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I'm working on a string reconstruction algorithm (a classic in dynamic programming examples, turning space less text into normal spaced text) in Ruby. The code below is pure ruby, you can copy paste and start testing immediately, it's working 80% of the time and tends to break, the larger the dictionary becomes. I've tested it with more then 80k words dictionaries and it works less good, about 70% of the time.

If there's a way to make it work 100% if the word is present in the dictionary, please show me.

Here's the code: (it's well spaced and should be very readable)

# Partially working string reconstruction algo in pure Ruby

# the dictionary
def dict(someWord)
  myArray = [" ", "best", "domain", "my", "successes", "image", "resizer", "high", "tech", "crime", "unit", "name", "edge", "times", "find", "a", "bargain", "free", "spirited", "style", "i", "command", "go", "direct", "to", "harness", "the", "force"]
  return !!(myArray.index(someWord))
end


# inspired by http://cseweb.ucsd.edu/classes/wi12/cse202-a/lecture6-final.pdf

## Please uncomment the one you wanna use
#
# (all the words used are present in the dictionary above)
#
# working sentences
  x = ' ' + "harnesstheforce"
# x = ' ' + "hightechcrimeunit"
#
# non working sentences
# x = ' ' + "findabargain"
# x = ' ' + "icommand"

puts "Trying to reconstruct #{x}"

# useful variables we're going to use in our algo
n = x.length
k = Array.new(n)
s = Array.new(n)
breakpoints = Hash.new
validBreakpoints = Hash.new

begin

  # let's fill k
  for i in 0..n-1
    k[i] = i
  end

  # the core algo starts here
  s[0] = true
  for k in 1..n-1

    s[k] = false

    for j in 1..k
      if s[j-1] && dict(x[j..k])
        s[k] = true

        # using a hash is just a trick to not have duplicates
        breakpoints.store(k, true)
      end
    end

  end

  # debug
  puts "breakpoints: #{breakpoints.inspect} for #{x}"

  # let's create a valid break point vector

  i=1
  while i <= n-1 do

    # we choose the longest valid word
    breakpoints.keys.sort.each do |k|

      if i >= k
        next
      end

      # debug: when the algo breaks, it does so here and goes into an infinite loop
      #puts "x[#{i}..#{k}]: #{x[i..k]}"
      if dict(x[i..k])
        validBreakpoints[i] = k
      end
    end

    if validBreakpoints[i]
      i = validBreakpoints[i] + 1
    end

  end

  # debug
  puts "validBreakpoints: #{validBreakpoints.inspect} for #{x}"

  # we insert the spaces at the places defined by the valid breakpoints
  x = x.strip
  i = 0
  validBreakpoints.each_key do |key|
    validBreakpoints[key] = validBreakpoints[key] + i
    i += 1
  end

  validBreakpoints.each_value do |value|
    x.insert(value, ' ')
  end

  puts "Debug: x: #{x}"


  # we capture ctrl-c
rescue SignalException
  abort

# end of rescue
end
share|improve this question
    
Hey guys, this is my first post, so bear with me. Can't wait to see what a solutions could be. This problem almost made me bang my head against the wall... :/ –  SphinxTechnologies Jul 26 '13 at 10:57
    
Yes, I've translate a pseudo code from an dynamic programming algo lecture... :) pdf can be found above. Also I'm new to Ruby, really trying to do my best here, please bear with me. –  SphinxTechnologies Jul 26 '13 at 11:08
    
Don’t rescue from SignalException like you are. First because for a SIGINT (Ctrl C) you do exactly what happens anyway (exiting), second because there are many other signals all of which raise a SignalException and aren’t SIGINT. –  Andrew Marshall Jul 26 '13 at 12:05
    
Humm, you gotta point Andrew, but in my case, using Terminal on mac, Ctrl C doesn't do anything in that case unless I rescue like this... Weird I know. So I just found the quickest way to make it stop the program, if you have a better Exception to suggest for doing this, please share. By the way... I'm executing it as a Model class method in rails... With rails runner, perhaps this is why ctrl c doesn't respond unless I have a rescue in there.. –  SphinxTechnologies Jul 26 '13 at 12:15
    
@SphinxTechnologies: If you keep changing the question after it has been (partially) answered, the answers become quite worthless. The idea of SO is to store question-answer pairs for later reference. –  undur_gongor Jul 26 '13 at 19:25

1 Answer 1

Note that your algorithm fails for strings containing single-character words. This is an off-by-one error. You are ignoring the breakpoints after such words, thus you end up with a word ("abargain") not contained in your dictionary.

Change

   if i >= k
     next
   end

to

   if i > k
     next
   end

or more Ruby-like

   next if i > k

Note also that you are running into an endless loop whenever your string contains something which is not a word:

if validBreakpoints[i]        # will be false 
  i = validBreakpoints[i] + 1 # i not incremented, so start over at the same position
end

You better treat this as an error

return '<no parse>' unless validBreakpoints[i] # or throw if you are not in a function
i = validBreakpoints[i] + 1

The problem with "inotifier" is a deficiency of your algorithm. Always choosing the longest word is not good. In this case, the first "valid" breakpoint detected is after the "in" which leaves you the non-word "otifier".

share|improve this answer
    
Man, wow, you spotted it immediately ! I fixed this off-by-one error like you suggested, ruby style :) it's much better now, it's works around 90% of the time, but still brake for some case, let me include such examples. –  SphinxTechnologies Jul 26 '13 at 11:23
    
Absolutely man... I was looking for a way to treat this problem, was using a timeout loop. That's much better ! –  SphinxTechnologies Jul 26 '13 at 11:33
    
Ok undur, I've implemented your fixes ! Really much much better now... :-) But i've found an example were it still breaks... with a two words sentence like ("inotifier")... I've set it up in the code above for immediate testing. –  SphinxTechnologies Jul 26 '13 at 11:50
    
Please see my updated answer. –  undur_gongor Jul 26 '13 at 11:56
    
Hmmm... I see ! :) So I must find a way to adapt the strategy if the first one fails. If "longest word" fails, I move to "first valid word". I'll try implementing that. You're a life saver, God bless you man. –  SphinxTechnologies Jul 26 '13 at 12:10

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