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Is it possible to allocate 7 bytes of memory and just free the first 3 bytes to form a 4 byte block, through any Windows APIs.

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what for? if you better describe what you want to achieve you would get meaningful answers... –  Davide Piras Mar 11 '11 at 13:16
    
Why would you do this? Why not just allocate 4 bytes to begin with? –  mdm Mar 11 '11 at 13:18
    
Do a realloc and let the implementation worry about how it should get you those 4 bytes you need. If you need to be sure (because you need to use the same pointer) implement a memory allocator yourself. PS: I don't think windows offers any mechanism for keeping the pointer. You could always use a length parameter for your 7 byte memory block that tells you how much memory you are "allowed" to use from it. –  RedX Mar 11 '11 at 13:26
    
AFAIR Windows itself manages memory in blocks of 4K. Lower values are managed by the memory manager of your c compiler. –  Robert Mar 11 '11 at 14:30
    
I need the allocated memory address as in multiple of 4. My addresses should be like 400, 404,408,40c etc., hence allocating 7 and finding the multiple of 4 in it. –  Muthukumar Palaniappan Mar 12 '11 at 4:10

3 Answers 3

up vote 1 down vote accepted

No.

But you could very well use memmove and realloc to reduce the amount of memory that is used:

memmove(ptr, ptr + 3, 4);
ptr = realloc(ptr, 4)

But that's most likely slower than just keeping the memory at its initial size.

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You could use memmove() to move the last four bytes to the start of the allocated block then use realloc() to shrink it down to four bytes.

But why would you ever want to? You can always just have another pointer to the last four bytes of malloced memory like this:

typedef unsigned char uint8;

uint8* psevenbytes = (uint8*)malloc(sizeof(uint8) * 7);

if (psevenbytes != NULL)
{
    uint8* pfourbytes = psevenbytes + 3;

    // ... do stuff

   free(psevenbytes);
   psevenbytes = NULL;
}

Or you could use a struct.

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If i Have another pointer to point the 4th byte and pass on through the program, I am not sure I could release the first 3 bytes as my pointer pointing the 4th byte now. can you confirm –  Muthukumar Palaniappan Mar 11 '11 at 13:50
    
@Beetle: That is correct, in that code you must free the whole block using the psevenbytes pointer. If you want to free part of it you'd have to use memmove/realloc as discussed - but why would you need to do this?? –  GrahamS Mar 11 '11 at 13:59
    
I need the allocated memory address as in multiple of 4. My addresses should be like 400, 404,408,40c etc., hence allocating 7 and finding the multiple of 4 in it. IS there any other way better than this? –  Muthukumar Palaniappan Mar 12 '11 at 4:10
    
@Beetles: That is a very unusual requirement! Any particular reason? On a 32-bit system the chances are that it will be aligned on a 4-byte boundary. On an embedded system you can usually directly specify the addresses of particular variables. I suggest you post a more general question asking how you force memory allocation on a four-byte boundary and see what answers come up. –  GrahamS Mar 14 '11 at 9:29

No. The Windows heap allocation APIs are required to return a value which is naturally aligned (in other words, the block address % sizeof(void *) == 0). For a 32 bit processor that means that every allocation is 4 byte aligned. If there was a way of doing what you want, the newly reallocated block would be aligned on a 3 byte boundary (the initial 7 byte block would be aligned on a 4 byte boundary, adding 3 bytes creates a 3 byte aligned pointer.

As others have suggested, copying the memory down gets you the closest to what you've asked for. But there will be some performance cost associated with that.

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