10

Consider the string

aabaabaabaabaab

Clearly this string is made of 5 adjacent occurences of aab, so I want my regex to match aab.

To elaborate: aabaab wouldn't be an acceptable output because it's made by repeating aab. But aab is a valid result because it's not made of a repeated shorter string.

For the sake of the question, let us assume that there can be additional text around the repeated segment (for example 11aabaabaabaabaab22 or even xaabaabaabaabaabaa). Therefore it's not possible to anchor the regex with ^ or $.


Failed idea #1: (.+?)\1+ This captures aa instead of the expected aab.

Failed idea #2: (.+)\1+ This captures aabaab.

Is it possible to do this with pure regex? If yes, is it possible without dynamic-width lookbehind?

10
  • 1
    Note that if you add anchors you get the correct result: ^(.+)\1+$ Jun 9 '17 at 19:24
  • @CasimiretHippolyte Good point. But let us assume that there can be more data at the beginning or end of the string. I'll update the question.
    – Aran-Fey
    Jun 9 '17 at 19:26
  • you could do this recursively, doing (.+)\1+ the first time, and then doing ^(.+?)\1+$ every subsequent time till you don't get a match, when you don't get a match then the last value tried is the one you want Jun 9 '17 at 19:28
  • Sounds difficult. This string is also made of 2 adjacent occurences of aabaab. Jun 9 '17 at 19:29
  • If we can do a lookahead, (.+)(?=\1) multiple times in the way described by @MichaelGorman would work in the same way Jun 9 '17 at 19:31
5

You can use two lookaheads, the first one searches the longest pattern and the second searches the smallest. The second pattern repeated has to end (at least) at the same position or after the first pattern repeated. To check that, you have to capture the end of the string in the first lookahead and to use a backreference to this capture in the second lookahead.

(?=(.+)\1+(.*))(?=(.+?)\3+\2$)\3+

demo

The result is in the group 3

also:

(?=(.+)\1+(.*))(.+?)\3+(?=\2$)\3*

Note that these two regex patterns give the result for one position in a string. If you want to know what is the shortest pattern that is the longest substring once repeated for all the string, you have to find all of them and to select the longest susbstring with code. You can use a pattern for overlapping results to do that:

(?=(.+)\1+(.*))(?=(.+?)\3+\2$)(?=(\3+))

(using the group 4)

1
  • 1
    Using that additional (.*) group to make sure both matches end at the same location is genius. +1 and much respect!
    – Aran-Fey
    Jun 9 '17 at 20:01
1
def largest_pattern(value)
  /(.+)\1+/.match(value).try("[]", 1)
end

def smallest_pattern(value)
  /^(.+?)\1+$/.match(value).try("[]", 1)
end

def largest_distinct_pattern(value)
  val = largest_pattern(value)
  if val
    while(new_val = smallest_pattern(val))
      val = new_val
    end
    val
  else
    nil
  end
end

largest_distinct_pattern("aabaabaabaabaab")
=> "aab"
4
  • This will fail if there were more than one repeating sequence where the largest repeating pattern was not the largest sequence. For example abcabc1212121212. The largest pattern of repeating sequence is 12 but the abc is longer for smallest pattern. Jun 9 '17 at 20:00
  • Sorry, but I'm looking for a no code, pure regex solution.
    – Aran-Fey
    Jun 9 '17 at 20:05
  • Yeah, Casimir et Hippolyte's answer is a much cleaner solution anyways. Jun 9 '17 at 20:20
  • @MichaelGorman: Thanks but I really don't believe that my solution is clean or efficient. For me this kind of question is more like a programming puzzle. (do that thing that seems impossible with a regex) Jun 9 '17 at 21:19

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