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Based on slides by:Charles Kime & Thomas Kaminski © 2004 Pearson Education, Inc. Terms of Use (Hyperlinks are active in View Show mode) Terms of Use ECE/CS.

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Presentation on theme: "Based on slides by:Charles Kime & Thomas Kaminski © 2004 Pearson Education, Inc. Terms of Use (Hyperlinks are active in View Show mode) Terms of Use ECE/CS."— Presentation transcript:

1 Based on slides by:Charles Kime & Thomas Kaminski © 2004 Pearson Education, Inc. Terms of Use (Hyperlinks are active in View Show mode) Terms of Use ECE/CS 352: Digital System Fundamentals Lecture 5 – Basics of Boolean Algebra

2 Chapter 2 2 Outline  Boolean Algebra  Boolean Properties and Identities  Boolean Algebraic Proofs  Useful Theorems  Algebraic Simplification  Complementing Functions  Function Evaluation

3 Chapter 2 3 1. 3. 5. 7. 9. 11. 13. 15. 17. Commutative Associative Distributive DeMorgan’s 2. 4. 6. 8. X. 1 X = X. 00 = X. XX = 0 = Boolean Algebra  An algebraic structure defined on a set of at least two elements, B, together with three binary operators (denoted +, · and ) that satisfies the following basic identities: 10. 12. 14. 16. X + YY + X = (X + Y)Z + X + (YZ)Z) += X(Y + Z)XYXZ += X + YX. Y = XYYX = (XY)ZX(YX(YZ)Z) = X+ YZ(X + Y)(X + Z)= X. YX + Y = X + 0 X = + X 11 = X + XX = 1 = X = X Define existence Of 0 and 1 Idempotence Existence of Complement Involution Dual Functions: 1.Swap +/ · 2.Swap 0/1

4 Chapter 2 4  The identities above are organized into pairs. These pairs have names as follows: 1-4 Existence of 0 and 1 5-6 Idempotence 7-8 Existence of complement 9 Involution 10-11 Commutative Laws 12-13 Associative Laws 14-15 Distributive Laws 16-17 DeMorgan’s Laws  If the meaning is unambiguous, we leave out the symbol “·” Some Properties of Identities & the Algebra  The dual of an algebraic expression is obtained by interchanging + and · and interchanging 0’s and 1’s.  The identities appear in dual pairs. When there is only one identity on a line the identity is self-dual, i. e., the dual expression = the original expression.

5 Chapter 2 5  Unless it happens to be self-dual, the dual of an expression does not equal the expression itself.  Example: F = (A + C) · B + 0 dual F = (A · C + B) · 1 = A · C + B  Example: G = X · Y + (W + Z) dual G =  Example: H = A · B + A · C + B · C dual H =  Are any of these functions self-dual? Some Properties of Identities & the Algebra (Continued) ((X+Y) · (W · Z)') = ((X+Y) ·(W' + Z') (A + B)(A + C)(B + C) (A + BC)(B + C) = AB + AC + BC

6 Chapter 2 6 Boolean Operator Precedence  The order of evaluation in a Boolean expression is: 1.Parentheses 2.NOT 3.AND 4.OR  Consequence: Parentheses appear around OR expressions  Example: F = A(B + C)(C + D)

7 Chapter 2 7 Example 1: Boolean Algebraic Proof  A + A·B = A (Absorption Theorem) Proof Steps Justification A + A·B = A · 1 + A · B X = X · 1 = A · ( 1 + B) X · Y + X · Z = X ·(Y + Z) (Distributive Law) = A · 1 1 + X = 1 = AX · 1 = X  Our primary reason for doing proofs is to learn: Careful and efficient use of the identities and theorems of Boolean algebra, and How to choose the appropriate identity or theorem to apply to make forward progress, irrespective of the application.

8 Chapter 2 8  AB + A’C + BC = AB + A’C (Consensus Theorem) Proof Steps Justification AB + A’C + BC = AB + A’C + 1 · BC 1. X = X = AB + A’C + (A + A’) · BC X + X’ = 1 = AB + A’C + ABC + A’BC X(Y + Z) = XY + XZ (Distributive Law) = AB + ABC + A’C + A’BC X + Y = Y + X (Commutative Law) = AB. 1 + ABC + A’C. 1 + A’C. B X. 1 = X, X. Y = Y. X (Commutative Law) = AB (1 + C) + A’C (1 + B) X(Y + Z) = XY +XZ (Distributive Law) = AB. 1 + A’C. 1 = AB + A’C X. 1 = X Example 2: Boolean Algebraic Proofs

9 Chapter 2 9 xy  y           Useful Theorems   ninimizatioMyyyxyyyx     tionSimplifica yxyxyxyx       Consensuszyxzyzyx              zyxzyzyx  Laws sDeMorgan'xx   xx x x xx xx yx  y

10 Chapter 2 10 Expression Simplification  An application of Boolean algebra  Simplify to contain the smallest number of literals (complemented and uncomplemented variables): = AB + ABCD + A C D + A C D + A B D = AB + AB(CD) + A C (D + D) + A B D = AB + A C + A B D = B(A + AD) +AC = B (A + D) + A C 5 literals  DCBADCADBADCABA Absorption: X + XY = X Simplification: X + X’Y = X + Y

11 Chapter 2 11 Complementing Functions  Use DeMorgan's Theorem to complement a function: 1.Interchange AND and OR operators 2.Complement each constant value and literal  Example: Complement F = F = (x + y + z)(x + y + z) x  zyzyx

12 Chapter 2 12 Boolean Function Evaluation z x yx F4 x z yx zyx F3 x F2 xy F1     z yz  y  1 0 0 1 1 1 0 0 0 1 0 1 1 1 0 0 0 0 0 0 0 0 1 0 0 1 0 0 1 1 1 1

13 Chapter 2 13 Summary  Boolean Algebra  Boolean Properties and Identities  Boolean Algebraic Proofs  Useful Theorems  Algebraic Simplification  Complementing Functions  Function Evaluation

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