Difference between revisions of "Boolean Algebra"

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''Boolean algebra'' is the branch of algebra in which the values of the variables and constants have exactly two values: ''true'' and ''false'', usually denoted 1 and 0 respectively. This description borrows from the Wikipedia article on [https://en.wikipedia.org/wiki/Boolean_algebra Boolean Algebra].
''Boolean algebra'' is the branch of algebra in which the values of the variables and constants have exactly two values: ''true'' and ''false'', usually denoted 1 and 0 respectively.  


The basic operators in Boolean algebra are ''and'', ''or'', and ''not''. The ''and'' of two values is true only whenever both values are true. The ''or'' of two values is true whenever either or both values are true. The ''not'' of a true value is false, and the ''not'' of a false value is true.  
== Operators ==
The secondary operators are ''exclusive or'' (often called ''xor'') and ''equivalence'' . The ''xor'' of two values is true whenever the values are different; the ''equivalence'' of two values is true when both values are the same.
 
The basic operators in Boolean algebra are '''AND''', '''OR''', and '''NOT'''. The secondary operators are ''eXclusive OR'' (often called '''XOR''') and ''eXclusive NOR'' ('''XNOR''', sometimes called '''equivalence'''). They are secondary in the sense that they
can be composed from the basic operators.
 
*The '''AND''' of two values is true only whenever both values are true. It is written as $xy$ or $x \cdot y$. The values of  ''and'' for all possible inputs is shown in the following truth table:
::{| class="wikitable" style="text-align: center"
|-
!<math>\ \ \ \ x\ \ \ \ </math>
!<math>\ \ \ \ y\ \ \ \ </math>
!<math>\ x  y\ </math>
|-
!0
!0
| 0
|-
!0
!1
| 0
|-
!1
!0
| 0
|-
!1
!1
| 1
|}
 
* The '''OR''' of two values is true whenever either or both values are true. It is written as $x+y$. The values of  ''or'' for all possible inputs is shown in the following truth table:
::{| class="wikitable" style="text-align: center"
|-
!<math>\ \ \ \ x\ \ \ \ </math>
!<math>\ \ \ \ y\ \ \ \ </math>
!<math>\ x + y\ </math>
|-
!0
!0
| 0
|-
!0
!1
| 1
|-
!1
!0
| 1
|-
!1
!1
| 1
|}
 
* The '''NOT''' of  a value is its opposite; that is, the ''not'' of a true value is false whereas the ''not'' of a false value is true. It is written as $\overline{x}$ or $\neg{x}$. The values of  ''not'' for all possible inputs is shown in the following truth table:
::{| class="wikitable" style="text-align: center"
|-
!<math>\ \ \ \ x\ \ \ \ </math>
!<math>\ \ \ \ \overline{x}\ \ \ \ </math>
|-
!0
| 1
|-
!1
| 0
|}
 
* The '''XOR''' of two values is true whenever the values are different.  It uses the $\oplus$ operator, and can be built from the basic operators: $x \oplus y = x\ \overline{y}\ \ +\ \overline{x}\ \ y$ The values of  ''xor'' for all possible inputs is shown in the following truth table:
::{| class="wikitable" style="text-align: center"
|-
!<math>\ \ \ \ x\ \ \ \ </math>
!<math>\ \ \ \ y\ \ \ \ </math>
!<math>\ x \oplus y\ </math>
|-
!0
!0
| 0
|-
!0
!1
| 1
|-
!1
!0
| 1
|-
!1
!1
| 0
|}
 
*The '''XNOR''' of two values is true whenever the values are the same. It is the '''NOT''' of the '''XOR''' function. It uses the $\odot$ operator: $x \odot y = \overline{x \oplus y}$. The ''xnor'' can be built from basic operators: $x \odot y = x  y + \overline{x}  \overline{y}$ The values of  ''xnor'' for all possible inputs is shown in the following truth table:
::{| class="wikitable" style="text-align: center"
|-
!<math>\ \ \ \ x\ \ \ \ </math>
!<math>\ \ \ \ y\ \ \ \ </math>
!<math>\ x \odot y\ </math>
|-
!0
!0
| 1
|-
!0
!1
| 0
|-
!1
!0
| 0
|-
!1
!1
| 1
|}
Just as algebra has basic rules for simplifying and evaluating expressions, so does Boolean algebra.
Just as algebra has basic rules for simplifying and evaluating expressions, so does Boolean algebra.


==Why is Boolean Algebra Important for ACSL Students?==
== Why is Boolean Algebra Important for ACSL Students? ==


Boolean algebra is important to programmers, computer scientists, and the general population.  
Boolean algebra is important to programmers, computer scientists, and the general population.  
Line 17: Line 129:
x = 1
x = 1
while (s < 100):
while (s < 100):
     if (x % 2 == 0) and (x % 3 != 0):
     if (x % 2 == 0) and (x % 3 != 0)
         s = s + x
         then s = s + x
     x = x + 1
     x = x + 1
</syntaxhighlight>
</syntaxhighlight>
Both
Both the conditional statement
<syntaxhighlight lang="python" inline>s < 100</syntaxhighlight>
<syntaxhighlight lang="python" inline>s < 100</syntaxhighlight>
and   
and the Boolean expression with 2 conditional statements  
<syntaxhighlight lang="python" inline>(x % 2 == 0) and (x % 3 != 0)</syntaxhighlight>
<syntaxhighlight lang="python" inline>(x % 2 == 0) and (x % 3 != 0)</syntaxhighlight>
are Boolean expressions.  
evaluate to ''true'' or ''false''.  
</dd>
</dd>
</dl>
</dl>
Line 31: Line 143:
*For computer scientists, Boolean algebra is the basis for digital circuits that make up a computer's hardware. The [[Digital Electronics]] category concerns a graphical representation of a circuit. That circuit is typically easiest to understand and evaluate by converting it to its Boolean algebra representation.  
*For computer scientists, Boolean algebra is the basis for digital circuits that make up a computer's hardware. The [[Digital Electronics]] category concerns a graphical representation of a circuit. That circuit is typically easiest to understand and evaluate by converting it to its Boolean algebra representation.  
   
   
* The general population uses Boolean algebra, probably without knowing that they are doing so, when they enter search terms in Internet search engines. For example, the search expression "red sox -yankees" is the Boolean expression <syntaxhighlight lang="python" inline>"red" and "sox" and not "yankees"</syntaxhighlight> that will returns web pages that contain the words "red" and "sox", as long as it does not contain the word "yankees".  The search expression "jaguar speed -car" returns pages about the speed of the jaguar animal, not the Jaguar car.  
* The general population uses Boolean algebra, probably without knowing that they are doing so, when they enter search terms in Internet search engines. For example, the search expression ''jaguar speed -car'' is parsed by the search engine as the Boolean expression <syntaxhighlight lang="python" inline>"jaguar" and "car" and not "speed"</syntaxhighlight>; it returns pages about the speed of the jaguar animal, not the Jaguar car.


==Operations==
==Laws==
A '''law''' of Boolean algebra is an identity such as <math>x + (y + z) = (x + y) + z</math>
between two Boolean terms, where a '''Boolean term''' is defined as an expression built up from variables,  the constants 0 and 1, and operations ''and'', ''or'', ''not'', ''xor'', and ''xnor''.


===Basic operations===
Like ordinary algebra, parentheses are used to group terms. When a ''not'' is represented with an overhead horizontal line, there is an implicit grouping of the terms under the line. That is, $x \cdot \overline{y + z}$ is evaluated as if it were written $x \cdot \overline{(y + z)}.$


The basic operations of Boolean algebra are ''and'', ''or'', and ''not''.
=== Order of Precedence ===
* ''and'' (conjunction) is denoted as <math>x \& y</math>, <math>xy</math>, or <math>x \cdot y</math>. The ''and'' of two values is true only when both values are true.
 
* ''or'' (disjunction) is denoted as <math>x + y</math> . The ''or'' of two values is true whenever one or both values are true.
The order of operator precedence is ''not''; then ''and''; then ''xor'' and ''xnor''; and finally ''or''. Operators with the same level of precedence are evaluated from left-to-right.  
* ''not'' (negation) is denoted as <math>\neg x</math> or <math>\bar{x}</math> . The ''not'' of a value is its opposite; that is, the ''not'' of a true value is false whereas the ''not" of a false value is true.
=== Fundamental Identities ===


The values of  ''and'', ''or'', and ''not'' for all possible inputs is shown in the following truth table:
<dl>
<dd>
{| class="wikitable" style="text-align: center"
{| class="wikitable" style="text-align: center"
|-
| style="text-align: left" | Commutative Law – The order of application of two separate terms is not important. || $x+y = y+x$ || $x \cdot y = y \cdot x$
|-
| style="text-align: left" | Associative Law – Regrouping of the terms in an expression doesn't change the value of the expression. ||$(x + y) + z$ = $x + (y + z)$ || $x \cdot (y \cdot z) = (x \cdot y) \cdot z$
|-
|-
!<math>x</math>
| style="text-align: left" | Idempotent Law – A term that is ''or'''´ed or ''and''´ed with itself is equal to that term. || $ x +x = x $ || $x \cdot x = x$
!<math>y</math>
!<math>x y</math>
!<math>x + y</math>
!<math>\bar{x}</math>
|-
|-
!0
| style="text-align: left" | Annihilator Law – A term that is ''or'''´ed with 1 is 1; a term ''and''´ed with 0 is 0. || $x + 1 = 1$ || $ x \cdot 0 = 0 $
!0
| 0 || 0 || 1
|-
|-
!1
| style="text-align: left" | Identity Law – A term ''or''´ed 0 or  ''and''´ed with a 1 will always equal that term. || $x + 0 = x$  || $x \cdot 1 = x$
!0
| 0 || 1 || 0
|-
|-
!0
| style="text-align: left" | Complement Law – A term ''or''´ed with its complement equals 1 and a term ''and''´ed with its complement equals 0. || $x + \overline{x} = 1 $ || $x \cdot \overline{x} = 0$
!1
| 0 || 1 || 1
|-
|-
!1
| style="text-align: left" | Absorptive Law – Complex expressions can be reduced to a simpler ones by absorbing like terms. ||colspan=2|
!1
$x+x  y = x$
| 1 || 1 || 0
 
|}
$ x +\overline{x}y = x + y $
</dd>
</dl>


===Secondary operations===
$x  (x+y) = x$


The secondary Boolean operators are ''exclusive or'' and ''equivalence''. They are secondary in the sense that they can be composed from the basic operations of ''and'', ''or'', and ''not''.
|-
* ''exclusive or'', typically abbreviated as ''xor'', is denoted as  <math>x \oplus y</math>, or <math>x \text{ xor } y</math>. The ''xor'' of two values is true when the values are different. It can also be represented by ''and''s and ''or''s:
| style="text-align: left" | Distributive Law – It's OK to multiply or factor-out an expression.||colspan=2|
:<math>x \oplus y = (x \cdot \bar{y}) + (\bar{x} \cdot y)</math>


*''equivalence'' is denoted as <math>x \equiv y</math>, <math>x \odot y</math>, or <math>x \text{ equ } y</math> The ''equivalence'' of two values is true when the values are the same; it is the ''not'' of the ''xor'' function, or from ''and''s and ''or''s:
$x \cdot (y + z) = xy + xz$
:<math>x \odot y = x \cdot y + \bar{x} \cdot \bar{y}</math>


$(x+y) \cdot (p + q) = xp + xq +yp + yq$


Here is the truth table of ''xor'' and ''equivalence'' for all four possible inputs.
$(x+y)(x+z)=x + yz $


:{| class="wikitable" style="text-align: center"
|-
|-
!<math>x</math>
| style="text-align: left" | DeMorgan's Law – An ''or'' (''and'') expression that is negated is equal to the ''and'' (''or'') of the negation of each term.|| $\overline{x+y} = \overline{x} \cdot \overline{y}$||$\overline{x \cdot y} = \overline{x} + \overline{y}$
!<math>y</math>
|-  
!<math>x \oplus y</math>
| style="text-align: left" | Double Negation – A term that is inverted twice is equal to the original term.||colspan=2| $\overline{\overline{x}} = x $
!<math>x \odot y</math>
|-  
|-
| style="text-align: left" | Relationship between XOR and XNOR|| colspan=2 | $ x\odot y = \overline{x\oplus y} = x \oplus \overline{y} =\overline{x} \oplus {y}$
!0
!0
| 0 || 1
|-
!1
!0
| 1 || 0
|-
!0
!1
|1 || 0
|-
!1
!1
| 0 || 1
|}
|}


==Laws==
== Sample Problems ==
A '''law''' of Boolean algebra is an identity such as <math>x + (y + z) = (x + y) + z</math>
 
between two Boolean terms, where a '''Boolean term''' is defined as an expression built up from variables and the constants 0 and 1 using the operations ''and'', ''or'', and ''not''.
Problems in this category are typically of the form "Given a Boolean expression, simplify it as much as possible" or "Given a Boolean expression,
find the values of all possible inputs that make the expression ''true''."  Simplify means writing an equivalent expression using the fewest number of operators.
 
=== Problem 1: Simplify the Expression ===
 
'''Problem:''' Simplify the following expression as much as possible:
$ \overline{ \overline{A(A+B)} + B\overline{A}}$
 
'''Solution:'''
 
The simplification proceeds as follows:


===Monotone laws===
:$\overline{ \overline{A(A+B)} + B\overline{A}}$
Boolean algebra satisfies many of the same laws as ordinary algebra when one matches up ''or'' with addition and ''and'' with multiplication. In particular the following laws are common to both kinds of algebra:  
::{|


:{|
|-
|-
| Associativity of ''or'': ||style="width:2em"| ||style="text-align: right"| <math>+ (y + z)</math> || <math>= (x + y) + z</math>
| <math>= \left(\overline{ \overline{A(A+B)}}\right) \cdot \left(\overline{ B\overline{A}}\right)</math> ||
(DeMorgan's Law)
 
|-
|-
| Associativity of ''and'': || ||style="text-align: right"| <math>x \cdot (y \cdot z)</math> || <math>= (x \cdot y) \cdot z</math>
| <math>= \left(A(A+B)\right) \cdot \left( \overline{B}+\overline{\overline{A}}\right)</math> ||
(Double Negation; DeMorgan's Law)
 
|-
|-
| Commutativity of ''or'': || ||style="text-align: right"| <math>x + y</math> || <math>= y + x</math>
| <math>= A \cdot \left( \overline{B}+A\right)</math> ||
|-
| (Absorption; Double Negation)
| Commutativity of ''and'': || ||style="text-align: right"| <math>x \cdot y</math> || <math>= y \cdot x</math>
 
|-
| Distributivity of ''and'' over ''or'': || ||style="text-align: right"| <math>x \cdot (y + z)</math> || <math>= x \cdot y + x \cdot z</math>
|-
| Identity for ''or'': || ||style="text-align: right"| <math>x + 0</math> || <math>= x</math>
|-
| Identity for ''and'': || ||style="text-align: right"| <math>x \cdot 1</math> || <math>= x</math>
|-
| Annihilator for ''and'': || ||style="text-align: right"| <math>x \cdot 0</math> || <math>= 0</math>
|-
|-
| <math>=A</math>  ||
| (Absorption)
|
|}
|}


The following laws hold in Boolean Algebra, but not in ordinary algebra:
=== Problem 2: Find Solutions ===
:{|
 
|- Annihilator for ''or'': || ||style="text-align: right"| <math>x + 1</math> || <math>= 1</math>
'''Problem:''' Find all orderd pairs $(A,B)$ that make the following expression ''true'':
$ \overline{ \overline{(A+B)} + \overline{A}B }$
 
'''Solution:'''
 
There are typically two approaches to solving this type of problem. One approach is to simplify the expression as much as possible, until
it's obvious what the solutions are. The other approach is to create a truth table of all possible inputs, with columns for each subexpression.
 
The simplification approach is as following:
:$ \overline{\overline{(A+B)} + \overline{A}B}$
::$= \overline{\overline{A+B}} \cdot \overline{\overline{A}B}$
::$= (A+B) \cdot (\overline{\overline{A}}+\overline{B} ) $
::$= (A+B) \cdot (A+\overline{B}) $
::$= AA + A\overline{B} + BA + B\overline{B} $
::$= A + A(\overline{B} + B) + 0 $
::$= A + A(1)$
::$= A + A$
::$=A$
This means that all inputs are valid whenever $A$ is ''true'': $(1,0)$ and $(1,1)$
 
The truth table approach is as following. Each column is the result of a basic operation on two other columns.
:{| class="wikitable" style="text-align: center"
|-
|-
|Annihilator for ''or'': || ||style="text-align: right"| <math>x +1</math>
!style="background-color: #cceeff; font-size: x-small" |#1
|<math>= 1</math>
!style="background-color: #cceeff; font-size: x-small" |#2
!style="background-color: #cceeff; font-size: x-small" |#3
!style="background-color: #cceeff; font-size: x-small" |#4
!style="background-color: #cceeff; font-size: x-small" |#5
!style="background-color: #cceeff; font-size: x-small" |#6
!style="background-color: #cceeff; font-size: x-small" |#7
!style="background-color: #cceeff; font-size: x-small" |#8
 
|-
|-
| Idempotence of ''or'': || ||style="text-align: right"| <math>x +x</math> || <math>= x</math>
|style="background-color: #cceeff"|
|style="background-color: #cceeff"|
!style="background-color: #cceeff; font-size: x-small" |OR of Col#1, Col#2
!style="background-color: #cceeff; font-size: x-small" |NOT of Col#3
!style="background-color: #cceeff; font-size: x-small" |NOT of Col#1
!style="background-color: #cceeff; font-size: x-small" |ADD of Col#1, Col#2
!style="background-color: #cceeff; font-size: x-small" |OR of Col#4, Col#6
!style="background-color: #cceeff; font-size: x-small" |NOT of Col#7
 
|-
|-
| Idempotence of ''and'': || ||style="text-align: right"| <math>x \cdot x</math> || <math>= x</math>
!<math>A</math>
!<math>B</math>
!<math>A+B</math>
!<math>\overline{A+B}</math>
!<math>\overline{A}</math>
!<math>\overline{A}B</math>
!<math>\overline{A+B} + \overline{A}B</math>
!<math>\overline{\overline{A+B} + \overline{A}B}</math>
 
|-
|-
| Absorption 1: || ||style="text-align: right"| <math>x \cdot (x + y)</math> || <math>= x</math>
!0
!0
|0
|1
|1
|0
|1
!0
 
|-
|-
| Absorption 2: || ||style="text-align: right"| <math>x + (x \cdot y)</math> || <math>= x</math>
!0
|-
!1
|Distributivity of ''or'' over ''and'':||  ||style="text-align: right" | <math>x + (y \cdot z)</math>|| <math>=(x + y) \cdot (x +z)</math>
|-
|}


===Nonmonotone laws===
|1
|0
|1
|1
|1
!0


:{|
|-
| Complement of ''and'': || ||style="text-align: right"| <math>x \cdot \overline{x}</math> || <math>= 0</math>
|-
|-
| Complement of ''or'' :|| ||style="text-align: right"| <math>x + \overline{x}</math> || <math>= 1</math>
!1
|-
!0
| Double Negation: || ||style="text-align: right"| <math>\overline{ \overline{x}} </math> || <math>= x </math>
|}


===De Morgan's Laws===
|1
|0
|0
|0
|0
!1


:{|
|-
| DeMorgan 1: || ||style="text-align: right"| <math>\overline{ x} \cdot \overline{y}</math> || <math>= \overline{x +  y}</math>
|-
|-
|-
!1
| DeMorgan 1: || ||style="text-align: right"| <math>\overline{ x} + \overline{y}</math> || <math>= \overline{x \cdot  y}</math>
!1
 
|1
|0
|0
|0
|0
!1
|}
|}


 
The rightmost column is the expression we are solving; it is ''true'' for the 3rd and 4th rows, where the inputs are $(1,0)$ and $(1,1)$.
== Sample Problems ==
 
Problems in this category are typically of the form "Given a Boolean expression, simplify it as much as possible" or "Given a Boolean expression,
find the values of all possible inputs that make the expression ''true''.  
 
=== Sample Problem 1: Simplify ===
 
=== Sample Problem 2: Find Solutions ===
 


== Online Resources ==
== Online Resources ==


A great online tutorial on Boolean Algebra is part of [https://ryanstutorials.net/boolean-algebra-tutorial/ Ryan's Tutorials].
===Websites===
A great online tutorial on Boolean Algebra is part of [https://ryanstutorials.net/boolean-algebra-tutorial/ Ryan's Tutorials]. There are many online Boolean Calculators.  This one gives Truth Tables [https://sheabunge.github.io/boolcalc/ calculator ]. This link that has ads also simplifies and uses ! for NOT [https://www.boolean-algebra.com/ calculator].


===Videos===
The following YouTube videos show ACSL students and advisors working out some previous problems. To access the YouTube page with the video, click on the title of the video in the icon. (You can also play the video directly by clicking on the arrow in the center of the image; however, you'll  
The following YouTube videos show ACSL students and advisors working out some previous problems. To access the YouTube page with the video, click on the title of the video in the icon. (You can also play the video directly by clicking on the arrow in the center of the image; however, you'll  
probably want to have a larger viewing of the video since it contains writing on a whiteboard.) Some of the videos contain ads; ACSL is not responsible for the ads and does not receive compensation in any form for those ads.  
probably want to have a larger viewing of the video since it contains writing on a whiteboard.) Some of the videos contain ads; ACSL is not responsible for the ads and does not receive compensation in any form for those ads.  


{|
{|
|-
| <youtube width="300" height="180">https://youtu.be/1cwO-FtybNw</youtube>
| [https://youtu.be/1cwO-FtybNw ''ACSL Prep - Mrs. Gupta - Boolean Algebra'' ('''MegaChristian5555''')]
Christian is a student participating in ACSL. This video shows how to solve a half-dozen or so Boolean Algebra problems that have appeared in ACSL contests in recent years in the Intermediate and Senior divisions.
|-
|-
| <youtube width="300" height="180">https://youtu.be/HJdhEjpVYsY</youtube>
| <youtube width="300" height="180">https://youtu.be/HJdhEjpVYsY</youtube>
Line 224: Line 364:
(AB+\overline{C})(\overline{A}+BC)(A+\overline{B}+C)
(AB+\overline{C})(\overline{A}+BC)(A+\overline{B}+C)
</math>
</math>
This  
This problem appeared in 2013-2014 in the Senior Division, Contest #3.
problem appeared in 2013-2014 in the Senior Division, Contest #3.
 
|-
| <youtube width="300" height="180">https://youtu.be/KRKTbAZYlLM</youtube>
| [https://youtu.be/KRKTbAZYlLM ''ACSL 3 #1 14-15 - AM'' ('''Gordon Campbell''')]
 
This video walks through the simplification of the expression:
:<math>
\overline{(\overline{A}+B)}(B+C)\overline{(A+\overline{C})}(A\overline{B}+BC)
</math>
This problem appeared in 2014-2015 in the Senior Division, Contest #3.


|-
|-
Line 236: Line 385:
\overline{ (A+B)(\overline{\overline{A}B})}
\overline{ (A+B)(\overline{\overline{A}B})}
</math>
</math>
|}
|}

Latest revision as of 15:22, 24 May 2024

Boolean algebra is the branch of algebra in which the values of the variables and constants have exactly two values: true and false, usually denoted 1 and 0 respectively.

Operators

The basic operators in Boolean algebra are AND, OR, and NOT. The secondary operators are eXclusive OR (often called XOR) and eXclusive NOR (XNOR, sometimes called equivalence). They are secondary in the sense that they can be composed from the basic operators.

  • The AND of two values is true only whenever both values are true. It is written as $xy$ or $x \cdot y$. The values of and for all possible inputs is shown in the following truth table:
[math]\ \ \ \ x\ \ \ \ [/math] [math]\ \ \ \ y\ \ \ \ [/math] [math]\ x y\ [/math]
0 0 0
0 1 0
1 0 0
1 1 1
  • The OR of two values is true whenever either or both values are true. It is written as $x+y$. The values of or for all possible inputs is shown in the following truth table:
[math]\ \ \ \ x\ \ \ \ [/math] [math]\ \ \ \ y\ \ \ \ [/math] [math]\ x + y\ [/math]
0 0 0
0 1 1
1 0 1
1 1 1
  • The NOT of a value is its opposite; that is, the not of a true value is false whereas the not of a false value is true. It is written as $\overline{x}$ or $\neg{x}$. The values of not for all possible inputs is shown in the following truth table:
[math]\ \ \ \ x\ \ \ \ [/math] [math]\ \ \ \ \overline{x}\ \ \ \ [/math]
0 1
1 0
  • The XOR of two values is true whenever the values are different. It uses the $\oplus$ operator, and can be built from the basic operators: $x \oplus y = x\ \overline{y}\ \ +\ \overline{x}\ \ y$ The values of xor for all possible inputs is shown in the following truth table:
[math]\ \ \ \ x\ \ \ \ [/math] [math]\ \ \ \ y\ \ \ \ [/math] [math]\ x \oplus y\ [/math]
0 0 0
0 1 1
1 0 1
1 1 0
  • The XNOR of two values is true whenever the values are the same. It is the NOT of the XOR function. It uses the $\odot$ operator: $x \odot y = \overline{x \oplus y}$. The xnor can be built from basic operators: $x \odot y = x y + \overline{x} \overline{y}$ The values of xnor for all possible inputs is shown in the following truth table:
[math]\ \ \ \ x\ \ \ \ [/math] [math]\ \ \ \ y\ \ \ \ [/math] [math]\ x \odot y\ [/math]
0 0 1
0 1 0
1 0 0
1 1 1

Just as algebra has basic rules for simplifying and evaluating expressions, so does Boolean algebra.

Why is Boolean Algebra Important for ACSL Students?

Boolean algebra is important to programmers, computer scientists, and the general population.

  • For programmers, Boolean expressions are used for conditionals and loops. For example, the following snippet of code sums the even numbers that are not also multiples of 3, stopping when the sum hits 100:
s = 0
x = 1
while (s < 100):
    if (x % 2 == 0) and (x % 3 != 0)
        then s = s + x
    x = x + 1

Both the conditional statement s < 100 and the Boolean expression with 2 conditional statements (x % 2 == 0) and (x % 3 != 0) evaluate to true or false.

  • For computer scientists, Boolean algebra is the basis for digital circuits that make up a computer's hardware. The Digital Electronics category concerns a graphical representation of a circuit. That circuit is typically easiest to understand and evaluate by converting it to its Boolean algebra representation.
  • The general population uses Boolean algebra, probably without knowing that they are doing so, when they enter search terms in Internet search engines. For example, the search expression jaguar speed -car is parsed by the search engine as the Boolean expression "jaguar" and "car" and not "speed"; it returns pages about the speed of the jaguar animal, not the Jaguar car.

Laws

A law of Boolean algebra is an identity such as [math]x + (y + z) = (x + y) + z[/math] between two Boolean terms, where a Boolean term is defined as an expression built up from variables, the constants 0 and 1, and operations and, or, not, xor, and xnor.

Like ordinary algebra, parentheses are used to group terms. When a not is represented with an overhead horizontal line, there is an implicit grouping of the terms under the line. That is, $x \cdot \overline{y + z}$ is evaluated as if it were written $x \cdot \overline{(y + z)}.$

Order of Precedence

The order of operator precedence is not; then and; then xor and xnor; and finally or. Operators with the same level of precedence are evaluated from left-to-right.

Fundamental Identities

Commutative Law – The order of application of two separate terms is not important. $x+y = y+x$ $x \cdot y = y \cdot x$
Associative Law – Regrouping of the terms in an expression doesn't change the value of the expression. $(x + y) + z$ = $x + (y + z)$ $x \cdot (y \cdot z) = (x \cdot y) \cdot z$
Idempotent Law – A term that is or'´ed or and´ed with itself is equal to that term. $ x +x = x $ $x \cdot x = x$
Annihilator Law – A term that is or'´ed with 1 is 1; a term and´ed with 0 is 0. $x + 1 = 1$ $ x \cdot 0 = 0 $
Identity Law – A term or´ed 0 or and´ed with a 1 will always equal that term. $x + 0 = x$ $x \cdot 1 = x$
Complement Law – A term or´ed with its complement equals 1 and a term and´ed with its complement equals 0. $x + \overline{x} = 1 $ $x \cdot \overline{x} = 0$
Absorptive Law – Complex expressions can be reduced to a simpler ones by absorbing like terms.

$x+x y = x$

$ x +\overline{x}y = x + y $

$x (x+y) = x$

Distributive Law – It's OK to multiply or factor-out an expression.

$x \cdot (y + z) = xy + xz$

$(x+y) \cdot (p + q) = xp + xq +yp + yq$

$(x+y)(x+z)=x + yz $

DeMorgan's Law – An or (and) expression that is negated is equal to the and (or) of the negation of each term. $\overline{x+y} = \overline{x} \cdot \overline{y}$ $\overline{x \cdot y} = \overline{x} + \overline{y}$
Double Negation – A term that is inverted twice is equal to the original term. $\overline{\overline{x}} = x $
Relationship between XOR and XNOR $ x\odot y = \overline{x\oplus y} = x \oplus \overline{y} =\overline{x} \oplus {y}$

Sample Problems

Problems in this category are typically of the form "Given a Boolean expression, simplify it as much as possible" or "Given a Boolean expression, find the values of all possible inputs that make the expression true." Simplify means writing an equivalent expression using the fewest number of operators.

Problem 1: Simplify the Expression

Problem: Simplify the following expression as much as possible: $ \overline{ \overline{A(A+B)} + B\overline{A}}$

Solution:

The simplification proceeds as follows:

$\overline{ \overline{A(A+B)} + B\overline{A}}$
[math]= \left(\overline{ \overline{A(A+B)}}\right) \cdot \left(\overline{ B\overline{A}}\right)[/math] (DeMorgan's Law)
[math]= \left(A(A+B)\right) \cdot \left( \overline{B}+\overline{\overline{A}}\right)[/math] (Double Negation; DeMorgan's Law)
[math]= A \cdot \left( \overline{B}+A\right)[/math] (Absorption; Double Negation)
[math]=A[/math] (Absorption)

Problem 2: Find Solutions

Problem: Find all orderd pairs $(A,B)$ that make the following expression true: $ \overline{ \overline{(A+B)} + \overline{A}B }$

Solution:

There are typically two approaches to solving this type of problem. One approach is to simplify the expression as much as possible, until it's obvious what the solutions are. The other approach is to create a truth table of all possible inputs, with columns for each subexpression.

The simplification approach is as following:

$ \overline{\overline{(A+B)} + \overline{A}B}$
$= \overline{\overline{A+B}} \cdot \overline{\overline{A}B}$
$= (A+B) \cdot (\overline{\overline{A}}+\overline{B} ) $
$= (A+B) \cdot (A+\overline{B}) $
$= AA + A\overline{B} + BA + B\overline{B} $
$= A + A(\overline{B} + B) + 0 $
$= A + A(1)$
$= A + A$
$=A$

This means that all inputs are valid whenever $A$ is true: $(1,0)$ and $(1,1)$

The truth table approach is as following. Each column is the result of a basic operation on two other columns.

#1 #2 #3 #4 #5 #6 #7 #8
OR of Col#1, Col#2 NOT of Col#3 NOT of Col#1 ADD of Col#1, Col#2 OR of Col#4, Col#6 NOT of Col#7
[math]A[/math] [math]B[/math] [math]A+B[/math] [math]\overline{A+B}[/math] [math]\overline{A}[/math] [math]\overline{A}B[/math] [math]\overline{A+B} + \overline{A}B[/math] [math]\overline{\overline{A+B} + \overline{A}B}[/math]
0 0 0 1 1 0 1 0
0 1 1 0 1 1 1 0
1 0 1 0 0 0 0 1
1 1 1 0 0 0 0 1

The rightmost column is the expression we are solving; it is true for the 3rd and 4th rows, where the inputs are $(1,0)$ and $(1,1)$.

Online Resources

Websites

A great online tutorial on Boolean Algebra is part of Ryan's Tutorials. There are many online Boolean Calculators. This one gives Truth Tables calculator . This link that has ads also simplifies and uses ! for NOT calculator.

Videos

The following YouTube videos show ACSL students and advisors working out some previous problems. To access the YouTube page with the video, click on the title of the video in the icon. (You can also play the video directly by clicking on the arrow in the center of the image; however, you'll probably want to have a larger viewing of the video since it contains writing on a whiteboard.) Some of the videos contain ads; ACSL is not responsible for the ads and does not receive compensation in any form for those ads.

ACSL Boolean Algebra Contest 2 Worksheet 1 (misterminich)

Mr. Minich is an ACSL advisor. This video was one of two he created to help prepare his students for the ACSL Boolean algebra category. It shows solutions to 5 different problems that have appeared in recent years.

ACSL Boolean Algebra Contest 2 Worksheet 2 (misterminich)

Mr. Minich is an ACSL advisor. This video was one of two he created to help prepare his students for the ACSL Boolean algebra category. It shows solutions to 5 different problems that have appeared in recent years.

ACSL 3 13-14 #1 - AM (Gordon Campbell)

This video walks through the solution to finding all ordered triples that make the following Boolean expression true:

[math] (AB+\overline{C})(\overline{A}+BC)(A+\overline{B}+C) [/math]

This problem appeared in 2013-2014 in the Senior Division, Contest #3.

ACSL 3 #1 14-15 - AM (Gordon Campbell)

This video walks through the simplification of the expression:

[math] \overline{(\overline{A}+B)}(B+C)\overline{(A+\overline{C})}(A\overline{B}+BC) [/math]

This problem appeared in 2014-2015 in the Senior Division, Contest #3.

A general tutorial on boolean algebra that can be used for American Computer Science League. (Tangerine Code)

Walks through the simplification of the following Boolean expression:

[math] \overline{ (\overline{A + \overline{B}})(AB)} + \overline{ (A+B)(\overline{\overline{A}B})} [/math]