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Here, I'm trying to move the variable X (which is an 8-bit variable) into the register bx (which is a 16-bit register). How can I move the value of X into the register bx in this case?

.686p
.model flat,stdcall
.stack 2048

.data
X byte 5
ExitProcess proto, exitcode:dword
.code

start:
invoke  ExitProcess, 0

mov bx, X; 1>p4.asm(13): error A2022: instruction operands must be the same size

end start ;what does the end statement do?
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Possible duplicate of Cannot move 8 bit address to 16 bit register – Peter Cordes Nov 27 '15 at 15:05
up vote 5 down vote accepted

In addition to Rahul's answer, if you also need to zero out bh and are working on anything 80386 or newer (as indicated by the .686p) is:

movzx bx, X

Of if you are using X as a signed value and needs to sign-extend bx:

movsx bx, X
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The directive .686p satisfies the requirements. – Aki Suihkonen Mar 21 '13 at 6:24
    
I suspected that, but wanted to guard against anyone treating the directive as boilerplate. (To be fair, I probably haven't written 16-bit code in 20 years, so the assumption seems pretty safe anyway.) – DocMax Mar 21 '13 at 6:28

The low 8-bits of BX are addressable as BL.

So, all you need to do is: mov bl, X

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Wow, that was quick - I didn't expect to see an answer so soon. :) – Anderson Green Mar 21 '13 at 5:58
    
You're welcome! Please accept the answer (the check thingy) if this helped you :) – Rahul Banerjee Mar 21 '13 at 6:00

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