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In a line I may have (123,456) I want to find it using pattern in java. What I did is:

Pattern pattern = Pattern.compile("\\W");
Matcher matcher = pattern.matcher("(");
while (matcher.find()) {
      System.out.print("Start index: " + matcher.start());
      System.out.print(" End index: " + matcher.end() + " ");
}

Input: This is test (123,456) Output:Start index: 0 End index: 1 ( Why??

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1  
Escape it: "\\W". –  johnchen902 Jul 13 '13 at 4:53
    
Thanks now the problem changes. Please see the update. –  Sara Jul 13 '13 at 4:57

2 Answers 2

up vote 4 down vote accepted

I am not sure how \W is going to match it. \W matches a non word character.

You will also have to escape those backslashes.

Round brackets need to be escaped , as by default they are used for grouping.

Maybe the regex you meant was

Pattern pattern = Pattern.compile("\\([,\\d]+\\)");
Matcher matcher = pattern.matcher(inputString);

while (matcher.find()) {
    String matched = matcher.group();
    //Do something with it  
}

Explanation:

\\(     # Match (
[,\\d]+ # Match 1+ digits/commas. Don't be surprised if it matches (,,,,,,)
\\)     # Match )
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To do it in one line:

String num = str.replaceAll(".*\\(([\\d,]+)\\).*", "$1");
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Before Edit : You missed a round bracket. This is going to be terribly inefficient. .* in front of an regex is a killer. –  bsd Jul 13 '13 at 5:25
    
@bsd thx 4 the bracket. Re efficiency, who cares? This is "efficient" for the programmer, which is more valuable and important than efficiency for the CPU (programmers cost a lot more than computers). If after supportive evidence was found that this code was a significant performance bottleneck, then you would add more code or change the regex etc to make it harder to code but easier for the JVM to execute. But doing the "hard way" first would be "optimizing early", which is one of the worst anti-patterns to fall into. The execution time of this code would be fast enough for production use. –  Bohemian Jul 13 '13 at 5:29

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