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1 State SymbolRead- Q E(Q) a b a b a b Convert to a DFA: Start state: Final States:

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Presentation on theme: "1 State SymbolRead- Q E(Q) a b a b a b Convert to a DFA: Start state: Final States:"— Presentation transcript:

1 1 State SymbolRead- Q E(Q) a b a b a b Convert to a DFA: Start state: Final States:

2 2 Announcements Assignment #2: Due at beginning of class Friday June 8. Read through the assignment and take any questions you have about it to the tutorial next week.

3 3 P = {(a, bb)(a, ab), (b, ca), (ca, a), (abc, c), (cccc, acc)}, MATCH: (a, ab) (b, ca) (ca, a) (a, ab) (abc, c) a b ca a abc = abcaaabc

4 4 (Comic by Randall Munroe.) CSC 320 Lecture 10: DFA’s and Regular Expressions

5 5 Lecture 11: Regular Languages The goal of the lecture is to prove that: R= { L : L is generated by a regular expression}, and S= { L : L is L(M) for a DFA(M)} are the same sets of languages (R=S). We already proved that S is the same set as T= {L : L = L(M) for some NDFA M} (last class). Before proving this, it is helpful to first show that the set S is closed under union, concatenation and Kleene star.

6 6 A set S is closed with respect to a binary operation · if for all s and t in S, s · t is in S. Examples: N= {0, 1, 2, 3, …} Closed for addition and multiplication. Not closed under subtraction or division.

7 7 The set S = { L : L is L(M) for some DFA M} is closed under union. Let M 1 = (K 1, Σ, δ 1, s 1, F 1 ) accept L 1 and M 2 = (K 2, Σ, δ 2, s 2, F 2 ) accept L 2. Proof 1: A construction for a new DFA M= (K, Σ, δ, s, F) which accepts L 1 ⋃ L 2. Proof 2: A construction for a new NDFA M= (K, Σ, Δ, s, F) which accepts L 1 ⋃ L 2.

8 8 The set S={ L : L is L(M) for some DFA M} is closed under concatenation. Let M 1 = (K 1, Σ, δ 1, s 1, F 1 ) accept L 1 and M 2 = (K 2, Σ, δ 2, s 2, F 2 ) accept L 2. Proof: A construction for a new NDFA M= (K, Σ, Δ, s, F) which accepts L 1 ۰ L 2.

9 9 The set S= { L : L is L(M) for some DFA M} is closed under Kleene star. Let M 1 = (K 1, Σ, δ 1, s 1, F 1 ) accept L 1. Proof: A construction for a new NDFA M= (K, Σ, Δ, s, F) which accepts L 1 *.

10 10 Theorem: If L is a regular language, then L is L(M) for some DFA M. Proof: By showing how to construct a NDFA for L. Last lecture, we proved by construction that for every NDFA, there is an equivalent DFA. So this indirectly gives a construction for a DFA.

11 11 Regular expressions over Σ: [Basis] 1. Φ and σ for each σ  Σ are regular expressions. [Inductive step] If α and β are regular expressions, then so are: 2. ( αβ) 3. (α ⋃ β) and 4. α * Note: Regular expressions are strings over Σ ⋃ { (, ), Φ, ⋃, * } for some alphabet Σ.

12 12 Theorem: If L is accepted by a DFA M, then there is a regular expression which generates L. There is a proof which constructs a regular expression from the DFA in the text (in the proof of Theorem 2.3.2). I expect you to know that this theorem is true but you are not responsible for the proof. Conclusion: A language is regular if and only if it is accepted by a finite automaton.

13 13 The set of S= { L : L is L(M) for some DFA M} is closed under complement. Let M 1 = (K 1, Σ, δ 1, s 1, F 1 ) accept L 1. Proof: A construction for a new DFA M= (K, Σ, δ, s, F) which accepts the complement of L 1. Regular languages are also closed for intersection (assignment #2).

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