138

I have two dictionaries and I'd like to be able to make them one:

Something like this pseudo-Python would be nice:

dic0 = {'dic0': 0}
dic1 = {'dic1': 1}

ndic = dic0 + dic1
# ndic would equal {'dic0': 0, 'dic1': 1}
3
  • 1
    @Sam Possible problem: {'dic0':0} + {'dic0':1}. What to do?
    – palsch
    Commented Apr 8, 2016 at 18:58
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    @palsch {'dic0':0} + {'dic0':1} should be equivalent to d={'dic0':0}; d.update({'dic0':1}) ?
    – Sam
    Commented Apr 24, 2016 at 13:56
  • 2
    Your syntax with the + operator is supported since Python 3.9, as per PEP 584 Commented Jan 4, 2021 at 16:45

6 Answers 6

210

If you're interested in creating a new dict without using intermediary storage: (this is faster, and in my opinion, cleaner than using dict.items())

dic2 = dict(dic0, **dic1)

Or if you're happy to use one of the existing dicts:

dic0.update(dic1)
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  • 10
    The first line fails if the keys are anything other than strings.
    – Flimm
    Commented Mar 14, 2016 at 15:49
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    @BerryTsakala The problem with + is what happens in case of conflicts ? .update() is properly asymmetric. Commented Dec 12, 2017 at 7:33
  • You can make it terser by replacing 1st example with dic2 = {dic0, **dic1}
    – Hi-Angel
    Commented May 26, 2020 at 14:51
  • @NikanaReklawyks - Could either throw an exception (like 1/0 does) or just accept that it's asymmetric. Other implemented additions of non-numbers are already asymmetric - [1] + [2] is different from [2] + [1] and '1' + '2' is different from '2' + '1'. Commented Sep 6, 2020 at 2:30
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    @BerryTsakala you got your wish with python 3.9 :) But the operator is |, not +. docs.python.org/3/whatsnew/3.9.html
    – Nate Glenn
    Commented Oct 18, 2020 at 12:07
51

Here are quite a few ways to add dictionaries.

You can use Python3's dictionary unpacking feature:

ndic = {**dic0, **dic1}

Note that in the case of duplicates, values from later arguments are used. This is also the case for the other examples listed here.


Or create a new dict by adding both items.

ndic = dict(tuple(dic0.items()) + tuple(dic1.items()))

If modifying dic0 is OK:

dic0.update(dic1)

If modifying dic0 is NOT OK:

ndic = dic0.copy()
ndic.update(dic1)

If all the keys in one dict are ensured to be strings (dic1 in this case, of course args can be swapped)

ndic = dict(dic0, **dic1)

In some cases it may be handy to use dict comprehensions (Python 2.7 or newer),
Especially if you want to filter out or transform some keys/values at the same time.

ndic = {k: v for d in (dic0, dic1) for k, v in d.items()}
0
19
>>> dic0 = {'dic0':0}
>>> dic1 = {'dic1':1}
>>> ndic = dict(list(dic0.items()) + list(dic1.items()))
>>> ndic
{'dic0': 0, 'dic1': 1}
>>>
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    Note that the equivalent syntax for this in Python 3.x is ndic = list(dict(dic0.items()) + list(dic1.items())) since .items() not longer returns a list, but a (iterable)view Commented Jul 10, 2015 at 16:54
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    @BryceGuinta I assume you meant ndic = dict(list(dic0.items()) + list(dic1.items()))
    – dimo414
    Commented Jul 18, 2016 at 4:44
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    @dimo414 Yes, my bad. I can't change it now however. I use ChainMap from collections to achieve this functionality now via dict(ChainMap(dic1, dic0)). However I have had to grab the source code from the chainmap pypi package for Python2.7. Notice how I switched the order of the dicts. In the Vijay's example the rightmost keys' values overwrite the leftmost while ChainMap gets it right and the leftmost keys' values have precedence over the right. Commented Jul 28, 2016 at 22:33
13

You are looking for the update method

dic0.update( dic1 )
print( dic0 ) 

gives

{'dic0': 0, 'dic1': 1}
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  • 8
    Nice, although it modifies dic0. I'm not sure if that is acceptable to the original poster.
    – mseery
    Commented May 14, 2011 at 22:35
7
dic0.update(dic1)

Note this doesn't actually return the combined dictionary, it just mutates dic0.

5

The easiest way to do it is to simply use your example code, but using the items() member of each dictionary. So, the code would be:

dic0 = {'dic0': 0}
dic1 = {'dic1': 1}
dic2 = dict(dic0.items() + dic1.items())

I tested this in IDLE and it works fine. However, the previous question on this topic states that this method is slow and chews up memory. There are several other ways recommended there, so please see that if memory usage is important.

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    FYI, this creates a list of tuples, you'd need to run dict(dic0.items() + dic1.items())
    – bluepnume
    Commented May 14, 2011 at 22:30

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