2
dictx = {'C2': ['2', '5', '7'], 'A1': ['1','4', '5'], 'C1': ['2', '5'], 'A2': ['4', '5', '7', '8'], 'B3': ['4', '7'], 'B2': ['2', '4', '6', '7', '8']}

This is my dictionary. I'm trying to return: 'B2' and 'A1' preferably in a list, as these two keys have unique values. Order doesn't matter. Would love some help, as I've tried to create a large set of for loops but with no luck (such as flipping).

Side note: The values of the dictionary range from 0-9 in string form if that helps.

Edit: the 1 and 6 is confusing people, sorry - to be specific, it needs to return B2 and A1 BECAUSE they have UNIQUE values - not because they are those values.

3
  • Flipping is the way to do this. Jul 12, 2017 at 3:04
  • how are you concluding that B2 and A1 has unique values?
    – Gahan
    Jul 12, 2017 at 3:36
  • Wording is very confusing, and I cannot edit. To make clear: A unique value is a member in a sublist such that it is not a member of any other sublist. For example, '1' only happens in A1 and '6' only happens in B2. So these are "unique".
    – darksky
    Jul 12, 2017 at 3:47

1 Answer 1

6

For a general approach that doesn't rely on 1 and 6 being the unique values:

from collections import Counter
key_counter = Counter([entry for val in dictx.values() for entry in val])
print ([key for key in dictx if any(key_counter[val] == 1 for val in dictx[key])])

Output:

['A1', 'B2']
1
  • Thank you! I was trying to do it with for loops, but I suppose using Counter works a bit better =)
    – Passy
    Jul 12, 2017 at 4:23

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