I have an initialization of array in C like that:

char buf[10]={0};

And I show its assembly code in gdb, it shows up:

char buf[10]={0};
0x0000000000400591 <+20>:    movq   $0x0,-0x20(%rbp)
0x0000000000400599 <+28>:    movw   $0x0,-0x18(%rbp)

I know the offset base on%rbp is allocating space, but I don't know what is the meaning of movq and movw? Seems that it not allocate the space only, initialization also be done at the same time. But why the offset is 0x20 or 0x18?

  • You should tag this question with the architecture on which you are using assembly. This looks like x86-64 (probably applicable to 32-bit as well), so you should tag it x86 (if I am correct about that). – rjp Aug 2 '16 at 13:52
up vote 8 down vote accepted

These instructions do not allocate space. By the time they are executed the space (on the stack) is already allocated. All they do is initialize that space with zeros.

On your platform local variables are stored at negative offsets from rbp. Your array has 10 bytes in it and is stored at offset -0x20 from rbp. The

movq   $0x0,-0x20(%rbp)

instruction sets the first 8 bytes of buf to zero (a "quad word" - q in movq). The

movw   $0x0,-0x18(%rbp)

instruction sets the remaining 2 bytes of buf to zero (a "word" - w in movw).

Note that -0x20 + 8 is -0x18. That's where -0x18 came from.

      |----------------- buf -----------------|

    --+---+---+---+---+---+---+---+---+---+---+--     ---+---
...   | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 |   ...    |   ...
    --+---+---+---+---+---+---+---+---+---+---+--     ---+---
      ^                               ^                  ^
      rbp - 0x20                      rbp - 0x18         rbp

                    zeroed              zeroed
                      by                  by 
      |------------- mowq ------------|--movw-|
  • Thank you very much! Your ascii graph is so clearly. I forgot what the quad word means, it has 8 bytes! – naive231 Aug 2 '16 at 5:20
  • The x86-64 System V user-space ABI has a red-zone, so you can use up to 128B of space below %rsp without modifying %rsp first. i.e. it's already considered allocated, and won't be asynchronously clobbered by signal handlers or anything else. Probably the OP's function never modifies %rsp explicitly at all. – Peter Cordes Aug 2 '16 at 14:54

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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