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1 Module 30 EQUAL language –Designing a CFG –Proving the CFG is correct.

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1 1 Module 30 EQUAL language –Designing a CFG –Proving the CFG is correct

2 2 EQUAL language Designing a CFG

3 3 EQUAL EQUAL is the set of strings over {a,b} with an equal number of a’s and b’s Strings in EQUAL include –aabbab –bbbaaa –abba Strings in {a,b}* not in EQUAL include –aaa –bbb –aab –ababa

4 4 Designing a CFG for EQUAL * Think recursively Base Case –What is the shortest possible string in EQUAL? –Production Rule:

5 5 Recursive Case * Recursive Case –Now consider a longer string x in EQUAL –Since x has length > 0, x must have a first character This must be a or b –Two possibilities for what x looks like x = ay –What must be true about relative number of a’s and b’s in y? x = bz –What must be true about relative number of a’s and b’s in z?

6 6 Case 1: x=ay * x = ay where y has one extra b –What must y look like? Some examples –b–b –babba –aabbbab –aaabbbb Is there a general pattern that applies to all of the above examples? More specifically, show how we can decompose all of the above strings y into 3 pieces, two of which belong to EQUAL. –Some of these pieces might be the empty string

7 7 Decomposing y y has one extra b –Possible examples b, babba, aabbbab, aaabbbb –Decomposition y = ubv where –u and v both have an equal number of a’s and b’s Decompose the 4 strings above into u, b, v – b, aabbbab, babba, aaabbbb

8 8 Implication * Case 1: x=ay –y has one extra b Case 1 refined: x=aubv –u, v belong to EQUAL Production rule for this case?

9 9 Case 2: x=bz * Case 2: x=bz –z has one extra a Case 2 refined: x=buav –u, v belong to EQUAL Production rule for this case?

10 10 Final Grammar * EG = (V, , S, P) –V = {S} –  = {a,b} –S = S –P:

11 11 EQUAL language Proving CFG is correct

12 12 Is our grammar correct? How do we prove our grammar is correct? –Informal Test some strings Review logic behind program (CFG) design –Formal First, show every string derived by EG belongs to EQUAL –That is, show L(EG) is a subset of EQUAL Second, show every string in EQUAL can be derived by EG –That is, show EQUAL is a subset of L(EG) Both proofs will be inductive proofs –Inductive proofs and recursive algorithms go well together

13 13 L(EG) subset of EQUAL Let x be an arbitrary string in L(EG) What does this mean? –S ==> * EG x Follows from definition of x in L(EG) –We will prove the following If S ==> 1 EG x, then x is in EQUAL If S ==> 2 EG x, then x is in EQUAL If S ==> 3 EG x, then x is in EQUAL If S ==> 4 EG x, then x is in EQUAL...

14 14 Base Case * Statement to be proven: –For all n >= 1, if S ==> n EG x, then x is in EQUAL –Prove this by induction on n Base Case: –n = 1 –What is the set of strings {x | S ==> 1 EG x}? –What do we need to prove about this set of strings?

15 15 Inductive Case Inductive Hypothesis: –For 1 j EG x, then x is in EQUAL Note, this is a “strong” induction hypothesis Traditional inductive hypothesis would take form: –For some n >= 1, if S ==> n EG x, then x is in EQUAL The difference is we assume the basic hypothesis for all integers between 1 and n, not just n Statement to be Proven in Inductive Case: –If S ==> n+1 EG x, then x is in EQUAL

16 16 Infinite Set of Facts –Fact 1 –Fact 2 –Fact 3 –Fact 4 –Fact 5 –Fact 6 –… Base Case –Prove fact 1 Regular inductive case –For n >= 1, Fact n --> Fact n+1 Strong inductive case –For n >= 1, Fact 1 to Fact n --> Fact n+1 “Regular” induction vs Strong induction

17 17 Visualization of Induction Regular Induction Fact 1 Fact 2 Fact 3 Fact 4 Fact 5 Fact 6 Fact 7 Fact 8 Fact 9 Strong Induction Fact 1 Fact 2 Fact 3 Fact 4 Fact 5 Fact 6 Fact 7 Fact 8 Fact 9 ……

18 18 Proving Inductive Case * If S ==> n+1 EG x, then x is in EQUAL –Let x be an arbitrary string such that S ==> n+1 EG x –Examining EG, what are the three possible first derivation steps Case 1: S ==>  ==> n EG x Case 2: S ==> ==> n EG x Case 3: S ==> ==> n EG x –One of the cases is impossible. Which one and why?

19 19 Case 2: S ==> ==> n EG x * This means x has the form aubv where –What can we conclude about u (don’t apply IH)? –What can we conclude about v (don’t apply IH)? Apply the inductive hypothesis –u and v belong to EQUAL –Why do we need the strong inductive hypothesis? Conclude x belongs to EQUAL –x = aubv where u and v belong to EQUAL Clearly the number of a’s in x equals the number of b’s in x

20 20 Case 3: S ==> ==> n EG x This means x has the form buav where –What can we conclude about u (no IH)? –What can we conclude about v (no IH) Apply the inductive hypothesis –u and v belong to EQUAL –Why do we need the strong inductive hypothesis? Conclude x belongs to EQUAL –x = buav where u and v belong to EQUAL Clearly the number of a’s in x equals the number of b’s in x

21 21 L(EG) subset of EQUAL Wrapping up inductive case –In all possible derivations of x, we have shown that x belongs to EQUAL –Thus, we have proven the inductive case Conclusion –By the principle of mathematical induction, we have shown that L(EG) is a subset of EQUAL

22 22 EQUAL subset of L(EG) * Let x be an arbitrary string in EQUAL What does this mean? We will prove the following If |x| = 0 and x is in EQUAL, then x is in L(G) If |x| = 1 and x is in EQUAL, then x is in L(G) If |x| = 2 and x is in EQUAL, then x is in L(G) If |x| = 3 and x is in EQUAL, then x is in L(G)...

23 23 Statement to be proven: –For all n >= 0, if |x| = n and x is in EQUAL, then x is in L(EG) –Prove this by induction on n Base Case: –n = 0 –What is the only string x such that |x|=0 and x is in EQUAL? –Prove this string belongs to L(EG) EQUAL subset of L(EG) *

24 24 Inductive Case Inductive Hypothesis: –For 0 <= j <= n, if |x| =j and x is in EQUAL, then x is in L(EG) Again, this is a “strong” induction hypothesis Statement to be Proven in Inductive Case: –For n >= 0, –if |x| = n+1 and x is in EQUAL, then x is in L(EG)

25 25 Proving Inductive Case * If |x|=n+1 and x is in EQUAL, then x is in L(EG) –Let x be an arbitrary string such that |x|=n+1 and x is in L(EG) –Examining S, what are the two possibilities for the first character in x? Case 1: first character in x is Case 2: first character in x is –In each case, what can we say about the remainder of x? Case 1: the remainder of x Case 2: the remainder of x

26 26 Case 1: x = ay * What can we say about y in this case? This means x has the form aubv where –u is in EQUAL and has length <= n –v is in EQUAL and has length <= n –Proving this statement true Consider all the prefixes of string y –length 0: –length 1: y 1 –length 2: y 1 y 2 –…–… –length n: y 1 y 2 … y n = y

27 27 Case 1: x = ay Consider all the prefixes of string y –length 0: –length 1: y 1 –length 2: y 1 y 2 –…–… –length n: y 1 y 2 … y n = y The first prefix has the same number of a’s as b’s The last prefix y has one extra b The relative number of a’s and b’s changes in the length i prefix differs by only one from the length i-1 prefix Thus, there must be a first prefix t of y where t has one extra b Furthermore, the last character of t must be b –Otherwise, t would not be the FIRST prefix of y with one extra b Break t into u and b and let the remainder of y be v The statement follows

28 28 Case 1: x = aubv * x = aubv –u is in EQUAL and has length <= n –v is in EQUAL and has length <= n Apply the induction hypothesis –What can we conclude from applying the IH? –Why did we need a strong inductive hypothesis? Conclude x is in L(EG) by constructing a derivation –S ==> aSbS ==> * EG aubS ==> * EG aubv Justify each of the derivation steps in this derivation

29 29 Case 2: x = buav x = buav –u is in EQUAL and has length <= n –v is in EQUAL and has length <= n Apply the induction hypothesis –What can we conclude about u and v? Conclude x is in L(EG) by constructing a derivation –S ==> bSaS ==> * EG buaS ==> * EG buav Justify each of the steps in this derivation

30 30 EQUAL subset of L(EG) Wrapping up inductive case –For all possible first characters of x, we have shown that x belongs to L(EG) –Thus, we have proven the inductive case Conclusion –By the principle of mathematical induction, we have shown that EQUAL is a subset of L(EG)

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