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I have run into a problem with the ruby regex. I need to find all (potentially overlapping) matches. This is a simplification of the problem:

#Simple example
"Hey".scan(/../)
=> ["He"] 
#Actual results

#With overlapping matches the result should be
=> ["He"], ["ey"]

The regex I am trying to execute and get all results for looks like this:

"aaaaaa".scan(/^(..+)\1+$/) #This looks for multiples of (here) "a" bigger than one that "fills" the entire string. "aa"*3 => true, "aaa"*2 => true. "aaaa"*1,5 => false.
 => [["aaa"]] 

#With overlapping results this should be
 => [["aa"],["aaa"]]

Is there a library or a way to do regex in ruby to get the results I am after?

I found some clues that this was possible in Perl, but after hours of research I did not find anything about a Ruby way of doing this.

However I was able to find this "Javascript Regex - Find all possible matches, even in already captured matches", but I am not able to find anything similar for Ruby, nor find something similar to the last index property in the Ruby version. To be honest I don't think that it would have worked anyways since the regex I intend to use is recursive and relies on the entire string, while that method chops away at the string.

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So basically you want a permutation of a string ? –  HamZa May 4 '13 at 23:34
    
No. It is just an example. The actual regex is a bit harder, but that is the issue that arrises. The scan method chops off the parts of the string it finds and continues. I need it to preserve the string so it can be viewed by the next possible match. –  Cort3z May 4 '13 at 23:36
    
I'm not sure, but the first and second examples are a bit contradicting. Following the first example, I would think that the second one should return [aa, aa, aa, aa, aa...., aaa, aaa, aaa ..., aaaa, aaaa, aaaa ...., aaaaa, aaaaa, aaaaaa] –  HamZa May 4 '13 at 23:48
    
No. Thats not what that regex looks for. The answer should be aa, aaa. Those are the only matches that is possible. –  Cort3z May 4 '13 at 23:50
1  
There's a Perl thing for this, but it can blow up pretty spectacularly pretty quickly. I needed something similar and gave up. –  Dave Newton May 4 '13 at 23:53

5 Answers 5

The problem with any solution based on scan is it won't find overlapping matches as scan always makes forward progress. It might be possible to recast the regexp so it's entirely embedded in a zero-width positive lookahead and then use scan, but IIRC there are otherwise valid regexp patterns that do not work in lookahead or lookbehind.

There's some ambiguity in the question as posed. This interprets the question as really asking to find all the unique matching substrings of a target string for which a regexp will match. Though not strictly necessary it uses ruby 2.0 lazy evaluation to avoid excessive intermediate array allocations.

class String
  def each_substring
    Enumerator.new do |y|
      (0...length).each do |b|
        (b...length).each do |e|
          y << self[b..e]
        end
      end
      y << '' 
    end
  end
end

class Regexp
  def all_possible_matches(str)
    str.each_substring.lazy.
    map { |s| match(s) }.
    reject(&:nil?).
    map { |m| m.size > 1 ? m[1..-1] : m[0] }.
    to_a.uniq
  end
end

/.{2,4}/.all_possible_matches('abcde')
=> ["ab", "abc", "abcd", "bc", "bcd", "bcde", "cd", "cde", "de"]

/^(..+?)\1+$/.all_possible_matches('aaaaaa')
=> [["aa"]]
/^(..+)\1+$/.all_possible_matches('aaaaaa')
=> [["aa"], ["aaa"]]
/^(..+?)\1+$/.all_possible_matches('aaaaaaaaa')
=> [["aa"], ["aaa"]]
/^(..+)\1+$/.all_possible_matches('aaaaaaaaa')
=> [["aa"], ["aaa"], ["aaaa"]]

EDIT: made it return capture groups when present. The OP's desired solution to the non-greedy form of /^(..+?)\1+$/ is wrong as the ? means it will be satisfied with the pattern with the fewest chars.

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I get undefined method 'lazy' for #<Enumerator. Do I have a different version of ruby maybe? I have 1.9.3p362 –  Cort3z May 5 '13 at 9:36
    
@Cort3z As I stated in the answer, lazy is a feature of ruby 2.0. In 1.9 you can just omit it and it should work fine, just produce more intermediate results. –  dbenhur May 5 '13 at 16:02

Are you just missing the second capture group?

"aaaaaa".scan(/(..+?)(\1+)/)
#=> [["aa", "aaaa"]]

It seems like there might be something wrong with your expectation.

share|improve this answer
1  
Like a boss +1 –  HamZa May 5 '13 at 1:00
    
You know what. I just realised I had a small mistake. –  Cort3z May 5 '13 at 1:00
    
But the solutions suggested still did not work with the original problem. That regex should trigger on aaa as well. –  Cort3z May 5 '13 at 1:03
5  
I can't tell which problem you mean but the \1+ will never match aaa (if \1 is aa), only multiples of aa. –  pguardiario May 5 '13 at 1:08
1  
@Cort3z the "aa" is teh capture of (..+?), the "aaaa" is the capture of (\1+). The first is non-greedy, the second greedy. –  dbenhur May 5 '13 at 15:59

Kind of old topic... Not sure if I understand, but best I can find is this:

"Hey".scan(/(?=(..))/)
 => [["He"], ["ey"]] 

"aaaaaa".scan(/(?=(..+)\1)/)
 => [["aaa"], ["aa"], ["aa"]] 

scan walks thru every byte and the "positive look-ahead" (?=) tests the regexp (..+)\1 in every step. Look-aheads don't consume bytes, but the capture group inside it returns the match if it exists.

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I don't understand why your expected results should be like that, but for just applying the regex from different starting points, this will do.

class String
  def awesome_regex_scan r
    (0...length).map{|i| match(r, i)}.map(&:to_a).reject(&:empty?).uniq
  end
end

"Hey".awesome_regex_scan(/../) # => [["He"], ["ey"]]

As written above, it does not match your expected result, and I don't understand why you expect what you do:

"aaaaaa".awesome_regex_scan(/^(..+?)\1+$/) # => [["aaaaaa", "aa"]]
"aaaaaa".awesome_regex_scan(/^(..+)\1+$/) # => [["aaaaaa", "aaa"]]
share|improve this answer
class String
  def awesome_regex_scan(pattern)
    result = []
    source = self
    while (match = source.match(pattern))
      result << match.to_s
      source = source.slice(match.begin(0)+1..-1)
    end
    result
  end
end

p "Hey".awesome_regex_scan(/../)
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