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In the following code:

public static void main(String[] args) {
    List<String> allMatches = new ArrayList<String>();
    Matcher m = Pattern.compile("\\d+\\D+\\d+").matcher("2abc3abc4abc5");
    while (m.find()) {
        allMatches.add(m.group());
    }

    String[] res = allMatches.toArray(new String[0]);
    System.out.println(Arrays.toString(res));
}

The result is:

[2abc3, 4abc5]

I'd like it to be

[2abc3, 3abc4, 4abc5]

How can it be achieved?

share|improve this question
    
You would need to search starting at every index; use the find(int startingIndex) method and search starting at every character position. Of course, then you're likely to find too many matches... Assuming you want to start at every number, you might try combining an iteration over Matcher.find(String.indexOf(digits, index)) for all matching indices. –  user1676075 Jul 31 '13 at 13:17
    
I suppose if it's single digits, you could back up from the match starting position and find from there for the next match. –  user1676075 Jul 31 '13 at 13:20
1  
For input "12abc13abc14abc15", do you want [12abc13, 2abc13, 13abc14, 3abc14, 14abc15, 4abc15] or [12abc13, 13abc14, 14abc15]? –  johnchen902 Jul 31 '13 at 13:22
    
@johnchen902: the later. The solution handles this. –  Evgeny Jul 31 '13 at 13:36
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2 Answers 2

up vote 8 down vote accepted

Make the matcher attempt to start its next scan from the latter \d+.

Matcher m = Pattern.compile("\\d+\\D+(\\d+)").matcher("2abc3abc4abc5");
if (m.find()) {
    do {
        allMatches.add(m.group());
    } while (m.find(m.start(1)));
}
share|improve this answer
    
To the first two up-voter: the ordinary version contains a bug that if nothing matches, an IllegalStateException will be thrown. –  johnchen902 Jul 31 '13 at 13:34
    
+1 for nice improvisation. –  anubhava Jul 31 '13 at 13:35
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Not sure if this is possible in Java, but in PCRE you could do the following:
(?=(\d+\D+\d+)).

Explanation
The technique is to use a matching group in a lookahead, and then "eat" one character to move forward.

  • (?= : start of positive lookahead
    • ( : start matching group 1
      • \d+ : match a digit one or more times
      • \D+ : match a non-digit character one or more times
      • \d+ : match a digit one or more times
    • ) : end of group 1
  • ) : end of lookahead
  • . : match anything, this is to "move forward".

Online demo


Thanks to Casimir et Hippolyte it really seems to work in Java. You just need to add backslashes and display the first capturing group: (?=(\\d+\\D+\\d+)).. Tested on www.regexplanet.com:

enter image description here

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It works in java too. –  Casimir et Hippolyte Jul 31 '13 at 13:27
2  
It gives wrong results. –  anubhava Jul 31 '13 at 13:28
2  
Doesn't work in java. –  JDiPierro Jul 31 '13 at 13:29
2  
Not really working. Use 12abc13abc14abc15 as input and the result is [12abc13, 2abc13, 13abc14, 3abc14, 14abc15, 4abc15] instead of [12abc13, 13abc14, 14abc15]. See my and OP's comments under the question. –  johnchen902 Jul 31 '13 at 13:44
1  
@johnchen902: right you must replace the pattern by (?=((?<!\\d)\\d+\\D+\\d+)) if you don't want overlapped results in your overlapped results. :) –  Casimir et Hippolyte Jul 31 '13 at 13:52
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