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I have input text such as:

Text (Some Other Text) (More Text)

What I'm trying to do is completely remove the last brackets as well as the text inside it. IE (More Text)
In more general terms, I want an expression to only match the last bracket and contents.

I have tested quite a few variations of the following regex \s\(.*?\)$ but I cannot seem to get it working, I can tell that the . operator is matching the first bracket all the way through the last closing bracket but whatever I've tried I can't seem to think of how to approach this.

I'm using the Java implementation of regex. (Omitting the extra escape character in the above)

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4  
Try using \s\([^)]+\)$ –  Explosion Pills May 15 '13 at 15:32
    
Ahhh I see, thanks for that. I had a similar solution at one stage except I didn't have the + after the [^)], just tested and it works with the * as well –  Antix May 15 '13 at 15:36

4 Answers 4

up vote 2 down vote accepted
public static void main(String[] args){ 
        String reg = "\\s\\([^)]+\\)$";
        String text = "Text (Some Other Text) (More Text)";
        System.out.println(text.replaceAll(reg, ""));
}

Output :

Text (Some Other Text)

EDIT : If you have some extra text after the last brackets, @anubhava provided a good solution

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Doesn't work if input text is "Text (Some Other Text) (More Text) foo" –  anubhava May 15 '13 at 15:49
1  
@anubhava Thanks to notice that, +1 for your answer –  ZouZou May 15 '13 at 15:54

Following should work for you:

String regex = "\\s+\\([^)]+\\)([^()]*)$";
String text  = "Text (Some Other Text) (More Text) foo";
String repl  = text.replaceAll(regex, "$1");    
// Text (Some Other Text) foo

Live Demo: http://ideone.com/WnUeIQ

OR Using Positive Lookahead

String regex = "\\s+\\([^)]+\\)(?=[^()]*$)";
String text  = "Text (Some Other Text) (More Text) foo";
String repl  = text.replaceAll(regex, "");

Live Demo: http://ideone.com/2HRBf0

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Try this

    String s = "Text (Some Other Text) (More Text)";
    s = s.replaceAll(".*\\((.+)\\)$", "$1");
    System.out.println(s);

output

More Text
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If your text will always be in that format, you don't need regex for this, it's inefficient.

This is fine, and will be faster than regex:

String s = "Text (Some Other Text) (More Text)";
s = s.substring(0,s.lastIndexOf('('));
System.out.println(s);
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