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I have a buffer and want to do a test to see if the buffer has sufficient capacity I.e. find number of elements I can add to the buffer.

char *buffer = (char *)malloc(sizeof(char) * 10);

Doing a

int numElements = sizeof(buffer); 

does not return 10, any ideas on how I can accomplish this?

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possible duplicate of How can I get the size of an array from a pointer in C? –  dsolimano May 17 '12 at 17:42
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6 Answers

up vote 0 down vote accepted

buffer is just a pointer without size information. However the malloc() routine will hold the size of the allocation you made so when you free() it, it frees the right amount of space. So unless you want to dive in the malloc() functionality, I recommend you just save the size of the allocation yourself. (for a possible implementation, see the example in the other API answer).

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You cannot make such a test. It is your own responsibility to remember how much memory you allocated. If the buffer is given to you by someone else, demand that they pass the size information as well, and make it their responsibility to pass the correct value or have the program die.

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For GNU glibc:

SYNOPSIS
   #include <malloc.h>

   size_t malloc_usable_size (void *ptr);

DESCRIPTION The malloc_usable_size() function returns the number of usable bytes in the block pointed to by ptr, a pointer to a block of memory allocated by malloc(3) or a related function.

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Since buffer is a pointer (not an array), the sizeof operator returns the size of a pointer, not the size of the buffer it points to. There is no standard way to determine this size, so you have to do the bookkeeping yourself (i.e. remember how much you allocated.)

BTW, it's the same for

 char *p = "hello, world\n"; /* sizeof p is not 13. */

Interestingly,

 sizeof "hello, world\n"

is 14. Can you guess why?

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Are you really passing a question back at the questioner? That's not really why we're here... –  Evert May 17 '12 at 16:38
3  
I want to stimulate a person's way of thinking and finding answers themselves. This is what a good teacher should do. –  Jens May 17 '12 at 16:41
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struct buffer
{
  void
    *memory

  size_t
    length;
};

void *buffer_allocate( struct buffer *b, size_t length )
{
  assert( b != NULL );

  b->memory = malloc( length )
  b->length = length;

      // TRD : NULL on malloc() fail
      return( b->memory );
}

int buffer_valid( struct buffer *b, size_t length )
{
  assert( b != NULL );

  if( b->memory == NULL or length > b->length )
    return( 0 );

  return( 1 );
}

void *buffer_get( struct buffer *b )
{
  assert( b != NULL );

  return( b->memory );
}

Use the API and not malloc/free and you can't go wrong.

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If you really wanted to be clever, you could write your own malloc that used the system malloc to allocate four extra bytes, store the length allocated there and returned a pointer after this length. Then you could have a getSize method that used pointer arithmetic to grab this out again. It lets you use calls that look like malloc and free. –  Steven Burnap May 17 '12 at 16:49
    
I'm not sure that's clever - it means your personal malloc now differs in its behaviour to everyone elses. I've come to the view adjusting core function behaviour is risky. It underpins everything else. –  user82238 May 17 '12 at 17:00
1  
I knew one company, over-rode malloc so that everything it allocated went onto freelists, and free just returned the element to the freelist. Appalling, both in what it does and actually also in how it was implemented (not surprising, given how bad the idea is) and so deeply embedded in the code it could never be removed. –  user82238 May 17 '12 at 17:01
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sizeof is used to calculate size for actual objects, not pointers for objects in memory. It returns size of structs or primitives. I mean it will work, but will give you size of the pointer, not the structure it points to. To get the length of any sort of array use :

strlen(buffer)

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Using strlen() only works on strings (i.e. ending with a NUL-byte). In general, you can't expect strlen to give you "the length of any sort of array". In fact it's the other way round: sizeof does give you the size of any sort of array. –  Jens May 17 '12 at 16:51
    
so, the right way would be: sizeof(*buffer)? –  Angrius May 18 '12 at 15:54
    
No, since the declaration is char *buffer, sizeof *buffer is sizeof char which is 1. There is no way to determine the size of a dynamically allocated buffer other than to remember how you called malloc/calloc/realloc. But for arrays declared like char foo[N] the sizeof foo is N. –  Jens May 18 '12 at 16:22
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