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The code below comes from a homework assignment discussing heap-overflow exploitations, which I understand as a concept. What I don't understand is what is going on exactly with malloc and the pointers in this code example. Obviously both pointers are pointing to the same space in the heap, but why is this? Wouldn't malloc reserve the space for buf1 and then reserve another space for buf2?

int main(int argc, const char * argv[])
{

    int diff, size = 8;
    char *buf1, *buf2;
    buf1 = (char * )malloc(size);
    buf2 = (char *)malloc(size);
    diff = buf2-buf1;
    memset(buf2, '2', size);
    printf("BEFORE: buf2 = %s",buf2);
    memset(buf1, '1', diff +3);
    printf("AFTER: buf2 = %s", buf2);
    return 0;
}

This code produces the output

BEFORE: buf2 = 22222222AFTER: buf2 = 11122222

Many thanks. :)

share|improve this question
    
How did this not AV/segfault? The miracles of UB:) –  Martin James Apr 28 at 0:29
    
There is quit a bit wrong with this code. 1. You're not passing null terminated strings to printf. 2. You're assuming that some reliable relationship between the address of the two pointers exists. 3. Don't cast the return value of malloc. –  Ed S. Apr 28 at 0:29
    
@EdS. oh yeah... –  Martin James Apr 28 at 0:29
    
Why do you think buf1 and buf2 are pointing to the same space? If they were, then they'd be equal, and diff would be 0. Is diff 0? Unlikely. (BTW, argv shouldn't be const and buf2 should be null-terminated.) –  ooga Apr 28 at 0:30
    
@MartinJames: Yeah... –  Ed S. Apr 28 at 0:30

1 Answer 1

up vote 4 down vote accepted

Explanation of the result

buf1 and buf2 are not pointing to the same space.

Your result can be explained as follows.

By luck the allocations gives the following memory layout:

buf1      buf2 
|--------|--------|

The first memset gives

buf1      buf2 
|--------|22222222|

as in it sets from the start of buf2 to the end to 2.

The second memset gives:

buf1      buf2 
|11111111|11122222|

That is it sets from the start of buf1 to 3 past it's end.

Undefined behaviour

This does not seg fault as you are changing memory that is allocated to your program.

However passing buf2 to printf in that way is invoking undefined behavior.

The reason is that printf involked as:

printf("BEFORE: buf2 = %s",buf2);

does not have a way to know the size of buf2 so it continues until it sees the null value \0 character which your code does not add. It seems by luck you got the value immediately after buf2 happens the be the null value.

You could either add the \0 character to the end of buf2.

Or maybe more fitting in this case you could usethe precision format specifier (that's a . folowed by an int value) to let printf know how many characters to print. That would be done as so:

printf("BEFORE: buf2 = %.8s",buf2); 
share|improve this answer
    
The visual explains it. Makes perfect sense now, thanks a bunch! –  jmeanor Apr 28 at 0:38
    
I expected a segfault 'cos the unterminated string dumps. –  Martin James Apr 28 at 0:51
    
@MartinJames aha I see what you mean. Thanks for pointing that out! I've updated the answer to explain that also. –  PeterSW Apr 28 at 8:00

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