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Is there any way to add an 8-bit value to a 32-bit register in x86?

For example, if you do "ADD EAX,8" then the 8 will be encoded as a 32 bit value so you will have "08000000" in your binary. If you are adding by one you can use the INC instruction obviously, but is there any way to ADD a generic 8-bit value in x86 assembly?

Note I don't think you can do "ADD AL,8" because if AL already has, say, xFE in it then it will not do the carry. What about "ADC AL,8", though, will that carry the value to AH?

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ADC AL, 8 adds 8 plus the value of the carry to AL. It does not touch AH. –  Pascal Cuoq Nov 13 '12 at 23:14
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ADD EAX, 8 should be encoded with 8-bit immediate. If 8 is encoded as 32 bit value, this is an assembler bug. As a workaround, you may try to use different register than EAX. –  Marat Dukhan Nov 14 '12 at 0:00
    
Use MOVZX to convert. –  Hans Passant Nov 14 '12 at 1:00

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up vote 5 down vote accepted

There is an encoding that uses 8 bit sign-extended immediate, it's listed as ADD r/m32, imm8 opcode 83 /0. How you indicate you want that encoding depends on your assembler, but you have forgotten to mention which one you use. nasm for example automatically uses this encoding if you turn optimization on or if you explicitly ask for it like so: add eax, byte 8. GNU assembler seems to use the shorter encoding too, in fact I don't know how to force it to 32 bit (kind of the reverse of your problem).

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