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I would like to convert malloc() to calloc(). I am confused about using calloc() in this example because it takes 2 arguments while malloc() only one. So it's correct with mine:

(byteBuffer)calloc(sizeof(byteBufferStruct), len + 1));

The example:

typedef struct byte_buf {
    size_t  len;
    uint8_t  *bytes;
} byteBufferStruct, *byteBuffer;


byteBuffer mallocByteBuffer(size_t len)
{
    byteBuffer retval;
    if((retval = (byteBuffer) malloc(sizeof(byteBufferStruct) + len + 1)) == NULL) return NULL;
    retval->len = len;
    retval->bytes = (uint8_t *) (retval + 1) ; /* just past the byteBuffer in malloc'ed space */
    return retval;
}
share|improve this question
    
What is confusing? The first parameter to calloc is num and the second one is size. –  ta.speot.is Dec 18 '13 at 7:55
    
malloc(n) is identical to calloc(n,1) –  mvp Dec 18 '13 at 7:56
    
i am confused about the <num> –  user3106115 Dec 18 '13 at 7:59
    
Well you want to allocate one of them so... –  ta.speot.is Dec 18 '13 at 8:02
    
@mvp: no, the other way around: malloc(n) ~=> calloc(1, n) eg: malloc(100*sizeof(char)); ~=> calloc(100, sizeof(char));. I know: sizeof(char) is 1, but I like to see what I'm allocating memory for –  Elias Van Ootegem Dec 18 '13 at 8:18

2 Answers 2

up vote 2 down vote accepted

First: Both malloc() and calloc() return void *, which in C means you should not cast the return value.

Comparing the signatures of the functions, we have:

  • void * malloc(size_t size);
  • void * calloc(size_t nmemb, size_t size);

Basically, the argument to malloc() is the product of the arguments to calloc().

You can convert by just setting one of them to 1:

void * malloc_to_calloc(size_t size)
{
   return calloc(1, size);
}

Since the nmemb (number of members) to calloc() doesn't affect the actual structure of the memory in any way, this is safe.

Now we can use this to implement your allocation function (for clarity):

byteBuffer mallocByteBuffer(size_t len)
{
  byteBuffer b = malloc_to_calloc(len + 1 + sizeof *b);
  if(b != NULL)
  {
    b->len = len;
    b->bytes = (uint8_t *) (b + 1);
  }
  return b;
}

Note that sizeof is not a function. Also note the glaring asymmetry of asterisks that you get when you typedef away the asterisk. I don't recommend ever doing that.

share|improve this answer
    
it's clear now, thank you very much! (need to wait 6 min to mark it as answered) –  user3106115 Dec 18 '13 at 8:00
    
I have read a long answer of you 2 months ago about not casting void (still remember your name^^). I will follow your suggestion. The code above is taken from Apple. They cast them, so newbee like me will make the same mistake. –  user3106115 Dec 18 '13 at 8:18
    
@user3106115 Great! That answer is very likely the one I linked in my answer above, of course. –  unwind Dec 18 '13 at 8:23
    
Yes, it's. Thank you again! –  user3106115 Dec 18 '13 at 8:32

Instead of doing

if((retval = (byteBuffer) malloc(sizeof(byteBufferStruct) + len + 1)) == NULL) return NULL;

do

if (NULL == (retval = calloc(1, sizeof(byteBufferStruct) + len + 1))) 
  return NULL;
share|improve this answer
    
Thank you very much, alk! –  user3106115 Dec 18 '13 at 8:06

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