16

I have a list of strings which have the following format:

['variable1 (name1)', 'variable2 (name2)', 'variable3 (name3)', ...]

... and I want to sort the list based on the (nameX) part, alphabetically. How would I go about doing this?

  • 1
    How would you sort xxx(name2), xxx(name3), xxx(name20)? – georg Jan 29 '14 at 12:27
29

To change sorting key, use the key parameter:

>>>s = ['variable1 (name3)', 'variable2 (name2)', 'variable3 (name1)']
>>> s.sort(key = lambda x: x.split()[1])
>>> s
['variable3 (name1)', 'variable2 (name2)', 'variable1 (name3)']
>>> 

Works the same way with sorted:

>>>s = ['variable1 (name3)', 'variable2 (name2)', 'variable3 (name1)']
>>> sorted(s)
['variable1 (name3)', 'variable2 (name2)', 'variable3 (name1)']
>>> sorted(s, key = lambda x: x.split()[1])
['variable3 (name1)', 'variable2 (name2)', 'variable1 (name3)']
>>> 

Note that, as described in the question, this will be an alphabetical sort, thus for 2-digit components it will not interpret them as numbers, e.g. "11" will come before "2".

  • 1
    And if you need it to sort on number, just wrap it in int as follows: s.sort(key = lambda x: int(x.split()[1])) – Elf Jun 12 '18 at 17:43
7

You can use regex for this:

>>> import re
>>> r = re.compile(r'\((name\d+)\)')
>>> lis = ['variable1 (name1)', 'variable3 (name3)', 'variable2 (name100)']
>>> sorted(lis, key=lambda x:r.search(x).group(1))
['variable1 (name1)', 'variable2 (name100)', 'variable3 (name3)']

Note that above code will return something like name100 before name3, if that's not want you want then you need to do something like this:

>>> r = re.compile(r'\(name(\d+)\)')
def key_func(m):
    return int(r.search(m).group(1))

>>> sorted(lis, key=key_func)
['variable1 (name1)', 'variable3 (name3)', 'variable2 (name100)']
  • Why separate function? We can inline that, right? – thefourtheye Jan 29 '14 at 13:05
  • 1
    @thefourtheye Yes, we can. This just looked more readable to me. :-) – Ashwini Chaudhary Jan 29 '14 at 13:06
5

Just use key parameter of sort method.

test.sort(key = lambda x: x.split("(")[1])

Good luck!

Edit: test is the array.

5

The solution is:

sorted(b, key = lambda x: x.split()[1])

Why? We want to sort the list (called b). As a key we will use (name X). Here we assume that it will be always preceded by space, therefore we split the item in the list to two and sort according to the second.

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