Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have noticed that on a 2.6.32 MIPS kernel the memory layout is always the same. That is a program has the heap starting at 0x10146000 for most of the processes(or at least those that I looked into). Also another similarity is that always the /lib32/ld-2.9.so starts at 2aaa8000.

So basically the heap has reserved in the virtual memory all this size, and I would like to modify it, because it seems that at some point if I run out of virtual memory (in the rest of the address space) mmap will fail without attempting to map in the above mentioned space, although the heap is barely a few MB. Does anybody now where does the kernel set this addresses?

share|improve this question
    
Run pmap -x <pid> on your processes to see if there are any free virtual address space regions and their sizes. –  Maxim Yegorushkin Sep 11 '12 at 13:32
    
Well there isn't quite any difference between pmap and what /proc/pid/maps provides. The whole ideea was to modify the parameters so the heap doesn't have that big of a space reserved(almost 400mb) –  skyel Sep 11 '12 at 13:40
    
Heap is normally allocated using brk and sbrk calls. Can you strace your process and see if it invokes any of these? –  Maxim Yegorushkin Sep 11 '12 at 13:44
    
brk() and sbrk() usually allocate memory that is not reported in the /proc/pid/maps. So basically it extends the [heap] section in that space I want to shrink –  skyel Sep 11 '12 at 14:06
    
Memory allocated by brk() or sbrk() does get reported in /proc/pid/maps. Look for a memory region named [heap]. –  Maxim Yegorushkin Sep 11 '12 at 14:30
show 1 more comment

1 Answer

If you look in arch/mips/mm/mmap.c you'll find there are two ways of laying our memory in Linux, which is chosen depends on the return value of mmap_is_legacy, which in turn depends on whether you have enabled an unlimited stack (forces the legacy mode) and whether your binary in compiled which the flag PT_GNU_STACK (not having this set forces compatibility mode). The new layout was added in 2.6.7 and is described at http://lwn.net/Articles/90311/.

To put it simply the old layout looks like this:

| CODE ---- | HEAP ----------> | MMAP ------>  | <-------- STACK |
| 0GB       |                  | 2GB/3         |             2GB |

The new layout looks like this:

| CODE ---- | HEAP ----------> | <------------- MMAP | --- STACK |
| 0GB       |                  |             2GB-8MB |       2GB |

Notice that in the old layout there is a fixed division between the heap and the mmap region, whereas in the new region it's flexible. Chances are you're either running an old kernel that lacks the new mode, or you're running in the compatibility mode I described previously.

Notice the address you found was 0x2AAA8000 is around 2GB/3 (libc is the first thing to be mapped in), and 0x10146000 is around 256MB (which will be enough to fit your program's code, data and uninitialized data segments).

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.