10

Parsing a random string looking for repeating sequences using Java and Regex.

Consider strings:

aaabbaaacccbb

I'd like to find a regular expression that will find all the matches in the above string:

aaabbaaacccbb
^^^  ^^^

aaabbaaacccbb
   ^^      ^^

What is the regex expression that will check a string for any repeating sequences of characters and return the groups of those repeating characters such that group 1 = aaa and group 2 = bb. Also note that I've used an example string but any repeating characters are valid: RonRonJoeJoe ... ... ,, ,,...,,

4
  • It seems using a dictionary based string search algorithm like this will be better as you have no idea of the pattern in the beginning. Apr 23 '12 at 20:29
  • Do you need the repeated sequence to be contiguous or not? Does "RonBobRonJoe" should return "Ron?" Apr 23 '12 at 21:14
  • What should RonBobRonBobAbeRonBobRonBobAbe or XXYYXY return?
    – user557597
    Apr 23 '12 at 21:38
  • By "repeating sequences of characters", do you mean the same thing as "sequences of repeating characters"? Apr 24 '12 at 15:38
9

This does it:

import java.util.regex.Matcher;
import java.util.regex.Pattern;

public class Test {
    public static void main(String[] args) {
        String s = "aaabbaaacccbb";
        find(s);
        String s1 = "RonRonRonJoeJoe .... ,,,,";
        find(s1);
        System.err.println("---");
        String s2 = "RonBobRonJoe";
        find(s2);
    }

    private static void find(String s) {
        Matcher m = Pattern.compile("(.+)\\1+").matcher(s);
        while (m.find()) {
            System.err.println(m.group());
        }
    }
}

OUTPUT:

aaa
bb
aaa
ccc
bb
RonRonRon
JoeJoe
....
,,,,
---
8
  • Actually, this does not work: if you run it against RonRonJoeJoe it doesn't print anything. Apr 23 '12 at 20:49
  • @ReverendGonzo OK, I missed that in the post. I fixed it now by adding the + after the \\w Apr 23 '12 at 20:51
  • @ReverendGonzo What should be the ouput for that? There is no repeating sequence and it thus does not match anything Apr 23 '12 at 20:58
  • "Ron" repeats. I'm under the impression they don't need to be contiguous. Apr 23 '12 at 21:12
  • @ReverendGonzo OK, I get what you mean now. I was actually having the opposite feeling that they should be contiguous. OP has to clarify that. Apr 23 '12 at 21:13
3

The below should work for all requirements. It is actually a combination of a couple of the answers here, and it will print out all of the substrings that are repeated anywhere else in the string.

I set it to only return substrings of at least 2 characters, but it can be easily changed to single characters by changing "{2,}" in the regex to "+".

public static void main(String[] args)
{
  String s = "RonSamJoeJoeSamRon";
  Matcher m = Pattern.compile("(\\S{2,})(?=.*?\\1)").matcher(s);
  while (m.find())
  {
    for (int i = 1; i <= m.groupCount(); i++)
    {
      System.out.println(m.group(i));
    }
  }
}

Output:
Ron
Sam
Joe

1
  • But How would you count the number of elements each of these strings have in the file and why is it always a kmer of 3 ?
    – Rad
    Dec 5 '12 at 18:40
2

You can use this positive lookahead based regex:

((\\w)\\2+)(?=.*\\1)

Code:

String elem = "aaabbaaacccbb";
String regex = "((\\w)\\2+)(?=.*\\1)";
Pattern p = Pattern.compile(regex);
Matcher matcher = p.matcher(elem);
for (int i=1; matcher.find(); i++)
System.out.println("Group # " + i + " got: " + matcher.group(1));

OUTPUT:

Group # 1 got: aaa
Group # 2 got: bb
0

This seems to work, though it gives subsequences as well:

(To be fair, this was built off of Guillame's code)

public static void main(final String[] args) {
    // final String s = "RonRonJoeJoe";
    // final String s = "RonBobRonJoe";
    final String s = "aaabbaaacccbb";

    final Pattern p = Pattern.compile("(.+).*\\1");

    final Matcher m = p.matcher(s);
    int start = 0;
    while (m.find(start)) {
        System.out.println(m.group(1));
        start = m.toMatchResult().end(1);
    }
}
0

You could disregard overlap.

// overlapped 1 or more chars
(?=(\w{1,}).*\1)
// overlapped 2 or more chars
(?=(\w{2,}).*\1)
// overlapped 3 or more chars, etc ..
(?=(\w{3,}).*\1)

Or, you could consume (non-overlapped) ..

// 1 or more chars
(?=(\w{1,}).*\1) \1
// 2 or more chars
(?=(\w{2,}).*\1) \1
// 3 or more chars, etc ..
(?=(\w{3,}).*\1) \1

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.