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A quick question? I am wondering if there is a pythonic way to get the following.

I have a defaultdict(list)

 foo = {"a":[1,2,3], "b":[3]....} and so on.

Is there a pythonic way to write a function which returns me only the keys whose list have length more than "n"

so for example

 def return_keys_based_on_value_length(num,dictionary):
    key_list = []
    for k,v in dictionary:
         if len(v)>= num:
            key_list.append(k)
    return key_list

is there a pythonic way to do this? Thanks

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3 Answers 3

up vote 4 down vote accepted
foo = {"a":[1,2,3], "b":[3], "c":[1,2], "d":[1,2,3,4]}

n = 2

my_list = [key for key,val in foo.iteritems() if len(val) > n]

Result:

>>> my_list
['a', 'd']
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n = 2
foo = {"a":[1,2,3], "b":[3]}
key_list = [item for item in foo.keys() if len(foo[item]) > 2]

Results in ['a']

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You can try using the filter function:

filter(lambda x: len(dictionary[x])> num, dictionary.keys())
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I do not think that filter is best to use if you need it also for map. –  Luka Rahne Apr 15 '12 at 21:21

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