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I'm looking for a regular expression (**) that will match an unknown number of nested functions. So

expression
function(expression)
function(function(expression))
function(function(function(expression)))
etc.

will all match successfully. But for instance if I add an extra closing bracket at the end it wouldn't be included in the match.

(**) Please don't answer that this would be easier to do by parsing (and counting brackets) rather than using a regular expression - after scratching my head for a while I know that already!

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1  
This is not a regular language, so there exists no RE that can recognize it. –  larsmans Sep 25 '12 at 13:36
3  
This would be easier to do by parsing (and counting brackets) rather than using a regular expression –  hsz Sep 25 '12 at 13:36
    
How predictable... –  Steve Chambers Sep 25 '12 at 13:37
2  
@larsmans, while you're correct that a formal regular expression cannot represent this, there are indeed regex dialects that allow for some recursion support, such as PCRE or the .NET engine with its balancing groups. Either way, a proper parser should be used here, and the regex only for tokenization. –  Lucero Sep 25 '12 at 13:39
    
@SteveChambers: can you tell us why you'd want an RE for this problem if a simple stack-based parser can solve it? –  larsmans Sep 25 '12 at 13:51

2 Answers 2

up vote 3 down vote accepted

I'm looking for a regular expression (**) that will match an unknown number of nested functions.

Some regex implementations support recursive matching (Perl, PHP, .NET), but JavaScript does not. So, the answer to your question is: no, that is not possible.

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Thanks - guess I was kind of expecting this (but hoping there'd be a solution). –  Steve Chambers Sep 25 '12 at 14:39

This isn't recursive, but it does the trick.

PRECONDITIONS:

  • Function names are alpha-numeric/underscore with possible leading white space.
  • Function names do not start with a number.
  • Expressions have no parentheses in them.
  • There is only one expression nested within the functions.

CODE:

var target = "function(function(function(expression)))";
var pattern = /\s*[a-zA-Z_]\w*[(](\s*[a-zA-Z_]\w*[(]|([^()]+)[)])+/;
var matches = target.match(pattern);
var expression = matches[2];

REGULAR EXPRESSION DISSECTION:

\s*             // 0+ white space characters
[a-zA-Z_]       // 1 letter/underscore
\w*             // 0+ word characters (alpha-numeric/underscore)
[(]             // left parenthesis
(               // PIECES:
  \s*           //   0+ white space characters
  \w+           //   1+ word characters (alpha-numeric/underscore)
  [(]           //   left parenthesis
 |              // OR
  (             //   (this grouping saves the expression)
    [^()]+      //     1+ non-parenthesis characters
  )             //   
  [)]           //   right parenthesis
)+              // 1+ of these PIECES
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Thanks for your time with this. I especially like the format you've used for documenting the regular expression - makes it very clear. I've actually finished this now and ended up using a long regular expression similar to this that could handle three levels of nesting. (If you're interested can see it in the source of this webpage: sic.azurewebsites.net).) Was forced to do this since as Bart Kiers pointed out in the accepted answer, Javascript unfortunately does not support recursive matching in regular expressions. –  Steve Chambers Oct 10 '12 at 11:24
    
No problem, sir. And although this is not a recursive regex, is this not a better answer than "this is not possible"? –  NoBrainer Oct 10 '12 at 13:40
    
I take the point but the answer was awarded before you posted yours and I'm reluctant to change it as to be fair Bart's answer does accurately answer the q ("unknown number of nested functions" ..."no, that is not possible"). Yours does provide a helpful alternative though so thanks for that. –  Steve Chambers Oct 10 '12 at 19:10
    
You asked for a regex that gives you the parameter inside of an unknown number of nested functions. That's what I gave you, therefore it IS possible, making Bart wrong. –  NoBrainer Oct 10 '12 at 19:43

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