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Looking at some assembly code for x86_64 on my Mac, I see the following instruction:

48 c7 c0 01 00 00 00  movq    $0x1,%rax

But nowhere can I find a reference that breaks down the opcode. It seems like 48c7 is a move instruction, c0 defines the %rax register, etc.

So, where can I find a reference that tells me all that?

I am aware of http://ref.x86asm.net/, but looking at 48 opcodes, I don't see anything that resembles a move.

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I've seen similar questions here. If I could find this on Google, I wouldn't have asked. The fact that I am aware of the reference I posted in my question also shows that I am not just too lazy to search myself. –  Christoph Jun 24 '12 at 19:58
    
@Oded, googling for "x86 0x48 instruction prefix" is quite tricky if you don't know what you are looking for... –  Griwes Jun 24 '12 at 19:59
    
@Oded I reworded my question to be more developer specific. Given the (really good!) reference at x86asm.net, I guess I just need to understand how that opcode is broken up. Griwes helped with that. –  Christoph Jun 24 '12 at 20:01
1  
If you didn't find the 0x48 at x86asm.net, that's because you didn't look right: ref.x86asm.net/coder64.html#x48 . -1. –  hirschhornsalz Jun 24 '12 at 22:50
    
I was looking for a mov. I know better now, thanks. –  Christoph Jun 25 '12 at 15:35

1 Answer 1

up vote 2 down vote accepted

Actually, mov is 0xc7 there; 0x48 is, in this case, a long mode REX.W prefix.

Answering also the question in comments: 0xc0 is b11000000. Here you can find out that with REX.B = 0 (as REX prefix is 0x48, the .B bit is unset), 0xc0 means "RAX is first operand" (in Intel syntax; mov rax, 1, RAX is first, or, in case of mov, output operand). You can find out how to read ModR/M here.

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Thanks, that helps! Maybe I should reword my question. –  Christoph Jun 24 '12 at 19:59
    
What about the c0? Where does that come in? –  Christoph Jun 24 '12 at 20:12
    
@Christoph, added explanation in answer. –  Griwes Jun 24 '12 at 20:19

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