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I want to check if the string user entered has a balanced amount of ( and )'s

ex. ()( is not balanced (()) is balanced

def check(string):

        counter=0
        string=string.replace(" ","")

        if string[0] is "(":

           for x in string:
                if x is "(":
                        counter=counter+1
                elif x is ")":
                        counter=counter-1

           if counter1 is 0:
                print("Balanced")
           else:
                print("Unbalanced")
        else:
                print ("Unbalanced")

so this works, but how do I solve this problem with recursion? I am trying to think how I can make a variable decrease each time i call it recursively and once it's 0, stop.s

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3  
Your algorithm gives false positives for strings like )(. –  dan04 Aug 2 '13 at 0:26
    
A stack would be a good data structure to use here. –  squiguy Aug 2 '13 at 0:57
1  
@dan04 Same false positives for the two answers too. All should short circuit everything when a count is less than zero to return unbalanced. –  Sylwester Aug 2 '13 at 1:27
1  
I guess Recursive method for parentheses balancing is related? –  Sylwester Aug 2 '13 at 11:33
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2 Answers

up vote 3 down vote accepted

A direct, equivalent conversion of the algorithm would look like this:

def check(string, counter=0):
  if not string:
    return "Balanced" if counter == 0 else "Unbalanced"
  elif counter < 0:
    return "Unbalanced"
  elif string[0] == "(":
    return check(string[1:], counter+1)
  elif string[0] == ")":
    return check(string[1:], counter-1)
  else:
    return check(string[1:], counter)

Use it like this:

check("(())")
=> "Balanced"

check(")(")
=> "Unbalanced"

Notice that the above algorithm takes into account cases where the closing parenthesis appears before the corresponding opening parenthesis, thanks to the elif counter < 0 condition - hence fixing a problem that was present in the original code.

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1  
Could easily fix that with elif counter < 0: return "Unbalanced" –  Sylwester Aug 2 '13 at 11:31
    
@Óscar López How do I make it so that if (has_letters_here) also return unbalanced? –  Jenny C Aug 2 '13 at 17:27
    
@Jenny And why is that unbalanced? balancing only refers to matching parenthesis. Anyway - it'd be a simple matter of adding one extra case: if the character at index 0 is not ( or ), then it's unbalanced according to your definition –  Óscar López Aug 2 '13 at 19:16
    
@Sylwester I wasn't sure if )( is "unbalanced" according to OP's definition, I believe she's only interested in the number of parenthesis. But anyway, I updated my answer with your suggestion, thanks! –  Óscar López Aug 2 '13 at 19:31
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>>> def check(mystr, barometer=0):
...     if not mystr:
...         return barometer
...     elif mystr[0] == "(":
...         return check(mystr[1:], barometer+1)
...     elif mystr[0] == ")":
...         return check(mystr[1:], barometer-1)
...     else:
...         return check(mystr[1:], barometer)
... 
>>> for s in ["()", "(()", "(())", "()()"]: print(s, check(s))
... 
() 0
(() 1
(()) 0
()() 0

0 means you're properly balanced. Anything else means you're not balanced

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2  
won't this give a false positive for )(? –  andrew cooke Aug 2 '13 at 16:54
    
damnit! I forgot the 0 check on the last elif. –  inspectorG4dget Aug 2 '13 at 20:53
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