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I have two existing dictionaries, and I wish to 'append' one of them to the other. By that I mean that the key,values of the other dictionary should be made into the first dictionary. For example:

orig = {
   'A': 1,
   'B': 2,
   'C': 3,
}

extra = {
   'D': 4,
   'E': 5,
}

dest = # something here involving orig and extra

print dest
{
   'A': 1,
   'B': 2,
   'C': 3,
   'D': 4,
   'E': 5
}

I think this all can be achieved through a for loop (maybe?) but is there some method in the dictionaries or any other module that saves this job for me? The actual dictionaries I'm using are really big...

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5  
A few answers point out orig.update(extra) does the job. Do take note that if extra and orig have overlapping keys, the final value will be taken from extra. For example, d1={1: 1, 2: 2}; d2={2: 'ha!', 3: 3}; d1.update(d2) will result in d1 containing {1: 1, 2: 'ha!', 3: 3}. –  Steven Rumbalski Jan 19 '12 at 18:56
    
Thanks! that is a good point to remember... –  Javier Novoa C. Jan 20 '12 at 20:54
    
possible duplicate of Python "extend" for a dictionary –  dbw May 12 at 23:47
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5 Answers

up vote 54 down vote accepted

You can do

orig.update(extra)

or, if you don't want orig to be modified, make a copy first:

dest = dict(orig)  # or orig.copy()
dest.update(extra)

Note that if extra and orig have overlapping keys, the final value will be taken from extra. For example,

>>> d1 = {1: 1, 2: 2}
>>> d2 = {2: 'ha!', 3: 3}
>>> d1.update(d2)
>>> d1
{1: 1, 2: 'ha!', 3: 3}
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2  
There is dict.copy(), which makes shallow copies like your copy method. –  sleeplessnerd Jan 19 '12 at 18:00
    
I've seen that dict(**orig) idiom before. What's the advantage over dict(orig)? –  DSM Jan 19 '12 at 18:00
2  
Using dict(**orig) will create a new temporary dict that is used as keyword argument for the dict constructor. The constructor will then copy the values from this argument into itself. So you create an additional dictionary with dict(**orig). This is wasteful when the dictionaries are big, as in the original question. –  Martin Geisler Jan 19 '12 at 18:05
    
Though, I just ran a quick empirical test with timeit on the standard CPython (2.7), and dict(**orig) is slightly faster. YMMV, and it depends on your implementation--but I'm not entirely sure the ** idiom in this case really does incur extra overhead in all implementations, perhaps because dict is a built-in type. –  mlefavor Jan 19 '12 at 18:16
10  
This breaks if your keys are not valid keyword arguments. E.g. x = {1: 1}; dict(**x) –  Rob Wouters Jan 19 '12 at 18:40
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dict.update() looks like it will do what you want...

>> orig.update(extra)
>>> orig
{'A': 1, 'C': 3, 'B': 2, 'E': 5, 'D': 4}
>>> 

Perhaps, though, you don't want to update your original dictionary, but work on a copy:

>>> dest = orig.copy()
>>> dest.update(extra)
>>> orig
{'A': 1, 'C': 3, 'B': 2}
>>> dest
{'A': 1, 'C': 3, 'B': 2, 'E': 5, 'D': 4}
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There is the .update() method :)

update([other]) Update the dictionary with the key/value pairs from other, overwriting existing keys. Return None.

update() accepts either another dictionary object or an iterable of key/value pairs (as tuples or other iterables of length two). If keyword arguments are specified, the dictionary is then updated with those key/value pairs: d.update(red=1, blue=2).

Changed in version 2.4: Allowed the argument to be an iterable of key/value pairs and allowed keyword arguments.

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Assuming that you do not want to change orig, you can either do a copy and update like the other answers, or you can create a new dictionary in one step by passing all items from both dictionaries into the dict constructor:

from itertools import chain
dest = dict(chain(orig.items(), extra.items()))

Or without itertools:

dest = dict(list(orig.items()) + list(extra.items()))

Note that you only need to pass the result of items() into list() on Python 3, on 2.x dict.items() already returns a list so you can just do dict(orig.items() + extra.items()).

As a more general use case, say you have a larger list of dicts that you want to combine into a single dict, you could do something like this:

from itertools import chain
dest = dict(chain.from_iterable(map(dict.items, list_of_dicts)))
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1  
Actually I prefer this one as you can 'update' a dictionary in the same expression you want to use it as parameter, like: SomeClass(**dict(args.items()+{'special':a_value,}.items())) –  caya Feb 4 '13 at 7:03
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The answer I want to give is "use collections.ChainMap", but I just discovered that it was only added in Python 3.3: https://docs.python.org/3.3/library/collections.html#chainmap-objects

You can try to crib the class from the 3.3 source though: http://hg.python.org/cpython/file/3.3/Lib/collections/init.py#l763

Here is a less feature-full Python 2.x compatible version (same author): http://code.activestate.com/recipes/305268-chained-map-lookups/

Instead of expanding/overwriting one dictionary with another using dict.merge, or creating an additional copy merging both, you create a lookup chain that searches both in order. Because it doesn't duplicate the mappings it wraps ChainMap uses very little memory, and sees later modifications to any sub-mapping. Because order matters you can also use the chain to layer defaults (i.e. user prefs > config > env).

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