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I have a doubt regarding heap in program execution layout diagram of a C program.

I know that all the dynamically allocated memory is allotted in heap which grows dynamically. But I would like to know what is the max heap size for a C program ??

I am just attaching a sample C program ... here I am trying to allocate 1GB memory to string and even doing the memset ...

    #include <stdio.h>
    #include <string.h>
    #include <stdlib.h>

    int main(int argc, char *argv[])
    {
       char *temp;
       mybuffer=malloc(1024*1024*1024*1);

       temp = memset(mybuffer,0,(1024*1024*1024*1));

       if( (mybuffer == temp) && (mybuffer != NULL))
       printf("%x - %x\n", mybuffer, &mybuffer[((1024*1024*1024*1)-1)]]);
       else
       printf("Wrong\n");

       sleep(20);
       free(mybuffer);
       return 0;
    }

If I run above program in 3 instances at once then malloc should fail atleast in one instance [I feel so] ... but still malloc is successfull.

If it is successful can I know how the OS takes care of 3GB of dynamically allocated memory.

share|improve this question

Your machine is very probably overcomitting on RAM, and not using the memory until you actually write it. Try writing to each block after allocating it, thus forcing the operating system to ensure there's real RAM mapped to the address malloc() returned.

share|improve this answer
    
+1 It's enough to write one byte per page to force the memory to be committed. – Pascal Cuoq Dec 11 '09 at 9:34
    
I did try the memset on the alloted dynamic memory ... it seems ok when i run 2 instances – codingfreak Dec 11 '09 at 9:48
1  
Writing won't change anything and will only force the kernel to start swapping. When the swap and the RAM are full, linux kernel starts to kill processes (xenotime.net/linux/doc/swap-mini-howto.txt). So to my knowledge, you won't ever see a NULL returned by malloc because of the system is out of PHYSICAL memory. However, you can get a NULL returned by malloc because your process uses "too much" of its virtual address space. It's well explained here: duartes.org/gustavo/blog/post/anatomy-of-a-program-in-memory – nico Dec 11 '09 at 23:03

From the linux malloc page,

BUGS
       By  default,  Linux  follows  an optimistic memory allocation strategy.
       This means that when malloc() returns non-NULL there  is  no  guarantee
       that  the  memory  really  is available.  This is a really bad bug.  In
       case it turns out that the system is out of memory, one  or  more  pro‐
       cesses  will  be  killed  by the infamous OOM killer.  In case Linux is
       employed under circumstances where it would be less desirable  to  sud‐
       denly lose some randomly picked processes, and moreover the kernel ver‐
       sion is sufficiently recent, one can  switch  off  this  overcommitting
       behavior using a command like:

           # echo 2 > /proc/sys/vm/overcommit_memory

       See  also  the  kernel  Documentation  directory,  files vm/overcommit-
       accounting and sysctl/vm.txt.
share|improve this answer

You're mixing up physical memory and virtual memory.

http://apollo.lsc.vsc.edu/metadmin/references/sag/x1752.html

http://en.wikipedia.org/wiki/Virtual%5Fmemory

http://duartes.org/gustavo/blog/post/anatomy-of-a-program-in-memory

share|improve this answer
    
I do know about virtual memory ... I am just leaving information about my memory details – codingfreak Dec 11 '09 at 9:38
    
Well you're asking why allocating 3GB when you got 1GB of RAM does not fail. Let's say that you are actually using 3GB of memory through malloc. What you are actually using is 3GB of virtual pages. When the system is out of RAM, it's using the swap as a backup to store previously allocated pages on the disk and thus free some RAM for new pages. have a look to this one: apollo.lsc.vsc.edu/metadmin/references/sag/x1752.html – nico Dec 11 '09 at 9:48
    
But my swap utilisation is 0% what does it mean ? – codingfreak Dec 11 '09 at 9:49
    
That means that the system is not using the swap at all. But like unwind said, calling malloc does not actually commit the memory. Pages are allocated lazily, which means the system gives you the page ONLY if you access it (read or write). – nico Dec 11 '09 at 9:55
    
When I say not using the swap at all, I meant not using the swap YET – nico Dec 11 '09 at 10:18

Malloc will allocate the memory but it does not write to any of it. So if the virtual memory is available then it will succeed. It is only when you write something to it will the real memory need to be paged to the page file.

Calloc if memory serves be correctly(!) write zeros to each byte of the allocated memory before returning so will need to allocate the pages there and then.

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