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Trying to create a regex that match any character inside a parentheis.

My regex pattern is this

preg_match('/\((.*?)\)/', $listanswer, $answer);

All string inside the parenthesis is the matching pattern. But the problem is, when I try to match eg,. (this word), (sample data) it only returns null. When if no space added, it is matched. Any idea on this?

Already tested it here. http://regex101.com

It worked just fine. Did i miss something>?

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2  
What programming language do you plan to use? Will you have (Nested (parentheses))? – zx81 Jun 10 '14 at 7:18
    
I am using PHP, and no nested parenthesis – user3627265 Jun 10 '14 at 7:21
    
. matches space too, could you post the whole code that could reproduce your problem? – xdazz Jun 10 '14 at 7:23
    
Okay. Do you want to match (the parentheses too), or just (what's inside?) – zx81 Jun 10 '14 at 7:25
    
have you tried preg_match_all – jeff Jun 10 '14 at 7:28
up vote 0 down vote accepted

Try this

\(([^)]+)\)

Fiddle Demo

  • \( : match an opening parentheses
  • ( : begin capturing group
  • [^)]+: match one or more non ) characters
  • ) : end capturing group
  • \) : match closing parentheses
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seems like it has the same issue,. I tried to var_dump the matching value.. all I got was null, – user3627265 Jun 10 '14 at 7:28

Since you don't have (nested (parentheses)) in your input:

To match (the parentheses too) use \([^)]*\) (demo)

To just match (what's inside?) use (?<=\()[^)]*(?=\)) (demo)

  1. The first one just match an opening parens, any chars that are not a closing parens, and a closing par.
  2. The second one uses a lookbehind and a lookahead. First the (?<=\() lookbehind asserts that what precedes is an opening parenthesis. Then we match any chars that are not a closing parens. Then the (?=\)) lookahead asserts that what follows is an closing parenthesis.
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