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I'd like to know if someone already seen sbrk(0) fail ?

I mean, if you can reach this function you obviously had the rights to access the memory before, so to check the current break location should be ok, right ?

EDIT : Should I consider an error exception for example ?

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1  
I take it it failed for you? –  Robert Harvey Feb 4 at 17:49
    
The way I'm using it had never guide me to an error at least. –  user3210859 Feb 4 at 17:52
2  
What's funny is that according to the loose wording of the documentation, it acutally could fail. Which is, of course, complete nonsense. –  Damon Feb 4 at 18:09
    
The Mac OS X documentation for sbrk(2) says: The current value of the program break is reliably returned by sbrk(0). –  Jonathan Leffler Feb 4 at 18:38

1 Answer 1

up vote 3 down vote accepted

The documents states that:

   sbrk() increments the program's data space by increment bytes.
   Calling sbrk() with an increment of 0 can be used to find the current
   location of the program break.

  ...

   On success, sbrk() returns the previous program break.  (If the break
   was increased, then this value is a pointer to the start of the newly
   allocated memory).  On error, (void *) -1 is returned, and errno is
   set to ENOMEM.

If you look at glibc implementation you will see:

extern void *__curbrk;
  ...
void *
__sbrk (intptr_t increment)
{
  ...
  if (increment == 0)
    return __curbrk; 
  ...

there is no way it will fail since it just returns the current value of __curbrk if increment is zero.

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Ye thanks a lot finally got it. Took a look on fossies.org/dox/glibc-2.18/… too :) –  user3210859 Feb 4 at 18:11

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