[142] | 1 | /* $Id: malloc.c 148 2000-04-26 18:01:02Z sandervl $ */
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| 2 |
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| 3 | /* SCCSID = %W% %E% */
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| 4 | /****************************************************************************
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| 5 | * *
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| 6 | * Copyright (c) IBM Corporation 1994 - 1997. *
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| 7 | * *
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| 8 | * The following IBM OS/2 source code is provided to you solely for the *
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| 9 | * the purpose of assisting you in your development of OS/2 device drivers. *
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| 10 | * You may use this code in accordance with the IBM License Agreement *
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| 11 | * provided in the IBM Device Driver Source Kit for OS/2. *
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| 12 | * *
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| 13 | ****************************************************************************/
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| 14 | /**@internal %W%
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| 15 | * Implementation of the driver's built in memory management.
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| 16 | * @version %I%
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| 17 | * @context
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| 18 | * Unless otherwise noted, all interfaces are Ring-3 and Ring-0, 16-bit,
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| 19 | * kernel stack.
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| 20 | * @notes
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| 21 | * @history
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| 22 | * 01-Jul-95 Timur Tabi Creation
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| 23 | */
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| 24 |
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| 25 | #include <os2.h>
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| 26 | #include <string.h> // memcpy(), memset()
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| 27 | #include <include.h>
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| 28 | #include "end.h"
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| 29 | #include "sizedefs.h" // HEAP_SIZE, DEFAULT_HEAP.
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| 30 | // MustBe divisible by 4.
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| 31 |
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| 32 | #define SIGNATURE 0xBEEFDEAD // "DeadBeef" when view in hex in word order.
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| 33 |
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| 34 | typedef struct _MEMBLOCK {
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| 35 | unsigned long ulSignature;
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| 36 | unsigned uSize;
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| 37 | struct _MEMBLOCK *pmbNext;
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| 38 | char achBlock[1];
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| 39 | } MEMBLOCK, __near *PMEMBLOCK;
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| 40 |
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| 41 | #define HDR_SIZE ( sizeof(MEMBLOCK) - 1 )
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| 42 |
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| 43 | // We won't leave a hole in memory any smaller than MIN_FragSize.
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| 44 | #define MIN_FragSize 4
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| 45 |
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| 46 |
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| 47 | #pragma data_seg ("_heap","endds");
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| 48 |
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| 49 | //--- Global Variables used to manage the heap:
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| 50 | //
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| 51 | PMEMBLOCK pmbUsed=0; // Points to head of list of allocated memory blocks.
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| 52 | // Newly allocated blocks are inserted into head of list.
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| 53 | PMEMBLOCK pmbFree; // Points to head of list of available memory blocks.
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| 54 | unsigned uMemFree; // N bytes available for allocation.
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| 55 | char __near
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[148] | 56 | acHeap[HEAP_SIZE] = {0}; // The heap. NOTE: This must be the last data definition in the HEAP segment,
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[142] | 57 | // although not done currently, we are planning to size the heap down at INIT
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| 58 | // time. If this is done, any vbls in the HEAP segment that
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| 59 | // appear after the HEAP would become unaddressable.
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| 60 |
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| 61 | //--- Heap methods:
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| 62 |
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| 63 | void dumpheap(void)
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| 64 | {
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| 65 | int i;
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| 66 | PMEMBLOCK pmb;
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| 67 | unsigned u=0;
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| 68 |
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| 69 | pmb=pmbUsed;
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| 70 | // ddprintf("HEAP: Heap Dump - Used blocks\n");
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| 71 | for (i=0; i<10; i++) {
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| 72 | // ddprintf(" pmb=%p, length=%ui\n",(void __far *) pmb, pmb->uSize);
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| 73 | u+=pmb->uSize;
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| 74 | pmb=pmb->pmbNext;
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| 75 | if (!pmb) break;
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| 76 | }
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| 77 | // ddprintf(" Total used = %ui\n",u);
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| 78 |
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| 79 | u=0;
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| 80 | pmb=pmbFree;
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| 81 | // ddprintf("HEAP: Heap Dump - Free blocks\n");
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| 82 | for (i=0; i<50; i++) {
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| 83 | // ddprintf(" pmb=%p, length=%ui\n",(void __far *) pmb, pmb->uSize);
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| 84 | u+=pmb->uSize;
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| 85 | pmb=pmb->pmbNext;
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| 86 | if (!pmb) break;
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| 87 | }
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| 88 | // ddprintf(" Total free = %ui\n",u);
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| 89 | }
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| 90 |
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| 91 | USHORT fMemoryDoc = 0;
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| 92 | USHORT nAlloc = 0; // Current number of allocated blocks.
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| 93 | USHORT cAlloc = 0; // Total memory in allocated blocks incl. headers.
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| 94 | USHORT nAllocCalls = 0; // Cumulative total, number of malloc() calls.
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| 95 | USHORT nFree = 0; // Current number of free blocks.
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| 96 | USHORT cFree = 0; // Total memory in free blocks incl. headers.
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| 97 | USHORT nFreeCalls = 0; // Cumulative total, number of free() calls.
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| 98 | USHORT nCompact = 0; // Num of times we've joined two adjacent free
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| 99 | // blocks into a single larger block.
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| 100 | USHORT cTotalHeap = HEAP_SIZE;
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| 101 |
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| 102 | void SignatureCheck ( PMEMBLOCK p, PSZ idText )
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| 103 | {
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| 104 |
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| 105 | bool bGoodPointer;
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| 106 |
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| 107 | // Set bGoodPointer to indicate whether or not 'p' points within heap.
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| 108 | bGoodPointer = (((USHORT) p) >= ((USHORT) acHeap))
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| 109 | && (((USHORT) p) <= (((USHORT) acHeap) + HEAP_SIZE)) ;
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| 110 | //### heap might have less than HEAP_SIZE bytes
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| 111 |
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| 112 | // Check for correct signature.
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| 113 | if (bGoodPointer)
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| 114 | bGoodPointer = (p->ulSignature == SIGNATURE);
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| 115 |
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| 116 | if (! bGoodPointer)
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| 117 | {
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| 118 | // ddprintf( "Heap pointer out of range, or signature exception: %p %s\n", p, idText );
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| 119 | int3();
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| 120 | }
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| 121 | }
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| 122 |
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| 123 | void HeapCheck ( PSZ idText )
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| 124 | {
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| 125 | PMEMBLOCK p;
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| 126 | for ( nAlloc = 0, cAlloc = 0, p = pmbUsed; p; p = p->pmbNext ) {
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| 127 | ++nAlloc;
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| 128 | cAlloc += p->uSize + HDR_SIZE;
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| 129 | SignatureCheck( p,(PSZ) "HeapCheck() Used list" );
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| 130 | }
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| 131 | for ( nFree = 0, cFree = 0, p = pmbFree; p; p = p->pmbNext ) {
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| 132 | ++nFree;
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| 133 | cFree += p->uSize + HDR_SIZE;
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| 134 | SignatureCheck( p,(PSZ) "HeapCheck() Free list" );
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| 135 | }
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| 136 | if (fMemoryDoc & 1) {
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| 137 | if (cAlloc + cFree != cTotalHeap) {
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| 138 | // ddprintf( "Heap Alloc + Free != Total\n" );
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| 139 | // dumpheap();
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| 140 | int3();
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| 141 | }
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| 142 | }
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| 143 | }
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| 144 |
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| 145 |
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| 146 |
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| 147 | // Threshold for creating a new free block.
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| 148 | #define MIN_Leftover (HDR_SIZE + MIN_FragSize)
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| 149 |
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| 150 | /* make_new_free()
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| 151 | Formats the back part of an existing free MEMBLOCK as a new, smaller
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| 152 | "Free" MEMBLOCK. Doesn't update Global vbls (caller responsibility).
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| 153 | IN: pmbOldFree - pointer to existing memory block.
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| 154 | uSize - offset, which won't be included in new allocation.
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| 155 | it's assumed HDR is not included in uSize.
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| 156 | OUT: pointer to new free MEMBLOCK, is a new block of free memory,
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| 157 | is created at pmbOldFree + uRequest. The memory block header
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| 158 | in both the new block and the old block are properly initialized
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| 159 | on return, but we don't update the Free list or Allocated list.
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| 160 | OUT: NULL if the new free memory block is smaller than the
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| 161 | framentation threshold.
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| 162 |
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| 163 | The fragmentation consideration comes into play when we find a block that's
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| 164 | big enough to hold the requested memory, but not big enough for the leftover
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| 165 | part to be useful as another free block.
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| 166 |
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| 167 | _______________________free block_______________________________________
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| 168 | | free | |
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| 169 | | block | space available |
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| 170 | | header | (pmbFree->uSize bytes long) |
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| 171 | |(HDR_SIZE | |
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| 172 | |__bytes)__|_____________________________________________________________|
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| 173 |
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| 174 | <-- HDR --> <------------------------- l -------------------------------->
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| 175 |
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| 176 | Must either be allocated in total, or must become:
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| 177 |
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| 178 | _______________________used block_______________________________________
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| 179 | | used | | free | |
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| 180 | | block | space allocated | block | space |
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| 181 | | header | == uSize (following DWORD align't) | header | available |
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| 182 | |(HDR_SIZE | (pmbUsed->uSize bytes long) |(HDR_SIZE | |
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| 183 | |__bytes)__|_____________________________________|__bytes)__|____________|
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| 184 |
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| 185 | <-- HDR --> <-------------- n ------------------><-- HDR --> <--- m ----->
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| 186 |
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| 187 | To be split into an allocated and a new, smaller free block, 'm' must be at
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| 188 | least MIN_FragSize bytes long.
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| 189 |
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| 190 | Everything should remain 4 byte aligned since the HDR_SIZE, MIN_FragSize,
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| 191 | and the space allocated (after we munge it) are all multiples of 4.
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| 192 |
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| 193 | This means that in order for a free block to be chosen, one of the following
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| 194 | equation must hold
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| 195 |
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| 196 | Case 1: n <= l < (n + HDR + MIN_FragSize)
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| 197 | Here, we'll allocate the entire block. This makes the block somewhat
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| 198 | larger than the request, but prevents some degree of fragmentation.
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| 199 |
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| 200 | Case 2: (n + HDR + MIN_FragSize) <= l
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| 201 | We split the block into an allocated part to satisfy the allocation request,
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| 202 | and a free block which can be allocated in a subsequent request.
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| 203 | */
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| 204 |
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| 205 | PMEMBLOCK make_new_free(PMEMBLOCK pmbOldFree, unsigned uRequest)
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| 206 | {
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| 207 | PMEMBLOCK pmbNewFree; // If we create a new free block, it goes here.
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| 208 |
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| 209 | // Which of the two cases (as described in function header) have we got?
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| 210 | // We know we're big enough to satisfy request, is there enough leftover
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| 211 | // for a new free block?
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| 212 |
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| 213 | if ((uRequest + MIN_Leftover) > pmbOldFree->uSize) {
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| 214 | // Not enough leftover, allocate the entire free block. Don't
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| 215 | // change pmbOldFree->uSize.
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| 216 | pmbNewFree = 0;
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| 217 | }
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| 218 | else {
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| 219 | // We've got enough leftover to make a new free block.
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| 220 | pmbNewFree = (PMEMBLOCK) ((char __near *) pmbOldFree + HDR_SIZE + uRequest );
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| 221 | pmbNewFree->ulSignature = SIGNATURE;
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| 222 | pmbNewFree->uSize = pmbOldFree->uSize - (uRequest + HDR_SIZE);
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| 223 | pmbNewFree->pmbNext = pmbOldFree->pmbNext;
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| 224 |
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| 225 | // Update the size of the free block that was passed in.
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| 226 | pmbOldFree->uSize -= (pmbNewFree->uSize + HDR_SIZE);
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| 227 | }
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| 228 |
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| 229 | return pmbNewFree;
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| 230 | }
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| 231 |
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| 232 |
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| 233 | /**@internal _msize
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| 234 | */
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| 235 | unsigned _msize(void __near *pvBlock)
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| 236 | {
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| 237 | PMEMBLOCK pmb;
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| 238 |
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| 239 | if (!pvBlock)
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| 240 | return 0;
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| 241 |
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| 242 | pmb = (PMEMBLOCK) ((char __near *) pvBlock - HDR_SIZE);
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| 243 |
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| 244 | return pmb->uSize;
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| 245 | }
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| 246 |
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| 247 |
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| 248 | /**@internal pmbAllocateBlock
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| 249 | * Update all data structures for allocation of one memory block. It's
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| 250 | * assumed, on entry, that the block is large enough for the requested
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| 251 | * allocation.
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| 252 | * @param PMEMBLOCK pmb - the current memory block on the Free list to
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| 253 | * allocate.
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| 254 | * @param USHORT uRequest - size of the memory request to fill, not counting
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| 255 | * memory block header.
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| 256 | * @param PMEMBLOCK pmbPrev - the memory block which precedes the block being
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| 257 | * allocated in the Free list. NULL if no predecessor (ie, pmb is pointed to
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| 258 | * by ::pmbFree).
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| 259 | * @return PMEMBLOCK - pointer to the data part of the allocated memory block,
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| 260 | * suitable for return to malloc() caller.
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| 261 | */
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| 262 | void __near *
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| 263 | npvAllocateBlock( PMEMBLOCK pmb, USHORT uRequest, PMEMBLOCK pmbPrev )
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| 264 | {
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| 265 | //pmb points to the selected block.
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| 266 | //pmbPrev points to the block prior to the selected block, NULL if pmbFree.
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| 267 | PMEMBLOCK pmbOldNext; // Original free block that follows the block being allocated.
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| 268 | PMEMBLOCK pmbNewFree; // Leftover free memory from the allocated block.
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| 269 |
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| 270 | // Split this block into an allocated + free part if it's big enough.
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| 271 | pmbNewFree = make_new_free( pmb, uRequest );
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| 272 |
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| 273 | // Update global memory counter.
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| 274 | uMemFree -= (pmb->uSize + HDR_SIZE);
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| 275 |
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| 276 | // Add this block into the front of the Allocated list.
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| 277 | pmbOldNext = pmb->pmbNext;
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| 278 | pmb->pmbNext = pmbUsed;
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| 279 | pmbUsed = pmb;
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| 280 |
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| 281 | // Remove the new allocation from the Free list.
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| 282 | if (pmbNewFree) { // If we split off a new free block
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| 283 | pmbNewFree->pmbNext = pmbOldNext;
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| 284 | if (pmbPrev) // If we're not at head of Free list
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| 285 | pmbPrev->pmbNext = pmbNewFree;
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| 286 | else
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| 287 | pmbFree = pmbNewFree;
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| 288 | }
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| 289 | else { // We allocated the entire free block.
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| 290 | if (pmbPrev) // If we're not at head of Free list
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| 291 | pmbPrev->pmbNext = pmbOldNext;
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| 292 | else
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| 293 | pmbFree = pmbOldNext;
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| 294 | }
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| 295 |
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| 296 | return (void __near *) pmb->achBlock;
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| 297 | }
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| 298 |
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| 299 |
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| 300 | /* malloc()
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| 301 | This function searches the list of free blocks until it finds one big enough
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| 302 | to hold the amount of memory requested, which is passed in uSize. The uSize
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| 303 | request is sized up for:
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| 304 | - a memory block header
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| 305 | - four byte alignment
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| 306 | - minimum fragmentation
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| 307 |
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| 308 | See helper function make_new_free() for discussion of fragmentation handling.
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| 309 | */
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| 310 |
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| 311 | void __near *malloc( unsigned uSize )
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| 312 | {
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| 313 | USHORT uRequest; // Request size after alignment.
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| 314 | PMEMBLOCK pmb, pmbPrev; // Use to walk free lists.
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| 315 | void __near *npvReturn = 0; // Return value.
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| 316 |
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| 317 | ++nAllocCalls; // Diagnostics.
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| 318 | HeapCheck((PSZ) "malloc() entry" );
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| 319 |
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| 320 | if (! uSize) return 0;
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| 321 |
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| 322 | uRequest = (uSize + 3) & -4; // Force DWORD alignment.
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| 323 |
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| 324 | if (pmbFree->uSize >= uRequest)
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| 325 | npvReturn = npvAllocateBlock( pmbFree, uRequest, NULL );
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| 326 | else {
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| 327 | pmbPrev = pmbFree;
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| 328 | for ( pmb=pmbFree->pmbNext; pmb; pmbPrev=pmb, pmb=pmb->pmbNext)
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| 329 | if (pmb->uSize >= uRequest) {
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| 330 | npvReturn = npvAllocateBlock( pmb, uRequest, pmbPrev );
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| 331 | break;
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| 332 | }
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| 333 | }
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| 334 |
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| 335 | if (npvReturn)
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| 336 | SignatureCheck( (PMEMBLOCK) (((PUCHAR) npvReturn) - HDR_SIZE), (PSZ) "malloc() exit, allocated block" );
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| 337 | else {
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| 338 | // Out of Memory !!!
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| 339 | int3();
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| 340 | }
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| 341 |
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| 342 | HeapCheck((PSZ) "malloc() exit" );
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| 343 | return npvReturn;
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| 344 | }
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| 345 |
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| 346 | /* void compact(void)
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| 347 | This function compacts the free blocks together. This function is a
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| 348 | companion to free(), and thus the algorithm is tailored to how free()
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| 349 | works. Change the algorithm in free(), and you'll have to change this
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| 350 | function too.
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| 351 |
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| 352 | When free() frees a block, it sets the head of the free list, pmbFree, to
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| 353 | point to it. Then the newly freed block points to whatever the old pmbFree
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| 354 | pointed to. In other words, each new free block is added to the head of
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| 355 | the free list.
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| 356 |
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| 357 | If compact() is always called after a block is freed, then it can be
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| 358 | guaranteed that the free list is always compacted (i.e. you won't find
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| 359 | two adjacent free blocks anywhere in the heap) _before_ each call to free().
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| 360 | Therefore, the newly freed block can be located in only one of the
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| 361 | following positions:
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| 362 | 1. Not adjacent to any other free blocks (compacting not necessary)
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| 363 | 2. Physically before another free block
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| 364 | 3. Physically after another free block
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| 365 | 4. Between two free blocks (i.e. the block occupies the entire space
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| 366 | between two free blocks)
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| 367 |
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| 368 | Since the newly freed block is the first in the free list, compact()
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| 369 | starts with the second block in the list (i.e. pmbFree->pmbNext).
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| 370 | Each free block is then compared with the newly freed block for
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| 371 | adjacency. If a given block is located before the new block, then it
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| 372 | can't possibly be also located after, and vice versa. Hence, the
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| 373 | "else if" statement in the middle of the loop.
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| 374 |
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| 375 | Also, the newly freed block can only be adjacent to at most two other
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| 376 | blocks. Therefore, the operation of combining two adjacent free blocks can
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| 377 | only happen at most twice. The variable nFreed counts the number of times
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| 378 | two blocks are combined. The function exits if nFreed reaches two. nFreed
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| 379 | is initially 0.
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| 380 |
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| 381 | Helper macro after() takes a PMEMBLOCK (call it pmb) as a parameter,
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| 382 | and calculates where an adjacent free block would exist if it were
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| 383 | physically located after pmb.
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| 384 |
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| 385 | Helper function remove() removes an element from the free list.
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| 386 | */
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| 387 |
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| 388 | #define after(pmb) ((PMEMBLOCK) ((char __near *) pmb + pmb->uSize + HDR_SIZE))
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| 389 |
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| 390 | void remove(PMEMBLOCK pmb)
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| 391 | {
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| 392 | PMEMBLOCK pmbPrev;
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| 393 |
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| 394 | if (pmb == pmbFree) {
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| 395 | pmbFree = pmbFree->pmbNext;
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| 396 | return;
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| 397 | }
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| 398 |
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| 399 | for (pmbPrev=pmbFree; pmbPrev; pmbPrev=pmbPrev->pmbNext)
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| 400 | if (pmbPrev->pmbNext == pmb) {
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| 401 | pmbPrev->pmbNext = pmb->pmbNext;
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| 402 | return;
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| 403 | }
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| 404 | }
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| 405 |
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| 406 | void compact(void)
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| 407 | {
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| 408 | PMEMBLOCK pmb;
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| 409 | int iFreed = 0;
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| 410 |
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| 411 | for (pmb=pmbFree->pmbNext; pmb; pmb=pmb->pmbNext) {
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| 412 | if (pmb == pmb->pmbNext) {
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| 413 | // ddprintf("HEAP: heap loop, %p points to itself\n", (void __far *) pmb);
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| 414 | int3();
|
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| 415 | }
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| 416 |
|
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| 417 | if (after(pmb) == pmbFree) {
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| 418 | // ddprintf("HEAP: compact found pointer %p (size=%ui) before pmbFree %p\n", (void __far *) pmb, pmb->uSize, (void __far *) pmbFree);
|
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| 419 | pmb->uSize += HDR_SIZE + pmbFree->uSize;
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| 420 | remove(pmbFree);
|
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| 421 | if (++iFreed == 2) goto exit;
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| 422 | } else if (after(pmbFree) == pmb) {
|
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| 423 | // ddprintf("HEAP: compact found pointer %p (size=%ui) after pmbFree %p\n", (void __far *) pmb, pmb->uSize, (void __far *) pmbFree);
|
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| 424 | pmbFree->uSize += HDR_SIZE + pmb->uSize;
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| 425 | remove(pmb);
|
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| 426 | if (++iFreed == 2) goto exit;
|
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| 427 | }
|
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| 428 | }
|
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| 429 |
|
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| 430 | exit:
|
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| 431 | nCompact += iFreed;
|
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| 432 | }
|
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| 433 |
|
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| 434 | void free(void __near *pvBlock)
|
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| 435 | {
|
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| 436 | PMEMBLOCK pmb,pmbPrev,pmbBlock;
|
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| 437 | int fSentinel;
|
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| 438 |
|
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| 439 | ++nFreeCalls;
|
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| 440 | if (!pvBlock) return; // support freeing of NULL
|
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| 441 |
|
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| 442 | pmbBlock=(PMEMBLOCK) ((char __near *) pvBlock - HDR_SIZE);
|
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| 443 |
|
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| 444 | SignatureCheck( pmbBlock,(PSZ) "free() entry, Block to be freed" );
|
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| 445 | HeapCheck((PSZ) "free() entry" );
|
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| 446 |
|
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| 447 | uMemFree += pmbBlock->uSize + HDR_SIZE;
|
---|
| 448 |
|
---|
| 449 | if (pmbBlock == pmbUsed) { // are we freeing the first block?
|
---|
| 450 | pmbUsed = pmbUsed->pmbNext; // the 2nd block is now the 1st
|
---|
| 451 | pmbBlock->pmbNext = pmbFree; // this block is now free, so it points to 1st free block
|
---|
| 452 | pmbFree = pmbBlock; // this is now the 1st free block
|
---|
| 453 | compact();
|
---|
| 454 | goto exit;
|
---|
| 455 | }
|
---|
| 456 |
|
---|
| 457 | pmbPrev=pmbUsed;
|
---|
| 458 | fSentinel = FALSE;
|
---|
| 459 | for (pmb=pmbUsed->pmbNext; pmb; pmbPrev=pmb, pmb=pmb->pmbNext)
|
---|
| 460 | if (pmb == pmbBlock) {
|
---|
| 461 | if (fSentinel) {
|
---|
| 462 | // ddprintf("HEAP: free sentinel triggered, pmb=%p\n", (void __far *) pmb);
|
---|
| 463 | int3();
|
---|
| 464 | }
|
---|
| 465 | pmbPrev->pmbNext = pmb->pmbNext; // delete this block from the chain
|
---|
| 466 | pmbBlock->pmbNext = pmbFree;
|
---|
| 467 | pmbFree = pmbBlock;
|
---|
| 468 | compact();
|
---|
| 469 | fSentinel = TRUE;
|
---|
| 470 | }
|
---|
| 471 |
|
---|
| 472 | exit: //--- Check things are still intact.
|
---|
| 473 | HeapCheck((PSZ) "free() exit" );
|
---|
| 474 | }
|
---|
| 475 |
|
---|
| 476 | unsigned _memfree(void)
|
---|
| 477 | {
|
---|
| 478 | return uMemFree;
|
---|
| 479 | }
|
---|
| 480 |
|
---|
| 481 | void __near *realloc(void __near *pvBlock, unsigned usLength)
|
---|
| 482 | {
|
---|
| 483 | void __near *pv;
|
---|
| 484 |
|
---|
| 485 | if (!pvBlock) // if ptr is null, alloc block
|
---|
| 486 | return malloc(usLength);
|
---|
| 487 |
|
---|
| 488 | if (!usLength) { // if length is 0, free block
|
---|
| 489 | free(pvBlock);
|
---|
| 490 | return 0;
|
---|
| 491 | }
|
---|
| 492 |
|
---|
| 493 | pv=malloc(usLength); // attempt to allocate the new block
|
---|
| 494 | if (!pv) // can't do it?
|
---|
| 495 | return 0; // just fail. Version 2 will try harder
|
---|
| 496 |
|
---|
| 497 | memcpy(pv, pvBlock, min( _msize(pvBlock), usLength));
|
---|
| 498 | free(pvBlock);
|
---|
| 499 | return pv;
|
---|
| 500 | }
|
---|
| 501 |
|
---|
| 502 | #pragma code_seg ("_inittext");
|
---|
| 503 |
|
---|
| 504 | unsigned HeapInit(unsigned uSize)
|
---|
| 505 | {
|
---|
| 506 | unsigned max_heap=(unsigned) &end_of_heap - (unsigned) &end_of_data;
|
---|
| 507 |
|
---|
| 508 | if (!uSize)
|
---|
| 509 | uSize = DEFAULT_HEAP;
|
---|
| 510 |
|
---|
| 511 | if (uSize > max_heap)
|
---|
| 512 | uSize = max_heap;
|
---|
| 513 |
|
---|
| 514 | pmbFree=(PMEMBLOCK) acHeap;
|
---|
| 515 | pmbFree->uSize = uSize - HDR_SIZE;
|
---|
| 516 | pmbFree->ulSignature = SIGNATURE;
|
---|
| 517 | pmbFree->pmbNext = 0;
|
---|
| 518 | uMemFree = pmbFree->uSize;
|
---|
| 519 | return pmbFree->uSize;
|
---|
| 520 | }
|
---|