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I have to write a function in Haskell that checks whether a string containing open and closed parenthesis is balanced. For every opened parenthesis there must be one closed and an empty string is considered balanced too.

Ex. (()) is balanced
(())) is not balanced.
()(()) is balanced.
()(())) is not balanced.

Thanks

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7  
That's right, you have to write such a function. We could help you, when you tell us where you are stuck. –  Ingo Feb 9 '14 at 15:09
    
In the process of investigating maximally-lazy solutions to this which don't involve writing your own recursion, I discovered semicomonads, as exposed by Data.Functor.Extend in the semigroupoid package. So, thanks for the foray into interesting abstractions. –  Carl Feb 9 '14 at 19:22

2 Answers 2

In general keep a count. Increment if you see a ( and decrement if you see a ). If count becomes negative anywhere or is non zero at the end, you are doomed. Otherwise it is balanced.

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this would make this )( a balanced expression, so you either have to keep track of opened/closed number of parens, or widen your definition of balanced. –  epsilonhalbe Feb 9 '14 at 15:21
3  
No, when you see ) count becomes negative. Hence you are doomed. Count should never be negative, and should be zero at the end –  user3287648 Feb 9 '14 at 15:23
    
okay I misread your answer - I thought you meant if count is negative at the end of the procedure. –  epsilonhalbe Feb 9 '14 at 15:24
2  
I'd go for a foldM in the Maybe or Either e monad, followed by fmap (0 ==), (Just 0 ==) or (Right 0 ==). –  Rhymoid Feb 9 '14 at 15:34
1  
I really like using scanl to generate a running count of the nesting level, then making sure the running count never goes negative and ends at 0. –  Carl Feb 9 '14 at 19:28

Tested function, it works fine:

module Main where
import Data.List

balanced s = length(removePairs s) == 0
 where removePairs []    = []
       removePairs (x:xs)
        | x == '('       = removePairs (removeLast xs 0)
        | (x:xs) == ")"  = "."
        | x == ')'       = xs
        | x == '.'       = (x:xs)
       removeLast []  _  = "."
       removeLast xs n
        | ')' `notElem` xs  = ")"
        | (xs!!n) == ')'    = (fst splitted)++(tail $ snd splitted)
        | length xs == n    = ")"
        | otherwise         = removeLast xs (n+1)
        where splitted      = splitAt n xs

main = print $ balanced "()()()(())" -- prints True

codepad.org

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