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I want to make a 2d dictionary with multiple keys per value. I do not want to make a tuple a key. But rather make many keys that will return the same value.

I know how to make a 2d dictionary using defaultdict:

from collections import defaultdict
a_dict = defaultdict(dict)

a_dict['canned_food']['spam'] = 'delicious'

And I can make a tuple a key using

a_dict['food','canned_food']['spam'] = 'delicious'

But this does not allow me to do something like

print a_dict['canned_food]['spam']

Because 'canned_food' is not a key the tuple ['food','canned_food'] is the key.

I have learned that I can simply set many to same value independently like:

a_dict['food']['spam'] = 'delicious'
a_dict['canned_food']['spam'] = 'delicious'

But this becomes messy with a large number of keys. In the first dimension of dictionary I need ~25 keys per value. Is there a way to write the dictionary so that any key in the tuple will work?

I have asked this question before but was not clear on what I wanted so I am reposting. Thank you in advance for any help.

share|improve this question
1  
Technically, you are making a tuple a key, not a list. –  Lattyware Nov 12 '12 at 0:24
    
It's a little unclear how you want this to act. Can a value be in multiple keys? –  Lattyware Nov 12 '12 at 0:30
    
Yes a single value will have multiple keys. –  Keith Nov 12 '12 at 0:31
    
Sorry, I was unclear what I meant there, what I meant was if you have tuples of keys (where they all refer to the same item), can those tuples potentially have the same 'subkeys'? E.g: ('food', 'canned_food'), and ('canned_food', 'canned_beans') both being keys. If so, how should they behave? –  Lattyware Nov 12 '12 at 0:32
    
I think I understand what you are getting at. The keys in the first dimension of the dictionary will always be different then the keys in the second dimension of the dictionary. It is hierarchy. I want to assign a value to something if it is one category and also in a certain subcategory. My problem is that I have many category all with the same subcategory. –  Keith Nov 12 '12 at 0:40

2 Answers 2

up vote 4 down vote accepted

Here is a possible solution:

from collections import Iterable

class AliasDefaultDict():
    def __init__(self, default_factory, initial=[]):
        self.aliases = {}
        self.data = {}
        self.factory = default_factory
        for aliases, value in initial:
            self[aliases] = value

    @staticmethod
    def distinguish_keys(key):
        if isinstance(key, Iterable) and not isinstance(key, str):
            return set(key)
        else:
            return {key}

    def __getitem__(self, key):
        keys = self.distinguish_keys(key)
        if keys & self.aliases.keys():
            return self.data[self.aliases[keys.pop()]]
        else:
            value = self.factory()
            self[keys] = value
            return value

    def __setitem__(self, key, value):
        keys = self.distinguish_keys(key)
        if keys & self.aliases.keys():
            self.data[self.aliases[keys.pop()]] = value
        else:
            new_key = object()
            self.data[new_key] = value
            for key in keys:
                self.aliases[key] = new_key
            return value

    def __repr__(self):
        representation = defaultdict(list)
        for alias, value in self.aliases.items():
            representation[value].append(alias)
        return "AliasDefaultDict({}, {})".format(repr(self.factory), repr([(aliases, self.data[value]) for value, aliases in representation.items()]))

Which can be used like so:

>>> a_dict = AliasDefaultDict(dict)
>>> a_dict['food', 'canned_food']['spam'] = 'delicious'
>>> a_dict['food']
{'spam': 'delicious'}
>>> a_dict['canned_food']
{'spam': 'delicious'}
>> a_dict
AliasDefaultDict(<class 'dict'>, [(['food', 'canned_food'], {'spam': 'delicious'})])

Note there are some edge cases with undefined behavior - such as using the same key for multiple aliases. I feel this makes this data type pretty awful for general use, and I'd suggest that you may be better off changing your program not to need this kind of overly convoluted structure instead.

Also note this solution is for 3.x, under 2.x, you will want to swap out str for basestring, and self.aliases.keys() for self.aliases.viewkeys().

share|improve this answer
    
yup............ –  Lucas Nov 12 '12 at 1:11
    
Thank you that seems to work nicely. I did have to change & to and in line 13 for it to work. I don't really understand though, I will have to look at the code carefully, I am just starting out with python. –  Keith Nov 12 '12 at 1:23
1  
& and and are different, and not equivalent here. The issue is probably you are using 2.x, while I am on 3.x - in that case, the trick is to have self.aliases.viewkeys() instead, to make it work. What I am doing there is set intersection, and the list that 2.x returns from keys() isn't set-like and so it will fail. –  Lattyware Nov 12 '12 at 1:28
    
Sorry for my ignorance. So I changed self.aliases.keys(): to self.aliases.viewkeys(): but i have an error: Traceback (most recent call last): File "/Users/keithfritzsching/Text-3.py", line 30, in <module> a_dict = AliasDefaultDict() TypeError: __init__() takes exactly 2 arguments (1 given) –  Keith Nov 12 '12 at 1:39
1  
Like a collections.defaultdict, you need to pass the default value function. In your case, dict. Sorry, I didn't update my example. –  Lattyware Nov 12 '12 at 1:41

Does this help at all?

class MultiDict(dict):
    # define __setitem__ to set multiple keys if the key is iterable
    def __setitem__(self, key, value):
        try:
            # attempt to iterate though items in the key
            for val in key:
                dict.__setitem__(self, val, value)
        except:
            # not iterable (or some other error, but just a demo)
            # just set that key
            dict.__setitem__(self, key, value)



x = MultiDict()

x["a"]=10
x["b","c"] = 20

print x

The output is

{'a': 10, 'c': 20, 'b': 20}
share|improve this answer
    
This won't work as the asker isn't assigning to the keys, he is assigning to a dictionary under the keys. Also, why iterate over key.__iter__() instead of key directly, and why the casual except: - catching all exceptions is always a bad idea. –  Lattyware Nov 12 '12 at 0:46
    
Yeah, its hacky, but was a suggestion to be implemented better if it was sensible. But yes, point accepted, it's not the right answer. One difficulty if you use a condenced representation is that you might end up with duplicate keys –  Lucas Nov 12 '12 at 0:56
    
Actually, I think it solves the problem when the value is another dictionary –  Lucas Nov 12 '12 at 1:03

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