24

For example, let's say I have to dictionaries:

d_1 = {'peter': 1, 'adam': 2, 'david': 3}

and

d_2 = {'peter': 14, 'adam': 44, 'david': 33, 'alan': 21}

What's the cleverest way to check whether the two dictionaries contain the same set of keys? In the example above it should return False because d_2 contains the 'alan' key, which d_1 doesn't. Please note that I am not interested in checking that the associated values for each and every key are the same, just that the set of keys are the same.

27

You can get the keys for a dictionary with dict.keys().

You can turn this into a set with set(dict.keys())

You can compare sets with ==

To sum up:

set(d_1.keys()) == set(d_2.keys())

will give you what you want.

  • 3
    you don't need keys there. – SilentGhost Jul 9 '10 at 8:09
  • 1
    True, you don't need the keys, but if you don't use sets very often I'd say that the behaviour of set(dictionary) is non-obvious. Does anyone know if using keys introduces a performance hit? – xorsyst Jul 9 '10 at 13:06
  • 2
    @xorsyst: in Python 2 iter(a_dict) returns an iterator, a_dict.keys() returns a list; therefore, set(d_1.keys()) incurs the creation and destruction of a temporary list of the dictionary keys. In Python 3, they're equivalent. – tzot Jul 11 '10 at 9:24
  • @xorsyst: what's non-obvious with that behaviour? What else should be done when using set(some_dict)? It is also the same behaviour when you do list(some_dict), which also returns a list of the keys – Joschua Mar 5 '11 at 19:38
  • 3
    @Joschua: If you are familiar with list(some_dict), then I agree set(some_dict) should be pretty obvious. But to me, it's not at all obvious that these would work the way they do. My first expectation is that list(some_dict) would be a list of (key, value) tuples. I agree that returning just the keys is a useful behaviour, but I wouldn't say it was "obvious". – xorsyst Mar 7 '11 at 9:25
30

In Python2,

set(d_1) == set(d_2)

In Python3, you can do this which may be a tiny bit more efficient than creating sets

d1.keys() == d2.keys()

although the Python2 way would work too

4
  • In Python 3, dict.keys() returns a "view object" that can be used like a set. This is much more efficient than constructing a separate set.

    d_1.keys() == d_2.keys()
    
  • In Python 2.7, dict.viewkeys() does the same thing.

    d_1.viewkeys() == d_2.viewkeys()
    
  • In Python 2.6 and below, you have to construct a set of the keys of each dict.

    set(d_1) == set(d_2)
    

    Or you can iterate over the keys yourself for greater memory efficiency.

    len(d_1) == len(d_2) and all(k in d_2 for k in d_1)
    
0
>>> not set(d_1).symmetric_difference(d_2)
False
>>> not set(d_1).symmetric_difference(dict.fromkeys(d_1))
True
0

One way is to check for symmetric difference (new set with elements in either s or t but not both):

set(d_1.keys()).symmetric_difference(set(d_2.keys()))

But a shorter way it to just compare the sets:

set(d_1) == set(d_2)
-2

A quick option (not sure if its the most optimal)

len(set(d_1.keys()).difference(d_2.keys())) == 0
  • SilentGhost's reply will return false if the keys are the same but the values are different – Alex Jul 9 '10 at 8:07
  • 3
    Checking for len == 0 is probably the most unpythonic thing. – SilentGhost Jul 9 '10 at 8:10
  • @Alex Nope. Try it yourself. – augurar Feb 5 '17 at 11:03

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