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I'm doing a past paper for my exam on Thursday, and I'm struggling with boolean algebra a bit. One question asked me to simplify:

[(X + Y).(X + 'Y)]

I can simplify most of it. I got it down to

[X(1 + 'Y + Y)]

The mark scheme says this is equal to [X].

But I don't quite understand why - I guess it's because of the

['Y + Y]

but we're not using the '+' symbol to add them, so why is it like this?

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closed as off topic by Jan Dvorak, Frank, competent_tech, Soner Gönül, Wouter J Jan 13 '13 at 21:59

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X or not X === true; true or true === true; X and true === X –  Jan Dvorak Jan 13 '13 at 13:50
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3 Answers

up vote 4 down vote accepted

Starting from X * (1 + 'Y + Y), note that 'Y + Y == 1 for any Y because either Y is 1 or else 'Y is, so Y + 'Y is 1 + 0 or 0 + 1, which in both cases equals 1.

That would make the function equivalent to X * (1 + 1), but we also know that 1 + 1 == 1 (true OR true is true) and also X * 1 == X (X AND true is X), so in the end you are left with just X.

Reference: Laws of boolean algebra, also in a convenient 2-page PDF.

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+1 cos I was slow... and this is better –  Caribou Jan 13 '13 at 14:07
    
Thank you. That's great. :) –  keirbtre Jan 13 '13 at 14:56
    
The PDF is 3 pages =) –  Nayuki Minase Jan 11 at 5:11
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['Y + Y]

X + X' = 1 Now imagine picking one between a value and its opposite. Since we are referring to Boolean logic, the only options are going to be 0 or 1. Now see what is the output of the OR operation between 0 and its opposite, i.e. 1. Or see what 1 OR 0 yields. Both yield a 1, which means that the output of an OR operation between a value and its negative (opposite), is 1.

http://www.buzzle.com/articles/boolean-algebra-rules.html

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In Boolean algebra, If A = 1, A' = 0 and A = true, A' = false. Also every AND operation is (.) and every or operation is (+).

Let me simplify the expression :

(X+Y)(X+'Y)
= XX + XY' + YX + YY'
= X + XY' + YX + 0 // since X.X = X & Y.Y'= 0
= X + XY' + XY // = X(1 + 'Y + Y)
= X + X(Y+Y') 
= X + X(1) // Y+Y' = 1
= X + X 
= X
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