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I am stumped by this practice problem (not for marks):

{w is an element of {a,b}* : the number of a's is even and the number of b's is even }

I can't seem to figure this one out. In this case 0 is considered even. A few acceptable strings: {}, {aa}, {bb}, {aabb}, {abab}, {bbaa}, {babaabba}, and so on

I've done similar examples where the a's must be a prefix, where the answer would be: (aa)(bb) but in this case they can be in any order.

Kleene stars (*), unions (U), intersects (&), and concatenation may be used.

Edit: Also have trouble with this one

{w is an element of {0,1}* : w = 1^r 0 1^s 0 for some r,s >= 1}

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I don't see a question.. –  Kevin Oct 5 '10 at 21:49
    
@Kevin it's in the title –  Alin Purcaru Oct 5 '10 at 21:53
    
@Kevin He wants a regex that accepts a string of a's and b's where the number of both is even. –  NullUserException Oct 5 '10 at 21:54

2 Answers 2

up vote 2 down vote accepted

This is kind of ugly, but it should work:

ε U ( (aa) U (bb) U ((ab) U (ba) (ab) U (ba)) )*

For the second one:

11*011*0

Generally I would use a+ instead of aa* here.

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Based on the phrasing/symbols this is probably from a theory book, and many of them don't actually introduce the + metacharacter. Strictly speaking, it's not part of RE theory, but the Kleene star is. Anyway, + is just syntactic sugar for aa*, similar to how a? is semantically the same as a U ε –  eldarerathis Oct 5 '10 at 22:05
    
@elderathis Yeah, when I took automata theory I had the + :) –  NullUserException Oct 5 '10 at 22:07
    
@NullUserException This looks correct, thank you. I do understand the how these work, but I was having trouble with them. Is there any process you used to help come up with your answers? –  Bobby S Oct 5 '10 at 22:11
    
@Bobby eldarerathis Had a good answer on how to do that, but it's been deleted. You would be able to see it if you had more than 10k rep points, but apparently you don't. –  NullUserException Oct 5 '10 at 22:24
    
@NullUserException I guess, I'll just have to work my way up to 10K –  Bobby S Oct 5 '10 at 22:26

Edit: Undeleted re: the comments in NullUserException's answer.

1) I personally think this one is easier to conceptualize if you first construct a DFA that can accept the strings. I haven't written it down, but off the top of my head I think you can do this with 4 states and one accept state. From there you can create an equivalent regex by removing states one at a time using an algorithm such as this one. This is possible because DFAs and regexes are provably equivalent.

2) Consider the fact that the Kleene star only applies to the nearest regular expression. Hence, if you have two individual ungrouped atoms (an atom itself is a regex!), it only applies to the second one (as in, ab* would match a single a and then any number - including 0 - b's). You can use this to your advantage in a case where you want something to exist, but you're not sure of how many there are.

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