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"abc def" should match the following regex because "abc" and "def" both have 3 characters

/([a-z]*) ([a-z]*){\1.length}/

Is there a way to do this in Ruby?

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2  
Does it have to be a regex solution? –  Mark Byers Sep 17 '11 at 19:31
    
@Mark Yes, that would preferable –  Jrom Sep 17 '11 at 19:36

4 Answers 4

up vote 2 down vote accepted

The set of strings you describe do not form a regular language. It cannot be matched by a regular expression. It's one of the classic examples of languages that can't be matched with a regular expression (another is testing for matching parentheses).

Just compare the lengths of the two strings in ordinary code.

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If I'm not mistaken, \1 and \2 should correspond to "abc" and "def". Can I still use these variables outside the regular expression? –  Jrom Sep 17 '11 at 19:37
    
Sweet explanation :) –  lucapette Sep 17 '11 at 20:01
2  
Regular expressions haven't been regular for quite some time. –  mu is too short Sep 17 '11 at 20:12

No, not with regex alone. The part: {\1.length} is not valid, at least, not as you're hoping to use it.

Try something like this:

#!/usr/bin/env ruby
if /([a-z]+)\s+([a-z]+)/ =~ 'abc def' and $1.length == $2.length
  print 'OK'
else
  print 'No match...'
end
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def match_equal_length(s, regex)
  m = s.scan(r)
  return m[0] if (m.size > 0) && (m[0][0].size == m[0][1].size)
  nil # String doesn't match or $1.size != $2.size
end
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I don't think you can do it in the regex but you can get pretty close by using a block with match:

two_same_length = s.match(/([a-z]*) ([a-z]*)/) { |m| m[1].length == m[2].length }

The whole match is in m[0] in the block, you want to look at the groups so you want m[1] and m[2]. If you always want a boolean (instead of a nil if there is no match at all) then double-bang it:

two_same_length = !!s.match(/([a-z]*) ([a-z]*)/) { |m| m[1].length == m[2].length }

For example:

>> !!'abc pancakes'.match(/([a-z]*) ([a-z]*)/) { |m| m[1].length == m[2].length }
=> false
>> !!'pancakes'.match(/([a-z]*) ([a-z]*)/) { |m| m[1].length == m[2].length }
=> false
>> !!'whereis pancake'.match(/([a-z]*) ([a-z]*)/) { |m| m[1].length == m[2].length }
=> true
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