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I'm trying to figure out whether the following piece of assembly code is invalid.

movb $0xF, (%bl)

Is it invalid? If so, why? Thanks.

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1 Answer 1

up vote 3 down vote accepted

You don't say what processor. bl is a 8-bit register at least in x86 processors, but it cannot be used for addressing.

Why is it invalid instruction? Well, the reason an assembly instruction is invalid is that there's no such instruction for the given processor. There is no possible way to encode this instruction. In this case (assuming x86), using bl or any other 8-bit register neither for addressing has not been considered necessary. In 16-bit code only 16-bit registers bx, bp, si and di can be used for memory addressing. Wikipedia has a useful list of all possible addressing modes (please do note it's using Intel syntax, your code is in AT&T syntax).

Edit: In AT&T syntax the letter b in movb defines it deals with an 8-bit operand.

To obtain more or less your goal (to use bl for addressing), you could do one of these (these are in Intel (YASM/NASM) syntax, some assemblers want byte ptr):

For 16-bit code:

xor bh,bh
mov [bx], byte 0x0f

For 32-bit code:

movzx ebx,bl
mov [ebx], byte 0x0f

For 64-bit code:

movzx rbx,bl
mov [rbx], byte 0x0f
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You perhaps mean register instead of processor at the very beginning of your answer? –  zxcdw Jan 24 '13 at 5:47
    
@zxcdw Yes, of course. Fixed. –  nrz Jan 24 '13 at 6:04
    
That's what I thought, but wasn't sure. Thanks! –  amorimluc Jan 25 '13 at 16:20

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