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I am implementing my own memory pool in C and I am having a problem with finding out how many bytes the block of memory pointed to by *ptr is (size_t poolSize(void *ptr)). The code is just to show part of what I have and where the problem is, I know I have to deal with alignment and some other stuffs. I am also new to C which I am self-learning so I'm still learning how pointers work (my problem might be with pointers).

#include <stdio.h>
#include <stdlib.h>

typedef struct NODE MemPool;

struct NODE
{
  char * next;
  char * end;
};

MemPool * poolCreate( size_t size )
{
    MemPool * newPool = (MemPool *)malloc( size + sizeof(MemPool) );
    newPool->next = (char*)&newPool[1];
    newPool->end = newPool->next + size;

    return newPool;
}

void * poolAlloc( MemPool *pool, size_t size )
{
    void *result = NULL;

    if( (pool->end - pool->next) < size )
        return NULL;

    result = (void *)pool->next;
    pool->next += size;

    return result;
}

size_t poolSize(void *ptr)
{
    return ((size_t)&ptr);
}

void poolDestroy( MemPool *pool )
{
    free(pool);
}
  • What does ptr point to when poolSize is called? Does it point to a pool? Or to an allocation that came from the pool? Or what? – kaylum Apr 7 '16 at 5:55
  • 1
    You're casting a pointer to size_t which is very probably very wrong. Perhaps you wanted to cast the pointer to size_t* and dereference it? – Antti Haapala Apr 7 '16 at 5:56
  • Where do you keep data? The NODE struct does not have a place for it. Further, do not calculate sizes. Add a member holding the size to your NODE struct – GMichael Apr 7 '16 at 6:00
  • Consider adding a header (or add to your NODE struct) that contains the length of the chunk you're dealing with. – Ricky Mutschlechner Apr 7 '16 at 6:10
  • You should add an executable example that manifests the problem, if you do it would be solved in less than an hour. – Harry Apr 7 '16 at 7:04
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how many bytes the block of memory pointed to by *ptr

No, you don't have a standard way to find the size of allocated memory from the pointer itself. You have to keep track of the size yourself when you are doing malloc. or you have to store the size of the allocated memory in another variable.

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Not sure what exactly you want to do by the code, but result is next:
1.

MemPool * newPool = (MemPool *)malloc( size + sizeof(MemPool) );

allocate memory:

[[ sizeof(MemPool) ][ size ]]
^
|
newPool

2.

newPool->next = (char*)&newPool[1];

set 'next' pointer to [size] part of the allocated memory:

[[ sizeof(MemPool) ][ size ]]
^                   ^
|                   |
newPool             newPool->next

3.

newPool->end = newPool->next + size;

set 'end' pointer to end of the allocated memory:

[[ sizeof(MemPool) ][ size      ]]
^                   ^             ^
|                   |             |
newPool             newPool->next newPool->end

Maybe 'next' should point to some next pool node? If it is a pointer to custom memory then it useless due may be always calculated as:

... = newPool + 1;

Size of custom memory may be calculated as:

... = newPool->end - (char*)(newPool + 1);

According to

size_t poolSize(void *ptr)

you cannot get size of the memory just by void pointer. If it is a pointer to part of pool node then start of the node may be found as:

MemPool * pool = (MemPool*)(ptr) - 1;

and then used 'end' pointer find destination size.

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This is an ambitious project for a beginner. Probably the best advice I could give would be to find an implementation written by someone else and study it until you understand it.

The answer to your question requires a cast. Assuming that ptr is a void pointer to the base of the arena block:

size_t poolSize(void *ptr) {
    MemPool* pool = (MemPool*)ptr;
    return (size_t)(pool->next - (char*)ptr);
}

Hope it helps.

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