-2

I am trying to determine if a list is sorted the same way as another list containing the same elements. For example:

a = ['a', 'b', 'c']
b = ['b', 'c', 'a']

if a != b:
  print("Wrong order")

I want to be able to determine whether two lists have got the same ordering. It does not matter whether it is slightly different or completely, I just need to be able to tell if they are different.

11
  • If it's not sorted the same way, they aren't equal (or identical). Order matters in lists; have you actually tried this?
    – jonrsharpe
    Aug 6 '15 at 7:42
  • @jonrsharpe yes i have, and it does not work Aug 6 '15 at 7:45
  • What is your actual question? What is the input? And what is the expected output? The above works for me as well, it prints out Wrong order . Aug 6 '15 at 7:45
  • 1
    @Armageddon80 well it works for me, I see "Wrong order". Please give a minimal reproducible example that actually represents your problem.
    – jonrsharpe
    Aug 6 '15 at 7:47
  • If you know that the list contains the same/equal elements simple comparision would do (if they compare different they are not sorted the same way). If you under the same assumption want to check if it contains the same elements in same order then [id(x) for x in a] == [id(x) for x in b] would do. If you wan't to verify first that they contains the same/equal elements first, then that's a different question.
    – skyking
    Aug 6 '15 at 7:47
1

You could simply compare sorted versions of the lists:

if a == b:
  print 'Same elements, same order'
elif sorted(a) == sorted(b):
  print 'Same lists, different order'
else:
  print 'Completely differeent'

There are of course more efficient ways to do this (e.g. you could check the lengths of the lists first...), but this is very readable.

2
  • If list a has more values than list b, it prints out 'Same lists, different order' which is incorrect since the lists are not same.
    – r0xette
    Nov 1 '16 at 15:55
  • @r0xette You're right, it should be == instead of != in the elif statement – I fixed it in the answer.
    – omz
    Nov 11 '16 at 14:02
-3

I find this very pythonic:

different = len(set(a).difference(set(b)))

UPDATE

 different = len(set(a).difference(set(b))) or (len(a) != len(b))
3
  • 1
    This won't work if the lists contain repeated elements.
    – omz
    Aug 6 '15 at 7:47
  • Well yes you are right but you can even additionally check the lists length to avoid this. I updated the answer
    – pinturic
    Aug 6 '15 at 7:48
  • 1
    The update doesn't help. The set difference between [1, 1, 2] and [1, 2, 2,] will be null, their length the same but still they're different. In addition it doesn't differentiate between [1, 2, 3] and [3, 2, 1] which are sorted differently - which was the question. Not very pythonic to not solve the problem asked for and neither solving the problem you tried to solve.
    – skyking
    Aug 6 '15 at 8:03

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