1 #ifdef USE_SYSTEM_SQLITE 2 # include <sqlite3.h> 3 #else 4 #include "sqlite3.c" 5 #endif 6 /* 7 ** 2001 September 15 8 ** 9 ** The author disclaims copyright to this source code. In place of 10 ** a legal notice, here is a blessing: 11 ** 12 ** May you do good and not evil. 13 ** May you find forgiveness for yourself and forgive others. 14 ** May you share freely, never taking more than you give. 15 ** 16 ************************************************************************* 17 ** A TCL Interface to SQLite. Append this file to sqlite3.c and 18 ** compile the whole thing to build a TCL-enabled version of SQLite. 19 ** 20 ** Compile-time options: 21 ** 22 ** -DTCLSH=1 Add a "main()" routine that works as a tclsh. 23 ** 24 ** -DSQLITE_TCLMD5 When used in conjuction with -DTCLSH=1, add 25 ** four new commands to the TCL interpreter for 26 ** generating MD5 checksums: md5, md5file, 27 ** md5-10x8, and md5file-10x8. 28 ** 29 ** -DSQLITE_TEST When used in conjuction with -DTCLSH=1, add 30 ** hundreds of new commands used for testing 31 ** SQLite. This option implies -DSQLITE_TCLMD5. 32 */ 33 34 /* 35 ** If requested, include the SQLite compiler options file for MSVC. 36 */ 37 #if defined(INCLUDE_MSVC_H) 38 # include "msvc.h" 39 #endif 40 41 #if defined(INCLUDE_SQLITE_TCL_H) 42 # include "sqlite_tcl.h" 43 #else 44 # include "tcl.h" 45 # ifndef SQLITE_TCLAPI 46 # define SQLITE_TCLAPI 47 # endif 48 #endif 49 #include <errno.h> 50 51 /* 52 ** Some additional include files are needed if this file is not 53 ** appended to the amalgamation. 54 */ 55 #ifndef SQLITE_AMALGAMATION 56 # include "sqlite3.h" 57 # include <stdlib.h> 58 # include <string.h> 59 # include <assert.h> 60 typedef unsigned char u8; 61 #endif 62 #include <ctype.h> 63 64 /* Used to get the current process ID */ 65 #if !defined(_WIN32) 66 # include <unistd.h> 67 # define GETPID getpid 68 #elif !defined(_WIN32_WCE) 69 # ifndef SQLITE_AMALGAMATION 70 # define WIN32_LEAN_AND_MEAN 71 # include <windows.h> 72 # endif 73 # define GETPID (int)GetCurrentProcessId 74 #endif 75 76 /* 77 * Windows needs to know which symbols to export. Unix does not. 78 * BUILD_sqlite should be undefined for Unix. 79 */ 80 #ifdef BUILD_sqlite 81 #undef TCL_STORAGE_CLASS 82 #define TCL_STORAGE_CLASS DLLEXPORT 83 #endif /* BUILD_sqlite */ 84 85 #define NUM_PREPARED_STMTS 10 86 #define MAX_PREPARED_STMTS 100 87 88 /* Forward declaration */ 89 typedef struct SqliteDb SqliteDb; 90 91 /* 92 ** New SQL functions can be created as TCL scripts. Each such function 93 ** is described by an instance of the following structure. 94 */ 95 typedef struct SqlFunc SqlFunc; 96 struct SqlFunc { 97 Tcl_Interp *interp; /* The TCL interpret to execute the function */ 98 Tcl_Obj *pScript; /* The Tcl_Obj representation of the script */ 99 SqliteDb *pDb; /* Database connection that owns this function */ 100 int useEvalObjv; /* True if it is safe to use Tcl_EvalObjv */ 101 char *zName; /* Name of this function */ 102 SqlFunc *pNext; /* Next function on the list of them all */ 103 }; 104 105 /* 106 ** New collation sequences function can be created as TCL scripts. Each such 107 ** function is described by an instance of the following structure. 108 */ 109 typedef struct SqlCollate SqlCollate; 110 struct SqlCollate { 111 Tcl_Interp *interp; /* The TCL interpret to execute the function */ 112 char *zScript; /* The script to be run */ 113 SqlCollate *pNext; /* Next function on the list of them all */ 114 }; 115 116 /* 117 ** Prepared statements are cached for faster execution. Each prepared 118 ** statement is described by an instance of the following structure. 119 */ 120 typedef struct SqlPreparedStmt SqlPreparedStmt; 121 struct SqlPreparedStmt { 122 SqlPreparedStmt *pNext; /* Next in linked list */ 123 SqlPreparedStmt *pPrev; /* Previous on the list */ 124 sqlite3_stmt *pStmt; /* The prepared statement */ 125 int nSql; /* chars in zSql[] */ 126 const char *zSql; /* Text of the SQL statement */ 127 int nParm; /* Size of apParm array */ 128 Tcl_Obj **apParm; /* Array of referenced object pointers */ 129 }; 130 131 typedef struct IncrblobChannel IncrblobChannel; 132 133 /* 134 ** There is one instance of this structure for each SQLite database 135 ** that has been opened by the SQLite TCL interface. 136 ** 137 ** If this module is built with SQLITE_TEST defined (to create the SQLite 138 ** testfixture executable), then it may be configured to use either 139 ** sqlite3_prepare_v2() or sqlite3_prepare() to prepare SQL statements. 140 ** If SqliteDb.bLegacyPrepare is true, sqlite3_prepare() is used. 141 */ 142 struct SqliteDb { 143 sqlite3 *db; /* The "real" database structure. MUST BE FIRST */ 144 Tcl_Interp *interp; /* The interpreter used for this database */ 145 char *zBusy; /* The busy callback routine */ 146 char *zCommit; /* The commit hook callback routine */ 147 char *zTrace; /* The trace callback routine */ 148 char *zTraceV2; /* The trace_v2 callback routine */ 149 char *zProfile; /* The profile callback routine */ 150 char *zProgress; /* The progress callback routine */ 151 char *zAuth; /* The authorization callback routine */ 152 int disableAuth; /* Disable the authorizer if it exists */ 153 char *zNull; /* Text to substitute for an SQL NULL value */ 154 SqlFunc *pFunc; /* List of SQL functions */ 155 Tcl_Obj *pUpdateHook; /* Update hook script (if any) */ 156 Tcl_Obj *pPreUpdateHook; /* Pre-update hook script (if any) */ 157 Tcl_Obj *pRollbackHook; /* Rollback hook script (if any) */ 158 Tcl_Obj *pWalHook; /* WAL hook script (if any) */ 159 Tcl_Obj *pUnlockNotify; /* Unlock notify script (if any) */ 160 SqlCollate *pCollate; /* List of SQL collation functions */ 161 int rc; /* Return code of most recent sqlite3_exec() */ 162 Tcl_Obj *pCollateNeeded; /* Collation needed script */ 163 SqlPreparedStmt *stmtList; /* List of prepared statements*/ 164 SqlPreparedStmt *stmtLast; /* Last statement in the list */ 165 int maxStmt; /* The next maximum number of stmtList */ 166 int nStmt; /* Number of statements in stmtList */ 167 IncrblobChannel *pIncrblob;/* Linked list of open incrblob channels */ 168 int nStep, nSort, nIndex; /* Statistics for most recent operation */ 169 int nVMStep; /* Another statistic for most recent operation */ 170 int nTransaction; /* Number of nested [transaction] methods */ 171 int openFlags; /* Flags used to open. (SQLITE_OPEN_URI) */ 172 #ifdef SQLITE_TEST 173 int bLegacyPrepare; /* True to use sqlite3_prepare() */ 174 #endif 175 }; 176 177 struct IncrblobChannel { 178 sqlite3_blob *pBlob; /* sqlite3 blob handle */ 179 SqliteDb *pDb; /* Associated database connection */ 180 int iSeek; /* Current seek offset */ 181 Tcl_Channel channel; /* Channel identifier */ 182 IncrblobChannel *pNext; /* Linked list of all open incrblob channels */ 183 IncrblobChannel *pPrev; /* Linked list of all open incrblob channels */ 184 }; 185 186 /* 187 ** Compute a string length that is limited to what can be stored in 188 ** lower 30 bits of a 32-bit signed integer. 189 */ 190 static int strlen30(const char *z){ 191 const char *z2 = z; 192 while( *z2 ){ z2++; } 193 return 0x3fffffff & (int)(z2 - z); 194 } 195 196 197 #ifndef SQLITE_OMIT_INCRBLOB 198 /* 199 ** Close all incrblob channels opened using database connection pDb. 200 ** This is called when shutting down the database connection. 201 */ 202 static void closeIncrblobChannels(SqliteDb *pDb){ 203 IncrblobChannel *p; 204 IncrblobChannel *pNext; 205 206 for(p=pDb->pIncrblob; p; p=pNext){ 207 pNext = p->pNext; 208 209 /* Note: Calling unregister here call Tcl_Close on the incrblob channel, 210 ** which deletes the IncrblobChannel structure at *p. So do not 211 ** call Tcl_Free() here. 212 */ 213 Tcl_UnregisterChannel(pDb->interp, p->channel); 214 } 215 } 216 217 /* 218 ** Close an incremental blob channel. 219 */ 220 static int SQLITE_TCLAPI incrblobClose( 221 ClientData instanceData, 222 Tcl_Interp *interp 223 ){ 224 IncrblobChannel *p = (IncrblobChannel *)instanceData; 225 int rc = sqlite3_blob_close(p->pBlob); 226 sqlite3 *db = p->pDb->db; 227 228 /* Remove the channel from the SqliteDb.pIncrblob list. */ 229 if( p->pNext ){ 230 p->pNext->pPrev = p->pPrev; 231 } 232 if( p->pPrev ){ 233 p->pPrev->pNext = p->pNext; 234 } 235 if( p->pDb->pIncrblob==p ){ 236 p->pDb->pIncrblob = p->pNext; 237 } 238 239 /* Free the IncrblobChannel structure */ 240 Tcl_Free((char *)p); 241 242 if( rc!=SQLITE_OK ){ 243 Tcl_SetResult(interp, (char *)sqlite3_errmsg(db), TCL_VOLATILE); 244 return TCL_ERROR; 245 } 246 return TCL_OK; 247 } 248 249 /* 250 ** Read data from an incremental blob channel. 251 */ 252 static int SQLITE_TCLAPI incrblobInput( 253 ClientData instanceData, 254 char *buf, 255 int bufSize, 256 int *errorCodePtr 257 ){ 258 IncrblobChannel *p = (IncrblobChannel *)instanceData; 259 int nRead = bufSize; /* Number of bytes to read */ 260 int nBlob; /* Total size of the blob */ 261 int rc; /* sqlite error code */ 262 263 nBlob = sqlite3_blob_bytes(p->pBlob); 264 if( (p->iSeek+nRead)>nBlob ){ 265 nRead = nBlob-p->iSeek; 266 } 267 if( nRead<=0 ){ 268 return 0; 269 } 270 271 rc = sqlite3_blob_read(p->pBlob, (void *)buf, nRead, p->iSeek); 272 if( rc!=SQLITE_OK ){ 273 *errorCodePtr = rc; 274 return -1; 275 } 276 277 p->iSeek += nRead; 278 return nRead; 279 } 280 281 /* 282 ** Write data to an incremental blob channel. 283 */ 284 static int SQLITE_TCLAPI incrblobOutput( 285 ClientData instanceData, 286 CONST char *buf, 287 int toWrite, 288 int *errorCodePtr 289 ){ 290 IncrblobChannel *p = (IncrblobChannel *)instanceData; 291 int nWrite = toWrite; /* Number of bytes to write */ 292 int nBlob; /* Total size of the blob */ 293 int rc; /* sqlite error code */ 294 295 nBlob = sqlite3_blob_bytes(p->pBlob); 296 if( (p->iSeek+nWrite)>nBlob ){ 297 *errorCodePtr = EINVAL; 298 return -1; 299 } 300 if( nWrite<=0 ){ 301 return 0; 302 } 303 304 rc = sqlite3_blob_write(p->pBlob, (void *)buf, nWrite, p->iSeek); 305 if( rc!=SQLITE_OK ){ 306 *errorCodePtr = EIO; 307 return -1; 308 } 309 310 p->iSeek += nWrite; 311 return nWrite; 312 } 313 314 /* 315 ** Seek an incremental blob channel. 316 */ 317 static int SQLITE_TCLAPI incrblobSeek( 318 ClientData instanceData, 319 long offset, 320 int seekMode, 321 int *errorCodePtr 322 ){ 323 IncrblobChannel *p = (IncrblobChannel *)instanceData; 324 325 switch( seekMode ){ 326 case SEEK_SET: 327 p->iSeek = offset; 328 break; 329 case SEEK_CUR: 330 p->iSeek += offset; 331 break; 332 case SEEK_END: 333 p->iSeek = sqlite3_blob_bytes(p->pBlob) + offset; 334 break; 335 336 default: assert(!"Bad seekMode"); 337 } 338 339 return p->iSeek; 340 } 341 342 343 static void SQLITE_TCLAPI incrblobWatch( 344 ClientData instanceData, 345 int mode 346 ){ 347 /* NO-OP */ 348 } 349 static int SQLITE_TCLAPI incrblobHandle( 350 ClientData instanceData, 351 int dir, 352 ClientData *hPtr 353 ){ 354 return TCL_ERROR; 355 } 356 357 static Tcl_ChannelType IncrblobChannelType = { 358 "incrblob", /* typeName */ 359 TCL_CHANNEL_VERSION_2, /* version */ 360 incrblobClose, /* closeProc */ 361 incrblobInput, /* inputProc */ 362 incrblobOutput, /* outputProc */ 363 incrblobSeek, /* seekProc */ 364 0, /* setOptionProc */ 365 0, /* getOptionProc */ 366 incrblobWatch, /* watchProc (this is a no-op) */ 367 incrblobHandle, /* getHandleProc (always returns error) */ 368 0, /* close2Proc */ 369 0, /* blockModeProc */ 370 0, /* flushProc */ 371 0, /* handlerProc */ 372 0, /* wideSeekProc */ 373 }; 374 375 /* 376 ** Create a new incrblob channel. 377 */ 378 static int createIncrblobChannel( 379 Tcl_Interp *interp, 380 SqliteDb *pDb, 381 const char *zDb, 382 const char *zTable, 383 const char *zColumn, 384 sqlite_int64 iRow, 385 int isReadonly 386 ){ 387 IncrblobChannel *p; 388 sqlite3 *db = pDb->db; 389 sqlite3_blob *pBlob; 390 int rc; 391 int flags = TCL_READABLE|(isReadonly ? 0 : TCL_WRITABLE); 392 393 /* This variable is used to name the channels: "incrblob_[incr count]" */ 394 static int count = 0; 395 char zChannel[64]; 396 397 rc = sqlite3_blob_open(db, zDb, zTable, zColumn, iRow, !isReadonly, &pBlob); 398 if( rc!=SQLITE_OK ){ 399 Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE); 400 return TCL_ERROR; 401 } 402 403 p = (IncrblobChannel *)Tcl_Alloc(sizeof(IncrblobChannel)); 404 p->iSeek = 0; 405 p->pBlob = pBlob; 406 407 sqlite3_snprintf(sizeof(zChannel), zChannel, "incrblob_%d", ++count); 408 p->channel = Tcl_CreateChannel(&IncrblobChannelType, zChannel, p, flags); 409 Tcl_RegisterChannel(interp, p->channel); 410 411 /* Link the new channel into the SqliteDb.pIncrblob list. */ 412 p->pNext = pDb->pIncrblob; 413 p->pPrev = 0; 414 if( p->pNext ){ 415 p->pNext->pPrev = p; 416 } 417 pDb->pIncrblob = p; 418 p->pDb = pDb; 419 420 Tcl_SetResult(interp, (char *)Tcl_GetChannelName(p->channel), TCL_VOLATILE); 421 return TCL_OK; 422 } 423 #else /* else clause for "#ifndef SQLITE_OMIT_INCRBLOB" */ 424 #define closeIncrblobChannels(pDb) 425 #endif 426 427 /* 428 ** Look at the script prefix in pCmd. We will be executing this script 429 ** after first appending one or more arguments. This routine analyzes 430 ** the script to see if it is safe to use Tcl_EvalObjv() on the script 431 ** rather than the more general Tcl_EvalEx(). Tcl_EvalObjv() is much 432 ** faster. 433 ** 434 ** Scripts that are safe to use with Tcl_EvalObjv() consists of a 435 ** command name followed by zero or more arguments with no [...] or $ 436 ** or {...} or ; to be seen anywhere. Most callback scripts consist 437 ** of just a single procedure name and they meet this requirement. 438 */ 439 static int safeToUseEvalObjv(Tcl_Interp *interp, Tcl_Obj *pCmd){ 440 /* We could try to do something with Tcl_Parse(). But we will instead 441 ** just do a search for forbidden characters. If any of the forbidden 442 ** characters appear in pCmd, we will report the string as unsafe. 443 */ 444 const char *z; 445 int n; 446 z = Tcl_GetStringFromObj(pCmd, &n); 447 while( n-- > 0 ){ 448 int c = *(z++); 449 if( c=='$' || c=='[' || c==';' ) return 0; 450 } 451 return 1; 452 } 453 454 /* 455 ** Find an SqlFunc structure with the given name. Or create a new 456 ** one if an existing one cannot be found. Return a pointer to the 457 ** structure. 458 */ 459 static SqlFunc *findSqlFunc(SqliteDb *pDb, const char *zName){ 460 SqlFunc *p, *pNew; 461 int nName = strlen30(zName); 462 pNew = (SqlFunc*)Tcl_Alloc( sizeof(*pNew) + nName + 1 ); 463 pNew->zName = (char*)&pNew[1]; 464 memcpy(pNew->zName, zName, nName+1); 465 for(p=pDb->pFunc; p; p=p->pNext){ 466 if( sqlite3_stricmp(p->zName, pNew->zName)==0 ){ 467 Tcl_Free((char*)pNew); 468 return p; 469 } 470 } 471 pNew->interp = pDb->interp; 472 pNew->pDb = pDb; 473 pNew->pScript = 0; 474 pNew->pNext = pDb->pFunc; 475 pDb->pFunc = pNew; 476 return pNew; 477 } 478 479 /* 480 ** Free a single SqlPreparedStmt object. 481 */ 482 static void dbFreeStmt(SqlPreparedStmt *pStmt){ 483 #ifdef SQLITE_TEST 484 if( sqlite3_sql(pStmt->pStmt)==0 ){ 485 Tcl_Free((char *)pStmt->zSql); 486 } 487 #endif 488 sqlite3_finalize(pStmt->pStmt); 489 Tcl_Free((char *)pStmt); 490 } 491 492 /* 493 ** Finalize and free a list of prepared statements 494 */ 495 static void flushStmtCache(SqliteDb *pDb){ 496 SqlPreparedStmt *pPreStmt; 497 SqlPreparedStmt *pNext; 498 499 for(pPreStmt = pDb->stmtList; pPreStmt; pPreStmt=pNext){ 500 pNext = pPreStmt->pNext; 501 dbFreeStmt(pPreStmt); 502 } 503 pDb->nStmt = 0; 504 pDb->stmtLast = 0; 505 pDb->stmtList = 0; 506 } 507 508 /* 509 ** TCL calls this procedure when an sqlite3 database command is 510 ** deleted. 511 */ 512 static void SQLITE_TCLAPI DbDeleteCmd(void *db){ 513 SqliteDb *pDb = (SqliteDb*)db; 514 flushStmtCache(pDb); 515 closeIncrblobChannels(pDb); 516 sqlite3_close(pDb->db); 517 while( pDb->pFunc ){ 518 SqlFunc *pFunc = pDb->pFunc; 519 pDb->pFunc = pFunc->pNext; 520 assert( pFunc->pDb==pDb ); 521 Tcl_DecrRefCount(pFunc->pScript); 522 Tcl_Free((char*)pFunc); 523 } 524 while( pDb->pCollate ){ 525 SqlCollate *pCollate = pDb->pCollate; 526 pDb->pCollate = pCollate->pNext; 527 Tcl_Free((char*)pCollate); 528 } 529 if( pDb->zBusy ){ 530 Tcl_Free(pDb->zBusy); 531 } 532 if( pDb->zTrace ){ 533 Tcl_Free(pDb->zTrace); 534 } 535 if( pDb->zTraceV2 ){ 536 Tcl_Free(pDb->zTraceV2); 537 } 538 if( pDb->zProfile ){ 539 Tcl_Free(pDb->zProfile); 540 } 541 if( pDb->zAuth ){ 542 Tcl_Free(pDb->zAuth); 543 } 544 if( pDb->zNull ){ 545 Tcl_Free(pDb->zNull); 546 } 547 if( pDb->pUpdateHook ){ 548 Tcl_DecrRefCount(pDb->pUpdateHook); 549 } 550 if( pDb->pPreUpdateHook ){ 551 Tcl_DecrRefCount(pDb->pPreUpdateHook); 552 } 553 if( pDb->pRollbackHook ){ 554 Tcl_DecrRefCount(pDb->pRollbackHook); 555 } 556 if( pDb->pWalHook ){ 557 Tcl_DecrRefCount(pDb->pWalHook); 558 } 559 if( pDb->pCollateNeeded ){ 560 Tcl_DecrRefCount(pDb->pCollateNeeded); 561 } 562 Tcl_Free((char*)pDb); 563 } 564 565 /* 566 ** This routine is called when a database file is locked while trying 567 ** to execute SQL. 568 */ 569 static int DbBusyHandler(void *cd, int nTries){ 570 SqliteDb *pDb = (SqliteDb*)cd; 571 int rc; 572 char zVal[30]; 573 574 sqlite3_snprintf(sizeof(zVal), zVal, "%d", nTries); 575 rc = Tcl_VarEval(pDb->interp, pDb->zBusy, " ", zVal, (char*)0); 576 if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){ 577 return 0; 578 } 579 return 1; 580 } 581 582 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK 583 /* 584 ** This routine is invoked as the 'progress callback' for the database. 585 */ 586 static int DbProgressHandler(void *cd){ 587 SqliteDb *pDb = (SqliteDb*)cd; 588 int rc; 589 590 assert( pDb->zProgress ); 591 rc = Tcl_Eval(pDb->interp, pDb->zProgress); 592 if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){ 593 return 1; 594 } 595 return 0; 596 } 597 #endif 598 599 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT) && \ 600 !defined(SQLITE_OMIT_DEPRECATED) 601 /* 602 ** This routine is called by the SQLite trace handler whenever a new 603 ** block of SQL is executed. The TCL script in pDb->zTrace is executed. 604 */ 605 static void DbTraceHandler(void *cd, const char *zSql){ 606 SqliteDb *pDb = (SqliteDb*)cd; 607 Tcl_DString str; 608 609 Tcl_DStringInit(&str); 610 Tcl_DStringAppend(&str, pDb->zTrace, -1); 611 Tcl_DStringAppendElement(&str, zSql); 612 Tcl_Eval(pDb->interp, Tcl_DStringValue(&str)); 613 Tcl_DStringFree(&str); 614 Tcl_ResetResult(pDb->interp); 615 } 616 #endif 617 618 #ifndef SQLITE_OMIT_TRACE 619 /* 620 ** This routine is called by the SQLite trace_v2 handler whenever a new 621 ** supported event is generated. Unsupported event types are ignored. 622 ** The TCL script in pDb->zTraceV2 is executed, with the arguments for 623 ** the event appended to it (as list elements). 624 */ 625 static int DbTraceV2Handler( 626 unsigned type, /* One of the SQLITE_TRACE_* event types. */ 627 void *cd, /* The original context data pointer. */ 628 void *pd, /* Primary event data, depends on event type. */ 629 void *xd /* Extra event data, depends on event type. */ 630 ){ 631 SqliteDb *pDb = (SqliteDb*)cd; 632 Tcl_Obj *pCmd; 633 634 switch( type ){ 635 case SQLITE_TRACE_STMT: { 636 sqlite3_stmt *pStmt = (sqlite3_stmt *)pd; 637 char *zSql = (char *)xd; 638 639 pCmd = Tcl_NewStringObj(pDb->zTraceV2, -1); 640 Tcl_IncrRefCount(pCmd); 641 Tcl_ListObjAppendElement(pDb->interp, pCmd, 642 Tcl_NewWideIntObj((Tcl_WideInt)pStmt)); 643 Tcl_ListObjAppendElement(pDb->interp, pCmd, 644 Tcl_NewStringObj(zSql, -1)); 645 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 646 Tcl_DecrRefCount(pCmd); 647 Tcl_ResetResult(pDb->interp); 648 break; 649 } 650 case SQLITE_TRACE_PROFILE: { 651 sqlite3_stmt *pStmt = (sqlite3_stmt *)pd; 652 sqlite3_int64 ns = (sqlite3_int64)xd; 653 654 pCmd = Tcl_NewStringObj(pDb->zTraceV2, -1); 655 Tcl_IncrRefCount(pCmd); 656 Tcl_ListObjAppendElement(pDb->interp, pCmd, 657 Tcl_NewWideIntObj((Tcl_WideInt)pStmt)); 658 Tcl_ListObjAppendElement(pDb->interp, pCmd, 659 Tcl_NewWideIntObj((Tcl_WideInt)ns)); 660 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 661 Tcl_DecrRefCount(pCmd); 662 Tcl_ResetResult(pDb->interp); 663 break; 664 } 665 case SQLITE_TRACE_ROW: { 666 sqlite3_stmt *pStmt = (sqlite3_stmt *)pd; 667 668 pCmd = Tcl_NewStringObj(pDb->zTraceV2, -1); 669 Tcl_IncrRefCount(pCmd); 670 Tcl_ListObjAppendElement(pDb->interp, pCmd, 671 Tcl_NewWideIntObj((Tcl_WideInt)pStmt)); 672 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 673 Tcl_DecrRefCount(pCmd); 674 Tcl_ResetResult(pDb->interp); 675 break; 676 } 677 case SQLITE_TRACE_CLOSE: { 678 sqlite3 *db = (sqlite3 *)pd; 679 680 pCmd = Tcl_NewStringObj(pDb->zTraceV2, -1); 681 Tcl_IncrRefCount(pCmd); 682 Tcl_ListObjAppendElement(pDb->interp, pCmd, 683 Tcl_NewWideIntObj((Tcl_WideInt)db)); 684 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 685 Tcl_DecrRefCount(pCmd); 686 Tcl_ResetResult(pDb->interp); 687 break; 688 } 689 } 690 return SQLITE_OK; 691 } 692 #endif 693 694 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT) && \ 695 !defined(SQLITE_OMIT_DEPRECATED) 696 /* 697 ** This routine is called by the SQLite profile handler after a statement 698 ** SQL has executed. The TCL script in pDb->zProfile is evaluated. 699 */ 700 static void DbProfileHandler(void *cd, const char *zSql, sqlite_uint64 tm){ 701 SqliteDb *pDb = (SqliteDb*)cd; 702 Tcl_DString str; 703 char zTm[100]; 704 705 sqlite3_snprintf(sizeof(zTm)-1, zTm, "%lld", tm); 706 Tcl_DStringInit(&str); 707 Tcl_DStringAppend(&str, pDb->zProfile, -1); 708 Tcl_DStringAppendElement(&str, zSql); 709 Tcl_DStringAppendElement(&str, zTm); 710 Tcl_Eval(pDb->interp, Tcl_DStringValue(&str)); 711 Tcl_DStringFree(&str); 712 Tcl_ResetResult(pDb->interp); 713 } 714 #endif 715 716 /* 717 ** This routine is called when a transaction is committed. The 718 ** TCL script in pDb->zCommit is executed. If it returns non-zero or 719 ** if it throws an exception, the transaction is rolled back instead 720 ** of being committed. 721 */ 722 static int DbCommitHandler(void *cd){ 723 SqliteDb *pDb = (SqliteDb*)cd; 724 int rc; 725 726 rc = Tcl_Eval(pDb->interp, pDb->zCommit); 727 if( rc!=TCL_OK || atoi(Tcl_GetStringResult(pDb->interp)) ){ 728 return 1; 729 } 730 return 0; 731 } 732 733 static void DbRollbackHandler(void *clientData){ 734 SqliteDb *pDb = (SqliteDb*)clientData; 735 assert(pDb->pRollbackHook); 736 if( TCL_OK!=Tcl_EvalObjEx(pDb->interp, pDb->pRollbackHook, 0) ){ 737 Tcl_BackgroundError(pDb->interp); 738 } 739 } 740 741 /* 742 ** This procedure handles wal_hook callbacks. 743 */ 744 static int DbWalHandler( 745 void *clientData, 746 sqlite3 *db, 747 const char *zDb, 748 int nEntry 749 ){ 750 int ret = SQLITE_OK; 751 Tcl_Obj *p; 752 SqliteDb *pDb = (SqliteDb*)clientData; 753 Tcl_Interp *interp = pDb->interp; 754 assert(pDb->pWalHook); 755 756 assert( db==pDb->db ); 757 p = Tcl_DuplicateObj(pDb->pWalHook); 758 Tcl_IncrRefCount(p); 759 Tcl_ListObjAppendElement(interp, p, Tcl_NewStringObj(zDb, -1)); 760 Tcl_ListObjAppendElement(interp, p, Tcl_NewIntObj(nEntry)); 761 if( TCL_OK!=Tcl_EvalObjEx(interp, p, 0) 762 || TCL_OK!=Tcl_GetIntFromObj(interp, Tcl_GetObjResult(interp), &ret) 763 ){ 764 Tcl_BackgroundError(interp); 765 } 766 Tcl_DecrRefCount(p); 767 768 return ret; 769 } 770 771 #if defined(SQLITE_TEST) && defined(SQLITE_ENABLE_UNLOCK_NOTIFY) 772 static void setTestUnlockNotifyVars(Tcl_Interp *interp, int iArg, int nArg){ 773 char zBuf[64]; 774 sqlite3_snprintf(sizeof(zBuf), zBuf, "%d", iArg); 775 Tcl_SetVar(interp, "sqlite_unlock_notify_arg", zBuf, TCL_GLOBAL_ONLY); 776 sqlite3_snprintf(sizeof(zBuf), zBuf, "%d", nArg); 777 Tcl_SetVar(interp, "sqlite_unlock_notify_argcount", zBuf, TCL_GLOBAL_ONLY); 778 } 779 #else 780 # define setTestUnlockNotifyVars(x,y,z) 781 #endif 782 783 #ifdef SQLITE_ENABLE_UNLOCK_NOTIFY 784 static void DbUnlockNotify(void **apArg, int nArg){ 785 int i; 786 for(i=0; i<nArg; i++){ 787 const int flags = (TCL_EVAL_GLOBAL|TCL_EVAL_DIRECT); 788 SqliteDb *pDb = (SqliteDb *)apArg[i]; 789 setTestUnlockNotifyVars(pDb->interp, i, nArg); 790 assert( pDb->pUnlockNotify); 791 Tcl_EvalObjEx(pDb->interp, pDb->pUnlockNotify, flags); 792 Tcl_DecrRefCount(pDb->pUnlockNotify); 793 pDb->pUnlockNotify = 0; 794 } 795 } 796 #endif 797 798 #ifdef SQLITE_ENABLE_PREUPDATE_HOOK 799 /* 800 ** Pre-update hook callback. 801 */ 802 static void DbPreUpdateHandler( 803 void *p, 804 sqlite3 *db, 805 int op, 806 const char *zDb, 807 const char *zTbl, 808 sqlite_int64 iKey1, 809 sqlite_int64 iKey2 810 ){ 811 SqliteDb *pDb = (SqliteDb *)p; 812 Tcl_Obj *pCmd; 813 static const char *azStr[] = {"DELETE", "INSERT", "UPDATE"}; 814 815 assert( (SQLITE_DELETE-1)/9 == 0 ); 816 assert( (SQLITE_INSERT-1)/9 == 1 ); 817 assert( (SQLITE_UPDATE-1)/9 == 2 ); 818 assert( pDb->pPreUpdateHook ); 819 assert( db==pDb->db ); 820 assert( op==SQLITE_INSERT || op==SQLITE_UPDATE || op==SQLITE_DELETE ); 821 822 pCmd = Tcl_DuplicateObj(pDb->pPreUpdateHook); 823 Tcl_IncrRefCount(pCmd); 824 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(azStr[(op-1)/9], -1)); 825 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zDb, -1)); 826 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zTbl, -1)); 827 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewWideIntObj(iKey1)); 828 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewWideIntObj(iKey2)); 829 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 830 Tcl_DecrRefCount(pCmd); 831 } 832 #endif /* SQLITE_ENABLE_PREUPDATE_HOOK */ 833 834 static void DbUpdateHandler( 835 void *p, 836 int op, 837 const char *zDb, 838 const char *zTbl, 839 sqlite_int64 rowid 840 ){ 841 SqliteDb *pDb = (SqliteDb *)p; 842 Tcl_Obj *pCmd; 843 static const char *azStr[] = {"DELETE", "INSERT", "UPDATE"}; 844 845 assert( (SQLITE_DELETE-1)/9 == 0 ); 846 assert( (SQLITE_INSERT-1)/9 == 1 ); 847 assert( (SQLITE_UPDATE-1)/9 == 2 ); 848 849 assert( pDb->pUpdateHook ); 850 assert( op==SQLITE_INSERT || op==SQLITE_UPDATE || op==SQLITE_DELETE ); 851 852 pCmd = Tcl_DuplicateObj(pDb->pUpdateHook); 853 Tcl_IncrRefCount(pCmd); 854 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(azStr[(op-1)/9], -1)); 855 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zDb, -1)); 856 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewStringObj(zTbl, -1)); 857 Tcl_ListObjAppendElement(0, pCmd, Tcl_NewWideIntObj(rowid)); 858 Tcl_EvalObjEx(pDb->interp, pCmd, TCL_EVAL_DIRECT); 859 Tcl_DecrRefCount(pCmd); 860 } 861 862 static void tclCollateNeeded( 863 void *pCtx, 864 sqlite3 *db, 865 int enc, 866 const char *zName 867 ){ 868 SqliteDb *pDb = (SqliteDb *)pCtx; 869 Tcl_Obj *pScript = Tcl_DuplicateObj(pDb->pCollateNeeded); 870 Tcl_IncrRefCount(pScript); 871 Tcl_ListObjAppendElement(0, pScript, Tcl_NewStringObj(zName, -1)); 872 Tcl_EvalObjEx(pDb->interp, pScript, 0); 873 Tcl_DecrRefCount(pScript); 874 } 875 876 /* 877 ** This routine is called to evaluate an SQL collation function implemented 878 ** using TCL script. 879 */ 880 static int tclSqlCollate( 881 void *pCtx, 882 int nA, 883 const void *zA, 884 int nB, 885 const void *zB 886 ){ 887 SqlCollate *p = (SqlCollate *)pCtx; 888 Tcl_Obj *pCmd; 889 890 pCmd = Tcl_NewStringObj(p->zScript, -1); 891 Tcl_IncrRefCount(pCmd); 892 Tcl_ListObjAppendElement(p->interp, pCmd, Tcl_NewStringObj(zA, nA)); 893 Tcl_ListObjAppendElement(p->interp, pCmd, Tcl_NewStringObj(zB, nB)); 894 Tcl_EvalObjEx(p->interp, pCmd, TCL_EVAL_DIRECT); 895 Tcl_DecrRefCount(pCmd); 896 return (atoi(Tcl_GetStringResult(p->interp))); 897 } 898 899 /* 900 ** This routine is called to evaluate an SQL function implemented 901 ** using TCL script. 902 */ 903 static void tclSqlFunc(sqlite3_context *context, int argc, sqlite3_value**argv){ 904 SqlFunc *p = sqlite3_user_data(context); 905 Tcl_Obj *pCmd; 906 int i; 907 int rc; 908 909 if( argc==0 ){ 910 /* If there are no arguments to the function, call Tcl_EvalObjEx on the 911 ** script object directly. This allows the TCL compiler to generate 912 ** bytecode for the command on the first invocation and thus make 913 ** subsequent invocations much faster. */ 914 pCmd = p->pScript; 915 Tcl_IncrRefCount(pCmd); 916 rc = Tcl_EvalObjEx(p->interp, pCmd, 0); 917 Tcl_DecrRefCount(pCmd); 918 }else{ 919 /* If there are arguments to the function, make a shallow copy of the 920 ** script object, lappend the arguments, then evaluate the copy. 921 ** 922 ** By "shallow" copy, we mean only the outer list Tcl_Obj is duplicated. 923 ** The new Tcl_Obj contains pointers to the original list elements. 924 ** That way, when Tcl_EvalObjv() is run and shimmers the first element 925 ** of the list to tclCmdNameType, that alternate representation will 926 ** be preserved and reused on the next invocation. 927 */ 928 Tcl_Obj **aArg; 929 int nArg; 930 if( Tcl_ListObjGetElements(p->interp, p->pScript, &nArg, &aArg) ){ 931 sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1); 932 return; 933 } 934 pCmd = Tcl_NewListObj(nArg, aArg); 935 Tcl_IncrRefCount(pCmd); 936 for(i=0; i<argc; i++){ 937 sqlite3_value *pIn = argv[i]; 938 Tcl_Obj *pVal; 939 940 /* Set pVal to contain the i'th column of this row. */ 941 switch( sqlite3_value_type(pIn) ){ 942 case SQLITE_BLOB: { 943 int bytes = sqlite3_value_bytes(pIn); 944 pVal = Tcl_NewByteArrayObj(sqlite3_value_blob(pIn), bytes); 945 break; 946 } 947 case SQLITE_INTEGER: { 948 sqlite_int64 v = sqlite3_value_int64(pIn); 949 if( v>=-2147483647 && v<=2147483647 ){ 950 pVal = Tcl_NewIntObj((int)v); 951 }else{ 952 pVal = Tcl_NewWideIntObj(v); 953 } 954 break; 955 } 956 case SQLITE_FLOAT: { 957 double r = sqlite3_value_double(pIn); 958 pVal = Tcl_NewDoubleObj(r); 959 break; 960 } 961 case SQLITE_NULL: { 962 pVal = Tcl_NewStringObj(p->pDb->zNull, -1); 963 break; 964 } 965 default: { 966 int bytes = sqlite3_value_bytes(pIn); 967 pVal = Tcl_NewStringObj((char *)sqlite3_value_text(pIn), bytes); 968 break; 969 } 970 } 971 rc = Tcl_ListObjAppendElement(p->interp, pCmd, pVal); 972 if( rc ){ 973 Tcl_DecrRefCount(pCmd); 974 sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1); 975 return; 976 } 977 } 978 if( !p->useEvalObjv ){ 979 /* Tcl_EvalObjEx() will automatically call Tcl_EvalObjv() if pCmd 980 ** is a list without a string representation. To prevent this from 981 ** happening, make sure pCmd has a valid string representation */ 982 Tcl_GetString(pCmd); 983 } 984 rc = Tcl_EvalObjEx(p->interp, pCmd, TCL_EVAL_DIRECT); 985 Tcl_DecrRefCount(pCmd); 986 } 987 988 if( rc && rc!=TCL_RETURN ){ 989 sqlite3_result_error(context, Tcl_GetStringResult(p->interp), -1); 990 }else{ 991 Tcl_Obj *pVar = Tcl_GetObjResult(p->interp); 992 int n; 993 u8 *data; 994 const char *zType = (pVar->typePtr ? pVar->typePtr->name : ""); 995 char c = zType[0]; 996 if( c=='b' && strcmp(zType,"bytearray")==0 && pVar->bytes==0 ){ 997 /* Only return a BLOB type if the Tcl variable is a bytearray and 998 ** has no string representation. */ 999 data = Tcl_GetByteArrayFromObj(pVar, &n); 1000 sqlite3_result_blob(context, data, n, SQLITE_TRANSIENT); 1001 }else if( c=='b' && strcmp(zType,"boolean")==0 ){ 1002 Tcl_GetIntFromObj(0, pVar, &n); 1003 sqlite3_result_int(context, n); 1004 }else if( c=='d' && strcmp(zType,"double")==0 ){ 1005 double r; 1006 Tcl_GetDoubleFromObj(0, pVar, &r); 1007 sqlite3_result_double(context, r); 1008 }else if( (c=='w' && strcmp(zType,"wideInt")==0) || 1009 (c=='i' && strcmp(zType,"int")==0) ){ 1010 Tcl_WideInt v; 1011 Tcl_GetWideIntFromObj(0, pVar, &v); 1012 sqlite3_result_int64(context, v); 1013 }else{ 1014 data = (unsigned char *)Tcl_GetStringFromObj(pVar, &n); 1015 sqlite3_result_text(context, (char *)data, n, SQLITE_TRANSIENT); 1016 } 1017 } 1018 } 1019 1020 #ifndef SQLITE_OMIT_AUTHORIZATION 1021 /* 1022 ** This is the authentication function. It appends the authentication 1023 ** type code and the two arguments to zCmd[] then invokes the result 1024 ** on the interpreter. The reply is examined to determine if the 1025 ** authentication fails or succeeds. 1026 */ 1027 static int auth_callback( 1028 void *pArg, 1029 int code, 1030 const char *zArg1, 1031 const char *zArg2, 1032 const char *zArg3, 1033 const char *zArg4 1034 #ifdef SQLITE_USER_AUTHENTICATION 1035 ,const char *zArg5 1036 #endif 1037 ){ 1038 const char *zCode; 1039 Tcl_DString str; 1040 int rc; 1041 const char *zReply; 1042 /* EVIDENCE-OF: R-38590-62769 The first parameter to the authorizer 1043 ** callback is a copy of the third parameter to the 1044 ** sqlite3_set_authorizer() interface. 1045 */ 1046 SqliteDb *pDb = (SqliteDb*)pArg; 1047 if( pDb->disableAuth ) return SQLITE_OK; 1048 1049 /* EVIDENCE-OF: R-56518-44310 The second parameter to the callback is an 1050 ** integer action code that specifies the particular action to be 1051 ** authorized. */ 1052 switch( code ){ 1053 case SQLITE_COPY : zCode="SQLITE_COPY"; break; 1054 case SQLITE_CREATE_INDEX : zCode="SQLITE_CREATE_INDEX"; break; 1055 case SQLITE_CREATE_TABLE : zCode="SQLITE_CREATE_TABLE"; break; 1056 case SQLITE_CREATE_TEMP_INDEX : zCode="SQLITE_CREATE_TEMP_INDEX"; break; 1057 case SQLITE_CREATE_TEMP_TABLE : zCode="SQLITE_CREATE_TEMP_TABLE"; break; 1058 case SQLITE_CREATE_TEMP_TRIGGER: zCode="SQLITE_CREATE_TEMP_TRIGGER"; break; 1059 case SQLITE_CREATE_TEMP_VIEW : zCode="SQLITE_CREATE_TEMP_VIEW"; break; 1060 case SQLITE_CREATE_TRIGGER : zCode="SQLITE_CREATE_TRIGGER"; break; 1061 case SQLITE_CREATE_VIEW : zCode="SQLITE_CREATE_VIEW"; break; 1062 case SQLITE_DELETE : zCode="SQLITE_DELETE"; break; 1063 case SQLITE_DROP_INDEX : zCode="SQLITE_DROP_INDEX"; break; 1064 case SQLITE_DROP_TABLE : zCode="SQLITE_DROP_TABLE"; break; 1065 case SQLITE_DROP_TEMP_INDEX : zCode="SQLITE_DROP_TEMP_INDEX"; break; 1066 case SQLITE_DROP_TEMP_TABLE : zCode="SQLITE_DROP_TEMP_TABLE"; break; 1067 case SQLITE_DROP_TEMP_TRIGGER : zCode="SQLITE_DROP_TEMP_TRIGGER"; break; 1068 case SQLITE_DROP_TEMP_VIEW : zCode="SQLITE_DROP_TEMP_VIEW"; break; 1069 case SQLITE_DROP_TRIGGER : zCode="SQLITE_DROP_TRIGGER"; break; 1070 case SQLITE_DROP_VIEW : zCode="SQLITE_DROP_VIEW"; break; 1071 case SQLITE_INSERT : zCode="SQLITE_INSERT"; break; 1072 case SQLITE_PRAGMA : zCode="SQLITE_PRAGMA"; break; 1073 case SQLITE_READ : zCode="SQLITE_READ"; break; 1074 case SQLITE_SELECT : zCode="SQLITE_SELECT"; break; 1075 case SQLITE_TRANSACTION : zCode="SQLITE_TRANSACTION"; break; 1076 case SQLITE_UPDATE : zCode="SQLITE_UPDATE"; break; 1077 case SQLITE_ATTACH : zCode="SQLITE_ATTACH"; break; 1078 case SQLITE_DETACH : zCode="SQLITE_DETACH"; break; 1079 case SQLITE_ALTER_TABLE : zCode="SQLITE_ALTER_TABLE"; break; 1080 case SQLITE_REINDEX : zCode="SQLITE_REINDEX"; break; 1081 case SQLITE_ANALYZE : zCode="SQLITE_ANALYZE"; break; 1082 case SQLITE_CREATE_VTABLE : zCode="SQLITE_CREATE_VTABLE"; break; 1083 case SQLITE_DROP_VTABLE : zCode="SQLITE_DROP_VTABLE"; break; 1084 case SQLITE_FUNCTION : zCode="SQLITE_FUNCTION"; break; 1085 case SQLITE_SAVEPOINT : zCode="SQLITE_SAVEPOINT"; break; 1086 case SQLITE_RECURSIVE : zCode="SQLITE_RECURSIVE"; break; 1087 default : zCode="????"; break; 1088 } 1089 Tcl_DStringInit(&str); 1090 Tcl_DStringAppend(&str, pDb->zAuth, -1); 1091 Tcl_DStringAppendElement(&str, zCode); 1092 Tcl_DStringAppendElement(&str, zArg1 ? zArg1 : ""); 1093 Tcl_DStringAppendElement(&str, zArg2 ? zArg2 : ""); 1094 Tcl_DStringAppendElement(&str, zArg3 ? zArg3 : ""); 1095 Tcl_DStringAppendElement(&str, zArg4 ? zArg4 : ""); 1096 #ifdef SQLITE_USER_AUTHENTICATION 1097 Tcl_DStringAppendElement(&str, zArg5 ? zArg5 : ""); 1098 #endif 1099 rc = Tcl_GlobalEval(pDb->interp, Tcl_DStringValue(&str)); 1100 Tcl_DStringFree(&str); 1101 zReply = rc==TCL_OK ? Tcl_GetStringResult(pDb->interp) : "SQLITE_DENY"; 1102 if( strcmp(zReply,"SQLITE_OK")==0 ){ 1103 rc = SQLITE_OK; 1104 }else if( strcmp(zReply,"SQLITE_DENY")==0 ){ 1105 rc = SQLITE_DENY; 1106 }else if( strcmp(zReply,"SQLITE_IGNORE")==0 ){ 1107 rc = SQLITE_IGNORE; 1108 }else{ 1109 rc = 999; 1110 } 1111 return rc; 1112 } 1113 #endif /* SQLITE_OMIT_AUTHORIZATION */ 1114 1115 /* 1116 ** This routine reads a line of text from FILE in, stores 1117 ** the text in memory obtained from malloc() and returns a pointer 1118 ** to the text. NULL is returned at end of file, or if malloc() 1119 ** fails. 1120 ** 1121 ** The interface is like "readline" but no command-line editing 1122 ** is done. 1123 ** 1124 ** copied from shell.c from '.import' command 1125 */ 1126 static char *local_getline(char *zPrompt, FILE *in){ 1127 char *zLine; 1128 int nLine; 1129 int n; 1130 1131 nLine = 100; 1132 zLine = malloc( nLine ); 1133 if( zLine==0 ) return 0; 1134 n = 0; 1135 while( 1 ){ 1136 if( n+100>nLine ){ 1137 nLine = nLine*2 + 100; 1138 zLine = realloc(zLine, nLine); 1139 if( zLine==0 ) return 0; 1140 } 1141 if( fgets(&zLine[n], nLine - n, in)==0 ){ 1142 if( n==0 ){ 1143 free(zLine); 1144 return 0; 1145 } 1146 zLine[n] = 0; 1147 break; 1148 } 1149 while( zLine[n] ){ n++; } 1150 if( n>0 && zLine[n-1]=='\n' ){ 1151 n--; 1152 zLine[n] = 0; 1153 break; 1154 } 1155 } 1156 zLine = realloc( zLine, n+1 ); 1157 return zLine; 1158 } 1159 1160 1161 /* 1162 ** This function is part of the implementation of the command: 1163 ** 1164 ** $db transaction [-deferred|-immediate|-exclusive] SCRIPT 1165 ** 1166 ** It is invoked after evaluating the script SCRIPT to commit or rollback 1167 ** the transaction or savepoint opened by the [transaction] command. 1168 */ 1169 static int SQLITE_TCLAPI DbTransPostCmd( 1170 ClientData data[], /* data[0] is the Sqlite3Db* for $db */ 1171 Tcl_Interp *interp, /* Tcl interpreter */ 1172 int result /* Result of evaluating SCRIPT */ 1173 ){ 1174 static const char *const azEnd[] = { 1175 "RELEASE _tcl_transaction", /* rc==TCL_ERROR, nTransaction!=0 */ 1176 "COMMIT", /* rc!=TCL_ERROR, nTransaction==0 */ 1177 "ROLLBACK TO _tcl_transaction ; RELEASE _tcl_transaction", 1178 "ROLLBACK" /* rc==TCL_ERROR, nTransaction==0 */ 1179 }; 1180 SqliteDb *pDb = (SqliteDb*)data[0]; 1181 int rc = result; 1182 const char *zEnd; 1183 1184 pDb->nTransaction--; 1185 zEnd = azEnd[(rc==TCL_ERROR)*2 + (pDb->nTransaction==0)]; 1186 1187 pDb->disableAuth++; 1188 if( sqlite3_exec(pDb->db, zEnd, 0, 0, 0) ){ 1189 /* This is a tricky scenario to handle. The most likely cause of an 1190 ** error is that the exec() above was an attempt to commit the 1191 ** top-level transaction that returned SQLITE_BUSY. Or, less likely, 1192 ** that an IO-error has occurred. In either case, throw a Tcl exception 1193 ** and try to rollback the transaction. 1194 ** 1195 ** But it could also be that the user executed one or more BEGIN, 1196 ** COMMIT, SAVEPOINT, RELEASE or ROLLBACK commands that are confusing 1197 ** this method's logic. Not clear how this would be best handled. 1198 */ 1199 if( rc!=TCL_ERROR ){ 1200 Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), (char*)0); 1201 rc = TCL_ERROR; 1202 } 1203 sqlite3_exec(pDb->db, "ROLLBACK", 0, 0, 0); 1204 } 1205 pDb->disableAuth--; 1206 1207 return rc; 1208 } 1209 1210 /* 1211 ** Unless SQLITE_TEST is defined, this function is a simple wrapper around 1212 ** sqlite3_prepare_v2(). If SQLITE_TEST is defined, then it uses either 1213 ** sqlite3_prepare_v2() or legacy interface sqlite3_prepare(), depending 1214 ** on whether or not the [db_use_legacy_prepare] command has been used to 1215 ** configure the connection. 1216 */ 1217 static int dbPrepare( 1218 SqliteDb *pDb, /* Database object */ 1219 const char *zSql, /* SQL to compile */ 1220 sqlite3_stmt **ppStmt, /* OUT: Prepared statement */ 1221 const char **pzOut /* OUT: Pointer to next SQL statement */ 1222 ){ 1223 unsigned int prepFlags = 0; 1224 #ifdef SQLITE_TEST 1225 if( pDb->bLegacyPrepare ){ 1226 return sqlite3_prepare(pDb->db, zSql, -1, ppStmt, pzOut); 1227 } 1228 #endif 1229 /* If the statement cache is large, use the SQLITE_PREPARE_PERSISTENT 1230 ** flags, which uses less lookaside memory. But if the cache is small, 1231 ** omit that flag to make full use of lookaside */ 1232 if( pDb->maxStmt>5 ) prepFlags = SQLITE_PREPARE_PERSISTENT; 1233 1234 return sqlite3_prepare_v3(pDb->db, zSql, -1, prepFlags, ppStmt, pzOut); 1235 } 1236 1237 /* 1238 ** Search the cache for a prepared-statement object that implements the 1239 ** first SQL statement in the buffer pointed to by parameter zIn. If 1240 ** no such prepared-statement can be found, allocate and prepare a new 1241 ** one. In either case, bind the current values of the relevant Tcl 1242 ** variables to any $var, :var or @var variables in the statement. Before 1243 ** returning, set *ppPreStmt to point to the prepared-statement object. 1244 ** 1245 ** Output parameter *pzOut is set to point to the next SQL statement in 1246 ** buffer zIn, or to the '\0' byte at the end of zIn if there is no 1247 ** next statement. 1248 ** 1249 ** If successful, TCL_OK is returned. Otherwise, TCL_ERROR is returned 1250 ** and an error message loaded into interpreter pDb->interp. 1251 */ 1252 static int dbPrepareAndBind( 1253 SqliteDb *pDb, /* Database object */ 1254 char const *zIn, /* SQL to compile */ 1255 char const **pzOut, /* OUT: Pointer to next SQL statement */ 1256 SqlPreparedStmt **ppPreStmt /* OUT: Object used to cache statement */ 1257 ){ 1258 const char *zSql = zIn; /* Pointer to first SQL statement in zIn */ 1259 sqlite3_stmt *pStmt = 0; /* Prepared statement object */ 1260 SqlPreparedStmt *pPreStmt; /* Pointer to cached statement */ 1261 int nSql; /* Length of zSql in bytes */ 1262 int nVar = 0; /* Number of variables in statement */ 1263 int iParm = 0; /* Next free entry in apParm */ 1264 char c; 1265 int i; 1266 Tcl_Interp *interp = pDb->interp; 1267 1268 *ppPreStmt = 0; 1269 1270 /* Trim spaces from the start of zSql and calculate the remaining length. */ 1271 while( (c = zSql[0])==' ' || c=='\t' || c=='\r' || c=='\n' ){ zSql++; } 1272 nSql = strlen30(zSql); 1273 1274 for(pPreStmt = pDb->stmtList; pPreStmt; pPreStmt=pPreStmt->pNext){ 1275 int n = pPreStmt->nSql; 1276 if( nSql>=n 1277 && memcmp(pPreStmt->zSql, zSql, n)==0 1278 && (zSql[n]==0 || zSql[n-1]==';') 1279 ){ 1280 pStmt = pPreStmt->pStmt; 1281 *pzOut = &zSql[pPreStmt->nSql]; 1282 1283 /* When a prepared statement is found, unlink it from the 1284 ** cache list. It will later be added back to the beginning 1285 ** of the cache list in order to implement LRU replacement. 1286 */ 1287 if( pPreStmt->pPrev ){ 1288 pPreStmt->pPrev->pNext = pPreStmt->pNext; 1289 }else{ 1290 pDb->stmtList = pPreStmt->pNext; 1291 } 1292 if( pPreStmt->pNext ){ 1293 pPreStmt->pNext->pPrev = pPreStmt->pPrev; 1294 }else{ 1295 pDb->stmtLast = pPreStmt->pPrev; 1296 } 1297 pDb->nStmt--; 1298 nVar = sqlite3_bind_parameter_count(pStmt); 1299 break; 1300 } 1301 } 1302 1303 /* If no prepared statement was found. Compile the SQL text. Also allocate 1304 ** a new SqlPreparedStmt structure. */ 1305 if( pPreStmt==0 ){ 1306 int nByte; 1307 1308 if( SQLITE_OK!=dbPrepare(pDb, zSql, &pStmt, pzOut) ){ 1309 Tcl_SetObjResult(interp, Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1)); 1310 return TCL_ERROR; 1311 } 1312 if( pStmt==0 ){ 1313 if( SQLITE_OK!=sqlite3_errcode(pDb->db) ){ 1314 /* A compile-time error in the statement. */ 1315 Tcl_SetObjResult(interp, Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1)); 1316 return TCL_ERROR; 1317 }else{ 1318 /* The statement was a no-op. Continue to the next statement 1319 ** in the SQL string. 1320 */ 1321 return TCL_OK; 1322 } 1323 } 1324 1325 assert( pPreStmt==0 ); 1326 nVar = sqlite3_bind_parameter_count(pStmt); 1327 nByte = sizeof(SqlPreparedStmt) + nVar*sizeof(Tcl_Obj *); 1328 pPreStmt = (SqlPreparedStmt*)Tcl_Alloc(nByte); 1329 memset(pPreStmt, 0, nByte); 1330 1331 pPreStmt->pStmt = pStmt; 1332 pPreStmt->nSql = (int)(*pzOut - zSql); 1333 pPreStmt->zSql = sqlite3_sql(pStmt); 1334 pPreStmt->apParm = (Tcl_Obj **)&pPreStmt[1]; 1335 #ifdef SQLITE_TEST 1336 if( pPreStmt->zSql==0 ){ 1337 char *zCopy = Tcl_Alloc(pPreStmt->nSql + 1); 1338 memcpy(zCopy, zSql, pPreStmt->nSql); 1339 zCopy[pPreStmt->nSql] = '\0'; 1340 pPreStmt->zSql = zCopy; 1341 } 1342 #endif 1343 } 1344 assert( pPreStmt ); 1345 assert( strlen30(pPreStmt->zSql)==pPreStmt->nSql ); 1346 assert( 0==memcmp(pPreStmt->zSql, zSql, pPreStmt->nSql) ); 1347 1348 /* Bind values to parameters that begin with $ or : */ 1349 for(i=1; i<=nVar; i++){ 1350 const char *zVar = sqlite3_bind_parameter_name(pStmt, i); 1351 if( zVar!=0 && (zVar[0]=='$' || zVar[0]==':' || zVar[0]=='@') ){ 1352 Tcl_Obj *pVar = Tcl_GetVar2Ex(interp, &zVar[1], 0, 0); 1353 if( pVar ){ 1354 int n; 1355 u8 *data; 1356 const char *zType = (pVar->typePtr ? pVar->typePtr->name : ""); 1357 c = zType[0]; 1358 if( zVar[0]=='@' || 1359 (c=='b' && strcmp(zType,"bytearray")==0 && pVar->bytes==0) ){ 1360 /* Load a BLOB type if the Tcl variable is a bytearray and 1361 ** it has no string representation or the host 1362 ** parameter name begins with "@". */ 1363 data = Tcl_GetByteArrayFromObj(pVar, &n); 1364 sqlite3_bind_blob(pStmt, i, data, n, SQLITE_STATIC); 1365 Tcl_IncrRefCount(pVar); 1366 pPreStmt->apParm[iParm++] = pVar; 1367 }else if( c=='b' && strcmp(zType,"boolean")==0 ){ 1368 Tcl_GetIntFromObj(interp, pVar, &n); 1369 sqlite3_bind_int(pStmt, i, n); 1370 }else if( c=='d' && strcmp(zType,"double")==0 ){ 1371 double r; 1372 Tcl_GetDoubleFromObj(interp, pVar, &r); 1373 sqlite3_bind_double(pStmt, i, r); 1374 }else if( (c=='w' && strcmp(zType,"wideInt")==0) || 1375 (c=='i' && strcmp(zType,"int")==0) ){ 1376 Tcl_WideInt v; 1377 Tcl_GetWideIntFromObj(interp, pVar, &v); 1378 sqlite3_bind_int64(pStmt, i, v); 1379 }else{ 1380 data = (unsigned char *)Tcl_GetStringFromObj(pVar, &n); 1381 sqlite3_bind_text(pStmt, i, (char *)data, n, SQLITE_STATIC); 1382 Tcl_IncrRefCount(pVar); 1383 pPreStmt->apParm[iParm++] = pVar; 1384 } 1385 }else{ 1386 sqlite3_bind_null(pStmt, i); 1387 } 1388 } 1389 } 1390 pPreStmt->nParm = iParm; 1391 *ppPreStmt = pPreStmt; 1392 1393 return TCL_OK; 1394 } 1395 1396 /* 1397 ** Release a statement reference obtained by calling dbPrepareAndBind(). 1398 ** There should be exactly one call to this function for each call to 1399 ** dbPrepareAndBind(). 1400 ** 1401 ** If the discard parameter is non-zero, then the statement is deleted 1402 ** immediately. Otherwise it is added to the LRU list and may be returned 1403 ** by a subsequent call to dbPrepareAndBind(). 1404 */ 1405 static void dbReleaseStmt( 1406 SqliteDb *pDb, /* Database handle */ 1407 SqlPreparedStmt *pPreStmt, /* Prepared statement handle to release */ 1408 int discard /* True to delete (not cache) the pPreStmt */ 1409 ){ 1410 int i; 1411 1412 /* Free the bound string and blob parameters */ 1413 for(i=0; i<pPreStmt->nParm; i++){ 1414 Tcl_DecrRefCount(pPreStmt->apParm[i]); 1415 } 1416 pPreStmt->nParm = 0; 1417 1418 if( pDb->maxStmt<=0 || discard ){ 1419 /* If the cache is turned off, deallocated the statement */ 1420 dbFreeStmt(pPreStmt); 1421 }else{ 1422 /* Add the prepared statement to the beginning of the cache list. */ 1423 pPreStmt->pNext = pDb->stmtList; 1424 pPreStmt->pPrev = 0; 1425 if( pDb->stmtList ){ 1426 pDb->stmtList->pPrev = pPreStmt; 1427 } 1428 pDb->stmtList = pPreStmt; 1429 if( pDb->stmtLast==0 ){ 1430 assert( pDb->nStmt==0 ); 1431 pDb->stmtLast = pPreStmt; 1432 }else{ 1433 assert( pDb->nStmt>0 ); 1434 } 1435 pDb->nStmt++; 1436 1437 /* If we have too many statement in cache, remove the surplus from 1438 ** the end of the cache list. */ 1439 while( pDb->nStmt>pDb->maxStmt ){ 1440 SqlPreparedStmt *pLast = pDb->stmtLast; 1441 pDb->stmtLast = pLast->pPrev; 1442 pDb->stmtLast->pNext = 0; 1443 pDb->nStmt--; 1444 dbFreeStmt(pLast); 1445 } 1446 } 1447 } 1448 1449 /* 1450 ** Structure used with dbEvalXXX() functions: 1451 ** 1452 ** dbEvalInit() 1453 ** dbEvalStep() 1454 ** dbEvalFinalize() 1455 ** dbEvalRowInfo() 1456 ** dbEvalColumnValue() 1457 */ 1458 typedef struct DbEvalContext DbEvalContext; 1459 struct DbEvalContext { 1460 SqliteDb *pDb; /* Database handle */ 1461 Tcl_Obj *pSql; /* Object holding string zSql */ 1462 const char *zSql; /* Remaining SQL to execute */ 1463 SqlPreparedStmt *pPreStmt; /* Current statement */ 1464 int nCol; /* Number of columns returned by pStmt */ 1465 int evalFlags; /* Flags used */ 1466 Tcl_Obj *pArray; /* Name of array variable */ 1467 Tcl_Obj **apColName; /* Array of column names */ 1468 }; 1469 1470 #define SQLITE_EVAL_WITHOUTNULLS 0x00001 /* Unset array(*) for NULL */ 1471 1472 /* 1473 ** Release any cache of column names currently held as part of 1474 ** the DbEvalContext structure passed as the first argument. 1475 */ 1476 static void dbReleaseColumnNames(DbEvalContext *p){ 1477 if( p->apColName ){ 1478 int i; 1479 for(i=0; i<p->nCol; i++){ 1480 Tcl_DecrRefCount(p->apColName[i]); 1481 } 1482 Tcl_Free((char *)p->apColName); 1483 p->apColName = 0; 1484 } 1485 p->nCol = 0; 1486 } 1487 1488 /* 1489 ** Initialize a DbEvalContext structure. 1490 ** 1491 ** If pArray is not NULL, then it contains the name of a Tcl array 1492 ** variable. The "*" member of this array is set to a list containing 1493 ** the names of the columns returned by the statement as part of each 1494 ** call to dbEvalStep(), in order from left to right. e.g. if the names 1495 ** of the returned columns are a, b and c, it does the equivalent of the 1496 ** tcl command: 1497 ** 1498 ** set ${pArray}(*) {a b c} 1499 */ 1500 static void dbEvalInit( 1501 DbEvalContext *p, /* Pointer to structure to initialize */ 1502 SqliteDb *pDb, /* Database handle */ 1503 Tcl_Obj *pSql, /* Object containing SQL script */ 1504 Tcl_Obj *pArray, /* Name of Tcl array to set (*) element of */ 1505 int evalFlags /* Flags controlling evaluation */ 1506 ){ 1507 memset(p, 0, sizeof(DbEvalContext)); 1508 p->pDb = pDb; 1509 p->zSql = Tcl_GetString(pSql); 1510 p->pSql = pSql; 1511 Tcl_IncrRefCount(pSql); 1512 if( pArray ){ 1513 p->pArray = pArray; 1514 Tcl_IncrRefCount(pArray); 1515 } 1516 p->evalFlags = evalFlags; 1517 } 1518 1519 /* 1520 ** Obtain information about the row that the DbEvalContext passed as the 1521 ** first argument currently points to. 1522 */ 1523 static void dbEvalRowInfo( 1524 DbEvalContext *p, /* Evaluation context */ 1525 int *pnCol, /* OUT: Number of column names */ 1526 Tcl_Obj ***papColName /* OUT: Array of column names */ 1527 ){ 1528 /* Compute column names */ 1529 if( 0==p->apColName ){ 1530 sqlite3_stmt *pStmt = p->pPreStmt->pStmt; 1531 int i; /* Iterator variable */ 1532 int nCol; /* Number of columns returned by pStmt */ 1533 Tcl_Obj **apColName = 0; /* Array of column names */ 1534 1535 p->nCol = nCol = sqlite3_column_count(pStmt); 1536 if( nCol>0 && (papColName || p->pArray) ){ 1537 apColName = (Tcl_Obj**)Tcl_Alloc( sizeof(Tcl_Obj*)*nCol ); 1538 for(i=0; i<nCol; i++){ 1539 apColName[i] = Tcl_NewStringObj(sqlite3_column_name(pStmt,i), -1); 1540 Tcl_IncrRefCount(apColName[i]); 1541 } 1542 p->apColName = apColName; 1543 } 1544 1545 /* If results are being stored in an array variable, then create 1546 ** the array(*) entry for that array 1547 */ 1548 if( p->pArray ){ 1549 Tcl_Interp *interp = p->pDb->interp; 1550 Tcl_Obj *pColList = Tcl_NewObj(); 1551 Tcl_Obj *pStar = Tcl_NewStringObj("*", -1); 1552 1553 for(i=0; i<nCol; i++){ 1554 Tcl_ListObjAppendElement(interp, pColList, apColName[i]); 1555 } 1556 Tcl_IncrRefCount(pStar); 1557 Tcl_ObjSetVar2(interp, p->pArray, pStar, pColList, 0); 1558 Tcl_DecrRefCount(pStar); 1559 } 1560 } 1561 1562 if( papColName ){ 1563 *papColName = p->apColName; 1564 } 1565 if( pnCol ){ 1566 *pnCol = p->nCol; 1567 } 1568 } 1569 1570 /* 1571 ** Return one of TCL_OK, TCL_BREAK or TCL_ERROR. If TCL_ERROR is 1572 ** returned, then an error message is stored in the interpreter before 1573 ** returning. 1574 ** 1575 ** A return value of TCL_OK means there is a row of data available. The 1576 ** data may be accessed using dbEvalRowInfo() and dbEvalColumnValue(). This 1577 ** is analogous to a return of SQLITE_ROW from sqlite3_step(). If TCL_BREAK 1578 ** is returned, then the SQL script has finished executing and there are 1579 ** no further rows available. This is similar to SQLITE_DONE. 1580 */ 1581 static int dbEvalStep(DbEvalContext *p){ 1582 const char *zPrevSql = 0; /* Previous value of p->zSql */ 1583 1584 while( p->zSql[0] || p->pPreStmt ){ 1585 int rc; 1586 if( p->pPreStmt==0 ){ 1587 zPrevSql = (p->zSql==zPrevSql ? 0 : p->zSql); 1588 rc = dbPrepareAndBind(p->pDb, p->zSql, &p->zSql, &p->pPreStmt); 1589 if( rc!=TCL_OK ) return rc; 1590 }else{ 1591 int rcs; 1592 SqliteDb *pDb = p->pDb; 1593 SqlPreparedStmt *pPreStmt = p->pPreStmt; 1594 sqlite3_stmt *pStmt = pPreStmt->pStmt; 1595 1596 rcs = sqlite3_step(pStmt); 1597 if( rcs==SQLITE_ROW ){ 1598 return TCL_OK; 1599 } 1600 if( p->pArray ){ 1601 dbEvalRowInfo(p, 0, 0); 1602 } 1603 rcs = sqlite3_reset(pStmt); 1604 1605 pDb->nStep = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_FULLSCAN_STEP,1); 1606 pDb->nSort = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_SORT,1); 1607 pDb->nIndex = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_AUTOINDEX,1); 1608 pDb->nVMStep = sqlite3_stmt_status(pStmt,SQLITE_STMTSTATUS_VM_STEP,1); 1609 dbReleaseColumnNames(p); 1610 p->pPreStmt = 0; 1611 1612 if( rcs!=SQLITE_OK ){ 1613 /* If a run-time error occurs, report the error and stop reading 1614 ** the SQL. */ 1615 dbReleaseStmt(pDb, pPreStmt, 1); 1616 #if SQLITE_TEST 1617 if( p->pDb->bLegacyPrepare && rcs==SQLITE_SCHEMA && zPrevSql ){ 1618 /* If the runtime error was an SQLITE_SCHEMA, and the database 1619 ** handle is configured to use the legacy sqlite3_prepare() 1620 ** interface, retry prepare()/step() on the same SQL statement. 1621 ** This only happens once. If there is a second SQLITE_SCHEMA 1622 ** error, the error will be returned to the caller. */ 1623 p->zSql = zPrevSql; 1624 continue; 1625 } 1626 #endif 1627 Tcl_SetObjResult(pDb->interp, 1628 Tcl_NewStringObj(sqlite3_errmsg(pDb->db), -1)); 1629 return TCL_ERROR; 1630 }else{ 1631 dbReleaseStmt(pDb, pPreStmt, 0); 1632 } 1633 } 1634 } 1635 1636 /* Finished */ 1637 return TCL_BREAK; 1638 } 1639 1640 /* 1641 ** Free all resources currently held by the DbEvalContext structure passed 1642 ** as the first argument. There should be exactly one call to this function 1643 ** for each call to dbEvalInit(). 1644 */ 1645 static void dbEvalFinalize(DbEvalContext *p){ 1646 if( p->pPreStmt ){ 1647 sqlite3_reset(p->pPreStmt->pStmt); 1648 dbReleaseStmt(p->pDb, p->pPreStmt, 0); 1649 p->pPreStmt = 0; 1650 } 1651 if( p->pArray ){ 1652 Tcl_DecrRefCount(p->pArray); 1653 p->pArray = 0; 1654 } 1655 Tcl_DecrRefCount(p->pSql); 1656 dbReleaseColumnNames(p); 1657 } 1658 1659 /* 1660 ** Return a pointer to a Tcl_Obj structure with ref-count 0 that contains 1661 ** the value for the iCol'th column of the row currently pointed to by 1662 ** the DbEvalContext structure passed as the first argument. 1663 */ 1664 static Tcl_Obj *dbEvalColumnValue(DbEvalContext *p, int iCol){ 1665 sqlite3_stmt *pStmt = p->pPreStmt->pStmt; 1666 switch( sqlite3_column_type(pStmt, iCol) ){ 1667 case SQLITE_BLOB: { 1668 int bytes = sqlite3_column_bytes(pStmt, iCol); 1669 const char *zBlob = sqlite3_column_blob(pStmt, iCol); 1670 if( !zBlob ) bytes = 0; 1671 return Tcl_NewByteArrayObj((u8*)zBlob, bytes); 1672 } 1673 case SQLITE_INTEGER: { 1674 sqlite_int64 v = sqlite3_column_int64(pStmt, iCol); 1675 if( v>=-2147483647 && v<=2147483647 ){ 1676 return Tcl_NewIntObj((int)v); 1677 }else{ 1678 return Tcl_NewWideIntObj(v); 1679 } 1680 } 1681 case SQLITE_FLOAT: { 1682 return Tcl_NewDoubleObj(sqlite3_column_double(pStmt, iCol)); 1683 } 1684 case SQLITE_NULL: { 1685 return Tcl_NewStringObj(p->pDb->zNull, -1); 1686 } 1687 } 1688 1689 return Tcl_NewStringObj((char*)sqlite3_column_text(pStmt, iCol), -1); 1690 } 1691 1692 /* 1693 ** If using Tcl version 8.6 or greater, use the NR functions to avoid 1694 ** recursive evalution of scripts by the [db eval] and [db trans] 1695 ** commands. Even if the headers used while compiling the extension 1696 ** are 8.6 or newer, the code still tests the Tcl version at runtime. 1697 ** This allows stubs-enabled builds to be used with older Tcl libraries. 1698 */ 1699 #if TCL_MAJOR_VERSION>8 || (TCL_MAJOR_VERSION==8 && TCL_MINOR_VERSION>=6) 1700 # define SQLITE_TCL_NRE 1 1701 static int DbUseNre(void){ 1702 int major, minor; 1703 Tcl_GetVersion(&major, &minor, 0, 0); 1704 return( (major==8 && minor>=6) || major>8 ); 1705 } 1706 #else 1707 /* 1708 ** Compiling using headers earlier than 8.6. In this case NR cannot be 1709 ** used, so DbUseNre() to always return zero. Add #defines for the other 1710 ** Tcl_NRxxx() functions to prevent them from causing compilation errors, 1711 ** even though the only invocations of them are within conditional blocks 1712 ** of the form: 1713 ** 1714 ** if( DbUseNre() ) { ... } 1715 */ 1716 # define SQLITE_TCL_NRE 0 1717 # define DbUseNre() 0 1718 # define Tcl_NRAddCallback(a,b,c,d,e,f) (void)0 1719 # define Tcl_NREvalObj(a,b,c) 0 1720 # define Tcl_NRCreateCommand(a,b,c,d,e,f) (void)0 1721 #endif 1722 1723 /* 1724 ** This function is part of the implementation of the command: 1725 ** 1726 ** $db eval SQL ?ARRAYNAME? SCRIPT 1727 */ 1728 static int SQLITE_TCLAPI DbEvalNextCmd( 1729 ClientData data[], /* data[0] is the (DbEvalContext*) */ 1730 Tcl_Interp *interp, /* Tcl interpreter */ 1731 int result /* Result so far */ 1732 ){ 1733 int rc = result; /* Return code */ 1734 1735 /* The first element of the data[] array is a pointer to a DbEvalContext 1736 ** structure allocated using Tcl_Alloc(). The second element of data[] 1737 ** is a pointer to a Tcl_Obj containing the script to run for each row 1738 ** returned by the queries encapsulated in data[0]. */ 1739 DbEvalContext *p = (DbEvalContext *)data[0]; 1740 Tcl_Obj *pScript = (Tcl_Obj *)data[1]; 1741 Tcl_Obj *pArray = p->pArray; 1742 1743 while( (rc==TCL_OK || rc==TCL_CONTINUE) && TCL_OK==(rc = dbEvalStep(p)) ){ 1744 int i; 1745 int nCol; 1746 Tcl_Obj **apColName; 1747 dbEvalRowInfo(p, &nCol, &apColName); 1748 for(i=0; i<nCol; i++){ 1749 if( pArray==0 ){ 1750 Tcl_ObjSetVar2(interp, apColName[i], 0, dbEvalColumnValue(p,i), 0); 1751 }else if( (p->evalFlags & SQLITE_EVAL_WITHOUTNULLS)!=0 1752 && sqlite3_column_type(p->pPreStmt->pStmt, i)==SQLITE_NULL 1753 ){ 1754 Tcl_UnsetVar2(interp, Tcl_GetString(pArray), 1755 Tcl_GetString(apColName[i]), 0); 1756 }else{ 1757 Tcl_ObjSetVar2(interp, pArray, apColName[i], dbEvalColumnValue(p,i), 0); 1758 } 1759 } 1760 1761 /* The required interpreter variables are now populated with the data 1762 ** from the current row. If using NRE, schedule callbacks to evaluate 1763 ** script pScript, then to invoke this function again to fetch the next 1764 ** row (or clean up if there is no next row or the script throws an 1765 ** exception). After scheduling the callbacks, return control to the 1766 ** caller. 1767 ** 1768 ** If not using NRE, evaluate pScript directly and continue with the 1769 ** next iteration of this while(...) loop. */ 1770 if( DbUseNre() ){ 1771 Tcl_NRAddCallback(interp, DbEvalNextCmd, (void*)p, (void*)pScript, 0, 0); 1772 return Tcl_NREvalObj(interp, pScript, 0); 1773 }else{ 1774 rc = Tcl_EvalObjEx(interp, pScript, 0); 1775 } 1776 } 1777 1778 Tcl_DecrRefCount(pScript); 1779 dbEvalFinalize(p); 1780 Tcl_Free((char *)p); 1781 1782 if( rc==TCL_OK || rc==TCL_BREAK ){ 1783 Tcl_ResetResult(interp); 1784 rc = TCL_OK; 1785 } 1786 return rc; 1787 } 1788 1789 /* 1790 ** This function is used by the implementations of the following database 1791 ** handle sub-commands: 1792 ** 1793 ** $db update_hook ?SCRIPT? 1794 ** $db wal_hook ?SCRIPT? 1795 ** $db commit_hook ?SCRIPT? 1796 ** $db preupdate hook ?SCRIPT? 1797 */ 1798 static void DbHookCmd( 1799 Tcl_Interp *interp, /* Tcl interpreter */ 1800 SqliteDb *pDb, /* Database handle */ 1801 Tcl_Obj *pArg, /* SCRIPT argument (or NULL) */ 1802 Tcl_Obj **ppHook /* Pointer to member of SqliteDb */ 1803 ){ 1804 sqlite3 *db = pDb->db; 1805 1806 if( *ppHook ){ 1807 Tcl_SetObjResult(interp, *ppHook); 1808 if( pArg ){ 1809 Tcl_DecrRefCount(*ppHook); 1810 *ppHook = 0; 1811 } 1812 } 1813 if( pArg ){ 1814 assert( !(*ppHook) ); 1815 if( Tcl_GetCharLength(pArg)>0 ){ 1816 *ppHook = pArg; 1817 Tcl_IncrRefCount(*ppHook); 1818 } 1819 } 1820 1821 #ifdef SQLITE_ENABLE_PREUPDATE_HOOK 1822 sqlite3_preupdate_hook(db, (pDb->pPreUpdateHook?DbPreUpdateHandler:0), pDb); 1823 #endif 1824 sqlite3_update_hook(db, (pDb->pUpdateHook?DbUpdateHandler:0), pDb); 1825 sqlite3_rollback_hook(db, (pDb->pRollbackHook?DbRollbackHandler:0), pDb); 1826 sqlite3_wal_hook(db, (pDb->pWalHook?DbWalHandler:0), pDb); 1827 } 1828 1829 /* 1830 ** The "sqlite" command below creates a new Tcl command for each 1831 ** connection it opens to an SQLite database. This routine is invoked 1832 ** whenever one of those connection-specific commands is executed 1833 ** in Tcl. For example, if you run Tcl code like this: 1834 ** 1835 ** sqlite3 db1 "my_database" 1836 ** db1 close 1837 ** 1838 ** The first command opens a connection to the "my_database" database 1839 ** and calls that connection "db1". The second command causes this 1840 ** subroutine to be invoked. 1841 */ 1842 static int SQLITE_TCLAPI DbObjCmd( 1843 void *cd, 1844 Tcl_Interp *interp, 1845 int objc, 1846 Tcl_Obj *const*objv 1847 ){ 1848 SqliteDb *pDb = (SqliteDb*)cd; 1849 int choice; 1850 int rc = TCL_OK; 1851 static const char *DB_strs[] = { 1852 "authorizer", "backup", "busy", 1853 "cache", "changes", "close", 1854 "collate", "collation_needed", "commit_hook", 1855 "complete", "copy", "enable_load_extension", 1856 "errorcode", "eval", "exists", 1857 "function", "incrblob", "interrupt", 1858 "last_insert_rowid", "nullvalue", "onecolumn", 1859 "preupdate", "profile", "progress", 1860 "rekey", "restore", "rollback_hook", 1861 "status", "timeout", "total_changes", 1862 "trace", "trace_v2", "transaction", 1863 "unlock_notify", "update_hook", "version", 1864 "wal_hook", 1865 0 1866 }; 1867 enum DB_enum { 1868 DB_AUTHORIZER, DB_BACKUP, DB_BUSY, 1869 DB_CACHE, DB_CHANGES, DB_CLOSE, 1870 DB_COLLATE, DB_COLLATION_NEEDED, DB_COMMIT_HOOK, 1871 DB_COMPLETE, DB_COPY, DB_ENABLE_LOAD_EXTENSION, 1872 DB_ERRORCODE, DB_EVAL, DB_EXISTS, 1873 DB_FUNCTION, DB_INCRBLOB, DB_INTERRUPT, 1874 DB_LAST_INSERT_ROWID, DB_NULLVALUE, DB_ONECOLUMN, 1875 DB_PREUPDATE, DB_PROFILE, DB_PROGRESS, 1876 DB_REKEY, DB_RESTORE, DB_ROLLBACK_HOOK, 1877 DB_STATUS, DB_TIMEOUT, DB_TOTAL_CHANGES, 1878 DB_TRACE, DB_TRACE_V2, DB_TRANSACTION, 1879 DB_UNLOCK_NOTIFY, DB_UPDATE_HOOK, DB_VERSION, 1880 DB_WAL_HOOK, 1881 }; 1882 /* don't leave trailing commas on DB_enum, it confuses the AIX xlc compiler */ 1883 1884 if( objc<2 ){ 1885 Tcl_WrongNumArgs(interp, 1, objv, "SUBCOMMAND ..."); 1886 return TCL_ERROR; 1887 } 1888 if( Tcl_GetIndexFromObj(interp, objv[1], DB_strs, "option", 0, &choice) ){ 1889 return TCL_ERROR; 1890 } 1891 1892 switch( (enum DB_enum)choice ){ 1893 1894 /* $db authorizer ?CALLBACK? 1895 ** 1896 ** Invoke the given callback to authorize each SQL operation as it is 1897 ** compiled. 5 arguments are appended to the callback before it is 1898 ** invoked: 1899 ** 1900 ** (1) The authorization type (ex: SQLITE_CREATE_TABLE, SQLITE_INSERT, ...) 1901 ** (2) First descriptive name (depends on authorization type) 1902 ** (3) Second descriptive name 1903 ** (4) Name of the database (ex: "main", "temp") 1904 ** (5) Name of trigger that is doing the access 1905 ** 1906 ** The callback should return on of the following strings: SQLITE_OK, 1907 ** SQLITE_IGNORE, or SQLITE_DENY. Any other return value is an error. 1908 ** 1909 ** If this method is invoked with no arguments, the current authorization 1910 ** callback string is returned. 1911 */ 1912 case DB_AUTHORIZER: { 1913 #ifdef SQLITE_OMIT_AUTHORIZATION 1914 Tcl_AppendResult(interp, "authorization not available in this build", 1915 (char*)0); 1916 return TCL_ERROR; 1917 #else 1918 if( objc>3 ){ 1919 Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?"); 1920 return TCL_ERROR; 1921 }else if( objc==2 ){ 1922 if( pDb->zAuth ){ 1923 Tcl_AppendResult(interp, pDb->zAuth, (char*)0); 1924 } 1925 }else{ 1926 char *zAuth; 1927 int len; 1928 if( pDb->zAuth ){ 1929 Tcl_Free(pDb->zAuth); 1930 } 1931 zAuth = Tcl_GetStringFromObj(objv[2], &len); 1932 if( zAuth && len>0 ){ 1933 pDb->zAuth = Tcl_Alloc( len + 1 ); 1934 memcpy(pDb->zAuth, zAuth, len+1); 1935 }else{ 1936 pDb->zAuth = 0; 1937 } 1938 if( pDb->zAuth ){ 1939 typedef int (*sqlite3_auth_cb)( 1940 void*,int,const char*,const char*, 1941 const char*,const char*); 1942 pDb->interp = interp; 1943 sqlite3_set_authorizer(pDb->db,(sqlite3_auth_cb)auth_callback,pDb); 1944 }else{ 1945 sqlite3_set_authorizer(pDb->db, 0, 0); 1946 } 1947 } 1948 #endif 1949 break; 1950 } 1951 1952 /* $db backup ?DATABASE? FILENAME 1953 ** 1954 ** Open or create a database file named FILENAME. Transfer the 1955 ** content of local database DATABASE (default: "main") into the 1956 ** FILENAME database. 1957 */ 1958 case DB_BACKUP: { 1959 const char *zDestFile; 1960 const char *zSrcDb; 1961 sqlite3 *pDest; 1962 sqlite3_backup *pBackup; 1963 1964 if( objc==3 ){ 1965 zSrcDb = "main"; 1966 zDestFile = Tcl_GetString(objv[2]); 1967 }else if( objc==4 ){ 1968 zSrcDb = Tcl_GetString(objv[2]); 1969 zDestFile = Tcl_GetString(objv[3]); 1970 }else{ 1971 Tcl_WrongNumArgs(interp, 2, objv, "?DATABASE? FILENAME"); 1972 return TCL_ERROR; 1973 } 1974 rc = sqlite3_open_v2(zDestFile, &pDest, 1975 SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE| pDb->openFlags, 0); 1976 if( rc!=SQLITE_OK ){ 1977 Tcl_AppendResult(interp, "cannot open target database: ", 1978 sqlite3_errmsg(pDest), (char*)0); 1979 sqlite3_close(pDest); 1980 return TCL_ERROR; 1981 } 1982 pBackup = sqlite3_backup_init(pDest, "main", pDb->db, zSrcDb); 1983 if( pBackup==0 ){ 1984 Tcl_AppendResult(interp, "backup failed: ", 1985 sqlite3_errmsg(pDest), (char*)0); 1986 sqlite3_close(pDest); 1987 return TCL_ERROR; 1988 } 1989 while( (rc = sqlite3_backup_step(pBackup,100))==SQLITE_OK ){} 1990 sqlite3_backup_finish(pBackup); 1991 if( rc==SQLITE_DONE ){ 1992 rc = TCL_OK; 1993 }else{ 1994 Tcl_AppendResult(interp, "backup failed: ", 1995 sqlite3_errmsg(pDest), (char*)0); 1996 rc = TCL_ERROR; 1997 } 1998 sqlite3_close(pDest); 1999 break; 2000 } 2001 2002 /* $db busy ?CALLBACK? 2003 ** 2004 ** Invoke the given callback if an SQL statement attempts to open 2005 ** a locked database file. 2006 */ 2007 case DB_BUSY: { 2008 if( objc>3 ){ 2009 Tcl_WrongNumArgs(interp, 2, objv, "CALLBACK"); 2010 return TCL_ERROR; 2011 }else if( objc==2 ){ 2012 if( pDb->zBusy ){ 2013 Tcl_AppendResult(interp, pDb->zBusy, (char*)0); 2014 } 2015 }else{ 2016 char *zBusy; 2017 int len; 2018 if( pDb->zBusy ){ 2019 Tcl_Free(pDb->zBusy); 2020 } 2021 zBusy = Tcl_GetStringFromObj(objv[2], &len); 2022 if( zBusy && len>0 ){ 2023 pDb->zBusy = Tcl_Alloc( len + 1 ); 2024 memcpy(pDb->zBusy, zBusy, len+1); 2025 }else{ 2026 pDb->zBusy = 0; 2027 } 2028 if( pDb->zBusy ){ 2029 pDb->interp = interp; 2030 sqlite3_busy_handler(pDb->db, DbBusyHandler, pDb); 2031 }else{ 2032 sqlite3_busy_handler(pDb->db, 0, 0); 2033 } 2034 } 2035 break; 2036 } 2037 2038 /* $db cache flush 2039 ** $db cache size n 2040 ** 2041 ** Flush the prepared statement cache, or set the maximum number of 2042 ** cached statements. 2043 */ 2044 case DB_CACHE: { 2045 char *subCmd; 2046 int n; 2047 2048 if( objc<=2 ){ 2049 Tcl_WrongNumArgs(interp, 1, objv, "cache option ?arg?"); 2050 return TCL_ERROR; 2051 } 2052 subCmd = Tcl_GetStringFromObj( objv[2], 0 ); 2053 if( *subCmd=='f' && strcmp(subCmd,"flush")==0 ){ 2054 if( objc!=3 ){ 2055 Tcl_WrongNumArgs(interp, 2, objv, "flush"); 2056 return TCL_ERROR; 2057 }else{ 2058 flushStmtCache( pDb ); 2059 } 2060 }else if( *subCmd=='s' && strcmp(subCmd,"size")==0 ){ 2061 if( objc!=4 ){ 2062 Tcl_WrongNumArgs(interp, 2, objv, "size n"); 2063 return TCL_ERROR; 2064 }else{ 2065 if( TCL_ERROR==Tcl_GetIntFromObj(interp, objv[3], &n) ){ 2066 Tcl_AppendResult( interp, "cannot convert \"", 2067 Tcl_GetStringFromObj(objv[3],0), "\" to integer", (char*)0); 2068 return TCL_ERROR; 2069 }else{ 2070 if( n<0 ){ 2071 flushStmtCache( pDb ); 2072 n = 0; 2073 }else if( n>MAX_PREPARED_STMTS ){ 2074 n = MAX_PREPARED_STMTS; 2075 } 2076 pDb->maxStmt = n; 2077 } 2078 } 2079 }else{ 2080 Tcl_AppendResult( interp, "bad option \"", 2081 Tcl_GetStringFromObj(objv[2],0), "\": must be flush or size", 2082 (char*)0); 2083 return TCL_ERROR; 2084 } 2085 break; 2086 } 2087 2088 /* $db changes 2089 ** 2090 ** Return the number of rows that were modified, inserted, or deleted by 2091 ** the most recent INSERT, UPDATE or DELETE statement, not including 2092 ** any changes made by trigger programs. 2093 */ 2094 case DB_CHANGES: { 2095 Tcl_Obj *pResult; 2096 if( objc!=2 ){ 2097 Tcl_WrongNumArgs(interp, 2, objv, ""); 2098 return TCL_ERROR; 2099 } 2100 pResult = Tcl_GetObjResult(interp); 2101 Tcl_SetIntObj(pResult, sqlite3_changes(pDb->db)); 2102 break; 2103 } 2104 2105 /* $db close 2106 ** 2107 ** Shutdown the database 2108 */ 2109 case DB_CLOSE: { 2110 Tcl_DeleteCommand(interp, Tcl_GetStringFromObj(objv[0], 0)); 2111 break; 2112 } 2113 2114 /* 2115 ** $db collate NAME SCRIPT 2116 ** 2117 ** Create a new SQL collation function called NAME. Whenever 2118 ** that function is called, invoke SCRIPT to evaluate the function. 2119 */ 2120 case DB_COLLATE: { 2121 SqlCollate *pCollate; 2122 char *zName; 2123 char *zScript; 2124 int nScript; 2125 if( objc!=4 ){ 2126 Tcl_WrongNumArgs(interp, 2, objv, "NAME SCRIPT"); 2127 return TCL_ERROR; 2128 } 2129 zName = Tcl_GetStringFromObj(objv[2], 0); 2130 zScript = Tcl_GetStringFromObj(objv[3], &nScript); 2131 pCollate = (SqlCollate*)Tcl_Alloc( sizeof(*pCollate) + nScript + 1 ); 2132 if( pCollate==0 ) return TCL_ERROR; 2133 pCollate->interp = interp; 2134 pCollate->pNext = pDb->pCollate; 2135 pCollate->zScript = (char*)&pCollate[1]; 2136 pDb->pCollate = pCollate; 2137 memcpy(pCollate->zScript, zScript, nScript+1); 2138 if( sqlite3_create_collation(pDb->db, zName, SQLITE_UTF8, 2139 pCollate, tclSqlCollate) ){ 2140 Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE); 2141 return TCL_ERROR; 2142 } 2143 break; 2144 } 2145 2146 /* 2147 ** $db collation_needed SCRIPT 2148 ** 2149 ** Create a new SQL collation function called NAME. Whenever 2150 ** that function is called, invoke SCRIPT to evaluate the function. 2151 */ 2152 case DB_COLLATION_NEEDED: { 2153 if( objc!=3 ){ 2154 Tcl_WrongNumArgs(interp, 2, objv, "SCRIPT"); 2155 return TCL_ERROR; 2156 } 2157 if( pDb->pCollateNeeded ){ 2158 Tcl_DecrRefCount(pDb->pCollateNeeded); 2159 } 2160 pDb->pCollateNeeded = Tcl_DuplicateObj(objv[2]); 2161 Tcl_IncrRefCount(pDb->pCollateNeeded); 2162 sqlite3_collation_needed(pDb->db, pDb, tclCollateNeeded); 2163 break; 2164 } 2165 2166 /* $db commit_hook ?CALLBACK? 2167 ** 2168 ** Invoke the given callback just before committing every SQL transaction. 2169 ** If the callback throws an exception or returns non-zero, then the 2170 ** transaction is aborted. If CALLBACK is an empty string, the callback 2171 ** is disabled. 2172 */ 2173 case DB_COMMIT_HOOK: { 2174 if( objc>3 ){ 2175 Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?"); 2176 return TCL_ERROR; 2177 }else if( objc==2 ){ 2178 if( pDb->zCommit ){ 2179 Tcl_AppendResult(interp, pDb->zCommit, (char*)0); 2180 } 2181 }else{ 2182 const char *zCommit; 2183 int len; 2184 if( pDb->zCommit ){ 2185 Tcl_Free(pDb->zCommit); 2186 } 2187 zCommit = Tcl_GetStringFromObj(objv[2], &len); 2188 if( zCommit && len>0 ){ 2189 pDb->zCommit = Tcl_Alloc( len + 1 ); 2190 memcpy(pDb->zCommit, zCommit, len+1); 2191 }else{ 2192 pDb->zCommit = 0; 2193 } 2194 if( pDb->zCommit ){ 2195 pDb->interp = interp; 2196 sqlite3_commit_hook(pDb->db, DbCommitHandler, pDb); 2197 }else{ 2198 sqlite3_commit_hook(pDb->db, 0, 0); 2199 } 2200 } 2201 break; 2202 } 2203 2204 /* $db complete SQL 2205 ** 2206 ** Return TRUE if SQL is a complete SQL statement. Return FALSE if 2207 ** additional lines of input are needed. This is similar to the 2208 ** built-in "info complete" command of Tcl. 2209 */ 2210 case DB_COMPLETE: { 2211 #ifndef SQLITE_OMIT_COMPLETE 2212 Tcl_Obj *pResult; 2213 int isComplete; 2214 if( objc!=3 ){ 2215 Tcl_WrongNumArgs(interp, 2, objv, "SQL"); 2216 return TCL_ERROR; 2217 } 2218 isComplete = sqlite3_complete( Tcl_GetStringFromObj(objv[2], 0) ); 2219 pResult = Tcl_GetObjResult(interp); 2220 Tcl_SetBooleanObj(pResult, isComplete); 2221 #endif 2222 break; 2223 } 2224 2225 /* $db copy conflict-algorithm table filename ?SEPARATOR? ?NULLINDICATOR? 2226 ** 2227 ** Copy data into table from filename, optionally using SEPARATOR 2228 ** as column separators. If a column contains a null string, or the 2229 ** value of NULLINDICATOR, a NULL is inserted for the column. 2230 ** conflict-algorithm is one of the sqlite conflict algorithms: 2231 ** rollback, abort, fail, ignore, replace 2232 ** On success, return the number of lines processed, not necessarily same 2233 ** as 'db changes' due to conflict-algorithm selected. 2234 ** 2235 ** This code is basically an implementation/enhancement of 2236 ** the sqlite3 shell.c ".import" command. 2237 ** 2238 ** This command usage is equivalent to the sqlite2.x COPY statement, 2239 ** which imports file data into a table using the PostgreSQL COPY file format: 2240 ** $db copy $conflit_algo $table_name $filename \t \\N 2241 */ 2242 case DB_COPY: { 2243 char *zTable; /* Insert data into this table */ 2244 char *zFile; /* The file from which to extract data */ 2245 char *zConflict; /* The conflict algorithm to use */ 2246 sqlite3_stmt *pStmt; /* A statement */ 2247 int nCol; /* Number of columns in the table */ 2248 int nByte; /* Number of bytes in an SQL string */ 2249 int i, j; /* Loop counters */ 2250 int nSep; /* Number of bytes in zSep[] */ 2251 int nNull; /* Number of bytes in zNull[] */ 2252 char *zSql; /* An SQL statement */ 2253 char *zLine; /* A single line of input from the file */ 2254 char **azCol; /* zLine[] broken up into columns */ 2255 const char *zCommit; /* How to commit changes */ 2256 FILE *in; /* The input file */ 2257 int lineno = 0; /* Line number of input file */ 2258 char zLineNum[80]; /* Line number print buffer */ 2259 Tcl_Obj *pResult; /* interp result */ 2260 2261 const char *zSep; 2262 const char *zNull; 2263 if( objc<5 || objc>7 ){ 2264 Tcl_WrongNumArgs(interp, 2, objv, 2265 "CONFLICT-ALGORITHM TABLE FILENAME ?SEPARATOR? ?NULLINDICATOR?"); 2266 return TCL_ERROR; 2267 } 2268 if( objc>=6 ){ 2269 zSep = Tcl_GetStringFromObj(objv[5], 0); 2270 }else{ 2271 zSep = "\t"; 2272 } 2273 if( objc>=7 ){ 2274 zNull = Tcl_GetStringFromObj(objv[6], 0); 2275 }else{ 2276 zNull = ""; 2277 } 2278 zConflict = Tcl_GetStringFromObj(objv[2], 0); 2279 zTable = Tcl_GetStringFromObj(objv[3], 0); 2280 zFile = Tcl_GetStringFromObj(objv[4], 0); 2281 nSep = strlen30(zSep); 2282 nNull = strlen30(zNull); 2283 if( nSep==0 ){ 2284 Tcl_AppendResult(interp,"Error: non-null separator required for copy", 2285 (char*)0); 2286 return TCL_ERROR; 2287 } 2288 if(strcmp(zConflict, "rollback") != 0 && 2289 strcmp(zConflict, "abort" ) != 0 && 2290 strcmp(zConflict, "fail" ) != 0 && 2291 strcmp(zConflict, "ignore" ) != 0 && 2292 strcmp(zConflict, "replace" ) != 0 ) { 2293 Tcl_AppendResult(interp, "Error: \"", zConflict, 2294 "\", conflict-algorithm must be one of: rollback, " 2295 "abort, fail, ignore, or replace", (char*)0); 2296 return TCL_ERROR; 2297 } 2298 zSql = sqlite3_mprintf("SELECT * FROM '%q'", zTable); 2299 if( zSql==0 ){ 2300 Tcl_AppendResult(interp, "Error: no such table: ", zTable, (char*)0); 2301 return TCL_ERROR; 2302 } 2303 nByte = strlen30(zSql); 2304 rc = sqlite3_prepare(pDb->db, zSql, -1, &pStmt, 0); 2305 sqlite3_free(zSql); 2306 if( rc ){ 2307 Tcl_AppendResult(interp, "Error: ", sqlite3_errmsg(pDb->db), (char*)0); 2308 nCol = 0; 2309 }else{ 2310 nCol = sqlite3_column_count(pStmt); 2311 } 2312 sqlite3_finalize(pStmt); 2313 if( nCol==0 ) { 2314 return TCL_ERROR; 2315 } 2316 zSql = malloc( nByte + 50 + nCol*2 ); 2317 if( zSql==0 ) { 2318 Tcl_AppendResult(interp, "Error: can't malloc()", (char*)0); 2319 return TCL_ERROR; 2320 } 2321 sqlite3_snprintf(nByte+50, zSql, "INSERT OR %q INTO '%q' VALUES(?", 2322 zConflict, zTable); 2323 j = strlen30(zSql); 2324 for(i=1; i<nCol; i++){ 2325 zSql[j++] = ','; 2326 zSql[j++] = '?'; 2327 } 2328 zSql[j++] = ')'; 2329 zSql[j] = 0; 2330 rc = sqlite3_prepare(pDb->db, zSql, -1, &pStmt, 0); 2331 free(zSql); 2332 if( rc ){ 2333 Tcl_AppendResult(interp, "Error: ", sqlite3_errmsg(pDb->db), (char*)0); 2334 sqlite3_finalize(pStmt); 2335 return TCL_ERROR; 2336 } 2337 in = fopen(zFile, "rb"); 2338 if( in==0 ){ 2339 Tcl_AppendResult(interp, "Error: cannot open file: ", zFile, (char*)0); 2340 sqlite3_finalize(pStmt); 2341 return TCL_ERROR; 2342 } 2343 azCol = malloc( sizeof(azCol[0])*(nCol+1) ); 2344 if( azCol==0 ) { 2345 Tcl_AppendResult(interp, "Error: can't malloc()", (char*)0); 2346 fclose(in); 2347 return TCL_ERROR; 2348 } 2349 (void)sqlite3_exec(pDb->db, "BEGIN", 0, 0, 0); 2350 zCommit = "COMMIT"; 2351 while( (zLine = local_getline(0, in))!=0 ){ 2352 char *z; 2353 lineno++; 2354 azCol[0] = zLine; 2355 for(i=0, z=zLine; *z; z++){ 2356 if( *z==zSep[0] && strncmp(z, zSep, nSep)==0 ){ 2357 *z = 0; 2358 i++; 2359 if( i<nCol ){ 2360 azCol[i] = &z[nSep]; 2361 z += nSep-1; 2362 } 2363 } 2364 } 2365 if( i+1!=nCol ){ 2366 char *zErr; 2367 int nErr = strlen30(zFile) + 200; 2368 zErr = malloc(nErr); 2369 if( zErr ){ 2370 sqlite3_snprintf(nErr, zErr, 2371 "Error: %s line %d: expected %d columns of data but found %d", 2372 zFile, lineno, nCol, i+1); 2373 Tcl_AppendResult(interp, zErr, (char*)0); 2374 free(zErr); 2375 } 2376 zCommit = "ROLLBACK"; 2377 break; 2378 } 2379 for(i=0; i<nCol; i++){ 2380 /* check for null data, if so, bind as null */ 2381 if( (nNull>0 && strcmp(azCol[i], zNull)==0) 2382 || strlen30(azCol[i])==0 2383 ){ 2384 sqlite3_bind_null(pStmt, i+1); 2385 }else{ 2386 sqlite3_bind_text(pStmt, i+1, azCol[i], -1, SQLITE_STATIC); 2387 } 2388 } 2389 sqlite3_step(pStmt); 2390 rc = sqlite3_reset(pStmt); 2391 free(zLine); 2392 if( rc!=SQLITE_OK ){ 2393 Tcl_AppendResult(interp,"Error: ", sqlite3_errmsg(pDb->db), (char*)0); 2394 zCommit = "ROLLBACK"; 2395 break; 2396 } 2397 } 2398 free(azCol); 2399 fclose(in); 2400 sqlite3_finalize(pStmt); 2401 (void)sqlite3_exec(pDb->db, zCommit, 0, 0, 0); 2402 2403 if( zCommit[0] == 'C' ){ 2404 /* success, set result as number of lines processed */ 2405 pResult = Tcl_GetObjResult(interp); 2406 Tcl_SetIntObj(pResult, lineno); 2407 rc = TCL_OK; 2408 }else{ 2409 /* failure, append lineno where failed */ 2410 sqlite3_snprintf(sizeof(zLineNum), zLineNum,"%d",lineno); 2411 Tcl_AppendResult(interp,", failed while processing line: ",zLineNum, 2412 (char*)0); 2413 rc = TCL_ERROR; 2414 } 2415 break; 2416 } 2417 2418 /* 2419 ** $db enable_load_extension BOOLEAN 2420 ** 2421 ** Turn the extension loading feature on or off. It if off by 2422 ** default. 2423 */ 2424 case DB_ENABLE_LOAD_EXTENSION: { 2425 #ifndef SQLITE_OMIT_LOAD_EXTENSION 2426 int onoff; 2427 if( objc!=3 ){ 2428 Tcl_WrongNumArgs(interp, 2, objv, "BOOLEAN"); 2429 return TCL_ERROR; 2430 } 2431 if( Tcl_GetBooleanFromObj(interp, objv[2], &onoff) ){ 2432 return TCL_ERROR; 2433 } 2434 sqlite3_enable_load_extension(pDb->db, onoff); 2435 break; 2436 #else 2437 Tcl_AppendResult(interp, "extension loading is turned off at compile-time", 2438 (char*)0); 2439 return TCL_ERROR; 2440 #endif 2441 } 2442 2443 /* 2444 ** $db errorcode 2445 ** 2446 ** Return the numeric error code that was returned by the most recent 2447 ** call to sqlite3_exec(). 2448 */ 2449 case DB_ERRORCODE: { 2450 Tcl_SetObjResult(interp, Tcl_NewIntObj(sqlite3_errcode(pDb->db))); 2451 break; 2452 } 2453 2454 /* 2455 ** $db exists $sql 2456 ** $db onecolumn $sql 2457 ** 2458 ** The onecolumn method is the equivalent of: 2459 ** lindex [$db eval $sql] 0 2460 */ 2461 case DB_EXISTS: 2462 case DB_ONECOLUMN: { 2463 Tcl_Obj *pResult = 0; 2464 DbEvalContext sEval; 2465 if( objc!=3 ){ 2466 Tcl_WrongNumArgs(interp, 2, objv, "SQL"); 2467 return TCL_ERROR; 2468 } 2469 2470 dbEvalInit(&sEval, pDb, objv[2], 0, 0); 2471 rc = dbEvalStep(&sEval); 2472 if( choice==DB_ONECOLUMN ){ 2473 if( rc==TCL_OK ){ 2474 pResult = dbEvalColumnValue(&sEval, 0); 2475 }else if( rc==TCL_BREAK ){ 2476 Tcl_ResetResult(interp); 2477 } 2478 }else if( rc==TCL_BREAK || rc==TCL_OK ){ 2479 pResult = Tcl_NewBooleanObj(rc==TCL_OK); 2480 } 2481 dbEvalFinalize(&sEval); 2482 if( pResult ) Tcl_SetObjResult(interp, pResult); 2483 2484 if( rc==TCL_BREAK ){ 2485 rc = TCL_OK; 2486 } 2487 break; 2488 } 2489 2490 /* 2491 ** $db eval ?options? $sql ?array? ?{ ...code... }? 2492 ** 2493 ** The SQL statement in $sql is evaluated. For each row, the values are 2494 ** placed in elements of the array named "array" and ...code... is executed. 2495 ** If "array" and "code" are omitted, then no callback is every invoked. 2496 ** If "array" is an empty string, then the values are placed in variables 2497 ** that have the same name as the fields extracted by the query. 2498 */ 2499 case DB_EVAL: { 2500 int evalFlags = 0; 2501 const char *zOpt; 2502 while( objc>3 && (zOpt = Tcl_GetString(objv[2]))!=0 && zOpt[0]=='-' ){ 2503 if( strcmp(zOpt, "-withoutnulls")==0 ){ 2504 evalFlags |= SQLITE_EVAL_WITHOUTNULLS; 2505 } 2506 else{ 2507 Tcl_AppendResult(interp, "unknown option: \"", zOpt, "\"", (void*)0); 2508 return TCL_ERROR; 2509 } 2510 objc--; 2511 objv++; 2512 } 2513 if( objc<3 || objc>5 ){ 2514 Tcl_WrongNumArgs(interp, 2, objv, 2515 "?OPTIONS? SQL ?ARRAY-NAME? ?SCRIPT?"); 2516 return TCL_ERROR; 2517 } 2518 2519 if( objc==3 ){ 2520 DbEvalContext sEval; 2521 Tcl_Obj *pRet = Tcl_NewObj(); 2522 Tcl_IncrRefCount(pRet); 2523 dbEvalInit(&sEval, pDb, objv[2], 0, 0); 2524 while( TCL_OK==(rc = dbEvalStep(&sEval)) ){ 2525 int i; 2526 int nCol; 2527 dbEvalRowInfo(&sEval, &nCol, 0); 2528 for(i=0; i<nCol; i++){ 2529 Tcl_ListObjAppendElement(interp, pRet, dbEvalColumnValue(&sEval, i)); 2530 } 2531 } 2532 dbEvalFinalize(&sEval); 2533 if( rc==TCL_BREAK ){ 2534 Tcl_SetObjResult(interp, pRet); 2535 rc = TCL_OK; 2536 } 2537 Tcl_DecrRefCount(pRet); 2538 }else{ 2539 ClientData cd2[2]; 2540 DbEvalContext *p; 2541 Tcl_Obj *pArray = 0; 2542 Tcl_Obj *pScript; 2543 2544 if( objc>=5 && *(char *)Tcl_GetString(objv[3]) ){ 2545 pArray = objv[3]; 2546 } 2547 pScript = objv[objc-1]; 2548 Tcl_IncrRefCount(pScript); 2549 2550 p = (DbEvalContext *)Tcl_Alloc(sizeof(DbEvalContext)); 2551 dbEvalInit(p, pDb, objv[2], pArray, evalFlags); 2552 2553 cd2[0] = (void *)p; 2554 cd2[1] = (void *)pScript; 2555 rc = DbEvalNextCmd(cd2, interp, TCL_OK); 2556 } 2557 break; 2558 } 2559 2560 /* 2561 ** $db function NAME [-argcount N] [-deterministic] SCRIPT 2562 ** 2563 ** Create a new SQL function called NAME. Whenever that function is 2564 ** called, invoke SCRIPT to evaluate the function. 2565 */ 2566 case DB_FUNCTION: { 2567 int flags = SQLITE_UTF8; 2568 SqlFunc *pFunc; 2569 Tcl_Obj *pScript; 2570 char *zName; 2571 int nArg = -1; 2572 int i; 2573 if( objc<4 ){ 2574 Tcl_WrongNumArgs(interp, 2, objv, "NAME ?SWITCHES? SCRIPT"); 2575 return TCL_ERROR; 2576 } 2577 for(i=3; i<(objc-1); i++){ 2578 const char *z = Tcl_GetString(objv[i]); 2579 int n = strlen30(z); 2580 if( n>2 && strncmp(z, "-argcount",n)==0 ){ 2581 if( i==(objc-2) ){ 2582 Tcl_AppendResult(interp, "option requires an argument: ", z,(char*)0); 2583 return TCL_ERROR; 2584 } 2585 if( Tcl_GetIntFromObj(interp, objv[i+1], &nArg) ) return TCL_ERROR; 2586 if( nArg<0 ){ 2587 Tcl_AppendResult(interp, "number of arguments must be non-negative", 2588 (char*)0); 2589 return TCL_ERROR; 2590 } 2591 i++; 2592 }else 2593 if( n>2 && strncmp(z, "-deterministic",n)==0 ){ 2594 flags |= SQLITE_DETERMINISTIC; 2595 }else{ 2596 Tcl_AppendResult(interp, "bad option \"", z, 2597 "\": must be -argcount or -deterministic", (char*)0 2598 ); 2599 return TCL_ERROR; 2600 } 2601 } 2602 2603 pScript = objv[objc-1]; 2604 zName = Tcl_GetStringFromObj(objv[2], 0); 2605 pFunc = findSqlFunc(pDb, zName); 2606 if( pFunc==0 ) return TCL_ERROR; 2607 if( pFunc->pScript ){ 2608 Tcl_DecrRefCount(pFunc->pScript); 2609 } 2610 pFunc->pScript = pScript; 2611 Tcl_IncrRefCount(pScript); 2612 pFunc->useEvalObjv = safeToUseEvalObjv(interp, pScript); 2613 rc = sqlite3_create_function(pDb->db, zName, nArg, flags, 2614 pFunc, tclSqlFunc, 0, 0); 2615 if( rc!=SQLITE_OK ){ 2616 rc = TCL_ERROR; 2617 Tcl_SetResult(interp, (char *)sqlite3_errmsg(pDb->db), TCL_VOLATILE); 2618 } 2619 break; 2620 } 2621 2622 /* 2623 ** $db incrblob ?-readonly? ?DB? TABLE COLUMN ROWID 2624 */ 2625 case DB_INCRBLOB: { 2626 #ifdef SQLITE_OMIT_INCRBLOB 2627 Tcl_AppendResult(interp, "incrblob not available in this build", (char*)0); 2628 return TCL_ERROR; 2629 #else 2630 int isReadonly = 0; 2631 const char *zDb = "main"; 2632 const char *zTable; 2633 const char *zColumn; 2634 Tcl_WideInt iRow; 2635 2636 /* Check for the -readonly option */ 2637 if( objc>3 && strcmp(Tcl_GetString(objv[2]), "-readonly")==0 ){ 2638 isReadonly = 1; 2639 } 2640 2641 if( objc!=(5+isReadonly) && objc!=(6+isReadonly) ){ 2642 Tcl_WrongNumArgs(interp, 2, objv, "?-readonly? ?DB? TABLE COLUMN ROWID"); 2643 return TCL_ERROR; 2644 } 2645 2646 if( objc==(6+isReadonly) ){ 2647 zDb = Tcl_GetString(objv[2]); 2648 } 2649 zTable = Tcl_GetString(objv[objc-3]); 2650 zColumn = Tcl_GetString(objv[objc-2]); 2651 rc = Tcl_GetWideIntFromObj(interp, objv[objc-1], &iRow); 2652 2653 if( rc==TCL_OK ){ 2654 rc = createIncrblobChannel( 2655 interp, pDb, zDb, zTable, zColumn, (sqlite3_int64)iRow, isReadonly 2656 ); 2657 } 2658 #endif 2659 break; 2660 } 2661 2662 /* 2663 ** $db interrupt 2664 ** 2665 ** Interrupt the execution of the inner-most SQL interpreter. This 2666 ** causes the SQL statement to return an error of SQLITE_INTERRUPT. 2667 */ 2668 case DB_INTERRUPT: { 2669 sqlite3_interrupt(pDb->db); 2670 break; 2671 } 2672 2673 /* 2674 ** $db nullvalue ?STRING? 2675 ** 2676 ** Change text used when a NULL comes back from the database. If ?STRING? 2677 ** is not present, then the current string used for NULL is returned. 2678 ** If STRING is present, then STRING is returned. 2679 ** 2680 */ 2681 case DB_NULLVALUE: { 2682 if( objc!=2 && objc!=3 ){ 2683 Tcl_WrongNumArgs(interp, 2, objv, "NULLVALUE"); 2684 return TCL_ERROR; 2685 } 2686 if( objc==3 ){ 2687 int len; 2688 char *zNull = Tcl_GetStringFromObj(objv[2], &len); 2689 if( pDb->zNull ){ 2690 Tcl_Free(pDb->zNull); 2691 } 2692 if( zNull && len>0 ){ 2693 pDb->zNull = Tcl_Alloc( len + 1 ); 2694 memcpy(pDb->zNull, zNull, len); 2695 pDb->zNull[len] = '\0'; 2696 }else{ 2697 pDb->zNull = 0; 2698 } 2699 } 2700 Tcl_SetObjResult(interp, Tcl_NewStringObj(pDb->zNull, -1)); 2701 break; 2702 } 2703 2704 /* 2705 ** $db last_insert_rowid 2706 ** 2707 ** Return an integer which is the ROWID for the most recent insert. 2708 */ 2709 case DB_LAST_INSERT_ROWID: { 2710 Tcl_Obj *pResult; 2711 Tcl_WideInt rowid; 2712 if( objc!=2 ){ 2713 Tcl_WrongNumArgs(interp, 2, objv, ""); 2714 return TCL_ERROR; 2715 } 2716 rowid = sqlite3_last_insert_rowid(pDb->db); 2717 pResult = Tcl_GetObjResult(interp); 2718 Tcl_SetWideIntObj(pResult, rowid); 2719 break; 2720 } 2721 2722 /* 2723 ** The DB_ONECOLUMN method is implemented together with DB_EXISTS. 2724 */ 2725 2726 /* $db progress ?N CALLBACK? 2727 ** 2728 ** Invoke the given callback every N virtual machine opcodes while executing 2729 ** queries. 2730 */ 2731 case DB_PROGRESS: { 2732 if( objc==2 ){ 2733 if( pDb->zProgress ){ 2734 Tcl_AppendResult(interp, pDb->zProgress, (char*)0); 2735 } 2736 }else if( objc==4 ){ 2737 char *zProgress; 2738 int len; 2739 int N; 2740 if( TCL_OK!=Tcl_GetIntFromObj(interp, objv[2], &N) ){ 2741 return TCL_ERROR; 2742 }; 2743 if( pDb->zProgress ){ 2744 Tcl_Free(pDb->zProgress); 2745 } 2746 zProgress = Tcl_GetStringFromObj(objv[3], &len); 2747 if( zProgress && len>0 ){ 2748 pDb->zProgress = Tcl_Alloc( len + 1 ); 2749 memcpy(pDb->zProgress, zProgress, len+1); 2750 }else{ 2751 pDb->zProgress = 0; 2752 } 2753 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK 2754 if( pDb->zProgress ){ 2755 pDb->interp = interp; 2756 sqlite3_progress_handler(pDb->db, N, DbProgressHandler, pDb); 2757 }else{ 2758 sqlite3_progress_handler(pDb->db, 0, 0, 0); 2759 } 2760 #endif 2761 }else{ 2762 Tcl_WrongNumArgs(interp, 2, objv, "N CALLBACK"); 2763 return TCL_ERROR; 2764 } 2765 break; 2766 } 2767 2768 /* $db profile ?CALLBACK? 2769 ** 2770 ** Make arrangements to invoke the CALLBACK routine after each SQL statement 2771 ** that has run. The text of the SQL and the amount of elapse time are 2772 ** appended to CALLBACK before the script is run. 2773 */ 2774 case DB_PROFILE: { 2775 if( objc>3 ){ 2776 Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?"); 2777 return TCL_ERROR; 2778 }else if( objc==2 ){ 2779 if( pDb->zProfile ){ 2780 Tcl_AppendResult(interp, pDb->zProfile, (char*)0); 2781 } 2782 }else{ 2783 char *zProfile; 2784 int len; 2785 if( pDb->zProfile ){ 2786 Tcl_Free(pDb->zProfile); 2787 } 2788 zProfile = Tcl_GetStringFromObj(objv[2], &len); 2789 if( zProfile && len>0 ){ 2790 pDb->zProfile = Tcl_Alloc( len + 1 ); 2791 memcpy(pDb->zProfile, zProfile, len+1); 2792 }else{ 2793 pDb->zProfile = 0; 2794 } 2795 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT) && \ 2796 !defined(SQLITE_OMIT_DEPRECATED) 2797 if( pDb->zProfile ){ 2798 pDb->interp = interp; 2799 sqlite3_profile(pDb->db, DbProfileHandler, pDb); 2800 }else{ 2801 sqlite3_profile(pDb->db, 0, 0); 2802 } 2803 #endif 2804 } 2805 break; 2806 } 2807 2808 /* 2809 ** $db rekey KEY 2810 ** 2811 ** Change the encryption key on the currently open database. 2812 */ 2813 case DB_REKEY: { 2814 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 2815 int nKey; 2816 void *pKey; 2817 #endif 2818 if( objc!=3 ){ 2819 Tcl_WrongNumArgs(interp, 2, objv, "KEY"); 2820 return TCL_ERROR; 2821 } 2822 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 2823 pKey = Tcl_GetByteArrayFromObj(objv[2], &nKey); 2824 rc = sqlite3_rekey(pDb->db, pKey, nKey); 2825 if( rc ){ 2826 Tcl_AppendResult(interp, sqlite3_errstr(rc), (char*)0); 2827 rc = TCL_ERROR; 2828 } 2829 #endif 2830 break; 2831 } 2832 2833 /* $db restore ?DATABASE? FILENAME 2834 ** 2835 ** Open a database file named FILENAME. Transfer the content 2836 ** of FILENAME into the local database DATABASE (default: "main"). 2837 */ 2838 case DB_RESTORE: { 2839 const char *zSrcFile; 2840 const char *zDestDb; 2841 sqlite3 *pSrc; 2842 sqlite3_backup *pBackup; 2843 int nTimeout = 0; 2844 2845 if( objc==3 ){ 2846 zDestDb = "main"; 2847 zSrcFile = Tcl_GetString(objv[2]); 2848 }else if( objc==4 ){ 2849 zDestDb = Tcl_GetString(objv[2]); 2850 zSrcFile = Tcl_GetString(objv[3]); 2851 }else{ 2852 Tcl_WrongNumArgs(interp, 2, objv, "?DATABASE? FILENAME"); 2853 return TCL_ERROR; 2854 } 2855 rc = sqlite3_open_v2(zSrcFile, &pSrc, 2856 SQLITE_OPEN_READONLY | pDb->openFlags, 0); 2857 if( rc!=SQLITE_OK ){ 2858 Tcl_AppendResult(interp, "cannot open source database: ", 2859 sqlite3_errmsg(pSrc), (char*)0); 2860 sqlite3_close(pSrc); 2861 return TCL_ERROR; 2862 } 2863 pBackup = sqlite3_backup_init(pDb->db, zDestDb, pSrc, "main"); 2864 if( pBackup==0 ){ 2865 Tcl_AppendResult(interp, "restore failed: ", 2866 sqlite3_errmsg(pDb->db), (char*)0); 2867 sqlite3_close(pSrc); 2868 return TCL_ERROR; 2869 } 2870 while( (rc = sqlite3_backup_step(pBackup,100))==SQLITE_OK 2871 || rc==SQLITE_BUSY ){ 2872 if( rc==SQLITE_BUSY ){ 2873 if( nTimeout++ >= 3 ) break; 2874 sqlite3_sleep(100); 2875 } 2876 } 2877 sqlite3_backup_finish(pBackup); 2878 if( rc==SQLITE_DONE ){ 2879 rc = TCL_OK; 2880 }else if( rc==SQLITE_BUSY || rc==SQLITE_LOCKED ){ 2881 Tcl_AppendResult(interp, "restore failed: source database busy", 2882 (char*)0); 2883 rc = TCL_ERROR; 2884 }else{ 2885 Tcl_AppendResult(interp, "restore failed: ", 2886 sqlite3_errmsg(pDb->db), (char*)0); 2887 rc = TCL_ERROR; 2888 } 2889 sqlite3_close(pSrc); 2890 break; 2891 } 2892 2893 /* 2894 ** $db status (step|sort|autoindex|vmstep) 2895 ** 2896 ** Display SQLITE_STMTSTATUS_FULLSCAN_STEP or 2897 ** SQLITE_STMTSTATUS_SORT for the most recent eval. 2898 */ 2899 case DB_STATUS: { 2900 int v; 2901 const char *zOp; 2902 if( objc!=3 ){ 2903 Tcl_WrongNumArgs(interp, 2, objv, "(step|sort|autoindex)"); 2904 return TCL_ERROR; 2905 } 2906 zOp = Tcl_GetString(objv[2]); 2907 if( strcmp(zOp, "step")==0 ){ 2908 v = pDb->nStep; 2909 }else if( strcmp(zOp, "sort")==0 ){ 2910 v = pDb->nSort; 2911 }else if( strcmp(zOp, "autoindex")==0 ){ 2912 v = pDb->nIndex; 2913 }else if( strcmp(zOp, "vmstep")==0 ){ 2914 v = pDb->nVMStep; 2915 }else{ 2916 Tcl_AppendResult(interp, 2917 "bad argument: should be autoindex, step, sort or vmstep", 2918 (char*)0); 2919 return TCL_ERROR; 2920 } 2921 Tcl_SetObjResult(interp, Tcl_NewIntObj(v)); 2922 break; 2923 } 2924 2925 /* 2926 ** $db timeout MILLESECONDS 2927 ** 2928 ** Delay for the number of milliseconds specified when a file is locked. 2929 */ 2930 case DB_TIMEOUT: { 2931 int ms; 2932 if( objc!=3 ){ 2933 Tcl_WrongNumArgs(interp, 2, objv, "MILLISECONDS"); 2934 return TCL_ERROR; 2935 } 2936 if( Tcl_GetIntFromObj(interp, objv[2], &ms) ) return TCL_ERROR; 2937 sqlite3_busy_timeout(pDb->db, ms); 2938 break; 2939 } 2940 2941 /* 2942 ** $db total_changes 2943 ** 2944 ** Return the number of rows that were modified, inserted, or deleted 2945 ** since the database handle was created. 2946 */ 2947 case DB_TOTAL_CHANGES: { 2948 Tcl_Obj *pResult; 2949 if( objc!=2 ){ 2950 Tcl_WrongNumArgs(interp, 2, objv, ""); 2951 return TCL_ERROR; 2952 } 2953 pResult = Tcl_GetObjResult(interp); 2954 Tcl_SetIntObj(pResult, sqlite3_total_changes(pDb->db)); 2955 break; 2956 } 2957 2958 /* $db trace ?CALLBACK? 2959 ** 2960 ** Make arrangements to invoke the CALLBACK routine for each SQL statement 2961 ** that is executed. The text of the SQL is appended to CALLBACK before 2962 ** it is executed. 2963 */ 2964 case DB_TRACE: { 2965 if( objc>3 ){ 2966 Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK?"); 2967 return TCL_ERROR; 2968 }else if( objc==2 ){ 2969 if( pDb->zTrace ){ 2970 Tcl_AppendResult(interp, pDb->zTrace, (char*)0); 2971 } 2972 }else{ 2973 char *zTrace; 2974 int len; 2975 if( pDb->zTrace ){ 2976 Tcl_Free(pDb->zTrace); 2977 } 2978 zTrace = Tcl_GetStringFromObj(objv[2], &len); 2979 if( zTrace && len>0 ){ 2980 pDb->zTrace = Tcl_Alloc( len + 1 ); 2981 memcpy(pDb->zTrace, zTrace, len+1); 2982 }else{ 2983 pDb->zTrace = 0; 2984 } 2985 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT) && \ 2986 !defined(SQLITE_OMIT_DEPRECATED) 2987 if( pDb->zTrace ){ 2988 pDb->interp = interp; 2989 sqlite3_trace(pDb->db, DbTraceHandler, pDb); 2990 }else{ 2991 sqlite3_trace(pDb->db, 0, 0); 2992 } 2993 #endif 2994 } 2995 break; 2996 } 2997 2998 /* $db trace_v2 ?CALLBACK? ?MASK? 2999 ** 3000 ** Make arrangements to invoke the CALLBACK routine for each trace event 3001 ** matching the mask that is generated. The parameters are appended to 3002 ** CALLBACK before it is executed. 3003 */ 3004 case DB_TRACE_V2: { 3005 if( objc>4 ){ 3006 Tcl_WrongNumArgs(interp, 2, objv, "?CALLBACK? ?MASK?"); 3007 return TCL_ERROR; 3008 }else if( objc==2 ){ 3009 if( pDb->zTraceV2 ){ 3010 Tcl_AppendResult(interp, pDb->zTraceV2, (char*)0); 3011 } 3012 }else{ 3013 char *zTraceV2; 3014 int len; 3015 Tcl_WideInt wMask = 0; 3016 if( objc==4 ){ 3017 static const char *TTYPE_strs[] = { 3018 "statement", "profile", "row", "close", 0 3019 }; 3020 enum TTYPE_enum { 3021 TTYPE_STMT, TTYPE_PROFILE, TTYPE_ROW, TTYPE_CLOSE 3022 }; 3023 int i; 3024 if( TCL_OK!=Tcl_ListObjLength(interp, objv[3], &len) ){ 3025 return TCL_ERROR; 3026 } 3027 for(i=0; i<len; i++){ 3028 Tcl_Obj *pObj; 3029 int ttype; 3030 if( TCL_OK!=Tcl_ListObjIndex(interp, objv[3], i, &pObj) ){ 3031 return TCL_ERROR; 3032 } 3033 if( Tcl_GetIndexFromObj(interp, pObj, TTYPE_strs, "trace type", 3034 0, &ttype)!=TCL_OK ){ 3035 Tcl_WideInt wType; 3036 Tcl_Obj *pError = Tcl_DuplicateObj(Tcl_GetObjResult(interp)); 3037 Tcl_IncrRefCount(pError); 3038 if( TCL_OK==Tcl_GetWideIntFromObj(interp, pObj, &wType) ){ 3039 Tcl_DecrRefCount(pError); 3040 wMask |= wType; 3041 }else{ 3042 Tcl_SetObjResult(interp, pError); 3043 Tcl_DecrRefCount(pError); 3044 return TCL_ERROR; 3045 } 3046 }else{ 3047 switch( (enum TTYPE_enum)ttype ){ 3048 case TTYPE_STMT: wMask |= SQLITE_TRACE_STMT; break; 3049 case TTYPE_PROFILE: wMask |= SQLITE_TRACE_PROFILE; break; 3050 case TTYPE_ROW: wMask |= SQLITE_TRACE_ROW; break; 3051 case TTYPE_CLOSE: wMask |= SQLITE_TRACE_CLOSE; break; 3052 } 3053 } 3054 } 3055 }else{ 3056 wMask = SQLITE_TRACE_STMT; /* use the "legacy" default */ 3057 } 3058 if( pDb->zTraceV2 ){ 3059 Tcl_Free(pDb->zTraceV2); 3060 } 3061 zTraceV2 = Tcl_GetStringFromObj(objv[2], &len); 3062 if( zTraceV2 && len>0 ){ 3063 pDb->zTraceV2 = Tcl_Alloc( len + 1 ); 3064 memcpy(pDb->zTraceV2, zTraceV2, len+1); 3065 }else{ 3066 pDb->zTraceV2 = 0; 3067 } 3068 #if !defined(SQLITE_OMIT_TRACE) && !defined(SQLITE_OMIT_FLOATING_POINT) 3069 if( pDb->zTraceV2 ){ 3070 pDb->interp = interp; 3071 sqlite3_trace_v2(pDb->db, (unsigned)wMask, DbTraceV2Handler, pDb); 3072 }else{ 3073 sqlite3_trace_v2(pDb->db, 0, 0, 0); 3074 } 3075 #endif 3076 } 3077 break; 3078 } 3079 3080 /* $db transaction [-deferred|-immediate|-exclusive] SCRIPT 3081 ** 3082 ** Start a new transaction (if we are not already in the midst of a 3083 ** transaction) and execute the TCL script SCRIPT. After SCRIPT 3084 ** completes, either commit the transaction or roll it back if SCRIPT 3085 ** throws an exception. Or if no new transation was started, do nothing. 3086 ** pass the exception on up the stack. 3087 ** 3088 ** This command was inspired by Dave Thomas's talk on Ruby at the 3089 ** 2005 O'Reilly Open Source Convention (OSCON). 3090 */ 3091 case DB_TRANSACTION: { 3092 Tcl_Obj *pScript; 3093 const char *zBegin = "SAVEPOINT _tcl_transaction"; 3094 if( objc!=3 && objc!=4 ){ 3095 Tcl_WrongNumArgs(interp, 2, objv, "[TYPE] SCRIPT"); 3096 return TCL_ERROR; 3097 } 3098 3099 if( pDb->nTransaction==0 && objc==4 ){ 3100 static const char *TTYPE_strs[] = { 3101 "deferred", "exclusive", "immediate", 0 3102 }; 3103 enum TTYPE_enum { 3104 TTYPE_DEFERRED, TTYPE_EXCLUSIVE, TTYPE_IMMEDIATE 3105 }; 3106 int ttype; 3107 if( Tcl_GetIndexFromObj(interp, objv[2], TTYPE_strs, "transaction type", 3108 0, &ttype) ){ 3109 return TCL_ERROR; 3110 } 3111 switch( (enum TTYPE_enum)ttype ){ 3112 case TTYPE_DEFERRED: /* no-op */; break; 3113 case TTYPE_EXCLUSIVE: zBegin = "BEGIN EXCLUSIVE"; break; 3114 case TTYPE_IMMEDIATE: zBegin = "BEGIN IMMEDIATE"; break; 3115 } 3116 } 3117 pScript = objv[objc-1]; 3118 3119 /* Run the SQLite BEGIN command to open a transaction or savepoint. */ 3120 pDb->disableAuth++; 3121 rc = sqlite3_exec(pDb->db, zBegin, 0, 0, 0); 3122 pDb->disableAuth--; 3123 if( rc!=SQLITE_OK ){ 3124 Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), (char*)0); 3125 return TCL_ERROR; 3126 } 3127 pDb->nTransaction++; 3128 3129 /* If using NRE, schedule a callback to invoke the script pScript, then 3130 ** a second callback to commit (or rollback) the transaction or savepoint 3131 ** opened above. If not using NRE, evaluate the script directly, then 3132 ** call function DbTransPostCmd() to commit (or rollback) the transaction 3133 ** or savepoint. */ 3134 if( DbUseNre() ){ 3135 Tcl_NRAddCallback(interp, DbTransPostCmd, cd, 0, 0, 0); 3136 (void)Tcl_NREvalObj(interp, pScript, 0); 3137 }else{ 3138 rc = DbTransPostCmd(&cd, interp, Tcl_EvalObjEx(interp, pScript, 0)); 3139 } 3140 break; 3141 } 3142 3143 /* 3144 ** $db unlock_notify ?script? 3145 */ 3146 case DB_UNLOCK_NOTIFY: { 3147 #ifndef SQLITE_ENABLE_UNLOCK_NOTIFY 3148 Tcl_AppendResult(interp, "unlock_notify not available in this build", 3149 (char*)0); 3150 rc = TCL_ERROR; 3151 #else 3152 if( objc!=2 && objc!=3 ){ 3153 Tcl_WrongNumArgs(interp, 2, objv, "?SCRIPT?"); 3154 rc = TCL_ERROR; 3155 }else{ 3156 void (*xNotify)(void **, int) = 0; 3157 void *pNotifyArg = 0; 3158 3159 if( pDb->pUnlockNotify ){ 3160 Tcl_DecrRefCount(pDb->pUnlockNotify); 3161 pDb->pUnlockNotify = 0; 3162 } 3163 3164 if( objc==3 ){ 3165 xNotify = DbUnlockNotify; 3166 pNotifyArg = (void *)pDb; 3167 pDb->pUnlockNotify = objv[2]; 3168 Tcl_IncrRefCount(pDb->pUnlockNotify); 3169 } 3170 3171 if( sqlite3_unlock_notify(pDb->db, xNotify, pNotifyArg) ){ 3172 Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), (char*)0); 3173 rc = TCL_ERROR; 3174 } 3175 } 3176 #endif 3177 break; 3178 } 3179 3180 /* 3181 ** $db preupdate_hook count 3182 ** $db preupdate_hook hook ?SCRIPT? 3183 ** $db preupdate_hook new INDEX 3184 ** $db preupdate_hook old INDEX 3185 */ 3186 case DB_PREUPDATE: { 3187 #ifndef SQLITE_ENABLE_PREUPDATE_HOOK 3188 Tcl_AppendResult(interp, "preupdate_hook was omitted at compile-time", 3189 (char*)0); 3190 rc = TCL_ERROR; 3191 #else 3192 static const char *azSub[] = {"count", "depth", "hook", "new", "old", 0}; 3193 enum DbPreupdateSubCmd { 3194 PRE_COUNT, PRE_DEPTH, PRE_HOOK, PRE_NEW, PRE_OLD 3195 }; 3196 int iSub; 3197 3198 if( objc<3 ){ 3199 Tcl_WrongNumArgs(interp, 2, objv, "SUB-COMMAND ?ARGS?"); 3200 } 3201 if( Tcl_GetIndexFromObj(interp, objv[2], azSub, "sub-command", 0, &iSub) ){ 3202 return TCL_ERROR; 3203 } 3204 3205 switch( (enum DbPreupdateSubCmd)iSub ){ 3206 case PRE_COUNT: { 3207 int nCol = sqlite3_preupdate_count(pDb->db); 3208 Tcl_SetObjResult(interp, Tcl_NewIntObj(nCol)); 3209 break; 3210 } 3211 3212 case PRE_HOOK: { 3213 if( objc>4 ){ 3214 Tcl_WrongNumArgs(interp, 2, objv, "hook ?SCRIPT?"); 3215 return TCL_ERROR; 3216 } 3217 DbHookCmd(interp, pDb, (objc==4 ? objv[3] : 0), &pDb->pPreUpdateHook); 3218 break; 3219 } 3220 3221 case PRE_DEPTH: { 3222 Tcl_Obj *pRet; 3223 if( objc!=3 ){ 3224 Tcl_WrongNumArgs(interp, 3, objv, ""); 3225 return TCL_ERROR; 3226 } 3227 pRet = Tcl_NewIntObj(sqlite3_preupdate_depth(pDb->db)); 3228 Tcl_SetObjResult(interp, pRet); 3229 break; 3230 } 3231 3232 case PRE_NEW: 3233 case PRE_OLD: { 3234 int iIdx; 3235 sqlite3_value *pValue; 3236 if( objc!=4 ){ 3237 Tcl_WrongNumArgs(interp, 3, objv, "INDEX"); 3238 return TCL_ERROR; 3239 } 3240 if( Tcl_GetIntFromObj(interp, objv[3], &iIdx) ){ 3241 return TCL_ERROR; 3242 } 3243 3244 if( iSub==PRE_OLD ){ 3245 rc = sqlite3_preupdate_old(pDb->db, iIdx, &pValue); 3246 }else{ 3247 assert( iSub==PRE_NEW ); 3248 rc = sqlite3_preupdate_new(pDb->db, iIdx, &pValue); 3249 } 3250 3251 if( rc==SQLITE_OK ){ 3252 Tcl_Obj *pObj; 3253 pObj = Tcl_NewStringObj((char*)sqlite3_value_text(pValue), -1); 3254 Tcl_SetObjResult(interp, pObj); 3255 }else{ 3256 Tcl_AppendResult(interp, sqlite3_errmsg(pDb->db), (char*)0); 3257 return TCL_ERROR; 3258 } 3259 } 3260 } 3261 #endif /* SQLITE_ENABLE_PREUPDATE_HOOK */ 3262 break; 3263 } 3264 3265 /* 3266 ** $db wal_hook ?script? 3267 ** $db update_hook ?script? 3268 ** $db rollback_hook ?script? 3269 */ 3270 case DB_WAL_HOOK: 3271 case DB_UPDATE_HOOK: 3272 case DB_ROLLBACK_HOOK: { 3273 /* set ppHook to point at pUpdateHook or pRollbackHook, depending on 3274 ** whether [$db update_hook] or [$db rollback_hook] was invoked. 3275 */ 3276 Tcl_Obj **ppHook = 0; 3277 if( choice==DB_WAL_HOOK ) ppHook = &pDb->pWalHook; 3278 if( choice==DB_UPDATE_HOOK ) ppHook = &pDb->pUpdateHook; 3279 if( choice==DB_ROLLBACK_HOOK ) ppHook = &pDb->pRollbackHook; 3280 if( objc>3 ){ 3281 Tcl_WrongNumArgs(interp, 2, objv, "?SCRIPT?"); 3282 return TCL_ERROR; 3283 } 3284 3285 DbHookCmd(interp, pDb, (objc==3 ? objv[2] : 0), ppHook); 3286 break; 3287 } 3288 3289 /* $db version 3290 ** 3291 ** Return the version string for this database. 3292 */ 3293 case DB_VERSION: { 3294 Tcl_SetResult(interp, (char *)sqlite3_libversion(), TCL_STATIC); 3295 break; 3296 } 3297 3298 3299 } /* End of the SWITCH statement */ 3300 return rc; 3301 } 3302 3303 #if SQLITE_TCL_NRE 3304 /* 3305 ** Adaptor that provides an objCmd interface to the NRE-enabled 3306 ** interface implementation. 3307 */ 3308 static int SQLITE_TCLAPI DbObjCmdAdaptor( 3309 void *cd, 3310 Tcl_Interp *interp, 3311 int objc, 3312 Tcl_Obj *const*objv 3313 ){ 3314 return Tcl_NRCallObjProc(interp, DbObjCmd, cd, objc, objv); 3315 } 3316 #endif /* SQLITE_TCL_NRE */ 3317 3318 /* 3319 ** sqlite3 DBNAME FILENAME ?-vfs VFSNAME? ?-key KEY? ?-readonly BOOLEAN? 3320 ** ?-create BOOLEAN? ?-nomutex BOOLEAN? 3321 ** 3322 ** This is the main Tcl command. When the "sqlite" Tcl command is 3323 ** invoked, this routine runs to process that command. 3324 ** 3325 ** The first argument, DBNAME, is an arbitrary name for a new 3326 ** database connection. This command creates a new command named 3327 ** DBNAME that is used to control that connection. The database 3328 ** connection is deleted when the DBNAME command is deleted. 3329 ** 3330 ** The second argument is the name of the database file. 3331 ** 3332 */ 3333 static int SQLITE_TCLAPI DbMain( 3334 void *cd, 3335 Tcl_Interp *interp, 3336 int objc, 3337 Tcl_Obj *const*objv 3338 ){ 3339 SqliteDb *p; 3340 const char *zArg; 3341 char *zErrMsg; 3342 int i; 3343 const char *zFile; 3344 const char *zVfs = 0; 3345 int flags; 3346 Tcl_DString translatedFilename; 3347 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 3348 void *pKey = 0; 3349 int nKey = 0; 3350 #endif 3351 int rc; 3352 3353 /* In normal use, each TCL interpreter runs in a single thread. So 3354 ** by default, we can turn of mutexing on SQLite database connections. 3355 ** However, for testing purposes it is useful to have mutexes turned 3356 ** on. So, by default, mutexes default off. But if compiled with 3357 ** SQLITE_TCL_DEFAULT_FULLMUTEX then mutexes default on. 3358 */ 3359 #ifdef SQLITE_TCL_DEFAULT_FULLMUTEX 3360 flags = SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE | SQLITE_OPEN_FULLMUTEX; 3361 #else 3362 flags = SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE | SQLITE_OPEN_NOMUTEX; 3363 #endif 3364 3365 if( objc==2 ){ 3366 zArg = Tcl_GetStringFromObj(objv[1], 0); 3367 if( strcmp(zArg,"-version")==0 ){ 3368 Tcl_AppendResult(interp,sqlite3_libversion(), (char*)0); 3369 return TCL_OK; 3370 } 3371 if( strcmp(zArg,"-sourceid")==0 ){ 3372 Tcl_AppendResult(interp,sqlite3_sourceid(), (char*)0); 3373 return TCL_OK; 3374 } 3375 if( strcmp(zArg,"-has-codec")==0 ){ 3376 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 3377 Tcl_AppendResult(interp,"1",(char*)0); 3378 #else 3379 Tcl_AppendResult(interp,"0",(char*)0); 3380 #endif 3381 return TCL_OK; 3382 } 3383 } 3384 for(i=3; i+1<objc; i+=2){ 3385 zArg = Tcl_GetString(objv[i]); 3386 if( strcmp(zArg,"-key")==0 ){ 3387 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 3388 pKey = Tcl_GetByteArrayFromObj(objv[i+1], &nKey); 3389 #endif 3390 }else if( strcmp(zArg, "-vfs")==0 ){ 3391 zVfs = Tcl_GetString(objv[i+1]); 3392 }else if( strcmp(zArg, "-readonly")==0 ){ 3393 int b; 3394 if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR; 3395 if( b ){ 3396 flags &= ~(SQLITE_OPEN_READWRITE|SQLITE_OPEN_CREATE); 3397 flags |= SQLITE_OPEN_READONLY; 3398 }else{ 3399 flags &= ~SQLITE_OPEN_READONLY; 3400 flags |= SQLITE_OPEN_READWRITE; 3401 } 3402 }else if( strcmp(zArg, "-create")==0 ){ 3403 int b; 3404 if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR; 3405 if( b && (flags & SQLITE_OPEN_READONLY)==0 ){ 3406 flags |= SQLITE_OPEN_CREATE; 3407 }else{ 3408 flags &= ~SQLITE_OPEN_CREATE; 3409 } 3410 }else if( strcmp(zArg, "-nomutex")==0 ){ 3411 int b; 3412 if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR; 3413 if( b ){ 3414 flags |= SQLITE_OPEN_NOMUTEX; 3415 flags &= ~SQLITE_OPEN_FULLMUTEX; 3416 }else{ 3417 flags &= ~SQLITE_OPEN_NOMUTEX; 3418 } 3419 }else if( strcmp(zArg, "-fullmutex")==0 ){ 3420 int b; 3421 if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR; 3422 if( b ){ 3423 flags |= SQLITE_OPEN_FULLMUTEX; 3424 flags &= ~SQLITE_OPEN_NOMUTEX; 3425 }else{ 3426 flags &= ~SQLITE_OPEN_FULLMUTEX; 3427 } 3428 }else if( strcmp(zArg, "-uri")==0 ){ 3429 int b; 3430 if( Tcl_GetBooleanFromObj(interp, objv[i+1], &b) ) return TCL_ERROR; 3431 if( b ){ 3432 flags |= SQLITE_OPEN_URI; 3433 }else{ 3434 flags &= ~SQLITE_OPEN_URI; 3435 } 3436 }else{ 3437 Tcl_AppendResult(interp, "unknown option: ", zArg, (char*)0); 3438 return TCL_ERROR; 3439 } 3440 } 3441 if( objc<3 || (objc&1)!=1 ){ 3442 Tcl_WrongNumArgs(interp, 1, objv, 3443 "HANDLE FILENAME ?-vfs VFSNAME? ?-readonly BOOLEAN? ?-create BOOLEAN?" 3444 " ?-nomutex BOOLEAN? ?-fullmutex BOOLEAN? ?-uri BOOLEAN?" 3445 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 3446 " ?-key CODECKEY?" 3447 #endif 3448 ); 3449 return TCL_ERROR; 3450 } 3451 zErrMsg = 0; 3452 p = (SqliteDb*)Tcl_Alloc( sizeof(*p) ); 3453 memset(p, 0, sizeof(*p)); 3454 zFile = Tcl_GetStringFromObj(objv[2], 0); 3455 zFile = Tcl_TranslateFileName(interp, zFile, &translatedFilename); 3456 rc = sqlite3_open_v2(zFile, &p->db, flags, zVfs); 3457 Tcl_DStringFree(&translatedFilename); 3458 if( p->db ){ 3459 if( SQLITE_OK!=sqlite3_errcode(p->db) ){ 3460 zErrMsg = sqlite3_mprintf("%s", sqlite3_errmsg(p->db)); 3461 sqlite3_close(p->db); 3462 p->db = 0; 3463 } 3464 }else{ 3465 zErrMsg = sqlite3_mprintf("%s", sqlite3_errstr(rc)); 3466 } 3467 #if defined(SQLITE_HAS_CODEC) && !defined(SQLITE_OMIT_CODEC_FROM_TCL) 3468 if( p->db ){ 3469 sqlite3_key(p->db, pKey, nKey); 3470 } 3471 #endif 3472 if( p->db==0 ){ 3473 Tcl_SetResult(interp, zErrMsg, TCL_VOLATILE); 3474 Tcl_Free((char*)p); 3475 sqlite3_free(zErrMsg); 3476 return TCL_ERROR; 3477 } 3478 p->maxStmt = NUM_PREPARED_STMTS; 3479 p->openFlags = flags & SQLITE_OPEN_URI; 3480 p->interp = interp; 3481 zArg = Tcl_GetStringFromObj(objv[1], 0); 3482 if( DbUseNre() ){ 3483 Tcl_NRCreateCommand(interp, zArg, DbObjCmdAdaptor, DbObjCmd, 3484 (char*)p, DbDeleteCmd); 3485 }else{ 3486 Tcl_CreateObjCommand(interp, zArg, DbObjCmd, (char*)p, DbDeleteCmd); 3487 } 3488 return TCL_OK; 3489 } 3490 3491 /* 3492 ** Provide a dummy Tcl_InitStubs if we are using this as a static 3493 ** library. 3494 */ 3495 #ifndef USE_TCL_STUBS 3496 # undef Tcl_InitStubs 3497 # define Tcl_InitStubs(a,b,c) TCL_VERSION 3498 #endif 3499 3500 /* 3501 ** Make sure we have a PACKAGE_VERSION macro defined. This will be 3502 ** defined automatically by the TEA makefile. But other makefiles 3503 ** do not define it. 3504 */ 3505 #ifndef PACKAGE_VERSION 3506 # define PACKAGE_VERSION SQLITE_VERSION 3507 #endif 3508 3509 /* 3510 ** Initialize this module. 3511 ** 3512 ** This Tcl module contains only a single new Tcl command named "sqlite". 3513 ** (Hence there is no namespace. There is no point in using a namespace 3514 ** if the extension only supplies one new name!) The "sqlite" command is 3515 ** used to open a new SQLite database. See the DbMain() routine above 3516 ** for additional information. 3517 ** 3518 ** The EXTERN macros are required by TCL in order to work on windows. 3519 */ 3520 EXTERN int Sqlite3_Init(Tcl_Interp *interp){ 3521 int rc = Tcl_InitStubs(interp, "8.4", 0) ? TCL_OK : TCL_ERROR; 3522 if( rc==TCL_OK ){ 3523 Tcl_CreateObjCommand(interp, "sqlite3", (Tcl_ObjCmdProc*)DbMain, 0, 0); 3524 #ifndef SQLITE_3_SUFFIX_ONLY 3525 /* The "sqlite" alias is undocumented. It is here only to support 3526 ** legacy scripts. All new scripts should use only the "sqlite3" 3527 ** command. */ 3528 Tcl_CreateObjCommand(interp, "sqlite", (Tcl_ObjCmdProc*)DbMain, 0, 0); 3529 #endif 3530 rc = Tcl_PkgProvide(interp, "sqlite3", PACKAGE_VERSION); 3531 } 3532 return rc; 3533 } 3534 EXTERN int Tclsqlite3_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); } 3535 EXTERN int Sqlite3_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; } 3536 EXTERN int Tclsqlite3_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; } 3537 3538 /* Because it accesses the file-system and uses persistent state, SQLite 3539 ** is not considered appropriate for safe interpreters. Hence, we cause 3540 ** the _SafeInit() interfaces return TCL_ERROR. 3541 */ 3542 EXTERN int Sqlite3_SafeInit(Tcl_Interp *interp){ return TCL_ERROR; } 3543 EXTERN int Sqlite3_SafeUnload(Tcl_Interp *interp, int flags){return TCL_ERROR;} 3544 3545 3546 3547 #ifndef SQLITE_3_SUFFIX_ONLY 3548 int Sqlite_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); } 3549 int Tclsqlite_Init(Tcl_Interp *interp){ return Sqlite3_Init(interp); } 3550 int Sqlite_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; } 3551 int Tclsqlite_Unload(Tcl_Interp *interp, int flags){ return TCL_OK; } 3552 #endif 3553 3554 #ifdef TCLSH 3555 /***************************************************************************** 3556 ** All of the code that follows is used to build standalone TCL interpreters 3557 ** that are statically linked with SQLite. Enable these by compiling 3558 ** with -DTCLSH=n where n can be 1 or 2. An n of 1 generates a standard 3559 ** tclsh but with SQLite built in. An n of 2 generates the SQLite space 3560 ** analysis program. 3561 */ 3562 3563 #if defined(SQLITE_TEST) || defined(SQLITE_TCLMD5) 3564 /* 3565 * This code implements the MD5 message-digest algorithm. 3566 * The algorithm is due to Ron Rivest. This code was 3567 * written by Colin Plumb in 1993, no copyright is claimed. 3568 * This code is in the public domain; do with it what you wish. 3569 * 3570 * Equivalent code is available from RSA Data Security, Inc. 3571 * This code has been tested against that, and is equivalent, 3572 * except that you don't need to include two pages of legalese 3573 * with every copy. 3574 * 3575 * To compute the message digest of a chunk of bytes, declare an 3576 * MD5Context structure, pass it to MD5Init, call MD5Update as 3577 * needed on buffers full of bytes, and then call MD5Final, which 3578 * will fill a supplied 16-byte array with the digest. 3579 */ 3580 3581 /* 3582 * If compiled on a machine that doesn't have a 32-bit integer, 3583 * you just set "uint32" to the appropriate datatype for an 3584 * unsigned 32-bit integer. For example: 3585 * 3586 * cc -Duint32='unsigned long' md5.c 3587 * 3588 */ 3589 #ifndef uint32 3590 # define uint32 unsigned int 3591 #endif 3592 3593 struct MD5Context { 3594 int isInit; 3595 uint32 buf[4]; 3596 uint32 bits[2]; 3597 unsigned char in[64]; 3598 }; 3599 typedef struct MD5Context MD5Context; 3600 3601 /* 3602 * Note: this code is harmless on little-endian machines. 3603 */ 3604 static void byteReverse (unsigned char *buf, unsigned longs){ 3605 uint32 t; 3606 do { 3607 t = (uint32)((unsigned)buf[3]<<8 | buf[2]) << 16 | 3608 ((unsigned)buf[1]<<8 | buf[0]); 3609 *(uint32 *)buf = t; 3610 buf += 4; 3611 } while (--longs); 3612 } 3613 /* The four core functions - F1 is optimized somewhat */ 3614 3615 /* #define F1(x, y, z) (x & y | ~x & z) */ 3616 #define F1(x, y, z) (z ^ (x & (y ^ z))) 3617 #define F2(x, y, z) F1(z, x, y) 3618 #define F3(x, y, z) (x ^ y ^ z) 3619 #define F4(x, y, z) (y ^ (x | ~z)) 3620 3621 /* This is the central step in the MD5 algorithm. */ 3622 #define MD5STEP(f, w, x, y, z, data, s) \ 3623 ( w += f(x, y, z) + data, w = w<<s | w>>(32-s), w += x ) 3624 3625 /* 3626 * The core of the MD5 algorithm, this alters an existing MD5 hash to 3627 * reflect the addition of 16 longwords of new data. MD5Update blocks 3628 * the data and converts bytes into longwords for this routine. 3629 */ 3630 static void MD5Transform(uint32 buf[4], const uint32 in[16]){ 3631 register uint32 a, b, c, d; 3632 3633 a = buf[0]; 3634 b = buf[1]; 3635 c = buf[2]; 3636 d = buf[3]; 3637 3638 MD5STEP(F1, a, b, c, d, in[ 0]+0xd76aa478, 7); 3639 MD5STEP(F1, d, a, b, c, in[ 1]+0xe8c7b756, 12); 3640 MD5STEP(F1, c, d, a, b, in[ 2]+0x242070db, 17); 3641 MD5STEP(F1, b, c, d, a, in[ 3]+0xc1bdceee, 22); 3642 MD5STEP(F1, a, b, c, d, in[ 4]+0xf57c0faf, 7); 3643 MD5STEP(F1, d, a, b, c, in[ 5]+0x4787c62a, 12); 3644 MD5STEP(F1, c, d, a, b, in[ 6]+0xa8304613, 17); 3645 MD5STEP(F1, b, c, d, a, in[ 7]+0xfd469501, 22); 3646 MD5STEP(F1, a, b, c, d, in[ 8]+0x698098d8, 7); 3647 MD5STEP(F1, d, a, b, c, in[ 9]+0x8b44f7af, 12); 3648 MD5STEP(F1, c, d, a, b, in[10]+0xffff5bb1, 17); 3649 MD5STEP(F1, b, c, d, a, in[11]+0x895cd7be, 22); 3650 MD5STEP(F1, a, b, c, d, in[12]+0x6b901122, 7); 3651 MD5STEP(F1, d, a, b, c, in[13]+0xfd987193, 12); 3652 MD5STEP(F1, c, d, a, b, in[14]+0xa679438e, 17); 3653 MD5STEP(F1, b, c, d, a, in[15]+0x49b40821, 22); 3654 3655 MD5STEP(F2, a, b, c, d, in[ 1]+0xf61e2562, 5); 3656 MD5STEP(F2, d, a, b, c, in[ 6]+0xc040b340, 9); 3657 MD5STEP(F2, c, d, a, b, in[11]+0x265e5a51, 14); 3658 MD5STEP(F2, b, c, d, a, in[ 0]+0xe9b6c7aa, 20); 3659 MD5STEP(F2, a, b, c, d, in[ 5]+0xd62f105d, 5); 3660 MD5STEP(F2, d, a, b, c, in[10]+0x02441453, 9); 3661 MD5STEP(F2, c, d, a, b, in[15]+0xd8a1e681, 14); 3662 MD5STEP(F2, b, c, d, a, in[ 4]+0xe7d3fbc8, 20); 3663 MD5STEP(F2, a, b, c, d, in[ 9]+0x21e1cde6, 5); 3664 MD5STEP(F2, d, a, b, c, in[14]+0xc33707d6, 9); 3665 MD5STEP(F2, c, d, a, b, in[ 3]+0xf4d50d87, 14); 3666 MD5STEP(F2, b, c, d, a, in[ 8]+0x455a14ed, 20); 3667 MD5STEP(F2, a, b, c, d, in[13]+0xa9e3e905, 5); 3668 MD5STEP(F2, d, a, b, c, in[ 2]+0xfcefa3f8, 9); 3669 MD5STEP(F2, c, d, a, b, in[ 7]+0x676f02d9, 14); 3670 MD5STEP(F2, b, c, d, a, in[12]+0x8d2a4c8a, 20); 3671 3672 MD5STEP(F3, a, b, c, d, in[ 5]+0xfffa3942, 4); 3673 MD5STEP(F3, d, a, b, c, in[ 8]+0x8771f681, 11); 3674 MD5STEP(F3, c, d, a, b, in[11]+0x6d9d6122, 16); 3675 MD5STEP(F3, b, c, d, a, in[14]+0xfde5380c, 23); 3676 MD5STEP(F3, a, b, c, d, in[ 1]+0xa4beea44, 4); 3677 MD5STEP(F3, d, a, b, c, in[ 4]+0x4bdecfa9, 11); 3678 MD5STEP(F3, c, d, a, b, in[ 7]+0xf6bb4b60, 16); 3679 MD5STEP(F3, b, c, d, a, in[10]+0xbebfbc70, 23); 3680 MD5STEP(F3, a, b, c, d, in[13]+0x289b7ec6, 4); 3681 MD5STEP(F3, d, a, b, c, in[ 0]+0xeaa127fa, 11); 3682 MD5STEP(F3, c, d, a, b, in[ 3]+0xd4ef3085, 16); 3683 MD5STEP(F3, b, c, d, a, in[ 6]+0x04881d05, 23); 3684 MD5STEP(F3, a, b, c, d, in[ 9]+0xd9d4d039, 4); 3685 MD5STEP(F3, d, a, b, c, in[12]+0xe6db99e5, 11); 3686 MD5STEP(F3, c, d, a, b, in[15]+0x1fa27cf8, 16); 3687 MD5STEP(F3, b, c, d, a, in[ 2]+0xc4ac5665, 23); 3688 3689 MD5STEP(F4, a, b, c, d, in[ 0]+0xf4292244, 6); 3690 MD5STEP(F4, d, a, b, c, in[ 7]+0x432aff97, 10); 3691 MD5STEP(F4, c, d, a, b, in[14]+0xab9423a7, 15); 3692 MD5STEP(F4, b, c, d, a, in[ 5]+0xfc93a039, 21); 3693 MD5STEP(F4, a, b, c, d, in[12]+0x655b59c3, 6); 3694 MD5STEP(F4, d, a, b, c, in[ 3]+0x8f0ccc92, 10); 3695 MD5STEP(F4, c, d, a, b, in[10]+0xffeff47d, 15); 3696 MD5STEP(F4, b, c, d, a, in[ 1]+0x85845dd1, 21); 3697 MD5STEP(F4, a, b, c, d, in[ 8]+0x6fa87e4f, 6); 3698 MD5STEP(F4, d, a, b, c, in[15]+0xfe2ce6e0, 10); 3699 MD5STEP(F4, c, d, a, b, in[ 6]+0xa3014314, 15); 3700 MD5STEP(F4, b, c, d, a, in[13]+0x4e0811a1, 21); 3701 MD5STEP(F4, a, b, c, d, in[ 4]+0xf7537e82, 6); 3702 MD5STEP(F4, d, a, b, c, in[11]+0xbd3af235, 10); 3703 MD5STEP(F4, c, d, a, b, in[ 2]+0x2ad7d2bb, 15); 3704 MD5STEP(F4, b, c, d, a, in[ 9]+0xeb86d391, 21); 3705 3706 buf[0] += a; 3707 buf[1] += b; 3708 buf[2] += c; 3709 buf[3] += d; 3710 } 3711 3712 /* 3713 * Start MD5 accumulation. Set bit count to 0 and buffer to mysterious 3714 * initialization constants. 3715 */ 3716 static void MD5Init(MD5Context *ctx){ 3717 ctx->isInit = 1; 3718 ctx->buf[0] = 0x67452301; 3719 ctx->buf[1] = 0xefcdab89; 3720 ctx->buf[2] = 0x98badcfe; 3721 ctx->buf[3] = 0x10325476; 3722 ctx->bits[0] = 0; 3723 ctx->bits[1] = 0; 3724 } 3725 3726 /* 3727 * Update context to reflect the concatenation of another buffer full 3728 * of bytes. 3729 */ 3730 static 3731 void MD5Update(MD5Context *ctx, const unsigned char *buf, unsigned int len){ 3732 uint32 t; 3733 3734 /* Update bitcount */ 3735 3736 t = ctx->bits[0]; 3737 if ((ctx->bits[0] = t + ((uint32)len << 3)) < t) 3738 ctx->bits[1]++; /* Carry from low to high */ 3739 ctx->bits[1] += len >> 29; 3740 3741 t = (t >> 3) & 0x3f; /* Bytes already in shsInfo->data */ 3742 3743 /* Handle any leading odd-sized chunks */ 3744 3745 if ( t ) { 3746 unsigned char *p = (unsigned char *)ctx->in + t; 3747 3748 t = 64-t; 3749 if (len < t) { 3750 memcpy(p, buf, len); 3751 return; 3752 } 3753 memcpy(p, buf, t); 3754 byteReverse(ctx->in, 16); 3755 MD5Transform(ctx->buf, (uint32 *)ctx->in); 3756 buf += t; 3757 len -= t; 3758 } 3759 3760 /* Process data in 64-byte chunks */ 3761 3762 while (len >= 64) { 3763 memcpy(ctx->in, buf, 64); 3764 byteReverse(ctx->in, 16); 3765 MD5Transform(ctx->buf, (uint32 *)ctx->in); 3766 buf += 64; 3767 len -= 64; 3768 } 3769 3770 /* Handle any remaining bytes of data. */ 3771 3772 memcpy(ctx->in, buf, len); 3773 } 3774 3775 /* 3776 * Final wrapup - pad to 64-byte boundary with the bit pattern 3777 * 1 0* (64-bit count of bits processed, MSB-first) 3778 */ 3779 static void MD5Final(unsigned char digest[16], MD5Context *ctx){ 3780 unsigned count; 3781 unsigned char *p; 3782 3783 /* Compute number of bytes mod 64 */ 3784 count = (ctx->bits[0] >> 3) & 0x3F; 3785 3786 /* Set the first char of padding to 0x80. This is safe since there is 3787 always at least one byte free */ 3788 p = ctx->in + count; 3789 *p++ = 0x80; 3790 3791 /* Bytes of padding needed to make 64 bytes */ 3792 count = 64 - 1 - count; 3793 3794 /* Pad out to 56 mod 64 */ 3795 if (count < 8) { 3796 /* Two lots of padding: Pad the first block to 64 bytes */ 3797 memset(p, 0, count); 3798 byteReverse(ctx->in, 16); 3799 MD5Transform(ctx->buf, (uint32 *)ctx->in); 3800 3801 /* Now fill the next block with 56 bytes */ 3802 memset(ctx->in, 0, 56); 3803 } else { 3804 /* Pad block to 56 bytes */ 3805 memset(p, 0, count-8); 3806 } 3807 byteReverse(ctx->in, 14); 3808 3809 /* Append length in bits and transform */ 3810 memcpy(ctx->in + 14*4, ctx->bits, 8); 3811 3812 MD5Transform(ctx->buf, (uint32 *)ctx->in); 3813 byteReverse((unsigned char *)ctx->buf, 4); 3814 memcpy(digest, ctx->buf, 16); 3815 } 3816 3817 /* 3818 ** Convert a 128-bit MD5 digest into a 32-digit base-16 number. 3819 */ 3820 static void MD5DigestToBase16(unsigned char *digest, char *zBuf){ 3821 static char const zEncode[] = "0123456789abcdef"; 3822 int i, j; 3823 3824 for(j=i=0; i<16; i++){ 3825 int a = digest[i]; 3826 zBuf[j++] = zEncode[(a>>4)&0xf]; 3827 zBuf[j++] = zEncode[a & 0xf]; 3828 } 3829 zBuf[j] = 0; 3830 } 3831 3832 3833 /* 3834 ** Convert a 128-bit MD5 digest into sequency of eight 5-digit integers 3835 ** each representing 16 bits of the digest and separated from each 3836 ** other by a "-" character. 3837 */ 3838 static void MD5DigestToBase10x8(unsigned char digest[16], char zDigest[50]){ 3839 int i, j; 3840 unsigned int x; 3841 for(i=j=0; i<16; i+=2){ 3842 x = digest[i]*256 + digest[i+1]; 3843 if( i>0 ) zDigest[j++] = '-'; 3844 sqlite3_snprintf(50-j, &zDigest[j], "%05u", x); 3845 j += 5; 3846 } 3847 zDigest[j] = 0; 3848 } 3849 3850 /* 3851 ** A TCL command for md5. The argument is the text to be hashed. The 3852 ** Result is the hash in base64. 3853 */ 3854 static int SQLITE_TCLAPI md5_cmd( 3855 void*cd, 3856 Tcl_Interp *interp, 3857 int argc, 3858 const char **argv 3859 ){ 3860 MD5Context ctx; 3861 unsigned char digest[16]; 3862 char zBuf[50]; 3863 void (*converter)(unsigned char*, char*); 3864 3865 if( argc!=2 ){ 3866 Tcl_AppendResult(interp,"wrong # args: should be \"", argv[0], 3867 " TEXT\"", (char*)0); 3868 return TCL_ERROR; 3869 } 3870 MD5Init(&ctx); 3871 MD5Update(&ctx, (unsigned char*)argv[1], (unsigned)strlen(argv[1])); 3872 MD5Final(digest, &ctx); 3873 converter = (void(*)(unsigned char*,char*))cd; 3874 converter(digest, zBuf); 3875 Tcl_AppendResult(interp, zBuf, (char*)0); 3876 return TCL_OK; 3877 } 3878 3879 /* 3880 ** A TCL command to take the md5 hash of a file. The argument is the 3881 ** name of the file. 3882 */ 3883 static int SQLITE_TCLAPI md5file_cmd( 3884 void*cd, 3885 Tcl_Interp *interp, 3886 int argc, 3887 const char **argv 3888 ){ 3889 FILE *in; 3890 MD5Context ctx; 3891 void (*converter)(unsigned char*, char*); 3892 unsigned char digest[16]; 3893 char zBuf[10240]; 3894 3895 if( argc!=2 ){ 3896 Tcl_AppendResult(interp,"wrong # args: should be \"", argv[0], 3897 " FILENAME\"", (char*)0); 3898 return TCL_ERROR; 3899 } 3900 in = fopen(argv[1],"rb"); 3901 if( in==0 ){ 3902 Tcl_AppendResult(interp,"unable to open file \"", argv[1], 3903 "\" for reading", (char*)0); 3904 return TCL_ERROR; 3905 } 3906 MD5Init(&ctx); 3907 for(;;){ 3908 int n; 3909 n = (int)fread(zBuf, 1, sizeof(zBuf), in); 3910 if( n<=0 ) break; 3911 MD5Update(&ctx, (unsigned char*)zBuf, (unsigned)n); 3912 } 3913 fclose(in); 3914 MD5Final(digest, &ctx); 3915 converter = (void(*)(unsigned char*,char*))cd; 3916 converter(digest, zBuf); 3917 Tcl_AppendResult(interp, zBuf, (char*)0); 3918 return TCL_OK; 3919 } 3920 3921 /* 3922 ** Register the four new TCL commands for generating MD5 checksums 3923 ** with the TCL interpreter. 3924 */ 3925 int Md5_Init(Tcl_Interp *interp){ 3926 Tcl_CreateCommand(interp, "md5", (Tcl_CmdProc*)md5_cmd, 3927 MD5DigestToBase16, 0); 3928 Tcl_CreateCommand(interp, "md5-10x8", (Tcl_CmdProc*)md5_cmd, 3929 MD5DigestToBase10x8, 0); 3930 Tcl_CreateCommand(interp, "md5file", (Tcl_CmdProc*)md5file_cmd, 3931 MD5DigestToBase16, 0); 3932 Tcl_CreateCommand(interp, "md5file-10x8", (Tcl_CmdProc*)md5file_cmd, 3933 MD5DigestToBase10x8, 0); 3934 return TCL_OK; 3935 } 3936 #endif /* defined(SQLITE_TEST) || defined(SQLITE_TCLMD5) */ 3937 3938 #if defined(SQLITE_TEST) 3939 /* 3940 ** During testing, the special md5sum() aggregate function is available. 3941 ** inside SQLite. The following routines implement that function. 3942 */ 3943 static void md5step(sqlite3_context *context, int argc, sqlite3_value **argv){ 3944 MD5Context *p; 3945 int i; 3946 if( argc<1 ) return; 3947 p = sqlite3_aggregate_context(context, sizeof(*p)); 3948 if( p==0 ) return; 3949 if( !p->isInit ){ 3950 MD5Init(p); 3951 } 3952 for(i=0; i<argc; i++){ 3953 const char *zData = (char*)sqlite3_value_text(argv[i]); 3954 if( zData ){ 3955 MD5Update(p, (unsigned char*)zData, (int)strlen(zData)); 3956 } 3957 } 3958 } 3959 static void md5finalize(sqlite3_context *context){ 3960 MD5Context *p; 3961 unsigned char digest[16]; 3962 char zBuf[33]; 3963 p = sqlite3_aggregate_context(context, sizeof(*p)); 3964 MD5Final(digest,p); 3965 MD5DigestToBase16(digest, zBuf); 3966 sqlite3_result_text(context, zBuf, -1, SQLITE_TRANSIENT); 3967 } 3968 int Md5_Register( 3969 sqlite3 *db, 3970 char **pzErrMsg, 3971 const sqlite3_api_routines *pThunk 3972 ){ 3973 int rc = sqlite3_create_function(db, "md5sum", -1, SQLITE_UTF8, 0, 0, 3974 md5step, md5finalize); 3975 sqlite3_overload_function(db, "md5sum", -1); /* To exercise this API */ 3976 return rc; 3977 } 3978 #endif /* defined(SQLITE_TEST) */ 3979 3980 3981 /* 3982 ** If the macro TCLSH is one, then put in code this for the 3983 ** "main" routine that will initialize Tcl and take input from 3984 ** standard input, or if a file is named on the command line 3985 ** the TCL interpreter reads and evaluates that file. 3986 */ 3987 #if TCLSH==1 3988 static const char *tclsh_main_loop(void){ 3989 static const char zMainloop[] = 3990 "set line {}\n" 3991 "while {![eof stdin]} {\n" 3992 "if {$line!=\"\"} {\n" 3993 "puts -nonewline \"> \"\n" 3994 "} else {\n" 3995 "puts -nonewline \"% \"\n" 3996 "}\n" 3997 "flush stdout\n" 3998 "append line [gets stdin]\n" 3999 "if {[info complete $line]} {\n" 4000 "if {[catch {uplevel #0 $line} result]} {\n" 4001 "puts stderr \"Error: $result\"\n" 4002 "} elseif {$result!=\"\"} {\n" 4003 "puts $result\n" 4004 "}\n" 4005 "set line {}\n" 4006 "} else {\n" 4007 "append line \\n\n" 4008 "}\n" 4009 "}\n" 4010 ; 4011 return zMainloop; 4012 } 4013 #endif 4014 #if TCLSH==2 4015 static const char *tclsh_main_loop(void); 4016 #endif 4017 4018 #ifdef SQLITE_TEST 4019 static void init_all(Tcl_Interp *); 4020 static int SQLITE_TCLAPI init_all_cmd( 4021 ClientData cd, 4022 Tcl_Interp *interp, 4023 int objc, 4024 Tcl_Obj *CONST objv[] 4025 ){ 4026 4027 Tcl_Interp *slave; 4028 if( objc!=2 ){ 4029 Tcl_WrongNumArgs(interp, 1, objv, "SLAVE"); 4030 return TCL_ERROR; 4031 } 4032 4033 slave = Tcl_GetSlave(interp, Tcl_GetString(objv[1])); 4034 if( !slave ){ 4035 return TCL_ERROR; 4036 } 4037 4038 init_all(slave); 4039 return TCL_OK; 4040 } 4041 4042 /* 4043 ** Tclcmd: db_use_legacy_prepare DB BOOLEAN 4044 ** 4045 ** The first argument to this command must be a database command created by 4046 ** [sqlite3]. If the second argument is true, then the handle is configured 4047 ** to use the sqlite3_prepare_v2() function to prepare statements. If it 4048 ** is false, sqlite3_prepare(). 4049 */ 4050 static int SQLITE_TCLAPI db_use_legacy_prepare_cmd( 4051 ClientData cd, 4052 Tcl_Interp *interp, 4053 int objc, 4054 Tcl_Obj *CONST objv[] 4055 ){ 4056 Tcl_CmdInfo cmdInfo; 4057 SqliteDb *pDb; 4058 int bPrepare; 4059 4060 if( objc!=3 ){ 4061 Tcl_WrongNumArgs(interp, 1, objv, "DB BOOLEAN"); 4062 return TCL_ERROR; 4063 } 4064 4065 if( !Tcl_GetCommandInfo(interp, Tcl_GetString(objv[1]), &cmdInfo) ){ 4066 Tcl_AppendResult(interp, "no such db: ", Tcl_GetString(objv[1]), (char*)0); 4067 return TCL_ERROR; 4068 } 4069 pDb = (SqliteDb*)cmdInfo.objClientData; 4070 if( Tcl_GetBooleanFromObj(interp, objv[2], &bPrepare) ){ 4071 return TCL_ERROR; 4072 } 4073 4074 pDb->bLegacyPrepare = bPrepare; 4075 4076 Tcl_ResetResult(interp); 4077 return TCL_OK; 4078 } 4079 4080 /* 4081 ** Tclcmd: db_last_stmt_ptr DB 4082 ** 4083 ** If the statement cache associated with database DB is not empty, 4084 ** return the text representation of the most recently used statement 4085 ** handle. 4086 */ 4087 static int SQLITE_TCLAPI db_last_stmt_ptr( 4088 ClientData cd, 4089 Tcl_Interp *interp, 4090 int objc, 4091 Tcl_Obj *CONST objv[] 4092 ){ 4093 extern int sqlite3TestMakePointerStr(Tcl_Interp*, char*, void*); 4094 Tcl_CmdInfo cmdInfo; 4095 SqliteDb *pDb; 4096 sqlite3_stmt *pStmt = 0; 4097 char zBuf[100]; 4098 4099 if( objc!=2 ){ 4100 Tcl_WrongNumArgs(interp, 1, objv, "DB"); 4101 return TCL_ERROR; 4102 } 4103 4104 if( !Tcl_GetCommandInfo(interp, Tcl_GetString(objv[1]), &cmdInfo) ){ 4105 Tcl_AppendResult(interp, "no such db: ", Tcl_GetString(objv[1]), (char*)0); 4106 return TCL_ERROR; 4107 } 4108 pDb = (SqliteDb*)cmdInfo.objClientData; 4109 4110 if( pDb->stmtList ) pStmt = pDb->stmtList->pStmt; 4111 if( sqlite3TestMakePointerStr(interp, zBuf, pStmt) ){ 4112 return TCL_ERROR; 4113 } 4114 Tcl_SetResult(interp, zBuf, TCL_VOLATILE); 4115 4116 return TCL_OK; 4117 } 4118 #endif /* SQLITE_TEST */ 4119 4120 /* 4121 ** Configure the interpreter passed as the first argument to have access 4122 ** to the commands and linked variables that make up: 4123 ** 4124 ** * the [sqlite3] extension itself, 4125 ** 4126 ** * If SQLITE_TCLMD5 or SQLITE_TEST is defined, the Md5 commands, and 4127 ** 4128 ** * If SQLITE_TEST is set, the various test interfaces used by the Tcl 4129 ** test suite. 4130 */ 4131 static void init_all(Tcl_Interp *interp){ 4132 Sqlite3_Init(interp); 4133 4134 #if defined(SQLITE_TEST) || defined(SQLITE_TCLMD5) 4135 Md5_Init(interp); 4136 #endif 4137 4138 #ifdef SQLITE_TEST 4139 { 4140 extern int Sqliteconfig_Init(Tcl_Interp*); 4141 extern int Sqlitetest1_Init(Tcl_Interp*); 4142 extern int Sqlitetest2_Init(Tcl_Interp*); 4143 extern int Sqlitetest3_Init(Tcl_Interp*); 4144 extern int Sqlitetest4_Init(Tcl_Interp*); 4145 extern int Sqlitetest5_Init(Tcl_Interp*); 4146 extern int Sqlitetest6_Init(Tcl_Interp*); 4147 extern int Sqlitetest7_Init(Tcl_Interp*); 4148 extern int Sqlitetest8_Init(Tcl_Interp*); 4149 extern int Sqlitetest9_Init(Tcl_Interp*); 4150 extern int Sqlitetestasync_Init(Tcl_Interp*); 4151 extern int Sqlitetest_autoext_Init(Tcl_Interp*); 4152 extern int Sqlitetest_blob_Init(Tcl_Interp*); 4153 extern int Sqlitetest_demovfs_Init(Tcl_Interp *); 4154 extern int Sqlitetest_func_Init(Tcl_Interp*); 4155 extern int Sqlitetest_hexio_Init(Tcl_Interp*); 4156 extern int Sqlitetest_init_Init(Tcl_Interp*); 4157 extern int Sqlitetest_malloc_Init(Tcl_Interp*); 4158 extern int Sqlitetest_mutex_Init(Tcl_Interp*); 4159 extern int Sqlitetestschema_Init(Tcl_Interp*); 4160 extern int Sqlitetestsse_Init(Tcl_Interp*); 4161 extern int Sqlitetesttclvar_Init(Tcl_Interp*); 4162 extern int Sqlitetestfs_Init(Tcl_Interp*); 4163 extern int SqlitetestThread_Init(Tcl_Interp*); 4164 extern int SqlitetestOnefile_Init(); 4165 extern int SqlitetestOsinst_Init(Tcl_Interp*); 4166 extern int Sqlitetestbackup_Init(Tcl_Interp*); 4167 extern int Sqlitetestintarray_Init(Tcl_Interp*); 4168 extern int Sqlitetestvfs_Init(Tcl_Interp *); 4169 extern int Sqlitetestrtree_Init(Tcl_Interp*); 4170 extern int Sqlitequota_Init(Tcl_Interp*); 4171 extern int Sqlitemultiplex_Init(Tcl_Interp*); 4172 extern int SqliteSuperlock_Init(Tcl_Interp*); 4173 extern int SqlitetestSyscall_Init(Tcl_Interp*); 4174 #if defined(SQLITE_ENABLE_SESSION) && defined(SQLITE_ENABLE_PREUPDATE_HOOK) 4175 extern int TestSession_Init(Tcl_Interp*); 4176 #endif 4177 extern int Fts5tcl_Init(Tcl_Interp *); 4178 extern int SqliteRbu_Init(Tcl_Interp*); 4179 extern int Sqlitetesttcl_Init(Tcl_Interp*); 4180 #if defined(SQLITE_ENABLE_FTS3) || defined(SQLITE_ENABLE_FTS4) 4181 extern int Sqlitetestfts3_Init(Tcl_Interp *interp); 4182 #endif 4183 4184 #ifdef SQLITE_ENABLE_ZIPVFS 4185 extern int Zipvfs_Init(Tcl_Interp*); 4186 Zipvfs_Init(interp); 4187 #endif 4188 4189 Sqliteconfig_Init(interp); 4190 Sqlitetest1_Init(interp); 4191 Sqlitetest2_Init(interp); 4192 Sqlitetest3_Init(interp); 4193 Sqlitetest4_Init(interp); 4194 Sqlitetest5_Init(interp); 4195 Sqlitetest6_Init(interp); 4196 Sqlitetest7_Init(interp); 4197 Sqlitetest8_Init(interp); 4198 Sqlitetest9_Init(interp); 4199 Sqlitetestasync_Init(interp); 4200 Sqlitetest_autoext_Init(interp); 4201 Sqlitetest_blob_Init(interp); 4202 Sqlitetest_demovfs_Init(interp); 4203 Sqlitetest_func_Init(interp); 4204 Sqlitetest_hexio_Init(interp); 4205 Sqlitetest_init_Init(interp); 4206 Sqlitetest_malloc_Init(interp); 4207 Sqlitetest_mutex_Init(interp); 4208 Sqlitetestschema_Init(interp); 4209 Sqlitetesttclvar_Init(interp); 4210 Sqlitetestfs_Init(interp); 4211 SqlitetestThread_Init(interp); 4212 SqlitetestOnefile_Init(); 4213 SqlitetestOsinst_Init(interp); 4214 Sqlitetestbackup_Init(interp); 4215 Sqlitetestintarray_Init(interp); 4216 Sqlitetestvfs_Init(interp); 4217 Sqlitetestrtree_Init(interp); 4218 Sqlitequota_Init(interp); 4219 Sqlitemultiplex_Init(interp); 4220 SqliteSuperlock_Init(interp); 4221 SqlitetestSyscall_Init(interp); 4222 #if defined(SQLITE_ENABLE_SESSION) && defined(SQLITE_ENABLE_PREUPDATE_HOOK) 4223 TestSession_Init(interp); 4224 #endif 4225 Fts5tcl_Init(interp); 4226 SqliteRbu_Init(interp); 4227 Sqlitetesttcl_Init(interp); 4228 4229 #if defined(SQLITE_ENABLE_FTS3) || defined(SQLITE_ENABLE_FTS4) 4230 Sqlitetestfts3_Init(interp); 4231 #endif 4232 4233 Tcl_CreateObjCommand( 4234 interp, "load_testfixture_extensions", init_all_cmd, 0, 0 4235 ); 4236 Tcl_CreateObjCommand( 4237 interp, "db_use_legacy_prepare", db_use_legacy_prepare_cmd, 0, 0 4238 ); 4239 Tcl_CreateObjCommand( 4240 interp, "db_last_stmt_ptr", db_last_stmt_ptr, 0, 0 4241 ); 4242 4243 #ifdef SQLITE_SSE 4244 Sqlitetestsse_Init(interp); 4245 #endif 4246 } 4247 #endif 4248 } 4249 4250 /* Needed for the setrlimit() system call on unix */ 4251 #if defined(unix) 4252 #include <sys/resource.h> 4253 #endif 4254 4255 #define TCLSH_MAIN main /* Needed to fake out mktclapp */ 4256 int SQLITE_CDECL TCLSH_MAIN(int argc, char **argv){ 4257 Tcl_Interp *interp; 4258 4259 #if !defined(_WIN32_WCE) 4260 if( getenv("BREAK") ){ 4261 fprintf(stderr, 4262 "attach debugger to process %d and press any key to continue.\n", 4263 GETPID()); 4264 fgetc(stdin); 4265 } 4266 #endif 4267 4268 /* Since the primary use case for this binary is testing of SQLite, 4269 ** be sure to generate core files if we crash */ 4270 #if defined(SQLITE_TEST) && defined(unix) 4271 { struct rlimit x; 4272 getrlimit(RLIMIT_CORE, &x); 4273 x.rlim_cur = x.rlim_max; 4274 setrlimit(RLIMIT_CORE, &x); 4275 } 4276 #endif /* SQLITE_TEST && unix */ 4277 4278 4279 /* Call sqlite3_shutdown() once before doing anything else. This is to 4280 ** test that sqlite3_shutdown() can be safely called by a process before 4281 ** sqlite3_initialize() is. */ 4282 sqlite3_shutdown(); 4283 4284 Tcl_FindExecutable(argv[0]); 4285 Tcl_SetSystemEncoding(NULL, "utf-8"); 4286 interp = Tcl_CreateInterp(); 4287 4288 #if TCLSH==2 4289 sqlite3_config(SQLITE_CONFIG_SINGLETHREAD); 4290 #endif 4291 4292 init_all(interp); 4293 if( argc>=2 ){ 4294 int i; 4295 char zArgc[32]; 4296 sqlite3_snprintf(sizeof(zArgc), zArgc, "%d", argc-(3-TCLSH)); 4297 Tcl_SetVar(interp,"argc", zArgc, TCL_GLOBAL_ONLY); 4298 Tcl_SetVar(interp,"argv0",argv[1],TCL_GLOBAL_ONLY); 4299 Tcl_SetVar(interp,"argv", "", TCL_GLOBAL_ONLY); 4300 for(i=3-TCLSH; i<argc; i++){ 4301 Tcl_SetVar(interp, "argv", argv[i], 4302 TCL_GLOBAL_ONLY | TCL_LIST_ELEMENT | TCL_APPEND_VALUE); 4303 } 4304 if( TCLSH==1 && Tcl_EvalFile(interp, argv[1])!=TCL_OK ){ 4305 const char *zInfo = Tcl_GetVar(interp, "errorInfo", TCL_GLOBAL_ONLY); 4306 if( zInfo==0 ) zInfo = Tcl_GetStringResult(interp); 4307 fprintf(stderr,"%s: %s\n", *argv, zInfo); 4308 return 1; 4309 } 4310 } 4311 if( TCLSH==2 || argc<=1 ){ 4312 Tcl_GlobalEval(interp, tclsh_main_loop()); 4313 } 4314 return 0; 4315 } 4316 #endif /* TCLSH */ 4317