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Regexp#match(str, index) gives me the first match after index in string which is great for iterating through each match in from left to right. But how can I find the last match before a given index? String#rindex gives the index of the last match but what if I want the full match data?

Example:

/.oo/.rmatch("foo boo zoo")

...should yield...

#<MatchData "zoo">
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2  
can you give any example data and what you'd want as the result? –  iain Oct 21 '12 at 0:52
    
The right most index of "foo boo zoo" is 10. How can you expect 12 as the result? –  sawa Oct 21 '12 at 2:01
    
That was a typo, I fixed it. –  Emil Eriksson Oct 21 '12 at 18:06
    
Do you want rlimit to control the last source string index which can be matched or the last index which can begin a match (allowing the match to extend past rlimit if it's first character is prior to rlimit)? –  dbenhur Oct 21 '12 at 22:15

3 Answers 3

You could limit how far into the string the regexp may match by sub-stringing the string.

irb> /.oo/.match("foo boo zoo"[0..-3])
=> #<MatchData "foo">
irb> /.oo/.match("foo boo zoo"[0..-3],3)
=> #<MatchData "boo">
irb> /.oo/.match("foo boo zoo"[3..-3]) # can also express the start with slice
=> #<MatchData "boo">
irb> /.oo/.match("foo boo zoo"[0..-3],5)
=> nil

String#scan will repeatedly apply a regexp returning an Array of all matches, from which you just select the last one.

module RegexpHelper
  def rmatch str, rlimit = -1
    str[0..rlimit].scan(self).last
  end
end

Regexp.send :include, RegexpHelper

/.oo/.rmatch 'foo boo moo'     # => "moo"
/.oo/.rmatch 'foo boo moo', -3 # => "boo"
/.oo/.rmatch 'foo boo moo', 4  # => "foo"
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3  
+1, and if you add a negative lookahead, you don't have to iterate through the matches yourself: /.oo(?!.*.oo)/ –  Alan Moore Oct 21 '12 at 1:59
    
This is fine if the regex is for a finite set (strings have known limited length). It won't work if the regex has a Kleene star. –  Gene Oct 21 '12 at 2:09
    
It should preferrably work on arbitrary regexes. –  Emil Eriksson Oct 21 '12 at 18:08
    
@EmilEriksson how would this not work on arbitrary regexp? the subslice limits the match to only consider input upto the high index of the slice, it cares not what the regexp is. –  dbenhur Oct 21 '12 at 21:55
    
I'm not sure what I meant actually. You are right, this will work for arbitrary regexes. But won't this be slow if there is a lot of text to match? It searches from the start up to the end of the string. –  Emil Eriksson Oct 22 '12 at 0:00

Here's a monkeypatch solution:

class Regexp
  def rmatch str, offset = str.length
    last_match = match str
    while last_match && last_match.offset(0).last < offset
      break unless m = match(str, last_match.offset(0).last)
      last_match = m
    end
    last_match
  end
end

p /.oo/.rmatch("foo boo zoo")
#<MatchData "zoo">
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You could reverse the string, reverse the regex, and use length(str) - index for the start point.

1.9.3p194 :010 > /oo./.match("foo boo zoo".reverse)[0].reverse
=> "zoo" 

Reversing a regex is simple if the language it represents is really regular. Greediness or lack thereof can lead to edge cases you'd have to think through.

If the regex has a Kleene star, I believe this is the only way to get the job done unless you build your own reverse regex matcher, which is a big project.

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This won't give you the right matchdata though, and that's kind of the whole point. –  pguardiario Oct 21 '12 at 2:39
    
Sorry I don't get it. What about the match data can't be easily "flipped" to get whatever is needed? –  Gene Oct 21 '12 at 2:49
1  
That's not what you did though. Also consider a regex like /"[^"]+"/ and a string like '"foo" "boo" "zoo" "'. In reverse it picks up a match that isn't a match going forward. –  pguardiario Oct 21 '12 at 3:09
    
As I said, greediness causes edge cases. –  Gene Oct 21 '12 at 4:20
    
Ok then consider something simple like /w+/, reverse it and get an illegal regex: /+w/ - It was a good idea but there's obviously too many problems with this approach. –  pguardiario Oct 21 '12 at 4:39

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