43

I'm looking for an elegant way to extract some values from a Python dict into local values.

Something equivalent to this, but cleaner for a longer list of values, and for longer key/variable names:

d = { 'foo': 1, 'bar': 2, 'extra': 3 }
foo, bar = d['foo'], d['bar']

I was originally hoping for something like the following:

foo, bar = d.get_tuple('foo', 'bar')

I can easily write a function which isn't bad:

def get_selected_values(d, *args):
    return [d[arg] for arg in args]

foo, bar = get_selected_values(d, 'foo', 'bar')

But I keep having the sneaking suspicion that there is some other builtin way.

5
  • 2
    I'm sorry to ask, but why would you want to do that? Jul 19, 2013 at 20:47
  • It may be worthwhile to have a look at a question about scoping and contexts that I worked on before: < stackoverflow.com/questions/12485837/… >. This might be overkill for you, but it was a good solution for me to be able to work with data objects unpacked from certain data structures and greatly simplify the syntax of applying math operations to them.
    – ely
    Jul 19, 2013 at 20:56
  • 2
    I'm handling JSON structures in which 3-4 values are important for fairly complicated routing logic, but in which the original structure needs to just be passed along to the final processing.
    – DonGar
    Jul 19, 2013 at 22:02
  • 1
    One reason for wanting to do this might be for unpacking a namedtuple into multiple variables in a single statement. E.g. foo, bar = get_selected_values(some_func_returns_named_tuple(), 'foo', 'bar') rather than my_named_tuple = some_func_returns_named_tuple(); foo = my_named_tuple.foo; bar = my_named_tuple.bar
    – davidA
    Feb 27, 2017 at 1:42
  • Does this answer your question? convert dictionary entries into variables - python
    – ggorlen
    Nov 28, 2021 at 16:03

5 Answers 5

55

You can do something like

foo, bar = map(d.get, ('foo', 'bar'))

or

foo, bar = itemgetter('foo', 'bar')(d)

This may save some typing, but essentially is the same as what you are doing (which is a good thing).

6
  • 10
    Or just use foo, bar = itemgetter('foo', 'bar')(d) Jul 19, 2013 at 20:51
  • @JonClements This is nice, I think the OP will like it. Jul 19, 2013 at 20:54
  • I feel guilty now as I hadn't noticed @DSM had put that as an alternative answer... Jul 19, 2013 at 20:55
  • @JonClements: you beat me to it, hence its disappearance. :^)
    – DSM
    Jul 19, 2013 at 21:00
  • 1
    In Python 3, from operator import itemgetter
    – ggorlen
    Nov 28, 2021 at 15:44
5

Somewhat horrible, but:

globals().update((k, v) for k, v in d.iteritems() if k in ['foo', 'bar'])

Note, that while this is possible - it's something you don't really want to be doing as you'll be polluting a namespace that should just be left inside the dict itself...

2
  • globals().update((k, d[k]) for k in ['foo', 'bar']) is a bit shorter. Apparently globals() is OK to update but locals() isn't. Ultimately, I agree that this is somewhat horrible.
    – ggorlen
    Nov 29, 2021 at 5:51
  • note that this may have undesired results if your dict contains keys that match other globals (be careful).
    – Tcll
    Dec 3, 2021 at 12:28
3

Well, if you know the names ahead of time, you can just do as you suggest.

If you don't know them ahead of time, then stick with using the dict - that's what they're for.

If you insist, an alternative would be:

varobj = object()
for k,v in d.iteritems(): setattr(varobj,k,v)

After which, keys will be variables on varobj.

11
  • 2
    The scope of the question does not request nor require comments like "if you insist." I think it's safe to assume that the OP is aware of the risks (or that a discussion of the risks can go in the comments area to the question, and not as an answer). Sticking them as attributes on an object doesn't achieve the stated goal of making them local variables with some particular names. If you're willing to modify the tone of the answer, so that it does not qualify anything with best practices styled recommendations, I'd be happy to change the vote once I can.
    – ely
    Jul 19, 2013 at 20:53
  • 4
    @EMS I'm sorry, but there's no rule that I have to tell OP what he wants to do, without evaluating whether or not it's a good idea. Frankly, your attitude is so offensive that I'd rather not have your vote.
    – Marcin
    Jul 19, 2013 at 21:02
  • 2
    I disagree very strongly. There is an obligation to try to answer the OP's question as stated, and not to impose opinions about whether it is a good idea. Or at least leave them for comments instead of using answer space for expressing opinions about what is a good idea. I don't see how this view is offensive. I find the tone of your answer a bit offensive (the "if you insist" part particularly, as if it's wrong to want to try something). There can be scores of reasons to want to do something in code that isn't best practice, including just for pure pedagogy and exploration.
    – ely
    Jul 19, 2013 at 21:06
  • 5
    @EMS Well, why don't you go start your own Q&A site, instead of trying to create your own code of conduct.
    – Marcin
    Jul 19, 2013 at 21:09
  • 3
    It's an interesting answer, partly because it creates a new namespace.
    – DonGar
    Sep 10, 2013 at 7:32
0

If you're looking for elegance with performance across python versions, sadly I don't think you're gonna get any better than:

unpack = lambda a,b,c,**kw: (a,b,c) # static

d = dict( a=1, b=2, c=3, d=4, e=5 )

a,b,c = unpack(**d)

working examples:

>>> unpack = lambda a,b,c,**kw: (a,b,c)
>>> d = dict( a=1, b=2, c=3, d=4, e=5, f=6, g=7 )
>>> a,b,c = unpack(**d)
>>> 
>>> unpack(**d)
(1, 2, 3)

you can also unpack the difference that would otherwise be discarded:

>>> unpackextra = lambda a,b,c,**kw: (a,b,c,kw)
>>> a,b,c,extra = unpackextra(**d)
>>> 
>>> unpackextra(**d)
(1, 2, 3, {'f': 6, 'd': 4, 'e': 5, 'g': 7})

arguments are static though, so the use case should be specific to whatever your intents are. ;)

>>> unpack2 = lambda a,b,c,d,e,f,**kw: (a,b,c,d,e,f) # static
>>> 
>>> unpack2(**d)
(1, 2, 3, 4, 5, 6)
>>> 
3
  • So if you want to unpack 1, 2, 3, 4, 5... items you have to write new functions for each one? PEP-8 also discourages assigning lambdas to variables like this. Finally, this still relies on ordering of the dict which is unsafe even in 3.6+: c,b,a = unpack(**d) gives the wrong values.
    – ggorlen
    Nov 28, 2021 at 15:50
  • @ggorlen yes, you need to write a new function, this method assumes you have a pre-planned data structure to follow. and no, the dict is unordered, the order is applied via the function, there is no global solution to this across python versions.
    – Tcll
    Nov 29, 2021 at 16:16
  • @ggorlen also note they key word to this answer is "performance" as argument unpacking is native functionality to python, not some builtin function. would be nice if you could just do >>> a,b,c,**extras = d directly, but python doesn't support this.
    – Tcll
    Dec 3, 2021 at 12:36
-1

The elegant solution:

d = { "foo": 123, "bar": 456, None: 789 }
foo, bar, baz = d.values()  # 123, 456, 789

Notice that keys are not used, so be sure to get the order of your variables right, i.e. they must match the order that the keys were inserted into the map (this ordering is guaranteed since Python 3.6). If in doubt about ordering, use the other methods.

5
  • In the original question, part of the goal was to only use a subset of the values.
    – DonGar
    Jun 25, 2019 at 18:13
  • This approach is wrong. It might fail because iterating over a dictionary does not guarantee to follow insertion order. That's why Python developers invented 'OrderedDict'. Feb 23, 2021 at 11:00
  • 2
    @CarlosPinzón OrderedDict was needed in old Python versions. Now dict insertion order is guaranteed (it became part of the language specification in 3.7, and CPython 3.6 already kept the insertion order).
    – Tronic
    Mar 30, 2021 at 15:01
  • @L.Kärkkäinen, you are right. I just searched for 'insertion order' in the docs, and they say so: docs.python.org/3.7/library/stdtypes.html#typesmapping Mar 30, 2021 at 20:02
  • Even with guaranteed order, this seems brittle. It's generally not safe to think of dicts as ordered -- you'd not expect unpacking logic to be tied to that, so reordering the dict would surprisingly break code like this, but not other solutions in the thread. This is syntactically appealing, though.
    – ggorlen
    Nov 28, 2021 at 15:47

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