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Given a dictionary keyed by 2-element tuples, I want to return all the key-value pairs whose keys contain a given element.

For example, the dictionary can be:

tupled_dict = {('a',1):1, ('a',2):0, ('b',1):1, ('c',4):0}

and the given element is 'a', then the key-value pairs that should be returned would be:

('a',1):1, ('a',2):0

What is the fastest code to do this?

EDIT:

In addition, as a related sub-question, I am interested in the fastest way to delete all such key-value pairs given an element of the keys. Obviously, once I have the results of the above, I can use a loop to delete each dictionary item one by one, but I wonder if there is a short-cut way to do it.

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1  
What have you tried? –  jordanm Jul 20 '12 at 0:37

3 Answers 3

up vote 3 down vote accepted

To get those ones:

>>> {k: v for k, v in tupled_dict.iteritems() if 'a' in k}
{('a', 1): 1, ('a', 2): 0}

Similarly, to delete the other ones:

>>> tupled_dict = {k: v for k, v in tupled_dict.iteritems() if 'a' not in k}
>>> tupled_dict
{('b', 1): 1, ('c', 4): 0}
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If the dict can contain keys other than tuples (for example, strings) then you might need to swap the in keyword for different logic. –  wim Jul 20 '12 at 0:57
    
if i'm not mistaken, the deletion will create a new dictionary and assign that to the tupled_dict? What about in-place deletion? Would that be any faster? –  MLister Jul 20 '12 at 3:30
    
That probably depends on what proportion of the entries will be deleted. You can check it yourself with timeit –  wim Jul 20 '12 at 5:07

I haven't tested it for performance, but I suggest you start by getting a baseline using a for loop, and then another with dict comprehensions .

>>> {k:v for k, v in tupled_dict.iteritems() if k[0] == 'a'}
{('a', 1): 1, ('a', 2): 0}
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2  
Strictly interpreting the question, this wouldn't work if 'a' were the second element of a key tuple. –  twneale Jul 20 '12 at 0:58

This snippet will work even if 'a' isn't the first element in a key tuple:

from operator import methodcaller

contains_a = methodcaller('__contains__', 'a')
keys = filter(contains_a, tupled_dict)
new_dict = dict(zip(keys, map(tupled_dict.get, keys))
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