xref: /sqlite-3.40.0/src/tclsqlite.c (revision a3fdec71)
1 /*
2 ** 2001 September 15
3 **
4 ** The author disclaims copyright to this source code.  In place of
5 ** a legal notice, here is a blessing:
6 **
7 **    May you do good and not evil.
8 **    May you find forgiveness for yourself and forgive others.
9 **    May you share freely, never taking more than you give.
10 **
11 *************************************************************************
12 ** A TCL Interface to SQLite.  Append this file to sqlite3.c and
13 ** compile the whole thing to build a TCL-enabled version of SQLite.
14 **
15 ** Compile-time options:
16 **
17 **  -DTCLSH=1             Add a "main()" routine that works as a tclsh.
18 **
19 **  -DSQLITE_TCLMD5       When used in conjuction with -DTCLSH=1, add
20 **                        four new commands to the TCL interpreter for
21 **                        generating MD5 checksums:  md5, md5file,
22 **                        md5-10x8, and md5file-10x8.
23 **
24 **  -DSQLITE_TEST         When used in conjuction with -DTCLSH=1, add
25 **                        hundreds of new commands used for testing
26 **                        SQLite.  This option implies -DSQLITE_TCLMD5.
27 */
28 #include "tcl.h"
29 #include <errno.h>
30 
31 /*
32 ** Some additional include files are needed if this file is not
33 ** appended to the amalgamation.
34 */
35 #ifndef SQLITE_AMALGAMATION
36 # include "sqlite3.h"
37 # include <stdlib.h>
38 # include <string.h>
39 # include <assert.h>
40   typedef unsigned char u8;
41 #endif
42 #include <ctype.h>
43 
44 /* Used to get the current process ID */
45 #if !defined(_WIN32)
46 # include <unistd.h>
47 # define GETPID getpid
48 #elif !defined(_WIN32_WCE)
49 # ifndef SQLITE_AMALGAMATION
50 #  define WIN32_LEAN_AND_MEAN
51 #  include <windows.h>
52 # endif
53 # define GETPID (int)GetCurrentProcessId
54 #endif
55 
56 /*
57  * Windows needs to know which symbols to export.  Unix does not.
58  * BUILD_sqlite should be undefined for Unix.
59  */
60 #ifdef BUILD_sqlite
61 #undef TCL_STORAGE_CLASS
62 #define TCL_STORAGE_CLASS DLLEXPORT
63 #endif /* BUILD_sqlite */
64 
65 #define NUM_PREPARED_STMTS 10
66 #define MAX_PREPARED_STMTS 100
67 
68 /* Forward declaration */
69 typedef struct SqliteDb SqliteDb;
70 
71 /*
72 ** New SQL functions can be created as TCL scripts.  Each such function
73 ** is described by an instance of the following structure.
74 */
75 typedef struct SqlFunc SqlFunc;
76 struct SqlFunc {
77   Tcl_Interp *interp;   /* The TCL interpret to execute the function */
78   Tcl_Obj *pScript;     /* The Tcl_Obj representation of the script */
79   SqliteDb *pDb;        /* Database connection that owns this function */
80   int useEvalObjv;      /* True if it is safe to use Tcl_EvalObjv */
81   char *zName;          /* Name of this function */
82   SqlFunc *pNext;       /* Next function on the list of them all */
83 };
84 
85 /*
86 ** New collation sequences function can be created as TCL scripts.  Each such
87 ** function is described by an instance of the following structure.
88 */
89 typedef struct SqlCollate SqlCollate;
90 struct SqlCollate {
91   Tcl_Interp *interp;   /* The TCL interpret to execute the function */
92   char *zScript;        /* The script to be run */
93   SqlCollate *pNext;    /* Next function on the list of them all */
94 };
95 
96 /*
97 ** Prepared statements are cached for faster execution.  Each prepared
98 ** statement is described by an instance of the following structure.
99 */
100 typedef struct SqlPreparedStmt SqlPreparedStmt;
101 struct SqlPreparedStmt {
102   SqlPreparedStmt *pNext;  /* Next in linked list */
103   SqlPreparedStmt *pPrev;  /* Previous on the list */
104   sqlite3_stmt *pStmt;     /* The prepared statement */
105   int nSql;                /* chars in zSql[] */
106   const char *zSql;        /* Text of the SQL statement */
107   int nParm;               /* Size of apParm array */
108   Tcl_Obj **apParm;        /* Array of referenced object pointers */
109 };
110 
111 typedef struct IncrblobChannel IncrblobChannel;
112 
113 /*
114 ** There is one instance of this structure for each SQLite database
115 ** that has been opened by the SQLite TCL interface.
116 **
117 ** If this module is built with SQLITE_TEST defined (to create the SQLite
118 ** testfixture executable), then it may be configured to use either
119 ** sqlite3_prepare_v2() or sqlite3_prepare() to prepare SQL statements.
120 ** If SqliteDb.bLegacyPrepare is true, sqlite3_prepare() is used.
121 */
122 struct SqliteDb {
123   sqlite3 *db;               /* The "real" database structure. MUST BE FIRST */
124   Tcl_Interp *interp;        /* The interpreter used for this database */
125   char *zBusy;               /* The busy callback routine */
126   char *zCommit;             /* The commit hook callback routine */
127   char *zTrace;              /* The trace callback routine */
128   char *zProfile;            /* The profile callback routine */
129   char *zProgress;           /* The progress callback routine */
130   char *zAuth;               /* The authorization callback routine */
131   int disableAuth;           /* Disable the authorizer if it exists */
132   char *zNull;               /* Text to substitute for an SQL NULL value */
133   SqlFunc *pFunc;            /* List of SQL functions */
134   Tcl_Obj *pUpdateHook;      /* Update hook script (if any) */
135   Tcl_Obj *pRollbackHook;    /* Rollback hook script (if any) */
136   Tcl_Obj *pWalHook;         /* WAL hook script (if any) */
137   Tcl_Obj *pUnlockNotify;    /* Unlock notify script (if any) */
138   SqlCollate *pCollate;      /* List of SQL collation functions */
139   int rc;                    /* Return code of most recent sqlite3_exec() */
140   Tcl_Obj *pCollateNeeded;   /* Collation needed script */
141   SqlPreparedStmt *stmtList; /* List of prepared statements*/
142   SqlPreparedStmt *stmtLast; /* Last statement in the list */
143   int maxStmt;               /* The next maximum number of stmtList */
144   int nStmt;                 /* Number of statements in stmtList */
145   IncrblobChannel *pIncrblob;/* Linked list of open incrblob channels */
146   int nStep, nSort, nIndex;  /* Statistics for most recent operation */
147   int nTransaction;          /* Number of nested [transaction] methods */
148 #ifdef SQLITE_TEST
149   int bLegacyPrepare;        /* True to use sqlite3_prepare() */
150 #endif
151 };
152 
153 struct IncrblobChannel {
154   sqlite3_blob *pBlob;      /* sqlite3 blob handle */
155   SqliteDb *pDb;            /* Associated database connection */
156   int iSeek;                /* Current seek offset */
157   Tcl_Channel channel;      /* Channel identifier */
158   IncrblobChannel *pNext;   /* Linked list of all open incrblob channels */
159   IncrblobChannel *pPrev;   /* Linked list of all open incrblob channels */
160 };
161 
162 /*
163 ** Compute a string length that is limited to what can be stored in
164 ** lower 30 bits of a 32-bit signed integer.
165 */
166 static int strlen30(const char *z){
167   const char *z2 = z;
168   while( *z2 ){ z2++; }
169   return 0x3fffffff & (int)(z2 - z);
170 }
171 
172 
173 #ifndef SQLITE_OMIT_INCRBLOB
174 /*
175 ** Close all incrblob channels opened using database connection pDb.
176 ** This is called when shutting down the database connection.
177 */
178 static void closeIncrblobChannels(SqliteDb *pDb){
179   IncrblobChannel *p;
180   IncrblobChannel *pNext;
181 
182   for(p=pDb->pIncrblob; p; p=pNext){
183     pNext = p->pNext;
184 
185     /* Note: Calling unregister here call Tcl_Close on the incrblob channel,
186     ** which deletes the IncrblobChannel structure at *p. So do not
187     ** call Tcl_Free() here.
188     */
189     Tcl_UnregisterChannel(pDb->interp, p->channel);
190   }
191 }
192 
193 /*
194 ** Close an incremental blob channel.
195 */
196 static int incrblobClose(ClientData instanceData, Tcl_Interp *interp){
197   IncrblobChannel *p = (IncrblobChannel *)instanceData;
198   int rc = sqlite3_blob_close(p->pBlob);
199   sqlite3 *db = p->pDb->db;
200 
201   /* Remove the channel from the SqliteDb.pIncrblob list. */
202   if( p->pNext ){
203     p->pNext->pPrev = p->pPrev;
204   }
205   if( p->pPrev ){
206     p->pPrev->pNext = p->pNext;
207   }
208   if( p->pDb->pIncrblob==p ){
209     p->pDb->pIncrblob = p->pNext;
210   }
211 
212   /* Free the IncrblobChannel structure */
213   Tcl_Free((char *)p);
214 
215   if( rc!=SQLITE_OK ){
216     Tcl_SetResult(interp, (char *)sqlite3_errmsg(db), TCL_VOLATILE);
217     return TCL_ERROR;
218   }
219   return TCL_OK;
220 }
221 
222 /*
223 ** Read data from an incremental blob channel.
224 */
225 static int incrblobInput(
226   ClientData instanceData,
227   char *buf,
228   int bufSize,
229   int *errorCodePtr
230 ){
231   IncrblobChannel *p = (IncrblobChannel *)instanceData;
232   int nRead = bufSize;         /* Number of bytes to read */
233   int nBlob;                   /* Total size of the blob */
234   int rc;                      /* sqlite error code */
235 
236   nBlob = sqlite3_blob_bytes(p->pBlob);
237   if( (p->iSeek+nRead)>nBlob ){
238     nRead = nBlob-p->iSeek;
239   }
240   if( nRead<=0 ){
241     return 0;
242   }
243 
244   rc = sqlite3_blob_read(p->pBlob, (void *)buf, nRead, p->iSeek);
245   if( rc!=SQLITE_OK ){
246     *errorCodePtr = rc;
247     return -1;
248   }
249 
250   p->iSeek += nRead;
251   return nRead;
252 }
253 
254 /*
255 ** Write data to an incremental blob channel.
256 */
257 static int incrblobOutput(
258   ClientData instanceData,
259   CONST char *buf,
260   int toWrite,
261   int *errorCodePtr
262 ){
263   IncrblobChannel *p = (IncrblobChannel *)instanceData;
264   int nWrite = toWrite;        /* Number of bytes to write */
265   int nBlob;                   /* Total size of the blob */
266   int rc;                      /* sqlite error code */
267 
268   nBlob = sqlite3_blob_bytes(p->pBlob);
269   if( (p->iSeek+nWrite)>nBlob ){
270     *errorCodePtr = EINVAL;
271     return -1;
272   }
273   if( nWrite<=0 ){
274     return 0;
275   }
276 
277   rc = sqlite3_blob_write(p->pBlob, (void *)buf, nWrite, p->iSeek);
278   if( rc!=SQLITE_OK ){
279     *errorCodePtr = EIO;
280     return -1;
281   }
282 
283   p->iSeek += nWrite;
284   return nWrite;
285 }
286 
287 /*
288 ** Seek an incremental blob channel.
289 */
290 static int incrblobSeek(
291   ClientData instanceData,
292   long offset,
293   int seekMode,
294   int *errorCodePtr
295 ){
296   IncrblobChannel *p = (IncrblobChannel *)instanceData;
297 
298   switch( seekMode ){
299     case SEEK_SET:
300       p->iSeek = offset;
301       break;
302     case SEEK_CUR:
303       p->iSeek += offset;
304       break;
305     case SEEK_END:
306       p->iSeek = sqlite3_blob_bytes(p->pBlob) + offset;
307       break;
308 
309     default: assert(!"Bad seekMode");
310   }
311 
312   return p->iSeek;
313 }
314 
315 
316 static void incrblobWatch(ClientData instanceData, int mode){
317   /* NO-OP */
318 }
319 static int incrblobHandle(ClientData instanceData, int dir, ClientData *hPtr){
320   return TCL_ERROR;
321 }
322 
323 static Tcl_ChannelType IncrblobChannelType = {
324   "incrblob",                        /* typeName                             */
325   TCL_CHANNEL_VERSION_2,             /* version                              */
326   incrblobClose,                     /* closeProc                            */
327   incrblobInput,                     /* inputProc                            */
328   incrblobOutput,                    /* outputProc                           */
329   incrblobSeek,                      /* seekProc                             */
330   0,                                 /* setOptionProc                        */
331   0,                                 /* getOptionProc                        */
332   incrblobWatch,                     /* watchProc (this is a no-op)          */
333   incrblobHandle,                    /* getHandleProc (always returns error) */
334   0,                                 /* close2Proc                           */
335   0,                                 /* blockModeProc                        */
336   0,                                 /* flushProc                            */
337   0,                                 /* handlerProc                          */
338   0,                                 /* wideSeekProc                         */
339 };
340 
341 /*
342 ** Create a new incrblob channel.
343 */
344 static int createIncrblobChannel(
345   Tcl_Interp *interp,
346   SqliteDb *pDb,
347   const char *zDb,
348   const char *zTable,
349   const char *zColumn,
350   sqlite_int64 iRow,
351   int isReadonly
352 ){
353   IncrblobChannel *p;
354   sqlite3 *db = pDb->db;
355   sqlite3_blob *pBlob;
356   int rc;
357   int flags = TCL_READABLE|(isReadonly ? 0 : TCL_WRITABLE);
358 
359   /* This variable is used to name the channels: "incrblob_[incr count]" */
360   static int count = 0;
361   char zChannel[64];
362 
363   rc = sqlite3_blob_open(db, zDb, zTable, zColumn, iRow, !isReadonly, &pBlob);
364   if( rc!=SQLITE_OK ){
365     Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE);
366     return TCL_ERROR;
367   }
368 
369   p = (IncrblobChannel *)Tcl_Alloc(sizeof(IncrblobChannel));
370   p->iSeek = 0;
371   p->pBlob = pBlob;
372 
373   sqlite3_snprintf(sizeof(zChannel), zChannel, "incrblob_%d", ++count);
374   p->channel = Tcl_CreateChannel(&IncrblobChannelType, zChannel, p, flags);
375   Tcl_RegisterChannel(interp, p->channel);
376 
377   /* Link the new channel into the SqliteDb.pIncrblob list. */
378   p->pNext = pDb->pIncrblob;
379   p->pPrev = 0;
380   if( p->pNext ){
381     p->pNext->pPrev = p;
382   }
383   pDb->pIncrblob = p;
384   p->pDb = pDb;
385 
386   Tcl_SetResult(interp, (char *)Tcl_GetChannelName(p->channel), TCL_VOLATILE);
387   return TCL_OK;
388 }
389 #else  /* else clause for "#ifndef SQLITE_OMIT_INCRBLOB" */
390   #define closeIncrblobChannels(pDb)
391 #endif
392 
393 /*
394 ** Look at the script prefix in pCmd.  We will be executing this script
395 ** after first appending one or more arguments.  This routine analyzes
396 ** the script to see if it is safe to use Tcl_EvalObjv() on the script
397 ** rather than the more general Tcl_EvalEx().  Tcl_EvalObjv() is much
398 ** faster.
399 **
400 ** Scripts that are safe to use with Tcl_EvalObjv() consists of a
401 ** command name followed by zero or more arguments with no [...] or $
402 ** or {...} or ; to be seen anywhere.  Most callback scripts consist
403 ** of just a single procedure name and they meet this requirement.
404 */
405 static int safeToUseEvalObjv(Tcl_Interp *interp, Tcl_Obj *pCmd){
406   /* We could try to do something with Tcl_Parse().  But we will instead
407   ** just do a search for forbidden characters.  If any of the forbidden
408   ** characters appear in pCmd, we will report the string as unsafe.
409   */
410   const char *z;
411   int n;
412   z = Tcl_GetStringFromObj(pCmd, &n);
413   while( n-- > 0 ){
414     int c = *(z++);
415     if( c=='$' || c=='[' || c==';' ) return 0;
416   }
417   return 1;
418 }
419 
420 /*
421 ** Find an SqlFunc structure with the given name.  Or create a new
422 ** one if an existing one cannot be found.  Return a pointer to the
423 ** structure.
424 */
425 static SqlFunc *findSqlFunc(SqliteDb *pDb, const char *zName){
426   SqlFunc *p, *pNew;
427   int nName = strlen30(zName);
428   pNew = (SqlFunc*)Tcl_Alloc( sizeof(*pNew) + nName + 1 );
429   pNew->zName = (char*)&pNew[1];
430   memcpy(pNew->zName, zName, nName+1);
431   for(p=pDb->pFunc; p; p=p->pNext){
432     if( sqlite3_stricmp(p->zName, pNew->zName)==0 ){
433       Tcl_Free((char*)pNew);
434       return p;
435     }
436   }
437   pNew->interp = pDb->interp;
438   pNew->pDb = pDb;
439   pNew->pScript = 0;
440   pNew->pNext = pDb->pFunc;
441   pDb->pFunc = pNew;
442   return pNew;
443 }
444 
445 /*
446 ** Free a single SqlPreparedStmt object.
447 */
448 static void dbFreeStmt(SqlPreparedStmt *pStmt){
449 #ifdef SQLITE_TEST
450   if( sqlite3_sql(pStmt->pStmt)==0 ){
451     Tcl_Free((char *)pStmt->zSql);
452   }
453 #endif
454   sqlite3_finalize(pStmt->pStmt);
455   Tcl_Free((char *)pStmt);
456 }
457 
458 /*
459 ** Finalize and free a list of prepared statements
460 */
461 static void flushStmtCache(SqliteDb *pDb){
462   SqlPreparedStmt *pPreStmt;
463   SqlPreparedStmt *pNext;
464 
465   for(pPreStmt = pDb->stmtList; pPreStmt; pPreStmt=pNext){
466     pNext = pPreStmt->pNext;
467     dbFreeStmt(pPreStmt);
468   }
469   pDb->nStmt = 0;
470   pDb->stmtLast = 0;
471   pDb->stmtList = 0;
472 }
473 
474 /*
475 ** TCL calls this procedure when an sqlite3 database command is
476 ** deleted.
477 */
478 static void DbDeleteCmd(void *db){
479   SqliteDb *pDb = (SqliteDb*)db;
480   flushStmtCache(pDb);
481   closeIncrblobChannels(pDb);
482   sqlite3_close(pDb->db);
483   while( pDb->pFunc ){
484     SqlFunc *pFunc = pDb->pFunc;
485     pDb->pFunc = pFunc->pNext;
486     assert( pFunc->pDb==pDb );
487     Tcl_DecrRefCount(pFunc->pScript);
488     Tcl_Free((char*)pFunc);
489   }
490   while( pDb->pCollate ){
491     SqlCollate *pCollate = pDb->pCollate;
492     pDb->pCollate = pCollate->pNext;
493     Tcl_Free((char*)pCollate);
494   }
495   if( pDb->zBusy ){
496     Tcl_Free(pDb->zBusy);
497   }
498   if( pDb->zTrace ){
499     Tcl_Free(pDb->zTrace);
500   }
501   if( pDb->zProfile ){
502     Tcl_Free(pDb->zProfile);
503   }
504   if( pDb->zAuth ){
505     Tcl_Free(pDb->zAuth);
506   }
507   if( pDb->zNull ){
508     Tcl_Free(pDb->zNull);
509   }
510   if( pDb->pUpdateHook ){
511     Tcl_DecrRefCount(pDb->pUpdateHook);
512   }
513   if( pDb->pRollbackHook ){
514     Tcl_DecrRefCount(pDb->pRollbackHook);
515   }
516   if( pDb->pWalHook ){
517     Tcl_DecrRefCount(pDb->pWalHook);
518   }
519   if( pDb->pCollateNeeded ){
520     Tcl_DecrRefCount(pDb->pCollateNeeded);
521   }
522   Tcl_Free((char*)pDb);
523 }
524 
525 /*
526 ** This routine is called when a database file is locked while trying
527 ** to execute SQL.
528 */
529 static int DbBusyHandler(void *cd, int nTries){
530   SqliteDb *pDb = (SqliteDb*)cd;
531   int rc;
532   char zVal[30];
533 
534   sqlite3_snprintf(sizeof(zVal), zVal, "%d", nTries);
535   rc = Tcl_VarEval(pDb->interp, pDb->zBusy, " ", zVal, (char*)0);
536   if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){
537     return 0;
538   }
539   return 1;
540 }
541 
542 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK
543 /*
544 ** This routine is invoked as the 'progress callback' for the database.
545 */
546 static int DbProgressHandler(void *cd){
547   SqliteDb *pDb = (SqliteDb*)cd;
548   int rc;
549 
550   assert( pDb->zProgress );
551   rc = Tcl_Eval(pDb->interp, pDb->zProgress);
552   if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){
553     return 1;
554   }
555   return 0;
556 }
557 #endif
558 
559 #ifndef SQLITE_OMIT_TRACE
560 /*
561 ** This routine is called by the SQLite trace handler whenever a new
562 ** block of SQL is executed.  The TCL script in pDb->zTrace is executed.
563 */
564 static void DbTraceHandler(void *cd, const char *zSql){
565   SqliteDb *pDb = (SqliteDb*)cd;
566   Tcl_DString str;
567 
568   Tcl_DStringInit(&str);
569   Tcl_DStringAppend(&str, pDb->zTrace, -1);
570   Tcl_DStringAppendElement(&str, zSql);
571   Tcl_Eval(pDb->interp, Tcl_DStringValue(&str));
572   Tcl_DStringFree(&str);
573   Tcl_ResetResult(pDb->interp);
574 }
575 #endif
576 
577 #ifndef SQLITE_OMIT_TRACE
578 /*
579 ** This routine is called by the SQLite profile handler after a statement
580 ** SQL has executed.  The TCL script in pDb->zProfile is evaluated.
581 */
582 static void DbProfileHandler(void *cd, const char *zSql, sqlite_uint64 tm){
583   SqliteDb *pDb = (SqliteDb*)cd;
584   Tcl_DString str;
585   char zTm[100];
586 
587   sqlite3_snprintf(sizeof(zTm)-1, zTm, "%lld", tm);
588   Tcl_DStringInit(&str);
589   Tcl_DStringAppend(&str, pDb->zProfile, -1);
590   Tcl_DStringAppendElement(&str, zSql);
591   Tcl_DStringAppendElement(&str, zTm);
592   Tcl_Eval(pDb->interp, Tcl_DStringValue(&str));
593   Tcl_DStringFree(&str);
594   Tcl_ResetResult(pDb->interp);
595 }
596 #endif
597 
598 /*
599 ** This routine is called when a transaction is committed.  The
600 ** TCL script in pDb->zCommit is executed.  If it returns non-zero or
601 ** if it throws an exception, the transaction is rolled back instead
602 ** of being committed.
603 */
604 static int DbCommitHandler(void *cd){
605   SqliteDb *pDb = (SqliteDb*)cd;
606   int rc;
607 
608   rc = Tcl_Eval(pDb->interp, pDb->zCommit);
609   if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){
610     return 1;
611   }
612   return 0;
613 }
614 
615 static void DbRollbackHandler(void *clientData){
616   SqliteDb *pDb = (SqliteDb*)clientData;
617   assert(pDb->pRollbackHook);
618   if( TCL_OK!=Tcl_EvalObjEx(pDb->interp, pDb->pRollbackHook, 0) ){
619     Tcl_BackgroundError(pDb->interp);
620   }
621 }
622 
623 /*
624 ** This procedure handles wal_hook callbacks.
625 */
626 static int DbWalHandler(
627   void *clientData,
628   sqlite3 *db,
629   const char *zDb,
630   int nEntry
631 ){
632   int ret = SQLITE_OK;
633   Tcl_Obj *p;
634   SqliteDb *pDb = (SqliteDb*)clientData;
635   Tcl_Interp *interp = pDb->interp;
636   assert(pDb->pWalHook);
637 
638   p = Tcl_DuplicateObj(pDb->pWalHook);
639   Tcl_IncrRefCount(p);
640   Tcl_ListObjAppendElement(interp, p, Tcl_NewStringObj(zDb, -1));
641   Tcl_ListObjAppendElement(interp, p, Tcl_NewIntObj(nEntry));
642   if( TCL_OK!=Tcl_EvalObjEx(interp, p, 0)
643    || TCL_OK!=Tcl_GetIntFromObj(interp, Tcl_GetObjResult(interp), &ret)
644   ){
645     Tcl_BackgroundError(interp);
646   }
647   Tcl_DecrRefCount(p);
648 
649   return ret;
650 }
651 
652 #if defined(SQLITE_TEST) && defined(SQLITE_ENABLE_UNLOCK_NOTIFY)
653 static void setTestUnlockNotifyVars(Tcl_Interp *interp, int iArg, int nArg){
654   char zBuf[64];
655   sprintf(zBuf, "%d", iArg);
656   Tcl_SetVar(interp, "sqlite_unlock_notify_arg", zBuf, TCL_GLOBAL_ONLY);
657   sprintf(zBuf, "%d", nArg);
658   Tcl_SetVar(interp, "sqlite_unlock_notify_argcount", zBuf, TCL_GLOBAL_ONLY);
659 }
660 #else
661 # define setTestUnlockNotifyVars(x,y,z)
662 #endif
663 
664 #ifdef SQLITE_ENABLE_UNLOCK_NOTIFY
665 static void DbUnlockNotify(void **apArg, int nArg){
666   int i;
667   for(i=0; i<nArg; i++){
668     const int flags = (TCL_EVAL_GLOBAL|TCL_EVAL_DIRECT);
669     SqliteDb *pDb = (SqliteDb *)apArg[i];
670     setTestUnlockNotifyVars(pDb->interp, i, nArg);
671     assert( pDb->pUnlockNotify);
672     Tcl_EvalObjEx(pDb->interp, pDb->pUnlockNotify, flags);
673     Tcl_DecrRefCount(pDb->pUnlockNotify);
674     pDb->pUnlockNotify = 0;
675   }
676 }
677 #endif
678 
679 static void DbUpdateHandler(
680   void *p,
681   int op,
682   const char *zDb,
683   const char *zTbl,
684   sqlite_int64 rowid
685 ){
686   SqliteDb *pDb = (SqliteDb *)p;
687   Tcl_Obj *pCmd;
688 
689   assert( pDb->pUpdateHook );
690   assert( op==SQLITE_INSERT || op==SQLITE_UPDATE || op==SQLITE_DELETE );
691 
692   pCmd = Tcl_DuplicateObj(pDb->pUpdateHook);
693   Tcl_IncrRefCount(pCmd);
694   Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(
695     ( (op==SQLITE_INSERT)?"INSERT":(op==SQLITE_UPDATE)?"UPDATE":"DELETE"), -1));
696   Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zDb, -1));
697   Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zTbl, -1));
698   Tcl_ListObjAppendElement(0, pCmd, Tcl_NewWideIntObj(rowid));
699   Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT);
700   Tcl_DecrRefCount(pCmd);
701 }
702 
703 static void tclCollateNeeded(
704   void *pCtx,
705   sqlite3 *db,
706   int enc,
707   const char *zName
708 ){
709   SqliteDb *pDb = (SqliteDb *)pCtx;
710   Tcl_Obj *pScript = Tcl_DuplicateObj(pDb->pCollateNeeded);
711   Tcl_IncrRefCount(pScript);
712   Tcl_ListObjAppendElement(0, pScript, Tcl_NewStringObj(zName, -1));
713   Tcl_EvalObjEx(pDb->interp, pScript, 0);
714   Tcl_DecrRefCount(pScript);
715 }
716 
717 /*
718 ** This routine is called to evaluate an SQL collation function implemented
719 ** using TCL script.
720 */
721 static int tclSqlCollate(
722   void *pCtx,
723   int nA,
724   const void *zA,
725   int nB,
726   const void *zB
727 ){
728   SqlCollate *p = (SqlCollate *)pCtx;
729   Tcl_Obj *pCmd;
730 
731   pCmd = Tcl_NewStringObj(p->zScript, -1);
732   Tcl_IncrRefCount(pCmd);
733   Tcl_ListObjAppendElement(p->interp, pCmd, Tcl_NewStringObj(zA, nA));
734   Tcl_ListObjAppendElement(p->interp, pCmd, Tcl_NewStringObj(zB, nB));
735   Tcl_EvalObjEx(p->interp, pCmd, TCL_EVAL_DIRECT);
736   Tcl_DecrRefCount(pCmd);
737   return (atoi(Tcl_GetStringResult(p->interp)));
738 }
739 
740 /*
741 ** This routine is called to evaluate an SQL function implemented
742 ** using TCL script.
743 */
744 static void tclSqlFunc(sqlite3_context *context, int argc, sqlite3_value**argv){
745   SqlFunc *p = sqlite3_user_data(context);
746   Tcl_Obj *pCmd;
747   int i;
748   int rc;
749 
750   if( argc==0 ){
751     /* If there are no arguments to the function, call Tcl_EvalObjEx on the
752     ** script object directly.  This allows the TCL compiler to generate
753     ** bytecode for the command on the first invocation and thus make
754     ** subsequent invocations much faster. */
755     pCmd = p->pScript;
756     Tcl_IncrRefCount(pCmd);
757     rc = Tcl_EvalObjEx(p->interp, pCmd, 0);
758     Tcl_DecrRefCount(pCmd);
759   }else{
760     /* If there are arguments to the function, make a shallow copy of the
761     ** script object, lappend the arguments, then evaluate the copy.
762     **
763     ** By "shallow" copy, we mean a only the outer list Tcl_Obj is duplicated.
764     ** The new Tcl_Obj contains pointers to the original list elements.
765     ** That way, when Tcl_EvalObjv() is run and shimmers the first element
766     ** of the list to tclCmdNameType, that alternate representation will
767     ** be preserved and reused on the next invocation.
768     */
769     Tcl_Obj **aArg;
770     int nArg;
771     if( Tcl_ListObjGetElements(p->interp, p->pScript, &nArg, &aArg) ){
772       sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1);
773       return;
774     }
775     pCmd = Tcl_NewListObj(nArg, aArg);
776     Tcl_IncrRefCount(pCmd);
777     for(i=0; i<argc; i++){
778       sqlite3_value *pIn = argv[i];
779       Tcl_Obj *pVal;
780 
781       /* Set pVal to contain the i'th column of this row. */
782       switch( sqlite3_value_type(pIn) ){
783         case SQLITE_BLOB: {
784           int bytes = sqlite3_value_bytes(pIn);
785           pVal = Tcl_NewByteArrayObj(sqlite3_value_blob(pIn), bytes);
786           break;
787         }
788         case SQLITE_INTEGER: {
789           sqlite_int64 v = sqlite3_value_int64(pIn);
790           if( v>=-2147483647 && v<=2147483647 ){
791             pVal = Tcl_NewIntObj((int)v);
792           }else{
793             pVal = Tcl_NewWideIntObj(v);
794           }
795           break;
796         }
797         case SQLITE_FLOAT: {
798           double r = sqlite3_value_double(pIn);
799           pVal = Tcl_NewDoubleObj(r);
800           break;
801         }
802         case SQLITE_NULL: {
803           pVal = Tcl_NewStringObj(p->pDb->zNull, -1);
804           break;
805         }
806         default: {
807           int bytes = sqlite3_value_bytes(pIn);
808           pVal = Tcl_NewStringObj((char *)sqlite3_value_text(pIn), bytes);
809           break;
810         }
811       }
812       rc = Tcl_ListObjAppendElement(p->interp, pCmd, pVal);
813       if( rc ){
814         Tcl_DecrRefCount(pCmd);
815         sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1);
816         return;
817       }
818     }
819     if( !p->useEvalObjv ){
820       /* Tcl_EvalObjEx() will automatically call Tcl_EvalObjv() if pCmd
821       ** is a list without a string representation.  To prevent this from
822       ** happening, make sure pCmd has a valid string representation */
823       Tcl_GetString(pCmd);
824     }
825     rc = Tcl_EvalObjEx(p->interp, pCmd, TCL_EVAL_DIRECT);
826     Tcl_DecrRefCount(pCmd);
827   }
828 
829   if( rc && rc!=TCL_RETURN ){
830     sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1);
831   }else{
832     Tcl_Obj *pVar = Tcl_GetObjResult(p->interp);
833     int n;
834     u8 *data;
835     const char *zType = (pVar->typePtr ? pVar->typePtr->name : "");
836     char c = zType[0];
837     if( c=='b' && strcmp(zType,"bytearray")==0 && pVar->bytes==0 ){
838       /* Only return a BLOB type if the Tcl variable is a bytearray and
839       ** has no string representation. */
840       data = Tcl_GetByteArrayFromObj(pVar, &n);
841       sqlite3_result_blob(context, data, n, SQLITE_TRANSIENT);
842     }else if( c=='b' && strcmp(zType,"boolean")==0 ){
843       Tcl_GetIntFromObj(0, pVar, &n);
844       sqlite3_result_int(context, n);
845     }else if( c=='d' && strcmp(zType,"double")==0 ){
846       double r;
847       Tcl_GetDoubleFromObj(0, pVar, &r);
848       sqlite3_result_double(context, r);
849     }else if( (c=='w' && strcmp(zType,"wideInt")==0) ||
850           (c=='i' && strcmp(zType,"int")==0) ){
851       Tcl_WideInt v;
852       Tcl_GetWideIntFromObj(0, pVar, &v);
853       sqlite3_result_int64(context, v);
854     }else{
855       data = (unsigned char *)Tcl_GetStringFromObj(pVar, &n);
856       sqlite3_result_text(context, (char *)data, n, SQLITE_TRANSIENT);
857     }
858   }
859 }
860 
861 #ifndef SQLITE_OMIT_AUTHORIZATION
862 /*
863 ** This is the authentication function.  It appends the authentication
864 ** type code and the two arguments to zCmd[] then invokes the result
865 ** on the interpreter.  The reply is examined to determine if the
866 ** authentication fails or succeeds.
867 */
868 static int auth_callback(
869   void *pArg,
870   int code,
871   const char *zArg1,
872   const char *zArg2,
873   const char *zArg3,
874   const char *zArg4
875 ){
876   const char *zCode;
877   Tcl_DString str;
878   int rc;
879   const char *zReply;
880   SqliteDb *pDb = (SqliteDb*)pArg;
881   if( pDb->disableAuth ) return SQLITE_OK;
882 
883   switch( code ){
884     case SQLITE_COPY              : zCode="SQLITE_COPY"; break;
885     case SQLITE_CREATE_INDEX      : zCode="SQLITE_CREATE_INDEX"; break;
886     case SQLITE_CREATE_TABLE      : zCode="SQLITE_CREATE_TABLE"; break;
887     case SQLITE_CREATE_TEMP_INDEX : zCode="SQLITE_CREATE_TEMP_INDEX"; break;
888     case SQLITE_CREATE_TEMP_TABLE : zCode="SQLITE_CREATE_TEMP_TABLE"; break;
889     case SQLITE_CREATE_TEMP_TRIGGER: zCode="SQLITE_CREATE_TEMP_TRIGGER"; break;
890     case SQLITE_CREATE_TEMP_VIEW  : zCode="SQLITE_CREATE_TEMP_VIEW"; break;
891     case SQLITE_CREATE_TRIGGER    : zCode="SQLITE_CREATE_TRIGGER"; break;
892     case SQLITE_CREATE_VIEW       : zCode="SQLITE_CREATE_VIEW"; break;
893     case SQLITE_DELETE            : zCode="SQLITE_DELETE"; break;
894     case SQLITE_DROP_INDEX        : zCode="SQLITE_DROP_INDEX"; break;
895     case SQLITE_DROP_TABLE        : zCode="SQLITE_DROP_TABLE"; break;
896     case SQLITE_DROP_TEMP_INDEX   : zCode="SQLITE_DROP_TEMP_INDEX"; break;
897     case SQLITE_DROP_TEMP_TABLE   : zCode="SQLITE_DROP_TEMP_TABLE"; break;
898     case SQLITE_DROP_TEMP_TRIGGER : zCode="SQLITE_DROP_TEMP_TRIGGER"; break;
899     case SQLITE_DROP_TEMP_VIEW    : zCode="SQLITE_DROP_TEMP_VIEW"; break;
900     case SQLITE_DROP_TRIGGER      : zCode="SQLITE_DROP_TRIGGER"; break;
901     case SQLITE_DROP_VIEW         : zCode="SQLITE_DROP_VIEW"; break;
902     case SQLITE_INSERT            : zCode="SQLITE_INSERT"; break;
903     case SQLITE_PRAGMA            : zCode="SQLITE_PRAGMA"; break;
904     case SQLITE_READ              : zCode="SQLITE_READ"; break;
905     case SQLITE_SELECT            : zCode="SQLITE_SELECT"; break;
906     case SQLITE_TRANSACTION       : zCode="SQLITE_TRANSACTION"; break;
907     case SQLITE_UPDATE            : zCode="SQLITE_UPDATE"; break;
908     case SQLITE_ATTACH            : zCode="SQLITE_ATTACH"; break;
909     case SQLITE_DETACH            : zCode="SQLITE_DETACH"; break;
910     case SQLITE_ALTER_TABLE       : zCode="SQLITE_ALTER_TABLE"; break;
911     case SQLITE_REINDEX           : zCode="SQLITE_REINDEX"; break;
912     case SQLITE_ANALYZE           : zCode="SQLITE_ANALYZE"; break;
913     case SQLITE_CREATE_VTABLE     : zCode="SQLITE_CREATE_VTABLE"; break;
914     case SQLITE_DROP_VTABLE       : zCode="SQLITE_DROP_VTABLE"; break;
915     case SQLITE_FUNCTION          : zCode="SQLITE_FUNCTION"; break;
916     case SQLITE_SAVEPOINT         : zCode="SQLITE_SAVEPOINT"; break;
917     case SQLITE_RECURSIVE         : zCode="SQLITE_RECURSIVE"; break;
918     default                       : zCode="????"; break;
919   }
920   Tcl_DStringInit(&str);
921   Tcl_DStringAppend(&str, pDb->zAuth, -1);
922   Tcl_DStringAppendElement(&str, zCode);
923   Tcl_DStringAppendElement(&str, zArg1 ? zArg1 : "");
924   Tcl_DStringAppendElement(&str, zArg2 ? zArg2 : "");
925   Tcl_DStringAppendElement(&str, zArg3 ? zArg3 : "");
926   Tcl_DStringAppendElement(&str, zArg4 ? zArg4 : "");
927   rc = Tcl_GlobalEval(pDb->interp, Tcl_DStringValue(&str));
928   Tcl_DStringFree(&str);
929   zReply = rc==TCL_OK ? Tcl_GetStringResult(pDb->interp) : "SQLITE_DENY";
930   if( strcmp(zReply,"SQLITE_OK")==0 ){
931     rc = SQLITE_OK;
932   }else if( strcmp(zReply,"SQLITE_DENY")==0 ){
933     rc = SQLITE_DENY;
934   }else if( strcmp(zReply,"SQLITE_IGNORE")==0 ){
935     rc = SQLITE_IGNORE;
936   }else{
937     rc = 999;
938   }
939   return rc;
940 }
941 #endif /* SQLITE_OMIT_AUTHORIZATION */
942 
943 /*
944 ** This routine reads a line of text from FILE in, stores
945 ** the text in memory obtained from malloc() and returns a pointer
946 ** to the text.  NULL is returned at end of file, or if malloc()
947 ** fails.
948 **
949 ** The interface is like "readline" but no command-line editing
950 ** is done.
951 **
952 ** copied from shell.c from '.import' command
953 */
954 static char *local_getline(char *zPrompt, FILE *in){
955   char *zLine;
956   int nLine;
957   int n;
958 
959   nLine = 100;
960   zLine = malloc( nLine );
961   if( zLine==0 ) return 0;
962   n = 0;
963   while( 1 ){
964     if( n+100>nLine ){
965       nLine = nLine*2 + 100;
966       zLine = realloc(zLine, nLine);
967       if( zLine==0 ) return 0;
968     }
969     if( fgets(&zLine[n], nLine - n, in)==0 ){
970       if( n==0 ){
971         free(zLine);
972         return 0;
973       }
974       zLine[n] = 0;
975       break;
976     }
977     while( zLine[n] ){ n++; }
978     if( n>0 && zLine[n-1]=='\n' ){
979       n--;
980       zLine[n] = 0;
981       break;
982     }
983   }
984   zLine = realloc( zLine, n+1 );
985   return zLine;
986 }
987 
988 
989 /*
990 ** This function is part of the implementation of the command:
991 **
992 **   $db transaction [-deferred|-immediate|-exclusive] SCRIPT
993 **
994 ** It is invoked after evaluating the script SCRIPT to commit or rollback
995 ** the transaction or savepoint opened by the [transaction] command.
996 */
997 static int DbTransPostCmd(
998   ClientData data[],                   /* data[0] is the Sqlite3Db* for $db */
999   Tcl_Interp *interp,                  /* Tcl interpreter */
1000   int result                           /* Result of evaluating SCRIPT */
1001 ){
1002   static const char *const azEnd[] = {
1003     "RELEASE _tcl_transaction",        /* rc==TCL_ERROR, nTransaction!=0 */
1004     "COMMIT",                          /* rc!=TCL_ERROR, nTransaction==0 */
1005     "ROLLBACK TO _tcl_transaction ; RELEASE _tcl_transaction",
1006     "ROLLBACK"                         /* rc==TCL_ERROR, nTransaction==0 */
1007   };
1008   SqliteDb *pDb = (SqliteDb*)data[0];
1009   int rc = result;
1010   const char *zEnd;
1011 
1012   pDb->nTransaction--;
1013   zEnd = azEnd[(rc==TCL_ERROR)*2 + (pDb->nTransaction==0)];
1014 
1015   pDb->disableAuth++;
1016   if( sqlite3_exec(pDb->db, zEnd, 0, 0, 0) ){
1017       /* This is a tricky scenario to handle. The most likely cause of an
1018       ** error is that the exec() above was an attempt to commit the
1019       ** top-level transaction that returned SQLITE_BUSY. Or, less likely,
1020       ** that an IO-error has occurred. In either case, throw a Tcl exception
1021       ** and try to rollback the transaction.
1022       **
1023       ** But it could also be that the user executed one or more BEGIN,
1024       ** COMMIT, SAVEPOINT, RELEASE or ROLLBACK commands that are confusing
1025       ** this method's logic. Not clear how this would be best handled.
1026       */
1027     if( rc!=TCL_ERROR ){
1028       Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), 0);
1029       rc = TCL_ERROR;
1030     }
1031     sqlite3_exec(pDb->db, "ROLLBACK", 0, 0, 0);
1032   }
1033   pDb->disableAuth--;
1034 
1035   return rc;
1036 }
1037 
1038 /*
1039 ** Unless SQLITE_TEST is defined, this function is a simple wrapper around
1040 ** sqlite3_prepare_v2(). If SQLITE_TEST is defined, then it uses either
1041 ** sqlite3_prepare_v2() or legacy interface sqlite3_prepare(), depending
1042 ** on whether or not the [db_use_legacy_prepare] command has been used to
1043 ** configure the connection.
1044 */
1045 static int dbPrepare(
1046   SqliteDb *pDb,                  /* Database object */
1047   const char *zSql,               /* SQL to compile */
1048   sqlite3_stmt **ppStmt,          /* OUT: Prepared statement */
1049   const char **pzOut              /* OUT: Pointer to next SQL statement */
1050 ){
1051 #ifdef SQLITE_TEST
1052   if( pDb->bLegacyPrepare ){
1053     return sqlite3_prepare(pDb->db, zSql, -1, ppStmt, pzOut);
1054   }
1055 #endif
1056   return sqlite3_prepare_v2(pDb->db, zSql, -1, ppStmt, pzOut);
1057 }
1058 
1059 /*
1060 ** Search the cache for a prepared-statement object that implements the
1061 ** first SQL statement in the buffer pointed to by parameter zIn. If
1062 ** no such prepared-statement can be found, allocate and prepare a new
1063 ** one. In either case, bind the current values of the relevant Tcl
1064 ** variables to any $var, :var or @var variables in the statement. Before
1065 ** returning, set *ppPreStmt to point to the prepared-statement object.
1066 **
1067 ** Output parameter *pzOut is set to point to the next SQL statement in
1068 ** buffer zIn, or to the '\0' byte at the end of zIn if there is no
1069 ** next statement.
1070 **
1071 ** If successful, TCL_OK is returned. Otherwise, TCL_ERROR is returned
1072 ** and an error message loaded into interpreter pDb->interp.
1073 */
1074 static int dbPrepareAndBind(
1075   SqliteDb *pDb,                  /* Database object */
1076   char const *zIn,                /* SQL to compile */
1077   char const **pzOut,             /* OUT: Pointer to next SQL statement */
1078   SqlPreparedStmt **ppPreStmt     /* OUT: Object used to cache statement */
1079 ){
1080   const char *zSql = zIn;         /* Pointer to first SQL statement in zIn */
1081   sqlite3_stmt *pStmt;            /* Prepared statement object */
1082   SqlPreparedStmt *pPreStmt;      /* Pointer to cached statement */
1083   int nSql;                       /* Length of zSql in bytes */
1084   int nVar;                       /* Number of variables in statement */
1085   int iParm = 0;                  /* Next free entry in apParm */
1086   char c;
1087   int i;
1088   Tcl_Interp *interp = pDb->interp;
1089 
1090   *ppPreStmt = 0;
1091 
1092   /* Trim spaces from the start of zSql and calculate the remaining length. */
1093   while( (c = zSql[0])==' ' || c=='\t' || c=='\r' || c=='\n' ){ zSql++; }
1094   nSql = strlen30(zSql);
1095 
1096   for(pPreStmt = pDb->stmtList; pPreStmt; pPreStmt=pPreStmt->pNext){
1097     int n = pPreStmt->nSql;
1098     if( nSql>=n
1099         && memcmp(pPreStmt->zSql, zSql, n)==0
1100         && (zSql[n]==0 || zSql[n-1]==';')
1101     ){
1102       pStmt = pPreStmt->pStmt;
1103       *pzOut = &zSql[pPreStmt->nSql];
1104 
1105       /* When a prepared statement is found, unlink it from the
1106       ** cache list.  It will later be added back to the beginning
1107       ** of the cache list in order to implement LRU replacement.
1108       */
1109       if( pPreStmt->pPrev ){
1110         pPreStmt->pPrev->pNext = pPreStmt->pNext;
1111       }else{
1112         pDb->stmtList = pPreStmt->pNext;
1113       }
1114       if( pPreStmt->pNext ){
1115         pPreStmt->pNext->pPrev = pPreStmt->pPrev;
1116       }else{
1117         pDb->stmtLast = pPreStmt->pPrev;
1118       }
1119       pDb->nStmt--;
1120       nVar = sqlite3_bind_parameter_count(pStmt);
1121       break;
1122     }
1123   }
1124 
1125   /* If no prepared statement was found. Compile the SQL text. Also allocate
1126   ** a new SqlPreparedStmt structure.  */
1127   if( pPreStmt==0 ){
1128     int nByte;
1129 
1130     if( SQLITE_OK!=dbPrepare(pDb, zSql, &pStmt, pzOut) ){
1131       Tcl_SetObjResult(interp, Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1));
1132       return TCL_ERROR;
1133     }
1134     if( pStmt==0 ){
1135       if( SQLITE_OK!=sqlite3_errcode(pDb->db) ){
1136         /* A compile-time error in the statement. */
1137         Tcl_SetObjResult(interp, Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1));
1138         return TCL_ERROR;
1139       }else{
1140         /* The statement was a no-op.  Continue to the next statement
1141         ** in the SQL string.
1142         */
1143         return TCL_OK;
1144       }
1145     }
1146 
1147     assert( pPreStmt==0 );
1148     nVar = sqlite3_bind_parameter_count(pStmt);
1149     nByte = sizeof(SqlPreparedStmt) + nVar*sizeof(Tcl_Obj *);
1150     pPreStmt = (SqlPreparedStmt*)Tcl_Alloc(nByte);
1151     memset(pPreStmt, 0, nByte);
1152 
1153     pPreStmt->pStmt = pStmt;
1154     pPreStmt->nSql = (int)(*pzOut - zSql);
1155     pPreStmt->zSql = sqlite3_sql(pStmt);
1156     pPreStmt->apParm = (Tcl_Obj **)&pPreStmt[1];
1157 #ifdef SQLITE_TEST
1158     if( pPreStmt->zSql==0 ){
1159       char *zCopy = Tcl_Alloc(pPreStmt->nSql + 1);
1160       memcpy(zCopy, zSql, pPreStmt->nSql);
1161       zCopy[pPreStmt->nSql] = '\0';
1162       pPreStmt->zSql = zCopy;
1163     }
1164 #endif
1165   }
1166   assert( pPreStmt );
1167   assert( strlen30(pPreStmt->zSql)==pPreStmt->nSql );
1168   assert( 0==memcmp(pPreStmt->zSql, zSql, pPreStmt->nSql) );
1169 
1170   /* Bind values to parameters that begin with $ or : */
1171   for(i=1; i<=nVar; i++){
1172     const char *zVar = sqlite3_bind_parameter_name(pStmt, i);
1173     if( zVar!=0 && (zVar[0]=='$' || zVar[0]==':' || zVar[0]=='@') ){
1174       Tcl_Obj *pVar = Tcl_GetVar2Ex(interp, &zVar[1], 0, 0);
1175       if( pVar ){
1176         int n;
1177         u8 *data;
1178         const char *zType = (pVar->typePtr ? pVar->typePtr->name : "");
1179         char c = zType[0];
1180         if( zVar[0]=='@' ||
1181            (c=='b' && strcmp(zType,"bytearray")==0 && pVar->bytes==0) ){
1182           /* Load a BLOB type if the Tcl variable is a bytearray and
1183           ** it has no string representation or the host
1184           ** parameter name begins with "@". */
1185           data = Tcl_GetByteArrayFromObj(pVar, &n);
1186           sqlite3_bind_blob(pStmt, i, data, n, SQLITE_STATIC);
1187           Tcl_IncrRefCount(pVar);
1188           pPreStmt->apParm[iParm++] = pVar;
1189         }else if( c=='b' && strcmp(zType,"boolean")==0 ){
1190           Tcl_GetIntFromObj(interp, pVar, &n);
1191           sqlite3_bind_int(pStmt, i, n);
1192         }else if( c=='d' && strcmp(zType,"double")==0 ){
1193           double r;
1194           Tcl_GetDoubleFromObj(interp, pVar, &r);
1195           sqlite3_bind_double(pStmt, i, r);
1196         }else if( (c=='w' && strcmp(zType,"wideInt")==0) ||
1197               (c=='i' && strcmp(zType,"int")==0) ){
1198           Tcl_WideInt v;
1199           Tcl_GetWideIntFromObj(interp, pVar, &v);
1200           sqlite3_bind_int64(pStmt, i, v);
1201         }else{
1202           data = (unsigned char *)Tcl_GetStringFromObj(pVar, &n);
1203           sqlite3_bind_text(pStmt, i, (char *)data, n, SQLITE_STATIC);
1204           Tcl_IncrRefCount(pVar);
1205           pPreStmt->apParm[iParm++] = pVar;
1206         }
1207       }else{
1208         sqlite3_bind_null(pStmt, i);
1209       }
1210     }
1211   }
1212   pPreStmt->nParm = iParm;
1213   *ppPreStmt = pPreStmt;
1214 
1215   return TCL_OK;
1216 }
1217 
1218 /*
1219 ** Release a statement reference obtained by calling dbPrepareAndBind().
1220 ** There should be exactly one call to this function for each call to
1221 ** dbPrepareAndBind().
1222 **
1223 ** If the discard parameter is non-zero, then the statement is deleted
1224 ** immediately. Otherwise it is added to the LRU list and may be returned
1225 ** by a subsequent call to dbPrepareAndBind().
1226 */
1227 static void dbReleaseStmt(
1228   SqliteDb *pDb,                  /* Database handle */
1229   SqlPreparedStmt *pPreStmt,      /* Prepared statement handle to release */
1230   int discard                     /* True to delete (not cache) the pPreStmt */
1231 ){
1232   int i;
1233 
1234   /* Free the bound string and blob parameters */
1235   for(i=0; i<pPreStmt->nParm; i++){
1236     Tcl_DecrRefCount(pPreStmt->apParm[i]);
1237   }
1238   pPreStmt->nParm = 0;
1239 
1240   if( pDb->maxStmt<=0 || discard ){
1241     /* If the cache is turned off, deallocated the statement */
1242     dbFreeStmt(pPreStmt);
1243   }else{
1244     /* Add the prepared statement to the beginning of the cache list. */
1245     pPreStmt->pNext = pDb->stmtList;
1246     pPreStmt->pPrev = 0;
1247     if( pDb->stmtList ){
1248      pDb->stmtList->pPrev = pPreStmt;
1249     }
1250     pDb->stmtList = pPreStmt;
1251     if( pDb->stmtLast==0 ){
1252       assert( pDb->nStmt==0 );
1253       pDb->stmtLast = pPreStmt;
1254     }else{
1255       assert( pDb->nStmt>0 );
1256     }
1257     pDb->nStmt++;
1258 
1259     /* If we have too many statement in cache, remove the surplus from
1260     ** the end of the cache list.  */
1261     while( pDb->nStmt>pDb->maxStmt ){
1262       SqlPreparedStmt *pLast = pDb->stmtLast;
1263       pDb->stmtLast = pLast->pPrev;
1264       pDb->stmtLast->pNext = 0;
1265       pDb->nStmt--;
1266       dbFreeStmt(pLast);
1267     }
1268   }
1269 }
1270 
1271 /*
1272 ** Structure used with dbEvalXXX() functions:
1273 **
1274 **   dbEvalInit()
1275 **   dbEvalStep()
1276 **   dbEvalFinalize()
1277 **   dbEvalRowInfo()
1278 **   dbEvalColumnValue()
1279 */
1280 typedef struct DbEvalContext DbEvalContext;
1281 struct DbEvalContext {
1282   SqliteDb *pDb;                  /* Database handle */
1283   Tcl_Obj *pSql;                  /* Object holding string zSql */
1284   const char *zSql;               /* Remaining SQL to execute */
1285   SqlPreparedStmt *pPreStmt;      /* Current statement */
1286   int nCol;                       /* Number of columns returned by pStmt */
1287   Tcl_Obj *pArray;                /* Name of array variable */
1288   Tcl_Obj **apColName;            /* Array of column names */
1289 };
1290 
1291 /*
1292 ** Release any cache of column names currently held as part of
1293 ** the DbEvalContext structure passed as the first argument.
1294 */
1295 static void dbReleaseColumnNames(DbEvalContext *p){
1296   if( p->apColName ){
1297     int i;
1298     for(i=0; i<p->nCol; i++){
1299       Tcl_DecrRefCount(p->apColName[i]);
1300     }
1301     Tcl_Free((char *)p->apColName);
1302     p->apColName = 0;
1303   }
1304   p->nCol = 0;
1305 }
1306 
1307 /*
1308 ** Initialize a DbEvalContext structure.
1309 **
1310 ** If pArray is not NULL, then it contains the name of a Tcl array
1311 ** variable. The "*" member of this array is set to a list containing
1312 ** the names of the columns returned by the statement as part of each
1313 ** call to dbEvalStep(), in order from left to right. e.g. if the names
1314 ** of the returned columns are a, b and c, it does the equivalent of the
1315 ** tcl command:
1316 **
1317 **     set ${pArray}(*) {a b c}
1318 */
1319 static void dbEvalInit(
1320   DbEvalContext *p,               /* Pointer to structure to initialize */
1321   SqliteDb *pDb,                  /* Database handle */
1322   Tcl_Obj *pSql,                  /* Object containing SQL script */
1323   Tcl_Obj *pArray                 /* Name of Tcl array to set (*) element of */
1324 ){
1325   memset(p, 0, sizeof(DbEvalContext));
1326   p->pDb = pDb;
1327   p->zSql = Tcl_GetString(pSql);
1328   p->pSql = pSql;
1329   Tcl_IncrRefCount(pSql);
1330   if( pArray ){
1331     p->pArray = pArray;
1332     Tcl_IncrRefCount(pArray);
1333   }
1334 }
1335 
1336 /*
1337 ** Obtain information about the row that the DbEvalContext passed as the
1338 ** first argument currently points to.
1339 */
1340 static void dbEvalRowInfo(
1341   DbEvalContext *p,               /* Evaluation context */
1342   int *pnCol,                     /* OUT: Number of column names */
1343   Tcl_Obj ***papColName           /* OUT: Array of column names */
1344 ){
1345   /* Compute column names */
1346   if( 0==p->apColName ){
1347     sqlite3_stmt *pStmt = p->pPreStmt->pStmt;
1348     int i;                        /* Iterator variable */
1349     int nCol;                     /* Number of columns returned by pStmt */
1350     Tcl_Obj **apColName = 0;      /* Array of column names */
1351 
1352     p->nCol = nCol = sqlite3_column_count(pStmt);
1353     if( nCol>0 && (papColName || p->pArray) ){
1354       apColName = (Tcl_Obj**)Tcl_Alloc( sizeof(Tcl_Obj*)*nCol );
1355       for(i=0; i<nCol; i++){
1356         apColName[i] = Tcl_NewStringObj(sqlite3_column_name(pStmt,i), -1);
1357         Tcl_IncrRefCount(apColName[i]);
1358       }
1359       p->apColName = apColName;
1360     }
1361 
1362     /* If results are being stored in an array variable, then create
1363     ** the array(*) entry for that array
1364     */
1365     if( p->pArray ){
1366       Tcl_Interp *interp = p->pDb->interp;
1367       Tcl_Obj *pColList = Tcl_NewObj();
1368       Tcl_Obj *pStar = Tcl_NewStringObj("*", -1);
1369 
1370       for(i=0; i<nCol; i++){
1371         Tcl_ListObjAppendElement(interp, pColList, apColName[i]);
1372       }
1373       Tcl_IncrRefCount(pStar);
1374       Tcl_ObjSetVar2(interp, p->pArray, pStar, pColList, 0);
1375       Tcl_DecrRefCount(pStar);
1376     }
1377   }
1378 
1379   if( papColName ){
1380     *papColName = p->apColName;
1381   }
1382   if( pnCol ){
1383     *pnCol = p->nCol;
1384   }
1385 }
1386 
1387 /*
1388 ** Return one of TCL_OK, TCL_BREAK or TCL_ERROR. If TCL_ERROR is
1389 ** returned, then an error message is stored in the interpreter before
1390 ** returning.
1391 **
1392 ** A return value of TCL_OK means there is a row of data available. The
1393 ** data may be accessed using dbEvalRowInfo() and dbEvalColumnValue(). This
1394 ** is analogous to a return of SQLITE_ROW from sqlite3_step(). If TCL_BREAK
1395 ** is returned, then the SQL script has finished executing and there are
1396 ** no further rows available. This is similar to SQLITE_DONE.
1397 */
1398 static int dbEvalStep(DbEvalContext *p){
1399   const char *zPrevSql = 0;       /* Previous value of p->zSql */
1400 
1401   while( p->zSql[0] || p->pPreStmt ){
1402     int rc;
1403     if( p->pPreStmt==0 ){
1404       zPrevSql = (p->zSql==zPrevSql ? 0 : p->zSql);
1405       rc = dbPrepareAndBind(p->pDb, p->zSql, &p->zSql, &p->pPreStmt);
1406       if( rc!=TCL_OK ) return rc;
1407     }else{
1408       int rcs;
1409       SqliteDb *pDb = p->pDb;
1410       SqlPreparedStmt *pPreStmt = p->pPreStmt;
1411       sqlite3_stmt *pStmt = pPreStmt->pStmt;
1412 
1413       rcs = sqlite3_step(pStmt);
1414       if( rcs==SQLITE_ROW ){
1415         return TCL_OK;
1416       }
1417       if( p->pArray ){
1418         dbEvalRowInfo(p, 0, 0);
1419       }
1420       rcs = sqlite3_reset(pStmt);
1421 
1422       pDb->nStep = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_FULLSCAN_STEP,1);
1423       pDb->nSort = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_SORT,1);
1424       pDb->nIndex = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_AUTOINDEX,1);
1425       dbReleaseColumnNames(p);
1426       p->pPreStmt = 0;
1427 
1428       if( rcs!=SQLITE_OK ){
1429         /* If a run-time error occurs, report the error and stop reading
1430         ** the SQL.  */
1431         dbReleaseStmt(pDb, pPreStmt, 1);
1432 #if SQLITE_TEST
1433         if( p->pDb->bLegacyPrepare && rcs==SQLITE_SCHEMA && zPrevSql ){
1434           /* If the runtime error was an SQLITE_SCHEMA, and the database
1435           ** handle is configured to use the legacy sqlite3_prepare()
1436           ** interface, retry prepare()/step() on the same SQL statement.
1437           ** This only happens once. If there is a second SQLITE_SCHEMA
1438           ** error, the error will be returned to the caller. */
1439           p->zSql = zPrevSql;
1440           continue;
1441         }
1442 #endif
1443         Tcl_SetObjResult(pDb->interp,
1444                          Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1));
1445         return TCL_ERROR;
1446       }else{
1447         dbReleaseStmt(pDb, pPreStmt, 0);
1448       }
1449     }
1450   }
1451 
1452   /* Finished */
1453   return TCL_BREAK;
1454 }
1455 
1456 /*
1457 ** Free all resources currently held by the DbEvalContext structure passed
1458 ** as the first argument. There should be exactly one call to this function
1459 ** for each call to dbEvalInit().
1460 */
1461 static void dbEvalFinalize(DbEvalContext *p){
1462   if( p->pPreStmt ){
1463     sqlite3_reset(p->pPreStmt->pStmt);
1464     dbReleaseStmt(p->pDb, p->pPreStmt, 0);
1465     p->pPreStmt = 0;
1466   }
1467   if( p->pArray ){
1468     Tcl_DecrRefCount(p->pArray);
1469     p->pArray = 0;
1470   }
1471   Tcl_DecrRefCount(p->pSql);
1472   dbReleaseColumnNames(p);
1473 }
1474 
1475 /*
1476 ** Return a pointer to a Tcl_Obj structure with ref-count 0 that contains
1477 ** the value for the iCol'th column of the row currently pointed to by
1478 ** the DbEvalContext structure passed as the first argument.
1479 */
1480 static Tcl_Obj *dbEvalColumnValue(DbEvalContext *p, int iCol){
1481   sqlite3_stmt *pStmt = p->pPreStmt->pStmt;
1482   switch( sqlite3_column_type(pStmt, iCol) ){
1483     case SQLITE_BLOB: {
1484       int bytes = sqlite3_column_bytes(pStmt, iCol);
1485       const char *zBlob = sqlite3_column_blob(pStmt, iCol);
1486       if( !zBlob ) bytes = 0;
1487       return Tcl_NewByteArrayObj((u8*)zBlob, bytes);
1488     }
1489     case SQLITE_INTEGER: {
1490       sqlite_int64 v = sqlite3_column_int64(pStmt, iCol);
1491       if( v>=-2147483647 && v<=2147483647 ){
1492         return Tcl_NewIntObj((int)v);
1493       }else{
1494         return Tcl_NewWideIntObj(v);
1495       }
1496     }
1497     case SQLITE_FLOAT: {
1498       return Tcl_NewDoubleObj(sqlite3_column_double(pStmt, iCol));
1499     }
1500     case SQLITE_NULL: {
1501       return Tcl_NewStringObj(p->pDb->zNull, -1);
1502     }
1503   }
1504 
1505   return Tcl_NewStringObj((char*)sqlite3_column_text(pStmt, iCol), -1);
1506 }
1507 
1508 /*
1509 ** If using Tcl version 8.6 or greater, use the NR functions to avoid
1510 ** recursive evalution of scripts by the [db eval] and [db trans]
1511 ** commands. Even if the headers used while compiling the extension
1512 ** are 8.6 or newer, the code still tests the Tcl version at runtime.
1513 ** This allows stubs-enabled builds to be used with older Tcl libraries.
1514 */
1515 #if TCL_MAJOR_VERSION>8 || (TCL_MAJOR_VERSION==8 && TCL_MINOR_VERSION>=6)
1516 # define SQLITE_TCL_NRE 1
1517 static int DbUseNre(void){
1518   int major, minor;
1519   Tcl_GetVersion(&major, &minor, 0, 0);
1520   return( (major==8 && minor>=6) || major>8 );
1521 }
1522 #else
1523 /*
1524 ** Compiling using headers earlier than 8.6. In this case NR cannot be
1525 ** used, so DbUseNre() to always return zero. Add #defines for the other
1526 ** Tcl_NRxxx() functions to prevent them from causing compilation errors,
1527 ** even though the only invocations of them are within conditional blocks
1528 ** of the form:
1529 **
1530 **   if( DbUseNre() ) { ... }
1531 */
1532 # define SQLITE_TCL_NRE 0
1533 # define DbUseNre() 0
1534 # define Tcl_NRAddCallback(a,b,c,d,e,f) (void)0
1535 # define Tcl_NREvalObj(a,b,c) 0
1536 # define Tcl_NRCreateCommand(a,b,c,d,e,f) (void)0
1537 #endif
1538 
1539 /*
1540 ** This function is part of the implementation of the command:
1541 **
1542 **   $db eval SQL ?ARRAYNAME? SCRIPT
1543 */
1544 static int DbEvalNextCmd(
1545   ClientData data[],                   /* data[0] is the (DbEvalContext*) */
1546   Tcl_Interp *interp,                  /* Tcl interpreter */
1547   int result                           /* Result so far */
1548 ){
1549   int rc = result;                     /* Return code */
1550 
1551   /* The first element of the data[] array is a pointer to a DbEvalContext
1552   ** structure allocated using Tcl_Alloc(). The second element of data[]
1553   ** is a pointer to a Tcl_Obj containing the script to run for each row
1554   ** returned by the queries encapsulated in data[0]. */
1555   DbEvalContext *p = (DbEvalContext *)data[0];
1556   Tcl_Obj *pScript = (Tcl_Obj *)data[1];
1557   Tcl_Obj *pArray = p->pArray;
1558 
1559   while( (rc==TCL_OK || rc==TCL_CONTINUE) && TCL_OK==(rc = dbEvalStep(p)) ){
1560     int i;
1561     int nCol;
1562     Tcl_Obj **apColName;
1563     dbEvalRowInfo(p, &nCol, &apColName);
1564     for(i=0; i<nCol; i++){
1565       Tcl_Obj *pVal = dbEvalColumnValue(p, i);
1566       if( pArray==0 ){
1567         Tcl_ObjSetVar2(interp, apColName[i], 0, pVal, 0);
1568       }else{
1569         Tcl_ObjSetVar2(interp, pArray, apColName[i], pVal, 0);
1570       }
1571     }
1572 
1573     /* The required interpreter variables are now populated with the data
1574     ** from the current row. If using NRE, schedule callbacks to evaluate
1575     ** script pScript, then to invoke this function again to fetch the next
1576     ** row (or clean up if there is no next row or the script throws an
1577     ** exception). After scheduling the callbacks, return control to the
1578     ** caller.
1579     **
1580     ** If not using NRE, evaluate pScript directly and continue with the
1581     ** next iteration of this while(...) loop.  */
1582     if( DbUseNre() ){
1583       Tcl_NRAddCallback(interp, DbEvalNextCmd, (void*)p, (void*)pScript, 0, 0);
1584       return Tcl_NREvalObj(interp, pScript, 0);
1585     }else{
1586       rc = Tcl_EvalObjEx(interp, pScript, 0);
1587     }
1588   }
1589 
1590   Tcl_DecrRefCount(pScript);
1591   dbEvalFinalize(p);
1592   Tcl_Free((char *)p);
1593 
1594   if( rc==TCL_OK || rc==TCL_BREAK ){
1595     Tcl_ResetResult(interp);
1596     rc = TCL_OK;
1597   }
1598   return rc;
1599 }
1600 
1601 /*
1602 ** The "sqlite" command below creates a new Tcl command for each
1603 ** connection it opens to an SQLite database.  This routine is invoked
1604 ** whenever one of those connection-specific commands is executed
1605 ** in Tcl.  For example, if you run Tcl code like this:
1606 **
1607 **       sqlite3 db1  "my_database"
1608 **       db1 close
1609 **
1610 ** The first command opens a connection to the "my_database" database
1611 ** and calls that connection "db1".  The second command causes this
1612 ** subroutine to be invoked.
1613 */
1614 static int DbObjCmd(void *cd, Tcl_Interp *interp, int objc,Tcl_Obj *const*objv){
1615   SqliteDb *pDb = (SqliteDb*)cd;
1616   int choice;
1617   int rc = TCL_OK;
1618   static const char *DB_strs[] = {
1619     "authorizer",         "backup",            "busy",
1620     "cache",              "changes",           "close",
1621     "collate",            "collation_needed",  "commit_hook",
1622     "complete",           "copy",              "enable_load_extension",
1623     "errorcode",          "eval",              "exists",
1624     "function",           "incrblob",          "interrupt",
1625     "last_insert_rowid",  "nullvalue",         "onecolumn",
1626     "profile",            "progress",          "rekey",
1627     "restore",            "rollback_hook",     "status",
1628     "timeout",            "total_changes",     "trace",
1629     "transaction",        "unlock_notify",     "update_hook",
1630     "version",            "wal_hook",          0
1631   };
1632   enum DB_enum {
1633     DB_AUTHORIZER,        DB_BACKUP,           DB_BUSY,
1634     DB_CACHE,             DB_CHANGES,          DB_CLOSE,
1635     DB_COLLATE,           DB_COLLATION_NEEDED, DB_COMMIT_HOOK,
1636     DB_COMPLETE,          DB_COPY,             DB_ENABLE_LOAD_EXTENSION,
1637     DB_ERRORCODE,         DB_EVAL,             DB_EXISTS,
1638     DB_FUNCTION,          DB_INCRBLOB,         DB_INTERRUPT,
1639     DB_LAST_INSERT_ROWID, DB_NULLVALUE,        DB_ONECOLUMN,
1640     DB_PROFILE,           DB_PROGRESS,         DB_REKEY,
1641     DB_RESTORE,           DB_ROLLBACK_HOOK,    DB_STATUS,
1642     DB_TIMEOUT,           DB_TOTAL_CHANGES,    DB_TRACE,
1643     DB_TRANSACTION,       DB_UNLOCK_NOTIFY,    DB_UPDATE_HOOK,
1644     DB_VERSION,           DB_WAL_HOOK
1645   };
1646   /* don't leave trailing commas on DB_enum, it confuses the AIX xlc compiler */
1647 
1648   if( objc<2 ){
1649     Tcl_WrongNumArgs(interp, 1, objv, "SUBCOMMAND ...");
1650     return TCL_ERROR;
1651   }
1652   if( Tcl_GetIndexFromObj(interp, objv[1], DB_strs, "option", 0, &choice) ){
1653     return TCL_ERROR;
1654   }
1655 
1656   switch( (enum DB_enum)choice ){
1657 
1658   /*    $db authorizer ?CALLBACK?
1659   **
1660   ** Invoke the given callback to authorize each SQL operation as it is
1661   ** compiled.  5 arguments are appended to the callback before it is
1662   ** invoked:
1663   **
1664   **   (1) The authorization type (ex: SQLITE_CREATE_TABLE, SQLITE_INSERT, ...)
1665   **   (2) First descriptive name (depends on authorization type)
1666   **   (3) Second descriptive name
1667   **   (4) Name of the database (ex: "main", "temp")
1668   **   (5) Name of trigger that is doing the access
1669   **
1670   ** The callback should return on of the following strings: SQLITE_OK,
1671   ** SQLITE_IGNORE, or SQLITE_DENY.  Any other return value is an error.
1672   **
1673   ** If this method is invoked with no arguments, the current authorization
1674   ** callback string is returned.
1675   */
1676   case DB_AUTHORIZER: {
1677 #ifdef SQLITE_OMIT_AUTHORIZATION
1678     Tcl_AppendResult(interp, "authorization not available in this build", 0);
1679     return TCL_ERROR;
1680 #else
1681     if( objc>3 ){
1682       Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?");
1683       return TCL_ERROR;
1684     }else if( objc==2 ){
1685       if( pDb->zAuth ){
1686         Tcl_AppendResult(interp, pDb->zAuth, 0);
1687       }
1688     }else{
1689       char *zAuth;
1690       int len;
1691       if( pDb->zAuth ){
1692         Tcl_Free(pDb->zAuth);
1693       }
1694       zAuth = Tcl_GetStringFromObj(objv[2], &len);
1695       if( zAuth && len>0 ){
1696         pDb->zAuth = Tcl_Alloc( len + 1 );
1697         memcpy(pDb->zAuth, zAuth, len+1);
1698       }else{
1699         pDb->zAuth = 0;
1700       }
1701       if( pDb->zAuth ){
1702         pDb->interp = interp;
1703         sqlite3_set_authorizer(pDb->db, auth_callback, pDb);
1704       }else{
1705         sqlite3_set_authorizer(pDb->db, 0, 0);
1706       }
1707     }
1708 #endif
1709     break;
1710   }
1711 
1712   /*    $db backup ?DATABASE? FILENAME
1713   **
1714   ** Open or create a database file named FILENAME.  Transfer the
1715   ** content of local database DATABASE (default: "main") into the
1716   ** FILENAME database.
1717   */
1718   case DB_BACKUP: {
1719     const char *zDestFile;
1720     const char *zSrcDb;
1721     sqlite3 *pDest;
1722     sqlite3_backup *pBackup;
1723 
1724     if( objc==3 ){
1725       zSrcDb = "main";
1726       zDestFile = Tcl_GetString(objv[2]);
1727     }else if( objc==4 ){
1728       zSrcDb = Tcl_GetString(objv[2]);
1729       zDestFile = Tcl_GetString(objv[3]);
1730     }else{
1731       Tcl_WrongNumArgs(interp, 2, objv, "?DATABASE? FILENAME");
1732       return TCL_ERROR;
1733     }
1734     rc = sqlite3_open(zDestFile, &pDest);
1735     if( rc!=SQLITE_OK ){
1736       Tcl_AppendResult(interp, "cannot open target database: ",
1737            sqlite3_errmsg(pDest), (char*)0);
1738       sqlite3_close(pDest);
1739       return TCL_ERROR;
1740     }
1741     pBackup = sqlite3_backup_init(pDest, "main", pDb->db, zSrcDb);
1742     if( pBackup==0 ){
1743       Tcl_AppendResult(interp, "backup failed: ",
1744            sqlite3_errmsg(pDest), (char*)0);
1745       sqlite3_close(pDest);
1746       return TCL_ERROR;
1747     }
1748     while(  (rc = sqlite3_backup_step(pBackup,100))==SQLITE_OK ){}
1749     sqlite3_backup_finish(pBackup);
1750     if( rc==SQLITE_DONE ){
1751       rc = TCL_OK;
1752     }else{
1753       Tcl_AppendResult(interp, "backup failed: ",
1754            sqlite3_errmsg(pDest), (char*)0);
1755       rc = TCL_ERROR;
1756     }
1757     sqlite3_close(pDest);
1758     break;
1759   }
1760 
1761   /*    $db busy ?CALLBACK?
1762   **
1763   ** Invoke the given callback if an SQL statement attempts to open
1764   ** a locked database file.
1765   */
1766   case DB_BUSY: {
1767     if( objc>3 ){
1768       Tcl_WrongNumArgs(interp, 2, objv, "CALLBACK");
1769       return TCL_ERROR;
1770     }else if( objc==2 ){
1771       if( pDb->zBusy ){
1772         Tcl_AppendResult(interp, pDb->zBusy, 0);
1773       }
1774     }else{
1775       char *zBusy;
1776       int len;
1777       if( pDb->zBusy ){
1778         Tcl_Free(pDb->zBusy);
1779       }
1780       zBusy = Tcl_GetStringFromObj(objv[2], &len);
1781       if( zBusy && len>0 ){
1782         pDb->zBusy = Tcl_Alloc( len + 1 );
1783         memcpy(pDb->zBusy, zBusy, len+1);
1784       }else{
1785         pDb->zBusy = 0;
1786       }
1787       if( pDb->zBusy ){
1788         pDb->interp = interp;
1789         sqlite3_busy_handler(pDb->db, DbBusyHandler, pDb);
1790       }else{
1791         sqlite3_busy_handler(pDb->db, 0, 0);
1792       }
1793     }
1794     break;
1795   }
1796 
1797   /*     $db cache flush
1798   **     $db cache size n
1799   **
1800   ** Flush the prepared statement cache, or set the maximum number of
1801   ** cached statements.
1802   */
1803   case DB_CACHE: {
1804     char *subCmd;
1805     int n;
1806 
1807     if( objc<=2 ){
1808       Tcl_WrongNumArgs(interp, 1, objv, "cache option ?arg?");
1809       return TCL_ERROR;
1810     }
1811     subCmd = Tcl_GetStringFromObj( objv[2], 0 );
1812     if( *subCmd=='f' && strcmp(subCmd,"flush")==0 ){
1813       if( objc!=3 ){
1814         Tcl_WrongNumArgs(interp, 2, objv, "flush");
1815         return TCL_ERROR;
1816       }else{
1817         flushStmtCache( pDb );
1818       }
1819     }else if( *subCmd=='s' && strcmp(subCmd,"size")==0 ){
1820       if( objc!=4 ){
1821         Tcl_WrongNumArgs(interp, 2, objv, "size n");
1822         return TCL_ERROR;
1823       }else{
1824         if( TCL_ERROR==Tcl_GetIntFromObj(interp, objv[3], &n) ){
1825           Tcl_AppendResult( interp, "cannot convert \"",
1826                Tcl_GetStringFromObj(objv[3],0), "\" to integer", 0);
1827           return TCL_ERROR;
1828         }else{
1829           if( n<0 ){
1830             flushStmtCache( pDb );
1831             n = 0;
1832           }else if( n>MAX_PREPARED_STMTS ){
1833             n = MAX_PREPARED_STMTS;
1834           }
1835           pDb->maxStmt = n;
1836         }
1837       }
1838     }else{
1839       Tcl_AppendResult( interp, "bad option \"",
1840           Tcl_GetStringFromObj(objv[2],0), "\": must be flush or size", 0);
1841       return TCL_ERROR;
1842     }
1843     break;
1844   }
1845 
1846   /*     $db changes
1847   **
1848   ** Return the number of rows that were modified, inserted, or deleted by
1849   ** the most recent INSERT, UPDATE or DELETE statement, not including
1850   ** any changes made by trigger programs.
1851   */
1852   case DB_CHANGES: {
1853     Tcl_Obj *pResult;
1854     if( objc!=2 ){
1855       Tcl_WrongNumArgs(interp, 2, objv, "");
1856       return TCL_ERROR;
1857     }
1858     pResult = Tcl_GetObjResult(interp);
1859     Tcl_SetIntObj(pResult, sqlite3_changes(pDb->db));
1860     break;
1861   }
1862 
1863   /*    $db close
1864   **
1865   ** Shutdown the database
1866   */
1867   case DB_CLOSE: {
1868     Tcl_DeleteCommand(interp, Tcl_GetStringFromObj(objv[0], 0));
1869     break;
1870   }
1871 
1872   /*
1873   **     $db collate NAME SCRIPT
1874   **
1875   ** Create a new SQL collation function called NAME.  Whenever
1876   ** that function is called, invoke SCRIPT to evaluate the function.
1877   */
1878   case DB_COLLATE: {
1879     SqlCollate *pCollate;
1880     char *zName;
1881     char *zScript;
1882     int nScript;
1883     if( objc!=4 ){
1884       Tcl_WrongNumArgs(interp, 2, objv, "NAME SCRIPT");
1885       return TCL_ERROR;
1886     }
1887     zName = Tcl_GetStringFromObj(objv[2], 0);
1888     zScript = Tcl_GetStringFromObj(objv[3], &nScript);
1889     pCollate = (SqlCollate*)Tcl_Alloc( sizeof(*pCollate) + nScript + 1 );
1890     if( pCollate==0 ) return TCL_ERROR;
1891     pCollate->interp = interp;
1892     pCollate->pNext = pDb->pCollate;
1893     pCollate->zScript = (char*)&pCollate[1];
1894     pDb->pCollate = pCollate;
1895     memcpy(pCollate->zScript, zScript, nScript+1);
1896     if( sqlite3_create_collation(pDb->db, zName, SQLITE_UTF8,
1897         pCollate, tclSqlCollate) ){
1898       Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE);
1899       return TCL_ERROR;
1900     }
1901     break;
1902   }
1903 
1904   /*
1905   **     $db collation_needed SCRIPT
1906   **
1907   ** Create a new SQL collation function called NAME.  Whenever
1908   ** that function is called, invoke SCRIPT to evaluate the function.
1909   */
1910   case DB_COLLATION_NEEDED: {
1911     if( objc!=3 ){
1912       Tcl_WrongNumArgs(interp, 2, objv, "SCRIPT");
1913       return TCL_ERROR;
1914     }
1915     if( pDb->pCollateNeeded ){
1916       Tcl_DecrRefCount(pDb->pCollateNeeded);
1917     }
1918     pDb->pCollateNeeded = Tcl_DuplicateObj(objv[2]);
1919     Tcl_IncrRefCount(pDb->pCollateNeeded);
1920     sqlite3_collation_needed(pDb->db, pDb, tclCollateNeeded);
1921     break;
1922   }
1923 
1924   /*    $db commit_hook ?CALLBACK?
1925   **
1926   ** Invoke the given callback just before committing every SQL transaction.
1927   ** If the callback throws an exception or returns non-zero, then the
1928   ** transaction is aborted.  If CALLBACK is an empty string, the callback
1929   ** is disabled.
1930   */
1931   case DB_COMMIT_HOOK: {
1932     if( objc>3 ){
1933       Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?");
1934       return TCL_ERROR;
1935     }else if( objc==2 ){
1936       if( pDb->zCommit ){
1937         Tcl_AppendResult(interp, pDb->zCommit, 0);
1938       }
1939     }else{
1940       const char *zCommit;
1941       int len;
1942       if( pDb->zCommit ){
1943         Tcl_Free(pDb->zCommit);
1944       }
1945       zCommit = Tcl_GetStringFromObj(objv[2], &len);
1946       if( zCommit && len>0 ){
1947         pDb->zCommit = Tcl_Alloc( len + 1 );
1948         memcpy(pDb->zCommit, zCommit, len+1);
1949       }else{
1950         pDb->zCommit = 0;
1951       }
1952       if( pDb->zCommit ){
1953         pDb->interp = interp;
1954         sqlite3_commit_hook(pDb->db, DbCommitHandler, pDb);
1955       }else{
1956         sqlite3_commit_hook(pDb->db, 0, 0);
1957       }
1958     }
1959     break;
1960   }
1961 
1962   /*    $db complete SQL
1963   **
1964   ** Return TRUE if SQL is a complete SQL statement.  Return FALSE if
1965   ** additional lines of input are needed.  This is similar to the
1966   ** built-in "info complete" command of Tcl.
1967   */
1968   case DB_COMPLETE: {
1969 #ifndef SQLITE_OMIT_COMPLETE
1970     Tcl_Obj *pResult;
1971     int isComplete;
1972     if( objc!=3 ){
1973       Tcl_WrongNumArgs(interp, 2, objv, "SQL");
1974       return TCL_ERROR;
1975     }
1976     isComplete = sqlite3_complete( Tcl_GetStringFromObj(objv[2], 0) );
1977     pResult = Tcl_GetObjResult(interp);
1978     Tcl_SetBooleanObj(pResult, isComplete);
1979 #endif
1980     break;
1981   }
1982 
1983   /*    $db copy conflict-algorithm table filename ?SEPARATOR? ?NULLINDICATOR?
1984   **
1985   ** Copy data into table from filename, optionally using SEPARATOR
1986   ** as column separators.  If a column contains a null string, or the
1987   ** value of NULLINDICATOR, a NULL is inserted for the column.
1988   ** conflict-algorithm is one of the sqlite conflict algorithms:
1989   **    rollback, abort, fail, ignore, replace
1990   ** On success, return the number of lines processed, not necessarily same
1991   ** as 'db changes' due to conflict-algorithm selected.
1992   **
1993   ** This code is basically an implementation/enhancement of
1994   ** the sqlite3 shell.c ".import" command.
1995   **
1996   ** This command usage is equivalent to the sqlite2.x COPY statement,
1997   ** which imports file data into a table using the PostgreSQL COPY file format:
1998   **   $db copy $conflit_algo $table_name $filename \t \\N
1999   */
2000   case DB_COPY: {
2001     char *zTable;               /* Insert data into this table */
2002     char *zFile;                /* The file from which to extract data */
2003     char *zConflict;            /* The conflict algorithm to use */
2004     sqlite3_stmt *pStmt;        /* A statement */
2005     int nCol;                   /* Number of columns in the table */
2006     int nByte;                  /* Number of bytes in an SQL string */
2007     int i, j;                   /* Loop counters */
2008     int nSep;                   /* Number of bytes in zSep[] */
2009     int nNull;                  /* Number of bytes in zNull[] */
2010     char *zSql;                 /* An SQL statement */
2011     char *zLine;                /* A single line of input from the file */
2012     char **azCol;               /* zLine[] broken up into columns */
2013     const char *zCommit;        /* How to commit changes */
2014     FILE *in;                   /* The input file */
2015     int lineno = 0;             /* Line number of input file */
2016     char zLineNum[80];          /* Line number print buffer */
2017     Tcl_Obj *pResult;           /* interp result */
2018 
2019     const char *zSep;
2020     const char *zNull;
2021     if( objc<5 || objc>7 ){
2022       Tcl_WrongNumArgs(interp, 2, objv,
2023          "CONFLICT-ALGORITHM TABLE FILENAME ?SEPARATOR? ?NULLINDICATOR?");
2024       return TCL_ERROR;
2025     }
2026     if( objc>=6 ){
2027       zSep = Tcl_GetStringFromObj(objv[5], 0);
2028     }else{
2029       zSep = "\t";
2030     }
2031     if( objc>=7 ){
2032       zNull = Tcl_GetStringFromObj(objv[6], 0);
2033     }else{
2034       zNull = "";
2035     }
2036     zConflict = Tcl_GetStringFromObj(objv[2], 0);
2037     zTable = Tcl_GetStringFromObj(objv[3], 0);
2038     zFile = Tcl_GetStringFromObj(objv[4], 0);
2039     nSep = strlen30(zSep);
2040     nNull = strlen30(zNull);
2041     if( nSep==0 ){
2042       Tcl_AppendResult(interp,"Error: non-null separator required for copy",0);
2043       return TCL_ERROR;
2044     }
2045     if(strcmp(zConflict, "rollback") != 0 &&
2046        strcmp(zConflict, "abort"   ) != 0 &&
2047        strcmp(zConflict, "fail"    ) != 0 &&
2048        strcmp(zConflict, "ignore"  ) != 0 &&
2049        strcmp(zConflict, "replace" ) != 0 ) {
2050       Tcl_AppendResult(interp, "Error: \"", zConflict,
2051             "\", conflict-algorithm must be one of: rollback, "
2052             "abort, fail, ignore, or replace", 0);
2053       return TCL_ERROR;
2054     }
2055     zSql = sqlite3_mprintf("SELECT * FROM '%q'", zTable);
2056     if( zSql==0 ){
2057       Tcl_AppendResult(interp, "Error: no such table: ", zTable, 0);
2058       return TCL_ERROR;
2059     }
2060     nByte = strlen30(zSql);
2061     rc = sqlite3_prepare(pDb->db, zSql, -1, &pStmt, 0);
2062     sqlite3_free(zSql);
2063     if( rc ){
2064       Tcl_AppendResult(interp, "Error: ", sqlite3_errmsg(pDb->db), 0);
2065       nCol = 0;
2066     }else{
2067       nCol = sqlite3_column_count(pStmt);
2068     }
2069     sqlite3_finalize(pStmt);
2070     if( nCol==0 ) {
2071       return TCL_ERROR;
2072     }
2073     zSql = malloc( nByte + 50 + nCol*2 );
2074     if( zSql==0 ) {
2075       Tcl_AppendResult(interp, "Error: can't malloc()", 0);
2076       return TCL_ERROR;
2077     }
2078     sqlite3_snprintf(nByte+50, zSql, "INSERT OR %q INTO '%q' VALUES(?",
2079          zConflict, zTable);
2080     j = strlen30(zSql);
2081     for(i=1; i<nCol; i++){
2082       zSql[j++] = ',';
2083       zSql[j++] = '?';
2084     }
2085     zSql[j++] = ')';
2086     zSql[j] = 0;
2087     rc = sqlite3_prepare(pDb->db, zSql, -1, &pStmt, 0);
2088     free(zSql);
2089     if( rc ){
2090       Tcl_AppendResult(interp, "Error: ", sqlite3_errmsg(pDb->db), 0);
2091       sqlite3_finalize(pStmt);
2092       return TCL_ERROR;
2093     }
2094     in = fopen(zFile, "rb");
2095     if( in==0 ){
2096       Tcl_AppendResult(interp, "Error: cannot open file: ", zFile, NULL);
2097       sqlite3_finalize(pStmt);
2098       return TCL_ERROR;
2099     }
2100     azCol = malloc( sizeof(azCol[0])*(nCol+1) );
2101     if( azCol==0 ) {
2102       Tcl_AppendResult(interp, "Error: can't malloc()", 0);
2103       fclose(in);
2104       return TCL_ERROR;
2105     }
2106     (void)sqlite3_exec(pDb->db, "BEGIN", 0, 0, 0);
2107     zCommit = "COMMIT";
2108     while( (zLine = local_getline(0, in))!=0 ){
2109       char *z;
2110       lineno++;
2111       azCol[0] = zLine;
2112       for(i=0, z=zLine; *z; z++){
2113         if( *z==zSep[0] && strncmp(z, zSep, nSep)==0 ){
2114           *z = 0;
2115           i++;
2116           if( i<nCol ){
2117             azCol[i] = &z[nSep];
2118             z += nSep-1;
2119           }
2120         }
2121       }
2122       if( i+1!=nCol ){
2123         char *zErr;
2124         int nErr = strlen30(zFile) + 200;
2125         zErr = malloc(nErr);
2126         if( zErr ){
2127           sqlite3_snprintf(nErr, zErr,
2128              "Error: %s line %d: expected %d columns of data but found %d",
2129              zFile, lineno, nCol, i+1);
2130           Tcl_AppendResult(interp, zErr, 0);
2131           free(zErr);
2132         }
2133         zCommit = "ROLLBACK";
2134         break;
2135       }
2136       for(i=0; i<nCol; i++){
2137         /* check for null data, if so, bind as null */
2138         if( (nNull>0 && strcmp(azCol[i], zNull)==0)
2139           || strlen30(azCol[i])==0
2140         ){
2141           sqlite3_bind_null(pStmt, i+1);
2142         }else{
2143           sqlite3_bind_text(pStmt, i+1, azCol[i], -1, SQLITE_STATIC);
2144         }
2145       }
2146       sqlite3_step(pStmt);
2147       rc = sqlite3_reset(pStmt);
2148       free(zLine);
2149       if( rc!=SQLITE_OK ){
2150         Tcl_AppendResult(interp,"Error: ", sqlite3_errmsg(pDb->db), 0);
2151         zCommit = "ROLLBACK";
2152         break;
2153       }
2154     }
2155     free(azCol);
2156     fclose(in);
2157     sqlite3_finalize(pStmt);
2158     (void)sqlite3_exec(pDb->db, zCommit, 0, 0, 0);
2159 
2160     if( zCommit[0] == 'C' ){
2161       /* success, set result as number of lines processed */
2162       pResult = Tcl_GetObjResult(interp);
2163       Tcl_SetIntObj(pResult, lineno);
2164       rc = TCL_OK;
2165     }else{
2166       /* failure, append lineno where failed */
2167       sqlite3_snprintf(sizeof(zLineNum), zLineNum,"%d",lineno);
2168       Tcl_AppendResult(interp,", failed while processing line: ",zLineNum,0);
2169       rc = TCL_ERROR;
2170     }
2171     break;
2172   }
2173 
2174   /*
2175   **    $db enable_load_extension BOOLEAN
2176   **
2177   ** Turn the extension loading feature on or off.  It if off by
2178   ** default.
2179   */
2180   case DB_ENABLE_LOAD_EXTENSION: {
2181 #ifndef SQLITE_OMIT_LOAD_EXTENSION
2182     int onoff;
2183     if( objc!=3 ){
2184       Tcl_WrongNumArgs(interp, 2, objv, "BOOLEAN");
2185       return TCL_ERROR;
2186     }
2187     if( Tcl_GetBooleanFromObj(interp, objv[2], &onoff) ){
2188       return TCL_ERROR;
2189     }
2190     sqlite3_enable_load_extension(pDb->db, onoff);
2191     break;
2192 #else
2193     Tcl_AppendResult(interp, "extension loading is turned off at compile-time",
2194                      0);
2195     return TCL_ERROR;
2196 #endif
2197   }
2198 
2199   /*
2200   **    $db errorcode
2201   **
2202   ** Return the numeric error code that was returned by the most recent
2203   ** call to sqlite3_exec().
2204   */
2205   case DB_ERRORCODE: {
2206     Tcl_SetObjResult(interp, Tcl_NewIntObj(sqlite3_errcode(pDb->db)));
2207     break;
2208   }
2209 
2210   /*
2211   **    $db exists $sql
2212   **    $db onecolumn $sql
2213   **
2214   ** The onecolumn method is the equivalent of:
2215   **     lindex [$db eval $sql] 0
2216   */
2217   case DB_EXISTS:
2218   case DB_ONECOLUMN: {
2219     DbEvalContext sEval;
2220     if( objc!=3 ){
2221       Tcl_WrongNumArgs(interp, 2, objv, "SQL");
2222       return TCL_ERROR;
2223     }
2224 
2225     dbEvalInit(&sEval, pDb, objv[2], 0);
2226     rc = dbEvalStep(&sEval);
2227     if( choice==DB_ONECOLUMN ){
2228       if( rc==TCL_OK ){
2229         Tcl_SetObjResult(interp, dbEvalColumnValue(&sEval, 0));
2230       }else if( rc==TCL_BREAK ){
2231         Tcl_ResetResult(interp);
2232       }
2233     }else if( rc==TCL_BREAK || rc==TCL_OK ){
2234       Tcl_SetObjResult(interp, Tcl_NewBooleanObj(rc==TCL_OK));
2235     }
2236     dbEvalFinalize(&sEval);
2237 
2238     if( rc==TCL_BREAK ){
2239       rc = TCL_OK;
2240     }
2241     break;
2242   }
2243 
2244   /*
2245   **    $db eval $sql ?array? ?{  ...code... }?
2246   **
2247   ** The SQL statement in $sql is evaluated.  For each row, the values are
2248   ** placed in elements of the array named "array" and ...code... is executed.
2249   ** If "array" and "code" are omitted, then no callback is every invoked.
2250   ** If "array" is an empty string, then the values are placed in variables
2251   ** that have the same name as the fields extracted by the query.
2252   */
2253   case DB_EVAL: {
2254     if( objc<3 || objc>5 ){
2255       Tcl_WrongNumArgs(interp, 2, objv, "SQL ?ARRAY-NAME? ?SCRIPT?");
2256       return TCL_ERROR;
2257     }
2258 
2259     if( objc==3 ){
2260       DbEvalContext sEval;
2261       Tcl_Obj *pRet = Tcl_NewObj();
2262       Tcl_IncrRefCount(pRet);
2263       dbEvalInit(&sEval, pDb, objv[2], 0);
2264       while( TCL_OK==(rc = dbEvalStep(&sEval)) ){
2265         int i;
2266         int nCol;
2267         dbEvalRowInfo(&sEval, &nCol, 0);
2268         for(i=0; i<nCol; i++){
2269           Tcl_ListObjAppendElement(interp, pRet, dbEvalColumnValue(&sEval, i));
2270         }
2271       }
2272       dbEvalFinalize(&sEval);
2273       if( rc==TCL_BREAK ){
2274         Tcl_SetObjResult(interp, pRet);
2275         rc = TCL_OK;
2276       }
2277       Tcl_DecrRefCount(pRet);
2278     }else{
2279       ClientData cd[2];
2280       DbEvalContext *p;
2281       Tcl_Obj *pArray = 0;
2282       Tcl_Obj *pScript;
2283 
2284       if( objc==5 && *(char *)Tcl_GetString(objv[3]) ){
2285         pArray = objv[3];
2286       }
2287       pScript = objv[objc-1];
2288       Tcl_IncrRefCount(pScript);
2289 
2290       p = (DbEvalContext *)Tcl_Alloc(sizeof(DbEvalContext));
2291       dbEvalInit(p, pDb, objv[2], pArray);
2292 
2293       cd[0] = (void *)p;
2294       cd[1] = (void *)pScript;
2295       rc = DbEvalNextCmd(cd, interp, TCL_OK);
2296     }
2297     break;
2298   }
2299 
2300   /*
2301   **     $db function NAME [-argcount N] SCRIPT
2302   **
2303   ** Create a new SQL function called NAME.  Whenever that function is
2304   ** called, invoke SCRIPT to evaluate the function.
2305   */
2306   case DB_FUNCTION: {
2307     SqlFunc *pFunc;
2308     Tcl_Obj *pScript;
2309     char *zName;
2310     int nArg = -1;
2311     if( objc==6 ){
2312       const char *z = Tcl_GetString(objv[3]);
2313       int n = strlen30(z);
2314       if( n>2 && strncmp(z, "-argcount",n)==0 ){
2315         if( Tcl_GetIntFromObj(interp, objv[4], &nArg) ) return TCL_ERROR;
2316         if( nArg<0 ){
2317           Tcl_AppendResult(interp, "number of arguments must be non-negative",
2318                            (char*)0);
2319           return TCL_ERROR;
2320         }
2321       }
2322       pScript = objv[5];
2323     }else if( objc!=4 ){
2324       Tcl_WrongNumArgs(interp, 2, objv, "NAME [-argcount N] SCRIPT");
2325       return TCL_ERROR;
2326     }else{
2327       pScript = objv[3];
2328     }
2329     zName = Tcl_GetStringFromObj(objv[2], 0);
2330     pFunc = findSqlFunc(pDb, zName);
2331     if( pFunc==0 ) return TCL_ERROR;
2332     if( pFunc->pScript ){
2333       Tcl_DecrRefCount(pFunc->pScript);
2334     }
2335     pFunc->pScript = pScript;
2336     Tcl_IncrRefCount(pScript);
2337     pFunc->useEvalObjv = safeToUseEvalObjv(interp, pScript);
2338     rc = sqlite3_create_function(pDb->db, zName, nArg, SQLITE_UTF8,
2339         pFunc, tclSqlFunc, 0, 0);
2340     if( rc!=SQLITE_OK ){
2341       rc = TCL_ERROR;
2342       Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE);
2343     }
2344     break;
2345   }
2346 
2347   /*
2348   **     $db incrblob ?-readonly? ?DB? TABLE COLUMN ROWID
2349   */
2350   case DB_INCRBLOB: {
2351 #ifdef SQLITE_OMIT_INCRBLOB
2352     Tcl_AppendResult(interp, "incrblob not available in this build", 0);
2353     return TCL_ERROR;
2354 #else
2355     int isReadonly = 0;
2356     const char *zDb = "main";
2357     const char *zTable;
2358     const char *zColumn;
2359     Tcl_WideInt iRow;
2360 
2361     /* Check for the -readonly option */
2362     if( objc>3 && strcmp(Tcl_GetString(objv[2]), "-readonly")==0 ){
2363       isReadonly = 1;
2364     }
2365 
2366     if( objc!=(5+isReadonly) && objc!=(6+isReadonly) ){
2367       Tcl_WrongNumArgs(interp, 2, objv, "?-readonly? ?DB? TABLE COLUMN ROWID");
2368       return TCL_ERROR;
2369     }
2370 
2371     if( objc==(6+isReadonly) ){
2372       zDb = Tcl_GetString(objv[2]);
2373     }
2374     zTable = Tcl_GetString(objv[objc-3]);
2375     zColumn = Tcl_GetString(objv[objc-2]);
2376     rc = Tcl_GetWideIntFromObj(interp, objv[objc-1], &iRow);
2377 
2378     if( rc==TCL_OK ){
2379       rc = createIncrblobChannel(
2380           interp, pDb, zDb, zTable, zColumn, iRow, isReadonly
2381       );
2382     }
2383 #endif
2384     break;
2385   }
2386 
2387   /*
2388   **     $db interrupt
2389   **
2390   ** Interrupt the execution of the inner-most SQL interpreter.  This
2391   ** causes the SQL statement to return an error of SQLITE_INTERRUPT.
2392   */
2393   case DB_INTERRUPT: {
2394     sqlite3_interrupt(pDb->db);
2395     break;
2396   }
2397 
2398   /*
2399   **     $db nullvalue ?STRING?
2400   **
2401   ** Change text used when a NULL comes back from the database. If ?STRING?
2402   ** is not present, then the current string used for NULL is returned.
2403   ** If STRING is present, then STRING is returned.
2404   **
2405   */
2406   case DB_NULLVALUE: {
2407     if( objc!=2 && objc!=3 ){
2408       Tcl_WrongNumArgs(interp, 2, objv, "NULLVALUE");
2409       return TCL_ERROR;
2410     }
2411     if( objc==3 ){
2412       int len;
2413       char *zNull = Tcl_GetStringFromObj(objv[2], &len);
2414       if( pDb->zNull ){
2415         Tcl_Free(pDb->zNull);
2416       }
2417       if( zNull && len>0 ){
2418         pDb->zNull = Tcl_Alloc( len + 1 );
2419         memcpy(pDb->zNull, zNull, len);
2420         pDb->zNull[len] = '\0';
2421       }else{
2422         pDb->zNull = 0;
2423       }
2424     }
2425     Tcl_SetObjResult(interp, Tcl_NewStringObj(pDb->zNull, -1));
2426     break;
2427   }
2428 
2429   /*
2430   **     $db last_insert_rowid
2431   **
2432   ** Return an integer which is the ROWID for the most recent insert.
2433   */
2434   case DB_LAST_INSERT_ROWID: {
2435     Tcl_Obj *pResult;
2436     Tcl_WideInt rowid;
2437     if( objc!=2 ){
2438       Tcl_WrongNumArgs(interp, 2, objv, "");
2439       return TCL_ERROR;
2440     }
2441     rowid = sqlite3_last_insert_rowid(pDb->db);
2442     pResult = Tcl_GetObjResult(interp);
2443     Tcl_SetWideIntObj(pResult, rowid);
2444     break;
2445   }
2446 
2447   /*
2448   ** The DB_ONECOLUMN method is implemented together with DB_EXISTS.
2449   */
2450 
2451   /*    $db progress ?N CALLBACK?
2452   **
2453   ** Invoke the given callback every N virtual machine opcodes while executing
2454   ** queries.
2455   */
2456   case DB_PROGRESS: {
2457     if( objc==2 ){
2458       if( pDb->zProgress ){
2459         Tcl_AppendResult(interp, pDb->zProgress, 0);
2460       }
2461     }else if( objc==4 ){
2462       char *zProgress;
2463       int len;
2464       int N;
2465       if( TCL_OK!=Tcl_GetIntFromObj(interp, objv[2], &N) ){
2466         return TCL_ERROR;
2467       };
2468       if( pDb->zProgress ){
2469         Tcl_Free(pDb->zProgress);
2470       }
2471       zProgress = Tcl_GetStringFromObj(objv[3], &len);
2472       if( zProgress && len>0 ){
2473         pDb->zProgress = Tcl_Alloc( len + 1 );
2474         memcpy(pDb->zProgress, zProgress, len+1);
2475       }else{
2476         pDb->zProgress = 0;
2477       }
2478 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK
2479       if( pDb->zProgress ){
2480         pDb->interp = interp;
2481         sqlite3_progress_handler(pDb->db, N, DbProgressHandler, pDb);
2482       }else{
2483         sqlite3_progress_handler(pDb->db, 0, 0, 0);
2484       }
2485 #endif
2486     }else{
2487       Tcl_WrongNumArgs(interp, 2, objv, "N CALLBACK");
2488       return TCL_ERROR;
2489     }
2490     break;
2491   }
2492 
2493   /*    $db profile ?CALLBACK?
2494   **
2495   ** Make arrangements to invoke the CALLBACK routine after each SQL statement
2496   ** that has run.  The text of the SQL and the amount of elapse time are
2497   ** appended to CALLBACK before the script is run.
2498   */
2499   case DB_PROFILE: {
2500     if( objc>3 ){
2501       Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?");
2502       return TCL_ERROR;
2503     }else if( objc==2 ){
2504       if( pDb->zProfile ){
2505         Tcl_AppendResult(interp, pDb->zProfile, 0);
2506       }
2507     }else{
2508       char *zProfile;
2509       int len;
2510       if( pDb->zProfile ){
2511         Tcl_Free(pDb->zProfile);
2512       }
2513       zProfile = Tcl_GetStringFromObj(objv[2], &len);
2514       if( zProfile && len>0 ){
2515         pDb->zProfile = Tcl_Alloc( len + 1 );
2516         memcpy(pDb->zProfile, zProfile, len+1);
2517       }else{
2518         pDb->zProfile = 0;
2519       }
2520 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT)
2521       if( pDb->zProfile ){
2522         pDb->interp = interp;
2523         sqlite3_profile(pDb->db, DbProfileHandler, pDb);
2524       }else{
2525         sqlite3_profile(pDb->db, 0, 0);
2526       }
2527 #endif
2528     }
2529     break;
2530   }
2531 
2532   /*
2533   **     $db rekey KEY
2534   **
2535   ** Change the encryption key on the currently open database.
2536   */
2537   case DB_REKEY: {
2538 #ifdef SQLITE_HAS_CODEC
2539     int nKey;
2540     void *pKey;
2541 #endif
2542     if( objc!=3 ){
2543       Tcl_WrongNumArgs(interp, 2, objv, "KEY");
2544       return TCL_ERROR;
2545     }
2546 #ifdef SQLITE_HAS_CODEC
2547     pKey = Tcl_GetByteArrayFromObj(objv[2], &nKey);
2548     rc = sqlite3_rekey(pDb->db, pKey, nKey);
2549     if( rc ){
2550       Tcl_AppendResult(interp, sqlite3_errstr(rc), 0);
2551       rc = TCL_ERROR;
2552     }
2553 #endif
2554     break;
2555   }
2556 
2557   /*    $db restore ?DATABASE? FILENAME
2558   **
2559   ** Open a database file named FILENAME.  Transfer the content
2560   ** of FILENAME into the local database DATABASE (default: "main").
2561   */
2562   case DB_RESTORE: {
2563     const char *zSrcFile;
2564     const char *zDestDb;
2565     sqlite3 *pSrc;
2566     sqlite3_backup *pBackup;
2567     int nTimeout = 0;
2568 
2569     if( objc==3 ){
2570       zDestDb = "main";
2571       zSrcFile = Tcl_GetString(objv[2]);
2572     }else if( objc==4 ){
2573       zDestDb = Tcl_GetString(objv[2]);
2574       zSrcFile = Tcl_GetString(objv[3]);
2575     }else{
2576       Tcl_WrongNumArgs(interp, 2, objv, "?DATABASE? FILENAME");
2577       return TCL_ERROR;
2578     }
2579     rc = sqlite3_open_v2(zSrcFile, &pSrc, SQLITE_OPEN_READONLY, 0);
2580     if( rc!=SQLITE_OK ){
2581       Tcl_AppendResult(interp, "cannot open source database: ",
2582            sqlite3_errmsg(pSrc), (char*)0);
2583       sqlite3_close(pSrc);
2584       return TCL_ERROR;
2585     }
2586     pBackup = sqlite3_backup_init(pDb->db, zDestDb, pSrc, "main");
2587     if( pBackup==0 ){
2588       Tcl_AppendResult(interp, "restore failed: ",
2589            sqlite3_errmsg(pDb->db), (char*)0);
2590       sqlite3_close(pSrc);
2591       return TCL_ERROR;
2592     }
2593     while( (rc = sqlite3_backup_step(pBackup,100))==SQLITE_OK
2594               || rc==SQLITE_BUSY ){
2595       if( rc==SQLITE_BUSY ){
2596         if( nTimeout++ >= 3 ) break;
2597         sqlite3_sleep(100);
2598       }
2599     }
2600     sqlite3_backup_finish(pBackup);
2601     if( rc==SQLITE_DONE ){
2602       rc = TCL_OK;
2603     }else if( rc==SQLITE_BUSY || rc==SQLITE_LOCKED ){
2604       Tcl_AppendResult(interp, "restore failed: source database busy",
2605                        (char*)0);
2606       rc = TCL_ERROR;
2607     }else{
2608       Tcl_AppendResult(interp, "restore failed: ",
2609            sqlite3_errmsg(pDb->db), (char*)0);
2610       rc = TCL_ERROR;
2611     }
2612     sqlite3_close(pSrc);
2613     break;
2614   }
2615 
2616   /*
2617   **     $db status (step|sort|autoindex)
2618   **
2619   ** Display SQLITE_STMTSTATUS_FULLSCAN_STEP or
2620   ** SQLITE_STMTSTATUS_SORT for the most recent eval.
2621   */
2622   case DB_STATUS: {
2623     int v;
2624     const char *zOp;
2625     if( objc!=3 ){
2626       Tcl_WrongNumArgs(interp, 2, objv, "(step|sort|autoindex)");
2627       return TCL_ERROR;
2628     }
2629     zOp = Tcl_GetString(objv[2]);
2630     if( strcmp(zOp, "step")==0 ){
2631       v = pDb->nStep;
2632     }else if( strcmp(zOp, "sort")==0 ){
2633       v = pDb->nSort;
2634     }else if( strcmp(zOp, "autoindex")==0 ){
2635       v = pDb->nIndex;
2636     }else{
2637       Tcl_AppendResult(interp,
2638             "bad argument: should be autoindex, step, or sort",
2639             (char*)0);
2640       return TCL_ERROR;
2641     }
2642     Tcl_SetObjResult(interp, Tcl_NewIntObj(v));
2643     break;
2644   }
2645 
2646   /*
2647   **     $db timeout MILLESECONDS
2648   **
2649   ** Delay for the number of milliseconds specified when a file is locked.
2650   */
2651   case DB_TIMEOUT: {
2652     int ms;
2653     if( objc!=3 ){
2654       Tcl_WrongNumArgs(interp, 2, objv, "MILLISECONDS");
2655       return TCL_ERROR;
2656     }
2657     if( Tcl_GetIntFromObj(interp, objv[2], &ms) ) return TCL_ERROR;
2658     sqlite3_busy_timeout(pDb->db, ms);
2659     break;
2660   }
2661 
2662   /*
2663   **     $db total_changes
2664   **
2665   ** Return the number of rows that were modified, inserted, or deleted
2666   ** since the database handle was created.
2667   */
2668   case DB_TOTAL_CHANGES: {
2669     Tcl_Obj *pResult;
2670     if( objc!=2 ){
2671       Tcl_WrongNumArgs(interp, 2, objv, "");
2672       return TCL_ERROR;
2673     }
2674     pResult = Tcl_GetObjResult(interp);
2675     Tcl_SetIntObj(pResult, sqlite3_total_changes(pDb->db));
2676     break;
2677   }
2678 
2679   /*    $db trace ?CALLBACK?
2680   **
2681   ** Make arrangements to invoke the CALLBACK routine for each SQL statement
2682   ** that is executed.  The text of the SQL is appended to CALLBACK before
2683   ** it is executed.
2684   */
2685   case DB_TRACE: {
2686     if( objc>3 ){
2687       Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?");
2688       return TCL_ERROR;
2689     }else if( objc==2 ){
2690       if( pDb->zTrace ){
2691         Tcl_AppendResult(interp, pDb->zTrace, 0);
2692       }
2693     }else{
2694       char *zTrace;
2695       int len;
2696       if( pDb->zTrace ){
2697         Tcl_Free(pDb->zTrace);
2698       }
2699       zTrace = Tcl_GetStringFromObj(objv[2], &len);
2700       if( zTrace && len>0 ){
2701         pDb->zTrace = Tcl_Alloc( len + 1 );
2702         memcpy(pDb->zTrace, zTrace, len+1);
2703       }else{
2704         pDb->zTrace = 0;
2705       }
2706 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT)
2707       if( pDb->zTrace ){
2708         pDb->interp = interp;
2709         sqlite3_trace(pDb->db, DbTraceHandler, pDb);
2710       }else{
2711         sqlite3_trace(pDb->db, 0, 0);
2712       }
2713 #endif
2714     }
2715     break;
2716   }
2717 
2718   /*    $db transaction [-deferred|-immediate|-exclusive] SCRIPT
2719   **
2720   ** Start a new transaction (if we are not already in the midst of a
2721   ** transaction) and execute the TCL script SCRIPT.  After SCRIPT
2722   ** completes, either commit the transaction or roll it back if SCRIPT
2723   ** throws an exception.  Or if no new transation was started, do nothing.
2724   ** pass the exception on up the stack.
2725   **
2726   ** This command was inspired by Dave Thomas's talk on Ruby at the
2727   ** 2005 O'Reilly Open Source Convention (OSCON).
2728   */
2729   case DB_TRANSACTION: {
2730     Tcl_Obj *pScript;
2731     const char *zBegin = "SAVEPOINT _tcl_transaction";
2732     if( objc!=3 && objc!=4 ){
2733       Tcl_WrongNumArgs(interp, 2, objv, "[TYPE] SCRIPT");
2734       return TCL_ERROR;
2735     }
2736 
2737     if( pDb->nTransaction==0 && objc==4 ){
2738       static const char *TTYPE_strs[] = {
2739         "deferred",   "exclusive",  "immediate", 0
2740       };
2741       enum TTYPE_enum {
2742         TTYPE_DEFERRED, TTYPE_EXCLUSIVE, TTYPE_IMMEDIATE
2743       };
2744       int ttype;
2745       if( Tcl_GetIndexFromObj(interp, objv[2], TTYPE_strs, "transaction type",
2746                               0, &ttype) ){
2747         return TCL_ERROR;
2748       }
2749       switch( (enum TTYPE_enum)ttype ){
2750         case TTYPE_DEFERRED:    /* no-op */;                 break;
2751         case TTYPE_EXCLUSIVE:   zBegin = "BEGIN EXCLUSIVE";  break;
2752         case TTYPE_IMMEDIATE:   zBegin = "BEGIN IMMEDIATE";  break;
2753       }
2754     }
2755     pScript = objv[objc-1];
2756 
2757     /* Run the SQLite BEGIN command to open a transaction or savepoint. */
2758     pDb->disableAuth++;
2759     rc = sqlite3_exec(pDb->db, zBegin, 0, 0, 0);
2760     pDb->disableAuth--;
2761     if( rc!=SQLITE_OK ){
2762       Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), 0);
2763       return TCL_ERROR;
2764     }
2765     pDb->nTransaction++;
2766 
2767     /* If using NRE, schedule a callback to invoke the script pScript, then
2768     ** a second callback to commit (or rollback) the transaction or savepoint
2769     ** opened above. If not using NRE, evaluate the script directly, then
2770     ** call function DbTransPostCmd() to commit (or rollback) the transaction
2771     ** or savepoint.  */
2772     if( DbUseNre() ){
2773       Tcl_NRAddCallback(interp, DbTransPostCmd, cd, 0, 0, 0);
2774       (void)Tcl_NREvalObj(interp, pScript, 0);
2775     }else{
2776       rc = DbTransPostCmd(&cd, interp, Tcl_EvalObjEx(interp, pScript, 0));
2777     }
2778     break;
2779   }
2780 
2781   /*
2782   **    $db unlock_notify ?script?
2783   */
2784   case DB_UNLOCK_NOTIFY: {
2785 #ifndef SQLITE_ENABLE_UNLOCK_NOTIFY
2786     Tcl_AppendResult(interp, "unlock_notify not available in this build", 0);
2787     rc = TCL_ERROR;
2788 #else
2789     if( objc!=2 && objc!=3 ){
2790       Tcl_WrongNumArgs(interp, 2, objv, "?SCRIPT?");
2791       rc = TCL_ERROR;
2792     }else{
2793       void (*xNotify)(void **, int) = 0;
2794       void *pNotifyArg = 0;
2795 
2796       if( pDb->pUnlockNotify ){
2797         Tcl_DecrRefCount(pDb->pUnlockNotify);
2798         pDb->pUnlockNotify = 0;
2799       }
2800 
2801       if( objc==3 ){
2802         xNotify = DbUnlockNotify;
2803         pNotifyArg = (void *)pDb;
2804         pDb->pUnlockNotify = objv[2];
2805         Tcl_IncrRefCount(pDb->pUnlockNotify);
2806       }
2807 
2808       if( sqlite3_unlock_notify(pDb->db, xNotify, pNotifyArg) ){
2809         Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), 0);
2810         rc = TCL_ERROR;
2811       }
2812     }
2813 #endif
2814     break;
2815   }
2816 
2817   /*
2818   **    $db wal_hook ?script?
2819   **    $db update_hook ?script?
2820   **    $db rollback_hook ?script?
2821   */
2822   case DB_WAL_HOOK:
2823   case DB_UPDATE_HOOK:
2824   case DB_ROLLBACK_HOOK: {
2825 
2826     /* set ppHook to point at pUpdateHook or pRollbackHook, depending on
2827     ** whether [$db update_hook] or [$db rollback_hook] was invoked.
2828     */
2829     Tcl_Obj **ppHook;
2830     if( choice==DB_UPDATE_HOOK ){
2831       ppHook = &pDb->pUpdateHook;
2832     }else if( choice==DB_WAL_HOOK ){
2833       ppHook = &pDb->pWalHook;
2834     }else{
2835       ppHook = &pDb->pRollbackHook;
2836     }
2837 
2838     if( objc!=2 && objc!=3 ){
2839        Tcl_WrongNumArgs(interp, 2, objv, "?SCRIPT?");
2840        return TCL_ERROR;
2841     }
2842     if( *ppHook ){
2843       Tcl_SetObjResult(interp, *ppHook);
2844       if( objc==3 ){
2845         Tcl_DecrRefCount(*ppHook);
2846         *ppHook = 0;
2847       }
2848     }
2849     if( objc==3 ){
2850       assert( !(*ppHook) );
2851       if( Tcl_GetCharLength(objv[2])>0 ){
2852         *ppHook = objv[2];
2853         Tcl_IncrRefCount(*ppHook);
2854       }
2855     }
2856 
2857     sqlite3_update_hook(pDb->db, (pDb->pUpdateHook?DbUpdateHandler:0), pDb);
2858     sqlite3_rollback_hook(pDb->db,(pDb->pRollbackHook?DbRollbackHandler:0),pDb);
2859     sqlite3_wal_hook(pDb->db,(pDb->pWalHook?DbWalHandler:0),pDb);
2860 
2861     break;
2862   }
2863 
2864   /*    $db version
2865   **
2866   ** Return the version string for this database.
2867   */
2868   case DB_VERSION: {
2869     Tcl_SetResult(interp, (char *)sqlite3_libversion(), TCL_STATIC);
2870     break;
2871   }
2872 
2873 
2874   } /* End of the SWITCH statement */
2875   return rc;
2876 }
2877 
2878 #if SQLITE_TCL_NRE
2879 /*
2880 ** Adaptor that provides an objCmd interface to the NRE-enabled
2881 ** interface implementation.
2882 */
2883 static int DbObjCmdAdaptor(
2884   void *cd,
2885   Tcl_Interp *interp,
2886   int objc,
2887   Tcl_Obj *const*objv
2888 ){
2889   return Tcl_NRCallObjProc(interp, DbObjCmd, cd, objc, objv);
2890 }
2891 #endif /* SQLITE_TCL_NRE */
2892 
2893 /*
2894 **   sqlite3 DBNAME FILENAME ?-vfs VFSNAME? ?-key KEY? ?-readonly BOOLEAN?
2895 **                           ?-create BOOLEAN? ?-nomutex BOOLEAN?
2896 **
2897 ** This is the main Tcl command.  When the "sqlite" Tcl command is
2898 ** invoked, this routine runs to process that command.
2899 **
2900 ** The first argument, DBNAME, is an arbitrary name for a new
2901 ** database connection.  This command creates a new command named
2902 ** DBNAME that is used to control that connection.  The database
2903 ** connection is deleted when the DBNAME command is deleted.
2904 **
2905 ** The second argument is the name of the database file.
2906 **
2907 */
2908 static int DbMain(void *cd, Tcl_Interp *interp, int objc,Tcl_Obj *const*objv){
2909   SqliteDb *p;
2910   const char *zArg;
2911   char *zErrMsg;
2912   int i;
2913   const char *zFile;
2914   const char *zVfs = 0;
2915   int flags;
2916   Tcl_DString translatedFilename;
2917 #ifdef SQLITE_HAS_CODEC
2918   void *pKey = 0;
2919   int nKey = 0;
2920 #endif
2921   int rc;
2922 
2923   /* In normal use, each TCL interpreter runs in a single thread.  So
2924   ** by default, we can turn of mutexing on SQLite database connections.
2925   ** However, for testing purposes it is useful to have mutexes turned
2926   ** on.  So, by default, mutexes default off.  But if compiled with
2927   ** SQLITE_TCL_DEFAULT_FULLMUTEX then mutexes default on.
2928   */
2929 #ifdef SQLITE_TCL_DEFAULT_FULLMUTEX
2930   flags = SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE | SQLITE_OPEN_FULLMUTEX;
2931 #else
2932   flags = SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE | SQLITE_OPEN_NOMUTEX;
2933 #endif
2934 
2935   if( objc==2 ){
2936     zArg = Tcl_GetStringFromObj(objv[1], 0);
2937     if( strcmp(zArg,"-version")==0 ){
2938       Tcl_AppendResult(interp,sqlite3_libversion(),0);
2939       return TCL_OK;
2940     }
2941     if( strcmp(zArg,"-has-codec")==0 ){
2942 #ifdef SQLITE_HAS_CODEC
2943       Tcl_AppendResult(interp,"1",0);
2944 #else
2945       Tcl_AppendResult(interp,"0",0);
2946 #endif
2947       return TCL_OK;
2948     }
2949   }
2950   for(i=3; i+1<objc; i+=2){
2951     zArg = Tcl_GetString(objv[i]);
2952     if( strcmp(zArg,"-key")==0 ){
2953 #ifdef SQLITE_HAS_CODEC
2954       pKey = Tcl_GetByteArrayFromObj(objv[i+1], &nKey);
2955 #endif
2956     }else if( strcmp(zArg, "-vfs")==0 ){
2957       zVfs = Tcl_GetString(objv[i+1]);
2958     }else if( strcmp(zArg, "-readonly")==0 ){
2959       int b;
2960       if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR;
2961       if( b ){
2962         flags &= ~(SQLITE_OPEN_READWRITE|SQLITE_OPEN_CREATE);
2963         flags |= SQLITE_OPEN_READONLY;
2964       }else{
2965         flags &= ~SQLITE_OPEN_READONLY;
2966         flags |= SQLITE_OPEN_READWRITE;
2967       }
2968     }else if( strcmp(zArg, "-create")==0 ){
2969       int b;
2970       if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR;
2971       if( b && (flags & SQLITE_OPEN_READONLY)==0 ){
2972         flags |= SQLITE_OPEN_CREATE;
2973       }else{
2974         flags &= ~SQLITE_OPEN_CREATE;
2975       }
2976     }else if( strcmp(zArg, "-nomutex")==0 ){
2977       int b;
2978       if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR;
2979       if( b ){
2980         flags |= SQLITE_OPEN_NOMUTEX;
2981         flags &= ~SQLITE_OPEN_FULLMUTEX;
2982       }else{
2983         flags &= ~SQLITE_OPEN_NOMUTEX;
2984       }
2985     }else if( strcmp(zArg, "-fullmutex")==0 ){
2986       int b;
2987       if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR;
2988       if( b ){
2989         flags |= SQLITE_OPEN_FULLMUTEX;
2990         flags &= ~SQLITE_OPEN_NOMUTEX;
2991       }else{
2992         flags &= ~SQLITE_OPEN_FULLMUTEX;
2993       }
2994     }else if( strcmp(zArg, "-uri")==0 ){
2995       int b;
2996       if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR;
2997       if( b ){
2998         flags |= SQLITE_OPEN_URI;
2999       }else{
3000         flags &= ~SQLITE_OPEN_URI;
3001       }
3002     }else{
3003       Tcl_AppendResult(interp, "unknown option: ", zArg, (char*)0);
3004       return TCL_ERROR;
3005     }
3006   }
3007   if( objc<3 || (objc&1)!=1 ){
3008     Tcl_WrongNumArgs(interp, 1, objv,
3009       "HANDLE FILENAME ?-vfs VFSNAME? ?-readonly BOOLEAN? ?-create BOOLEAN?"
3010       " ?-nomutex BOOLEAN? ?-fullmutex BOOLEAN? ?-uri BOOLEAN?"
3011 #ifdef SQLITE_HAS_CODEC
3012       " ?-key CODECKEY?"
3013 #endif
3014     );
3015     return TCL_ERROR;
3016   }
3017   zErrMsg = 0;
3018   p = (SqliteDb*)Tcl_Alloc( sizeof(*p) );
3019   if( p==0 ){
3020     Tcl_SetResult(interp, (char *)"malloc failed", TCL_STATIC);
3021     return TCL_ERROR;
3022   }
3023   memset(p, 0, sizeof(*p));
3024   zFile = Tcl_GetStringFromObj(objv[2], 0);
3025   zFile = Tcl_TranslateFileName(interp, zFile, &translatedFilename);
3026   rc = sqlite3_open_v2(zFile, &p->db, flags, zVfs);
3027   Tcl_DStringFree(&translatedFilename);
3028   if( p->db ){
3029     if( SQLITE_OK!=sqlite3_errcode(p->db) ){
3030       zErrMsg = sqlite3_mprintf("%s", sqlite3_errmsg(p->db));
3031       sqlite3_close(p->db);
3032       p->db = 0;
3033     }
3034   }else{
3035     zErrMsg = sqlite3_mprintf("%s", sqlite3_errstr(rc));
3036   }
3037 #ifdef SQLITE_HAS_CODEC
3038   if( p->db ){
3039     sqlite3_key(p->db, pKey, nKey);
3040   }
3041 #endif
3042   if( p->db==0 ){
3043     Tcl_SetResult(interp, zErrMsg, TCL_VOLATILE);
3044     Tcl_Free((char*)p);
3045     sqlite3_free(zErrMsg);
3046     return TCL_ERROR;
3047   }
3048   p->maxStmt = NUM_PREPARED_STMTS;
3049   p->interp = interp;
3050   zArg = Tcl_GetStringFromObj(objv[1], 0);
3051   if( DbUseNre() ){
3052     Tcl_NRCreateCommand(interp, zArg, DbObjCmdAdaptor, DbObjCmd,
3053                         (char*)p, DbDeleteCmd);
3054   }else{
3055     Tcl_CreateObjCommand(interp, zArg, DbObjCmd, (char*)p, DbDeleteCmd);
3056   }
3057   return TCL_OK;
3058 }
3059 
3060 /*
3061 ** Provide a dummy Tcl_InitStubs if we are using this as a static
3062 ** library.
3063 */
3064 #ifndef USE_TCL_STUBS
3065 # undef  Tcl_InitStubs
3066 # define Tcl_InitStubs(a,b,c) TCL_VERSION
3067 #endif
3068 
3069 /*
3070 ** Make sure we have a PACKAGE_VERSION macro defined.  This will be
3071 ** defined automatically by the TEA makefile.  But other makefiles
3072 ** do not define it.
3073 */
3074 #ifndef PACKAGE_VERSION
3075 # define PACKAGE_VERSION SQLITE_VERSION
3076 #endif
3077 
3078 /*
3079 ** Initialize this module.
3080 **
3081 ** This Tcl module contains only a single new Tcl command named "sqlite".
3082 ** (Hence there is no namespace.  There is no point in using a namespace
3083 ** if the extension only supplies one new name!)  The "sqlite" command is
3084 ** used to open a new SQLite database.  See the DbMain() routine above
3085 ** for additional information.
3086 **
3087 ** The EXTERN macros are required by TCL in order to work on windows.
3088 */
3089 EXTERN int Sqlite3_Init(Tcl_Interp *interp){
3090   int rc = Tcl_InitStubs(interp, "8.4", 0)==0 ? TCL_ERROR : TCL_OK;
3091   if( rc==TCL_OK ){
3092     Tcl_CreateObjCommand(interp, "sqlite3", (Tcl_ObjCmdProc*)DbMain, 0, 0);
3093 #ifndef SQLITE_3_SUFFIX_ONLY
3094     /* The "sqlite" alias is undocumented.  It is here only to support
3095     ** legacy scripts.  All new scripts should use only the "sqlite3"
3096     ** command. */
3097     Tcl_CreateObjCommand(interp, "sqlite", (Tcl_ObjCmdProc*)DbMain, 0, 0);
3098 #endif
3099     rc = Tcl_PkgProvide(interp, "sqlite3", PACKAGE_VERSION);
3100   }
3101   return rc;
3102 }
3103 EXTERN int Tclsqlite3_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); }
3104 EXTERN int Sqlite3_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; }
3105 EXTERN int Tclsqlite3_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; }
3106 
3107 /* Because it accesses the file-system and uses persistent state, SQLite
3108 ** is not considered appropriate for safe interpreters.  Hence, we deliberately
3109 ** omit the _SafeInit() interfaces.
3110 */
3111 
3112 #ifndef SQLITE_3_SUFFIX_ONLY
3113 int Sqlite_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); }
3114 int Tclsqlite_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); }
3115 int Sqlite_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; }
3116 int Tclsqlite_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; }
3117 #endif
3118 
3119 #ifdef TCLSH
3120 /*****************************************************************************
3121 ** All of the code that follows is used to build standalone TCL interpreters
3122 ** that are statically linked with SQLite.  Enable these by compiling
3123 ** with -DTCLSH=n where n can be 1 or 2.  An n of 1 generates a standard
3124 ** tclsh but with SQLite built in.  An n of 2 generates the SQLite space
3125 ** analysis program.
3126 */
3127 
3128 #if defined(SQLITE_TEST) || defined(SQLITE_TCLMD5)
3129 /*
3130  * This code implements the MD5 message-digest algorithm.
3131  * The algorithm is due to Ron Rivest.  This code was
3132  * written by Colin Plumb in 1993, no copyright is claimed.
3133  * This code is in the public domain; do with it what you wish.
3134  *
3135  * Equivalent code is available from RSA Data Security, Inc.
3136  * This code has been tested against that, and is equivalent,
3137  * except that you don't need to include two pages of legalese
3138  * with every copy.
3139  *
3140  * To compute the message digest of a chunk of bytes, declare an
3141  * MD5Context structure, pass it to MD5Init, call MD5Update as
3142  * needed on buffers full of bytes, and then call MD5Final, which
3143  * will fill a supplied 16-byte array with the digest.
3144  */
3145 
3146 /*
3147  * If compiled on a machine that doesn't have a 32-bit integer,
3148  * you just set "uint32" to the appropriate datatype for an
3149  * unsigned 32-bit integer.  For example:
3150  *
3151  *       cc -Duint32='unsigned long' md5.c
3152  *
3153  */
3154 #ifndef uint32
3155 #  define uint32 unsigned int
3156 #endif
3157 
3158 struct MD5Context {
3159   int isInit;
3160   uint32 buf[4];
3161   uint32 bits[2];
3162   unsigned char in[64];
3163 };
3164 typedef struct MD5Context MD5Context;
3165 
3166 /*
3167  * Note: this code is harmless on little-endian machines.
3168  */
3169 static void byteReverse (unsigned char *buf, unsigned longs){
3170         uint32 t;
3171         do {
3172                 t = (uint32)((unsigned)buf[3]<<8 | buf[2]) << 16 |
3173                             ((unsigned)buf[1]<<8 | buf[0]);
3174                 *(uint32 *)buf = t;
3175                 buf += 4;
3176         } while (--longs);
3177 }
3178 /* The four core functions - F1 is optimized somewhat */
3179 
3180 /* #define F1(x, y, z) (x & y | ~x & z) */
3181 #define F1(x, y, z) (z ^ (x & (y ^ z)))
3182 #define F2(x, y, z) F1(z, x, y)
3183 #define F3(x, y, z) (x ^ y ^ z)
3184 #define F4(x, y, z) (y ^ (x | ~z))
3185 
3186 /* This is the central step in the MD5 algorithm. */
3187 #define MD5STEP(f, w, x, y, z, data, s) \
3188         ( w += f(x, y, z) + data,  w = w<<s | w>>(32-s),  w += x )
3189 
3190 /*
3191  * The core of the MD5 algorithm, this alters an existing MD5 hash to
3192  * reflect the addition of 16 longwords of new data.  MD5Update blocks
3193  * the data and converts bytes into longwords for this routine.
3194  */
3195 static void MD5Transform(uint32 buf[4], const uint32 in[16]){
3196         register uint32 a, b, c, d;
3197 
3198         a = buf[0];
3199         b = buf[1];
3200         c = buf[2];
3201         d = buf[3];
3202 
3203         MD5STEP(F1, a, b, c, d, in[ 0]+0xd76aa478,  7);
3204         MD5STEP(F1, d, a, b, c, in[ 1]+0xe8c7b756, 12);
3205         MD5STEP(F1, c, d, a, b, in[ 2]+0x242070db, 17);
3206         MD5STEP(F1, b, c, d, a, in[ 3]+0xc1bdceee, 22);
3207         MD5STEP(F1, a, b, c, d, in[ 4]+0xf57c0faf,  7);
3208         MD5STEP(F1, d, a, b, c, in[ 5]+0x4787c62a, 12);
3209         MD5STEP(F1, c, d, a, b, in[ 6]+0xa8304613, 17);
3210         MD5STEP(F1, b, c, d, a, in[ 7]+0xfd469501, 22);
3211         MD5STEP(F1, a, b, c, d, in[ 8]+0x698098d8,  7);
3212         MD5STEP(F1, d, a, b, c, in[ 9]+0x8b44f7af, 12);
3213         MD5STEP(F1, c, d, a, b, in[10]+0xffff5bb1, 17);
3214         MD5STEP(F1, b, c, d, a, in[11]+0x895cd7be, 22);
3215         MD5STEP(F1, a, b, c, d, in[12]+0x6b901122,  7);
3216         MD5STEP(F1, d, a, b, c, in[13]+0xfd987193, 12);
3217         MD5STEP(F1, c, d, a, b, in[14]+0xa679438e, 17);
3218         MD5STEP(F1, b, c, d, a, in[15]+0x49b40821, 22);
3219 
3220         MD5STEP(F2, a, b, c, d, in[ 1]+0xf61e2562,  5);
3221         MD5STEP(F2, d, a, b, c, in[ 6]+0xc040b340,  9);
3222         MD5STEP(F2, c, d, a, b, in[11]+0x265e5a51, 14);
3223         MD5STEP(F2, b, c, d, a, in[ 0]+0xe9b6c7aa, 20);
3224         MD5STEP(F2, a, b, c, d, in[ 5]+0xd62f105d,  5);
3225         MD5STEP(F2, d, a, b, c, in[10]+0x02441453,  9);
3226         MD5STEP(F2, c, d, a, b, in[15]+0xd8a1e681, 14);
3227         MD5STEP(F2, b, c, d, a, in[ 4]+0xe7d3fbc8, 20);
3228         MD5STEP(F2, a, b, c, d, in[ 9]+0x21e1cde6,  5);
3229         MD5STEP(F2, d, a, b, c, in[14]+0xc33707d6,  9);
3230         MD5STEP(F2, c, d, a, b, in[ 3]+0xf4d50d87, 14);
3231         MD5STEP(F2, b, c, d, a, in[ 8]+0x455a14ed, 20);
3232         MD5STEP(F2, a, b, c, d, in[13]+0xa9e3e905,  5);
3233         MD5STEP(F2, d, a, b, c, in[ 2]+0xfcefa3f8,  9);
3234         MD5STEP(F2, c, d, a, b, in[ 7]+0x676f02d9, 14);
3235         MD5STEP(F2, b, c, d, a, in[12]+0x8d2a4c8a, 20);
3236 
3237         MD5STEP(F3, a, b, c, d, in[ 5]+0xfffa3942,  4);
3238         MD5STEP(F3, d, a, b, c, in[ 8]+0x8771f681, 11);
3239         MD5STEP(F3, c, d, a, b, in[11]+0x6d9d6122, 16);
3240         MD5STEP(F3, b, c, d, a, in[14]+0xfde5380c, 23);
3241         MD5STEP(F3, a, b, c, d, in[ 1]+0xa4beea44,  4);
3242         MD5STEP(F3, d, a, b, c, in[ 4]+0x4bdecfa9, 11);
3243         MD5STEP(F3, c, d, a, b, in[ 7]+0xf6bb4b60, 16);
3244         MD5STEP(F3, b, c, d, a, in[10]+0xbebfbc70, 23);
3245         MD5STEP(F3, a, b, c, d, in[13]+0x289b7ec6,  4);
3246         MD5STEP(F3, d, a, b, c, in[ 0]+0xeaa127fa, 11);
3247         MD5STEP(F3, c, d, a, b, in[ 3]+0xd4ef3085, 16);
3248         MD5STEP(F3, b, c, d, a, in[ 6]+0x04881d05, 23);
3249         MD5STEP(F3, a, b, c, d, in[ 9]+0xd9d4d039,  4);
3250         MD5STEP(F3, d, a, b, c, in[12]+0xe6db99e5, 11);
3251         MD5STEP(F3, c, d, a, b, in[15]+0x1fa27cf8, 16);
3252         MD5STEP(F3, b, c, d, a, in[ 2]+0xc4ac5665, 23);
3253 
3254         MD5STEP(F4, a, b, c, d, in[ 0]+0xf4292244,  6);
3255         MD5STEP(F4, d, a, b, c, in[ 7]+0x432aff97, 10);
3256         MD5STEP(F4, c, d, a, b, in[14]+0xab9423a7, 15);
3257         MD5STEP(F4, b, c, d, a, in[ 5]+0xfc93a039, 21);
3258         MD5STEP(F4, a, b, c, d, in[12]+0x655b59c3,  6);
3259         MD5STEP(F4, d, a, b, c, in[ 3]+0x8f0ccc92, 10);
3260         MD5STEP(F4, c, d, a, b, in[10]+0xffeff47d, 15);
3261         MD5STEP(F4, b, c, d, a, in[ 1]+0x85845dd1, 21);
3262         MD5STEP(F4, a, b, c, d, in[ 8]+0x6fa87e4f,  6);
3263         MD5STEP(F4, d, a, b, c, in[15]+0xfe2ce6e0, 10);
3264         MD5STEP(F4, c, d, a, b, in[ 6]+0xa3014314, 15);
3265         MD5STEP(F4, b, c, d, a, in[13]+0x4e0811a1, 21);
3266         MD5STEP(F4, a, b, c, d, in[ 4]+0xf7537e82,  6);
3267         MD5STEP(F4, d, a, b, c, in[11]+0xbd3af235, 10);
3268         MD5STEP(F4, c, d, a, b, in[ 2]+0x2ad7d2bb, 15);
3269         MD5STEP(F4, b, c, d, a, in[ 9]+0xeb86d391, 21);
3270 
3271         buf[0] += a;
3272         buf[1] += b;
3273         buf[2] += c;
3274         buf[3] += d;
3275 }
3276 
3277 /*
3278  * Start MD5 accumulation.  Set bit count to 0 and buffer to mysterious
3279  * initialization constants.
3280  */
3281 static void MD5Init(MD5Context *ctx){
3282         ctx->isInit = 1;
3283         ctx->buf[0] = 0x67452301;
3284         ctx->buf[1] = 0xefcdab89;
3285         ctx->buf[2] = 0x98badcfe;
3286         ctx->buf[3] = 0x10325476;
3287         ctx->bits[0] = 0;
3288         ctx->bits[1] = 0;
3289 }
3290 
3291 /*
3292  * Update context to reflect the concatenation of another buffer full
3293  * of bytes.
3294  */
3295 static
3296 void MD5Update(MD5Context *ctx, const unsigned char *buf, unsigned int len){
3297         uint32 t;
3298 
3299         /* Update bitcount */
3300 
3301         t = ctx->bits[0];
3302         if ((ctx->bits[0] = t + ((uint32)len << 3)) < t)
3303                 ctx->bits[1]++; /* Carry from low to high */
3304         ctx->bits[1] += len >> 29;
3305 
3306         t = (t >> 3) & 0x3f;    /* Bytes already in shsInfo->data */
3307 
3308         /* Handle any leading odd-sized chunks */
3309 
3310         if ( t ) {
3311                 unsigned char *p = (unsigned char *)ctx->in + t;
3312 
3313                 t = 64-t;
3314                 if (len < t) {
3315                         memcpy(p, buf, len);
3316                         return;
3317                 }
3318                 memcpy(p, buf, t);
3319                 byteReverse(ctx->in, 16);
3320                 MD5Transform(ctx->buf, (uint32 *)ctx->in);
3321                 buf += t;
3322                 len -= t;
3323         }
3324 
3325         /* Process data in 64-byte chunks */
3326 
3327         while (len >= 64) {
3328                 memcpy(ctx->in, buf, 64);
3329                 byteReverse(ctx->in, 16);
3330                 MD5Transform(ctx->buf, (uint32 *)ctx->in);
3331                 buf += 64;
3332                 len -= 64;
3333         }
3334 
3335         /* Handle any remaining bytes of data. */
3336 
3337         memcpy(ctx->in, buf, len);
3338 }
3339 
3340 /*
3341  * Final wrapup - pad to 64-byte boundary with the bit pattern
3342  * 1 0* (64-bit count of bits processed, MSB-first)
3343  */
3344 static void MD5Final(unsigned char digest[16], MD5Context *ctx){
3345         unsigned count;
3346         unsigned char *p;
3347 
3348         /* Compute number of bytes mod 64 */
3349         count = (ctx->bits[0] >> 3) & 0x3F;
3350 
3351         /* Set the first char of padding to 0x80.  This is safe since there is
3352            always at least one byte free */
3353         p = ctx->in + count;
3354         *p++ = 0x80;
3355 
3356         /* Bytes of padding needed to make 64 bytes */
3357         count = 64 - 1 - count;
3358 
3359         /* Pad out to 56 mod 64 */
3360         if (count < 8) {
3361                 /* Two lots of padding:  Pad the first block to 64 bytes */
3362                 memset(p, 0, count);
3363                 byteReverse(ctx->in, 16);
3364                 MD5Transform(ctx->buf, (uint32 *)ctx->in);
3365 
3366                 /* Now fill the next block with 56 bytes */
3367                 memset(ctx->in, 0, 56);
3368         } else {
3369                 /* Pad block to 56 bytes */
3370                 memset(p, 0, count-8);
3371         }
3372         byteReverse(ctx->in, 14);
3373 
3374         /* Append length in bits and transform */
3375         memcpy(ctx->in + 14*4, ctx->bits, 8);
3376 
3377         MD5Transform(ctx->buf, (uint32 *)ctx->in);
3378         byteReverse((unsigned char *)ctx->buf, 4);
3379         memcpy(digest, ctx->buf, 16);
3380 }
3381 
3382 /*
3383 ** Convert a 128-bit MD5 digest into a 32-digit base-16 number.
3384 */
3385 static void MD5DigestToBase16(unsigned char *digest, char *zBuf){
3386   static char const zEncode[] = "0123456789abcdef";
3387   int i, j;
3388 
3389   for(j=i=0; i<16; i++){
3390     int a = digest[i];
3391     zBuf[j++] = zEncode[(a>>4)&0xf];
3392     zBuf[j++] = zEncode[a & 0xf];
3393   }
3394   zBuf[j] = 0;
3395 }
3396 
3397 
3398 /*
3399 ** Convert a 128-bit MD5 digest into sequency of eight 5-digit integers
3400 ** each representing 16 bits of the digest and separated from each
3401 ** other by a "-" character.
3402 */
3403 static void MD5DigestToBase10x8(unsigned char digest[16], char zDigest[50]){
3404   int i, j;
3405   unsigned int x;
3406   for(i=j=0; i<16; i+=2){
3407     x = digest[i]*256 + digest[i+1];
3408     if( i>0 ) zDigest[j++] = '-';
3409     sprintf(&zDigest[j], "%05u", x);
3410     j += 5;
3411   }
3412   zDigest[j] = 0;
3413 }
3414 
3415 /*
3416 ** A TCL command for md5.  The argument is the text to be hashed.  The
3417 ** Result is the hash in base64.
3418 */
3419 static int md5_cmd(void*cd, Tcl_Interp *interp, int argc, const char **argv){
3420   MD5Context ctx;
3421   unsigned char digest[16];
3422   char zBuf[50];
3423   void (*converter)(unsigned char*, char*);
3424 
3425   if( argc!=2 ){
3426     Tcl_AppendResult(interp,"wrong # args: should be \"", argv[0],
3427         " TEXT\"", 0);
3428     return TCL_ERROR;
3429   }
3430   MD5Init(&ctx);
3431   MD5Update(&ctx, (unsigned char*)argv[1], (unsigned)strlen(argv[1]));
3432   MD5Final(digest, &ctx);
3433   converter = (void(*)(unsigned char*,char*))cd;
3434   converter(digest, zBuf);
3435   Tcl_AppendResult(interp, zBuf, (char*)0);
3436   return TCL_OK;
3437 }
3438 
3439 /*
3440 ** A TCL command to take the md5 hash of a file.  The argument is the
3441 ** name of the file.
3442 */
3443 static int md5file_cmd(void*cd, Tcl_Interp*interp, int argc, const char **argv){
3444   FILE *in;
3445   MD5Context ctx;
3446   void (*converter)(unsigned char*, char*);
3447   unsigned char digest[16];
3448   char zBuf[10240];
3449 
3450   if( argc!=2 ){
3451     Tcl_AppendResult(interp,"wrong # args: should be \"", argv[0],
3452         " FILENAME\"", 0);
3453     return TCL_ERROR;
3454   }
3455   in = fopen(argv[1],"rb");
3456   if( in==0 ){
3457     Tcl_AppendResult(interp,"unable to open file \"", argv[1],
3458          "\" for reading", 0);
3459     return TCL_ERROR;
3460   }
3461   MD5Init(&ctx);
3462   for(;;){
3463     int n;
3464     n = (int)fread(zBuf, 1, sizeof(zBuf), in);
3465     if( n<=0 ) break;
3466     MD5Update(&ctx, (unsigned char*)zBuf, (unsigned)n);
3467   }
3468   fclose(in);
3469   MD5Final(digest, &ctx);
3470   converter = (void(*)(unsigned char*,char*))cd;
3471   converter(digest, zBuf);
3472   Tcl_AppendResult(interp, zBuf, (char*)0);
3473   return TCL_OK;
3474 }
3475 
3476 /*
3477 ** Register the four new TCL commands for generating MD5 checksums
3478 ** with the TCL interpreter.
3479 */
3480 int Md5_Init(Tcl_Interp *interp){
3481   Tcl_CreateCommand(interp, "md5", (Tcl_CmdProc*)md5_cmd,
3482                     MD5DigestToBase16, 0);
3483   Tcl_CreateCommand(interp, "md5-10x8", (Tcl_CmdProc*)md5_cmd,
3484                     MD5DigestToBase10x8, 0);
3485   Tcl_CreateCommand(interp, "md5file", (Tcl_CmdProc*)md5file_cmd,
3486                     MD5DigestToBase16, 0);
3487   Tcl_CreateCommand(interp, "md5file-10x8", (Tcl_CmdProc*)md5file_cmd,
3488                     MD5DigestToBase10x8, 0);
3489   return TCL_OK;
3490 }
3491 #endif /* defined(SQLITE_TEST) || defined(SQLITE_TCLMD5) */
3492 
3493 #if defined(SQLITE_TEST)
3494 /*
3495 ** During testing, the special md5sum() aggregate function is available.
3496 ** inside SQLite.  The following routines implement that function.
3497 */
3498 static void md5step(sqlite3_context *context, int argc, sqlite3_value **argv){
3499   MD5Context *p;
3500   int i;
3501   if( argc<1 ) return;
3502   p = sqlite3_aggregate_context(context, sizeof(*p));
3503   if( p==0 ) return;
3504   if( !p->isInit ){
3505     MD5Init(p);
3506   }
3507   for(i=0; i<argc; i++){
3508     const char *zData = (char*)sqlite3_value_text(argv[i]);
3509     if( zData ){
3510       MD5Update(p, (unsigned char*)zData, (int)strlen(zData));
3511     }
3512   }
3513 }
3514 static void md5finalize(sqlite3_context *context){
3515   MD5Context *p;
3516   unsigned char digest[16];
3517   char zBuf[33];
3518   p = sqlite3_aggregate_context(context, sizeof(*p));
3519   MD5Final(digest,p);
3520   MD5DigestToBase16(digest, zBuf);
3521   sqlite3_result_text(context, zBuf, -1, SQLITE_TRANSIENT);
3522 }
3523 int Md5_Register(sqlite3 *db){
3524   int rc = sqlite3_create_function(db, "md5sum", -1, SQLITE_UTF8, 0, 0,
3525                                  md5step, md5finalize);
3526   sqlite3_overload_function(db, "md5sum", -1);  /* To exercise this API */
3527   return rc;
3528 }
3529 #endif /* defined(SQLITE_TEST) */
3530 
3531 
3532 /*
3533 ** If the macro TCLSH is one, then put in code this for the
3534 ** "main" routine that will initialize Tcl and take input from
3535 ** standard input, or if a file is named on the command line
3536 ** the TCL interpreter reads and evaluates that file.
3537 */
3538 #if TCLSH==1
3539 static const char *tclsh_main_loop(void){
3540   static const char zMainloop[] =
3541     "set line {}\n"
3542     "while {![eof stdin]} {\n"
3543       "if {$line!=\"\"} {\n"
3544         "puts -nonewline \"> \"\n"
3545       "} else {\n"
3546         "puts -nonewline \"% \"\n"
3547       "}\n"
3548       "flush stdout\n"
3549       "append line [gets stdin]\n"
3550       "if {[info complete $line]} {\n"
3551         "if {[catch {uplevel #0 $line} result]} {\n"
3552           "puts stderr \"Error: $result\"\n"
3553         "} elseif {$result!=\"\"} {\n"
3554           "puts $result\n"
3555         "}\n"
3556         "set line {}\n"
3557       "} else {\n"
3558         "append line \\n\n"
3559       "}\n"
3560     "}\n"
3561   ;
3562   return zMainloop;
3563 }
3564 #endif
3565 #if TCLSH==2
3566 static const char *tclsh_main_loop(void);
3567 #endif
3568 
3569 #ifdef SQLITE_TEST
3570 static void init_all(Tcl_Interp *);
3571 static int init_all_cmd(
3572   ClientData cd,
3573   Tcl_Interp *interp,
3574   int objc,
3575   Tcl_Obj *CONST objv[]
3576 ){
3577 
3578   Tcl_Interp *slave;
3579   if( objc!=2 ){
3580     Tcl_WrongNumArgs(interp, 1, objv, "SLAVE");
3581     return TCL_ERROR;
3582   }
3583 
3584   slave = Tcl_GetSlave(interp, Tcl_GetString(objv[1]));
3585   if( !slave ){
3586     return TCL_ERROR;
3587   }
3588 
3589   init_all(slave);
3590   return TCL_OK;
3591 }
3592 
3593 /*
3594 ** Tclcmd: db_use_legacy_prepare DB BOOLEAN
3595 **
3596 **   The first argument to this command must be a database command created by
3597 **   [sqlite3]. If the second argument is true, then the handle is configured
3598 **   to use the sqlite3_prepare_v2() function to prepare statements. If it
3599 **   is false, sqlite3_prepare().
3600 */
3601 static int db_use_legacy_prepare_cmd(
3602   ClientData cd,
3603   Tcl_Interp *interp,
3604   int objc,
3605   Tcl_Obj *CONST objv[]
3606 ){
3607   Tcl_CmdInfo cmdInfo;
3608   SqliteDb *pDb;
3609   int bPrepare;
3610 
3611   if( objc!=3 ){
3612     Tcl_WrongNumArgs(interp, 1, objv, "DB BOOLEAN");
3613     return TCL_ERROR;
3614   }
3615 
3616   if( !Tcl_GetCommandInfo(interp, Tcl_GetString(objv[1]), &cmdInfo) ){
3617     Tcl_AppendResult(interp, "no such db: ", Tcl_GetString(objv[1]), (char*)0);
3618     return TCL_ERROR;
3619   }
3620   pDb = (SqliteDb*)cmdInfo.objClientData;
3621   if( Tcl_GetBooleanFromObj(interp, objv[2], &bPrepare) ){
3622     return TCL_ERROR;
3623   }
3624 
3625   pDb->bLegacyPrepare = bPrepare;
3626 
3627   Tcl_ResetResult(interp);
3628   return TCL_OK;
3629 }
3630 #endif
3631 
3632 /*
3633 ** Configure the interpreter passed as the first argument to have access
3634 ** to the commands and linked variables that make up:
3635 **
3636 **   * the [sqlite3] extension itself,
3637 **
3638 **   * If SQLITE_TCLMD5 or SQLITE_TEST is defined, the Md5 commands, and
3639 **
3640 **   * If SQLITE_TEST is set, the various test interfaces used by the Tcl
3641 **     test suite.
3642 */
3643 static void init_all(Tcl_Interp *interp){
3644   Sqlite3_Init(interp);
3645 
3646 #if defined(SQLITE_TEST) || defined(SQLITE_TCLMD5)
3647   Md5_Init(interp);
3648 #endif
3649 
3650   /* Install the [register_dbstat_vtab] command to access the implementation
3651   ** of virtual table dbstat (source file test_stat.c). This command is
3652   ** required for testfixture and sqlite3_analyzer, but not by the production
3653   ** Tcl extension.  */
3654 #if defined(SQLITE_TEST) || TCLSH==2
3655   {
3656     extern int SqlitetestStat_Init(Tcl_Interp*);
3657     SqlitetestStat_Init(interp);
3658   }
3659 #endif
3660 
3661 #ifdef SQLITE_TEST
3662   {
3663     extern int Sqliteconfig_Init(Tcl_Interp*);
3664     extern int Sqlitetest1_Init(Tcl_Interp*);
3665     extern int Sqlitetest2_Init(Tcl_Interp*);
3666     extern int Sqlitetest3_Init(Tcl_Interp*);
3667     extern int Sqlitetest4_Init(Tcl_Interp*);
3668     extern int Sqlitetest5_Init(Tcl_Interp*);
3669     extern int Sqlitetest6_Init(Tcl_Interp*);
3670     extern int Sqlitetest7_Init(Tcl_Interp*);
3671     extern int Sqlitetest8_Init(Tcl_Interp*);
3672     extern int Sqlitetest9_Init(Tcl_Interp*);
3673     extern int Sqlitetestasync_Init(Tcl_Interp*);
3674     extern int Sqlitetest_autoext_Init(Tcl_Interp*);
3675     extern int Sqlitetest_demovfs_Init(Tcl_Interp *);
3676     extern int Sqlitetest_func_Init(Tcl_Interp*);
3677     extern int Sqlitetest_hexio_Init(Tcl_Interp*);
3678     extern int Sqlitetest_init_Init(Tcl_Interp*);
3679     extern int Sqlitetest_malloc_Init(Tcl_Interp*);
3680     extern int Sqlitetest_mutex_Init(Tcl_Interp*);
3681     extern int Sqlitetestschema_Init(Tcl_Interp*);
3682     extern int Sqlitetestsse_Init(Tcl_Interp*);
3683     extern int Sqlitetesttclvar_Init(Tcl_Interp*);
3684     extern int Sqlitetestfs_Init(Tcl_Interp*);
3685     extern int SqlitetestThread_Init(Tcl_Interp*);
3686     extern int SqlitetestOnefile_Init();
3687     extern int SqlitetestOsinst_Init(Tcl_Interp*);
3688     extern int Sqlitetestbackup_Init(Tcl_Interp*);
3689     extern int Sqlitetestintarray_Init(Tcl_Interp*);
3690     extern int Sqlitetestvfs_Init(Tcl_Interp *);
3691     extern int Sqlitetestrtree_Init(Tcl_Interp*);
3692     extern int Sqlitequota_Init(Tcl_Interp*);
3693     extern int Sqlitemultiplex_Init(Tcl_Interp*);
3694     extern int SqliteSuperlock_Init(Tcl_Interp*);
3695     extern int SqlitetestSyscall_Init(Tcl_Interp*);
3696 
3697 #if defined(SQLITE_ENABLE_FTS3) || defined(SQLITE_ENABLE_FTS4)
3698     extern int Sqlitetestfts3_Init(Tcl_Interp *interp);
3699 #endif
3700 
3701 #ifdef SQLITE_ENABLE_ZIPVFS
3702     extern int Zipvfs_Init(Tcl_Interp*);
3703     Zipvfs_Init(interp);
3704 #endif
3705 
3706     Sqliteconfig_Init(interp);
3707     Sqlitetest1_Init(interp);
3708     Sqlitetest2_Init(interp);
3709     Sqlitetest3_Init(interp);
3710     Sqlitetest4_Init(interp);
3711     Sqlitetest5_Init(interp);
3712     Sqlitetest6_Init(interp);
3713     Sqlitetest7_Init(interp);
3714     Sqlitetest8_Init(interp);
3715     Sqlitetest9_Init(interp);
3716     Sqlitetestasync_Init(interp);
3717     Sqlitetest_autoext_Init(interp);
3718     Sqlitetest_demovfs_Init(interp);
3719     Sqlitetest_func_Init(interp);
3720     Sqlitetest_hexio_Init(interp);
3721     Sqlitetest_init_Init(interp);
3722     Sqlitetest_malloc_Init(interp);
3723     Sqlitetest_mutex_Init(interp);
3724     Sqlitetestschema_Init(interp);
3725     Sqlitetesttclvar_Init(interp);
3726     Sqlitetestfs_Init(interp);
3727     SqlitetestThread_Init(interp);
3728     SqlitetestOnefile_Init(interp);
3729     SqlitetestOsinst_Init(interp);
3730     Sqlitetestbackup_Init(interp);
3731     Sqlitetestintarray_Init(interp);
3732     Sqlitetestvfs_Init(interp);
3733     Sqlitetestrtree_Init(interp);
3734     Sqlitequota_Init(interp);
3735     Sqlitemultiplex_Init(interp);
3736     SqliteSuperlock_Init(interp);
3737     SqlitetestSyscall_Init(interp);
3738 
3739 #if defined(SQLITE_ENABLE_FTS3) || defined(SQLITE_ENABLE_FTS4)
3740     Sqlitetestfts3_Init(interp);
3741 #endif
3742 
3743     Tcl_CreateObjCommand(
3744         interp, "load_testfixture_extensions", init_all_cmd, 0, 0
3745     );
3746     Tcl_CreateObjCommand(
3747         interp, "db_use_legacy_prepare", db_use_legacy_prepare_cmd, 0, 0
3748     );
3749 
3750 #ifdef SQLITE_SSE
3751     Sqlitetestsse_Init(interp);
3752 #endif
3753   }
3754 #endif
3755 }
3756 
3757 #define TCLSH_MAIN main   /* Needed to fake out mktclapp */
3758 int TCLSH_MAIN(int argc, char **argv){
3759   Tcl_Interp *interp;
3760 
3761 #if !defined(_WIN32_WCE)
3762   if( getenv("BREAK") ){
3763     fprintf(stderr,
3764         "attach debugger to process %d and press any key to continue.\n",
3765         GETPID());
3766     fgetc(stdin);
3767   }
3768 #endif
3769 
3770   /* Call sqlite3_shutdown() once before doing anything else. This is to
3771   ** test that sqlite3_shutdown() can be safely called by a process before
3772   ** sqlite3_initialize() is. */
3773   sqlite3_shutdown();
3774 
3775   Tcl_FindExecutable(argv[0]);
3776   interp = Tcl_CreateInterp();
3777 
3778 #if TCLSH==2
3779   sqlite3_config(SQLITE_CONFIG_SINGLETHREAD);
3780 #endif
3781 
3782   init_all(interp);
3783   if( argc>=2 ){
3784     int i;
3785     char zArgc[32];
3786     sqlite3_snprintf(sizeof(zArgc), zArgc, "%d", argc-(3-TCLSH));
3787     Tcl_SetVar(interp,"argc", zArgc, TCL_GLOBAL_ONLY);
3788     Tcl_SetVar(interp,"argv0",argv[1],TCL_GLOBAL_ONLY);
3789     Tcl_SetVar(interp,"argv", "", TCL_GLOBAL_ONLY);
3790     for(i=3-TCLSH; i<argc; i++){
3791       Tcl_SetVar(interp, "argv", argv[i],
3792           TCL_GLOBAL_ONLY | TCL_LIST_ELEMENT | TCL_APPEND_VALUE);
3793     }
3794     if( TCLSH==1 && Tcl_EvalFile(interp, argv[1])!=TCL_OK ){
3795       const char *zInfo = Tcl_GetVar(interp, "errorInfo", TCL_GLOBAL_ONLY);
3796       if( zInfo==0 ) zInfo = Tcl_GetStringResult(interp);
3797       fprintf(stderr,"%s: %s\n", *argv, zInfo);
3798       return 1;
3799     }
3800   }
3801   if( TCLSH==2 || argc<=1 ){
3802     Tcl_GlobalEval(interp, tclsh_main_loop());
3803   }
3804   return 0;
3805 }
3806 #endif /* TCLSH */
3807