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I have this code, and I want to know, if I can replace only groups (not all pattern) in Java regex. Code:

 //...
 Pattern p = Pattern.compile("(\\d).*(\\d)");
    String input = "6 example input 4";
    Matcher m = p.matcher(input);
    if (m.find()) {

        //Now I want replace group one ( (\\d) ) with number 
       //and group two (too (\\d) ) with 1, but I don't know how.

    }
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Can you clarify your question, like maybe give the expected output for that input? –  Michael Myers Jun 12 '09 at 20:12

4 Answers 4

up vote 28 down vote accepted

Use $n (where n is a digit) to refer to captured subsequences in replaceFirst(...). I'm assuming you wanted to replace the first group with the literal string "number" and the second group with the value of the first group.

Pattern p = Pattern.compile("(\\d)(.*)(\\d)");
String input = "6 example input 4";
Matcher m = p.matcher(input);
if (m.find()) {
    // replace first number with "number" and second number with the first
    String ouput = m.replaceFirst("number $2$1");
}

Consider (\D+) for the second group instead of (.*). * is a greedy matcher, and will at first consume the last digit. The matcher will then have to backtrack when it realizes the final (\d) has nothing to match, before it can match to the final digit.

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Thanks a lot... –  wokena Jun 14 '09 at 9:44

You could use Matcher#start(group) and Matcher#end(group) to build a generic replacement method:

public static String replaceGroup(String regex, String source, int groupToReplace, String replacement) {
    return replaceGroup(regex, source, groupToReplace, 1, replacement);
}

public static String replaceGroup(String regex, String source, int groupToReplace, int groupOccurrence, String replacement) {
    Matcher m = Pattern.compile(regex).matcher(source);
    for (int i = 0; i < groupOccurrence; i++)
        if (!m.find()) return source; // pattern not met, may also throw an exception here
    return new StringBuilder(source).replace(m.start(groupToReplace), m.end(groupToReplace), replacement).toString();
}

public static void main(String[] args) {
    // replace with "%" what was matched by group 1 
    // input: aaa123ccc
    // output: %123ccc
    System.out.println(replaceGroup("([a-z]+)([0-9]+)([a-z]+)", "aaa123ccc", 1, "%"));

    // replace with "!!!" what was matched the 4th time by the group 2
    // input: a1b2c3d4e5
    // output: a1b2c3d!!!e5
    System.out.println(replaceGroup("([a-z])(\\d)", "a1b2c3d4e5", 2, 4, "!!!"));
}

Check online demo here.

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Add a third group by adding parens around ".*", then replace the subsequence with "number" + m.group(2) + "1". e.g.:

String output = m.replaceFirst("number" + m.group(2) + "1");
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3  
Actually, Matcher supports the $2 style of reference, so m.replaceFirst("number$21") would do the same thing. –  Michael Myers Jun 12 '09 at 19:53
    
Oh, even better. –  mkb Jun 12 '09 at 21:33
    
Actually, they they don't do the same thing. "number$21" works and "number" + m.group(2) + "1" doesn't. –  Alan Moore Jan 7 at 21:29
    
It looks like number$21 would replace group 21, not group 2 + the string "1". –  Fernando M. Pinheiro Mar 14 at 13:50

You can use matcher.start() and matcher.end() methods to get the group positions. So using this positions you can easily replace any text.

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