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In python... I have a list of elements 'my_list', and a dictionary 'my_dict' where some keys match in 'my_list'.

I would like to search the dictionary and retrieve key/value pairs for the keys matching the 'my_list' elements.

I tried this...

    if any(x in my_dict for x in my_list):
          print set(my_list)&set(my_dict)

But it doesn't do the job.

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Please don't name your variables list or dict. It confuses the heck out of people (and possibly then Python interpreter, too, if you're not careful). – Tim Pietzcker Jun 28 '11 at 10:29

4 Answers 4

up vote 15 down vote accepted

(I renamed list to my_list and diict to my_dict to avoid the conflict with the type names.)

For better performance, you should iterate over the list and check for membership in the dictionary:

for k in my_list:
    if k in my_dict:
        print k, my_dict[k]

If you want to create a new dictionary from these key-value pairs, use

new_dict = {k: my_dict[k] for k in my_list if k in my_dict}
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I chose this answer because as i'm new to python, i can understand perfectly what is it doing. Thanks! – peixe Jun 28 '11 at 11:42

Don't use dict and list as variable names. They shadow the built-in functions. Assuming list l and dictionary d:

kv = [(k, d[k]) for k in l if k in d]
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s/dict[k]/d[k]/ – mhyfritz Jun 28 '11 at 10:42
@mhyfritz: Thanks! :) – Felix Kling Jun 28 '11 at 10:43
Ok! thanks for the tip! – peixe Jun 28 '11 at 11:41
 new_dict = dict((k, v) for k, v in dict.iteritems() if k in list)

Turning list into a set set(list) may yield a noticeable speed increase

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Note that if k in list will be O(n). – Felix Kling Jun 28 '11 at 10:30
Yeah; I was conveniently ignoring that for the sake of simplicity – Rob Cowie Jun 28 '11 at 10:32
hehe; I lost an upvote. Seems a bit harsh; There is merit in deliberately providing a simple answer to a simple question. – Rob Cowie Jun 28 '11 at 10:35
dict.iteritems() would be preferable to dict.items(). – jd. Jun 28 '11 at 10:35
Rob: The point is that the efficient solution is just as simple. – Sven Marnach Jun 28 '11 at 10:37

What about print([kv for kv in dict.items() if kv[0] in list])

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