33

Is there anything better than string.scan(/(\w|-)+/).size (the - is so, e.g., "one-way street" counts as 2 words instead of 3)?

2
  • 6
    Define what you mean by "word"? Imagine the following string: "I am ... string." How many words would you expect to be counted? Commented Sep 13, 2009 at 11:04
  • very nice question dear Commented Dec 15, 2014 at 11:04

8 Answers 8

61
string.split.size

Edited to explain multiple spaces

From the Ruby String Documentation page

split(pattern=$;, [limit]) → anArray

Divides str into substrings based on a delimiter, returning an array of these substrings.

If pattern is a String, then its contents are used as the delimiter when splitting str. If pattern is a single space, str is split on whitespace, with leading whitespace and runs of contiguous whitespace characters ignored.

If pattern is a Regexp, str is divided where the pattern matches. Whenever the pattern matches a zero-length string, str is split into individual characters. If pattern contains groups, the respective matches will be returned in the array as well.

If pattern is omitted, the value of $; is used. If $; is nil (which is the default), str is split on whitespace as if ' ' were specified.

If the limit parameter is omitted, trailing null fields are suppressed. If limit is a positive number, at most that number of fields will be returned (if limit is 1, the entire string is returned as the only entry in an array). If negative, there is no limit to the number of fields returned, and trailing null fields are not suppressed.

" now's  the time".split        #=> ["now's", "the", "time"]

While that is the current version of ruby as of this edit, I learned on 1.7 (IIRC), where that also worked. I just tested it on 1.8.3.

4
  • This soulution will count spaces as words(empty) too, consider that.
    – damuz91
    Commented Jul 10, 2012 at 1:38
  • 1
    @DavidMauricio No it won't. split without an argument defaults to split on whitespace. (Well, it will split on $;, but if that's nil too, then it will split on whitespace.) Ruby docs describe this behavior as "with leading whitespace and runs of contiguous whitespace characters ignored."
    – KitsuneYMG
    Commented Jul 10, 2012 at 20:12
  • 2
    Wouldn't this unnecessarily create the array of words just to return its size? What if there are 10,000 words in a text? This would waste space and be slower because of this.
    – Ernesto
    Commented Aug 27, 2012 at 18:49
  • @Ernesto Yes, and... in practice, you can count literally millions of words a second this way and the array is garbage collected. Premature optimization and whatnot. Commented Jul 18, 2020 at 17:22
13

I know this is an old question, but this might be useful to someone else looking for something more sophisticated than string.split. I wrote the words_counted gem to solve this particular problem, since defining words is pretty tricky.

The gem lets you define your own custom criteria, or use the out of the box regexp, which is pretty handy for most use cases. You can pre-filter words with a variety of options, including a string, lambda, array, or another regexp.

counter = WordsCounted::Counter.new("Hello, Renée! 123")
counter.word_count #=> 2
counter.words #=> ["Hello", "Renée"]

# filter the word "hello"
counter = WordsCounted::Counter.new("Hello, Renée!", reject: "Hello")
counter.word_count #=> 1
counter.words #=> ["Renée"]

# Count numbers only
counter = WordsCounted::Counter.new("Hello, Renée! 123", rexexp: /[0-9]/)
counter.word_count #=> 1
counter.words #=> ["123"]

The gem provides a bunch more useful methods.

0
2

If the 'word' in this case can be described as an alphanumeric sequence which can include '-' then the following solution may be appropriate (assuming that everything that doesn't match the 'word' pattern is a separator):


>> 'one-way street'.split(/[^-a-zA-Z]/).size
=> 2
>> 'one-way street'.split(/[^-a-zA-Z]/).each { |m| puts m }
one-way
street
=> ["one-way", "street"]

However, there are some other symbols that can be included in the regex - for example, ' to support the words like "it's".

1

This is pretty simplistic but does the job if you are typing words with spaces in between. It ends up counting numbers as well but I'm sure you could edit the code to not count numbers.

puts "enter a sentence to find its word length: "
word = gets
word = word.chomp
splits = word.split(" ")
target = splits.length.to_s


puts "your sentence is " + target + " words long"
1

The best way to do is to use split method. split divides a string into sub-strings based on a delimiter, returning an array of the sub-strings. split takes two parameters, namely; pattern and limit. pattern is the delimiter over which the string is to be split into an array. limit specifies the number of elements in the resulting array. For more details, refer to Ruby Documentation: Ruby String documentation

str = "This is a string"
str.split(' ').size
#output: 4

The above code splits the string wherever it finds a space and hence it give the number of words in the string which is indirectly the size of the array.

0

The above solution is wrong, consider the following:

"one-way  street"

You will get

["one-way","", "street"]

Use

'one-way street'.gsub(/[^-a-zA-Z]/, ' ').split.size
2
  • 1
    [between one-way and street, there are 2 spaces]
    – Hillel
    Commented Aug 14, 2011 at 10:58
  • 8
    Nope. Ruby will split on whitespace (contiguous and leading/trailing whitespace is ignored. e.g. \s+) if no argument is supplied and $; is nil. Please learn ruby.
    – KitsuneYMG
    Commented Jul 10, 2012 at 20:14
0

This splits words only on ASCII whitespace chars:

p "  some word\nother\tword|word".strip.split(/\s+/).size #=> 4
0

For example count words of "War and peace" in file:

acc = 0
File.readlines('war_and_peace.txt').each { |line| acc += line.split.size }

acc
 => 238610

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