116

I want to check in a Python program if a word is in the English dictionary.

I believe nltk wordnet interface might be the way to go but I have no clue how to use it for such a simple task.

def is_english_word(word):
    pass # how to I implement is_english_word?

is_english_word(token.lower())

In the future, I might want to check if the singular form of a word is in the dictionary (e.g., properties -> property -> english word). How would I achieve that?

182

For (much) more power and flexibility, use a dedicated spellchecking library like PyEnchant. There's a tutorial, or you could just dive straight in:

>>> import enchant
>>> d = enchant.Dict("en_US")
>>> d.check("Hello")
True
>>> d.check("Helo")
False
>>> d.suggest("Helo")
['He lo', 'He-lo', 'Hello', 'Helot', 'Help', 'Halo', 'Hell', 'Held', 'Helm', 'Hero', "He'll"]
>>>

PyEnchant comes with a few dictionaries (en_GB, en_US, de_DE, fr_FR), but can use any of the OpenOffice ones if you want more languages.

There appears to be a pluralisation library called inflect, but I've no idea whether it's any good.

  • 2
    Thank you, I did not know about PyEnchant and it is indeed much more useful for the kind of checks I want to make. – Barthelemy Sep 24 '10 at 16:52
  • It doesn't recognize <helo>? Not a common word, but I know <helo> as an abbreviation for <helicopter>, and I do not know <Helot>. Just wanted to point out that the solution isn't one-size-fits-all and that a different project might require different dictionaries or a different approach altogether. – dmh Apr 22 '12 at 18:02
  • 6
    Package is basically impossible to install for me. Super frustrating. – Monica Heddneck May 25 '17 at 0:43
  • 5
    Enchant is not supported at this time for python 64bit on windows :( github.com/rfk/pyenchant/issues/42 – Ricky Boyce Jul 5 '17 at 0:23
  • 2
    pyenchant is no longer maintained. pyhunspell has more recent activity. Also /usr/share/dict/ and /var/lib/dict may be referenced on *nix setups. – pkfm Mar 24 at 1:38
39

Using NLTK:

from nltk.corpus import wordnet

if not wordnet.synsets(word_to_test):
  #Not an English Word
else:
  #English Word

You should refer to this article if you have trouble installing wordnet or want to try other approaches.

  • 1
    It's especially useful for cygwin users because installing of enchant is quite problematic. – alehro Dec 12 '12 at 10:47
  • 4
    Doesn't work for me. wordnet.synsets("would") returns [] – morgancodes Feb 4 '13 at 18:35
  • 21
    WordNet does not contain every word in English, it only contains a small subset of it. – justhalf Nov 28 '13 at 2:13
  • 2
    On top of wordnet missing a ton of common words like 'would' and 'how' this is noticeably slower than kindall's solution. – Ryan Epp Dec 28 '13 at 15:59
  • 3
    furthermore, wordnet.synsets doesn't simply check if a word is in it. It attempts to lemmaize first. So it converts "saless" (not a real english word) to "sales". – Lyndon White Jul 13 '15 at 10:56
36

Using a set to store the word list because looking them up will be faster:

with open("english_words.txt") as word_file:
    english_words = set(word.strip().lower() for word in word_file)

def is_english_word(word):
    return word.lower() in english_words

print is_english_word("ham")  # should be true if you have a good english_words.txt

To answer the second part of the question, the plurals would already be in a good word list, but if you wanted to specifically exclude those from the list for some reason, you could indeed write a function to handle it. But English pluralization rules are tricky enough that I'd just include the plurals in the word list to begin with.

As to where to find English word lists, I found several just by Googling "English word list". Here is one: http://www.sil.org/linguistics/wordlists/english/wordlist/wordsEn.txt You could Google for British or American English if you want specifically one of those dialects.

  • 9
    If you make english_words a set instead of a list, then is_english_word will run a lot faster. – dan04 Sep 24 '10 at 16:14
  • I actually just redid it as a dict but you're right, a set is even better. Updated. – kindall Sep 24 '10 at 16:16
  • 1
    You can also ditch .xreadlines() and just iterate over word_file. – FogleBird Sep 24 '10 at 16:18
  • 3
    Under ubuntu the packages wamerican and wbritish provide American and British English word lists as /usr/share/dict/*-english. The package info gives wordlist.sourceforge.net as a reference. – intuited Sep 24 '10 at 16:45
  • 1
    I find a GitHub repository which contains 479k English words. – haolee May 29 '17 at 2:59
35

It won't work well with WordNet, because WordNet does not contain all english words. Another possibility based on NLTK without enchant is NLTK's words corpus

>>> from nltk.corpus import words
>>> "would" in words.words()
True
>>> "could" in words.words()
True
>>> "should" in words.words()
True
>>> "I" in words.words()
True
>>> "you" in words.words()
True
  • 2
    The same mention applies here too: a lot faster when converted to a set: set(words.words()) – Iulius Curt Sep 30 '14 at 19:41
  • watch out as you need to singularise words to get proper results – famargar Sep 6 '18 at 10:44
  • caution : words like pasta or burger are not found in this list – Paroksh Saxena Jan 10 at 11:37
5

For a faster NLTK-based solution you could hash the set of words to avoid a linear search.

from nltk.corpus import words as nltk_words
def is_english_word(word):
    # creation of this dictionary would be done outside of 
    #     the function because you only need to do it once.
    dictionary = dict.fromkeys(nltk_words.words(), None)
    try:
        x = dictionary[word]
        return True
    except KeyError:
        return False
  • 1
    Instead of a dictionary, use a set – jhuang Jun 20 '18 at 3:30
1

For a semantic web approach, you could run a sparql query against WordNet in RDF format. Basically just use urllib module to issue GET request and return results in JSON format, parse using python 'json' module. If it's not English word you'll get no results.

As another idea, you could query Wiktionary's API.

1

With pyEnchant.checker SpellChecker:

from enchant.checker import SpellChecker

def is_in_english(quote):
    d = SpellChecker("en_US")
    d.set_text(quote)
    errors = [err.word for err in d]
    return False if ((len(errors) > 4) or len(quote.split()) < 3) else True

print(is_in_english('“办理美国加州州立大学圣贝纳迪诺分校高仿成绩单Q/V2166384296加州州立大学圣贝纳迪诺分校学历学位认证'))
print(is_in_english('“Two things are infinite: the universe and human stupidity; and I\'m not sure about the universe.”'))

> False
> True
-1

I find that there are 3 package-based solutions to solve the problem. They are pyenchant, wordnet and corpus(self-defined or from ntlk). Pyenchant couldn't installed easily in win64 with py3. Wordnet doesn't work very well because it's corpus isn't complete. So for me, I choose the solution answered by @Sadik, and use 'set(words.words())' to speed up.

First:

pip install -U nltk
python
import nltk
nltk.download(words)

Then:

from nltk.corpus import words
if "hello" in set(words.words())
>>True

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