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I needed to compare 2 dictionaries to find the set of keys in one dictionary which was not in the other.

I know that Python set objects support:

set3=set1-set2

but I can't do:

dict3=dict1-dict2

or:

missingKeys=dict1.keys()-dict2.keys()

(I was a little surprised by the last point, because in Java the keys are a Set object.) One solution is:

missingKeys=set(dict1.keys())-set(dict2.keys())

is there a better or more concise way to do this?

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I think the last line is sufficiently concise myself, but... I guess a more interesting question is "How to remove all z in Y from X?" where X and Y are lists. This would be useful where duplicate z's exist in X that do appear in Y should be left alone, for instance. –  user166390 Apr 22 '12 at 23:04
    
@pst:Well, it feels a little weird to create set objects, just to leverage the difference() function... –  Sam Goldberg Apr 22 '12 at 23:05
    
On the other hand, because it is a set, it can leverage a better O ... for list differences using comprehension is easy, but a tad more wordy. Still same performance if the "probed" list is converted to a set, though. –  user166390 Apr 22 '12 at 23:06
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3 Answers

up vote 5 down vote accepted

Maybe

[x for x in dict1.keys() if x not in dict2.keys()]
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1  
I think this could be even a little more concise: [x for x in dict1.keys() if x not in dict2] since the x in dict.keys() is the same as x in dict –  mgilson Apr 22 '12 at 23:38
    
@mgilson: as long as you pointed out the x in dict is the same as x in dict.keys(), then the complete reduction is [x for x in dict1 if x not in dict2]. –  Sam Goldberg Apr 23 '12 at 0:15
1  
@SamGoldberg You're correct. The reason I didn't think of it is because for x in dict calls the __iter__ method on a dict whereas if x in dict calls the __contains__ method. So, in this case, the in does two different things -- they just happen to have the same result. Anyway: [x for x in dict1 if x not in dict2] is most concise as you pointed out. –  mgilson Apr 23 '12 at 0:54
    
Both answers were good, but accepting this answer because I am using Python 2.7. Being new to Python, this answer also helped me be more conscious of the [for ... in ... if ...] syntax, which is less natural to me than the d1-d2 syntax. –  Sam Goldberg May 4 '12 at 17:26
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Python 2.7:

>>> d = {1:2, 2:3, 3:4}
>>> d2 = {2:20, 3:30}
>>> set(d)-set(d2)
set([1])

Python 3.2:

>>> d = {1:2, 2:3, 3:4}
>>> d2 = {2:20, 3:30}
>>> d.keys()-d2.keys()
{1}
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+1 Oh, sneaky Python 3.x! –  user166390 Apr 22 '12 at 23:08
    
So you are saying that Python 3.2 dict.keys() method returns a set (like Java)? Any reason why earlier version didn't do that? –  Sam Goldberg Apr 23 '12 at 0:08
2  
@SamGoldberg: no, it actually returns a dict_keys object, not a set, but it has many set-like operations. See, e.g. this question. –  DSM Apr 23 '12 at 0:19
1  
d.keys() - d2 or even d - d2.keys() also work :) Just a general note, they're less readable, IMHO. –  Niklas B. Apr 23 '12 at 19:21
    
How about the time complexity? Will d.keys()-d2.keys() work in O(|len(d2)|) as expected? –  Tregoreg Feb 12 at 20:52
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For portable way of doing it I would suggest using dict.viewkeys in Python 2.7 - it is backport of Python 3.x dict.keys and is automatically converted by 2to3.

Example:

>>> left = {1: 2, 2: 3, 3: 4}
>>> right = {2: 20, 3:30}
>>> left.viewkeys() - right.viewkeys()
set([1])
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