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.

Say I have a blog model with Title and Body. How I do show the number of words in Body and characters in Title? I want the output to be something like this

Title: Lorem Body: Lorem Lorem Lorem

This post has word count of 3.

share|improve this question

6 Answers 6

up vote 25 down vote accepted
"Lorem Lorem Lorem".scan(/\w+/).size
=> 3

UPDATE: if you need to match rock-and-roll as one word, you could do like

"Lorem Lorem Lorem rock-and-roll".scan(/[\w-]+/).size
=> 4
share|improve this answer
    
That's exactly what I was looking for. Thanks. –  sent-hil Jan 21 '10 at 7:54
2  
What about "add some rock-n-roll"? There are three words here while your variant will find five. –  IDBD Jan 21 '10 at 10:27
    
added hyphen too. –  YOU Jan 21 '10 at 12:16
    
One thing I noticed is this method will count apostrophes so it's becomes two words. I couldn't figure out how to modify it so I just did a gsub before this to remove all apostrophes. –  Kansha Feb 10 '13 at 8:55
"caçapão adipisicing elit".scan(/[\w-]+/).size 
=> 5

But as we can see, the sentence has only 3 words. The problem is related with the accented characters, because the regex \w doesn't consider them as a word character [A-Za-z0-9_].

A improved solution would be

I18n.transliterate("caçapão adipisicing elit").scan(/[\w-]+/).size
=> 3
share|improve this answer

The answers here have a couple of issues:

  1. They don't account for utf and unicode chars (diacritics): áâãêü etc...
  2. They don't account for apostrophes and hyphens. So Joe's will be considered two words Joe and 's which is obviously incorrect. As will twenty-two, which is a single compound word.

Something like this works better and account for those issues:

foo.scan(/[\p{Alpha}\-']+/)

You might want to look at my Words Counted gem. It allows to count words, their occurrences, lengths, and a couple of other things. It's also very well documented.

counter = WordsCounted::Counter.new(post.body)
counter.word_count #=> 3
counter.most_occuring_words #=> [["lorem", 3]]
# This also takes into capitalisation into account.
# So `Hello` and `hello` are counted as the same word.
share|improve this answer

If you're interested in performance, I wrote a quick benchmark:

require 'benchmark'
require 'bigdecimal/math'
require 'active_support/core_ext/string/filters'

# Where "shakespeare" is the full text of The Complete Works of William Shakespeare...

puts 'Benchmarking shakespeare.scan(/\w+/).size x50'
puts Benchmark.measure { 50.times { shakespeare.scan(/\w+/).size } }
puts 'Benchmarking shakespeare.squish.scan(/\w+/).size x50'
puts Benchmark.measure { 50.times { shakespeare.squish.scan(/\w+/).size } }
puts 'Benchmarking shakespeare.split.size x50'
puts Benchmark.measure { 50.times { shakespeare.split.size } }
puts 'Benchmarking shakespeare.squish.split.size x50'
puts Benchmark.measure { 50.times { shakespeare.squish.split.size } }

The results:

Benchmarking shakespeare.scan(/\w+/).size x50
 13.980000   0.240000  14.220000 ( 14.234612)
Benchmarking shakespeare.squish.scan(/\w+/).size x50
 40.850000   0.270000  41.120000 ( 41.109643)
Benchmarking shakespeare.split.size x50
  5.820000   0.210000   6.030000 (  6.028998)
Benchmarking shakespeare.squish.split.size x50
 31.000000   0.260000  31.260000 ( 31.268706)

In other words, squish is slow with Very Large Strings™. Other than that, split is faster (twice as fast if you're not using squish).

share|improve this answer
"Lorem Lorem Lorem".scan(/\S+/).size
=> 3
share|improve this answer

Also:

"Lorem Lorem Lorem".split.size
=> 3
share|improve this answer
    
I've experienced this method to be a lot more reliable, the /[\w-]+/ regex doesn't seem very reliable. –  Jasper Kennis Apr 24 '12 at 10:28
1  
I like this a lot more. Simple. I added squish before the split. –  duma Jan 31 '13 at 19:35

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.