6

How can I find a repeated pattern in a string? For example, if the input file were

AAAAAAAAA
ABABAB
ABCAB
ABAb

it would output:

A
AB
ABCAB
ABAb
4
  • What if the string is "AABB". What's the expected output? Feb 22, 2014 at 22:55
  • AABB. The repeat has to go all the way from the start to end, otherwise, return the whole string. Feb 22, 2014 at 22:56
  • 2
    @BelgianMyWaffle I don't think this is a duplicate. If I understood the question well, its about repeated pattern in string, not character.
    – korhner
    Feb 22, 2014 at 22:58
  • If the string is AABB, then the output would be AABB
    – jwaang
    Feb 22, 2014 at 23:00

4 Answers 4

10

If you use regex, you only need one line:

String repeated = str.replaceAll("(.+?)\\1+", "$1");

Breaking down the regex (.+?)\1:

  • (.+?) means "at least one character, but as few as possible, captured as group 1"
  • \1 means "the same character(s) as group 1

Here's some test code:

String[] strs = {"AAAAAAAAA", "ABABAB", "ABCAB", "ABAb"};
for (String str : strs) {
    String repeated = str.replaceAll("(.+?)\\1+", "$1");
    System.out.println(repeated);
}

Output:

A
AB
ABCAB
ABAb
5
  • @santhoshkumar depends what you mean by "works". What result do you expect from AAAAAAB?
    – Bohemian
    Sep 28, 2017 at 0:38
  • Oops.., Sorry for not being clear. For example.., "AAAAAAB" i need output as "AAAAAAB" but this is returning "AB". How i can tweak this? Sep 28, 2017 at 1:50
  • @Bohemian What would be the time complexity of this? Not sure how regex works with something like this, but I imagine multiple scans? Jun 18 at 6:21
  • @TheRealFakeNews time complexity is approx O(n log n): There is only one pass, but there is some re-checking of following chars along the way as the quantity of .+? grows. If long sequences were expected to be repeated, the greedier .+ may be faster.
    – Bohemian
    Jun 18 at 14:53
  • @Bohemian How is it you came to nlogn? Jun 19 at 6:25
1

This outputs what you ask for - the regex can probably be improved to avoid the loop but I can't manage to fix it...

public static void main(String[] args) {
    List<String> inputs = Arrays.asList("AAAAAAAAA", "ABABAB", "ABCAB", "ABAb");
    for (String s : inputs) System.out.println(findPattern(s));
}

private static String findPattern(String s) {
    String output = s;
    String temp;
    while (true) {
        temp = output.replaceAll("(.+)\\1", "$1");
        if (temp.equals(output)) break;
        output = temp;
    }
    return output;
}
2
  • @Bohemian Can someone please explain me the regex part alone? ("(.+)\\1", "$1") Sep 27, 2017 at 18:06
  • 2
    @santhoshkumar see my answer for an explanation of the regex
    – Bohemian
    Sep 27, 2017 at 18:19
1

Written in C#, but translation should be trivial.

public static string FindPattern(string s)
{
    for (int length = 1; length <= s.Length / 2; length++)
    {
        string pattern = s.Substring(0, length);
        if(MatchesPattern(s, pattern))
        {
            return pattern;
        }
    }
    return s;
}

public static bool MatchesPattern(string s, string pattern)
{
    for (int i = 0; i < s.Length; i++)
    {
        if(!s[i].Equals(pattern[i%pattern.Length]))
        {
            return false;
        }
    }
    return true;
}
0

If you might have spaces between the repeated segment:

(.+?)(\\ ?\\1)+

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