0

Given an explicit list that comprises of sets that contain elements in each of them, how can I check whether a specific element is in the list or not? It is supposed to be only one line of code.

For example: X is a list. It contains sets A, B and C. Assume set A contains {x, y, z}, B contains {l, m} and C contains {o, p}. If I were to check whether x is in the list, how must I do it?

6
  • "It is supposed to be only one line of code" - this smells of homework
    – Eric
    Jan 26 '15 at 8:17
  • I hate sentences like "it is supposed to be one line"... it is supposed to be good code, that's it.
    – Maroun
    Jan 26 '15 at 8:17
  • It isn't. It's some pseudocode that my friend has been trying to crack. According to her peers, it is one line of code.
    – Artemisia
    Jan 26 '15 at 8:18
  • any(x in set_ for set_ in X)?
    – jonrsharpe
    Jan 26 '15 at 8:20
  • 1
    @KobiK to avoid shadowing the built-in set
    – jonrsharpe
    Jan 26 '15 at 8:25
1

I guess the line is any(x in s for s in l) like in

>>> l = [{1, 2, 3}, {4, 5}, {6}]
>>> x = 5
>>> any(x in s for s in l)
True

It has the added benefit on not creating new instances, not touching further sets after x is found and it does not depend on the fact that l contains sets (it could be anything iterable as well).

1
x = [set((1, 2, 3)), set((4, 5)), set((6, 7))]
print set.union(*x)
print 1 in set.union(*x)
print 8 in set.union(*x)

creates a set of the union of all present sets. Using this, checking for presence is trivial.

0

One approach can be to build a set containing the elements of all the sets in the list and check for existence of the element in this super set:

l = [{1},{2,3},{4,5}]
if 3 in {x for s in l for x in s}:
    print("Here you are!")

As you can see above, with set comprehension you can perform your check in just one line and in a quite pythonic way:

3 in {x for s in l for x in s}
1
  • 1
    Just to note an alternative to the set-comp is 3 in set.union(*l) (but glglgl has already covered that one I see...)
    – Jon Clements
    Jan 26 '15 at 9:31

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.