197

This question already has an answer here:

Say I have three dicts

d1={1:2,3:4}
d2={5:6,7:9}
d3={10:8,13:22}

How do I create a new d4 that combines these three dictionaries? i.e.:

d4={1:2,3:4,5:6,7:9,10:8,13:22}

marked as duplicate by Paul, depa, Niall C., femtoRgon, Chris Forrence Sep 10 '13 at 20:56

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 4
    All the answers below are garbage. This is one of the few cases where the "original" question (stackoverflow.com/a/26853961/703382 ) has up to date answers while this duplicate doesn't. – Navin May 13 '18 at 2:29
  • 1
    @Navin, thanks for pointing me to correct answer. – Ash Jul 4 at 0:28
234
  1. Slowest and doesn't work in Python3: concatenate the items and call dict on the resulting list:

    $ python -mtimeit -s'd1={1:2,3:4}; d2={5:6,7:9}; d3={10:8,13:22}' \
    'd4 = dict(d1.items() + d2.items() + d3.items())'
    
    100000 loops, best of 3: 4.93 usec per loop
    
  2. Fastest: exploit the dict constructor to the hilt, then one update:

    $ python -mtimeit -s'd1={1:2,3:4}; d2={5:6,7:9}; d3={10:8,13:22}' \
    'd4 = dict(d1, **d2); d4.update(d3)'
    
    1000000 loops, best of 3: 1.88 usec per loop
    
  3. Middling: a loop of update calls on an initially-empty dict:

    $ python -mtimeit -s'd1={1:2,3:4}; d2={5:6,7:9}; d3={10:8,13:22}' \
    'd4 = {}' 'for d in (d1, d2, d3): d4.update(d)'
    
    100000 loops, best of 3: 2.67 usec per loop
    
  4. Or, equivalently, one copy-ctor and two updates:

    $ python -mtimeit -s'd1={1:2,3:4}; d2={5:6,7:9}; d3={10:8,13:22}' \
    'd4 = dict(d1)' 'for d in (d2, d3): d4.update(d)'
    
    100000 loops, best of 3: 2.65 usec per loop
    

I recommend approach (2), and I particularly recommend avoiding (1) (which also takes up O(N) extra auxiliary memory for the concatenated list of items temporary data structure).

  • 7
    I don't understand why d4 = dict(d1, **dict(d2, **d3)) isn't faster than #2, but it isn't. – Robert Rossney Nov 23 '09 at 18:29
  • 13
    1 above is best if working on small dicts as it is clearer in my opinion. – Baz Feb 28 '12 at 20:13
  • 3
    Just stumbled on this thread and I am consistently getting ~0.2 usec faster results using d4 = d1.copy(); d4.update(d2, **d3) than d4 = dict(d1, **d2); d4.update(d3). I know this is old but I thought I'd post my results. – Nolen Royalty Apr 4 '12 at 1:19
  • 36
    Unless all keys are known to be strings, option 2 is an abuse of a Python 2 implementation detail (the fact that some builtins implemented in C bypassed the expected checks on keyword arguments). In Python 3 (and in PyPy), option 2 will fail with non-string keys. – Carl Meyer Mar 30 '13 at 23:09
  • 10
    I would add that d1.items() + d2.items() doesn't works in Python 3. – Francisco Couzo Jan 10 '17 at 17:00
105
d4 = dict(d1.items() + d2.items() + d3.items())

alternatively (and supposedly faster):

d4 = dict(d1)
d4.update(d2)
d4.update(d3)

Previous SO question that both of these answers came from is here.

  • Instead of d4 = dict(d1) one could use d4 = copy(d1). – Georg Schölly Nov 23 '09 at 7:49
  • 1
    @ds: That appears not to work. Perhaps you meant from copy import copy; d4 = copy(d1) or perhaps d4 = d1.copy(). – John Machin Nov 23 '09 at 9:05
  • 13
    First version doesn't work on Python3. – Superbest Feb 6 '15 at 3:37
  • Maybe d4 = d1.copy() – John Carrell Oct 16 '15 at 19:15
  • 1
    It does work in Python 3, but you have to cast the dict_items objects to real list objects. This is another case where Python 3 prioritised minor performance optimisations over simplicity and ease of use. – Carl Smith Apr 12 '17 at 13:26
54

You can use the update() method to build a new dictionary containing all the items:

dall = {}
dall.update(d1)
dall.update(d2)
dall.update(d3)

Or, in a loop:

dall = {}
for d in [d1, d2, d3]:
  dall.update(d)
  • 1
    update does not build a new dictionary. It (as expected) updates the original one. – A.J.Rouvoet Feb 6 '13 at 17:30
  • 4
    @A.J.Rouvoet: "The original one" in this case is a brand new empty dictionary in dall. This new dictionary gets repeatedly updated to contain all the elements. It's intentional that dall is changed. – sth Feb 6 '13 at 17:38
  • 1
    Ah, my comment was purely on the way you phrased the first sentence. It suggested something that isn't the case. Although I admit a down vote may have been a bit harsh. – A.J.Rouvoet Feb 6 '13 at 22:09
  • logically using update we can create new dictionary by updating other and if we do not need the previous dic we can delete them using del d1 in for loop . – Jay Oct 29 '17 at 16:16
23

Use the dict constructor

d1={1:2,3:4}
d2={5:6,7:9}
d3={10:8,13:22}

d4 = reduce(lambda x,y: dict(x, **y), (d1, d2, d3))

As a function

from functools import partial
dict_merge = partial(reduce, lambda a,b: dict(a, **b))

The overhead of creating intermediate dictionaries can be eliminated by using thedict.update() method:

from functools import reduce
def update(d, other): d.update(other); return d
d4 = reduce(update, (d1, d2, d3), {})
22

Here's a one-liner (imports don't count :) that can easily be generalized to concatenate N dictionaries:

Python 2.6+

from itertools import chain
dict(chain.from_iterable(d.iteritems() for d in (d1, d2, d3))

Output:

>>> from itertools import chain
>>> d1={1:2,3:4}
>>> d2={5:6,7:9}
>>> d3={10:8,13:22}
>>> dict(chain.from_iterable(d.iteritems() for d in (d1, d2, d3)))
{1: 2, 3: 4, 5: 6, 7: 9, 10: 8, 13: 22}

Generalized to concatenate N dicts:

from itertools import chain
def dict_union(*args):
    return dict(chain.from_iterable(d.iteritems() for d in args))

Python 3

from itertools import chain
dict(chain.from_iterable(d.items() for d in (d1, d2, d3)))

and:

from itertools import chain
def dict_union(*args):
    return dict(chain.from_iterable(d.items() for d in args))

I'm a little late to this party, I know, but I hope this helps someone.

  • 2
    imports do count. but the solution here is still interesting – javadba Jun 18 '17 at 16:18
  • for python 3.6 it should be d.items() instead of d.iteritems(). thanks for your contribution! – fang_dejavu Jan 4 '18 at 20:30
  • Just a detail for perfectionists, first version for Python3 is missing a closing parenthesis. – sandro scodelller Apr 16 '18 at 9:04
  • @sandroscodelller Thanks! Fixed. – ron rothman Apr 16 '18 at 12:46

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