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I'm doing this switchboard thing in python where I need to keep track of who's talking to whom, so if Alice --> Bob, then that implies that Bob --> Alice.

Yes, I could populate two hash maps, but I'm wondering if anyone has an idea to do it with one.

Or suggest another data structure.

There are no multiple conversations. Let's say this is for a customer service call center, so when Alice dials into the switchboard, she's only going to talk to Bob. His replies also go only to her.

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3  
note that you are describing a bijective map. –  Nick Dandoulakis Sep 21 '09 at 19:47
1  
If Alice is talking to Bob, I take it that she can't also be talking to Charles; nor can Bob be talking to anyone else? Also, how many people and how many conversations can you have at any given time? –  system PAUSE Sep 21 '09 at 20:15
    
Nah... not on my switchboard. Any message that alice sends me will have to go to Bob. Its just I'll be routing thousands of simultaneous conversations. But each person only talks to one other person at a time. –  Sudhir Jonathan Sep 21 '09 at 20:31
    
Perhaps what you need is a Conversation class which has attributes including operator_id and customer_id, plus two maps: operator_id -> conversation, and customer_id -> conversation. –  John Machin Sep 22 '09 at 2:30
    
No... I just need to route the customer's messages to the operator and vice versa... not even storing the conversations in any way. –  Sudhir Jonathan Sep 22 '09 at 5:42
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10 Answers

up vote 28 down vote accepted

I know I'm really late to the party, but you can create your own dictionary type by subclassing dict and adding the logic that you want. Here's a basic example:

class TwoWayDict(dict):
    def __setitem__(self, key, value):
        # Remove any previous connections with these values
        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):
        dict.__delitem__(self, self[key])
        dict.__delitem__(self, key)

    def __len__(self):
        """Returns the number of connections"""
        # The int() call is for Python 3
        return int(dict.__len__(self) / 2)

And it works like so:

>>> d = TwoWayDict()
>>> d['foo'] = 'bar'
>>> d['foo']
'bar'
>>> d['bar']
'foo'
>>> len(d)
1
>>> del d['foo']
>>> d['bar']
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
KeyError: 'bar'

I'm sure I didn't cover all the cases, but that should get you started.

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1  
Better late than never. I actually like this idea the best. –  Sudhir Jonathan Nov 7 '12 at 19:09
2  
@SudhirJonathan: You can go much further with this idea--for instance, add an .add method so that you can do things like d.add('Bob', 'Alice') instead of using the syntax I showed. I would also include some error handling. But you get the basic idea. :) –  Sasha Chedygov Nov 7 '12 at 22:46
    
I guess this falls under those additions, but it'd be helpful to delete old key pairs when setting new ones (d['foo'] = 'baz' would need to additionally remove the bar key). –  Bird Jaguar IV Jan 29 '13 at 19:10
4  
Note that this only works if keys and values never coincide –  Tobias Kienzler May 28 '13 at 13:39
    
@TobiasKienzler: You are correct, but this was listed as an assumption in the question. –  Sasha Chedygov May 28 '13 at 17:28
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In your special case you can store both in one dictionary:

relation = {}
relation['Alice'] = 'Bob'
relation['Bob'] = 'Alice'

Since what you are describing is a symmetric relationship. A -> B => B -> A

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1  
Hmm... yeah, I like this one the best. Was trying to avoid making two entries, but this is the best idea so far. –  Sudhir Jonathan Sep 21 '09 at 20:32
1  
Still think a two way map ought to be possible :-/ –  Sudhir Jonathan Sep 21 '09 at 20:37
    
If it has to be efficient, then under the covers you need both keys to be indexed in some index data structure — whether that's a hash, a sorted list, a binary tree, a trie, a suffix array full of sistrings, or something even more exotic. The simple way to do that in Python is to use a hash. –  Kragen Javier Sitaker Sep 22 '09 at 19:32
    
@SudhirJonathan If you prefer a truly two way map, have a look at bidict as mentioned e.g. in this question - note the performance issues discussed by Aya in the comments on my dupe question though. –  Tobias Kienzler May 29 '13 at 7:16
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Two hash maps is actually probably the fastest-performing solution assuming you can spare the memory. I would wrap those in a single class - the burden on the programmer is in ensuring that two the hash maps sync up correctly.

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+1, That's what bidict basically does, plus sugar for accessing the inverse mapping by using mydict[:value] to obtain key (at the cost of some performance) –  Tobias Kienzler May 29 '13 at 7:18
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I would just populate a second hash, with

reverse_map = dict((reversed(item) for item in forward_map.items()))
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2  
Got some extra brackets in there: reverse_map = dict(reversed(item) for item in forward_map.items()) –  drozzy Dec 12 '11 at 17:30
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You have two separate issues.

  1. You have a "Conversation" object. It refers to two Persons. Since a Person can have multiple conversations, you have a many-to-many relationship.

  2. You have a Map from Person to a list of Conversations. A Conversion will have a pair of Persons.

Do something like this

from collections import defaultdict
switchboard= defaultdict( list )

x = Conversation( "Alice", "Bob" )
y = Conversation( "Alice", "Charlie" )

for c in ( x, y ):
    switchboard[c.p1].append( c )
    switchboard[c.p2].append( c )
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No, there is really no way to do this without creating two dictionaries. How would it be possible to implement this with just one dictionary while continuing to offer comparable performance?

You are better off creating a custom type that encapsulates two dictionaries and exposes the functionality you want.

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Here is a simple bijective Dictionary implementation, although I don't know if it will meet your performance requirements.

(Link from this blog article on boost Bimap for Python, which has some nice discussion of the topic.)

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The kjbuckets C extension module provides a "graph" data structure which I believe gives you what you want.

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Sorry I didn't mention it, but its on app engine... so no C extensions. –  Sudhir Jonathan Sep 22 '09 at 5:42
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You may be able to use a DoubleDict as shown in recipe 578224 on the Python Cookbook.

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Another possible solution is to implement a subclass of dict, that holds the original dictionary and keeps track of a reversed version of it. Keeping two seperate dicts can be useful if keys and values are overlapping.

class TwoWayDict(dict):
    def __init__(self, my_dict):
        dict.__init__(self, my_dict)
        self.rev_dict = {v : k for k,v in my_dict.iteritems()}

    def __setitem__(self, key, value):
        dict.__setitem__(self, key, value)
        self.rev_dict.__setitem__(value, key)

    def pop(self, key):
        self.rev_dict.pop(self[key])
        dict.pop(self, key)

    # The above is just an idea other methods
    # should also be overridden. 

Example:

>>> d = {'a' : 1, 'b' : 2} # suppose we need to use d and its reversed version
>>> twd = TwoWayDict(d)    # create a two-way dict
>>> twd
{'a': 1, 'b': 2}
>>> twd.rev_dict
{1: 'a', 2: 'b'}
>>> twd['a']
1
>>> twd.rev_dict[2]
'b'
>>> twd['c'] = 3    # we add to twd and reversed version also changes
>>> twd
{'a': 1, 'c': 3, 'b': 2}
>>> twd.rev_dict
{1: 'a', 2: 'b', 3: 'c'}
>>> twd.pop('a')   # we pop elements from twd and reversed  version changes
>>> twd
{'c': 3, 'b': 2}
>>> twd.rev_dict
{2: 'b', 3: 'c'}
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