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I realise this code is faulty. However, I came across some curious behaviour which I was wondering if somebody could explain.

Example 1 :

   char *foo;
   scanf("%s",foo);
   printf("%s",foo);

Output is : (null).

Example 2 :

  int i;
  char *foo;
  scanf("%s",foo);
  printf("%s",foo);

Output is : val of foo !

Why would the presence of int i cause this to "work"?

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2  
It doesn't work. It happens to seem to do what you expect it to, but it's undefined behaviour and therefore a serious bug. –  delnan Feb 2 '11 at 22:19
1  
From what you posted, foo has no value. It is a pointer to an unassigned piece of memory. –  SlappyTheFish Feb 2 '11 at 22:20
    
I guess it would be quite annoying found this kind of bug in your own programs. ;) –  BlackBear Feb 2 '11 at 22:22
    
Even if you do figure out how it's "supposed" to work, using %s with scanf is totally insecure and there is no legitimate use of it. You don't know how big the buffer needs to be. There is no way to know. This will always be a buffer overflow. –  asveikau Feb 2 '11 at 22:23

1 Answer 1

up vote 6 down vote accepted

foo is a pointer, but you haven't set it to point at any memory that you've allocated, so instead it just has a random value at startup, and hence is pointing at some random section of memory. Hence, anything could happen (i.e. undefined behaviour).

The presence of int i just changes the position of foo on the stack, and hence the particular random value that it has. You shouldn't read anything meaningful into this differing behaviour, as it's still undefined.

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