2

I have list of strings like this:

words = ['hello', 'world', 'name', '1', '2018']

I looking for the fastest way (python 3.6) to detect year "word" in the list. For example, "2018" is year. "1" not. Let's define the acceptable year range to 2000-2020.

Possible solution

Check if the word is number ('2018'.isdigit()) and then convert it to int and check if valid range.

What is the fastest way to do it in python?

4
  • since the year range is not that big maybe the direct string comparison would be better. As in next((x for x in words if any(x == pos for pos in {str(c) for c in range(2000, 2020+1)})), None)
    – Ma0
    Apr 18, 2018 at 8:58
  • or years = [x for x in s if x.isdigit() and 2000 <= int(x) <= 2020]. "fastest" needs benching. Apr 18, 2018 at 8:59
  • or years = [y for y in words if y.isdigit() and int(y) in range(2000,2020)]
    – Zinki
    Apr 18, 2018 at 8:59
  • You can also use the datetime.strptime('2018', '%Y') for a larger range, but it has higher computational cost.
    – TommasoF
    Apr 18, 2018 at 9:02

2 Answers 2

4

You can build a set of your valid years (as strings). Then loop through each of the words you want to test to check if it is a valid year:

words = ['hello', 'world', 'name', '1', '2018']
valid_years = {str(x) for x in range(2000,2021)}

for word in words:
    if word in valid_years:
        print word

As Martijn Pieters mentioned in the comments, sets are the fastest solution for accessing items with an O(1) complexity:

Sets let you test for membership in O(1) time, using a list has a linear O(length_of_list) cost


EDIT:

As you can see in the comments, there are a lot of different ways of generating the set of valid_years, as long as your data structure is a Set you will have the fastest way of doing what you want.

You can read more here:

3
  • 4
    You'd want to make that a set instead, at which point you have an unbeatably fast solution. Use valid_years = {str(x) for x in range(2000, 2021)} (and avoid the + 1). Sets let you test for membership in O(1) time, using a list has a linear O(length_of_list) cost.
    – Martijn Pieters
    Apr 18, 2018 at 9:02
  • Well thought @MartijnPieters , sets are extremely for accessing items in them! Apr 18, 2018 at 9:09
  • Alternative syntax: set(map(str, range(2000,2021))), but that's just preference.
    – jpp
    Apr 18, 2018 at 9:12
-2

Concatenate list to one string with special split char. Use regex to search.

For example:

word_tmp = " ".join(words)
re.search("\b20[0-2]\d\b", word_tmp)
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  • this also matches everything up to "2029"
    – Ma0
    Apr 18, 2018 at 9:03
  • Oh, I'm sorry, you are right. But I won't waste more time on regex string... OP can do it himself.
    – Sraw
    Apr 18, 2018 at 9:06
  • I don't think we have responsibility to do everything for OP. Especially this is very easy to implement(For example, change to \b20([0-1]\d|20)\b). And as OP has even more gold badges than me, I absolutely confirm that he just need a hint.
    – Sraw
    Apr 18, 2018 at 9:20

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