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When I read some disassembly code, for I am not up on AT&T syntax, I do not know what some code like (%esp,1) means.

11      printf("%x", a);
0x401386        <main+182>:    movl  $0x1,0x4(%esp,1)
0x40138e        <main+190>:    movl  $0x40300d,(%esp,1)
0x401395        <main+197>:    call  0x401810 <printf>

Could someone tell what it does mean? Thank you!

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1  
0x4(%esp,1) is same as [esp*1 + 0x4] in Intel syntax. –  Mehrdad Afshari May 16 '12 at 3:12
    
But...it seems that [esp+ 0x4*1] is more common? --sorry for my poor English. 0x4(%esp,2) seems no practical significance? –  runningair May 16 '12 at 3:20
    
What's common is something like [esp+eax*4+16] (in which eax is an index to a 32-bit integer array located at esp+16). That's why "scale" exists in the addressing mode. –  Mehrdad Afshari May 16 '12 at 3:38
2  
"is more common?" What's more common odes note matter. What the tool in front of you used matters. –  dmckee May 16 '12 at 20:36

2 Answers 2

up vote 2 down vote accepted

This wikibook seems to have some information about the GNU assembler and its AT&T syntax:

http://en.wikibooks.org/wiki/X86_Assembly/GAS_Syntax

I also found these two sources of documentation on Gas, but they don't seem to be very clear or useful:

  1. http://webster.cs.ucr.edu/AsmTools/Gas/GasDoc/as_toc.html
  2. http://sourceware.org/binutils/docs-2.17/as/index.html
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                              ; Decompiled, sort of, back to C
                              ; ==============================
    movl  $0x1,0x4(%esp,1)    ; %esp[1] = 1 (the "1" really means, "add 4")
    movl  $0x40300d,(%esp,1)  ; %esp[0] = "%x"
    call  0x401810 <printf>   ; push return address and branch to printf

It seems that the compiler knows that a is equal to 1, and that it already has adjusted the stack pointer downward to make room for the arguments. Perhaps it combined pushing space onto the stack with the function prologue.

In general, the addressing modes look like...

r    ; register
(r)  ; memory, register contains the address
8(r) ; memory, displacement of 8 off the register
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Thanks! But...",1" is useless? –  runningair May 16 '12 at 3:13
    
x86 has indexed addressing modes, the ",1" is not needed but might have been ,2 or ,4 had the index feature been used. It's just the disassembler being uninspired. –  DigitalRoss May 16 '12 at 3:16
    
So, 0x4(%esp,2) means *(%esp + 2*0x4), 0x4(%esp,4) means *(%esp + 4*0x4), and 0x4(%esp,3) is forbidden? –  runningair May 16 '12 at 3:26
    
"It seems that the compiler knows that a is equal to 1", yes, "a" is qualified by "const" –  runningair May 16 '12 at 3:37
    
@runningair No, no and yes. –  hirschhornsalz May 16 '12 at 8:41

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