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I have a string containing ones and zeroes. I want to determine if there are substrings of 1 or more characters that are repeated at least 3 consecutive times. For example, the string '000' has a length 1 substring consisting of a single zero character that is repeated 3 times. The string '010010010011' actually has 3 such substrings that each are repeated 3 times ('010', '001', and '100').

Is there a regex expression that can find these repeating patterns without knowing either the specific pattern or the pattern's length? I don't care what the pattern is nor what its length is, only that the string contains a 3-peat pattern.

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I don't believe what you're describing can be represented with regular expressions. –  Dan Fego Dec 28 '11 at 17:06
perhaps something like this? @"(.*[01][01][01].*)\{3\}" –  Lucina Dec 28 '11 at 17:08
@DanFego, regex (in this context) are not regular. –  Qtax Dec 28 '11 at 17:35

3 Answers 3

up vote 2 down vote accepted

The \ might be a different charactor depending on your language choice. This means match any string then try to match it again twice more.

The \1 means repeat the 1st match.

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Argggg! I actually tried this pattern in python but it didn't work. After reading the answers here, I went back and tried it again, realizing that I used the wrong expression for the captured value. In python, it becomes '(.+)\\1\\1'. –  sizzzzlerz Dec 28 '11 at 17:39
EDIT, I changed the $ to a \ because it is more common. And obviously it needs to be escaped as per your language. Probably \\ –  Buh Buh Dec 28 '11 at 18:05
Glad I could help! –  Buh Buh Dec 28 '11 at 18:08

Here's something that might work, however, it will only tell you if there is a pattern repeated three times, and (I don't think) can't be extended to tell you if there are others:


Breaking that out:

   (.+)          matches any 1 or more characters, starting anywhere in the string
   .*?           allows any length of interposing other characters (0 or more)
   \1            matches whatever was captured by the (...+) parentheses
   .*?           0 or more of anything
   \1            the original pattern, again

If you want the repetitions to occur immediately adjacent, then instead use


… as suggested by @Buh Buh — the \1 vs. $1 notation may vary, depending on your regexp system.

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It seems op only wants consecutive/adjacent matches. –  Qtax Dec 28 '11 at 17:34
Yes I think you are right. \1 is more common than $1. I have updated mine to match. –  Buh Buh Dec 28 '11 at 18:10
+1 for you. I am so close to 1000 happy points now. Can't wait. –  Buh Buh Dec 28 '11 at 21:09

it looks weird, but this could be the solution:


This contains all possible combinations for three times. So your regular expression will match for these numbers (i.e.):

  1. 10010010011
  2. 00010010011
  3. 10110110110

But not for these:

  1. 101010101010
  2. 001110111110
  3. 111000111000

And it doesn't matter where the sequence appears in the whole string.

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okay, I have read the question again - and I think this is not what you want, cause this regex is for 3*3 pattern. you want n*m pattern. –  Armin Dec 28 '11 at 17:25

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