0

I have a list in python with a few string entries. I want to compare this list with a word (say thing), and find the index of the entry in the list of which the chosen word is a part.

For example, let’s consider the following list:

lst = ['one_word', 'something', 'another_word']
word = 'thing'

Here thing is a part of the entry something in list lst. So, the index that I want is 1.

I checked this post. But, it requires the word to exactly match the entry in the list. My case is different. The entry in the list lst can have suffix or prefix (or both), after or before the word under consideration.

How can I achieve this?

3

You can use enumerate to pair elements with their indexes and use a common substring-check with in:

lst = ['one_word', 'something', 'another_word']
word = 'thing'

# 1: get all indexes
[i for i, s in enumerate(lst) if word in s]  # [1]

# 2: get only the first index (or None)
next((i for i, s in enumerate(lst) if word in s), None)  # 1

The first option uses a conditional list comprehension to build a list of all "word-containing indexes". The second option uses next with an appropriate generator expression and default value.

If you want to check only for true pre-/suffixes instead of substrings, you can substitute word in s with s.startswith(word) or s.endswith(word).

  • schwobaseggl: Thank you so much for the wonderful answer. It is extremely helpful. I tested it; it works like a charm. – Ling Guo Oct 29 '18 at 7:27
2

you could simply loop over the list and check the word you search for against all the words in the list:

lst = ['one_word', 'something', 'another_word']
word = 'thing'


def word_in_list(lst, word):
    for i, w in enumerate(lst):
        if word in w:
            return i
    # python3:
    # raise ValueError(f'word "{word}" not in list')
    # python2:
    raise ValueError('word "{}" not in list'.format(word))

print(word_in_list(lst, word))
  • hiro protagonist: Thanks for your help. I am using Python 2.7. The ValueError statement gives an error for me. – Ling Guo Oct 29 '18 at 7:14
  • 1
    @LingGuo ok, added the python 2 version. – hiro protagonist Oct 29 '18 at 7:16
-1

Though elegant approaches & answers already in place but just like to add Without enumerate():

>>> lst = ['one_word', 'something', 'another_word']
>>> word = "thing"

>>> listIndex = [lst.index(i) for i in lst if word in i]
>>> listIndex 
[1]

Or Simply

>>> [lst.index(i) for i in lst if word in i]
[1]

Note: This is likely to run in O(n^2), whereas using enumerate will be O(n)

  • I just update the answer to match the requirement and to get downvote removed :) – Karn Kumar Oct 29 '18 at 7:41

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