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

up vote 299 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')}

If you're using Python 3, and you only want want keys in the new dict that actually exist in the original one, you can use the fact the view objects implement some set operations:

{k: bigdict[k] for k in bigdict.keys() & {'l', 'm', 'n'}}
  • 4
    Will fail if bigdict does not contain k – Håvard S Mar 18 '11 at 13:29
  • 3
    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
  • 7
    {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
  • 7
    @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
  • 4
    bigdict.keys() & {'l', 'm', 'n'} ==> bigdict.viewkeys() & {'l', 'm', 'n'} for Python2.7 – kxr Aug 25 '16 at 15:58

A bit shorter, at least:

wanted_keys = ['l', 'm', 'n'] # The keys you want
dict((k, bigdict[k]) for k in wanted_keys if k in bigdict)
  • 12
    +1 for if i in bigdict! – Jinghao Shi Apr 15 '13 at 20:05
  • 5
    +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
  • Alternatively: dict((k,bigdict.get(k,defaultVal) for k in wanted_keys) if you must have all keys. – Thomas Andrews May 1 at 20:57
interesting_keys = ('l', 'm', 'n')
subdict = {x: bigdict[x] for x in interesting_keys if x in bigdict}

This answer uses a dictionary comprehension similar to the selected answer, but will not except on a missing item.

python 2 version:

{k:v for k, v in bigDict.iteritems() if k in ('l', 'm', 'n')}

python 3 version:

{k:v for k, v in bigDict.items() if k in ('l', 'm', 'n')}
  • 1
    ...but if the big dict is HUGE it will still be iterated over completely (this is an O(n) operation), while the inverse would just grab 3 items (each an O(1) operation). – wouter bolsterlee Oct 5 '15 at 16:08
  • The question is about a dictionary of only 16 keys – Meow Oct 6 '15 at 17:09

A bit of speed comparison for all mentioned methods:

Python 2.7.11 |Anaconda 2.4.1 (64-bit)| (default, Jan 29 2016, 14:26:21) [MSC v.1500 64 bit (AMD64)] on win32
In[2]: import numpy.random as nprnd
keys = nprnd.randint(1000, size=10000)
bigdict = dict([(_, nprnd.rand()) for _ in range(1000)])

%timeit {key:bigdict[key] for key in keys}
%timeit dict((key, bigdict[key]) for key in keys)
%timeit dict(map(lambda k: (k, bigdict[k]), keys))
%timeit dict(filter(lambda i:i[0] in keys, bigdict.items()))
%timeit {key:value for key, value in bigdict.items() if key in keys}
100 loops, best of 3: 3.09 ms per loop
100 loops, best of 3: 3.72 ms per loop
100 loops, best of 3: 6.63 ms per loop
10 loops, best of 3: 20.3 ms per loop
100 loops, best of 3: 20.6 ms per loop

As it was expected: dictionary comprehensions are the best option.

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}
  • Fails if a is not in bigdict – Håvard S Mar 18 '11 at 13:31

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 :)

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}

  • 1
    Subclassing requires an existing dict object to be converted into the subclass type, which can be expensive. Why not just write a simple function subdict(orig_dict, keys, …)? – musiphil Jul 17 '15 at 17:43

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])
  • its slow for bigdict's – kxr Jan 28 '16 at 8:10
  • agreed. It is slow and not as good as Mark Longair's answer – user1500158 Dec 29 '16 at 2:51

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