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I got a assignment for balancing parentheses using scala. I wrote this code:

def balance(chars: List[Char]): Boolean = {

def check(sent: List[Char], count: Int): Int =
  if (sent.isEmpty)
    count
  else if (sent.head == '(')
    check(sent.tail, count + 1)
  else if (sent.head == ')')
    check(sent.tail, count - 1)
  else
    check(sent.tail, count)

     check(chars, 0) == 0 }

but this code fails in "())(" any idea to implement this code correct?

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closed as too localized by folone, om-nom-nom, Rex Kerr, dreamcrash, sschaef Mar 30 '13 at 20:33

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10  
You're going to break honor code. –  om-nom-nom Mar 30 '13 at 19:57
3  
coursera.org/about/honorcode –  folone Mar 30 '13 at 19:58
1  
If you have zero open parentheses, and you find a close parentheses, is everything cool, or is something wrong? Now, can you make your code reflect this? –  Rex Kerr Mar 30 '13 at 20:00
    
You should try to think of the parentheses as having a canceling effect. When you see a left paren, save it. When you see a right paren, remove the left paren. The idea is that at the end of the process, whatever container you were putting parentheses in is empty. –  Hunter McMillen Mar 30 '13 at 20:27
    
Also, don't try to pawn your coursera hw on others. –  Hunter McMillen Mar 30 '13 at 20:28

1 Answer 1

up vote 5 down vote accepted

Not giving any code away, just clarifying the likely spec. All your code is doing is counting the number of right and left parens, and making sure they are equal. That's a necessary condition, but not sufficient. For balanced parentheses, you also need to show that as you scan through the string, the number of '('s you have seen must always be greater than or equal to the number of ')'s seen.

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