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I am struggling with a problem in assembly, where I have to take the first byte (FF) of the hex code :

0x045893FF and copy it over the entire hex code:  

0xFFFFFFFF.

What I did is:

movl $0x04580393FF, %eax
shl $24, %eax     # to get only the last byte 0xFF000000

Now I want to copy this byte into the rest of the register.

How would one do that? Thank you!

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Does your system really have 4-bit bytes? You're using %eax, which makes me think x86 (which has 8-bit bytes), but you say that FF is two bytes. –  Carl Norum Mar 20 '12 at 0:14
    
FF is one byte, not two. Which did you mean? –  Kendall Frey Mar 20 '12 at 0:14
    
@Carl: There is no rule stating that a byte must have 8 bits :) en.wikipedia.org/wiki/Octet_(computing) –  Kendall Frey Mar 20 '12 at 0:15
    
I didn't say there was such a rule, did I? I'm just surprised. –  Carl Norum Mar 20 '12 at 0:15
    
Also 0x04580393FF won't fit in %eax. –  Carl Norum Mar 20 '12 at 0:22

3 Answers 3

up vote 3 down vote accepted

You could do it for instance like this:

mov %al, %ah    #0x0458FFFF
mov %ax, %bx    #0xFFFF
shl $16, %eax   #0xFFFF0000
mov %bx, %ax    #0xFFFFFFFF

Another way would be:

movzx %al, %eax
imul $0x1010101, %eax

The last one is possibly faster on modern architectures.

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great answer, that was exactly what I was looking for! Thank you very much –  jsiodtb Mar 20 '12 at 0:43
    
Why not movsx %al, %eax - after all, 0xff, treated as signed, will extend to 0xffffffff directly. No need for the "replicate bytes by multiplication" trick. –  FrankH. Mar 20 '12 at 17:30
    
Agreed though that of course this only works for the special case of the byte being 0xff. –  FrankH. Mar 20 '12 at 17:31
1  
@FrankH. As assembly programmer, you are entitled to do code obfuscation at your will. So I take advantage of that and insert a multiplication for an innocent move operation where it comes unexpected and hurts the reader the most. –  hirschhornsalz Mar 20 '12 at 18:46
    
@drhirsch: +1 for that ;-) –  FrankH. Mar 22 '12 at 10:33

I am used to NASM assembly syntax, but this should be fairly simple.

; this is a comment btw
mov eax, 0x045893FF ; mov to, from

mov ah, al
mov bx, ax
shl eax, 16
mov ax, bx

; eax = 0xFFFFFFFF
share|improve this answer

Another solution using one register (EAX) only:

            (reg=dcba)
mov ah, al  (reg=dcaa)
ror eax, 8  (reg=adca)
mov ah, al  (reg=adaa)
ror eax, 8  (reg=aada)
mov ah, al  (reg=aaaa)

This is a bit slower than the above solution, though.

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