10

I have three lists as:

z1 = ['A', 'A', 'B', 'B']
z2 = ['k1', 'k2', 'k1', 'k2']
z3 = ['v1', 'v2', 'v3', 'v4']

and when I write:

print(dict(zip(z2, z3)))

this is my output:

{'k2': 'v4', 'k1': 'v3'}

And I expect this:

{'A':{'k1': 'v1', 'k2': 'v2'} , 'B':{'k1': 'v3', 'k2': 'v4'}}

Could you please tell me how can I get my expected result?

8
  • 1
    @akozi I would guess it's because OP's "attempt" isn't really an attempt at a solution.
    – cs95
    Dec 20, 2018 at 15:04
  • 1
    Is your question "why does dict(zip(z2, z3)) not produce the desired output" or "how to produce the desired output"? Dec 20, 2018 at 15:07
  • 2
    The question is pretty obviously spelled out in the last line. I'm willing to stretch to assume the OP knows that the lists can be zipped together in some fashion to create a dict, but cannot figure out how to deal with the nesting aspects.
    – chepner
    Dec 20, 2018 at 15:10
  • 1
    if it's a duplicate it will be very difficult to find. Dec 20, 2018 at 15:11
  • 1
    @chepner Yes exactly I knew I can zip lists but I just thought it's applicable only on 2 lists.
    – Braiano
    Dec 20, 2018 at 15:14

3 Answers 3

17

The function zip() can accept more than two iterables. So you can use zip(z1, z2, z3) instead of zip(z2, z3). However, you still need to group the items since simply wrapping dict() will not work as it can't handle nested dictionaries needed for the 3-tuples.

To group the items correctly, I would use a collections.defaultdict():

from collections import defaultdict

z1 = ['A', 'A', 'B', 'B']
z2 = ['k1', 'k2', 'k1', 'k2']
z3 = ['v1', 'v2', 'v3', 'v4']

d = defaultdict(dict)
for x, y, z in zip(z1, z2, z3):
    d[x][y] = z

print(d)
# defaultdict(<class 'dict'>, {'A': {'k1': 'v1', 'k2': 'v2'}, 'B': {'k1': 'v3', 'k2': 'v4'}})

The above works because defaultdict(dict) initializes a dictionary for non-existent keys. It handles the dictionary creation for keys for you.

Additionally, If you wrap the end result with dict:

print(dict(d))
# {'A': {'k1': 'v1', 'k2': 'v2'}, 'B': {'k1': 'v3', 'k2': 'v4'}}

Note: defaultdict is just a subclass of dict, so you can treat it the same as a normal dictionary.

1
  • 1
    someone is having a bad day probably. If this person feels that this is a dupe and should not be answered, they should speak out, I'll close Dec 20, 2018 at 15:10
4

For the sake of completeness, you can use dict.setdefault, avoiding the import at the cost of a tiny overhead of creating and returning an empty dictionary at each iteration.

d = {}
for x, y, z in zip(z1, z2, z3):
    d.setdefault(x,{})[y] = z

print(d)
# {'A': {'k1': 'v1', 'k2': 'v2'}, 'B': {'k1': 'v3', 'k2': 'v4'}}

Another solution (not recommended) is using itertools.groupby:

d = {}
for k, g in groupby(enumerate(zip(z2, z3)), key=lambda x: z1[x[0]]):
    _, b = zip(*g)
    d[k] = dict(b)

print(d)
# {'A': {'k1': 'v1', 'k2': 'v2'}, 'B': {'k1': 'v3', 'k2': 'v4'}}
4
  • 1
    Good old dict.setdefault(), forgot about that one.
    – RoadRunner
    Dec 20, 2018 at 15:35
  • 1
    @RoadRunner Thanks, although I do prefer defaultdict (even if it does need the import...!)
    – cs95
    Dec 20, 2018 at 15:38
  • Doesn't d.setdefault just return the value? Why are you able to operate on the returned value and have it save to the dictionary? I think I lack the underlying structure to understand why this works. Is this a case of mutable vs immutable python types.
    – akozi
    Dec 20, 2018 at 15:44
  • 1
    @akozi It returns the value (a dictionary) if it exists. But either way, it creates an empty dict and then checks whether the key exists before returning the actual value. Hence the mention of "tiny overhead". Either way, a dictionary is returned and you can assign key-values to it.
    – cs95
    Dec 20, 2018 at 15:45
4

Here's a one-liner using itertools.groupby, but aside from being a single expression, it doesn't really provide any benefit over the default-dict solution provided by RoadRunner.

>>> from itertools import groupby
>>> from operator import itemgetter
>>> keyf = itemgetter(0)
>>> dict((k, dict(v2 for _,v2 in v)) for k, v in groupby(zip(z1, zip(z2,z3)), key=keyf))
{'A': {'k2': 'v2', 'k1': 'v1'}, 'B': {'k2': 'v4', 'k1': 'v3'}}

This is only as short as it is because it takes advantage of the fact that z1 is already sorted. If it isn't, you'll need to sort the output of zip using the same key function before passing it to groupby.

dict((k, dict(v2 for _,v2 in v))
       for k, v in groupby(sorted(zip(z1, zip(z2,z3)),
                                  key=keyf),
                           key=keyf))

Breaking down how it works...

  1. zip(z1, zip(z2, ze)) creates the key-value pairs for the outer dict:

    [('A', ('k1', 'v1')),
     ('A', ('k2', 'v2')),
     ('B', ('k1', 'v3')),
     ('B', ('k2', 'v4'))]
    
  2. groupby effectively pairs each key (A or B) with its tuples:

    [('A', <itertools._grouper object at 0x100f656d0>),
     ('B', <itertools._grouper object at 0x100f655d0>)]
    

    Each _grouper is an iterable containing all the key/value pairs with the same key.

  3. dict(v2 for _,v2 in v) extracts just the key/value pairs from the _groupers, leaving behind the key, which we can already get from the first element of the tuples returned by groupby.

0

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