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I'd like to count the number of times a set of words appear in each paragraph in a text file. I am able to count the number of times a set of words appears in an entire text.

It has been suggested to me that my code is really buggy, so I'll just ask what I would like to do, and if you want, you can look at the code I have at the bottom.

So, given that "frequency_count.txt" has the words "apple pear grape melon kiwi" in it, I want to know how often "apple" shows up in each paragraph of a separate file "test_essay.txt", how often pear shows up, etc., and then for these numbers to be printed out in a series of lines of numbers, each corresponding to a paragraph.

For instance:

apple, pear, grape, melon, kiwi
3,5,2,7,8
2,3,1,6,7
5,6,8,2,3

Where each line corresponds to one of the paragraphs.

I am very, very new to Ruby, so thank you for your patience.

output_file = '/Users/yirenlu/Quora-Personal-Analytics/weka_input6.csv'
o = File.open(output_file, "r+")

common_words = '/Users/yirenlu/Quora-Personal-Analytics/frequency_count.txt'
c = File.open(common_words, "r")

c.each_line{|$line1|
    words1 = $line1.split
    words1.each{|w1|
        the_file = '/Users/yirenlu/Quora-Personal-Analytics/test_essay.txt'
        f = File.open(the_file, "r")
        rows = File.readlines("/Users/yirenlu/Quora-Personal-Analytics/test_essay.txt")
        text = rows.join
        paragraph = text.split(/\n\n/)
        paragraph.each{|p|
            h = Hash.new
            puts "this is each paragraph"
            p.each_line{|line|
                puts "this is each line"
                words = line.split
                words.each{|w|
                    if w1 == w
                        if h.has_key?(w)
                            h[w1] = h[w1] + 1
                        else
                            h[w1] = 1
                        end
                        $x = h[w1]
                    end
                }
            }
            o.print "#{$x},"
        }
    }
    o.print "\n"
    o.print "#{$line1}"
}
share|improve this question
2  
I'd suggest that using more descriptive variable names and consistent indenting (especially for blocks) would make the question a lot easier to answer. You might even find the bug yourself ! –  M.G.Palmer Dec 16 '11 at 16:38
    
You are not "mostly there" at all. I tried to improve your code, but it turns out that the problem is not just about handeling a hash. There are all kinds of mistakes in the code you posted. As Palmer notes, you do not even do consistent indenting, so people will not feel like reading your code. It is easier to throw out your code and ask someone what you want to do. –  sawa Dec 16 '11 at 16:51
    
Is this homework? –  Mark Thomas Dec 16 '11 at 17:21
    
no, this is not homework. –  Yiren Lu Dec 16 '11 at 17:28
    
OK, then I've given you a fairly complete answer. :) –  Mark Thomas Dec 16 '11 at 18:22

6 Answers 6

up vote 0 down vote accepted

Here's an alternate answer, which is has been tweaked for conciseness (though not as easy to read as my other answer).

require 'csv'

words = %w(apple pear grape melon kiwi)
text = File.open("test_essay.txt").read

CSV.open("file.csv", "wb") do |csv|
  text.split(/\n\n/).map {|p| csv << words.map {|w| p.scan(/\b#{w}\b/).length}}
end

I prefer the slightly longer but more self-documenting code, but it's fun to see how small it can get.

share|improve this answer

If you're used to PHP or Perl you may be under the impression that a variable like $line1 is local, but this is a global. Use of them is highly discouraged and the number of instances where they are strictly required is very short. In most cases you can just omit the $ and use variables that way with proper scoping.

This example also suffers from nearly unreadable indentation, though perhaps that was an artifact of the cut-and-paste procedure.

Generally what you want for counters is to create a hash with a default of zero, then add to that as required:

# Create a hash where the default values for each key is 0
counter = Hash.new(0)

# Add to the counters where required
counter['foo'] += 1
counter['bar'] += 2

puts counter['foo']
# => 1
puts counter['baz']
# => 0

You basically have what you need, but everything is all muddled and just needs to be organized better.

share|improve this answer

Here are two one-liners to calculate frequencies of words in a string.

The first one is a bit easier to understand, but it's less effective:

txt.scan(/\w+/).group_by{|word| word.downcase}.map{|k,v| [k, v.size]}
# => [['word1', 1], ['word2', 5], ...]

The second solution is:

txt.scan(/\w+/).inject(Hash.new(0)) { |hash, w| hash[w.downcase] += 1; hash}
# => {'word1' => 1, 'word2' => 5, ...}
share|improve this answer
    
+1 The first is how I'd go about it. –  the Tin Man May 22 '13 at 5:08

This could be shorter and easier to read if you use:

  1. The CSV library.
  2. A more functional approach using map and blocks.
require 'csv'

common_words = %w(apple pear grape melon kiwi)
text = File.open("test_essay.txt").read

def word_frequency(words, text)
  words.map { |word| text.scan(/\b#{word}\b/).length }
end

CSV.open("file.csv", "wb") do |csv|
  paragraphs = text.split /\n\n/
  paragraphs.each do |para| 
    csv << word_frequency(common_words, para)
  end
end

Note this is currently case-sensitive but it's a minor adjustment if you want case-insensitivity.

share|improve this answer
    
Ah, I didn't realize that there was a csv library. This is exactly what I needed. Thanks! –  Yiren Lu Dec 16 '11 at 19:37
    
Would you like to accept this answer then? (and vote up any helpful answers too) –  Mark Thomas Dec 16 '11 at 19:47

What about this:

# Create an array of regexes to be used in `scan' in the loop.
# `\b' makes sure that `barfoobar' does not match `bar' or `foo'.
p word_list = File.open("frequency_count.txt"){|io| io.read.scan(/\w+/)}.map{|w| /\b#{w}\b/}
File.open("test_essay.txt") do |io|
    loop do
        # Add lines to `paragraph' as long as there is a continuous line
        paragraph = ""
        # A `l.chomp.empty?' becomes true at paragraph border
        while l = io.gets and !l.chomp.empty?
            paragraph << l
        end
        p word_list.map{|re| paragraph.scan(re).length}
        # The end of file has been reached when `l == nil'
        break unless l
    end
end
share|improve this answer

To count how many times one word appears in a text:

text = "word aaa word word word bbb ccc ccc"
text.scan(/\w+/).count("word") # => 4

To count a set of words:

text = "word aaa word word word bbb ccc ccc"
wlist = text.scan(/\w+/)
wset = ["word", "ccc"]
result = {}
wset.each {|word| result[word] = wlist.count(word) }
result # => {"word" => 4, "ccc" => 2}
result["ccc"] # => 2
share|improve this answer
1  
Are you sure that result << wlist.count(word) works? How does result get the information about the key? –  sawa Dec 16 '11 at 17:01
    
@sawa how I left it?? Thank you, fixed. –  Guilherme Bernal Dec 16 '11 at 19:12

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