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I want to remove "un-partnered" parentheses from a string.

I.e., all ('s should be removed unless they're followed by a ) somewhere in the string. Likewise, all )'s not preceded by a ( somewhere in the string should be removed.

Ideally the algorithm would take into account nesting as well.

E.g.:

"(a)".remove_unmatched_parents # => "(a)"
"a(".remove_unmatched_parents # => "a"
")a(".remove_unmatched_parents # => "a"
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5 Answers 5

Instead of a regex, consider a push-down automata, perhaps. (I'm not sure if Ruby regular expressions can handle this, I believe Perl's can).

A (very trivialized) process may be:

For each character in the input string:

  1. If it is not a '(' or ')' then just append it to the output
  2. If it is a '(' increase a seen_parens counter and add it
  3. If it is a ')' and seen_parens is > 0, add it and decrease seen_parens. Otherwise skip it.

At the end of the process, if seen_parens is > 0 then remove that many parens, starting from the end. (This step can be merged into the above process with use of a stack or recursion.)

The entire process is O(n), even if a relatively high overhead

Happy coding.

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3  
Indeed. This is literally the example that is used in teaching all over the world for a language that cannot be parsed using regular expressions. Now, Ruby's Regexp are significantly more powerful than regular expressions, and they actually can parse this language, but it's not exactly maintainable. You can write a simple recursive-descent parser or push-down automaton in less time than it takes you to even read a Regexp someone else hands you, let alone write your own. And if you break up your Regexp into multiple lines to put comments in, maybe the automaton even ends up shorter. –  Jörg W Mittag Mar 24 '11 at 21:06
    
Thanks for the algorithm. Does my answer (stackoverflow.com/questions/5424959/…) look right to you? –  Horace Loeb Mar 26 '11 at 2:00

The following uses oniguruma. Oniguruma is the regex engine built in if you are using ruby1.9. If you are using ruby1.8, see this: oniguruma.

Update

I had been so lazy to just copy and paste someone else's regex. It seemed to have problem.

So now, I wrote my own. I believe it should work now.

class String
    NonParenChar = /[^\(\)]/
    def remove_unmatched_parens
        self[/
            (?:
                (?<balanced>
                    \(
                        (?:\g<balanced>|#{NonParenChar})*
                    \)
                )
                |#{NonParenChar}
            )+
        /x]
    end
end
  • (?<name>regex1) names the (sub)regex regex1 as name, and makes it possible to be called.
  • ?g<name> will be a subregex that represents regex1. Note here that ?g<name> does not represent a particular string that matched regex1, but it represents regex1 itself. In fact, it is possible to embed ?g<name> within (?<name>...).

Update 2

This is simpler.

class String
    def remove_unmatched_parens
        self[/
            (?<valid>
                \(\g<valid>*\)
                |[^()]
            )+
        /x]
    end
end
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+1 (taking your word it works ;-) ... and my head exploded. –  user166390 Mar 24 '11 at 20:41
    
@pst The previous one actually turned out to have problems. So now, I wrote a different regex myself. This time, it should be okay. Hoping no explosion. –  sawa Mar 25 '11 at 8:42

Build a simple LR parser:

tokenize, token, stack = false, "", []

")(a))(()(asdf)(".each_char do |c|
  case c
  when '('
    tokenize = true
    token = c
  when ')'
    if tokenize
      token << c 
      stack << token
    end
    tokenize = false
  when /\w/
    token << c if tokenize
  end
end

result = stack.join

puts result

running yields:

wesbailey@feynman:~/code_katas> ruby test.rb
(a)()(asdf)

I don't agree with the folks modifying the String class because you should never open a standard class. Regexs are pretty brittle for parser and hard to support. I couldn't imagine coming back to the previous solutions 6 months for now and trying to remember what they were doing!

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Here's my solution, based on @pst's algorithm:

class String
  def remove_unmatched_parens
    scanner = StringScanner.new(dup)
    output = ''
    paren_depth = 0

    while char = scanner.get_byte
      if char == "("
        paren_depth += 1
        output << char
      elsif char == ")"
        output << char and paren_depth -= 1 if paren_depth > 0
      else
        output << char
      end
    end

    paren_depth.times{ output.reverse!.sub!('(', '').reverse! }
    output
  end
end
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1  
So, remove_unmatched_parents was a typo? I thought so. –  sawa Mar 26 '11 at 5:36

Algorithm:

  1. Traverse through the given string.
  2. While doing that, keep track of "(" positions in a stack.
  3. If any ")" found, remove the top element from the stack.
    • If stack is empty, remove the ")" from the string.
  4. In the end, we can have positions of unmatched braces, if any.

Java code: Present @ http://a2ajp.blogspot.in/2014/10/remove-unmatched-parenthesis-from-given.html

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