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sample:
pushq   %rbp
movq    %rsp, %rbp

movl    %edi, -20(%rbp)
movl    $1, -16(%rbp)
movl    $0, -12(%rbp)
movl    $0, -8(%rbp)
cmpl    $2, -20(%rbp)

Lets says input value is 1 what to set 1 as %rbp or %rsp

than what would be the value of %edi though

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This isn't even 8086 assembly code. This is x64 :-/ –  Aniket Nov 5 '12 at 2:21
    
oh my teacher gave me this and we were learning 8086 so i assumed it was that but what would be the input value of 1 %edi right? –  Nabmeister Nov 5 '12 at 2:23
    
then your teacher knows sh*t about assembly. –  Aniket Nov 5 '12 at 2:24
    
alright but what would the input value go %edi right? –  Nabmeister Nov 5 '12 at 2:25
    
what do you mean the input value? the input(or parametric value) to the function sample? –  Aniket Nov 5 '12 at 2:27

1 Answer 1

up vote 2 down vote accepted

Let's take this step by step:

  • The function sample first sets up a stack frame: pushq %rbp; movq %rsp, %rbp
  • It saves edi on the stack: movl %edi, -20(%rbp). This is OK without explicitly decrementing rsp if it's a leaf function.
  • It puts some more immediates on the stack: movl $1, -16(%rbp); movl $0, -12(%rbp); movl $0, -8(%rbp).
  • It compares the saved value of edi on the stack at -20(%rbp) with 2. Assuming it does something based on that comparison (maybe the rest of the code is relevant), the input to the function must be the value in edi.

Another way to figure this out is the AMD64 ABI, which specifies that rdi is used to pass the first argument to functions. You can then further deduce that the first argument to sample is a 32-bit wide integer.

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