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Can anyone summarize what is the correct usage of realloc()?

What do you do when realloc() fails?

From what I have seen so far, it seems that if realloc() fails, you have to free() old pointer. Is that true?

Here is an example:

   1.  char *ptr = malloc(sizeof(*ptr) * 50);
   2.  ...
   3.  char *new_ptr = realloc(ptr, sizeof(*new_ptr) * 60);
   4.  if (!new_ptr) {
   5.      free(ptr);
   6.      return NULL;
   7.  }

Suppose realloc() fails on line 3. Am I doing the right thing on line 5 by free()ing ptr?

Thanks, Boda Cydo.

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1  
What you have there looks good, as long as you have checked that the original malloc was successful. –  Robert Groves Jul 25 '10 at 22:19
    
Actually, even if the original malloc() fails, realloc() is OK with a null pointer for its first argument - it then behaves like malloc(), and will (in this context) presumably fail too (because if malloc() cannot allocate 50 bytes, realloc() probably can't allocate 60 either). –  Jonathan Leffler Jul 26 '10 at 4:08

4 Answers 4

up vote 13 down vote accepted

From http://www.c-faq.com/malloc/realloc.html

If realloc cannot find enough space at all, it returns a null pointer, and leaves the previous region allocated.

Therefore you would indeed need to free the previously allocated memory still.

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It depends on what you want to do. When realloc fails, what is it you want to do: free the old block or keep it alive and unchanged? If you want to free it, then free it.

Keep in mind also, that in C89/90 if you make a realloc request with zero target size, realloc function may return a null pointer even though the original memory was successfully deallocated. This was a defect in C89/90, since there was no way to tell the success from failure on null return.

In C99 this defect was fixed and the strict relationship between null return and success/failure of reallocation was guaranteed. In C99 null return always means total failure of realloc.

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As far as I can tell this is just wrong. C99 does not guarantee non-null return when the target size is 0; it allows either behavior. And aside from some GNU zealots, most people seem to consider the return 0 behavior to be the better choice. Moreover if the target size is 0, realloc cannot fail, so there's no need to check for failure. –  R.. Jul 25 '10 at 22:33
    
@R..: No, it isn't. You simply misunderstood the point. It is true that in C99 realloc with 0 size can return null or non-null, however in C99 the relationships "null means failure" and "non-null means success" was made strict. I.e. if realloc returns null in C99, the original memory is guaranteed to be not deallocated. In C89/90 this relationship was not strict: if you called realloc with 0 size and got null result, you con't tell whether the memory was deallocated or not. –  AnT Jul 25 '10 at 22:36
    
@R..: And your last remark about "realloc cannot fail" is incorrect. The language specification does not guarantee (and never did) that realloc with zero size cannot fail. It can. –  AnT Jul 25 '10 at 22:39
    
OK, I was reading the POSIX version of the documentation, which has the added sentence: "If size is 0 and ptr is not a null pointer, the object pointed to is freed." Contrary to policy, POSIX failed to mark this sentence "CX". Further reading in other sources suggests that C89 had the correct requirement that realloc with target size 0 act as free, and C99 broke it. Any real worthwhile implementation will follow POSIX anyway, at least... –  R.. Jul 25 '10 at 22:49
    
I can find no such requirement you claim exists. Can you provide a citation? –  R.. Jul 25 '10 at 22:54

If realloc fails I don't think you would want to delete the original block since you will lose it. It seems like realloc will resize the old block (or return a pointer to a new location) and on success will return a pointer to the old block (or new location) and on failure will return NULL. If it couldn't allocate a new block the old block is untouched.

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Edit: Correction, some people are bashing me for what I said, the way you allocated your pointer seems to be best practice among them, I was taught to always go with type casts in the sizeof(), but apparently your way is more correct, so disregard what I said =)

Taking a peek at http://en.wikipedia.org/wiki/Malloc#realloc before might have done you some good.

You don't quite understand sizeof() - it has the value of the size of the argument you pass to it in bytes. For example, sizeof(int) will be 4 on most 32 bit systems but you should still use sizeof(int) instead of 4 because compiling your code on a 64 bit system (just as an example) will make that value equal to 8 and your code will still compile fine. What are you allocating memory for? Pointers? If so you should use sizeof(void*) instead (you can say sizeof(int*) but it's common convention not to mention to the compiler what you want to store at those pointers, since all pointers should be the same size - so most programmers say sizeof(void*)), if you need space for characters use sizeof(char) and so on.

You are however right to store the return value of realloc() in a new pointer and check it, though a lot of programmers will assume the system always has enough memory and get away with it.

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His use of sizeof is perfectly fine and correct. sizeof(*ptr) is the size of the thing pointed to by ptr, so ptr = malloc(sizeof(*ptr) * N); is correct and idiomatic (although personally I would write it as ptr = malloc(N * sizeof ptr[0]);, but that is just style) –  caf Jul 25 '10 at 22:28
    
Quite the opposite: the way the OP does in his code is exactly how it should be done. Memory allocation requests should be made as type-independent as possible: no cast on the result of memory allocation function and no type names under the sizeof. The strange habit of using type names under sizeof in malloc requests (and such) has long ago earned its place in the garbage bin of C programming. Type names belong in declarations. If it is not a declaration, type names are not allowed (as much as possible). –  AnT Jul 25 '10 at 22:30
    
foo = malloc(count * sizeof *foo); is a standard idiom for making sure you get the right size. You're treating the author of the question like he knows nothing about C while missing something pretty fundamental yourself.. –  R.. Jul 25 '10 at 22:35

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