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476 lines
12 KiB
C
476 lines
12 KiB
C
/*
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** 2007 August 15
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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 the C functions that implement a memory
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** allocation subsystem for use by SQLite.
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**
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** $Id: mem2.c,v 1.24 2008/03/28 07:42:54 danielk1977 Exp $
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*/
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#include "sqliteInt.h"
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/*
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** This version of the memory allocator is used only if the
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** SQLITE_MEMDEBUG macro is defined
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*/
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#ifdef SQLITE_MEMDEBUG
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/*
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** The backtrace functionality is only available with GLIBC
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*/
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#ifdef __GLIBC__
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extern int backtrace(void**,int);
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extern void backtrace_symbols_fd(void*const*,int,int);
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#else
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# define backtrace(A,B) 0
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# define backtrace_symbols_fd(A,B,C)
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#endif
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#include <stdio.h>
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/*
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** Each memory allocation looks like this:
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**
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** ------------------------------------------------------------------------
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** | Title | backtrace pointers | MemBlockHdr | allocation | EndGuard |
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** ------------------------------------------------------------------------
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**
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** The application code sees only a pointer to the allocation. We have
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** to back up from the allocation pointer to find the MemBlockHdr. The
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** MemBlockHdr tells us the size of the allocation and the number of
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** backtrace pointers. There is also a guard word at the end of the
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** MemBlockHdr.
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*/
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struct MemBlockHdr {
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struct MemBlockHdr *pNext, *pPrev; /* Linked list of all unfreed memory */
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int iSize; /* Size of this allocation */
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char nBacktrace; /* Number of backtraces on this alloc */
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char nBacktraceSlots; /* Available backtrace slots */
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short nTitle; /* Bytes of title; includes '\0' */
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int iForeGuard; /* Guard word for sanity */
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};
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/*
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** Guard words
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*/
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#define FOREGUARD 0x80F5E153
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#define REARGUARD 0xE4676B53
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/*
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** Number of malloc size increments to track.
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*/
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#define NCSIZE 1000
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/*
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** All of the static variables used by this module are collected
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** into a single structure named "mem". This is to keep the
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** static variables organized and to reduce namespace pollution
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** when this module is combined with other in the amalgamation.
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*/
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static struct {
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/*
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** The alarm callback and its arguments. The mem.mutex lock will
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** be held while the callback is running. Recursive calls into
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** the memory subsystem are allowed, but no new callbacks will be
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** issued. The alarmBusy variable is set to prevent recursive
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** callbacks.
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*/
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sqlite3_int64 alarmThreshold;
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void (*alarmCallback)(void*, sqlite3_int64, int);
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void *alarmArg;
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int alarmBusy;
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/*
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** Mutex to control access to the memory allocation subsystem.
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*/
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sqlite3_mutex *mutex;
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/*
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** Current allocation and high-water mark.
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*/
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sqlite3_int64 nowUsed;
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sqlite3_int64 mxUsed;
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/*
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** Head and tail of a linked list of all outstanding allocations
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*/
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struct MemBlockHdr *pFirst;
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struct MemBlockHdr *pLast;
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/*
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** The number of levels of backtrace to save in new allocations.
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*/
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int nBacktrace;
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void (*xBacktrace)(int, int, void **);
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/*
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** Title text to insert in front of each block
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*/
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int nTitle; /* Bytes of zTitle to save. Includes '\0' and padding */
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char zTitle[100]; /* The title text */
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/*
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** sqlite3MallocDisallow() increments the following counter.
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** sqlite3MallocAllow() decrements it.
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*/
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int disallow; /* Do not allow memory allocation */
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/*
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** Gather statistics on the sizes of memory allocations.
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** sizeCnt[i] is the number of allocation attempts of i*8
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** bytes. i==NCSIZE is the number of allocation attempts for
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** sizes more than NCSIZE*8 bytes.
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*/
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int sizeCnt[NCSIZE];
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} mem;
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/*
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** Enter the mutex mem.mutex. Allocate it if it is not already allocated.
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*/
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static void enterMem(void){
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if( mem.mutex==0 ){
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mem.mutex = sqlite3_mutex_alloc(SQLITE_MUTEX_STATIC_MEM);
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}
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sqlite3_mutex_enter(mem.mutex);
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}
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/*
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** Return the amount of memory currently checked out.
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*/
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sqlite3_int64 sqlite3_memory_used(void){
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sqlite3_int64 n;
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enterMem();
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n = mem.nowUsed;
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sqlite3_mutex_leave(mem.mutex);
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return n;
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}
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/*
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** Return the maximum amount of memory that has ever been
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** checked out since either the beginning of this process
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** or since the most recent reset.
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*/
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sqlite3_int64 sqlite3_memory_highwater(int resetFlag){
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sqlite3_int64 n;
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enterMem();
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n = mem.mxUsed;
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if( resetFlag ){
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mem.mxUsed = mem.nowUsed;
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}
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sqlite3_mutex_leave(mem.mutex);
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return n;
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}
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/*
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** Change the alarm callback
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*/
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int sqlite3_memory_alarm(
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void(*xCallback)(void *pArg, sqlite3_int64 used, int N),
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void *pArg,
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sqlite3_int64 iThreshold
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){
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enterMem();
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mem.alarmCallback = xCallback;
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mem.alarmArg = pArg;
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mem.alarmThreshold = iThreshold;
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sqlite3_mutex_leave(mem.mutex);
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return SQLITE_OK;
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}
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/*
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** Trigger the alarm
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*/
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static void sqlite3MemsysAlarm(int nByte){
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void (*xCallback)(void*,sqlite3_int64,int);
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sqlite3_int64 nowUsed;
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void *pArg;
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if( mem.alarmCallback==0 || mem.alarmBusy ) return;
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mem.alarmBusy = 1;
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xCallback = mem.alarmCallback;
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nowUsed = mem.nowUsed;
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pArg = mem.alarmArg;
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sqlite3_mutex_leave(mem.mutex);
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xCallback(pArg, nowUsed, nByte);
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sqlite3_mutex_enter(mem.mutex);
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mem.alarmBusy = 0;
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}
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/*
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** Given an allocation, find the MemBlockHdr for that allocation.
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**
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** This routine checks the guards at either end of the allocation and
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** if they are incorrect it asserts.
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*/
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static struct MemBlockHdr *sqlite3MemsysGetHeader(void *pAllocation){
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struct MemBlockHdr *p;
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int *pInt;
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p = (struct MemBlockHdr*)pAllocation;
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p--;
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assert( p->iForeGuard==FOREGUARD );
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assert( (p->iSize & 3)==0 );
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pInt = (int*)pAllocation;
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assert( pInt[p->iSize/sizeof(int)]==REARGUARD );
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return p;
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}
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/*
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** Return the number of bytes currently allocated at address p.
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*/
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int sqlite3MallocSize(void *p){
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struct MemBlockHdr *pHdr;
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if( !p ){
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return 0;
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}
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pHdr = sqlite3MemsysGetHeader(p);
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return pHdr->iSize;
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}
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/*
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** Allocate nByte bytes of memory.
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*/
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void *sqlite3_malloc(int nByte){
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struct MemBlockHdr *pHdr;
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void **pBt;
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char *z;
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int *pInt;
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void *p = 0;
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int totalSize;
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if( nByte>0 ){
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enterMem();
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assert( mem.disallow==0 );
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if( mem.alarmCallback!=0 && mem.nowUsed+nByte>=mem.alarmThreshold ){
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sqlite3MemsysAlarm(nByte);
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}
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nByte = (nByte+3)&~3;
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if( nByte/8>NCSIZE-1 ){
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mem.sizeCnt[NCSIZE-1]++;
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}else{
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mem.sizeCnt[nByte/8]++;
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}
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totalSize = nByte + sizeof(*pHdr) + sizeof(int) +
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mem.nBacktrace*sizeof(void*) + mem.nTitle;
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if( sqlite3FaultStep(SQLITE_FAULTINJECTOR_MALLOC) ){
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p = 0;
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}else{
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p = malloc(totalSize);
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if( p==0 ){
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sqlite3MemsysAlarm(nByte);
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p = malloc(totalSize);
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}
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}
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if( p ){
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z = p;
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pBt = (void**)&z[mem.nTitle];
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pHdr = (struct MemBlockHdr*)&pBt[mem.nBacktrace];
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pHdr->pNext = 0;
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pHdr->pPrev = mem.pLast;
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if( mem.pLast ){
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mem.pLast->pNext = pHdr;
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}else{
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mem.pFirst = pHdr;
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}
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mem.pLast = pHdr;
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pHdr->iForeGuard = FOREGUARD;
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pHdr->nBacktraceSlots = mem.nBacktrace;
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pHdr->nTitle = mem.nTitle;
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if( mem.nBacktrace ){
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void *aAddr[40];
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pHdr->nBacktrace = backtrace(aAddr, mem.nBacktrace+1)-1;
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memcpy(pBt, &aAddr[1], pHdr->nBacktrace*sizeof(void*));
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if( mem.xBacktrace ){
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mem.xBacktrace(nByte, pHdr->nBacktrace-1, &aAddr[1]);
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}
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}else{
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pHdr->nBacktrace = 0;
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}
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if( mem.nTitle ){
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memcpy(z, mem.zTitle, mem.nTitle);
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}
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pHdr->iSize = nByte;
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pInt = (int*)&pHdr[1];
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pInt[nByte/sizeof(int)] = REARGUARD;
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memset(pInt, 0x65, nByte);
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mem.nowUsed += nByte;
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if( mem.nowUsed>mem.mxUsed ){
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mem.mxUsed = mem.nowUsed;
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}
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p = (void*)pInt;
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}
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sqlite3_mutex_leave(mem.mutex);
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}
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return p;
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}
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/*
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** Free memory.
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*/
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void sqlite3_free(void *pPrior){
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struct MemBlockHdr *pHdr;
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void **pBt;
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char *z;
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if( pPrior==0 ){
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return;
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}
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assert( mem.mutex!=0 );
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pHdr = sqlite3MemsysGetHeader(pPrior);
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pBt = (void**)pHdr;
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pBt -= pHdr->nBacktraceSlots;
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sqlite3_mutex_enter(mem.mutex);
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mem.nowUsed -= pHdr->iSize;
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if( pHdr->pPrev ){
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assert( pHdr->pPrev->pNext==pHdr );
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pHdr->pPrev->pNext = pHdr->pNext;
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}else{
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assert( mem.pFirst==pHdr );
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mem.pFirst = pHdr->pNext;
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}
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if( pHdr->pNext ){
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assert( pHdr->pNext->pPrev==pHdr );
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pHdr->pNext->pPrev = pHdr->pPrev;
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}else{
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assert( mem.pLast==pHdr );
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mem.pLast = pHdr->pPrev;
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}
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z = (char*)pBt;
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z -= pHdr->nTitle;
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memset(z, 0x2b, sizeof(void*)*pHdr->nBacktraceSlots + sizeof(*pHdr) +
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pHdr->iSize + sizeof(int) + pHdr->nTitle);
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free(z);
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sqlite3_mutex_leave(mem.mutex);
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}
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/*
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** Change the size of an existing memory allocation.
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**
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** For this debugging implementation, we *always* make a copy of the
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** allocation into a new place in memory. In this way, if the
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** higher level code is using pointer to the old allocation, it is
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** much more likely to break and we are much more liking to find
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** the error.
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*/
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void *sqlite3_realloc(void *pPrior, int nByte){
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struct MemBlockHdr *pOldHdr;
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void *pNew;
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if( pPrior==0 ){
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return sqlite3_malloc(nByte);
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}
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if( nByte<=0 ){
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sqlite3_free(pPrior);
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return 0;
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}
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assert( mem.disallow==0 );
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pOldHdr = sqlite3MemsysGetHeader(pPrior);
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pNew = sqlite3_malloc(nByte);
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if( pNew ){
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memcpy(pNew, pPrior, nByte<pOldHdr->iSize ? nByte : pOldHdr->iSize);
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if( nByte>pOldHdr->iSize ){
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memset(&((char*)pNew)[pOldHdr->iSize], 0x2b, nByte - pOldHdr->iSize);
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}
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sqlite3_free(pPrior);
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}
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return pNew;
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}
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/*
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** Set the number of backtrace levels kept for each allocation.
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** A value of zero turns of backtracing. The number is always rounded
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** up to a multiple of 2.
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*/
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void sqlite3MemdebugBacktrace(int depth){
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if( depth<0 ){ depth = 0; }
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if( depth>20 ){ depth = 20; }
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depth = (depth+1)&0xfe;
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mem.nBacktrace = depth;
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}
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void sqlite3MemdebugBacktraceCallback(void (*xBacktrace)(int, int, void **)){
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mem.xBacktrace = xBacktrace;
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}
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/*
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** Set the title string for subsequent allocations.
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*/
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void sqlite3MemdebugSettitle(const char *zTitle){
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int n = strlen(zTitle) + 1;
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enterMem();
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if( n>=sizeof(mem.zTitle) ) n = sizeof(mem.zTitle)-1;
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memcpy(mem.zTitle, zTitle, n);
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mem.zTitle[n] = 0;
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mem.nTitle = (n+3)&~3;
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sqlite3_mutex_leave(mem.mutex);
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}
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void sqlite3MemdebugSync(){
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struct MemBlockHdr *pHdr;
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for(pHdr=mem.pFirst; pHdr; pHdr=pHdr->pNext){
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void **pBt = (void**)pHdr;
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pBt -= pHdr->nBacktraceSlots;
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mem.xBacktrace(pHdr->iSize, pHdr->nBacktrace-1, &pBt[1]);
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}
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}
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/*
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** Open the file indicated and write a log of all unfreed memory
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** allocations into that log.
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*/
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void sqlite3MemdebugDump(const char *zFilename){
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FILE *out;
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struct MemBlockHdr *pHdr;
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void **pBt;
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int i;
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out = fopen(zFilename, "w");
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if( out==0 ){
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fprintf(stderr, "** Unable to output memory debug output log: %s **\n",
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zFilename);
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return;
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}
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for(pHdr=mem.pFirst; pHdr; pHdr=pHdr->pNext){
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char *z = (char*)pHdr;
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z -= pHdr->nBacktraceSlots*sizeof(void*) + pHdr->nTitle;
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fprintf(out, "**** %d bytes at %p from %s ****\n",
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pHdr->iSize, &pHdr[1], pHdr->nTitle ? z : "???");
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if( pHdr->nBacktrace ){
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fflush(out);
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pBt = (void**)pHdr;
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pBt -= pHdr->nBacktraceSlots;
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backtrace_symbols_fd(pBt, pHdr->nBacktrace, fileno(out));
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fprintf(out, "\n");
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}
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}
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fprintf(out, "COUNTS:\n");
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for(i=0; i<NCSIZE-1; i++){
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if( mem.sizeCnt[i] ){
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fprintf(out, " %3d: %d\n", i*8+8, mem.sizeCnt[i]);
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}
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}
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if( mem.sizeCnt[NCSIZE-1] ){
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fprintf(out, " >%3d: %d\n", NCSIZE*8, mem.sizeCnt[NCSIZE-1]);
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}
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fclose(out);
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}
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/*
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** Return the number of times sqlite3_malloc() has been called.
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*/
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int sqlite3MemdebugMallocCount(){
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int i;
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int nTotal = 0;
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for(i=0; i<NCSIZE; i++){
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nTotal += mem.sizeCnt[i];
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}
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return nTotal;
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}
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#endif /* SQLITE_MEMDEBUG */
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