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Let's start with little example; I have the following text:

[[ some tag [[ with tag nested ]] and again ]]

I'd like to match [[ with tag nested ]] but not [[ some tag [[ with tag nested ]] . Simple

\[\[(?<content>.+?)\]\]

obviously didn't work. So I created regexp:

\[\[(?!.*?\[\[.*?\]\].*?)(?<content>.+?)\]\]

Unfortunately it doesn't match anything using C# (with MatchOptions.SingleLine), while PHP's preg_match works perfectly.

Any clues/ideas? Any help would be much appreciated.

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I got no problem running your regex in C# with SingleLine option. It returns [[ with tag nested ]] correctly. Can you post your code? –  Harvey Kwok Jan 21 '11 at 0:58
    
I'm not certain I see the problem. I created a System.Text.RegularExpressions.Regex using your second pattern and the RegexOptions.Singleline then called Match on your example string. It came back with one capture of "[[ with tag nested ]]". –  Harry Steinhilber Jan 21 '11 at 1:00
    
@Harry: Try it with this input: [[ outer1 [[ nested1 ]] outer2 [[ nested2 ]] outer3 ]]. If I understand the question correctly, it should match nested1 and nested2, but it only matches nested2. –  Alan Moore Jan 21 '11 at 3:05
    
Sorry for confusion, but I simplified the example so the expected result would be easier to understand. Supprisingly, the example provided succeded with the regexp... but not the real subjects. Alan is right, I wanted to match all nested tags. Thank you all for the time spent on help. –  Avaer Jan 21 '11 at 17:34

2 Answers 2

up vote 1 down vote accepted

The simplest way that I know of to find just one of the innermost brackets is this:

var match = Regex.Match(input, @"^.*(\[\[(.*?)\]\])", RegexOptions.Singleline);

This works because it finds the last [[ (so there are no more [[ after it, so it can’t contain any nested tags) and then the immediately following ]]. Of course, this assumes well-formedness; if you have a string where the start/end brackets don’t match up properly, this can fail.

Once you’ve found the innermost bracket, you could remove it from the input string:

input = input.Remove(match.Groups[1].Index, match.Groups[1].Length);

and then repeat the process in a while loop until the regular expression no longer matches.

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I'm afraid this does not produce what I (and you probably) wanted to: it matches from the first [[ . Anyway, thanks for the response. –  Avaer Jan 21 '11 at 17:29
    
@Avaer: No, it doesn’t. It works just fine. Have you tried it? If you think it fails, please provide an example input for which it fails. –  Timwi Jan 21 '11 at 22:04
    
I owe you an apologise, I did not observe the content of Groups[1], but in my rush just checked Value. It does work. Thanks again. –  Avaer Jan 29 '11 at 21:58

Would this be a valid match?

[[ with [ single ] brackets ]]

If not, this regex should do:

 \[\[(?<content>[^][]*)\]\]

[^][] matches any character that's not [ or ]. If single braces are allowed, try this:

\[\[(?<content>(?:(?!\[\[|\]\]).)*)\]\]

(?!\[\[|\]\]). matches any character, but only after making sure it's not the start of a [[ or ]] sequence.

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This works fine. Thank you! –  Avaer Jan 21 '11 at 17:30
    
@Avaer: So does mine, and mine is simpler. –  Timwi Jan 21 '11 at 21:59
    
@Timwi, I prefer Alan's suggestion. Perhaps yours is simpler in the sense that the regex is shorter, but figuring out why it works (because the first .* consumes the entire line, and then back-tracks to the last [[) is not that intuitive. Besides, your proposition does not handle cases like aaa [[ bbb ccc ]] [[ ddd. –  Bart Kiers Jan 21 '11 at 22:38
    
@Bert: The example you gave is handled by my regex just fine. Have you tried it? — Also, I’m amused how you think this one here is easier to figure out; it’s hideous in comparison :) –  Timwi Jan 22 '11 at 14:27
    
@Timwi: Try it with the example I used in another comment: [[outer1[[nested1]]outer2[[nested2]]outer3]]. Using the Matches() method, your regex captures only nested2, while mine captures nested1 and nested2 as desired. I agree it's hideous, but it's as simple as it can be and still meet the requirements. –  Alan Moore Jan 22 '11 at 20:19

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