359 satır
9.5 KiB
C
359 satır
9.5 KiB
C
#include "cmPrefix.h"
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#include "cmGlobal.h"
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#include "cmRpt.h"
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#include "cmErr.h"
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#include "cmCtx.h"
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#include "cmMem.h"
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#include "cmLinkedHeap.h"
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#include "cmMallocDebug.h"
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typedef struct cmLhBlock_str
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{
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char* basePtr; // base of block
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char* nextPtr; // next avail location in block
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char* endPtr; // one past end of block
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struct cmLhBlock_str* prevBlkPtr; // backward block link
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struct cmLhBlock_str* nextBlkPtr; // forward block link
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unsigned freeCnt; // track orphaned space that is unavailable for reuse
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} cmLhBlock_t;
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typedef struct
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{
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unsigned dfltBlockByteCnt; // size of each block in chain
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cmLhBlock_t* first; // first block in chain
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cmLhBlock_t* last; // last block in chain
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cmMmH_t mmH;
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} cmLHeap_t;
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cmLHeapH_t cmLHeapNullHandle = { NULL };
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cmLHeap_t* _cmLHeapHandleToPtr( cmLHeapH_t h )
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{
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cmLHeap_t* lhp = (cmLHeap_t*)h.h;
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assert( lhp != NULL);
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return lhp;
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}
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cmLhBlock_t* _cmLHeapAllocBlock( cmLHeap_t* lhp, unsigned blockByteCnt )
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{
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// note: the entire block (control record and data space) is allocated
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// as one contiguous chunk of memory.
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cmLhBlock_t* lbp = (cmLhBlock_t*)cmMemMallocZ( sizeof(cmLhBlock_t) + blockByteCnt );
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// setup the new block
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lbp->basePtr = (char*)(lbp+1);
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lbp->nextPtr = lbp->basePtr;
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lbp->endPtr = lbp->basePtr + blockByteCnt;
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lbp->prevBlkPtr = lhp->last;
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lbp->nextBlkPtr = NULL;
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// link the new block into the chain
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if( lhp->last != NULL )
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lhp->last->nextBlkPtr = lbp;
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else
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{
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assert( lhp->first == NULL );
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lhp->first = lbp;
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}
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lhp->last = lbp;
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return lbp;
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}
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void* _cmLHeapAlloc( cmLHeap_t* lhp, unsigned dataByteCnt )
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{
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void* retPtr = NULL;
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cmLhBlock_t* lbp = lhp->last;
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unsigned allocByteCnt = dataByteCnt + sizeof(unsigned);
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// go backwards down the chain looking for the first block with enough
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// free space to hold the allocation (we go backward under the assumption
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// that the last block is most likely to have available space)
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while( (lbp != NULL) && ((lbp->endPtr - lbp->nextPtr) < allocByteCnt) )
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lbp = lbp->prevBlkPtr;
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// no space large enough to provide the requested memory - allocate a new block
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if( lbp == NULL )
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lbp = _cmLHeapAllocBlock(lhp, cmMax( lhp->dfltBlockByteCnt, allocByteCnt ));
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assert( lbp != NULL );
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// store the sizeof the allocation at the beginning of the allocated block
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*(unsigned*)lbp->nextPtr = allocByteCnt;
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// the returned block ptr begins just after the block size
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retPtr = lbp->nextPtr + sizeof(unsigned);
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lbp->nextPtr += allocByteCnt;
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return retPtr;
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}
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void* _cmLHeapAllocCb(void* funcArgPtr, unsigned byteCnt)
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{
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cmLHeap_t* p = (cmLHeap_t*)funcArgPtr;
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assert( p != NULL );
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return _cmLHeapAlloc(p,byteCnt);
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}
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bool _cmLHeapFree( cmLHeap_t* lhp, void* dataPtr )
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{
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if( dataPtr == NULL )
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return true;
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cmLhBlock_t* lbp = lhp->first;
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// locate the block containing the area to free
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while( (lbp != NULL ) && (((char*)dataPtr < lbp->basePtr) || ((char*)dataPtr >= lbp->endPtr)))
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lbp = lbp->nextBlkPtr;
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// the pointer must be in one of the blocks
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if( lbp == NULL )
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return false;
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unsigned* allocPtr = ((unsigned*)dataPtr)-1;
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unsigned dataByteCnt = *allocPtr - sizeof(unsigned);
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// the data to be freed is at the end of the blocks space ...
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if( dataPtr == lbp->nextPtr - dataByteCnt )
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lbp->nextPtr = (char*)allocPtr; // ... then make it the space to alloc
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else
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lbp->freeCnt += *allocPtr; // ... otherwise increase the free count
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//(freeCnt tracks unused space that is not at the end of the block and therefore cannot be reused.)
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// if all the space for this block has been freed then the
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// next space to allocate must be at the base
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if( lbp->freeCnt == lbp->endPtr - lbp->basePtr )
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lbp->nextPtr = lbp->basePtr;
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return true;
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}
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bool _cmLHeapFreeCb(void* funcArgPtr, void* ptr)
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{
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cmLHeap_t* lhp = (cmLHeap_t*)funcArgPtr;
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return _cmLHeapFree(lhp,ptr);
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}
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cmLHeapH_t cmLHeapCreate( unsigned dfltBlockByteCnt, cmCtx_t* ctx )
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{
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cmLHeapH_t h;
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cmLHeap_t* lhp = cmMemAllocZ( cmLHeap_t, 1 );
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// We are not going to defer freeing each allocation because it will result in using
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// a lot of memory. Commenting out this line however would result in
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// checking all allocations for corruption during cmLHeapDestroy().
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// This may be a good way to hunt down subtle memory corruption problems.
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// See cmLHeapDestroy() and cmLHeapClear() for kDeferFreeMMFl related
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// items.
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unsigned mmFlags = cmClrFlag(ctx->mmFlags,kDeferFreeMmFl);
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if( cmMmInitialize(&lhp->mmH,_cmLHeapAllocCb,_cmLHeapFreeCb,lhp,ctx->guardByteCnt,ctx->alignByteCnt,mmFlags,&ctx->rpt) != kOkMmRC )
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return cmLHeapNullHandle;
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lhp->dfltBlockByteCnt = dfltBlockByteCnt;
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_cmLHeapAllocBlock( lhp, lhp->dfltBlockByteCnt );
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h.h = lhp;
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return h;
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}
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void cmLHeapDestroy( cmLHeapH_t* hp )
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{
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if( hp==NULL || hp->h == NULL )
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return;
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cmLHeap_t* lhp = _cmLHeapHandleToPtr(*hp);
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// check for corruption
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if( cmIsFlag(cmMmInitializeFlags(lhp->mmH),kDeferFreeMmFl))
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cmMmReport(lhp->mmH, kSuppressSummaryMmFl | kIgnoreLeaksMmFl | kIgnoreNormalMmFl );
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cmMmFinalize(&lhp->mmH);
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cmLhBlock_t* lbp = lhp->first;
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while( lbp != NULL )
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{
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cmLhBlock_t* t = lbp;
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lbp = lbp->nextBlkPtr;
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cmMemFree(t);
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}
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cmMemPtrFree(&hp->h);
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}
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void* cmLHeapAllocate(cmLHeapH_t h, void* orgDataPtr, unsigned eleCnt, unsigned eleByteCnt, unsigned flags, const char* fileStr, const char* funcStr, unsigned fileLine )
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{ return cmMmAllocate(_cmLHeapHandleToPtr(h)->mmH,orgDataPtr,eleCnt,eleByteCnt,flags,fileStr,funcStr,fileLine); }
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cmChar_t* cmLHeapAllocStr(cmLHeapH_t h, void* orgDataPtr, const cmChar_t* str, unsigned charCnt, unsigned flags, const char* fileStr, const char* funcStr, unsigned fileLine )
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{
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if( str == NULL )
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return NULL;
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unsigned n = charCnt + 1;
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cmChar_t* cp = cmLHeapAllocate(h, orgDataPtr, n, sizeof(cmChar_t), flags, fileStr, funcStr, fileLine );
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strncpy(cp,str,n);
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cp[n-1] = 0;
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return cp;
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}
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void cmLHeapFree( cmLHeapH_t h, void* dataPtr )
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{
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cmLHeap_t* lhp = _cmLHeapHandleToPtr(h);
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cmMmFree(lhp->mmH,dataPtr);
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}
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void cmLHeapFreeDebug( cmLHeapH_t h, void* dataPtr, const char* fileName, const char* funcName, unsigned fileLine )
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{
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cmLHeap_t* lhp = _cmLHeapHandleToPtr(h);
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cmMmFreeDebug(lhp->mmH,dataPtr,fileName,funcName,fileLine);
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}
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void cmLHeapFreePtr( cmLHeapH_t h, void** ptrPtr )
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{
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assert( ptrPtr != NULL );
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cmLHeapFree(h,*ptrPtr);
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*ptrPtr = NULL;
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}
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void cmLHeapFreePtrDebug( cmLHeapH_t h, void** ptrPtr, const char* fileName, const char* funcName, unsigned fileLine )
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{
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assert( ptrPtr != NULL );
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cmLHeapFreeDebug(h,*ptrPtr,fileName,funcName,fileLine);
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*ptrPtr = NULL;
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}
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unsigned cmLHeapDefaultBlockByteCount( cmLHeapH_t h )
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{
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cmLHeap_t* p = _cmLHeapHandleToPtr(h);
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return p->dfltBlockByteCnt;
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}
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unsigned cmLHeapGuardByteCount( cmLHeapH_t h )
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{
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cmLHeap_t* p = _cmLHeapHandleToPtr(h);
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return cmMmGuardByteCount( p->mmH );
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}
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unsigned cmLHeapAlignByteCount( cmLHeapH_t h )
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{
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cmLHeap_t* p = _cmLHeapHandleToPtr(h);
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return cmMmAlignByteCount( p->mmH );
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}
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unsigned cmLHeapInitializeFlags( cmLHeapH_t h )
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{
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cmLHeap_t* p = _cmLHeapHandleToPtr(h);
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return cmMmInitializeFlags( p->mmH );
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}
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bool cmLHeapIsValid( cmLHeapH_t h )
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{ return h.h != NULL; }
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void cmLHeapClear( cmLHeapH_t h, bool releaseFl )
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{
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cmLHeap_t* p = _cmLHeapHandleToPtr(h);
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// If we are deferring freeing memory until the heap is destroyed
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// then we cannot clear the block list in this function.
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// If the block list was cleared here then later calls to _cmLHeapFreeCb()
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// would fail because the pointers to the deferred allocations
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// would no longer exist in any of the blocks.
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if( cmIsFlag(cmMmInitializeFlags(p->mmH),kDeferFreeMmFl))
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return;
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cmLhBlock_t* bp = p->first;
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while( bp != NULL )
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{
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bp->nextPtr = bp->basePtr;
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bp->freeCnt = bp->endPtr - bp->basePtr;
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cmLhBlock_t* nbp = bp->nextBlkPtr;
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if( releaseFl )
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cmMemFree(bp);
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bp = nbp;
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}
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if( releaseFl )
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{
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p->first = NULL;
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p->last = NULL;
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}
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}
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cmMmRC_t cmLHeapReportErrors( cmLHeapH_t h, unsigned mmFlags )
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{
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cmLHeap_t* lhp = _cmLHeapHandleToPtr(h);
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return cmMmReport(lhp->mmH, mmFlags );
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}
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void cmLHeapReport( cmLHeapH_t h )
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{
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cmLHeap_t* lhp = _cmLHeapHandleToPtr(h);
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cmLhBlock_t* lbp = lhp->first;
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unsigned i;
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for(i=0; lbp != NULL; ++i )
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{
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printf("%u : %li available %i free\n", i, lbp->endPtr-lbp->nextPtr, lbp->freeCnt );
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lbp = lbp->nextBlkPtr;
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}
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printf("\n");
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}
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void cmLHeapTestPrint( void* userPtr, const char* text )
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{
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fputs(text,stdin);
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}
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void cmLHeapTest()
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{
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int i = 0;
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int n = 5;
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unsigned guardByteCnt = 8;
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unsigned alignByteCnt = 16;
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unsigned mmFlags = kTrackMmFl; // | kDeferFreeMmFl;
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cmCtx_t ctx;
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cmCtxSetup(&ctx,"Heap Test",cmLHeapTestPrint,cmLHeapTestPrint,NULL,guardByteCnt,alignByteCnt,mmFlags);
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cmLHeapH_t h = cmLHeapCreate( 16, &ctx );
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void* pArray[ n ];
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cmLHeapReport(h);
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for(i=0; i<n; ++i)
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{
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unsigned byteCnt = (i+1) * 2;
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printf("Allocating:%li\n",byteCnt+sizeof(unsigned));
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pArray[i] = cmLHeapAlloc(h,byteCnt);
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cmLHeapReport(h);
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}
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for(i=n-1; i>=0; i-=2)
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{
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printf("Freeing:%li\n",((i+1) * 2) + sizeof(unsigned));
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cmLHeapFree(h,pArray[i]);
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cmLHeapReport(h);
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}
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cmLHeapReportErrors(h,0);
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cmLHeapDestroy(&h);
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}
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