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I am trying to write a dictionary comprehension.

I have a dictionary like this one:

main_dict = {
    'A' : {'key1' : 'valueA1', 'key2' : 'valueA2'},
    'B' : {'key2' : 'valueB2', 'key3' : 'valueB3'},
    'C' : {'key3' : 'valueC3', 'key1' : 'valueC1'}}

I want to perform the following logic:

d = {}
for k_outer, v_outer in main_dict.items():
    for k_inner, v_inner in v_outer.items():
        if k_inner in d.keys():
            d[k_inner].append([k_outer, v_inner])
        else:
            d[k_inner] = [[k_outer, v_inner]]

Which yields the following result:

{'key3': [['C', 'valueC3'], ['B', 'valueB3']], 
 'key2': [['A', 'valueA2'], ['B', 'valueB2']], 
 'key1': [['A', 'valueA1'], ['C', 'valueC1']]}

(I know I could use defaultdict(list) but this is just an example)

I want to perform the logic using a dict-comprehension, so far I have the following:

d = {k : [m, v] for m, x in main_dict.items() for k, v in x.items()}

This does not work, it only gives me the following output:

{'key3' : ['B', 'valueB3'],
'key2' : ['B', 'valueB2'],
'key1' : ['C', 'valueC1']}

Which is the last instance found for each inner_key...

I am at a loss of how to perform this nested list-comprehension correctly. I have tried multiple variations, all worse than the last.

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3  
For clarity, could you show us the output you're expecting for your example input? –  Steve Mayne Jan 6 '13 at 11:32
1  
Are you sure putting all of this logic in a dict comprehension is a good idea? Sometimes readability is better than few lines of code. –  pemistahl Jan 6 '13 at 11:45
1  
@PeterStahl You clearly haven't played Code Golf before –  Alex L Jan 6 '13 at 12:04
    
@AlexL Well, if it's just for the sake of playing golf, then it's okay. ;) –  pemistahl Jan 6 '13 at 12:26
    
Why is this tagged "performance"? Are you trying to get the fastest version, or the version that uses the least temporary memory? –  abarnert Jan 6 '13 at 13:07
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4 Answers 4

You can try something like this:

In [61]: main_dict
Out[61]: 
{'A': {'key1': 'valueA1', 'key2': 'valueA2'},
 'B': {'key2': 'valueB2', 'key3': 'valueB3'},
 'C': {'key1': 'valueC1', 'key3': 'valueC3'}}

In [62]: keys=set(chain(*[x for x in main_dict.values()]))

In [64]: keys
Out[64]: set(['key3', 'key2', 'key1'])

In [63]: {x:[[y,main_dict[y][x]] for y in main_dict if x in main_dict[y]] for x in keys}
Out[63]: 
{'key1': [['A', 'valueA1'], ['C', 'valueC1']],
 'key2': [['A', 'valueA2'], ['B', 'valueB2']],
 'key3': [['C', 'valueC3'], ['B', 'valueB3']]}

A more readable solution using dict.setdefault:

In [81]: d={}

In [82]: for x in keys:
    for y in main_dict:
       if x in main_dict[y]:
           d.setdefault(x,[]).append([y,main_dict[y][x]])
   ....:            

In [83]: d
Out[83]: 
{'key1': [['A', 'valueA1'], ['C', 'valueC1']],
 'key2': [['A', 'valueA2'], ['B', 'valueB2']],
 'key3': [['C', 'valueC3'], ['B', 'valueB3']]}
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2  
In other words, leave it as loops. –  Pavel Anossov Jan 6 '13 at 11:45
    
This is an interesting idea - to extract the keys first, it could all be done in one line, but it would still mean iterating over the main_dict keys twice. Whereas the 'long' method I posted above does the whole thing in one pass. I am certain there is a way to do it using dict-comprehension and one-pass efficiently, just need to find it. –  Inbar Rose Jan 6 '13 at 12:45
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Using three dictionary comprehensions to achieve such task, the third dict-comprehension is to combine the first two dicts:

e = {k : [m, v] for m, x in main_dict.items() for k, v in x.items()}
f = {k : [m, v] for m, x in main_dict.items() for k, v in x.items() if [m,v] not in e.values()}
g = {k1 : [m, v] for k1,m in e.items() for k2,v in f.items() if k1==k2}
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1  
You could combine this whole thing into one massive nested comprehension, of course, if you really want to make it impossible for anyone to ever read again. :) –  abarnert Jan 6 '13 at 13:06
    
I write this just to show a pythonic way and the subtlety of dict-comprehension. –  mayaa Jan 6 '13 at 13:09
    
The sample dictionary I posted is just a sample/example, the real dictionary has many more entries, This solution would not work - and if it were to be adapted (i.e. more dictionaries for each entry) it would be very inefficient. –  Inbar Rose Jan 6 '13 at 13:14
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One option is to use itertools.groupby

from itertools import groupby
from operator import itemgetter

main_dict = {
    'A' : {'key1' : 'valueA1', 'key2' : 'valueA2'},
    'B' : {'key2' : 'valueB2', 'key3' : 'valueB3'},
    'C' : {'key3' : 'valueC3', 'key1' : 'valueC1'}}

## Pull inner key, outer key and value and sort by key (prior to grouping)
x = sorted([(k2, [k1, v2]) for k1, v1 in main_dict.items() for k2, v2, in v1.items()])

## Group by key. This creates an itertools.groupby object that can be iterated
## to get key and value iterables
xx = groupby(x, key=itemgetter(0))

for k, g in xx:
    print('{0} : {1}'.format(k, [r[1] for r in list(g)]))

Depending on your data and performance requirements, sorting may not be ideal so it's worth profiling.

Further, it does not result in a dict as specified, but a groupby object. That might be 'dict-like' enough for your needs; Iterating it yields key and iterables.

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But how can I use this data structure like a dictionary? –  Inbar Rose Jan 6 '13 at 13:43
    
Either by iterating is as shown and using the key & value list as required, or by iterating it and putting it into a dict. If you really do need a dict, perhaps this isn't an appropriate solution. –  Rob Cowie Jan 6 '13 at 13:46
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up vote 0 down vote accepted

in the end, this is what i used:

from collections import defaultdict

d = defaultdict(list)
for m, x in main_dict.items():
    for k, v in x.items():
        d[k].append((m, v))
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