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So I've got a comprehension to the effect of:

dict((x.key, x.value) for x in y)

The problem, of course, is that if there's multiple x.keys with the same value, they get collapsed with the last x.value with that particular x.key as the only surviving member. I want to actually make the values of the resulting dict a list:

{
    'key1': ['value1'],
    'key2': ['value2', 'value3', 'value4'],
    'key3': ['value5'],
    # etc.
}

Is this logic possible with a comprehension?

share|improve this question
up vote 16 down vote accepted

You can add the elements one by one to a dictionary that contains empty lists by default:

import collections

result_dict = collections.defaultdict(list)
for x in y:
    result_dict[x.key].append(x.value)

You can also do something very similar without having to use the collections module:

result_dict = {}
for x in y:
    result_dict.setdefault(x.key, []).append(x.value)

but this is arguably slightly less legible.

An equivalent, more legible (no need to "parse" the less common setdefault) but more pedestrian, base Python approach is:

result_dict = {}
for x in y:
    if x.key not in y:
        result_dict[x.key] = []
    result_dict[x.key].append(x.value)

The first solution is clearly the preferred one, as it is at the same time concise, legible, and fast.

share|improve this answer
    
From the docs, I presume it's safe to treat defaultdict exactly as a dict after the fact? Also, in your second example, the method is actually setdefault not set_default. Anyways, I think both methods are equally legible, honestly, so it really boils down to if it's better to have a true-blue dict than a defaultdict. – Chris Pratt Jul 22 '11 at 20:11
1  
You want a defaultdict. It's a first-class, does-everything-else-the-same, real honest-to-goodness dictionary. No "safe to treat" hand-wringing. It is a dict with a different __getitem__. The setdefault version is less good for this application. – S.Lott Jul 22 '11 at 20:18
    
@chrisdpratt: Thanks for the typo fix. Yeah, defaultdict can be treated pretty much like dict. This only thing I can think of from the top of my head is that any item access result_dict[…] will create a new key if the key does not exist. Most of the time, this is not a problem, indeed. – EOL Jul 22 '11 at 20:21
    
In this application, I don't think it will be. I won't need to really access the keys directly, just iterate over the set. – Chris Pratt Jul 22 '11 at 20:23

Nope. You cannot do this in a comprehension.

But you can use itertools.groupby.

share|improve this answer
    
I think EOL's solution is more straight-forward so far, but +1 for creativity ;). – Chris Pratt Jul 22 '11 at 20:14

I'm not saying it's the right thing to do, but, just out of sheer intellectual curiosity..

You can use itertools.groupby and lambda to do it in one dict comprehension, if that's what you really want to do: (where l is the list of tuples you want to make a dict out of:

dict((k, [v[1] for v in vs]) for (k, vs) in itertools.groupby(l, lambda x: x[0]))
share|improve this answer
2  
You need to sort l by key first if you want it to work. – tomasz Jul 22 '11 at 20:27
    
groupby() requires the keys to be sorted, if you want it to work as you intend. – EOL Jul 22 '11 at 20:29
    
I see that now, oh well, it was only a curiosity anyway! – Hoons Jul 22 '11 at 20:44
    
@Hoons I upvote because I first believe that your expression was wrong, but I realized that it's OK. I apparently still don't master groupby's functionning. Though, this solution with groupby isn't the better for this problem IMO. – eyquem Jul 25 '11 at 9:41
    
The 'functional programming' version of the solution with groupby is: dict(map(lambda (k,g): (k,map(itemgetter(1),tuple(g))) ,groupby(sorted(map(lambda x: (x.key, x.value), y)),key=itemgetter(0)))) Ouch ! – eyquem Jul 25 '11 at 9:51

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