo *pKeyInfo, /* Description of the record */
2883 char *pSpace, /* Unaligned space available */
2884 int szSpace, /* Size of pSpace[] in bytes */
2885 char **ppFree /* OUT: Caller should free this pointer */
drh1e968a02008-03-25 00:22:21 +00002886){
dan03e9cfc2011-09-05 14:20:27 +00002887 UnpackedRecord *p; /* Unpacked record to return */
2888 int nOff; /* Increment pSpace by nOff to align it */
2889 int nByte; /* Number of bytes required for *p */
2890
2891 /* We want to shift the pointer pSpace up such that it is 8-byte aligned.
shane80167bf2009-04-10 15:42:36 +00002892 ** Thus, we need to calculate a value, nOff, between 0 and 7, to shift
2893 ** it by. If pSpace is already 8-byte aligned, nOff should be zero.
2894 */
2895 nOff = (8 - (SQLITE_PTR_TO_INT(pSpace) & 7)) & 7;
drh8c5d1522009-04-10 00:56:28 +00002896 nByte = ROUND8(sizeof(UnpackedRecord)) + sizeof(Mem)*(pKeyInfo->nField+1);
dan42acb3e2011-09-05 20:16:38 +00002897 if( nByte>szSpace+nOff ){
dan03e9cfc2011-09-05 14:20:27 +00002898 p = (UnpackedRecord *)sqlite3DbMallocRaw(pKeyInfo->db, nByte);
2899 *ppFree = (char *)p;
dan42acb3e2011-09-05 20:16:38 +00002900 if( !p ) return 0;
drh1e968a02008-03-25 00:22:21 +00002901 }else{
dan42acb3e2011-09-05 20:16:38 +00002902 p = (UnpackedRecord*)&pSpace[nOff];
dan03e9cfc2011-09-05 14:20:27 +00002903 *ppFree = 0;
drh1e968a02008-03-25 00:22:21 +00002904 }
dan42acb3e2011-09-05 20:16:38 +00002905
2906 p->aMem = (Mem*)&((char*)p)[ROUND8(sizeof(UnpackedRecord))];
drhe1a022e2012-09-17 17:16:53 +00002907 assert( pKeyInfo->aSortOrder!=0 );
drh1e968a02008-03-25 00:22:21 +00002908 p->pKeyInfo = pKeyInfo;
2909 p->nField = pKeyInfo->nField + 1;
dan03e9cfc2011-09-05 14:20:27 +00002910 return p;
2911}
2912
2913/*
2914** Given the nKey-byte encoding of a record in pKey[], populate the
2915** UnpackedRecord structure indicated by the fourth argument with the
2916** contents of the decoded record.
2917*/
2918void sqlite3VdbeRecordUnpack(
2919 KeyInfo *pKeyInfo, /* Information about the record format */
2920 int nKey, /* Size of the binary record */
2921 const void *pKey, /* The binary record */
2922 UnpackedRecord *p /* Populate this structure before returning. */
2923){
2924 const unsigned char *aKey = (const unsigned char *)pKey;
2925 int d;
2926 u32 idx; /* Offset in aKey[] to read from */
2927 u16 u; /* Unsigned loop counter */
2928 u32 szHdr;
dan42acb3e2011-09-05 20:16:38 +00002929 Mem *pMem = p->aMem;
dan03e9cfc2011-09-05 14:20:27 +00002930
2931 p->flags = 0;
drh8c5d1522009-04-10 00:56:28 +00002932 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
shane3f8d5cf2008-04-24 19:15:09 +00002933 idx = getVarint32(aKey, szHdr);
drh1e968a02008-03-25 00:22:21 +00002934 d = szHdr;
shane0b8d2762008-07-22 05:18:00 +00002935 u = 0;
drh2fa34d32009-07-15 16:30:50 +00002936 while( idx<szHdr && u<p->nField && d<=nKey ){
drh1e968a02008-03-25 00:22:21 +00002937 u32 serial_type;
2938
danielk197700e13612008-11-17 19:18:54 +00002939 idx += getVarint32(&aKey[idx], serial_type);
drh1e968a02008-03-25 00:22:21 +00002940 pMem->enc = pKeyInfo->enc;
2941 pMem->db = pKeyInfo->db;
drhc3f1d5f2011-05-30 23:42:16 +00002942 /* pMem->flags = 0; // sqlite3VdbeSerialGet() will set this for us */
danielk19775f096132008-03-28 15:44:09 +00002943 pMem->zMalloc = 0;
drh1e968a02008-03-25 00:22:21 +00002944 d += sqlite3VdbeSerialGet(&aKey[d], serial_type, pMem);
drhe14006d2008-03-25 17:23:32 +00002945 pMem++;
shane0b8d2762008-07-22 05:18:00 +00002946 u++;
drh1e968a02008-03-25 00:22:21 +00002947 }
drh7d10d5a2008-08-20 16:35:10 +00002948 assert( u<=pKeyInfo->nField + 1 );
shane0b8d2762008-07-22 05:18:00 +00002949 p->nField = u;
drh1e968a02008-03-25 00:22:21 +00002950}
2951
2952/*
2953** This function compares the two table rows or index records
2954** specified by {nKey1, pKey1} and pPKey2. It returns a negative, zero
drhe63d9992008-08-13 19:11:48 +00002955** or positive integer if key1 is less than, equal to or
2956** greater than key2. The {nKey1, pKey1} key must be a blob
drh1e968a02008-03-25 00:22:21 +00002957** created by th OP_MakeRecord opcode of the VDBE. The pPKey2
2958** key must be a parsed key such as obtained from
2959** sqlite3VdbeParseRecord.
2960**
2961** Key1 and Key2 do not have to contain the same number of fields.
drhe63d9992008-08-13 19:11:48 +00002962** The key with fewer fields is usually compares less than the
2963** longer key. However if the UNPACKED_INCRKEY flags in pPKey2 is set
2964** and the common prefixes are equal, then key1 is less than key2.
2965** Or if the UNPACKED_MATCH_PREFIX flag is set and the prefixes are
2966** equal, then the keys are considered to be equal and
drhec1fc802008-08-13 14:07:40 +00002967** the parts beyond the common prefix are ignored.
drh1e968a02008-03-25 00:22:21 +00002968*/
drhe14006d2008-03-25 17:23:32 +00002969int sqlite3VdbeRecordCompare(
drhec1fc802008-08-13 14:07:40 +00002970 int nKey1, const void *pKey1, /* Left key */
drhec1fc802008-08-13 14:07:40 +00002971 UnpackedRecord *pPKey2 /* Right key */
drh1e968a02008-03-25 00:22:21 +00002972){
danielk197700e13612008-11-17 19:18:54 +00002973 int d1; /* Offset into aKey[] of next data element */
drh1e968a02008-03-25 00:22:21 +00002974 u32 idx1; /* Offset into aKey[] of next header element */
2975 u32 szHdr1; /* Number of bytes in header */
2976 int i = 0;
2977 int nField;
2978 int rc = 0;
2979 const unsigned char *aKey1 = (const unsigned char *)pKey1;
2980 KeyInfo *pKeyInfo;
2981 Mem mem1;
2982
2983 pKeyInfo = pPKey2->pKeyInfo;
2984 mem1.enc = pKeyInfo->enc;
drh37272632009-11-16 21:28:45 +00002985 mem1.db = pKeyInfo->db;
drhd93a8b22009-11-16 03:13:40 +00002986 /* mem1.flags = 0; // Will be initialized by sqlite3VdbeSerialGet() */
2987 VVA_ONLY( mem1.zMalloc = 0; ) /* Only needed by assert() statements */
drh8b249a82009-11-16 02:14:00 +00002988
2989 /* Compilers may complain that mem1.u.i is potentially uninitialized.
2990 ** We could initialize it, as shown here, to silence those complaints.
drh5275d2e2011-04-27 01:00:17 +00002991 ** But in fact, mem1.u.i will never actually be used uninitialized, and doing
drh8b249a82009-11-16 02:14:00 +00002992 ** the unnecessary initialization has a measurable negative performance
2993 ** impact, since this routine is a very high runner. And so, we choose
2994 ** to ignore the compiler warnings and leave this variable uninitialized.
2995 */
2996 /* mem1.u.i = 0; // not needed, here to silence compiler warning */
drh1e968a02008-03-25 00:22:21 +00002997
shane3f8d5cf2008-04-24 19:15:09 +00002998 idx1 = getVarint32(aKey1, szHdr1);
drh1e968a02008-03-25 00:22:21 +00002999 d1 = szHdr1;
3000 nField = pKeyInfo->nField;
drhe1a022e2012-09-17 17:16:53 +00003001 assert( pKeyInfo->aSortOrder!=0 );
drh1e968a02008-03-25 00:22:21 +00003002 while( idx1<szHdr1 && i<pPKey2->nField ){
3003 u32 serial_type1;
3004
3005 /* Read the serial types for the next element in each key. */
shane3f8d5cf2008-04-24 19:15:09 +00003006 idx1 += getVarint32( aKey1+idx1, serial_type1 );
drh1e968a02008-03-25 00:22:21 +00003007 if( d1>=nKey1 && sqlite3VdbeSerialTypeLen(serial_type1)>0 ) break;
3008
3009 /* Extract the values to be compared.
3010 */
3011 d1 += sqlite3VdbeSerialGet(&aKey1[d1], serial_type1, &mem1);
3012
3013 /* Do the comparison
3014 */
drhe14006d2008-03-25 17:23:32 +00003015 rc = sqlite3MemCompare(&mem1, &pPKey2->aMem[i],
drh1e968a02008-03-25 00:22:21 +00003016 i<nField ? pKeyInfo->aColl[i] : 0);
drh1e968a02008-03-25 00:22:21 +00003017 if( rc!=0 ){
drh8b249a82009-11-16 02:14:00 +00003018 assert( mem1.zMalloc==0 ); /* See comment below */
3019
3020 /* Invert the result if we are using DESC sort order. */
drhe1a022e2012-09-17 17:16:53 +00003021 if( i<nField && pKeyInfo->aSortOrder[i] ){
drh8b249a82009-11-16 02:14:00 +00003022 rc = -rc;
3023 }
3024
3025 /* If the PREFIX_SEARCH flag is set and all fields except the final
3026 ** rowid field were equal, then clear the PREFIX_SEARCH flag and set
3027 ** pPKey2->rowid to the value of the rowid field in (pKey1, nKey1).
3028 ** This is used by the OP_IsUnique opcode.
3029 */
3030 if( (pPKey2->flags & UNPACKED_PREFIX_SEARCH) && i==(pPKey2->nField-1) ){
3031 assert( idx1==szHdr1 && rc );
3032 assert( mem1.flags & MEM_Int );
3033 pPKey2->flags &= ~UNPACKED_PREFIX_SEARCH;
3034 pPKey2->rowid = mem1.u.i;
3035 }
3036
3037 return rc;
drh1e968a02008-03-25 00:22:21 +00003038 }
3039 i++;
3040 }
drh407414c2009-07-14 14:15:27 +00003041
drh8b249a82009-11-16 02:14:00 +00003042 /* No memory allocation is ever used on mem1. Prove this using
3043 ** the following assert(). If the assert() fails, it indicates a
3044 ** memory leak and a need to call sqlite3VdbeMemRelease(&mem1).
danielk1977de630352009-05-04 11:42:29 +00003045 */
drh8b249a82009-11-16 02:14:00 +00003046 assert( mem1.zMalloc==0 );
danielk1977de630352009-05-04 11:42:29 +00003047
drh8b249a82009-11-16 02:14:00 +00003048 /* rc==0 here means that one of the keys ran out of fields and
3049 ** all the fields up to that point were equal. If the UNPACKED_INCRKEY
3050 ** flag is set, then break the tie by treating key2 as larger.
3051 ** If the UPACKED_PREFIX_MATCH flag is set, then keys with common prefixes
3052 ** are considered to be equal. Otherwise, the longer key is the
3053 ** larger. As it happens, the pPKey2 will always be the longer
3054 ** if there is a difference.
3055 */
3056 assert( rc==0 );
3057 if( pPKey2->flags & UNPACKED_INCRKEY ){
3058 rc = -1;
3059 }else if( pPKey2->flags & UNPACKED_PREFIX_MATCH ){
3060 /* Leave rc==0 */
3061 }else if( idx1<szHdr1 ){
3062 rc = 1;
drh1e968a02008-03-25 00:22:21 +00003063 }
drh1e968a02008-03-25 00:22:21 +00003064 return rc;
3065}
drhec1fc802008-08-13 14:07:40 +00003066
danielk1977eb015e02004-05-18 01:31:14 +00003067
3068/*
drh7a224de2004-06-02 01:22:02 +00003069** pCur points at an index entry created using the OP_MakeRecord opcode.
3070** Read the rowid (the last field in the record) and store it in *rowid.
3071** Return SQLITE_OK if everything works, or an error code otherwise.
drh88a003e2008-12-11 16:17:03 +00003072**
3073** pCur might be pointing to text obtained from a corrupt database file.
3074** So the content cannot be trusted. Do appropriate checks on the content.
danielk1977183f9f72004-05-13 05:20:26 +00003075*/
drh35f6b932009-06-23 14:15:04 +00003076int sqlite3VdbeIdxRowid(sqlite3 *db, BtCursor *pCur, i64 *rowid){
drh61fc5952007-04-01 23:49:51 +00003077 i64 nCellKey = 0;
danielk1977183f9f72004-05-13 05:20:26 +00003078 int rc;
drhd5788202004-05-28 08:21:05 +00003079 u32 szHdr; /* Size of the header */
3080 u32 typeRowid; /* Serial type of the rowid */
3081 u32 lenRowid; /* Size of the rowid */
3082 Mem m, v;
danielk1977183f9f72004-05-13 05:20:26 +00003083
shanecea72b22009-09-07 04:38:36 +00003084 UNUSED_PARAMETER(db);
3085
drh88a003e2008-12-11 16:17:03 +00003086 /* Get the size of the index entry. Only indices entries of less
drh7b746032009-06-26 12:15:22 +00003087 ** than 2GiB are support - anything large must be database corruption.
3088 ** Any corruption is detected in sqlite3BtreeParseCellPtr(), though, so
drhc27ae612009-07-14 18:35:44 +00003089 ** this code can safely assume that nCellKey is 32-bits
3090 */
drhea8ffdf2009-07-22 00:35:23 +00003091 assert( sqlite3BtreeCursorIsValid(pCur) );
drhb07028f2011-10-14 21:49:18 +00003092 VVA_ONLY(rc =) sqlite3BtreeKeySize(pCur, &nCellKey);
drhc27ae612009-07-14 18:35:44 +00003093 assert( rc==SQLITE_OK ); /* pCur is always valid so KeySize cannot fail */
drh7b746032009-06-26 12:15:22 +00003094 assert( (nCellKey & SQLITE_MAX_U32)==(u64)nCellKey );
drh88a003e2008-12-11 16:17:03 +00003095
3096 /* Read in the complete content of the index entry */
drhff104c12009-08-25 13:10:27 +00003097 memset(&m, 0, sizeof(m));
drh8df32842008-12-09 02:51:23 +00003098 rc = sqlite3VdbeMemFromBtree(pCur, 0, (int)nCellKey, 1, &m);
drhd5788202004-05-28 08:21:05 +00003099 if( rc ){
danielk1977183f9f72004-05-13 05:20:26 +00003100 return rc;
3101 }
drh88a003e2008-12-11 16:17:03 +00003102
3103 /* The index entry must begin with a header size */
shane3f8d5cf2008-04-24 19:15:09 +00003104 (void)getVarint32((u8*)m.z, szHdr);
drh7b746032009-06-26 12:15:22 +00003105 testcase( szHdr==3 );
drh88a003e2008-12-11 16:17:03 +00003106 testcase( szHdr==m.n );
drh7b746032009-06-26 12:15:22 +00003107 if( unlikely(szHdr<3 || (int)szHdr>m.n) ){
drh88a003e2008-12-11 16:17:03 +00003108 goto idx_rowid_corruption;
3109 }
3110
3111 /* The last field of the index should be an integer - the ROWID.
3112 ** Verify that the last entry really is an integer. */
shane3f8d5cf2008-04-24 19:15:09 +00003113 (void)getVarint32((u8*)&m.z[szHdr-1], typeRowid);
drh88a003e2008-12-11 16:17:03 +00003114 testcase( typeRowid==1 );
3115 testcase( typeRowid==2 );
3116 testcase( typeRowid==3 );
3117 testcase( typeRowid==4 );
3118 testcase( typeRowid==5 );
3119 testcase( typeRowid==6 );
3120 testcase( typeRowid==8 );
3121 testcase( typeRowid==9 );
3122 if( unlikely(typeRowid<1 || typeRowid>9 || typeRowid==7) ){
3123 goto idx_rowid_corruption;
3124 }
drhd5788202004-05-28 08:21:05 +00003125 lenRowid = sqlite3VdbeSerialTypeLen(typeRowid);
drheeb844a2009-08-08 18:01:07 +00003126 testcase( (u32)m.n==szHdr+lenRowid );
3127 if( unlikely((u32)m.n<szHdr+lenRowid) ){
drh88a003e2008-12-11 16:17:03 +00003128 goto idx_rowid_corruption;
3129 }
3130
3131 /* Fetch the integer off the end of the index record */
drh2646da72005-12-09 20:02:05 +00003132 sqlite3VdbeSerialGet((u8*)&m.z[m.n-lenRowid], typeRowid, &v);
drh3c024d62007-03-30 11:23:45 +00003133 *rowid = v.u.i;
danielk1977d8123362004-06-12 09:25:12 +00003134 sqlite3VdbeMemRelease(&m);
danielk1977183f9f72004-05-13 05:20:26 +00003135 return SQLITE_OK;
drh88a003e2008-12-11 16:17:03 +00003136
3137 /* Jump here if database corruption is detected after m has been
3138 ** allocated. Free the m object and return SQLITE_CORRUPT. */
3139idx_rowid_corruption:
3140 testcase( m.zMalloc!=0 );
3141 sqlite3VdbeMemRelease(&m);
3142 return SQLITE_CORRUPT_BKPT;
danielk1977183f9f72004-05-13 05:20:26 +00003143}
3144
drh7cf6e4d2004-05-19 14:56:55 +00003145/*
drh5f82e3c2009-07-06 00:44:08 +00003146** Compare the key of the index entry that cursor pC is pointing to against
3147** the key string in pUnpacked. Write into *pRes a number
drh7cf6e4d2004-05-19 14:56:55 +00003148** that is negative, zero, or positive if pC is less than, equal to,
drh5f82e3c2009-07-06 00:44:08 +00003149** or greater than pUnpacked. Return SQLITE_OK on success.
drhd3d39e92004-05-20 22:16:29 +00003150**
drh5f82e3c2009-07-06 00:44:08 +00003151** pUnpacked is either created without a rowid or is truncated so that it
drhd5788202004-05-28 08:21:05 +00003152** omits the rowid at the end. The rowid at the end of the index entry
drhec1fc802008-08-13 14:07:40 +00003153** is ignored as well. Hence, this routine only compares the prefixes
3154** of the keys prior to the final rowid, not the entire key.
drh7cf6e4d2004-05-19 14:56:55 +00003155*/
danielk1977183f9f72004-05-13 05:20:26 +00003156int sqlite3VdbeIdxKeyCompare(
drhdfe88ec2008-11-03 20:55:06 +00003157 VdbeCursor *pC, /* The cursor to compare against */
drh5f82e3c2009-07-06 00:44:08 +00003158 UnpackedRecord *pUnpacked, /* Unpacked version of key to compare against */
drh7cf6e4d2004-05-19 14:56:55 +00003159 int *res /* Write the comparison result here */
danielk1977183f9f72004-05-13 05:20:26 +00003160){
drh61fc5952007-04-01 23:49:51 +00003161 i64 nCellKey = 0;
danielk1977183f9f72004-05-13 05:20:26 +00003162 int rc;
danielk19773d1bfea2004-05-14 11:00:53 +00003163 BtCursor *pCur = pC->pCursor;
drhd5788202004-05-28 08:21:05 +00003164 Mem m;
danielk1977183f9f72004-05-13 05:20:26 +00003165
drhea8ffdf2009-07-22 00:35:23 +00003166 assert( sqlite3BtreeCursorIsValid(pCur) );
drhb07028f2011-10-14 21:49:18 +00003167 VVA_ONLY(rc =) sqlite3BtreeKeySize(pCur, &nCellKey);
drhc27ae612009-07-14 18:35:44 +00003168 assert( rc==SQLITE_OK ); /* pCur is always valid so KeySize cannot fail */
drh407414c2009-07-14 14:15:27 +00003169 /* nCellKey will always be between 0 and 0xffffffff because of the say
3170 ** that btreeParseCellPtr() and sqlite3GetVarint32() are implemented */
drhc27ae612009-07-14 18:35:44 +00003171 if( nCellKey<=0 || nCellKey>0x7fffffff ){
danielk1977183f9f72004-05-13 05:20:26 +00003172 *res = 0;
drh9978c972010-02-23 17:36:32 +00003173 return SQLITE_CORRUPT_BKPT;
danielk1977183f9f72004-05-13 05:20:26 +00003174 }
drhfd3ca1c2009-08-25 12:11:00 +00003175 memset(&m, 0, sizeof(m));
drh8df32842008-12-09 02:51:23 +00003176 rc = sqlite3VdbeMemFromBtree(pC->pCursor, 0, (int)nCellKey, 1, &m);
drhec1fc802008-08-13 14:07:40 +00003177 if( rc ){
drhd5788202004-05-28 08:21:05 +00003178 return rc;
danielk1977183f9f72004-05-13 05:20:26 +00003179 }
dan6f133232011-11-16 15:41:29 +00003180 assert( pUnpacked->flags & UNPACKED_PREFIX_MATCH );
drhe63d9992008-08-13 19:11:48 +00003181 *res = sqlite3VdbeRecordCompare(m.n, m.z, pUnpacked);
danielk1977d8123362004-06-12 09:25:12 +00003182 sqlite3VdbeMemRelease(&m);
danielk1977183f9f72004-05-13 05:20:26 +00003183 return SQLITE_OK;
3184}
danielk1977b28af712004-06-21 06:50:26 +00003185
3186/*
3187** This routine sets the value to be returned by subsequent calls to
3188** sqlite3_changes() on the database handle 'db'.
3189*/
3190void sqlite3VdbeSetChanges(sqlite3 *db, int nChange){
drhb21c8cd2007-08-21 19:33:56 +00003191 assert( sqlite3_mutex_held(db->mutex) );
danielk1977b28af712004-06-21 06:50:26 +00003192 db->nChange = nChange;
3193 db->nTotalChange += nChange;
3194}
3195
3196/*
3197** Set a flag in the vdbe to update the change counter when it is finalised
3198** or reset.
3199*/
drh4794f732004-11-05 17:17:50 +00003200void sqlite3VdbeCountChanges(Vdbe *v){
3201 v->changeCntOn = 1;
danielk1977b28af712004-06-21 06:50:26 +00003202}
drhd89bd002005-01-22 03:03:54 +00003203
3204/*
3205** Mark every prepared statement associated with a database connection
3206** as expired.
3207**
3208** An expired statement means that recompilation of the statement is
3209** recommend. Statements expire when things happen that make their
3210** programs obsolete. Removing user-defined functions or collating
3211** sequences, or changing an authorization function are the types of
3212** things that make prepared statements obsolete.
3213*/
3214void sqlite3ExpirePreparedStatements(sqlite3 *db){
3215 Vdbe *p;
3216 for(p = db->pVdbe; p; p=p->pNext){
3217 p->expired = 1;
3218 }
3219}
danielk1977aee18ef2005-03-09 12:26:50 +00003220
3221/*
3222** Return the database associated with the Vdbe.
3223*/
3224sqlite3 *sqlite3VdbeDb(Vdbe *v){
3225 return v->db;
3226}
dan937d0de2009-10-15 18:35:38 +00003227
3228/*
3229** Return a pointer to an sqlite3_value structure containing the value bound
3230** parameter iVar of VM v. Except, if the value is an SQL NULL, return
3231** 0 instead. Unless it is NULL, apply affinity aff (one of the SQLITE_AFF_*
3232** constants) to the value before returning it.
3233**
3234** The returned value must be freed by the caller using sqlite3ValueFree().
3235*/
3236sqlite3_value *sqlite3VdbeGetValue(Vdbe *v, int iVar, u8 aff){
3237 assert( iVar>0 );
3238 if( v ){
3239 Mem *pMem = &v->aVar[iVar-1];
3240 if( 0==(pMem->flags & MEM_Null) ){
3241 sqlite3_value *pRet = sqlite3ValueNew(v->db);
3242 if( pRet ){
3243 sqlite3VdbeMemCopy((Mem *)pRet, pMem);
3244 sqlite3ValueApplyAffinity(pRet, aff, SQLITE_UTF8);
3245 sqlite3VdbeMemStoreType((Mem *)pRet);
3246 }
3247 return pRet;
3248 }
3249 }
3250 return 0;
3251}
3252
3253/*
3254** Configure SQL variable iVar so that binding a new value to it signals
3255** to sqlite3_reoptimize() that re-preparing the statement may result
3256** in a better query plan.
3257*/
dan1d2ce4f2009-10-19 18:11:09 +00003258void sqlite3VdbeSetVarmask(Vdbe *v, int iVar){
dan937d0de2009-10-15 18:35:38 +00003259 assert( iVar>0 );
3260 if( iVar>32 ){
dan1d2ce4f2009-10-19 18:11:09 +00003261 v->expmask = 0xffffffff;
dan937d0de2009-10-15 18:35:38 +00003262 }else{
dan1d2ce4f2009-10-19 18:11:09 +00003263 v->expmask |= ((u32)1 << (iVar-1));
dan937d0de2009-10-15 18:35:38 +00003264 }
3265}