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I want to be able to pair up all parentheses in a string, if they aren't paired then then they get their index number and False. It seems like it is repeating some values over and over, i.e cl == pop[1]. I have tried to see where the problem is but I can't see it no matter how hard I try. So I'm asking if anyone help me to locate the error and maybe even improve my code ;)

def check_parentheses(string):
    pending = 0
    brackets = []
    '''Checks if parens are paired, otherwise they are bad.'''
    parenstack = collections.deque()
    for ch in string:
        if ch in lrmap:
            try:
                cl = string.index(ch, pending)
                pending = cl + 1

            except:
                cl = False

        if ch in lparens:
            parenstack.append([ch, cl])
            print parenstack

        elif ch in rparens:
            try:
                pop = parenstack.pop()

                if lrmap[pop[0]] != ch:
                    print 'wrong type of parenthesis popped from stack',\
                    pop[0], ch, pop[1], cl

                    brackets.append([pop[1], False])
                    brackets.append([cl, False])
                else:
                    brackets.append([pop[1], cl])

            except IndexError:
                print 'no opening parenthesis left in stack'
                brackets.append([cl, False])

    # if we are not out of opening parentheses, we have a mismatch
    for p in parenstack:
        brackets.append([p[1],False])
    return brackets
share|improve this question
    
For starters, this script doesn't include all of the variables needed to run it. Luckily, I found the rest of the code online (python-forum.org/pythonforum/viewtopic.php?f=14&t=5842). Anyway, you might want to post some examples of how the function is run, what you expect as output, and what you get instead. –  Mark Hildreth Jul 15 '11 at 1:45
    
More info about punctuation matching here. –  pcperini Jul 15 '11 at 1:47
    
@Patrick: Note the accepted answer for the question you linked to. –  Marcelo Cantos Jul 15 '11 at 1:48
    
I'll edit the post after I get this foot out of my mouth. –  pcperini Jul 15 '11 at 1:50
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3 Answers

up vote 5 down vote accepted

You can adapt my code to a similar question:

def Evaluate(str):
  stack = []
  pushChars, popChars = "<({[", ">)}]"
  for c in str :
    if c in pushChars :
      stack.append(c)
    elif c in popChars :
      if not len(stack) :
        return False
      else :
        stackTop = stack.pop()
        balancingBracket = pushChars[popChars.index(c)]
        if stackTop != balancingBracket :
          return False
    else :
      return False
  return not len(stack)
share|improve this answer
add comment
iparens = iter('(){}[]<>')
parens = dict(zip(iparens, iparens))
closing = parens.values()

def balanced(astr):
    stack = []
    for c in astr:
        d = parens.get(c, None)
        if d:
            stack.append(d)
        elif c in closing:
            if not stack or c != stack.pop():
                return False
    return not stack

Example:

>>> balanced('[1<2>(3)]')
True
>>> balanced('[1<2(>3)]')
False
share|improve this answer
add comment

Thanks hughdbrown your code was a breeze to get working and it's really short! You've just saved me a headache :D

converted it to pep8 if thats ok :)

Edit

  • Added support for comments and strings, it will not match inside them.
  • Added support for easy language brace checking, modify the charset dict.
  • Correctly paires up, i.e right to left

HTML

charset = dict(opening='{[(<',\
    closing='}])>',\
    string = ('"', "'"),\
    comment=(('<!--', '-->')))

Python

charset = dict(opening='{[(<',\
    closing='}])>',\
    string = ('"', "'"),\
    comment=(("'''", "'''"), ('"""', '"""'), ('#', '\n')))

C++

charset = dict(opening='{[(<',\
    closing='}])>',\
    string = ('"', "'"),\
    comment=(('/*', '*/'), ('//', '\n')))

you get the point? :)

charset = dict(opening='{[(<',\
    closing='}])>',\
    string = ('"', "'"),\
    comment=(('<!--', '-->'), ('"""', '"""'), ('#', '\n')))

allowed = ''.join([x[0][0] + x[1][0] for x in charset['comment']])
allowed += ''.join(charset['string'])
allowed += charset['opening']
allowed += charset['closing']

def brace_check(text):
    o = []
    c = []
    notr = []
    found = []
    busy = False
    last_pos = None
    for i in xrange(len(text)):
        ch = text[i]
        if not busy:
            cont = True
            for comment in charset['comment']:
                if ch == comment[0][0]:
                    como = text[i:len(comment[0])]
                    if como == comment[0]:
                        busy = comment[1]
                        if ch in charset['opening']:
                            last_pos = i
                        cont = False
                        break
            if cont:
                if ch in charset['string']:
                    busy = ch
                elif ch in charset['opening']:
                    o.append((ch, i))
                elif  ch in charset['closing']:
                    c.append((ch, i))
        else:
            if ch == busy[0]:
                if len(busy) == 1:
                    comc = ch
                else:
                    comc = text[i:i + len(busy)]
                if comc == busy:
                    if last_pos is not None:
                        if busy[-1] in charset['closing']:
                            found.append((last_pos, i))
                        last_pos = None
                        text = text[:i] + '\n' * len(comc) +\
                            text[i + len(comc):]
                    busy = not busy
            elif busy in charset['string']:
                if ch == '\n':
                    busy = not busy
    for t, e in reversed(o):
        try:
            n = next((b, v) for b, v in c\
                if b == charset['closing'][\
                    charset['opening'].find(t)] and v > e)
            c.remove(n)
            n = n[1]
            if found != []:
                if e < found[-1][0] and n > found[-1][0] and n < found[-1][1]\
                or e < found[-1][1] and n > found[-1][1] and e > found[-1][0]:
                    found.append((n, False))
                    n = False
        except StopIteration:
            n = False
        found.append((e, n))
    for t, e in c:
        found.append((e, False))
    return found
share|improve this answer
    
The code is really complicated and hard to read. I suggest posting it on codereview.stackexchange.com for some advice on how to clean it up. –  Winston Ewert Jul 17 '11 at 4:14
    
I agree with @Winston; start by removing most of the blank lines. –  John Machin Jul 17 '11 at 5:55
    
hmm, I think it's easier to read formatted this way. It's funny that everyone think different, will update it shortly, finding out some more bugs :) –  thabubble Jul 17 '11 at 11:54
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