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*I'm using assembly 8086 (x86-32)

The deal is very simple, I have a byte-sized number in register AL (8 bits), now, I need to exchange between bit 1 (the second from right) and bit 4 (the fifth from right) of the number in register AL.

for example: If Al has this number: 00010000B now it will have 00000010B.

Thank you!

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One to Two instructions answer:

and eax, $255; // mask off extra bits  -- perhaps not needed, if upper bits are 
mov al, look_up_table[eax] // guaranteed to be zero

Three instructions using al alone.

test al, $0x12
jpe skip       ;; parity was even (aka the bits are the same)
xor al, $0x12  ;; toggle both bits
skip:

Theory of operation: bits need to exchanged only when they differ. 0 changes to 1 and 1 changes to 0 by xoring them with 1. Both bits are affected the same time.

jump could be avoided, if there is a conditional cmovpo or cmovpe. But in this case the sequence requires at least 4 instructions (depending if some register is known to contain a zero or the bit mask).

Alternatively one could opt for testing if a & mask has only one bit set. That is done with expression (a== (a&-a))

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1  
Wow! This is the first time I see the parity bit used, after almost 20 years of asm coding. – Nils Pipenbrinck Nov 3 '12 at 11:37

You may try this:

mov BL, AL
mov BH, AL

and BL, 2h   //empty all bits except first
and BH, 10h  //empty all bits except fourth

shl BL, 3    //move bit 1 to position of bit 4
shr BH, 3    //move bit 4 to position of bit 1

and AL, edh  //empty first and fourth bits
or AL, BL    //set bit 4
or AL, BH    //set bit 1

AL register contains the result. Also you may need data stored in register BX. If you do then prepend solution with

push BX

end append to the end

pop BX
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Thank you very much! now I'll try to figure out how to raise your reputation – user1461085 Nov 3 '12 at 9:08
1  
@user1461085: You can give him 15 points by clicking the check mark next to this answer, if it solved your problem. :) That also lets people know which answer helped you the most, so it's encouraged anyway. – cHao Nov 3 '12 at 9:40
    
I tried to place here the easiest solution but Aki's solution it the slimmest! The choice is up to you. P.S. It is empty tick to the left of the answer ;). – FUT Nov 3 '12 at 17:24

Another alternative (7 instructions):

mov ebx,00010010b         ;ebx = 00010010
and ebx,eax               ;ebx = 000A00B0
lea ebx,[ebx+ebx*4]       ;ebx = 0A0AB0B0
rol bl,5                  ;ebx = AB0B00A0
and ebx,00010010b         ;ebx = 000B00A0
and al,11101101b          ;al = abc0ef0g
or  al,bl                 ;al = abcBefAg

And another alternative (also 7 instructions):

ror al,1           ;ax = ????????.gabcAefB
ror ax,1           ;ax = B???????.?gabcAef
ror al,3           ;ax = B???????.Aef?gabc
rol ax,1           ;ax = ???????A.ef?gabcB
rol al,3           ;ax = ???????A.gabcBef?
ror al,1           ;ax = ????????.AgabcBef
rol al,2           ;ax = ????????.abcBefAg
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I add my six instruction alternative:

xor   bl, bl  ; -> clear work register
btr   ax, 1   ; -> second bit to carry, clear that bit in al
cmovc bl, 8   ; -> set bit at bitpos 3
btr   ax, 4   ; -> fifth bit to carry, clear that bit in al
rcl   bl, 2   ; -> set bit at bitpos 2, shift bitpos 3 -> 5
or    al, bl  ; -> merge bits

Note: This is just an academic exercise. You probably don't want code that use btr instructions because these are slow. At least last time I've tried to use them. Also: Untested.

Needs 486 instruction set.

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CMOV.cc has to be replaced with a valid addressing mode (e.g. 16 or 32 bit reg/reg move, or read from memory). For some reason Intel didn't include immediate move. – Aki Suihkonen Nov 3 '12 at 14:04

6 instructions using al alone

           ; al       | cf
           ; 76543210 | x
ror al, 5  ; 43210765 | x
bt  al, 4  ; 43210765 | 1
rcl al, 4  ; 07651432 | 1
bt  al, 2  ; 07651432 | 4
rcr al, 3  ; 32407651 | 4
rol al, 4  ; 76513240 | x
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