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I need check if at least one of a list of keys exist in a dict, I mean, I have a list of keys:

keys = ['key1','key2','key3','key4','key5']
dict_ = {'key1': 1,'key2':2}
# I could do something like
if 'key1' in dict_ or 'key2' in dict_ or 'key3' in dict_:
    print True

But I wonder if exist a more pythonic way to do this

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2 Answers 2

up vote 8 down vote accepted

Use Python's built-in any(), it takes an iterable and returns True if any of the elements are true, and it short circuits when it finds a match just like your chained or checks.

if any(key in dict_ for key in keys):
    # do stuff
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Please fix the code with [key in dict_ for key in keys] –  diegueus9 Oct 28 '11 at 17:07
2  
The code uses a generator expression instead of a list comprehension to save memory. The generator expression (key in dict_ for key in keys) creates a generator that will yield the same values as your list comprehension, and when a generator expression is the only argument to a function you do not need the extra parentheses. –  Andrew Clark Oct 28 '11 at 17:12
    
Thanks, that is something new for me –  diegueus9 Oct 29 '11 at 22:49

You could use sets:

In [4]: len(set(dict_.keys()) & set(keys)) > 0
Out[4]: True
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1  
Doesn't short-circuit. Also, it increases linearly with the length of both dict_ and keys whereas any increases linearly with only the length of keys (average case). When membership testing is already constant time, why convert to a set? Also, just if set(dict_) & set(keys): would do it, since an empty set's __truth__ is False. (I know some people prefer the explicit .keys()). –  agf Oct 28 '11 at 16:20

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