Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need help finding a partial word match. It should return words that match three consecutive letters to the target. For example:

WORDS = ["born", "port" ,"cort", "mort"]
find_match("corn", WORDS)  =>  returns  ["born", "cort"]

should find partial matches for "corn". And "b orn ", and " cor t" match.

Regular expressions may not be the best to solve such problem. If you have other ideas, feel free to share.

share|improve this question

2 Answers 2

A non-regex solution:

WORDS = ["born", "port" ,"cort", "mort"]

def find_match(w)
  threes = (0..w.size-3).reduce([]) {|arr, i| arr << w[i,3]}
  WORDS.select {|w| threes.select {|s| w.include?(s)}.any?}
end

find_match("corn")   # => ["born", "cort"] 
find_match("cavort") # => ["port", "cort", "mort"]   
find_match("heart")  # => []
  • First compute threes, an array of all substrings of w that are of length three. If w = snort, this would be ['sno', 'nor', 'ort'], where w[0,3] = 'sno', w[1,3] = 'nor' and w[2,3] = 'ort'.
  • Next, select the words in WORDS that have a substring that matches at least on of the strings in threes.

There are of course many variants of this, such as:

threes = []; (threes << w[0,3]; w.slice!(0)) while w.size > 2

For the second line above, I initially tried

threes.reduce([]) {|arr1, s| arr1 += WORDS.select {|w| w.include?(s)}}

but that was problematic because a word in WORDS might match more than one 3-character substring of w, in which case it would be included in arr1 once for each match.

share|improve this answer

You could use each_cons to build an array of substrings:

'corn'.chars.each_cons(3).map(&:join)
# ['cor', 'orn']

Then Regexp.union to convert the array to a single regex:

re = Regexp.union('corn'.chars.each_cons(3).map(&:join))

Then you can match re against the array elements:

WORDS.select { |w| w =~ re }

Generalizing:

def find_match(word, words)
    re = Regexp.union(word.chars.each_cons(3).map(&:join))
    words.select { |w| w =~ re }
end

I'm sure there are lots of variations on that general theme. For example, you could use the match_str form of String#[] instead of a regex and I'm sure there are lots of different ways to pull out all the substrings of length 3.

share|improve this answer
1  
or words.grep(re) –  Stefan Oct 20 '13 at 7:09
    
@Stefan: Nice. I forget about grep a lot. –  mu is too short Oct 20 '13 at 17:59
    
Thanks, mu. So many things here that are new-to-me, plus @Stefan's reminder about grep. I didn't know about either each_con or Regexp.union. Very useful. I'll have to look into Regexp's methods more thoroughly. –  Cary Swoveland Oct 23 '13 at 7:08
    
@CarySwoveland: The Enumerable docs (ruby-doc.org/core-2.0.0/Enumerable.html) are necessary reading for anyone doing Ruby. Then you have to bounce between reading the Enumerable interface and thinking in a shell-pipeline/functional manner for awhile and eventually it becomes second nature. Consulting the docs often also helps keep you familiar with what's available (as does answering questions around here :). Looks like you're almost a neighbor too. –  mu is too short Oct 23 '13 at 7:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.