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From what I've read about mov, it copies the second argument into the first argument. Then, what does this do?

movl 8(%ebp), %edx

It copies whatever is in edx to the first parameter of the function (since an offset of +8 from ebp is a parameter)?

I feel like what this really means is moving the first parameter into the edx register, but I read on Wikipedia that it is the other way around?

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1 Answer 1

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movl 8(%ebp), %edx

is in "AT&T Syntax"; in this syntax, the source comes first and the destination second. So yes, your belief is correct. Most documentation uses the "Intel Syntax", which has the reverse ordering. This is a source of considerable confusion for people new to x86 assembly.

In Intel Syntax, your instruction would be written:

mov edx, [ebp + 8]

Note the absence of % before the register names, and the use of square brackets instead of parentheses for the address, and the lack of an l suffix on the instruction. These are dead giveaways to know which form of assembly you are looking at.

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What is the reason for having 2 different dilects of assembly? As you noted, this can be a common source of confusion for newcomers since they use completely different conventions. –  greatwolf May 7 '11 at 21:58
    
@Victor T.: Intel syntax is what Intel specified originally; AT&T syntax is an adaptation of a Bell Labs assembly syntax intended to be used on multiple platforms. –  Stephen Canon May 7 '11 at 22:37
    
@Stephen: There is an error with Intel Synax. There must be mov [ebp + 8], edx :) –  Ilya Matveychikov Jul 12 '11 at 11:12
1  
@Ilya: that would be a store, not a load. The argument order in Intel syntax is reversed from AT&T syntax. –  Stephen Canon Jul 12 '11 at 14:04
    
@Stephen: Ahh, you are right :) Where do I look for? ;) –  Ilya Matveychikov Jul 13 '11 at 13:01

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