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I'm looking for a Ruby gem (preferably) that will cut domain names up into their words.

whatwomenwant.com => 3 words, "what", "women", "want".

If it can ignore things like numbers and gibberish then great.

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4  
And how do you expect it to cope with, say, forthestate.com? (Hmm, I was expecting the publisher there. Never mind, the point stands) –  Chowlett Nov 30 '10 at 15:25
2  
but it's also "forth estate" –  Keng Nov 30 '10 at 15:30
8  
An even better example than forthestate is expertsexchange. –  sepp2k Nov 30 '10 at 15:36
2  
Why do you want to do this? Knowing what larger problem you're solving is often helpful with language processing questions... –  David Miller Nov 30 '10 at 15:40
2  
It might be easier to work backwards. Create the list of words you're interested in, search the list of domains that are expiring, and look for substring matches. For the ones with hits, subtract your word then look at whatever is left and see if the remnants match one or more words in your dictionary at /usr/share/dict. For more adventure add stemming to find variations on your favorite words, allowing more alternate domain names. –  the Tin Man Nov 30 '10 at 18:43

3 Answers 3

Update


I've been working with this challenge and came up with the following code. Please refactor if I'm doing something wrong :-)

Benchmark:


Runtime: 11 sec.
f- file: 13.000 lines of domain names
w- file: 2000 words (to check against)

Code:


f           = File.open('resource/domainlist.txt', 'r')
lines       = f.readlines
w           = File.open('resource/commonwords.txt', 'r')
words       = w.readlines

results  = {}

lines.each do |line|
  # Start with words from 2 letters on, so ignoring 1 letter words like 'a'
  word_size = 2
  # Only get the .com domains
  if line =~ /^.*,[a-z]+\.com.*$/i then
    # Strip the .com off the domain
    line.gsub!(/^.*,([a-z]+)\.com.*$/i, '\\1')
    # If the domain name is between 3 and 12 characters
    if line.size > 3 and line.size < 15 then
      # For the length of the string run ...
      line.size.times do |n|
        # Set the counter
        i = 0
        # As long as we're within the length of the string
        while i <= line.size - word_size do
          # Get the word in proper DRY fashion
          word = line[i,word_size]
          # Check the word against our list
          if words.include?(word) 
            results[line] = [] unless results[line]
            # Add all the found words to the hash
            results[line] << word
          end
          i += 1
        end
        word_size += 1
      end
    end
  end
end
p results
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Result looks like this --- "ckice"=>["ice"], "claydoor"=>["or", "door"], "cnilink"=>["ink"], "coachkendall"=>["all"], "cssschool"=>["school"], "ctiservice"=>["ice"] –  Fred Fickleberry III Nov 30 '10 at 21:20
    
instead of adding an answer, amend your initial question to show your progress. –  the Tin Man Dec 1 '10 at 10:07

You'll need a word list such as those produced by Project Gutenberg or available in the source for ispell &c. Then you can use the following code to decompose a domain into words:

WORD_LIST = [
  'experts',
  'expert',
  'exchange',
  'sex',
  'change',
]

def words_that_phrase_begins_with(phrase)
  WORD_LIST.find_all do |word|
    phrase.start_with?(word)
  end
end

def phrase_to_words(phrase, words = [], word_list = [])
  if phrase.empty?
    word_list << words
  else
    words_that_phrase_begins_with(phrase).each do |word|
      remainder = phrase[word.size..-1]
      phrase_to_words(remainder, words + [word], word_list)
    end
  end
  word_list
end

p phrase_to_words('expertsexchange')
# => [["experts", "exchange"], ["expert", "sex", "change"]]

If given a phrase that has any unrecognized words, it returns an empty array:

p phrase_to_words('expertsfoo')
# => []

If the word list is long, this will be slow. You can make this algorithm faster by preprocessing the word list into a tree. The preprocessing itself will take time, so whether it's worth it will depend upon how many domains you want to test.

Here's some code to turn the word list into a tree:

def add_word_to_tree(tree, word)
  first_letter = word[0..0].to_sym
  remainder = word[1..-1]
  tree[first_letter] ||= {}
  if remainder.empty?
    tree[first_letter][:word] = true
  else
    add_word_to_tree(tree[first_letter], remainder)
  end
end

def make_word_tree
  root = {}
  WORD_LIST.each do |word|
    add_word_to_tree(root, word)
  end
  root
end

def word_tree
  @word_tree ||= make_word_tree
end

This produces a tree that looks like this:

{:c=>{:h=>{:a=>{:n=>{:g=>{:e=>{:word=>true}}}}}}, :s=>{:e=>{:x=>{:word=>true}}}, :e=>{:x=>{:c=>{:h=>{:a=>{:n=>{:g=>{:e=>{:word=>true}}}}}}, :p=>{:e=>{:r=>{:t=>{:word=>true, :s=>{:word=>true}}}}}}}}

It looks like Lisp, doesn't it? Each node in the tree is a hash. Each hash key is either a letter, with the value being another node, or it is the symbol :word with the value being true. Nodes with :word are words.

Modifying words_that_phrase_begins_with to use the new tree structure will make it faster:

def words_that_phrase_begins_with(phrase)
  node = word_tree
  words = []
  phrase.each_char.with_index do |c, i|
    node = node[c.to_sym]
    break if node.nil?
    words << phrase[0..i] if node[:word]
  end
  words
end
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Looks interesting. Will go play with this solution to see if it is faster than the code I pasted a few mins ago. Thanks for the answer, much appreciated. –  Fred Fickleberry III Nov 30 '10 at 21:31
    
@Frankie Yale, I enjoyed your question. Thanks for asking it. –  Wayne Conrad Nov 30 '10 at 23:34

I don't know gems for this, but if I had to solve this problem, I would download some english words dictionary and read about text searching algorythms.

When you have more than one variant to divide letters (like in sepp2k's expertsexchange), than you can have two hints:

  1. Your dictionary is sorted by... for example, popularity of a word. So dividings with most popular words will be more valuable.
  2. You can go to the main page of site with domain you are anazyling and just read the content, searching your words. I don't think that you'll find sex on a page for some experts. But... hm... experts can be so different ,.)
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