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I want to do something like:

foo = {'foo':1,'zip':2,'zam':3,'bar':4}

if ("foo","bar") in foo:
    #do stuff

I'm not sure if its possible but would like to know. :-)

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Thank you all for your answers. I liked the answers Alex and hughdbrown put forth probably the best. I used the answer from hughdbrown in the code. Alex had the simplest looking answer though. –  user131465 Aug 17 '09 at 4:41

11 Answers 11

up vote 90 down vote accepted

Well, you could do this:

>>> if all (k in foo for k in ("foo","bar")):
...     print "They're there!"
...
They're there!
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4  
+1, I like this better than Greg's answer because it's more concise AND faster (no building of irrelevant temporary list, AND full exploitation of short-circuiting). –  Alex Martelli Aug 17 '09 at 2:34
1  
I love all() and any(). They make so many algorithms so much cleaner. –  hughdbrown Aug 17 '09 at 3:49
    
I ultimately ended up using this solution. It seemed the best for larger datasets. When checking for say 25 or 30 keys. –  user131465 Aug 17 '09 at 4:37
2  
It's a good solution thanks to short-circuiting, especially if the test fails more often than not; unless you can create the set of keys of interest just once and check it many times, in which case set is superior. As usual... measure it!-) –  Alex Martelli Aug 17 '09 at 4:57
    
I use this whenever it looks nicer than the "normal" way, with all the and's or the or's... it's also nice 'cause you can use either "all" or "any"... in addition you can either have "k in foo" or "k not in foo" depending on the test you are trying to perform –  Terence Honles Aug 17 '09 at 8:57
if set(("foo", "bar")) <= set(myDict): ...
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1  
Satisfying on many levels... –  Jarret Hardie Aug 17 '09 at 2:27
1  
Python pulled me away from Java. I have to ask myself what kind of language would pull me away from Python. :) –  FogleBird Aug 17 '09 at 3:14
1  
+1 This is the most beautiful thing I've seen today –  mhawke Aug 17 '09 at 4:56
    
looks good! The only thing I don't like is that you have to create temporary sets, but it's very compact. So I must say... nice use of sets! –  Terence Honles Aug 17 '09 at 9:02
2  
In python 3 you can say set(("foo","bar")) <= myDict.keys() which avoids the temporary set, so is much faster. For my testing it is about the same speed as using all when the query was 10 items. It gets slower as the query gets bigger though. –  gnibbler Oct 11 '09 at 22:43

Simple benchmarking rig for 3 of the alternatives.

Put in your own values for D and Q


>>> from timeit import Timer
>>> setup='''from random import randint as R;d=dict((str(R(0,1000000)),R(0,1000000)) for i in range(D));q=dict((str(R(0,1000000)),R(0,1000000)) for i in range(Q));print("looking for %s items in %s"%(len(q),len(d)))'''

>>> Timer('set(q) <= set(d)','D=1000000;Q=100;'+setup).timeit(1)
looking for 100 items in 632499
0.28672504425048828

#This one only works for Python3
>>> Timer('set(q) <= d.keys()','D=1000000;Q=100;'+setup).timeit(1)
looking for 100 items in 632084
2.5987625122070312e-05

>>> Timer('all(k in d for k in q)','D=1000000;Q=100;'+setup).timeit(1)
looking for 100 items in 632219
1.1920928955078125e-05
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1  
Python 2.7 has d.viewkeys() to make set(q) <= d.viewkeys(). –  Martijn Pieters Aug 27 '13 at 12:46
    
Python 2.7.5 has d.keys() method too. –  Ivan Kharlamov Oct 7 '13 at 11:46
    
@IvanKharlamov, but in Python2, it doesn't return an object that is compatible with set(q) <= ... –  gnibbler Oct 7 '13 at 18:30
    
My bad, you're absolutely spot on: it returns TypeError: can only compare to a set. Sorry! :)) –  Ivan Kharlamov Oct 7 '13 at 18:42
    
For Python 2 switch the order: d.viewkeys() >= set(q). I came here trying to find out why the order matters! –  Veedrac Apr 28 at 6:09

Using sets:

if set(("foo", "bar")).issubset(foo):
    #do stuff

Alternatively:

if set(("foo", "bar")) <= set(foo):
    #do stuff
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1  
set(d) as I used in my answer is just like set(d.keys()) but faster, shorter, and I would say stylistically preferable. –  Alex Martelli Aug 17 '09 at 2:31
    
set(d) is the same as set(d.keys()) ( without the intermediate list that d.keys() constructs ) –  Jochen Ritzel Aug 17 '09 at 2:32
    
agreed, thanks –  Karl Voigtland Aug 17 '09 at 2:32

How about

if all([key in foo for key in ["foo","bar"]]):
    #do stuff
    pass
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3  
The square brackets there are unnecessary.. –  John Fouhy Aug 17 '09 at 3:26
6  
indeed, not only unnecessary, positively harmful, as they impede the normal short-circuiting behavior of all. –  Alex Martelli Aug 17 '09 at 15:41

Alex Martelli's solution set(queries) <= set(my_dict) is the shortest code but may not be the fastest. Assume Q = len(queries) and D = len(my_dict).

This takes O(Q) + O(D) to make the two sets, and then (one hopes!) only O(min(Q,D)) to do the subset test -- assuming of course that Python set look-up is O(1) -- this is worst case (when the answer is True).

The generator solution of hughdbrown (et al?) all(k in my_dict for k in queries) is worst-case O(Q).

Complicating factors:
(1) the loops in the set-based gadget are all done at C-speed whereas the any-based gadget is looping over bytecode.
(2) The caller of the any-based gadget may be able to use any knowledge of probability of failure to order the query items accordingly whereas the set-based gadget allows no such control.

As always, if speed is important, benchmarking under operational conditions is a good idea.

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1  
The generator was faster for all the cases I tried. stackoverflow.com/questions/1285911/… –  gnibbler Oct 11 '09 at 22:57

In case you want to:

  • also get the values for the keys
  • check more than one dictonary

then:

from operator import itemgetter
foo = {'foo':1,'zip':2,'zam':3,'bar':4}
keys = ("foo","bar") 
getter = itemgetter(*keys) # returns all values
try:
    values = getter(foo)
except KeyError:
    # not both keys exist
    pass
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How about using lambda?

 if reduce( (lambda x, y: x and foo.has_key(y) ), [ True, "foo", "bar"] ): # do stuff
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This answer is the only functionally-correct one that will work on Python 1.5 with a simple change (s/True/1/) ... but it's got nothing else going for it. AND the True thingy would be better as the optional initializer arg rather than crammed into the front of the sequence arg. –  John Machin Aug 17 '09 at 3:51

Not to suggest that this isn't something that you haven't thought of, but I find that the simplest thing is usually the best:

if ("foo" in foo) and ("bar" in foo):
    # do stuff
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Sure, I like simplicity too!, and that's fine for just two keys as in the example, but it gets wordy and unwieldy fast for the general case of "multiple" keys as per the title. –  Alex Martelli Aug 17 '09 at 2:33
>>> if 'foo' in foo and 'bar' in foo:
...     print 'yes'
... 
yes

Jason, () aren't necessary in Python.

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2  
Still they might be good style... without them, my C++-addled brain always wonders if it's going to be interpreted as "if 'foo in (foo and 'bar') in foo:" –  Jeremy Friesner Aug 17 '09 at 4:24
    
I understand that they aren't necessary. I just feel that they add clarity in this case. –  Jason Baker Aug 17 '09 at 11:08

You don't have to wrap the left side in a set. You can just do this:

if {'foo', 'bar'} <= set(some_dict):
    pass
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