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I am trying to write a regular expression to match any string that satisfies the following criteria.

The string begins and ends with a matching pair of parentheses '(' ')'

There may be any number of parentheses within it.

For example my regex shud match :

( ( p(x)+q(x) ) . (p(x) * q(x) ) )

but not match

( p(x)+q(x) ) . ( p(x) * q(x) )

How do i write such a regex

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Are you trying to say that all the internal parenthesis must match as well? If that is the case, I believe you would need to use a Push-Down-Automata instead of a regular expression to solve that, as a Finite-State-Automata (which define the space for a regex) does not allow for that type of a check. –  aperkins Sep 13 '10 at 16:11
    
To clarify my comment - if you are looking for a regex to solve a[n]b[n], where you have an equal number of a –  aperkins Sep 13 '10 at 16:11
    
dangit - stupid enter key - continuing: an equal number of a's and b's, then you would not be able to solve that general case with a regular expression. Based on what you have described, it seems like that is what you are looking for (in a variation, of course) which would require a PDA. –  aperkins Sep 13 '10 at 16:12
    
To clarify, i am assuming that in my input all parentheses match. The only issue is that i want to capture those strings where the very first '(' matches the last ')'. That is, something like ( ... ) –  AnkurVj Sep 13 '10 at 16:21
    
Now if i write a regex like ^\(.*\)$ JavaStyle then i match also the strings of the form (..)(..) and not just ( .... ) –  AnkurVj Sep 13 '10 at 16:23
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2 Answers 2

up vote 2 down vote accepted

Please do a better search next time: http://www.google.com/search?q=site%3Astackoverflow.com+regex+match+parentheses&ie=utf-8&oe=utf-8&aq=t&rls=org.mozilla:en-US:official&client=firefox-a

Here's your answer: http://stackoverflow.com/questions/546433/regular-expression-to-match-outer-brackets

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Thanx for the pointer –  AnkurVj Sep 13 '10 at 16:32
    
Yep, as the accepted answer notes - this is a simple algorithmic problem, not really appropriate for regex. Thanks for the link. –  aperkins Sep 13 '10 at 16:55
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Doing any sort of parsing like this using regular expressions is difficult and almost always a bad idea. See this answer to this question. Oh, the horror!

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lol nicely put by the author –  AnkurVj Sep 13 '10 at 17:24
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