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Simple question: Is there a shorthand for checking the existence of several keys in a dictionary?

'foo' in dct and 'bar' in dct and 'baz' in dct
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3 Answers 3

up vote 6 down vote accepted

You can use all() with a generator expression:

>>> all(x in dct for x in ('foo', 'bar', 'qux'))
False
>>> all(x in dct for x in ('foo', 'bar', 'baz'))
True
>>> 

It saves you a whopping 2 characters (but will save you a lot more if you have a longer list to check).

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1  
Accepting this answer thanks to the inclusion of useful links. :) –  davidchambers Aug 13 '11 at 21:43
    
…although it repeats @unutbu’s earlier answer. –  flying sheep Aug 14 '11 at 10:20
    
@flying sheep: There were no answers when I started typing mine. I guess unutbu started and finished typing while I created positive and negative examples and added some linked references. [i.e. I didn't copy his homework ;-)] –  Johnsyweb Aug 14 '11 at 22:15
    
@John: If you put it this way, all right. Although two handy keyboard shortcuts should have helped you with the second example. Also: Who can’t type python.org’s links from the brain? We all have it under our pillow! ;) –  flying sheep Aug 14 '11 at 22:25
1  
@flying sheep: I'll try to type faster in future! –  Johnsyweb Aug 14 '11 at 22:48
all(x in dct for x in ('foo','bar','baz'))
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Very nice. Thanks! –  davidchambers Aug 13 '11 at 21:23
    
+1 that's sexy... –  sholsapp Aug 13 '11 at 21:24
{"foo","bar","baz"}.issubset(dct.keys())

For python <2.7, you’ll have to replace the set literal with set(["foo","bar","baz"])

If you like operators and don’t mind the performance of creating another set, you can use the <= operator on the set and the dict’s keyset.

Both variations combined would look like:

set(["foo","bar","baz"]) <= set(dct)

Finally, if you use python 3, dict.keys() will return a setlike object, which means that you can call the operator without performance penalty like this:

{"foo","bar","baz"} <= dct.keys()
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This is a neat alternative, and demonstrates IMHO that TIMTOWTDI is inescapable; unfortunately, set in <= 2.6 does not take *args - you need to pass a sequence explicitly (another set of brackets). –  Karl Knechtel - away from home Aug 13 '11 at 22:18
1  
This will be O(n) instead of O(1) for the others. You don't even have to be Dutch to see how horrible this will be if the dict is very large. –  Wooble Aug 13 '11 at 22:59
    
Thanks for the error in the set constructor call and for mentioning the operator. I don’t think that O(n) hurts in the OP’s case, though, since he’s going away from manually checking each key :) –  flying sheep Aug 14 '11 at 10:07
    
Added information about Python 3. Did someone say TimtoWtdI? –  flying sheep Aug 14 '11 at 10:17

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