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I 'd like to create a regex that matches unmatched right square brackets. Examples:

]ichael ==> match ]

[my name is Michael] ==> no match

No nested pairs of of square brackets occur in my text.

I tried to use negative lookbehind for that, more specifically I use this regex: (?<!\[(.)+)\] but it doesn't seem to do the trick.

Any suggestions?

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which regex flavor are you using? –  Martin Büttner Jul 1 '13 at 13:15
    
I am trying RegExr to test things a bit but I don't know which engine is it using. I ll apply it with either Java or Python –  Yannis P. Jul 1 '13 at 13:31
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That uses ECMAScript flavor as implemented by ActionScript. Better use a tester that uses the flavor you will use eventually like regexplanet.com –  Martin Büttner Jul 1 '13 at 13:32
    
Your insistence that the regex consume the errant bracket and nothing else is making the job much more difficult than it needs to be. Why do you have to do it that way? If you can explain that, we might be able to devise a better approach. Help us help you! –  Alan Moore Jul 1 '13 at 15:42
    
@AlanMoore Hey Alan, here is the thing: I am having a text that I want to cleanse. In the text whenever a word starts with an unmatched ]. eg. ]ichael I know that a special character should appear in this place. However, the text contains also parts where square brackets are used with their normal use as in [my name is Michael]. I am able to circumvent this but I thought to play a bit with regexes as well just for the sake of it –  Yannis P. Jul 1 '13 at 16:19
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4 Answers 4

Unless you are using .NET, lookbehinds have to be of fixed length. Since you just want to detect whether there are any unmatched closing brackets, you don't actually need a lookbehind though:

^[^\[\]]*(?:\[[^\[\]]*\][^\[\]]*)*\]

If this matches you have an unmatched closing parenthesis.

It's a bit easier to understand, if you realise that [^\[\]] is a negated character class that matches anything but square brackets, and if you lay it out in freespacing mode:

^              # start from the beginning of the string
[^\[\]]*       # match non-bracket characters
(?:            # this group matches matched brackets and what follows them
  \[           # match [
  [^\[\]]*     # match non-bracket characters
  \]           # match ]
  [^\[\]]*     # match non-bracket characters
)*             # repeat 0 or more times
\]             # match ]

So this tries to find a ] after matching 0 or more well-matched pairs of brackets.

Note that the part between ^ and ] is functionally equivalent to Tim Pietzker's solution (which is a bit easier to understand conceptually, I think). What I have done, is an optimization technique called "unrolling the loop". If your flavor provides possessive quantifiers, you can turn all * into *+ to increase efficiency even further.


About your attempt

Even if you are using .NET, the problem with your pattern is that . allows you to go past other brackets. Hence, you'd get no match in

[abc]def]

Because both the first and the second ] have a [ somewhere in front of them. If you are using .NET, the simplest solution is

(?<!\[[^\[\]]*)\]

Here we use non-bracket characters in the repetition, so that we don't look past the first [ or ] we encounter to the left.

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Be aware that if you end up using Java you'll have to escape all of the literal brackets: [^\[\]]*\]. Then you'll have to escape the escapes when you write it as a Java string literal: "[^\\[\\]]*\\]". –  Alan Moore Jul 1 '13 at 16:17
    
@AlanMoore thanks. I wasn't aware that Java doesn't allow unambiguously unescaped brackets. –  Martin Büttner Jul 1 '13 at 16:21
    
It does automatically escape a closing bracket if it's the first character listed (e.g. []], [^]]). I usually escape it anyway; the readability hit of the extra characters is more than offset by the increased visual symmetry. It makes it easier to port the regex to other flavors, too. –  Alan Moore Jul 1 '13 at 16:59
    
@AlanMoore fair enough, good point. Let's conclude, matching square brackets with regex is the worst. –  Martin Büttner Jul 1 '13 at 17:07
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You don't need lookaround at all (and it would be difficult to use it most languages don't allow unlimited-length lookbehind assertions):

((?:\[[^\[\]]*]|[^\[\]]*)*+)\]

will match any text that ends in a closing bracket unless there's a corresponding opening bracket before it. It does not (and according to your question doesn't need to) handle nested brackets.

The part before the ] can be found in $1 so you can reuse it later.

Explanation:

(           # Match and capture in group number 1:
 (?:        # the following regex (start of non-capturing group):
  \[        # Either a [
  [^\[\]]*  # followed by non-brackets
  \]        # followed by ]
 |          # or
  [^\[\]]*  # Any number of non-bracket characters
 )*+        # repeat as needed, match possessively to avoid backtracking
)           # End of capturing group
\]          # Match ]
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@m.buettner: Yes, I just noticed that, too :) –  Tim Pietzcker Jul 1 '13 at 13:18
    
Hi Tim. Well perhaps RegExr is not the best place to test but your regex is capturing the the text that is included between square brackets as well. And how about if I only want to capture the right bracket and not the text? –  Yannis P. Jul 1 '13 at 13:28
    
@YannisP.: It has to match it, otherwise it wouldn't know whether the next ] is single or not. As for your second question, that depends on your regex engine (m.buettner asked for that info a while ago, remember?). –  Tim Pietzcker Jul 1 '13 at 13:31
    
@YannisP. so you want to match just the ] instead of the whole text. May I ask why? Although it is possible with non-.NET regex, it would probably complicate things a lot, and I suspect there might be better solutions to your ultimate goal. –  Martin Büttner Jul 1 '13 at 13:52
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This should do it:

'^[^\[]*\]'

Basically says pick out any closing square bracket that doesn't have an open square bracket between it and the beginning of the line.

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Thanks Dave. How could I just match the right ']' on the string? –  Yannis P. Jul 1 '13 at 13:33
    
Not sure what is you are trying to do but you could use this '(?<=^[^[]*)]' which uses a look behind. But what is the point of matching a square bracket when you know it's a square bracket? –  Dave Sexton Jul 1 '13 at 13:56
    
@DaveSexton then you have a negative lookbehind of variable length again. –  Martin Büttner Jul 1 '13 at 14:03
    
That regex works correctly whenever the closing bracket is the first square bracket it sees, but not if there's a balanced pair of brackets ahead of it, as in [I've got a nickel]]. –  Alan Moore Jul 1 '13 at 15:58
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\](.*)

Will match on everything after the "]".

]ichael -> ichael

[my name is Michael] ->

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But it doesn't tell you anything about whether that closing bracket has a matching opening bracket. –  Martin Büttner Jul 1 '13 at 13:21
    
This does not answer the question –  Dave Sexton Jul 1 '13 at 13:32
    
Welcome to Stack Overflow! I hate to downvote a brand-new user, but this isn't even close. You'll get the points back if you delete the answer. –  Alan Moore Jul 1 '13 at 16:05
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