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suppose I have a dictionary whose keys are strings. How can I efficiently make a new dictionary from that which contains only the keys present in some list?

for example:

# a dictionary mapping strings to stuff
mydict = {'quux': ...,
          'bar': ...,
          'foo': ...}

# list of keys to be selected from mydict
keys_to_select = ['foo', 'bar', ...]

The way I came up with is:

filtered_mydict = [mydict[k] for k in mydict.keys() \ 
                   if k in keys_to_select]

but I think this is highly inefficient because: (1) it requires enumerating the keys with keys(), (2) it requires looking up k in keys_to_select each time. at least one of these can be avoided, I would think. any ideas? I can use scipy/numpy too if needed.

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1 Answer

up vote 13 down vote accepted
dict((k, mydict[k]) for k in keys_to_select)

if you know all the keys to select are also keys in mydict; if that's not the case,

dict((k, mydict[k]) for k in keys_to_select if k in mydict)
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When using "if k in mydict" like this, does Python perform a has_key type lookup, or does it convert the keys into a list/iterable and loop over them? If it's the latter, " if mydict.has_key(k)" might be more efficient, no? (Haven't found any documentation to clarify, either way, yet. Google skills failed me). –  pycruft Jun 10 '10 at 8:50
1  
To answer my own question, using "k in dict" is identical to using "dict.has_key(k)" according to python.org/dev/peps/pep-0234 –  pycruft Jun 10 '10 at 9:01
1  
@pycruft, yep, and, as timeit cqn confirm (python -mtimeit -s'd=dict.fromkeys(range(99))' '23 in d' etc), in is, in fact, about twice as fast as has_key (saves a named-attribute lookup each time, which is about the same operation as a dict loolup). There is never any reason to use has_key any more, and it's been removed from Python 3. –  Alex Martelli Jun 10 '10 at 14:25
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