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I have a following sentence:

String sentence = "FirstName LastName (pronounced as: X) (born 1 June 1900)";

I need regex which will get rid of everything between brackets (including brackets) as long as text between brackets contains word: pronounced.

Producing an output like this:

"FirstName LastName (born 1 June 1900)"

Please let me know how... thanks.

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1  
Those aren't brackets {}. Those are parentheses () –  pguardiario Sep 15 '13 at 16:02
1  
    
@DaoWen, For us, {} are brackets. Stick around and you'll learn a few things. –  pguardiario Sep 15 '13 at 16:22
2  
@pguardiario - Well, you'd better tell the guys who wrote the Java Language Specification, because apparently they got it wrong too! "A block is a sequence of statements, local class declarations, and local variable declaration statements within braces." Besides, my original point that I wanted to make was that StackOverflow is an international community, and we should be familiar with some non-American-English terms. (P.S. Yes, I noticed your profile says you're from the Philippines.) –  DaoWen Sep 15 '13 at 16:32

4 Answers 4

up vote 2 down vote accepted

You can try the following regex:

(?=\\([^()]*?pronounced)\\([^)]+\\)

And an empty replacement string.

Java code:

String input = "FirstName LastName (pronounced as: X) (born 1 June 1900)";
String result = input.replaceAll("(?=\\([^()]*?pronounced)\\([^)]+\\)", "");
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Nice, that worked nicely. How would it work with nesting... sometimes my text could have something like this: String input = "FirstName LastName ((pronounced as: X) (born 1 June 1900))"; . In this case I need to keep (born 1 June 1900). Can you help? –  jjj Sep 15 '13 at 16:24
    
@jjj With the current expression this will leave you with FirstName LastName (born 1 June 1900)). How do you want the actual output ? –  Sniffer Sep 15 '13 at 16:27
    
@jjj I have modified my answer a little bit, please check edit. –  Sniffer Sep 15 '13 at 16:31
1  
@Sniffer - Your first regex (?=\\(.*?pronounced)\\([^)]+\\) matches '( should not match ) (pronounced should match ) '. The second one is better. –  sln Sep 15 '13 at 16:50
    
@sln You are correct. Thank you for your observation. I will remove the first expression. –  Sniffer Sep 15 '13 at 16:53

A pattern like this should work:

\((?=[^)]*pronounced)[^)]+\)

This will match a literal ( followed by one or more characters other than ) followed by a literal ), but ONLY if it also contains a literal pronounced.

Don't forget to escape the \ in a Java string literal:

output = input.replaceAll("\\((?=[^)]*pronounced)[^)]+\\)", "");
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Not bad, but the lookahead is unnecessary. –  pguardiario Sep 15 '13 at 16:23

No need for lookahead, negated char class does the job:

/\([^)]*pronounced[^)]*\)/
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...and if you want only the innermost set of possibly nested brackets, lookaheads still aren't necessary: \([^()]*pronounced[^()]*\). Why is everyone else so stuck on lookaheads? –  Alan Moore Sep 15 '13 at 16:51
    
Just curious, could this /\([^)]*?pronounced[^)]*\)/ reduce backtracking? –  sln Sep 15 '13 at 16:54
    
@Alan Moore - I think when assertions are understood, they tend to be overused by people. It could be noticable extra processing. –  sln Sep 15 '13 at 16:59
    
If pronounced always appears much closer to the opening ( than to the ending ), the reluctant *? might make a noticeable difference. But in general, I think changing both instances of [^)]* to [^()]* will do a lot more good performance-wise, because it will cause it to fail faster when no match is possible. –  Alan Moore Sep 15 '13 at 17:33
input.replaceAll("\\((?=[^()]*pronounced).*?\\)","");
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