89

Python dict is a very useful data-structure:

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

d['a'] # get 1

Sometimes you'd also like to index by values.

d[1] # get 'a'

Which is the most efficient way to implement this data-structure? Any official recommend way to do it?

5
  • If you prefer, we can assume that values are immutable as well as keys are. – Juanjo Conti Jul 23 '10 at 13:39
  • 4
    What would you return for this dict: {'a' : 1, 'b': 2, 'A' : 1 } – PaulMcG Jul 23 '10 at 16:49
  • 3
    @PaulMcGuire : I would return {1: ['a', 'A'], 2: 'b'}. See my answer for such a way to do it. – Basj Feb 19 '14 at 22:41
  • 4
    Note to moderator: this is not a duplicate of stackoverflow.com/questions/1456373/two-way-reverse-map. The latter has 1) very vague wording 2) no MCVE 3) only deals with the case of the bijective map (see first comment in this question), which is a lot more restrictive than this actual question, which is more general. So I think marking it as duplicate is here, in this particular case, misleading. If really one should be a duplicate of another, it should be the contrary as this one here covers the general case whereas the other (see answers) doesn't cover the non-bijective case. – Basj Jun 19 '18 at 9:13
  • @Basj It should return {1: {'a', 'A'}, 2: 'b'} – endolith Feb 16 at 1:41
68

Here is a class for a bidirectional dict, inspired by Finding key from value in Python dictionary and modified to allow the following 2) and 3).

Note that :

  • 1) The inverse directory bd.inverse auto-updates itself when the standard dict bd is modified.
  • 2) The inverse directory bd.inverse[value] is always a list of key such that bd[key] == value.
  • 3) Unlike the bidict module from https://pypi.python.org/pypi/bidict, here we can have 2 keys having same value, this is very important.

Code:

class bidict(dict):
    def __init__(self, *args, **kwargs):
        super(bidict, self).__init__(*args, **kwargs)
        self.inverse = {}
        for key, value in self.items():
            self.inverse.setdefault(value,[]).append(key) 

    def __setitem__(self, key, value):
        if key in self:
            self.inverse[self[key]].remove(key) 
        super(bidict, self).__setitem__(key, value)
        self.inverse.setdefault(value,[]).append(key)        

    def __delitem__(self, key):
        self.inverse.setdefault(self[key],[]).remove(key)
        if self[key] in self.inverse and not self.inverse[self[key]]: 
            del self.inverse[self[key]]
        super(bidict, self).__delitem__(key)

Usage example:

bd = bidict({'a': 1, 'b': 2})  
print(bd)                     # {'a': 1, 'b': 2}                 
print(bd.inverse)             # {1: ['a'], 2: ['b']}
bd['c'] = 1                   # Now two keys have the same value (= 1)
print(bd)                     # {'a': 1, 'c': 1, 'b': 2}
print(bd.inverse)             # {1: ['a', 'c'], 2: ['b']}
del bd['c']
print(bd)                     # {'a': 1, 'b': 2}
print(bd.inverse)             # {1: ['a'], 2: ['b']}
del bd['a']
print(bd)                     # {'b': 2}
print(bd.inverse)             # {2: ['b']}
bd['b'] = 3
print(bd)                     # {'b': 3}
print(bd.inverse)             # {2: [], 3: ['b']}
14
  • 2
    Very neat solution of the ambiguous case! – Tobias Kienzler Feb 20 '14 at 11:47
  • 2
    I think this data structure is very useful in many practical problems. – 0xc0de Jul 23 '15 at 16:08
  • 6
    This is phenomenal. It's succinct; it's self-documenting; it's reasonably efficient; it just works. My only quibble would be to optimize the repeated lookups of self[key] in __delitem__() with a single value = self[key] assignment reused for such lookups. But... yeah. That's negligible. Thanks for the pure awesome, Basj! – Cecil Curry Jun 28 '16 at 2:18
  • 1
    How about a Python 3 version? – zelusp Sep 14 '16 at 20:01
  • 1
    I like this answer for the example. The accepted answer is correct still and I think the accepted answer should stay as the accepted answer, but this is a little bit more explicit for defining it yourself, merely because it clearly lays out that in order to reverse the dictionary you must place the reverse's values into a list since there cannot be a one-to-one mapping because a dictionary has a one-to-many relationship with key-to-values. – searchengine27 Feb 17 '17 at 19:20
42

You can use the same dict itself by adding key,value pair in reverse order.

d={'a':1,'b':2}
revd=dict([reversed(i) for i in d.items()])
d.update(revd)
11
  • 5
    +1 A nice, practical solution. Another way to write it: d.update( dict((d[k], k) for k in d) ). – FMc Jul 23 '10 at 20:04
  • 4
    +1 For neat use of reversed(). I'm undecided if it's more readable than the explicit dict((v, k) for (k, v) in d.items()). In any case, you can pass pairs directly to .update: d.update(reversed(i) for i in d.items()). – Beni Cherniavsky-Paskin Aug 14 '12 at 10:50
  • 22
    Note this fails e.g. for d={'a':1, 'b':2, 1: 'b'} – Tobias Kienzler May 29 '13 at 7:38
  • 3
    Slight modification: dict(map(reversed, a_dict.items())). – 0xc0de Jul 23 '15 at 15:55
  • 13
    Adding reverse mappings to the original dictionary is an awful idea. As the above comments demonstrate, doing so is not safe in the general case. Just maintain two separate dictionaries. Since the first two lines of this answer ignoring the trailing d.update(revd) are great, however, I'm still contemplating an upvote. Let's give this some thought. – Cecil Curry Jun 28 '16 at 2:10
36

A poor man's bidirectional hash table would be to use just two dictionaries (these are highly tuned datastructures already).

There is also a bidict package on the index:

The source for bidict can be found on github:

12
  • 1
    2 dicts requires double inserts and deletes. – Juanjo Conti Jul 23 '10 at 13:46
  • 12
    @Juanjo: nearly any bidirectional/reversible hash table will involve "double inserts and deletes", either as part of implementing the structure, or as part of using it. Keeping two indexes is really the only fast way to do it, AFAIK. – Walter Mundt Jul 23 '10 at 13:53
  • 7
    Of course; I meant that take care of the 2 index by hand is the problem. – Juanjo Conti Jul 23 '10 at 14:21
  • 1
    @Basj I think it's correct that it's not accepted since having more than one value means it's not a bijection anymore and is ambiguous for the reverse lookup. – user193130 Dec 11 '14 at 5:26
  • 1
    @Basj Well, I can understand that there would be use cases which would be useful to have more than one value per key, so maybe this type of data structure should exist as a subclass of bidict. However, since a normal dict maps to a single object, I think it makes much more sense for the reverse to be the same as well. (Just to clarify, although the value can be a collection too, I meant that the key of the first dict should be of the same type as the value of the reverse dict) – user193130 Dec 11 '14 at 16:48
4

The below snippet of code implements an invertible (bijective) map:

class BijectionError(Exception):
    """Must set a unique value in a BijectiveMap."""

    def __init__(self, value):
        self.value = value
        msg = 'The value "{}" is already in the mapping.'
        super().__init__(msg.format(value))


class BijectiveMap(dict):
    """Invertible map."""

    def __init__(self, inverse=None):
        if inverse is None:
            inverse = self.__class__(inverse=self)
        self.inverse = inverse

    def __setitem__(self, key, value):
        if value in self.inverse:
            raise BijectionError(value)

        self.inverse._set_item(value, key)
        self._set_item(key, value)

    def __delitem__(self, key):
        self.inverse._del_item(self[key])
        self._del_item(key)

    def _del_item(self, key):
        super().__delitem__(key)

    def _set_item(self, key, value):
        super().__setitem__(key, value)

The advantage of this implementation is that the inverse attribute of a BijectiveMap is again a BijectiveMap. Therefore you can do things like:

>>> foo = BijectiveMap()
>>> foo['steve'] = 42
>>> foo.inverse
{42: 'steve'}
>>> foo.inverse.inverse
{'steve': 42}
>>> foo.inverse.inverse is foo
True
2

Unfortunately, the highest rated answer, bidict does not work.

There are three options:

  1. Subclass dict: You can create a subclass of dict, but beware. You need to write custom implementations ofupdate, pop, initializer, setdefault. The dict implementations do not call __setitem__. This is why the highest rated answer has issues.

  2. Inherit from UserDict: This is just like a dict, except all the routines are made to call correctly. It uses a dict under the hood, in an item called data. You can read the Python Documentation, or use a simple implementation of a by directional list that works in Python 3. Sorry for not including it verbatim: I'm unsure of its copyright.

  3. Inherit from Abstract Base Classes: Inheriting from collections.abc will help you get all the correct protocols and implementations for a new class. This is overkill for a bidirectional dictionary, unless it can also encrypt and cache to a database.

TL;DR -- Use this for your code. Read Trey Hunner's article for details.

1

Something like this, maybe:

import itertools

class BidirDict(dict):
    def __init__(self, iterable=(), **kwargs):
        self.update(iterable, **kwargs)
    def update(self, iterable=(), **kwargs):
        if hasattr(iterable, 'iteritems'):
            iterable = iterable.iteritems()
        for (key, value) in itertools.chain(iterable, kwargs.iteritems()):
            self[key] = value
    def __setitem__(self, key, value):
        if key in self:
            del self[key]
        if value in self:
            del self[value]
        dict.__setitem__(self, key, value)
        dict.__setitem__(self, value, key)
    def __delitem__(self, key):
        value = self[key]
        dict.__delitem__(self, key)
        dict.__delitem__(self, value)
    def __repr__(self):
        return '%s(%s)' % (type(self).__name__, dict.__repr__(self))

You have to decide what you want to happen if more than one key has a given value; the bidirectionality of a given pair could easily be clobbered by some later pair you inserted. I implemented one possible choice.


Example :

bd = BidirDict({'a': 'myvalue1', 'b': 'myvalue2', 'c': 'myvalue2'})
print bd['myvalue1']   # a
print bd['myvalue2']   # b        
3
  • 1
    I'm not sure if this is a problem, but using the above implementation, wouldn't there be issues if the keys and values overlapped? So dict([('a', 'b'), ('b', 'c')]); dict['b'] -> 'c' instead of the key 'a'. – tgray Jul 23 '10 at 15:14
  • 1
    It's not an issue for the OP's example, but might be a good disclaimer to include. – tgray Jul 23 '10 at 15:17
  • How can we do that print bd['myvalue2'] answers b, c (or [b, c], or (b, c), or anything else) ? – Basj Feb 19 '14 at 17:39
0

First, you have to make sure the key to value mapping is one to one, otherwise, it is not possible to build a bidirectional map.

Second, how large is the dataset? If there is not much data, just use 2 separate maps, and update both of them when updating. Or better, use an existing solution like Bidict, which is just a wrapper of 2 dicts, with updating/deletion built in.

But if the dataset is large, and maintaining 2 dicts is not desirable:

  • If both key and value are numeric, consider the possibility of using Interpolation to approximate the mapping. If the vast majority of the key-value pairs can be covered by the mapping function (and its
    reverse function), then you only need to record the outliers in maps.

  • If most of access is uni-directional (key->value), then it is totally ok to build the reverse map incrementally, to trade time for
    space.

Code:

d = {1: "one", 2: "two" }
reverse = {}

def get_key_by_value(v):
    if v not in reverse:
        for _k, _v in d.items():
           if _v == v:
               reverse[_v] = _k
               break
    return reverse[v]

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