60
mylist = ["aa123", "bb2322", "aa354", "cc332", "ab334", "333aa"]

I need the index position of all items that contain 'aa'. I'm having trouble combining enumerate() with partial string matching. I'm not even sure if I should be using enumerate.

I just need to return the index positions: 0,2,5

103
indices = [i for i, s in enumerate(mylist) if 'aa' in s]
  • how can you make this be case insensitive? – abbood Feb 14 '17 at 6:45
  • 1
    @abbood - By comparing to s.lower() – StoryTeller - Unslander Monica Feb 14 '17 at 11:22
  • what if I just want to get single index for the first match only? – shashwat Oct 6 '17 at 15:48
  • @shashwat - You don't have to use the generator expression in the brackets to created a list. You can use it to create a generator gen = () which you then call next on. – StoryTeller - Unslander Monica Oct 6 '17 at 18:25
  • if you could please give an example for how I use this? I am completely new to Python. – shashwat Oct 7 '17 at 5:24
15

Your idea to use enumerate() was correct.

indices = []
for i, elem in enumerate(mylist):
    if 'aa' in elem:
        indices.append(i)

Alternatively, as a list comprehension:

indices = [i for i, elem in enumerate(mylist) if 'aa' in elem]
  • How might the list comprehension get extended to instead of "if 'aa'" to be "if ["aa","bb"] in elem" ?? – GrantRWHumphries Apr 17 '18 at 12:46
11

Without enumerate():

>>> mylist = ["aa123", "bb2322", "aa354", "cc332", "ab334", "333aa"]
>>> l = [mylist.index(i) for i in mylist if 'aa' in i]
>>> l
[0, 2, 5]
  • 6
    This is likely to run in O(n^2), whereas using enumerate will be O(n). – Johnsyweb Feb 13 '13 at 8:33
  • 2
    This will return a wrong result if one of the strings containing 'aa' is duplicated. – John La Rooy Feb 13 '13 at 10:01
1
spell_list = ["Tuesday", "Wednesday", "February", "November", "Annual", "Calendar", "Solstice"]

index=spell_list.index("Annual")
print(index)

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