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You are required to write a maximum of two instructions in assembly to do the following:

  1. Clear bits 0 and 7 of register AL, i.e. make them 0
  2. Set bits 3 and 4 of register AL, i.e. make them 1.
  3. Complement bits 1 and 5 of register AL.
  4. Keep all other bits in the register AL as is without changing their values.
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2  
Smells like homework... –  Vivin Paliath Apr 26 '10 at 18:15
3  
The three instruction solution: al -> al & 0b01111110 | 0b00011000 ^ 0b00100010. The hard part is reduce this to 2 instructions. –  KennyTM Apr 26 '10 at 18:16
    
I agree with Paliath. –  Puppy Apr 26 '10 at 18:28
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Well it's a bonus question. i don't have to give an answer for it but i kept thinking of the solution and i'm still thinking –  Nick Apr 26 '10 at 20:44

2 Answers 2

up vote 8 down vote accepted

The trick here is to do the following:

  1. use an OR instruction to set bits 0, 3, 4 and 7

  2. use an XOR instruction to complement bits 0, 1, 5 and 7

Note that bits 0 and 7 first get set in (1) and then cleared in (2).

I'll leave the actual asm instructions to you, since this is your homework, after all.

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Thank you Mr.Paul. This should be the code: OR AL, 10011001 XOR AL, 10100011 –  Nick Apr 27 '10 at 11:08
    
@Nick: yes, that looks about right, depending on exactly what CPU and assembler you're using. –  Paul R Apr 27 '10 at 11:55

One DB instruction defining an array of 256 "result" values, and one move instruction to move an element of this array into al, using the current value in al as an index.

Wouldn't that work ?

It might even be argued that this is in fact even a single-instruction solution, since the DB is not really an instruction that executes at run-time, rather it is a compile-time declarative.

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Can you clarify more please? –  Nick Apr 26 '10 at 21:45
    
He's proposing a lookup table with a result value for each of the 256 possible input values. The list is created using the DB command. Lookup is performed using a simple move AL, start + index instruction. –  mafu May 2 '10 at 14:14

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