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511 lines
14 KiB
C
511 lines
14 KiB
C
/*
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** 2007 October 14
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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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** This version of the memory allocation subsystem omits all
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** use of malloc(). All dynamically allocatable memory is
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** contained in a static array, mem.aPool[]. The size of this
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** fixed memory pool is SQLITE_POW2_MEMORY_SIZE bytes.
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**
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** This version of the memory allocation subsystem is used if
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** and only if SQLITE_POW2_MEMORY_SIZE is defined.
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**
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** $Id: mem5.c,v 1.4 2008/02/19 15:15:16 drh 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 when
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** SQLITE_POW2_MEMORY_SIZE is defined.
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*/
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#ifdef SQLITE_POW2_MEMORY_SIZE
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/*
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** Log2 of the minimum size of an allocation. For example, if
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** 4 then all allocations will be rounded up to at least 16 bytes.
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** If 5 then all allocations will be rounded up to at least 32 bytes.
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*/
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#ifndef SQLITE_POW2_LOGMIN
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# define SQLITE_POW2_LOGMIN 6
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#endif
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#define POW2_MIN (1<<SQLITE_POW2_LOGMIN)
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/*
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** Log2 of the maximum size of an allocation.
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*/
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#ifndef SQLITE_POW2_LOGMAX
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# define SQLITE_POW2_LOGMAX 18
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#endif
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#define POW2_MAX (((unsigned int)1)<<SQLITE_POW2_LOGMAX)
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/*
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** Number of distinct allocation sizes.
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*/
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#define NSIZE (SQLITE_POW2_LOGMAX - SQLITE_POW2_LOGMIN + 1)
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/*
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** A minimum allocation is an instance of the following structure.
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** Larger allocations are an array of these structures where the
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** size of the array is a power of 2.
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*/
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typedef struct Mem5Block Mem5Block;
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struct Mem5Block {
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union {
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char aData[POW2_MIN];
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struct {
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int next; /* Index in mem.aPool[] of next free chunk */
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int prev; /* Index in mem.aPool[] of previous free chunk */
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} list;
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} u;
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};
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/*
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** Number of blocks of memory available for allocation.
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*/
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#define NBLOCK (SQLITE_POW2_MEMORY_SIZE/POW2_MIN)
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/*
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** The size in blocks of an POW2_MAX allocation
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*/
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#define SZ_MAX (1<<(NSIZE-1))
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/*
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** Masks used for mem.aCtrl[] elements.
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*/
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#define CTRL_LOGSIZE 0x1f /* Log2 Size of this block relative to POW2_MIN */
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#define CTRL_FREE 0x20 /* True if not checked out */
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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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** Performance statistics
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*/
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u64 nAlloc; /* Total number of calls to malloc */
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u64 totalAlloc; /* Total of all malloc calls - includes internal frag */
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u64 totalExcess; /* Total internal fragmentation */
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u32 currentOut; /* Current checkout, including internal fragmentation */
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u32 currentCount; /* Current number of distinct checkouts */
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u32 maxOut; /* Maximum instantaneous currentOut */
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u32 maxCount; /* Maximum instantaneous currentCount */
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u32 maxRequest; /* Largest allocation (exclusive of internal frag) */
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/*
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** Lists of free blocks of various sizes.
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*/
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int aiFreelist[NSIZE];
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/*
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** Space for tracking which blocks are checked out and the size
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** of each block. One byte per block.
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*/
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u8 aCtrl[NBLOCK];
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/*
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** Memory available for allocation
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*/
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Mem5Block aPool[NBLOCK];
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} mem;
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/*
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** Unlink the chunk at mem.aPool[i] from list it is currently
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** on. It should be found on mem.aiFreelist[iLogsize].
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*/
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static void memsys5Unlink(int i, int iLogsize){
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int next, prev;
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assert( i>=0 && i<NBLOCK );
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assert( iLogsize>=0 && iLogsize<NSIZE );
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assert( (mem.aCtrl[i] & CTRL_LOGSIZE)==iLogsize );
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assert( sqlite3_mutex_held(mem.mutex) );
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next = mem.aPool[i].u.list.next;
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prev = mem.aPool[i].u.list.prev;
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if( prev<0 ){
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mem.aiFreelist[iLogsize] = next;
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}else{
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mem.aPool[prev].u.list.next = next;
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}
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if( next>=0 ){
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mem.aPool[next].u.list.prev = prev;
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}
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}
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/*
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** Link the chunk at mem.aPool[i] so that is on the iLogsize
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** free list.
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*/
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static void memsys5Link(int i, int iLogsize){
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int x;
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assert( sqlite3_mutex_held(mem.mutex) );
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assert( i>=0 && i<NBLOCK );
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assert( iLogsize>=0 && iLogsize<NSIZE );
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assert( (mem.aCtrl[i] & CTRL_LOGSIZE)==iLogsize );
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mem.aPool[i].u.list.next = x = mem.aiFreelist[iLogsize];
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mem.aPool[i].u.list.prev = -1;
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if( x>=0 ){
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assert( x<NBLOCK );
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mem.aPool[x].u.list.prev = i;
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}
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mem.aiFreelist[iLogsize] = i;
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}
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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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** Also: Initialize the memory allocation subsystem the first time
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** this routine is called.
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*/
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static void memsys5Enter(void){
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if( mem.mutex==0 ){
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int i;
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assert( sizeof(Mem5Block)==POW2_MIN );
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assert( (SQLITE_POW2_MEMORY_SIZE % POW2_MAX)==0 );
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assert( SQLITE_POW2_MEMORY_SIZE>=POW2_MAX );
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mem.mutex = sqlite3_mutex_alloc(SQLITE_MUTEX_STATIC_MEM);
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sqlite3_mutex_enter(mem.mutex);
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for(i=0; i<NSIZE; i++) mem.aiFreelist[i] = -1;
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for(i=0; i<=NBLOCK-SZ_MAX; i += SZ_MAX){
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mem.aCtrl[i] = (NSIZE-1) | CTRL_FREE;
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memsys5Link(i, NSIZE-1);
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}
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}else{
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sqlite3_mutex_enter(mem.mutex);
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}
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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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return mem.currentOut;
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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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memsys5Enter();
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n = mem.maxOut;
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if( resetFlag ){
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mem.maxOut = mem.currentOut;
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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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** Trigger the alarm
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*/
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static void memsys5Alarm(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.currentOut;
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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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** Change the alarm callback.
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**
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** This is a no-op for the static memory allocator. The purpose
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** of the memory alarm is to support sqlite3_soft_heap_limit().
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** But with this memory allocator, the soft_heap_limit is really
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** a hard limit that is fixed at SQLITE_POW2_MEMORY_SIZE.
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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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memsys5Enter();
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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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** Return the size of an outstanding allocation, in bytes. The
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** size returned omits the 8-byte header overhead. This only
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** works for chunks that are currently checked out.
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*/
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int sqlite3MallocSize(void *p){
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int iSize = 0;
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if( p ){
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int i = ((Mem5Block*)p) - mem.aPool;
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assert( i>=0 && i<NBLOCK );
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iSize = 1 << ((mem.aCtrl[i]&CTRL_LOGSIZE) + SQLITE_POW2_LOGMIN);
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}
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return iSize;
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}
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/*
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** Find the first entry on the freelist iLogsize. Unlink that
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** entry and return its index.
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*/
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static int memsys5UnlinkFirst(int iLogsize){
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int i;
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int iFirst;
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assert( iLogsize>=0 && iLogsize<NSIZE );
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i = iFirst = mem.aiFreelist[iLogsize];
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assert( iFirst>=0 );
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while( i>0 ){
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if( i<iFirst ) iFirst = i;
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i = mem.aPool[i].u.list.next;
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}
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memsys5Unlink(iFirst, iLogsize);
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return iFirst;
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}
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/*
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** Return a block of memory of at least nBytes in size.
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** Return NULL if unable.
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*/
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static void *memsys5Malloc(int nByte){
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int i; /* Index of a mem.aPool[] slot */
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int iBin; /* Index into mem.aiFreelist[] */
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int iFullSz; /* Size of allocation rounded up to power of 2 */
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int iLogsize; /* Log2 of iFullSz/POW2_MIN */
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assert( sqlite3_mutex_held(mem.mutex) );
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/* Keep track of the maximum allocation request. Even unfulfilled
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** requests are counted */
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if( nByte>mem.maxRequest ){
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mem.maxRequest = nByte;
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}
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/* Simulate a memory allocation fault */
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if( sqlite3FaultStep(SQLITE_FAULTINJECTOR_MALLOC) ) return 0;
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/* Round nByte up to the next valid power of two */
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if( nByte>POW2_MAX ) return 0;
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for(iFullSz=POW2_MIN, iLogsize=0; iFullSz<nByte; iFullSz *= 2, iLogsize++){}
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/* If we will be over the memory alarm threshold after this allocation,
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** then trigger the memory overflow alarm */
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if( mem.alarmCallback!=0 && mem.currentOut+iFullSz>=mem.alarmThreshold ){
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memsys5Alarm(iFullSz);
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}
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/* Make sure mem.aiFreelist[iLogsize] contains at least one free
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** block. If not, then split a block of the next larger power of
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** two in order to create a new free block of size iLogsize.
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*/
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for(iBin=iLogsize; mem.aiFreelist[iBin]<0 && iBin<NSIZE; iBin++){}
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if( iBin>=NSIZE ) return 0;
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i = memsys5UnlinkFirst(iBin);
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while( iBin>iLogsize ){
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int newSize;
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iBin--;
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newSize = 1 << iBin;
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mem.aCtrl[i+newSize] = CTRL_FREE | iBin;
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memsys5Link(i+newSize, iBin);
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}
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mem.aCtrl[i] = iLogsize;
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/* Update allocator performance statistics. */
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mem.nAlloc++;
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mem.totalAlloc += iFullSz;
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mem.totalExcess += iFullSz - nByte;
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mem.currentCount++;
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mem.currentOut += iFullSz;
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if( mem.maxCount<mem.currentCount ) mem.maxCount = mem.currentCount;
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if( mem.maxOut<mem.currentOut ) mem.maxOut = mem.currentOut;
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/* Return a pointer to the allocated memory. */
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return (void*)&mem.aPool[i];
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}
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/*
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** Free an outstanding memory allocation.
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*/
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void memsys5Free(void *pOld){
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u32 size, iLogsize;
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int i;
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i = ((Mem5Block*)pOld) - mem.aPool;
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assert( sqlite3_mutex_held(mem.mutex) );
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assert( i>=0 && i<NBLOCK );
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assert( (mem.aCtrl[i] & CTRL_FREE)==0 );
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iLogsize = mem.aCtrl[i] & CTRL_LOGSIZE;
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size = 1<<iLogsize;
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assert( i+size-1<NBLOCK );
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mem.aCtrl[i] |= CTRL_FREE;
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mem.aCtrl[i+size-1] |= CTRL_FREE;
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assert( mem.currentCount>0 );
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assert( mem.currentOut>=0 );
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mem.currentCount--;
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mem.currentOut -= size*POW2_MIN;
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assert( mem.currentOut>0 || mem.currentCount==0 );
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assert( mem.currentCount>0 || mem.currentOut==0 );
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mem.aCtrl[i] = CTRL_FREE | iLogsize;
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while( iLogsize<NSIZE-1 ){
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int iBuddy;
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if( (i>>iLogsize) & 1 ){
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iBuddy = i - size;
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}else{
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iBuddy = i + size;
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}
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assert( iBuddy>=0 && iBuddy<NBLOCK );
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if( mem.aCtrl[iBuddy]!=(CTRL_FREE | iLogsize) ) break;
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memsys5Unlink(iBuddy, iLogsize);
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iLogsize++;
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if( iBuddy<i ){
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mem.aCtrl[iBuddy] = CTRL_FREE | iLogsize;
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mem.aCtrl[i] = 0;
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i = iBuddy;
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}else{
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mem.aCtrl[i] = CTRL_FREE | iLogsize;
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mem.aCtrl[iBuddy] = 0;
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}
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size *= 2;
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}
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memsys5Link(i, iLogsize);
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}
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/*
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** Allocate nBytes of memory
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*/
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void *sqlite3_malloc(int nBytes){
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sqlite3_int64 *p = 0;
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if( nBytes>0 ){
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memsys5Enter();
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p = memsys5Malloc(nBytes);
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sqlite3_mutex_leave(mem.mutex);
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}
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return (void*)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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if( pPrior==0 ){
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return;
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}
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assert( mem.mutex!=0 );
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sqlite3_mutex_enter(mem.mutex);
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memsys5Free(pPrior);
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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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void *sqlite3_realloc(void *pPrior, int nBytes){
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int nOld;
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void *p;
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if( pPrior==0 ){
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return sqlite3_malloc(nBytes);
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}
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if( nBytes<=0 ){
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sqlite3_free(pPrior);
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return 0;
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}
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assert( mem.mutex!=0 );
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nOld = sqlite3MallocSize(pPrior);
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if( nBytes<=nOld ){
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return pPrior;
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}
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sqlite3_mutex_enter(mem.mutex);
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p = memsys5Malloc(nBytes);
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if( p ){
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memcpy(p, pPrior, nOld);
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memsys5Free(pPrior);
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}
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sqlite3_mutex_leave(mem.mutex);
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return p;
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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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#ifdef SQLITE_DEBUG
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FILE *out;
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int i, j, n;
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if( zFilename==0 || zFilename[0]==0 ){
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out = stdout;
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}else{
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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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}
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memsys5Enter();
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for(i=0; i<NSIZE; i++){
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for(n=0, j=mem.aiFreelist[i]; j>=0; j = mem.aPool[j].u.list.next, n++){}
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fprintf(out, "freelist items of size %d: %d\n", POW2_MIN << i, n);
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}
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fprintf(out, "mem.nAlloc = %llu\n", mem.nAlloc);
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fprintf(out, "mem.totalAlloc = %llu\n", mem.totalAlloc);
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fprintf(out, "mem.totalExcess = %llu\n", mem.totalExcess);
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fprintf(out, "mem.currentOut = %u\n", mem.currentOut);
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fprintf(out, "mem.currentCount = %u\n", mem.currentCount);
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fprintf(out, "mem.maxOut = %u\n", mem.maxOut);
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fprintf(out, "mem.maxCount = %u\n", mem.maxCount);
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fprintf(out, "mem.maxRequest = %u\n", mem.maxRequest);
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sqlite3_mutex_leave(mem.mutex);
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if( out==stdout ){
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fflush(stdout);
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}else{
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fclose(out);
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}
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#endif
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}
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#endif /* !SQLITE_POW2_MEMORY_SIZE */
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