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I would like to know if it is possible (and if possible, how can i implement it) to manipulate an String value (Java) using one regex.

For example:

String content = "111122223333";
String regex = "?";

Expected result: "1111 2222 3333 ##";

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2 Answers 2

up vote 0 down vote accepted

OK, since the OP has redefined the problem (ie, a group of 12 digits which should be separated in 3 groups of 4, then followed by ##, the solution becomes this:

Pattern p = Pattern.compile("(?<=\\d)(?=(?:\\d{4})+$)");

String ret = p.matcher(input).replaceAll(" ") + " ##";

The regex changes quite a bit:

  • (?<=\d): there should be one digit behind;
  • (?=(?:\d{4})+$): there should be one or more groups of 4 digits afterwards, until the end of line (the (?:...) is a non capturing grouping -- not sure it really makes a difference for Java).

Validating that the input is 12 digits long can easily be done with methods which are not regex-related at all. And this validation is, in fact, necessary: unfortunately, this regex will also turn 12345 into 1 2345, but there is no way around that, for the reason that lookbehinds cannot match arbitrary length regexes... Except with the .NET languages. With them, you could have written:

(?<=^(?:\d{4})+)(?=(?:\d{4})+$

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As with your first answer, the lookbehind is an unwarranted complexity. As you said, validating the string belongs in a separate step. Once that's done, you can simply replace all "\\d{4}" with "$1 " and tack on the ##. –  Alan Moore Dec 19 '11 at 19:47
    
Yes, indeed, and it is faster this way. –  fge Dec 19 '11 at 19:57
    
Thanks that resolved my problem :) –  Orlandols Dec 20 '11 at 10:42

With one regex only, I don't think it is possible. But you can:

  • first, replace (?<=(.))(?!\1) with a space;
  • then, use a string append to append " ##".

ie:

Pattern p = Pattern.compile("(?<=(.))(?!\\1)");

String ret = p.matcher(input).replaceAll(" ") + " ##";

If what you meant was to separate all groups, then drop the second operation.

Explanation: (?<=...) is a positive lookbehind, and (?!...) a negative lookahead. Here, you are telling that you want to find a position where there is one character behind, which is captured, and where the same character should not follow. And if so, replace with a space. Lookaheads and lookbehinds are anchors, and like all anchors (including ^, $, \A, etc), they do not consume characters, this is why it works.

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Pretty clever! (and good explanation) +1 –  ridgerunner Dec 19 '11 at 16:25
    
First of all, thanks for the solution you gave. But the example that i presented was not the best one. What i really want is to transform an string with 12 digits in an new string with 3 groups of 4 digits each one (dddd dddd dddd) and that ends with the ##, something like "dddd dddd dddd ##" –  Orlandols Dec 19 '11 at 18:34
    
@user1106161 OK, see complement –  fge Dec 19 '11 at 18:53
    
Very nice, but you don't really need to use a lookbehind for this. Just replace "(.)(?!\1)" with "$1 ". And you're already leaving a space at the end, so you don't have to add one when you append the ## part. –  Alan Moore Dec 19 '11 at 19:47
    
@AlanMoore well, I prefer not to consume characters when I can avoid it -- matter of taste, really ;) –  fge Dec 19 '11 at 19:50

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