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I have a python dictionary

d = {1: 6, 2: 1, 3: 1, 4: 9, 5: 9, 6: 1}

Since the values in the above dictionary are not unique. I want to group the all the keys of unique values as a list and create a new dictionary as follows:

v = {6:[1], 1:[2, 3, 6], 9: [4, 5]}

Note the keys of new dictionary v should be sorted. I am finding it hard to visualize and implement this dictionary creation. Please suggest me an easy and efficient way to do it.

71
0

Using collections.defaultdict for ease:

from collections import defaultdict

v = defaultdict(list)

for key, value in sorted(d.items()):
    v[value].append(key)

but you can do it with a bog-standard dict too, using dict.setdefault():

v = {}

for key, value in sorted(d.items()):
    v.setdefault(value, []).append(key)

The above sorts keys first; sorting the values of the output dictionary later is much more cumbersome and inefficient.

If anyone would not need the output to be sorted, you can drop the sorted() call, and use sets (the keys in the input dictionary are guaranteed to be unique, so no information is lost):

v = {}

for key, value in d.items():
    v.setdefault(value, set()).add(key)

to produce:

{6: {1}, 1: {2, 3, 6}, 9: {4, 5}}

(that the output of the set values is sorted is a coincidence, a side-effect of how hash values for integers are implemented; sets are unordered structures).

| improve this answer | |
  • 1
    If you go with the defaultdict, but don't want the "default" behavior to continue after you initialize the dict, you can set the default_factory attribute to None. Then your defaultdict will behave like a regular dict in nearly every way. – mgilson Apr 1 '13 at 21:20
  • As a side note, I'm a huge fan of the way you sorted the items and not the values as would be most people's (or at least my) first instinct. +1. – mgilson Apr 1 '13 at 21:26
  • What is the list in 2nd line? It seems it will work by simply having v = defaultdict() – clwen Oct 12 '17 at 22:47
  • 1
    @clwen: no, that wouldn't work. defaultdict() takes a factory function, something that when called, produces a new object to insert into the dictionary when a key does not yet exist. Passing in list means that whenever a key doesn't exist yet, v[value] causes the defaultdict object to call list() and insert the result into the dictionary for that key. If you omit the factory function, defaultdict acts like a regular dictionary and raises a KeyError for missing keys. – Martijn Pieters Oct 13 '17 at 6:47
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If you don't actually need a dict at the end of the day, you could use itertools.groupby:

from itertools import groupby
from operator import itemgetter

for k, v in groupby(sorted(d.items(), key=itemgetter(1)), itemgetter(1)):
    print(k, list(map(itemgetter(0), v)))

Of course, you could use this to construct a dict if you really wanted to:

{
    k: list(map(itemgetter(0), v))
    for k, v in groupby(sorted(d.items(), key=itemgetter(1)), itemgetter(1))
}

But at that point, you're probably better off using Martijn's defaultdict solution.

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