why can’t I move 8 bit variable into much larger 16 bit register?
Becase the machine code MOV
instruction needs both the source operand and destination operand to be the same size. This is needed because a MOV
instruction by itself doesn't specify how to fill the remaining bits of the larger destination register.
To allow for different size move operations, Intel added MOVZX
and MOVSX
in the 80386 CPU, which allow a smaller source operand (the destination is always a 32 bit register). -SX and -ZX suffixes denotes what the previously unused bits of the destination register should be filled with.
On 16-bit Intel processors, there is the instruction CBW
(Convert Byte to Word), which does a sign extend from 8 to 16 bits. Unfortunately, this only works for the accumulator (register AL/AX), so you'd have to do something like:
mov al,var1
cbw
mov bx,ax
cbw
does a sign extension. If your var1
is unsigned, you can do simply as this:
mov bl,var1
xor bh,bh ; equivalent to mov bh,0 but faster and only one byte opcode
Or, as Peter Cordes states:
xor bx,bx ;clear the whole destination register
mov bl,var1 ;update the least significant byte of the register with the 8-bit value
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