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Suppose I have a char pointer which points to some string in memory.
and suppose I want to copy that string to some other place in memory.

void cpy(char **dst, char *src)
{
    *dst = (char *) realloc(*dst, strlen(src) + 1);
    memcpy(*dst, src, strlen(src) + 1);
}

(Assume memory allocation is successful, and src is not NULL)
What if I call this function like this:

char *str = malloc(14);
memcpy(str,"hello, world!", 14);
cpy(&str,str+7);

Now I would expect srt to point to the string "world!" (Which it does in my tests).
But what concerns me is that in this call to cpy, *dst and src actually point to different locations of the same string. And, when calling realloc on *dst, it's possible that this memory will be freed. But in the next line I'm trying to copy from that place with memcpy.

So the questions is: Is there something wrong with it?
Or to put it another way - is it okay to free memory, and use it immediately afterwards?

Thanks.

Note: The example was updated so that realloc is called on memory that was obtained with malloc.

share|improve this question
    
If you're still doing things to the memory, you are not done with it. So don't call free until you are done with it. –  prprcupofcoffee Nov 20 '12 at 21:25
    
I've updated the answer. –  Kerrek SB Nov 20 '12 at 21:35
    
Thank you, @kerrekSB, your update answers my original intention in the question. If you don't mind, I'd be glad to know why it's not allowed to access memory in such a way (that was freed just in the previous line, and has no yet had the chance to be altered by anything else). –  EyalAr Nov 20 '12 at 21:40
1  
How can you guarantee it hasn't been altered by something else. In a multi threaded program, freed memory could have been reallocated in another thread. The main point though is this, accessing memory that you have "freed" or said "I am done with that" is undefined behavior and thus should be avoided. –  pstrjds Nov 20 '12 at 21:42
1  
@EyalAr: It's just not allowed. The C standard is a list of things you are allowed to do, not a list of things that are forbidden -- the latter wouldn't be possible! The only thing you are allowed after realloc is access the new memory. The system may well have returned the old memory to the OS, or done other things with it. –  Kerrek SB Nov 20 '12 at 21:56

2 Answers 2

up vote 9 down vote accepted

Everything is wrong with this. It is outright undefined behaviour to call realloc on a pointer that was not obtained with malloc etc.

As @Daniel Fischer points out, it is also undefined behaviour to use memcpy on overlapping regions of memory (in which case you should use memmove), so you have to be careful.


Update: After your substantial edit, the question is quite different. It is now equivalent to this condensed version:

char * s = malloc(14);
strcpy(s, "hello, world!");

char * p = realloc(s, 14);

memcpy(p, s, 14);

This is also undefined behaviour, because you are not allowed to access the memory pointed to by s anymore after a successful realloc, and you're not allowed to access the memory pointed to by p after an unsuccessful realloc.

share|improve this answer
2  
Also, calling memcpy with overlapping memory blocks is UB. –  Daniel Fischer Nov 20 '12 at 21:24
1  
+42 - Simply for the comment "Everything is wrong with this". I wish I could upvote this a bunch of times. –  pstrjds Nov 20 '12 at 21:25
    
ok, good point, but that's not the point of the question. let's say i'm calling realloc on a memory that was obtained with malloc. what then? –  EyalAr Nov 20 '12 at 21:25
    
I've updated the example. The question is still relevant. –  EyalAr Nov 20 '12 at 21:29
    
@DanielFischer: Thanks for that, I've included that in the post! –  Kerrek SB Nov 20 '12 at 21:29

The implicit assumption in your example is that it is permitted for cpy to free memory it didn't allocate. It's kind of a dodgy assumption, but as long it's intentional, that's OK. Use malloc and free separately rather than realloc in that case:

void cpy(char **dst, char *src)
{
    // obtain completely new memory (realloc might do this anyway)
    char* new = malloc(strlen(src) + 1);

    // duplicate the string
    memcpy(new, src, strlen(src) + 1);

    // release the original memory now that we know we are done with it
    free(*dst);

    // indicate where to find the new string
    *dst = new;
}

This still isn't a great idea, because there's no way to know what other variables might be pointing at that memory that you're freeing, but if you have a way to make that guarantee, this is the kind of code you need.

share|improve this answer
    
Thanks for the explanation! –  EyalAr Nov 20 '12 at 21:46

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