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I'm building a regular expression which have to extract strings from brackets. This is an example string:

((?X is parent ?Y)(?X is child ?Z))

I need to get strings: '?X is parent ?Y' and also '?X is child ?Z'. This is what I've created yet:

^(\((.*?)\))+$

The problem is that it matches only the string in the second bracket. Could anybody help me to improve the expression so that it matches both strings in brackets?

Note: brackets can contain any content, like ((AAA)(BBB)). In this case 'AAA' and 'BBB' should be matched.

Thanks forward.

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1  
Which language are you using for regex? – anubhava May 5 '14 at 20:53
    
Actually, it should work in java, but I tested it in regex101.com/#pcre – gabriel May 5 '14 at 20:55
2  
What is your actual problem? This question can be an example of XY Problem. Please read the URL and edit the question to reflect what you are actually trying to do, rather than asking the regular expression. – Eren T. May 5 '14 at 20:57
    
I'm trying to extract string from inner brackets. – gabriel May 5 '14 at 21:06
    
Show us more context around the regex bit. What range of inputs could there be? What outputs would you expect? The context is so we can see if there's a better way to approach it than using regular expressions at all. – ClickRick May 5 '14 at 21:10
up vote 2 down vote accepted

Based on your comments, it seems that you just want to match anything inside the brackets, for that you can use:

String Sample1 = "((something)(world)(example))";
Pattern regex = Pattern.compile("\\(?\\((.*?)\\)\\)?");
Matcher regexMatcher = regex.matcher(Sample1);
while (regexMatcher.find()) {
System.out.print(regexMatcher.group(1));
    // something world example
} 

Demo

Regex Explanation

Match the character “(” literally «\(?»
   Between zero and one times, as many times as possible, giving back as needed (greedy) «?»
Match the character “(” literally «\(»
Match the regular expression below and capture its match into backreference number 1 «(.*?)»
   Match any single character that is not a line break character «.*?»
      Between zero and unlimited times, as few times as possible, expanding as needed (lazy) «*?»
Match the character “)” literally «\)»
Match the character “)” literally «\)?»
   Between zero and one times, as many times as possible, giving back as needed (greedy) «?»
share|improve this answer
    
As I updated my question, brackets can contain any content, not only content in format you assumed. – gabriel May 5 '14 at 21:05
    
Can you post some examples of what you're trying to match ? – Pedro Lobito May 5 '14 at 21:07
    
((something)(world)(example)) should give 'something', 'world' and 'example'. Whatever string can be in the inner brackets, it should be matched. The problem is that the regular expression I wrote matches only the string in the last inner bracket (in this case 'example') and doesn't match the other strings in inner brackets (in this case 'something' and 'world'). – gabriel May 5 '14 at 21:11
    
What you've written is almost ok, but there are more brackets nested: '((one)(two)(three))' – gabriel May 5 '14 at 21:21
1  
@Tuga Upvoting for thorough helpful answer. – zx81 May 5 '14 at 22:47

This seems to work:

Pattern.compile("[\\(]{0,1}(\\((.*?)\\))")

Thanks all for replies and comments.

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