1

How do I get total number of single words in a list. There are 8 elements in a list below. However, some elements have more than single words in them 'apples are delicious', how to do I just capture just the number of single word from list?

list = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']

len(list) # total number of elements in a list
list.count("apples") # only counts a specific word but not a element single words

# total 8 elements 
# how many are only 1 word?
# results: 6/8 are 1 words
2
  • 3
    [i for i in L if len(i.split()) == 1] should find you only single words. You should avoid naming lists list as it overrides a builtin Jul 16 '18 at 16:12
  • @user3483203 this gives list of single words, very helpful for me. Thanks.
    – sharp
    Jul 16 '18 at 16:46
6
>>> lst = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']
>>> len([w for w in lst if ' ' not in w])
6

By the way, avoid name list for variables as list is a builtin

3

The fastest way would be:

count = sum(1 for x in lst if ' ' not in x)
  • it doesn't use split so it doesn't create a new list
  • it doesn't create a list just to apply len on it

it just adds 1 every time the generator comprehension finds that space isn't in the word

2

Using filter function:

l = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']

count = len(list(filter(lambda v: len(v.split()) == 1, l)))

print(count)

Output:

6
1
X = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']
ar = [i for i in X if len(i.split()) == 1]
print(len(ar))
0

Python's list comprehension -

fruits = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']
result1 = len([i for in in fruits if len(i.split('')) == 1])
result2 = len([i for in in fruits if ' ' not in i])

Can be done with regex also -

import re
result3 = len([i for in in fruits if not re.match('\s', i)])
0

Here is simple logical way to do the same:

count=0
for word in l:
  if ' ' in word:
    count=count+1
print(count)

Here I simply using in statement to check spaces.

0

Most of the answers here are indeed correct.

However you may not want to rely only on whitespaces to define whether a string is multiwords or not. I mean apple/orange is two words but will not be tokenized as such if you just check whether there are whitespaces inside. You might want to use \w+ in regex inside.

Agreeing also with other comments about split() creating a list per entry (and also having to loop over the whole entry string), as well as len implicitly creating a list of all the results as well, here is my proposition:

import re
single_word = re.compile(r'^\w+$')

lst = ['apples', 'apples', 'apples are delicious', 'oranges', 'fruits', 'kiwi', 'fruit festivals', 'festivals']
print(sum(1 for w in lst if re.match(single_word, w)))

>>>> 6

This way you loop over the list once and sum on the fly. And per entry you loop over it only once as well and stop as soon as a non-word character is found. This is probably one of the fastest simple solutions.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.