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Very simple question here...I'm trying to wrap my head around assembler and curious as to whether these to operations are equivalent:

mov [ebx], 5

and

lea esi, ebx
mov esi, 5

Thanks!

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3 Answers

up vote 4 down vote accepted

No. mov [ebx], 5 puts the value 5 into the address pointed to by ebx (at least that's the general idea of what it should do. MASM, for one, will reject it because it doesn't know what size of destination you want, so you'd need mov byte ptr [ebx], 5, or mov word ptr [ebx], 5, etc.)

The second copies ebx into esi, then copies 5 into esi. It doesn't (even attempt to) move anything into memory. What you're (apparently) looking for would be more like:

lea esi, ebx
mov [esi], 5

Again, you'll run into the same thing though: you'll need to specify byte ptr or word ptr, or whatever. Also note that in this case, it's rather wasteful to use lea -- you're doing the exact equivalent of mov esi, ebx. You normally only use lea when you want to do a more complex address calculation, something like: lea esi, ebx*4+ebp.

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+1 Deleted my answer, though I think you're still missing [ebx] in the lea instruction. –  user786653 Oct 10 '11 at 21:39
    
@user786653: There may be some assembler that requires brackets for the lea (and MASM, for one, might well allow but ignore them) but they're not normally required. –  Jerry Coffin Oct 10 '11 at 21:44
    
Well I can only talk about the assemblers I regularly use NASM (which requires it) and GAS (which requires it in AT&T mode (lea (%ebx), %esi rather than lea %ebx, %esi) as well as .intel_syntax same as NASM). –  user786653 Oct 10 '11 at 21:53
    
@user786653: how odd -- I'm nearly certain I remember a conversation a few years ago with one of the developers of NASM where he said that it only used the brackets when there was going to be a reference to memory. –  Jerry Coffin Oct 10 '11 at 21:57
    
Well, lea does take a reference to memory Vol. 2A 3-579, it doesn't do any dereferencing, though. Hence why it's often used for simple arithmetic calculations that don't actually involve memory references e.g. lea eax, [eax+eax*2] for eax *= 3. –  user786653 Oct 10 '11 at 22:05
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No, they aren't, mov [ebx], 5 moves 5 to the memory location designated in ebx, while

lea esi, ebx
mov esi, 5

Calculates the memory address into esi (in this case it just copies ebx to esi) and then moves 5 into esi, not writing to memory.

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You can do

lea esi, [ebx]
mov [esi], 5

and this will be equal to your first snippet.

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Thanks! Out of curiosity, what would "lea esi, ebx" do? –  slashp Oct 10 '11 at 21:37
    
As already pointed out to in other responses, there is no such thing as lea esi, ebi. lea itslef will (l)oad (e)ffective (a)ddress, that is you need to provide address argument rather then just register. Hence [ebx]. –  Roman R. Oct 10 '11 at 21:39
    
Check this for details on LEA stackoverflow.com/questions/1658294/… –  Roman R. Oct 10 '11 at 21:40
    
Thanks Roman, very helpful! –  slashp Oct 10 '11 at 21:48
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