141

I am trying to 'destructure' a dictionary and associate values with variables names after its keys. Something like

params = {'a':1,'b':2}
a,b = params.values()

But since dictionaries are not ordered, there is no guarantee that params.values() will return values in the order of (a, b). Is there a nice way to do this?

9
  • 3
    Lazy? Maybe... but of course I've shown the simplest case for illustration. Ideally I wanted to do have like for x in params.items: eval('%s = %f' % x) but I guess eval() doesn't allow assignments.
    – hatmatrix
    Jun 2, 2010 at 10:07
  • 15
    @JochenRitzel I'm pretty sure most users of ES6 (JavaScript) likes the new object destructuring syntax: let {a, b} = params. It enhances readability and is completely inline with whatever Zen you want to talk about.
    – Andy
    Apr 25, 2016 at 18:35
  • 24
    @Andy I love object destructuring in JS. What a clean, simple and readable way to extract some keys from a dict. I came here with the hope of finding something similar in Python.
    – Rotareti
    Feb 17, 2017 at 4:04
  • 2
    I also love ES6 object destructuring, but I'm afraid it can't work in Python for the same reason ES6's Map object doesn't support destructuring. Keys aren't just strings in ES6 Map and Python dict. Also, although I love the "pluck" style of object destructuring in ES6, the assignment style is not simple. What's going on here? let {a: waffles} = params . It takes a few seconds to figure it out even if you're used to it. Mar 10, 2018 at 0:46
  • 1
    @naught101 Situationally useful with nasty surprises for tradeoffs. For users: In Python any object can provide its own str/repr methods. It might even be tempting to do this for slightly complex key objects (e.g., named tuples) for easier JSON serialization. Now you're left scratching your head why you can't destructure a key by name. Also, why does this work for items but not attrs? Lots of libraries prefer attrs. For implementers, this ES6 feature confuses symbols (bindable names) and strings: reasonable in JavaScript but Python has much richer ideas in play. Also, it'd just look ugly. Sep 26, 2019 at 5:40

16 Answers 16

249
from operator import itemgetter

params = {'a': 1, 'b': 2}

a, b = itemgetter('a', 'b')(params)

Instead of elaborate lambda functions or dictionary comprehension, may as well use a built in library.

6
  • 16
    This should probably be the accepted answer, as it's the most Pythonic way to do it. You can even extend the answer to use attrgetter from the same standard library module, which works for object attributes (obj.a). This is a major distinction from JavaScript, where obj.a === obj["a"]. Sep 26, 2019 at 5:47
  • 2
    If the key does not exist on dictionary KeyError exception will be raised Apr 9, 2020 at 20:13
  • 6
    But you are typing a and b twice now in the destructuring statement
    – Otto
    May 15, 2020 at 9:05
  • 4
    @JohnChristopherJones That doesn't seem very natural to me, using existing stuff doesn't mean it makes it understandable. I doubt many people would instantly understand in a real code. On the other hand, as suggested a, b = [d[k] for k in ('a','b')] is way more natural/readable (the form is way more common). This is still an interesting answer, but that's not the most straightforward solution.
    – cglacet
    Jul 19, 2020 at 14:35
  • 3
    @TasawarHussain Thank god it throws KeyError. What else should it do?
    – Danon
    Sep 5, 2021 at 10:09
39

One way to do this with less repetition than Jochen's suggestion is with a helper function. This gives the flexibility to list your variable names in any order and only destructure a subset of what is in the dict:

pluck = lambda dict, *args: (dict[arg] for arg in args)

things = {'blah': 'bleh', 'foo': 'bar'}
foo, blah = pluck(things, 'foo', 'blah')

Also, instead of joaquin's OrderedDict you could sort the keys and get the values. The only catches are you need to specify your variable names in alphabetical order and destructure everything in the dict:

sorted_vals = lambda dict: (t[1] for t in sorted(dict.items()))

things = {'foo': 'bar', 'blah': 'bleh'}
blah, foo = sorted_vals(things)
3
  • 7
    This is a minor quibble, but if you are going to assign a lambda to a variable, you might as well use the normal function syntax with def. Nov 15, 2017 at 10:45
  • upvoted cant you do this like JS where it would be const {a,b} = {a: 1, b: 2}
    – PirateApp
    Feb 15, 2019 at 10:06
  • 2
    You've implemented itemgetter from operator in the standard library. :) Sep 26, 2019 at 5:48
31

How come nobody posted the simplest approach?

params = {'a':1,'b':2}

a, b = params['a'], params['b']
1
  • 4
    lol yea, and b, a = params["b"], params["a"] 🙃 Sep 5, 2021 at 12:28
26

Python is only able to "destructure" sequences, not dictionaries. So, to write what you want, you will have to map the needed entries to a proper sequence. As of myself, the closest match I could find is the (not very sexy):

a,b = [d[k] for k in ('a','b')]

This works with generators too:

a,b = (d[k] for k in ('a','b'))

Here is a full example:

>>> d = dict(a=1,b=2,c=3)
>>> d
{'a': 1, 'c': 3, 'b': 2}
>>> a, b = [d[k] for k in ('a','b')]
>>> a
1
>>> b
2
>>> a, b = (d[k] for k in ('a','b'))
>>> a
1
>>> b
2
20

Here's another way to do it similarly to how a destructuring assignment works in JS:

params = {'b': 2, 'a': 1}
a, b, rest = (lambda a, b, **rest: (a, b, rest))(**params)

What we did was to unpack the params dictionary into key values (using **) (like in Jochen's answer), then we've taken those values in the lambda signature and assigned them according to the key name - and here's a bonus - we also get a dictionary of whatever is not in the lambda's signature so if you had:

params = {'b': 2, 'a': 1, 'c': 3}
a, b, rest = (lambda a, b, **rest: (a, b, rest))(**params)

After the lambda has been applied, the rest variable will now contain: {'c': 3}

Useful for omitting unneeded keys from a dictionary.

Hope this helps.

1
  • 1
    Interesting, on the other hand I feel it would be better in a function. You'll probably use this several time and that way you'll have a name on it too. (when I say function I mean, not a lambda function).
    – cglacet
    Jul 19, 2020 at 14:38
15

Maybe you really want to do something like this?

def some_func(a, b):
  print a,b

params = {'a':1,'b':2}

some_func(**params) # equiv to some_func(a=1, b=2)
3
  • Thanks, but not that... I'm destructuring within a function
    – hatmatrix
    Jun 2, 2010 at 10:01
  • @hatmatrix and it seems that it's the case where you can create function that makes your code cleaner
    – Karolius
    May 7, 2021 at 8:48
  • IMO, this answer adheres to what OP explicitly asked for and it's using language features appropriately. The only compromise here is that the control flow is moved to a function
    – darw
    Nov 2, 2021 at 15:19
11

If you are afraid of the issues involved in the use of the locals dictionary and you prefer to follow your original strategy, Ordered Dictionaries from python 2.7 and 3.1 collections.OrderedDicts allows you to recover you dictionary items in the order in which they were first inserted

3
  • 7
    Currently, in 3.5+, all dictionaries are ordered. This is not "guaranteed" yet, meaning it could change. Dec 15, 2016 at 17:26
  • 8
    It's guaranteed from 3.6+.
    – naught101
    Sep 25, 2019 at 0:03
  • @Zachary822's answer, though requiring a little more code, has the advantage that you don't have to know (or remember) the order of the contents of the dictionary and it won't break if it ever changes — so it's worth being aware of both ways this can be done IMO.
    – martineau
    May 12, 2021 at 11:19
5

Warning 1: as stated in the docs, this is not guaranteed to work on all Python implementations:

CPython implementation detail: This function relies on Python stack frame support in the interpreter, which isn’t guaranteed to exist in all implementations of Python. If running in an implementation without Python stack frame support this function returns None.

Warning 2: this function does make the code shorter, but it probably contradicts the Python philosophy of being as explicit as you can. Moreover, it doesn't address the issues pointed out by John Christopher Jones in the comments, although you could make a similar function that works with attributes instead of keys. This is just a demonstration that you can do that if you really want to!

def destructure(dict_):
    if not isinstance(dict_, dict):
        raise TypeError(f"{dict_} is not a dict")
    # the parent frame will contain the information about
    # the current line
    parent_frame = inspect.currentframe().f_back

    # so we extract that line (by default the code context
    # only contains the current line)
    (line,) = inspect.getframeinfo(parent_frame).code_context

    # "hello, key = destructure(my_dict)"
    # -> ("hello, key ", "=", " destructure(my_dict)")
    lvalues, _equals, _rvalue = line.strip().partition("=")

    # -> ["hello", "key"]
    keys = [s.strip() for s in lvalues.split(",") if s.strip()]

    if missing := [key for key in keys if key not in dict_]:
        raise KeyError(*missing)

    for key in keys:
        yield dict_[key]
In [5]: my_dict = {"hello": "world", "123": "456", "key": "value"}                                                                                                           

In [6]: hello, key = destructure(my_dict)                                                                                                                                    

In [7]: hello                                                                                                                                                                
Out[7]: 'world'

In [8]: key                                                                                                                                                                  
Out[8]: 'value'

This solution allows you to pick some of the keys, not all, like in JavaScript. It's also safe for user-provided dictionaries

2
  • this is what a Java coder would do (tons of lines for a simple approach :D ) There are better solutions for this.
    – Tony
    Dec 29, 2021 at 13:54
  • @Tony You are free to add an edit or your own answer if there's a better way :) Jan 4, 2022 at 19:00
3

With Python 3.10, you can do:

d = {"a": 1, "b": 2}

match d:
    case {"a": a, "b": b}:
        print(f"A is {a} and b is {b}")

but it adds two extra levels of indentation, and you still have to repeat the key names.

3

(Ab)using the import system

The from ... import statement lets us desctructure and bind attribute names of an object. Of course, it only works for objects in the sys.modules dictionary, so one could use a hack like this:

import sys, types

mydict = {'a':1,'b':2}

sys.modules["mydict"] = types.SimpleNamespace(**mydict)

from mydict import a, b

A somewhat more serious hack would be to write a context manager to load and unload the module:

with obj_as_module(mydict, "mydict_module"):
    from mydict_module import a, b

By pointing the __getattr__ method of the module directly to the __getitem__ method of the dict, the context manager can also avoid using SimpleNamespace(**mydict).

See this answer for an implementation and some extensions of the idea.

One can also temporarily replace the entire sys.modules dict with the dict of interest, and do import a, b without from.

2

Look for other answers as this won't cater to the unexpected order in the dictionary. will update this with a correct version sometime soon.

try this

data = {'a':'Apple', 'b':'Banana','c':'Carrot'}
keys = data.keys()
a,b,c = [data[k] for k in keys]

result:

a == 'Apple'
b == 'Banana'
c == 'Carrot'
2
  • Comments below this answer suggests modifying locals() is discouraged.
    – hatmatrix
    Dec 2, 2021 at 0:37
  • That's right because creating variables from data itself is a security risk. But I believe my code is not doing that.
    – Junaid
    Dec 2, 2021 at 8:16
1

Well, if you want these in a class you can always do this:

class AttributeDict(dict):
    def __init__(self, *args, **kwargs):
        super(AttributeDict, self).__init__(*args, **kwargs)
        self.__dict__.update(self)

d = AttributeDict(a=1, b=2)
1
  • Nice. Thanks, but seems like a way to change the call syntax from d['a'] to d.a? And perhaps adding methods that have implicitly access to these parameters...
    – hatmatrix
    Jun 2, 2010 at 10:04
1

Based on @ShawnFumo answer I came up with this:

def destruct(dict): return (t[1] for t in sorted(dict.items()))

d = {'b': 'Banana', 'c': 'Carrot', 'a': 'Apple' }
a, b, c = destruct(d)

(Notice the order of items in dict)

0

An old topic, but I found this to be a useful method:

data = {'a':'Apple', 'b':'Banana','c':'Carrot'}
for key in data.keys():
    locals()[key] = data[key]

This method loops over every key in your dictionary and sets a variable to that name and then assigns the value from the associated key to this new variable.

Testing:

print(a)
print(b)
print(c)

Output

Apple
Banana
Carrot
1
  • Be aware the locals dictionary is not meant to be modified, see this comment to another answer.
    – Erik
    Apr 16, 2022 at 18:56
-1

I don't know whether it's good style, but

locals().update(params)

will do the trick. You then have a, b and whatever was in your params dict available as corresponding local variables.

2
  • 2
    Please note this may be a big security problem if the 'params' dictionary is user-provided in any way and not properly filtered. Jun 2, 2010 at 6:38
  • 11
    To quote docs.python.org/library/functions.html#locals: Note: The contents of this dictionary should not be modified; changes may not affect the values of local and free variables used by the interpreter. Jun 2, 2010 at 6:51
-3

Since dictionaries are guaranteed to keep their insertion order in Python >= 3.7, that means that it's complete safe and idiomatic to just do this nowadays:

params = {'a': 1, 'b': 2}
a, b = params.values()
print(a)
print(b)

Output:

1
2
5
  • 7
    The issue is that you can't do b, a = params.values(), since it uses order not names.
    – Corman
    Jul 6, 2020 at 6:44
  • 2
    @ruohola That's the issue with this solution. This relies on the order of dictionaries for names, not the names themselves, which is why I downvoted this.
    – Corman
    Jul 6, 2020 at 19:13
  • 1
    And that makes it a bad solution if it relies on order of the keys. itemgetter is the most pythonic way to do this. This won't work on Python 3.6 or below, and because it relies on order, it can be confusing at first.
    – Corman
    Jul 6, 2020 at 21:36
  • 1
    Please, do not use this solution anywhere since it is a source of hard-to-find bugs.
    – SergeyR
    Apr 6, 2021 at 13:03
  • @SergeyR Yes I agree, but it answers OP's concern quite directly But since dictionaries are not ordered, there is no guarantee that params.values() will return values in the order of (a, b).
    – ruohola
    Apr 7, 2021 at 15:14

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