Is there a way to evaluate a string and see if it evaluates to a word in English? Here is what I am looking for

is.word("hello world")
[1] FALSE

is.word(c("hello", "world")
[1] TRUE TRUE

The above does not work as there is no is.word logical function.

  • 6
    You would need an English dictionary of words to check against. – Pierre Lafortune Dec 29 '15 at 16:16
  • 4
    What exactly do you consider a word? What about "selfie", "l8tr", "hola", "o"? – MrFlick Dec 29 '15 at 16:24
  • as Pierre pointed out, I need to evaluate if this is a valid English word. A solution was suggested to look for string without space and call it a word. That is nice to know but not what i am looking for. – seakyourpeak Dec 29 '15 at 16:39
  • 2
    So what have been your attempts at a solution? – Rich Scriven Dec 29 '15 at 16:43
up vote 9 down vote accepted

As the comments have pointed out, you need an English dictionary to match against. The gradyAugmented object in the qdapDictionary package is one such dictionary:

A dataset containing a vector of Grady Ward's English words augmented with ‘DICTIONARY’, Mark Kantrowitz's names list, other proper nouns, and contractions.

library(qdapDictionaries)
is.word  <- function(x) x %in% GradyAugmented
is.word(c("hello world"))
## [1] FALSE
is.word(c("hello", "world"))
## [1] TRUE TRUE
is.word(c("asfasdf"))
## [1] FALSE

No, there is no such function in R.

Although you can easily implement naïve approach that will work in 9 out of 10 cases.

Custom solution

First of all, you need a dictionary of "words" that you will match your data against. One such dictionary is compiled by GNU people and distributed under open source license at SCOWL (And Friends) website.

Download data file and unzip it. Words are scattered across multiple files with suffix indicating region, category and commonness (or probability that everyday English user will not be familiar with word). Using list.files() function with pattern argument, or grepl() function, you can select exact set of dictionaries that you care about.

# set path to extracted package
words.dir <- '/tmp/scowl-2015.08.24/final/'
words <- unlist(sapply(list.files(words.dir, pattern='[1-6][05]$', full.names=TRUE), readLines, USE.NAMES=FALSE))
# For some reason most frequent words are not in "final" dir…
words <- c(words, readLines(paste0(words.dir, '../r/special/frequent')))
length(words)
# [1] 143681

Then verifying if word is English is as easy as checking if it exists in vector of known words. The nice thing is that you get vectorization for free.

c("knight", "stack", "selfie", "l8er", "googling", "echinuliform") %in% words
# [1]  TRUE  TRUE  TRUE FALSE  TRUE  FALSE

Core problem

The real problem is "what counts as word?". Does "googling" count as word? It is commonly used now, but that wasn't a case 15 years ago. And what about "echinuliform"? I guess that plenty of native speakers wouldn't understand it.

Discussing this issue falls outside of scope of this website, but there is some arbitrariness in language and currently no computer program is able to cope with that.

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