321 lines
		
	
	
		
			9.5 KiB
		
	
	
	
		
			C
		
	
	
		
			Executable File
		
	
	
	
	
			
		
		
	
	
			321 lines
		
	
	
		
			9.5 KiB
		
	
	
	
		
			C
		
	
	
		
			Executable File
		
	
	
	
	
| /*
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| ** 2003 April 6
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| **
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| ** The author disclaims copyright to this source code.  In place of
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| ** a legal notice, here is a blessing:
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| **
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| **    May you do good and not evil.
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| **    May you find forgiveness for yourself and forgive others.
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| **    May you share freely, never taking more than you give.
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| **
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| *************************************************************************
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| ** This file contains code used to implement the VACUUM command.
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| **
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| ** Most of the code in this file may be omitted by defining the
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| ** SQLITE_OMIT_VACUUM macro.
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| **
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| ** $Id: vacuum.c,v 1.1.1.1 2004-03-11 22:22:23 alex Exp $
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| */
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| #include "sqliteInt.h"
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| #include "os.h"
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| 
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| /*
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| ** A structure for holding a dynamic string - a string that can grow
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| ** without bound. 
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| */
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| typedef struct dynStr dynStr;
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| struct dynStr {
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|   char *z;        /* Text of the string in space obtained from sqliteMalloc() */
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|   int nAlloc;     /* Amount of space allocated to z[] */
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|   int nUsed;      /* Next unused slot in z[] */
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| };
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| 
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| /*
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| ** A structure that holds the vacuum context
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| */
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| typedef struct vacuumStruct vacuumStruct;
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| struct vacuumStruct {
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|   sqlite *dbOld;       /* Original database */
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|   sqlite *dbNew;       /* New database */
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|   char **pzErrMsg;     /* Write errors here */
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|   int rc;              /* Set to non-zero on an error */
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|   const char *zTable;  /* Name of a table being copied */
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|   const char *zPragma; /* Pragma to execute with results */
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|   dynStr s1, s2;       /* Two dynamic strings */
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| };
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| 
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| #if !defined(SQLITE_OMIT_VACUUM) || SQLITE_OMIT_VACUUM
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| /*
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| ** Append text to a dynamic string
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| */
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| static void appendText(dynStr *p, const char *zText, int nText){
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|   if( nText<0 ) nText = strlen(zText);
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|   if( p->z==0 || p->nUsed + nText + 1 >= p->nAlloc ){
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|     char *zNew;
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|     p->nAlloc = p->nUsed + nText + 1000;
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|     zNew = sqliteRealloc(p->z, p->nAlloc);
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|     if( zNew==0 ){
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|       sqliteFree(p->z);
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|       memset(p, 0, sizeof(*p));
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|       return;
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|     }
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|     p->z = zNew;
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|   }
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|   memcpy(&p->z[p->nUsed], zText, nText+1);
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|   p->nUsed += nText;
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| }
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| 
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| /*
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| ** Append text to a dynamic string, having first put the text in quotes.
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| */
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| static void appendQuoted(dynStr *p, const char *zText){
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|   int i, j;
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|   appendText(p, "'", 1);
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|   for(i=j=0; zText[i]; i++){
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|     if( zText[i]=='\'' ){
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|       appendText(p, &zText[j], i-j+1);
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|       j = i + 1;
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|       appendText(p, "'", 1);
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|     }
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|   }
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|   if( j<i ){
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|     appendText(p, &zText[j], i-j);
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|   }
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|   appendText(p, "'", 1);
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| }
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| 
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| /*
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| ** Execute statements of SQL.  If an error occurs, write the error
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| ** message into *pzErrMsg and return non-zero.
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| */
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| static int execsql(char **pzErrMsg, sqlite *db, const char *zSql){ 
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|   char *zErrMsg = 0;
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|   int rc;
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| 
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|   /* printf("***** executing *****\n%s\n", zSql); */
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|   rc = sqlite_exec(db, zSql, 0, 0, &zErrMsg);
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|   if( zErrMsg ){
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|     sqliteSetString(pzErrMsg, zErrMsg, (char*)0);
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|     sqlite_freemem(zErrMsg);
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|   }
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|   return rc;
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| }
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| 
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| /*
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| ** This is the second stage callback.  Each invocation contains all the
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| ** data for a single row of a single table in the original database.  This
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| ** routine must write that information into the new database.
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| */
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| static int vacuumCallback2(void *pArg, int argc, char **argv, char **NotUsed){
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|   vacuumStruct *p = (vacuumStruct*)pArg;
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|   const char *zSep = "(";
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|   int i;
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| 
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|   if( argv==0 ) return 0;
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|   p->s2.nUsed = 0;
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|   appendText(&p->s2, "INSERT INTO ", -1);
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|   appendQuoted(&p->s2, p->zTable);
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|   appendText(&p->s2, " VALUES", -1);
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|   for(i=0; i<argc; i++){
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|     appendText(&p->s2, zSep, 1);
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|     zSep = ",";
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|     if( argv[i]==0 ){
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|       appendText(&p->s2, "NULL", 4);
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|     }else{
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|       appendQuoted(&p->s2, argv[i]);
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|     }
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|   }
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|   appendText(&p->s2,")", 1);
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|   p->rc = execsql(p->pzErrMsg, p->dbNew, p->s2.z);
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|   return p->rc;
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| }
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| 
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| /*
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| ** This is the first stage callback.  Each invocation contains three
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| ** arguments where are taken from the SQLITE_MASTER table of the original
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| ** database:  (1) the entry type, (2) the entry name, and (3) the SQL for
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| ** the entry.  In all cases, execute the SQL of the third argument.
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| ** For tables, run a query to select all entries in that table and 
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| ** transfer them to the second-stage callback.
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| */
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| static int vacuumCallback1(void *pArg, int argc, char **argv, char **NotUsed){
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|   vacuumStruct *p = (vacuumStruct*)pArg;
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|   int rc = 0;
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|   assert( argc==3 );
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|   if( argv==0 ) return 0;
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|   assert( argv[0]!=0 );
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|   assert( argv[1]!=0 );
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|   assert( argv[2]!=0 );
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|   rc = execsql(p->pzErrMsg, p->dbNew, argv[2]);
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|   if( rc==SQLITE_OK && strcmp(argv[0],"table")==0 ){
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|     char *zErrMsg = 0;
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|     p->s1.nUsed = 0;
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|     appendText(&p->s1, "SELECT * FROM ", -1);
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|     appendQuoted(&p->s1, argv[1]);
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|     p->zTable = argv[1];
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|     rc = sqlite_exec(p->dbOld, p->s1.z, vacuumCallback2, p, &zErrMsg);
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|     if( zErrMsg ){
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|       sqliteSetString(p->pzErrMsg, zErrMsg, (char*)0);
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|       sqlite_freemem(zErrMsg);
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|     }
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|   }
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|   if( rc!=SQLITE_ABORT ) p->rc = rc;
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|   return rc;
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| }
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| 
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| /*
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| ** This callback is used to transfer PRAGMA settings from one database
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| ** to the other.  The value in argv[0] should be passed to a pragma
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| ** identified by ((vacuumStruct*)pArg)->zPragma.
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| */
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| static int vacuumCallback3(void *pArg, int argc, char **argv, char **NotUsed){
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|   vacuumStruct *p = (vacuumStruct*)pArg;
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|   char zBuf[200];
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|   assert( argc==1 );
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|   if( argv==0 ) return 0;
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|   assert( argv[0]!=0 );
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|   assert( strlen(p->zPragma)<100 );
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|   assert( strlen(argv[0])<30 );
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|   sprintf(zBuf,"PRAGMA %s=%s;", p->zPragma, argv[0]);
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|   p->rc = execsql(p->pzErrMsg, p->dbNew, zBuf);
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|   return p->rc;
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| }
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| 
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| /*
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| ** Generate a random name of 20 character in length.
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| */
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| static void randomName(unsigned char *zBuf){
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|   static const unsigned char zChars[] =
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|     "abcdefghijklmnopqrstuvwxyz"
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|     "0123456789";
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|   int i;
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|   sqliteRandomness(20, zBuf);
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|   for(i=0; i<20; i++){
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|     zBuf[i] = zChars[ zBuf[i]%(sizeof(zChars)-1) ];
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|   }
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| }
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| #endif
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| 
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| /*
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| ** The non-standard VACUUM command is used to clean up the database,
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| ** collapse free space, etc.  It is modelled after the VACUUM command
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| ** in PostgreSQL.
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| **
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| ** In version 1.0.x of SQLite, the VACUUM command would call
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| ** gdbm_reorganize() on all the database tables.  But beginning
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| ** with 2.0.0, SQLite no longer uses GDBM so this command has
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| ** become a no-op.
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| */
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| void sqliteVacuum(Parse *pParse, Token *pTableName){
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|   Vdbe *v = sqliteGetVdbe(pParse);
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|   sqliteVdbeAddOp(v, OP_Vacuum, 0, 0);
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|   return;
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| }
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| 
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| /*
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| ** This routine implements the OP_Vacuum opcode of the VDBE.
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| */
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| int sqliteRunVacuum(char **pzErrMsg, sqlite *db){
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| #if !defined(SQLITE_OMIT_VACUUM) || SQLITE_OMIT_VACUUM
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|   const char *zFilename;  /* full pathname of the database file */
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|   int nFilename;          /* number of characters  in zFilename[] */
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|   char *zTemp = 0;        /* a temporary file in same directory as zFilename */
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|   sqlite *dbNew = 0;      /* The new vacuumed database */
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|   int rc = SQLITE_OK;     /* Return code from service routines */
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|   int i;                  /* Loop counter */
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|   char *zErrMsg;          /* Error message */
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|   vacuumStruct sVac;      /* Information passed to callbacks */
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| 
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|   /* These are all of the pragmas that need to be transferred over
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|   ** to the new database */
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|   static const char *zPragma[] = {
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|      "default_synchronous",
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|      "default_cache_size",
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|      /* "default_temp_store", */
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|   };
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| 
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|   if( db->flags & SQLITE_InTrans ){
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|     sqliteSetString(pzErrMsg, "cannot VACUUM from within a transaction", 
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|        (char*)0);
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|     return SQLITE_ERROR;
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|   }
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|   memset(&sVac, 0, sizeof(sVac));
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| 
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|   /* Get the full pathname of the database file and create two
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|   ** temporary filenames in the same directory as the original file.
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|   */
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|   zFilename = sqliteBtreeGetFilename(db->aDb[0].pBt);
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|   if( zFilename==0 ){
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|     /* This only happens with the in-memory database.  VACUUM is a no-op
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|     ** there, so just return */
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|     return SQLITE_OK;
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|   }
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|   nFilename = strlen(zFilename);
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|   zTemp = sqliteMalloc( nFilename+100 );
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|   if( zTemp==0 ) return SQLITE_NOMEM;
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|   strcpy(zTemp, zFilename);
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|   for(i=0; i<10; i++){
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|     zTemp[nFilename] = '-';
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|     randomName(&zTemp[nFilename+1]);
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|     if( !sqliteOsFileExists(zTemp) ) break;
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|   }
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|   if( i>=10 ){
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|     sqliteSetString(pzErrMsg, "unable to create a temporary database file "
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|        "in the same directory as the original database", (char*)0);
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|     goto end_of_vacuum;
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|   }
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| 
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|   
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|   dbNew = sqlite_open(zTemp, 0, &zErrMsg);
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|   if( dbNew==0 ){
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|     sqliteSetString(pzErrMsg, "unable to open a temporary database at ",
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|        zTemp, " - ", zErrMsg, (char*)0);
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|     goto end_of_vacuum;
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|   }
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|   if( (rc = execsql(pzErrMsg, db, "BEGIN"))!=0 ) goto end_of_vacuum;
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|   if( (rc = execsql(pzErrMsg, dbNew, "PRAGMA synchronous=off; BEGIN"))!=0 ){
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|     goto end_of_vacuum;
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|   }
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|   
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|   sVac.dbOld = db;
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|   sVac.dbNew = dbNew;
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|   sVac.pzErrMsg = pzErrMsg;
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|   for(i=0; rc==SQLITE_OK && i<sizeof(zPragma)/sizeof(zPragma[0]); i++){
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|     char zBuf[200];
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|     assert( strlen(zPragma[i])<100 );
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|     sprintf(zBuf, "PRAGMA %s;", zPragma[i]);
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|     sVac.zPragma = zPragma[i];
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|     rc = sqlite_exec(db, zBuf, vacuumCallback3, &sVac, &zErrMsg);
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|   }
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|   if( rc==SQLITE_OK ){
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|     rc = sqlite_exec(db, 
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|       "SELECT type, name, sql FROM sqlite_master "
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|       "WHERE sql NOT NULL AND type!='view' "
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|       "UNION ALL "
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|       "SELECT type, name, sql FROM sqlite_master "
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|       "WHERE sql NOT NULL AND type=='view'",
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|       vacuumCallback1, &sVac, &zErrMsg);
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|   }
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|   if( rc==SQLITE_OK ){
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|     rc = sqliteBtreeCopyFile(db->aDb[0].pBt, dbNew->aDb[0].pBt);
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|     sqlite_exec(db, "COMMIT", 0, 0, 0);
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|     sqliteResetInternalSchema(db, 0);
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|   }
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| 
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| end_of_vacuum:
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|   if( rc && zErrMsg!=0 ){
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|     sqliteSetString(pzErrMsg, "unable to vacuum database - ", 
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|        zErrMsg, (char*)0);
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|   }
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|   sqlite_exec(db, "ROLLBACK", 0, 0, 0);
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|   if( dbNew ) sqlite_close(dbNew);
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|   sqliteOsDelete(zTemp);
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|   sqliteFree(zTemp);
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|   sqliteFree(sVac.s1.z);
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|   sqliteFree(sVac.s2.z);
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|   if( zErrMsg ) sqlite_freemem(zErrMsg);
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|   if( rc==SQLITE_ABORT ) sVac.rc = SQLITE_ERROR;
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|   return sVac.rc;
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| #endif
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| }
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