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Is there a function to count the number of words in a string? for example

str1 <- "How many words are in this sentence"

to return a result of 7

Thanks.

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9 Answers 9

up vote 21 down vote accepted

Use the regular expression symbol \\W to match non-word characters, using + to indicate one or more in a row, along with gregexpr to find all matches in a string. Words are the number of word separators plus 1.

sapply(gregexpr("\\W+", str1), length) + 1

This will fail with blank strings at the beginning or end of the character vector, when a "word" doesn't satisfy \\W's notion of non-word (one could work with other regular expressions, \\S+, [[:alpha:]], etc., but there will always be edge cases with a regex approach), etc. It is likely more efficient than strsplit solutions, which will allocate memory for each word. Regular expressions are described in ?regex.

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simple and elegant. Excellent thanks. –  John Jan 19 '12 at 2:40
str2 <- gsub(' {2,}',' ',str1)
length(strsplit(str2,' ')[[1]])

The gsub(' {2,}',' ',str1) makes sure all words are separated by one space only, by replacing all occurences of two or more spaces with one space.

The strsplit(str,' ') splits the sentence at every space and returns the result in a list. The [[1]] grabs the vector of words out of that list. The length counts up how many words.

> str1 <- "How many words are in this     sentence"
> str2 <- gsub(' {2,}',' ',str1)
> str2
[1] "How many words are in this sentence"
> strsplit(str2,' ')
[[1]]
[1] "How"      "many"     "words"    "are"      "in"       "this"     "sentence"
> strsplit(str2,' ')[[1]]
[1] "How"      "many"     "words"    "are"      "in"       "this"     "sentence"
> length(strsplit(str2,' ')[[1]])
[1] 7
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What happens if there are double-up spaces? –  user166390 Jan 19 '12 at 2:02
2  
Good point, I'll update my answer to convert ' {2,}' to ' '. –  mathematical.coffee Jan 19 '12 at 2:07

You can use str_match_all, with a regular expression that would identify your words. The following works with initial, final and duplicated spaces.

library(stringr)
s <-  "
  Day after day, day after day,
  We stuck, nor breath nor motion;
"
m <- str_match_all( s, "\\S+" )  # Sequences of non-spaces
length(m[[1]])
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The solution 7 does not give the correct result in the case there's just one word. You should not just count the elements in gregexpr's result (which is -1 if there where not matches) but count the elements > 0.

Ergo:

sapply(gregexpr("\\W+", str1), function(x) sum(x>0) ) + 1 
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This will still have problems if str1 starts or ends with non-word characters. If that's a concern, this version will only look for spaces between words: sapply(gregexpr("\\b\\W+\\b", str, perl=TRUE), function(x) sum(x>0) ) + 1 –  Adam Bradley Jul 1 '13 at 16:23

Try this function from stringi package

   require(stringi)
   > s <- c("Lorem ipsum dolor sit amet, consectetur adipisicing elit.",
    +        "nibh augue, suscipit a, scelerisque sed, lacinia in, mi.",
    +        "Cras vel lorem. Etiam pellentesque aliquet tellus.",
    +        "")
    > stri_stats_latex(s)
        CharsWord CharsCmdEnvir    CharsWhite         Words          Cmds        Envirs 
              133             0            30            24             0             0 
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1  
@bartektartanusthat is some nice functionality! –  John Mar 14 '14 at 11:12
    
Thank you :) Check the rest of functions from this package! I'm sure you will find something interesting :) Any comments are welcomed! –  bartektartanus Mar 14 '14 at 11:58

You can use strsplit and sapply functions

sapply(strsplit(str1, " "), length)
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What about double spaces? –  Dason Jul 17 '12 at 4:54

Try this

length(unlist(strsplit(str1," ")))
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Most simple way would be:

require(stringr)
str_count("one,   two three 4,,,, 5 6", "\\S+")

... counting all sequences on non-space characters (\\S+).

But what about a little function that lets us also decide which kind of words we would like to count and which works on whole vectors as well?

require(stringr)
nwords <- function(string, pseudo=F){
  ifelse( pseudo, 
          pattern <- "\\S+", 
          pattern <- "[[:alpha:]]+" 
        )
  str_count(string, pattern)
}

nwords("one,   two three 4,,,, 5 6")
# 3

nwords("one,   two three 4,,,, 5 6", pseudo=T)
# 6
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Use nchar

if vector of strings is called x

(nchar(x) - nchar(gsub(' ','',x))) + 1

Find out number of spaces then add one

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