Boolean simplifier

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Boolean Postulate, Properties, and Theorems

The following postulate, properties, and theorems are valid in Boolean Algebra and are used in simplification of logical expressions or functions:

POSTULATES are self - evident truths.

1a: $A=1$ (if A ≠ 0) 1b: $A=0$ (if A ≠ 1)

2a: $0∙0=0$ 2b: $0+0=0$

3a: $1∙1=1$ 3b: $1+1=1$

4a: $1∙0=0$ 4b: $1+0=1$

5a: $\overline=0$ 5b: $\overline=1$

PROPERTIES that are valid in Boolean Algebra are similar to the ones in ordinary algebra

Commutative $A∙B=B∙A$ $A+B=B+A$

Associative $A∙(B∙C)=(A∙B)∙C$ $A+(B+C)=(A+B)+C$

Distributive $A∙(B+C)=A∙B+A∙C$ $A+(B∙C)=(A+B)∙(A+C)$

THEOREMS that are defined in Boolean Algebra are the following:

1a: $A∙0=0$ 1b: $A+0=A$

2a: $A∙1=A$ 2b: $A+1=1$

3a: $A∙A=A$ 3b: $A+A=A$

4a: $A∙\overline=0$ 4b: $A+\overline=1$

5a: $\overline{\overline}=A$ 5b: $A=\overline{\overline}$

6a: $\overline{A∙B}=\overline+\overline$ 6b: $\overline{A+B}=\overline∙\overline$

By applying Boolean postulates, properties and/or theorems we can simplify complex Boolean expressions and build a smaller logic block diagram (less expensive circuit).

For example, to simplify $AB(A+C)$ we have:

$AB(A+C)$ distributive law

=$ABA+ABC$ cumulative law

=$AAB+ABC$ theorem 3a

=$AB+ABC$ distributive law

=$AB(1+C)$ theorem 2b

=$AB1$ theorem 2a

=$AB$

Although the above is all you need to simplify a Boolean equation. You can use an extension of the theorems/laws to make it easier to simplify. The following will reduce the amount of steps required to simplify but will be more difficult to identify.

7a: $A∙(A+B)=A$ 7b: $A+A∙B=A$

8a: $(A+B)∙(A+\overline)=A$ 8b: $A∙B+A∙\overline=A$

9a: $(A+\overline)∙B=A∙B$ 9b: $A∙\overline+B=A+B$

10: $A⊕B=\overline∙B+A∙\overline$

11: $A⊙B=\overline∙\overline+A∙B$

⊕ = XOR, ⊙ = XNOR

Now using these new theorems/laws we can simplify the previous expression like this.

To simplify $AB(A+C)$ we have:

$AB(A+C)$ distributive law

=$ABA+ABC$ cumulative law

=$AAB+ABC$ theorem 3a

=$AB+ABC$ theorem 7b