79

I receive a dictionary as input, and would like to to return a dictionary whose keys will be the input's values and whose value will be the corresponding input keys. Values are unique.

For example, say my input is:

a = dict()
a['one']=1
a['two']=2

I would like my output to be:

{1: 'one', 2: 'two'}

To clarify I would like my result to be the equivalent of the following:

res = dict()
res[1] = 'one'
res[2] = 'two'

Any neat Pythonian way to achieve this?

Thanks

  • 1
    See stackoverflow.com/questions/1087694/… for an identical question that has a nice answer if you're using Python 3 – Stephen Edmonds Sep 24 '09 at 12:48
  • @Stephen: see the second most voted answer, it's the same as the accepted one in the question you linked to. The crowd preferred the other answer though... – Roee Adler Sep 25 '09 at 5:36
  • 3
    Python is not perl, python is not ruby. Readability counts. Sparse is better than dense. Given this, all the methods of these answers are just bad™; the one in the question is the best way to go. – o0'. Oct 20 '11 at 12:55
  • 2
    possible duplicate of Python reverse / inverse a mapping – Cory Apr 4 '14 at 22:44

16 Answers 16

122

Python 2:

res = dict((v,k) for k,v in a.iteritems())

Python 3 (thanks to @erik):

res = dict((v,k) for k,v in a.items())
  • 11
    While this seems to be correct, its really good to add an explanation of how it works rather than just the code. – Will Sep 10 '15 at 19:49
  • 57
    For Python3 it would be res = {v:k for k,v in a.items()}. – erik Apr 23 '16 at 22:37
  • 3
    What if values are not unique? Then the keys should be a list... for example: d = {'a':3, 'b': 2, 'c': 2} {v:k for k,v in d.iteritems()} {2: 'b', 3: 'a'} should be {2: ['b','c'], 3: 'a'} – Hanan Shteingart Aug 3 '17 at 22:44
  • 3
    @HananShteingart: the OP's question stated values are unique. Please create a separate question post for your case (and preferably link it here for other people). – liori Aug 4 '17 at 9:17
  • the python2 code works... but the list comprehension is missing the [ and ]. does a list comprehension not require the [ and ]? – Trevor Boyd Smith Nov 29 '18 at 17:37
51
new_dict = dict (zip(my_dict.values(),my_dict.keys()))
  • 4
    Are really values() and keys() guaranteed to have the same ordering? – Lennart Regebro Jul 6 '09 at 16:28
  • 1
    See the ordering note at docs.python.org/library/stdtypes.html#dict.items – Chris Boyle Jul 6 '09 at 16:37
  • 1
    yes, from python.org/dev/peps/pep-3106 The specification implies that the order in which items are returned by .keys(), .values() and .items() is the same (just as it was in Python 2.x), because the order is all derived from the dict iterator (which is presumably arbitrary but stable as long as a dict isn't modified). but this answer needs call my_dict twice(one for values, one for keys). maybe this is not ideal. – sunqiang Jul 6 '09 at 16:39
  • 4
    Yes, this answer iterates through the dict twice. sunqiang's answer is preferable for a large dictionary as it only requires one iteration. – Carl Meyer Jul 7 '09 at 17:59
  • @Carl Meyer: agree, also, he's using itertools which are a lot better for big datasets. although i wonder if the final dict() call is also streaming, or if it first assembles the whole pairs list – Javier Jul 7 '09 at 19:26
44

From Python 2.7 on, including 3.0+, there's an arguably shorter, more readable version:

>>> my_dict = {'x':1, 'y':2, 'z':3}
>>> {v: k for k, v in my_dict.items()}
{1: 'x', 2: 'y', 3: 'z'}
30
In [1]: my_dict = {'x':1, 'y':2, 'z':3}

In [2]: dict((value, key) for key, value in my_dict.iteritems())
Out[2]: {1: 'x', 2: 'y', 3: 'z'}
  • 3
    Not in the original question, I'm just curious what will happen if you had duplicate values in the original dictionary and then swap key/values with this method? – Andre Miller Jul 6 '09 at 15:49
  • 2
    @Andre Miller: It takes the last occurrence of the particular key: dict(((1,3),(1,2))) == {1:2} – balpha Jul 6 '09 at 15:51
  • 2
    duplicates will get overwritten with the last encountered dupe. – Christopher Jul 6 '09 at 15:52
  • 2
    @Andre Miller: And because d.items() returns items in an arbitrary order you get an arbitrary key for duplicate values. – Ants Aasma Jul 6 '09 at 15:53
  • I think that it will takes the last key, value pair that it found. It's like a['x'] = 3. Then you set a['x'] = 4. – riza Jul 6 '09 at 15:53
27

You can make use of dict comprehensions:

res = {v: k for k, v in a.iteritems()}

Edited: For Python 3, use a.items() instead of a.iteritems(). Discussions about the differences between them can be found in iteritems in Python on SO.

18

You could try:

d={'one':1,'two':2}
d2=dict((value,key) for key,value in d.iteritems())
d2
  {'two': 2, 'one': 1}

Beware that you cannot 'reverse' a dictionary if

  1. More than one key shares the same value. For example {'one':1,'two':1}. The new dictionary can only have one item with key 1.
  2. One or more of the values is unhashable. For example {'one':[1]}. [1] is a valid value but not a valid key.

See this thread on the python mailing list for a discussion on the subject.

  • liori already provided that solution, but thanks – Roee Adler Jun 23 '09 at 11:04
  • +1 I added a note about values being unique, thanks – Roee Adler Jun 23 '09 at 11:05
  • Also +1 about the note about making sure the values in the original dict are unique ; otherwise you'll get overwrites in the 'reversed' dict...and this (I just found this to my cost) can cause tricky bugs in your code! – monojohnny Apr 6 '11 at 18:45
14
new_dict = dict( (my_dict[k], k) for k in my_dict)

or even better, but only works in Python 3:

new_dict = { my_dict[k]: k for k in my_dict}
  • 2
    Actually Dict Comprehensions (PEP 274) work with Python 2.7 as well. – Arseny Nov 11 '13 at 10:53
13

res = dict(zip(a.values(), a.keys()))

  • 4
    dict does not guarantee that its values() and keys() will return elements in the same order. Also, keys(), values() and zip() return a list, where an iterator would be sufficient. – liori Jun 23 '09 at 11:01
  • You are right. Your answer is more efficient. – pkit Jun 23 '09 at 11:05
  • 17
    @liori: You're wrong. dict guarantees that its values() and keys() WILL be on the same order, if you don't modify the dict between calls to values() and keys() of course. The documentation states that here: (read the "Note" part: docs.python.org/library/stdtypes.html#dict.items) "If items(), keys(), values(), iteritems(), iterkeys(), and itervalues() are called with no intervening modifications to the dictionary, the lists will directly correspond." – nosklo Jun 23 '09 at 11:12
  • 1
    Ok, then I am wrong... I haven't checked the online docs. Thank you for pointing this. – liori Jun 23 '09 at 11:16
  • 1
    nosklo, what if another thread modifies the dictionary? – liori Jun 23 '09 at 11:32
10

Another way to expand on Ilya Prokin's response is to actually use the reversed function.

dict(map(reversed, my_dict.items()))

In essence, your dictionary is iterated through (using .items()) where each item is a key/value pair, and those items are swapped with the reversed function. When this is passed to the dict constructor, it turns them into value/key pairs which is what you want.

9

The current leading answer assumes values are unique which is not always the case. What if values are not unique? You will loose information! For example:

d = {'a':3, 'b': 2, 'c': 2} 
{v:k for k,v in d.iteritems()} 

returns {2: 'b', 3: 'a'}.

The information about 'c' was completely ignored. Ideally it should had be something like {2: ['b','c'], 3: ['a']}. This is what the bottom implementation does.

def reverse_non_unique_mapping(d):
    dinv = {}
    for k, v in d.iteritems():
        if v in dinv:
            dinv[v].append(k)
        else:
            dinv[v] = [k]
    return dinv
  • this should be the correct answer since it covers a more general case – Leon Rai Mar 3 at 19:00
6

Suggestion for an improvement for Javier answer :

dict(zip(d.values(),d))

Instead of d.keys() you can write just d, because if you go through dictionary with an iterator, it will return the keys of the relevant dictionary.

Ex. for this behavior :

d = {'a':1,'b':2}
for k in d:
 k
'a'
'b'
2
dict(map(lambda x: x[::-1], YourDict.items()))

.items() returns a list of tuples of (key, value). map() goes through elements of the list and applies lambda x:[::-1] to each its element (tuple) to reverse it, so each tuple becomes (value, key) in the new list spitted out of map. Finally, dict() makes a dict from the new list.

  • Can you explain how this works? – Will Aug 7 '15 at 22:25
  • .items() returns a list of tuples (key, value). map() goes through elements of the list and applies lambda x:[::-1] to each its element (tuple) to reverse it, so each tuple becomes (value, key) in the new list spitted out of map. Finally, dict() makes a dict from the new list. – Ilya Prokin Sep 10 '15 at 19:27
2

Can be done easily with dictionary comprehension:

{d[i]:i for i in d}
1

Using loop:-

newdict = {} #Will contain reversed key:value pairs.

for key, value in zip(my_dict.keys(), my_dict.values()):
    # Operations on key/value can also be performed.
    newdict[value] = key
1

If you're using Python3, it's slightly different:

res = dict((v,k) for k,v in a.items())
1

Adding an in-place solution:

>>> d = {1: 'one', 2: 'two', 3: 'three', 4: 'four'}
>>> for k in list(d.keys()):
...     d[d.pop(k)] = k
... 
>>> d
{'two': 2, 'one': 1, 'four': 4, 'three': 3}

In Python3, it is critical that you use list(d.keys()) because dict.keys returns a view of the keys. If you are using Python2, d.keys() is enough.

protected by Mark Rotteveel Jun 22 at 15:27

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