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Can a call to free() fail in any way?

For example:

free(NULL);
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@aaa: What's "null free"? –  sharptooth Mar 15 '11 at 7:42

6 Answers 6

up vote 12 down vote accepted

Freeing a NULL pointer cannot fail. And free doesn't return any error, but freeing unallocated memory, already freed memory or the middle of an allocated block is undefined behaviour - it may cause a memory error and the program may abort (or worse, it will corrupt the heap structure and crash later).

Or, even worse than that, keep running but totally corrupt your data and write it to disk without you realising :-)

The relevant portion of the standard (C99) is section 7.20.3.2:

#include <stdlib.h>
void free(void *ptr);

The free function causes the space pointed to by ptr to be deallocated, that is, made available for further allocation. If ptr is a null pointer, no action occurs. Otherwise, if the argument does not match a pointer earlier returned by the calloc, malloc, or realloc function, or if the space has been deallocated by a call to free or realloc, the behavior is undefined.

The free function returns no value.

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4  
Not will cause, may cause. The really annoying thing about undefined behaviour is that it sometimes works. –  paxdiablo Mar 15 '11 at 7:43
6  
@paxdiablo: No, the real annoying thing is that it often persistently works on some widespread platform so there's a gazillion of developers believing that it's okay, because "they been doing it for ages". –  sharptooth Mar 15 '11 at 7:48
2  
+1 for distinguishing between "failure" and undefined behavior. You're right, free has no failure cases. Invalid inputs causing UB are a separate thing. –  Steve Jessop Mar 15 '11 at 10:04

free(NULL) does nothing; free on a pointer that wasn't allocated with the same allocator (malloc, calloc, etc.) or was already freed is undefined. Since free returns void, the only way it can fail is by crashing (e.g. segfault).

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Unless you invoke undefined behavior (like "double-free" or try to free() a string literal) free() can't fail.

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free(NULL);

Calling free() with a null pointer is permitted and will not cause an error - See: free() - Opengroup

Calling free with a previously free'd pointer will usually cause a segment violation and your program to be terminated.

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Yes it can fail in multiple situations. E.g.

  1. You free something that was not allocated dynamically E.g. variables on stack
  2. You allocate a pointer and try to free pointer + 1
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Depending on the implementation free could fail if there is memory corruption, so something like

char *p = malloc(1000);
*(p-1)=7;
free(p);

Although that is a contrived example similar things can happen by running of the end or start of an array. The first you may know of it is a protection faul in 'free'.

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