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I need to disassemble command 8E C0, can you help me?

I already made this:

First byte 8E = 10001110b it's mov sr,reg/mem

But I don't know what to do with the second byte 11000000

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If the second operand is mem, I guess this is an address. –  Hyperboreus Jun 6 '11 at 6:01

1 Answer 1

You can wade through the intel docs to work it out yourself, or you can use a disassembler which is far easier. The answer is:

mov ES, EAX

I use yasm, and did the following:

# assemble the two bytes:
echo 'lbl: db 0x8e, 0xc0' | yasm -f elf - -o tmp.o

# disassemble the output:
objdump -d -M intel tmp.o

If you want to do this by hand, the bytes can by interpreted as follows.

8E corresponds to this instruction in the Intel instruction set reference:

8E /r ... MOV Sreg,r/m16 ... Move r/m16 to segment register

The /r indicates that the following byte is a "Mod R/M" byte. The description of the instruction indicates that we should interpret the Reg/Opcode part as a segment register which will be the destination and the the Mod and R/M parts will indicate the source. Seperating out the bits, Mod is the top two bits (11b), Reg is the next three (000b) and R/M the bottom three bits (000b).

Looking up in the appropriate table, Mod of 11 indicates a register operand, with R/M denoting EAX (or AX in 16-bit mode) and 000 for Reg when referring to a segment register is ES.

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Very good! Thanks, but what is EAX, do you mean AX? –  user785415 Jun 6 '11 at 6:18
    
EAX is the Extended version of the AX register for 32 bit x86 assembly. –  John Mulder Jun 6 '11 at 6:30
2  
@user785415: mov es,eax and mov es,ax have exactly the same effect on 32-bit processors according to the intel docs; the 16-bit operand-size prefix isn't required and the instruction will execute faster if left out. An assembler may map the use of ax instead of eax into the addition of the 16-bit operand-size prefix. –  Charles Bailey Jun 6 '11 at 6:39
    
thanks to all of you –  user785415 Jun 6 '11 at 8:08

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