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Using JavaScript regular expressions, how can I match the contents in the last set of brackets?

input = "the string (contains) things like (35) )( with (foobar) and )( stuff";

desired_output = "foobar"

Everything I have tried over-matches or fails entirely. Any help would be appreciated.

Thanks.

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1  
I'm not entirely certain, but I have a feeling this fits the definition of something which is impossible to parse with a regular expression. –  Stoive May 17 '12 at 6:09
2  
Your original question was OK, but I'm pretty sure your current example is impossible by regex. Can you define what you mean by "last"? (note that the ( with .. and ) ends the last, whilst (foobar)'s opening bracket is the last opening bracket with a matching closing bracket. And must the set of brackets have no brackets within? For example, one could make a case for (foobar) and) being the "last" set of brackets (the last-occurring opening bracket with a close remaining in the string, and the last closing bracket in the string) –  mathematical.coffee May 17 '12 at 6:12
    
Do you want just to get the contents or to have exact match? –  Eugene Ryabtsev May 17 '12 at 6:13
    
have a look at first level example in stackoverflow.com/q/10447423/1176601 –  Aprillion May 17 '12 at 6:14
    
I'm after the contents of the last set that contains no parenthesis. eg: "foobar" –  moxy May 17 '12 at 6:27

2 Answers 2

One option is to match parentheses that do not contain other parentheses, for example:

var tokens = input.match(/\([^()]*\)/g);
var last = tokens.pop();
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Thanks Kobi. That matches all the ones that don't contain parenthesis. eg: (contains), (35) and (foobar). Is there anyway to only match the contents of the last set without the pop? eg: foobar –  moxy May 17 '12 at 6:32
    
Also, it seems pop returns the first match (eg: contains), not the last (eg: foobar) –  moxy May 17 '12 at 6:48
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@mgm: here a jsfiddle for this answer which cuts the brackets. –  scessor May 17 '12 at 6:54
    
Thanks scessor! That works great. I just added a little error checking so that it doesn't pop null and it seems rock solid. Thanks again. –  moxy May 17 '12 at 8:20

Or as a one liner...

var last = input.match(/\([^()]*\)/g).pop().replace(/(\(|\))/g,"").replace(/(^\s+|\s+$)/g,"");
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