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I've written a regex \b\S\w(\S(?=.)) to find every third symbol in a word and replace it with '1'. Now I'm trying to use this expression but really don't know how to do it right.

Pattern pattern = Pattern.compile("\\b\\S\\w(\\S(?=.))");
Matcher matcher = pattern.matcher("lemon apple strawberry pumpkin");

while (matcher.find()) {
    System.out.print(matcher.group(1) + " ");
}

So result is:

m p r m

And how can I use this to make a string like this

le1on ap1le st1awberry pu1pkin
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do you really need to use regex here? –  SatelliteSD Mar 6 '13 at 8:52
    
Yes. This is my task. –  user2139038 Mar 6 '13 at 8:58
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2 Answers

up vote 6 down vote accepted

You could use something like this:

"lemon apple strawberry pumpkin".replaceAll("(?<=\\b\\S{2})\\S", "1")

Would produce your example output. The regex would replace any non space character preceded by two non space characters and then a word boundary.

This means that "words" like 12345 would be changed into 12145 since 3 is matched by \\S (not space).

Edit: Updated the regex to better cater to the revised question title, change 2 to i-1 to replace the ith letter of the word.

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+1 for using String.replaceAll –  Jayamohan Mar 6 '13 at 9:00
    
Thanks. This is what I need. –  user2139038 Mar 6 '13 at 9:02
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There is another way to access the index of the matcher

Like this:

Pattern pattern = Pattern.compile("\\b\\S\\w(\\S(?=.))");
String string = "lemon apple strawberry pumpkin";
char[] c = string.toCharArray();
Matcher matcher = pattern.matcher(string);
   while (matcher.find()) {
         c[matcher.end() - 1] = '1';////// may be it's not perfect , but this way in case of you want to access the index in which the **sring** is matches with the pattern
   }
System.out.println(c);
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