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I read a book about assembly, which have the next code. The code comapre (lexcially) two arrays (int value), and return 1 if the first is bigger, 0 if it equal or -1 otherwise:

  push ebp
  mov ebp, esp
  mov esi, [ebp+8] ; first - A
  mov edi, [ebp+12] ;Second - B
  mov ecx, [ebp+16]
  comp esi,edi,ecx
  jl less
  je equal
  mov eax, 1
  jmp end
   mov eax,0
   jmp end
   mov eax, -1
   jmp end
   pop ebp

%macro comp 3
    mov ecx, %3
    mov eax,[%1]
    mov ebx,[%2]
    cmp eax,ebx
    jne %%done
    add %1, 4
    add %2, 4
    loop %%l
    sub eax,eax

I don't undestand why it needs the line: sub eax,eax. If we have two identical arrays, so in the last compare, we would get, for example, cmp 3,3 - then we will exit from the loop, and for the line je equal - it will return true, and would jump to end.

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2 Answers 2

up vote 2 down vote accepted

It's to set the Z flag so the je equal after the macro will know that the two arrays were equal. The Z flag would be set or cleared by the cmp eax, ebx, and if it's clear at that point, control will transfer to done -- unfortunately, immediately after that it does a couple of adds, which will (probably) clear the Z flag again, so the sub eax, eax is needed to set it again for the conditional jumps after the macro.

The real question would be why you need the mov eax, 0 at equal: -- and the answer is that you don't. Along with setting the Z flag, the sub eax, eax also sets eax to 0, which can/could be returned directly. Even if you did decide to re-load the 0 value for some reason, you probably want to use the sub eax, eax (or xor eax, eax) to do so (the code is a little smaller and at least on some processors, faster as well).

Edit: I should add that at least in my opinion, this is a fairly poor use of a macro. At the very least, there should be some comments to specify the macro's interface, which would probably have answered the question before it was asked.

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The result of the function is returned in the EAX register. The final sub eax, eax is setting the value of EAX to zero before returning when the arrays match exactly.

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Yes, I know that. But why we need that? If we are doing cmp eax,ebx, so we get eax=eax-ebx. But eax=ebx, and for that eax=0, also without this line. – Adam Sh Mar 8 '12 at 18:16
It does set eax to 0, but that's more or less incidental. If you look at where the comp macro is used, immediately after it there are a couple of conditional jumps that depend on its setting the Z flag, and ignore the value that's in eax. – Jerry Coffin Mar 8 '12 at 18:17
@AdamSh: cmp eax, ebx won't change the value in eax -- it only affects the flags. – Jerry Coffin Mar 8 '12 at 18:18

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