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I have a big dictionary object that has several key value pairs (about 16), I am only interested in 3 of them. What is the best way (shortest/efficient/elegant) to achieve that?

The best I know is:

bigdict = {'a':1,'b':2,....,'z':26} 
subdict = {'l':bigdict['l'], 'm':bigdict['m'], 'n':bigdict['n']}

I am sure there is more elegant way than this. Ideas?

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7 Answers 7

up vote 93 down vote accepted

You could try:

dict((k, bigdict[k]) for k in ('l', 'm', 'n'))

... or in Python 3 Python versions 2.7 or later (thanks to Fábio Diniz for pointing that out that it works in 2.7 too):

{k: bigdict[k] for k in ('l', 'm', 'n')}

Update: As Håvard S points out, I'm assuming that you know the keys are going to be in the dictionary - see his answer if you aren't able to make that assumption. Alternatively, as timbo points out in the comments, if you want a key that's missing in bigdict to map to None, you can do:

{k: bigdict.get(k, None) for k in ('l', 'm', 'n')}
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Will fail if bigdict does not contain k –  Håvard S Mar 18 '11 at 13:29
    
A bit harsh to downvote that - it seemed pretty clear from the context to me that it's known that these keys are in the dictionary... –  Mark Longair Mar 18 '11 at 13:31
    
@Håvard S: I think from the OPs post, we can assume that all given given elements are in bigdict. –  phimuemue Mar 18 '11 at 13:32
2  
{k: bigdict.get(k,None) for k in ('l', 'm', 'n')} will deal with the situation where a specified key is missing in the source dictionary by setting key in the new dict to None –  timbo Dec 21 '13 at 22:44
2  
@MarkLongair Depending on the use case {k: bigdict[k] for k in ('l','m','n') if k in bigdict} might be better, as it only stores the keys that actually have values. –  Briford Wylie Mar 7 '14 at 22:20

A bit shorter, at least:

wanted_keys = ['l', 'm', 'n'] # The keys you want
dict([(i, bigdict[i]) for i in wanted_keys if i in bigdict])
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+1 for if i in bigdict! –  Jinghao Shi Apr 15 '13 at 20:05
1  
+1 for alternate behavior of excluding a key if it is not in bigdict as opposed to setting it to None. –  dhj Jun 12 '14 at 18:35
interesting_keys = ('l', 'm', 'n')
subdict = {x: bigdict[x] for x in interesting_keys if x in bigdict}
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You can also use map (which is a very useful function to get to know anyway):

sd = dict(map(lambda k: (k, l.get(k, None)), l))

Example:

large_dictionary = {'a1':123, 'a2':45, 'a3':344} list_of_keys = ['a1', 'a3'] small_dictionary = dict(map(lambda key: (key, large_dictionary.get(key, None)), list_of_keys))

PS. I borrowed the .get(key, None) from a previous answer :)

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Okay, this is something that has bothered me a few times, so thank you Jayesh for asking it.

The answers above seem like as good a solution as any, but if you are using this all over your code, it makes sense to wrap the functionality IMHO. Also, there are two possible use cases here: one where you care about whether all keywords are in the original dictionary. and one where you don't. It would be nice to treat both equally.

So, for my two-penneth worth, I suggest writing a sub-class of dictionary, e.g.

class my_dict(dict):
    def subdict(self, keywords, fragile=False):
        d = {}
        for k in keywords:
            try:
                d[k] = self[k]
            except KeyError:
                if fragile:
                    raise
        return d

Now you can pull out a sub-dictionary with

orig_dict.subdict(keywords)

Usage examples:

#
## our keywords are letters of the alphabet
keywords = 'abcdefghijklmnopqrstuvwxyz'
#
## our dictionary maps letters to their index
d = my_dict([(k,i) for i,k in enumerate(keywords)])
print('Original dictionary:\n%r\n\n' % (d,))
#
## constructing a sub-dictionary with good keywords
oddkeywords = keywords[::2]
subd = d.subdict(oddkeywords)
print('Dictionary from odd numbered keys:\n%r\n\n' % (subd,))
#
## constructing a sub-dictionary with mixture of good and bad keywords
somebadkeywords = keywords[1::2] + 'A'
try:
    subd2 = d.subdict(somebadkeywords)
    print("We shouldn't see this message")
except KeyError:
    print("subd2 construction fails:")
    print("\toriginal dictionary doesn't contain some keys\n\n")
#
## Trying again with fragile set to false
try:
    subd3 = d.subdict(somebadkeywords, fragile=False)
    print('Dictionary constructed using some bad keys:\n%r\n\n' % (subd3,))
except KeyError:
    print("We shouldn't see this message")

If you run all the above code, you should see (something like) the following output (sorry for the formatting):

Original dictionary:
{'a': 0, 'c': 2, 'b': 1, 'e': 4, 'd': 3, 'g': 6, 'f': 5, 'i': 8, 'h': 7, 'k': 10, 'j': 9, 'm': 12, 'l': 11, 'o': 14, 'n': 13, 'q': 16, 'p': 15, 's': 18, 'r': 17, 'u': 20, 't': 19, 'w': 22, 'v': 21, 'y': 24, 'x': 23, 'z': 25}

Dictionary from odd numbered keys:
{'a': 0, 'c': 2, 'e': 4, 'g': 6, 'i': 8, 'k': 10, 'm': 12, 'o': 14, 'q': 16, 's': 18, 'u': 20, 'w': 22, 'y': 24}

subd2 construction fails:
original dictionary doesn't contain some keys

Dictionary constructed using some bad keys:
{'b': 1, 'd': 3, 'f': 5, 'h': 7, 'j': 9, 'l': 11, 'n': 13, 'p': 15, 'r': 17, 't': 19, 'v': 21, 'x': 23, 'z': 25}

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Maybe:

subdict=dict([(x,bigdict[x]) for x in ['l', 'm', 'n']])

Python 3 even supports the following:

subdict={a:bigdict[a] for a in ['l','m','n']}

Note that you can check for existence in dictionary as follows:

subdict=dict([(x,bigdict[x]) for x in ['l', 'm', 'n'] if x in bigdict])

resp. for python 3

subdict={a:bigdict[a] for a in ['l','m','n'] if a in bigdict}
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Fails if a is not in bigdict –  Håvard S Mar 18 '11 at 13:31

Yet another one (I prefer Mark Longair's answer)

di = {'a':1,'b':2,'c':3}
req = ['a','c','w']
dict([i for i in di.iteritems() if i[0] in di and i[0] in req])
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