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I new to Ruby and struggling to understand what is going on in this bit of code I wrote. Why do I have to declare two variables |x,y| to get the output I am expecting? I am only using x and y always appears to be nil. But when I change to |x|, my word count is always 0 (see code and output below). Thanks for any insight you may be able to provide.

def count_words(string)
  string.downcase!

  wordhash = Hash.new

  # what is going on here?  
  # Why do I have to have two 
  # variables in the scan block?
  string.scan(/(\b\w+\b)/){|x,y|
    wordhash.store(x,string.scan(/\b#{x}\b/).length)}

  return wordhash
end

puts count_words("Hello there.  This is bob bob bob")

# Correct Output with |x,y|:
# {"hello"=>1, "there"=>1, "this"=>1, "is"=>1, "bob"=>3}

# Incorrect Output with |x|:
# {["hello"]=>0, ["there"]=>0, ["this"]=>0, ["is"]=>0, ["bob"]=>0}
share|improve this question
    
Have you read the documentation? –  Niklas B. Feb 21 '12 at 16:02
    
@NiklasB, Yes. But my mistake is not completely obvious to me yet. Just by looking at the output, x appears to be a string in one case but an array in the other. But I do not understand exactly what is going on. –  J.Hendrix Feb 21 '12 at 16:06
1  
Try the following: proc { |x,y| p x, y }.call([1,2]). See how the array is destructured into x and y automatically? In your case it's more like proc { |x,y| p x, y }.call([1]), y will just be nil, because the given array is not long enough. –  Niklas B. Feb 21 '12 at 16:18
    
Oh, didn't see that :) Fair enough, removed my comment –  Niklas B. Feb 21 '12 at 17:12

2 Answers 2

up vote 2 down vote accepted

The other answer correctly explains why this doesn't work as expected. Let me try to point out some more problems with your code:

  • string.downcase! modifies the argument given to the function, which is extremely bad style
  • /(\b\w+\b)/ you don't need an additional match group here, simply use /\b\w+\b/. This will allow you to just use scan(...) do |x|, where x will be the matched word
  • wordhash.store(x,y) can simply be written as wordhash[x] = y
  • string.scan(/\b#{x}\b/).length you scan the string a second time, although that is not necessary. Instead, you can just increment a counter for every match of a given word.

Example:

def count_words(string)
  # set up a hash that accumulates the number of occurrences per word
  wordcount = Hash.new(0)
  string.downcase.scan(/\b\w+\b/) { |word| wordcount[word] += 1 }
  # no need to use return here, the function already evaluates to the last
  # value
  wordcount
end

p count_words("Hello there.  This is bob bob bob")
# => {"hello"=>1, "there"=>1, "this"=>1, "is"=>1, "bob"=>3}

This is just to demonstrate how your approach could be made working, in Ruby you'd probably solve this in a more functional way, preferrably using group_by, as Michael already demonstrated or using inject:

string.downcase.split.inject(Hash.new(0)) { |h,word| h[word] += 1; h }
share|improve this answer
    
+1 Thank you! This makes sense to me now. I should have also mentioned that I am rather new to RegEx too. –  J.Hendrix Feb 21 '12 at 16:18
1  
+1. BTW: since Fixnums are immutable, the simpler Hash.new(0) also works. –  Michael Kohl Feb 21 '12 at 16:55
    
@Michael: Very nice to now! I'll add a simple one-liner featuring this. –  Niklas B. Feb 21 '12 at 16:57
1  
Here's one possible one-liner: s.downcase.scan(/\b\w+\b/).inject(Hash.new(0)) { |h, word| h[word] += 1; h } –  Michael Kohl Feb 21 '12 at 17:02
    
@Michael: Thanks, that's about what I already added to the answer ;) –  Niklas B. Feb 21 '12 at 17:03

From the String#scan documentation:

If the pattern contains groups, each individual result is itself an array containing one entry per group.

Since your pattern contains a group, the first block argument is an array. If you use |x, y| you destructure the array and assign its first element to x.

By the way, for getting a hash of word counts, you can just do this:

s = "this is a test string it is"
Hash[s.split.group_by{ |e| e }.map { |k,v| [k, v.size] }] 
#=> {"this"=>1, "is"=>2, "a"=>1, "test"=>1, "string"=>1, "it"=>1}
share|improve this answer
    
+1, but I think you might need to add a .downcase call somewhere to make sure that different capitalizations are flattened into one group. –  Platinum Azure Feb 21 '12 at 16:11
    
+1 sweet! Much simpler. –  J.Hendrix Feb 21 '12 at 16:43
1  
@PlatinumAzure: Yes, downcase probably makes sense. As my code was only meant as an example, details are left as an exercise to the reader. –  Michael Kohl Feb 21 '12 at 16:51
    
@J.Hendrix: Is there anything I should add to the answer for you to accept it? Any more questions? :-) –  Michael Kohl Feb 21 '12 at 16:52
    
+1,nice solution. And congrats for getting gold ruby badge today :) –  Alex Kliuchnikau Feb 23 '12 at 6:17

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