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This question already has an answer here:

I am trying to compare elements of a list u for equality.

A possible solution could be all(x == u[0] for x in u[1:]), or simply all(x == u[0] for x in u), but it looks rather weird.

In Python, it's possible to write a == b == c, with its usual "mathematical" meaning. So I thought I could, with the help of the operator module, write operator.eq(*u). However, the eq function takes only two arguments. Of course, functools.reduce(operator.eq, u) is of no use here, since after the first test eq(u[0], u[1]), I get a boolean, and it will fail when doing the second test, eq(<bool>, u[2]).

Is there a better way than the solution above? A more... "pythonic" way?

marked as duplicate by jamylak python Dec 23 '14 at 22:41

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  • If they’re hashable, you can use len(set(u)) == 1, but that’s just shorter, not better. all seems straightforward to me. – Ry- Dec 23 '14 at 22:38
  • Argh, I didn't see the duplicate. Thanks @jamylak to have pointed this out. – user1220978 Dec 23 '14 at 22:45
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len(set(u)) == 1 is pretty Pythonic.