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How can I extract overlapping matches from an input using String.split()?

For example, if trying to find matches to "aba":

String input = "abababa";
String[] parts = input.split(???);

Expected output:

[aba, aba, aba]
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Are you sure it's not [ ababa, ababa ] or can you only overlap one character? In any case I suspect you can't do this with a regex. Out of interest, why do you want to do this? How would you split cababa? –  Peter Lawrey Dec 26 '12 at 18:48
3  
Are you sure split is what you want? It sounds more like you're trying find matches. –  ruakh Dec 26 '12 at 18:48
    
@PeterLawrey Edited question to make it more clear. Sorry for not adding the sought after match to the question. –  Bohemian Dec 26 '12 at 18:52

3 Answers 3

String#split will not give you overlapping matches. Because a particular part of the string, will only be included in a unique index, of the array obtained, and not in two indices.

You should use Pattern and Matcher classes here. You can use this regex: -

Pattern pattern = Pattern.compile("(?=(aba))");

And use Matcher#find method to get all the overlapping matches, and print group(1) for it.

The above regex matches every empty string, that is followed by aba, then just print the 1st captured group. Now since look-ahead is zero-width assertion, so it will not consume the string that is matched. And hence you will get all the overlapping matches.

String input = "abababa";
String patternToFind = "aba";

Pattern pattern = Pattern.compile("(?=" + patternToFind + ")");
Matcher matcher = pattern.matcher(input);

while (matcher.find()) {
    System.out.println(patternToFind + " found at index: " + matcher.start());
}

Output: -

aba found at index: 0
aba found at index: 2
aba found at index: 4
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Why have you created a group? As usual, you have use too more code/complication than needed. Here's a challenge for you: If you eliminate the group and simplify the code, I'll accept this answer. –  Bohemian Dec 26 '12 at 21:51
    
@Bohemian. You can just remove that group, and print aba instead of group 1. That group is nothing but the pattern that you are matching. And that you know. –  Rohit Jain Dec 27 '12 at 4:19
    
@Bohemian.. There you go. Edited to remove group. –  Rohit Jain Dec 27 '12 at 4:23
1  
@Bohemian.. I have to say that, but your reasoning behind not using capture group is not that strong. Without Capture groups, half of the power of Regex is lost. It is not needed in this example, doesn't justify that it is not at all required. For e.g., suppose I say you to find out all the numbers followed by a #, and also the character after that # in this string - "asf234#afl234#sdf", how are you going to achieve this? Capture group are necessary when you want to extract some part of the target string, based on some pattern. –  Rohit Jain Dec 27 '12 at 19:35
1  
Like in the above case you would just use the pattern - (\d)#(.), and extract the two capture groups. And as far as human-readability is concerned, I don't think that is affected at all. Reading Captured group is not something, that has to be stressed upon so much. It is that common in Regex. –  Rohit Jain Dec 27 '12 at 19:41

I would use indexOf.

for(int i = text.indexOf(find); i >= 0; i = text.indexOf(find, i + 1))
   System.out.println(find + " found at " + i);
share|improve this answer
    
I really like the brevity, but I was going for a regex-based solution. Could this be modified to use a regex to find the pattern? –  Bohemian Dec 26 '12 at 21:35
    
You could use Rohit Jain's solution. –  Peter Lawrey Dec 26 '12 at 21:40

This is not a correct use of split(). From the javadocs:

Splits this string around matches of the given regular expression.

Seems to me that you are not trying to split the string but to find all matches of your regular expression in the string. For this you would have to use a Matcher, and some extra code that loops on the Matcher to find all matches and then creates the array.

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It would need some trick with the regex for it to work with Matcher (zero width look-around). –  nhahtdh Dec 27 '12 at 4:58

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