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So if I have a procedure where the first formal parameter is an int[] and I'm enumerating through that loop, I'm confused about why one piece of code works where another doesn't. I should be able to do this:

#where ebp+8 is the location of the pointer, and ecx is the counter
mov edx, [ebp+ecx*4+8]

This gives me a gibberish value for edx, but this code works fine

mov edx, [ebp+8]
mov edx, [edx+ecx*4]

I don't understand the difference between those statements.

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I must be getting old. I don't remember any ecx*4 in x86 assembler. –  John Saunders Oct 22 '11 at 18:58
    
@JohnSaunders: You're forgetting the SIB byte (of course the intel manuals also describe it). –  user786653 Oct 22 '11 at 19:01
    
Thanks for the link. I didn't forget it. I stopped dealing with x86 assembler before 64 bit processors came out. –  John Saunders Oct 22 '11 at 19:10
    
@JohnSaunders: It works on all i386 compatible processors (though the link might lead you to believe otherwise). Even if you don't do much assembly coding by hand you have probably seen them in disassembly where stuff like lea eax, [eax+eax*4] is common for eax *= 5. –  user786653 Oct 22 '11 at 19:18
1  
Ah, sorry, I didn't realize just how old sk00l you were :). If you want to keep you sanity I suggest you never look into how recent opcodes are encoded on x86 (3 byte opcodes? check. mandatory prefixes that determine the instruction? check). –  user786653 Oct 22 '11 at 19:28
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1 Answer

up vote 4 down vote accepted

They are different:

In the first code:

mov edx, [ebp+ecx*4+8]

You are loading from the address: ebp+ecx*4+8

In the second code:

mov edx, [ebp+8]
mov edx, [edx+ecx*4]

You first load the value stored at ebp+8. Then you use it as the base address for the second load.

In other words, the base address is stored at the memory location pointed to by ebp + 8. It is not actually stored in the ebp register itself.

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In "C". The first is edx = ebp[ecx + 2] while the second is edx = (ebp[2])[ecx]. –  user786653 Oct 22 '11 at 18:59
    
@user786653: Yes, that's a very good analogy. :) –  Mysticial Oct 22 '11 at 19:00
    
Ahh that's perfectly clear, thanks! –  grivescorbett Oct 22 '11 at 19:11
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