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I can't figure out how to create regular expression using positive lookahead. The idea is to prepend two character string to every two character in a long string. i.e.

"090909" => "XX09XX09XX09"

This code:

String s = "090909";
String ns = s.replaceAll("(?=\\d\\d)", "XX");  

...doesn't work; the output is XX0XX9XX0XX9XX09. But this code works:

String s = "090909";
String ns = s.replaceAll("(?=09)", "XX");  

I'm confused on how to come up with an expression saying lookahead for every two characters. Am I missing some boundaries or something?

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1 Answer 1

up vote 5 down vote accepted

You can use the following:

String s = "090909";
String ns = s.replaceAll("(\\d\\d)", "XX$1");  

The ( and ) will create the capture, and the $1 accesses the capture.

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+1, but you're missing a ( in the regex, and the replacement string should be "XX$1", not "$1XX". – Alan Moore Mar 4 '11 at 1:15
Your code didn't work man. I got new solution s.replaceAll("(?=(\\d\\d)+$)", "XX"), but unfortunately this works only if the length of the string is an even number – Zorlac Mar 4 '11 at 1:20
this works! s.replaceAll("(\\d\\d)", "XX$1"). thanks! Didn't know $1 can be used for string replacement. but thanks a lot – Zorlac Mar 4 '11 at 1:23
There was an error in it, as Alan Moore remarked. I think you should still consider using it, since your regex is (probably) less efficient (because of the lookahead assertion) – markijbema Mar 4 '11 at 1:23
race condition with comment posting ;) No problem :) – markijbema Mar 4 '11 at 1:24

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