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I want to do something like this

def get_count(string)
 sentence.split(' ').count

I think there's might be a better way, string may have built-in method to do this.

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String doesn't have a built-in method to do it because what you call a "word" might not agree with what someone else calls one. For instance, "one-way" is a compound word. Do you want to count it as one, or two words? Your definition might not include numerics inside a word, but the regex \w includes them; [a-zA-Z0-9_] is its definition. So, like most languages, the base class gives you the building blocks and you have to take it from there. – the Tin Man Jun 22 '11 at 19:59
BTW, your example code sentence.split(' ').count should probably be string.split(' ').count. – the Tin Man Jun 22 '11 at 20:00
@the Tin Man, you are right, this could bring up some confusing – mko Jul 9 '11 at 13:32

9 Answers 9

I believe count is a function so you probably want to use length.

def get_count(string) 
    sentence.split(' ').length

Edit: If your string is really long creating an array from it with any splitting will need more memory so here's a faster way:

def get_count(string) 
    (0..(string.length-1)).inject(1){|m,e| m += string[e].chr == ' ' ? 1 : 0 }
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If the only word boundary is a single space, just count them.

puts "this sentence has five words".count(' ')+1 # => 5

If there are spaces, line endings, tabs , comma's followed by a space etc. between the words, then scanning for word boundaries is a possibility:

puts "this, is./tfour   words".scan(/\b/).size/2
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I know this is an old question, but this might help someone stumbling here. Countring words is a complicated problem. What is a "word"? Do numbers and special characters count as words? Etc...

I wrote the words_counted gem for this purpose. It's a highly flexible, customizable string analyser. You can ask it to analyse any string for word count, word occurrences, and exclude words/characters using regexp, strings, and arrays.

counter ="Hello World!", exclude: "World")
counter.word_count #=> 1
counted.words      #=> ["Hello"]


The documentation and full source are on Github.

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using regular expression will also cover multi spaces:

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That will split on non-whitespace characters.... lowercase "s" for whitespace. – Pavling Jun 21 '11 at 11:38

String doesn't have anything pre-built to do what you wanted. You can define a method in your class or extend the String class itself for what you want to do:

def word_count( string )
  return 0 if string.empty?

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Regex split on any non-word character:


...although it makes apostrophe use count as two words, so depending on how small the margin of error needs to be, you might want to build your own regex expression.

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I recently found that String#count is faster than splitting up the string by over an order of magnitude.

Unfortunately, String#count only accepts a string, not a regular expression. Also, it would count two adjacent spaces as two things, rather than a single thing, and you'd have to handle other white space characters seperately.

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p "  some word\nother\tword.word|word".strip.split(/\s+/).size #=> 4
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I'd rather check for word boundaries directly:

"Lorem Lorem Lorem".scan(/\w+/).size
=> 3

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
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