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I would like to replace a match with the number/index of the match.

Is there way in java regex flavour to know which match number the current match is, so I can use String.replaceAll(regex, replacement)?

Example: Replace [A-Z] with itself and its index:

Input:  fooXbarYfooZ
Output: fooX1barY2fooZ3

ie, this call:

"fooXbarXfooX".replaceAll("[A-Z]", "$0<some reference to the match count>");

should return "fooX1barY2fooZ3"


Note: I'm looking a replacement String that can do this, if one exists.


Please do not provide answers involving loops or similar code.


Edited:

I'll accept the most elegant answer that works (even if it uses a loop). No current answers
actually work.

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2  
There isn't a simple replacement string that can do this; strings can't store state and the regex engine doesn't have a built-in way to do so either. –  Amber Jun 5 '12 at 6:04
1  
I think that you would need some stack enabled regex, which I do not think that the Java regex has... –  npinti Jun 5 '12 at 6:06
2  
You want something like this: Java equivalent to PHP's preg_replace_callback . Generally, I don't know any regex flavor that allows replacing like that "natively", without a calllback: regular-expressions.info/refreplace.html –  Kobi Jun 5 '12 at 6:18
2  
Where does the "no loops" requirement come from? I don't understand that: pretty much everything involves loops, including interpreting regexes. So what do you really want to achieve? Do you want to avoid seeing the loops? –  Joachim Sauer Jun 5 '12 at 6:55
1  
@Bohemian, no, the standard JDK does not provide such functionality. Your code should not look cluttered if you factor out your replacement code in a method. –  aioobe Jun 5 '12 at 7:27

4 Answers 4

Iterating over the input string is required so looping one way or the other is inevitable. The standard API does not implement a method implementing that loop so the loop either have to be in client code or in a third party library.


Here is how the code would look like btw:

public abstract class MatchReplacer {

    private final Pattern pattern;

    public MatchReplacer(Pattern pattern) {
        this.pattern = pattern;
    }

    public abstract String replacement(MatchResult matchResult);

    public String replace(String input) {

        Matcher m = pattern.matcher(input);

        StringBuffer sb = new StringBuffer();

        while (m.find())
            m.appendReplacement(sb, replacement(m.toMatchResult()));

        m.appendTail(sb);

        return sb.toString();
    }
}

Usage:

public static void main(String... args) {
    MatchReplacer replacer = new MatchReplacer(Pattern.compile("[A-Z]")) {
        int i = 1;
        @Override public String replacement(MatchResult m) { 
            return "$0" + i++;
        }
    };
    System.out.println(replacer.replace("fooXbarXfooX"));
}

Output:

fooX1barX2fooX3
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3  
From the question: Please do not provide answers involving loops or similar code. –  npinti Jun 5 '12 at 6:06
    
Even though it's a loop, quite nice. However please note edit to question refining the example to demonstrate both match and replacement must be a regex, which would break your implementation as it stands, because the result of replacement() must use a back reference. –  Bohemian Jun 5 '12 at 18:41
1  
I don't see how it would break the current solution. The appendReplacement method can (just like replaceAll) handle back-references like $0. Updated the main method to show how it is done. –  dacwe Jun 6 '12 at 20:24

Not possible without loops in Java...

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Well I don't think its possible without any loop in Java.

String x = "fooXbarXfooX";
        int count = 0;
        while(x.contains("X"))
        x = x.replaceFirst("X", Integer.toString(count++));
        System.out.println(x);
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3  
Some feedback: Although it's less code than the other solutions, because you're restarting the regex match every loop, there is a risk that the regex will match the replacement, causing an infinite loop. Consider what would happen when replacing "X" with "Xi" where i is the index - the first X would get re-matched forever. You could avoid this by starting your match after the position of the last match, but then your code would morph into something like dacwe's code. Also, his code is more efficient, because it only does one pass. Just something to think about. –  Bohemian Jun 5 '12 at 7:24
    
@Bohemian thanks for the example of X and Xi. –  Chandra Sekhar Jun 5 '12 at 8:34
    
Please note edit to question refining the example to demonstrate both match and replacement must be a regex. –  Bohemian Jun 5 '12 at 18:40
up vote 1 down vote accepted

Java regex does not support a reference to the count of the match, so it is impossible.

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