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.

gettimeofday is a syscall of x86-86 according to this page(just search gettimeofday in the box):

int gettimeofday(struct timeval *tv, struct timezone *tz);

I thought the disas should be easy anough, just prepare the two pointers and call the related syscall.

But its disas is doing much more:

(gdb) disas gettimeofday
Dump of assembler code for function gettimeofday:
0x00000034f408c2d0 <gettimeofday+0>: sub    $0x8,%rsp
0x00000034f408c2d4 <gettimeofday+4>: mov    $0xffffffffff600000,%rax
0x00000034f408c2db <gettimeofday+11>: callq  *%rax
0x00000034f408c2dd <gettimeofday+13>: cmp    $0xfffff001,%eax
0x00000034f408c2e2 <gettimeofday+18>: jae    0x34f408c2e9 <gettimeofday+25>
0x00000034f408c2e4 <gettimeofday+20>: add    $0x8,%rsp
0x00000034f408c2e8 <gettimeofday+24>: retq   
0x00000034f408c2e9 <gettimeofday+25>: mov    0x2c4cb8(%rip),%rcx        # 0x34f4350fa8 <free+3356736>
0x00000034f408c2f0 <gettimeofday+32>: xor    %edx,%edx
0x00000034f408c2f2 <gettimeofday+34>: sub    %rax,%rdx
0x00000034f408c2f5 <gettimeofday+37>: mov    %edx,%fs:(%rcx)
0x00000034f408c2f8 <gettimeofday+40>: or     $0xffffffffffffffff,%rax
0x00000034f408c2fc <gettimeofday+44>: jmp    0x34f408c2e4 <gettimeofday+20>
End of assembler dump. 

And I don't see syscall at all.

Anyone understands how it works?

share|improve this question
    
Did you see the last column in that syscall site? (btw great site) Definition - links to kernel/time.c:101 - lxr.free-electrons.com/source/kernel/time.c#L101 . Or were you looking for something else? –  arunkumar Sep 1 '11 at 6:49
    
The last line is the implementation of OS, I don't need to know that.I just need to follow the calling side. –  asker Sep 1 '11 at 6:55

2 Answers 2

gettimeofday() on Linux is what's called a vsyscall and/or vdso. Hence you see the two lines:

0x00000034f408c2d4 : mov    $0xffffffffff600000,%rax
0x00000034f408c2db : callq  *%rax

in your disassembly. The address 0xffffffffff600000 is the vsyscall page (on x86_64).

The mechanism maps a specific kernel-created code page into user memory, so that a few "syscalls" can be made without the overhead of a user/kernel context switch, but rather as "ordinary" function call. The actual implementation is right here.

share|improve this answer
    
AFAIK 0xffffffffff600000 is kernel space address, how can user space call kernel space directly? –  asker Sep 2 '11 at 5:08
1  
That's the whole point of the vsyscall page - it's a kernel-created page (which therefore happens to be within the kernel VA range) that is "exported" (i.e. mapped) into userspace when the process address space is created. To the userspace app, it looks just like another linker-preloaded shared object (even though the kernel itself does this 'preload'), hence vdso.so. The kernel sets the permissions so that userspace can read (but not write) it. –  FrankH. Sep 2 '11 at 13:25

Syscalls generally create a lot of overhead, and given the abundance of gettimeofday() calls, one would prefer not to use a syscall. To that end, Linux kernel may map one or two special areas into each program, called vdso and vsyscall. Your implementation of gettimeofday() seems to be using vsyscall:

mov $0xffffffffff600000,%rax

This is the standard address of vsyscall map. Try cat /proc/self/maps to see that mapping. The idea behind vsyscall is that kernel provides fast user-space implementations of some functions, and libc just calls them.

Read this nice article for more details.

share|improve this answer
    
oops, had some sort of timeout here - not seeing your answer while posting mine ... right & correct. –  FrankH. Sep 1 '11 at 10:30

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.