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Given this data:

foo kk type1 1 2 3
bar kk type2 3 5 1

I would like to create a dictionary of dictionary of list.

In Perl it's called hash of hash of array. It can be achieve with the following line (executable here

push @{$hohoa{$name}{$type}},($v1,$v2,$v3);

Output of $hohoa in Perl:

$VAR1 = {
          'bar' => {
                     'type2' => [
          'foo' => {
                     'type1' => [

What's the way to do it in Python?

Update: Why the following for loop variation didn't store all the values?

#!/usr/bin/env python

import sys
import pprint
from collections import defaultdict

outerdict = defaultdict(dict)
with open('data.txt') as infh:
    for line in infh:
        name, _, type_, values = line.split(None, 3)

        valist = values.split();
        for i in range(len(valist)):
            thval = valist[i];
            outerdict[name][type] = thval

pp = pprint.PrettyPrinter(indent=4)

It prints this:

defaultdict(<type 'dict'>, {'foo': {<type 'type'>: '3'}, 'bar': {<type 'type'>: '1'}})

Update 2: The output seems problematic when the data looks like this:

foo kk type1 1.2 2.10 3.3
bar kk type2 3.2 5.2 1.0
share|improve this question
What's the expected result for the given input in Python? – bereal Mar 12 '14 at 8:36
what's the string kk used for? – zhangxaochen Mar 12 '14 at 8:37
kk is dummy content, we need not to care. – pdubois Mar 12 '14 at 8:37
Are you using Python 2 or 3? – Martijn Pieters Mar 12 '14 at 8:42
@MartijnPieters: Python2 – pdubois Mar 12 '14 at 8:46

4 Answers 4

up vote 4 down vote accepted

It depends on what you are trying to achieve; how many keys should be added to the inner dict?

The simplest way is to just create new dict literals for the inner dict:

outerdict = {}
outerdict[name] = {type_: [v1, v2, v3]}

or you could use dict.setdefault() to materialize the inner dict as needed:

outerdict.setdefault(name, {})[type_] = [v1, v2, v3]

or you could use collections.defaultdict() to have it handle new values for you:

from collections import defaultdict

outerdict = defaultdict(dict)
outerdict[name][type_] = [v1, v2, v3]

When parsing a file line by line, I'd use the latter, albeit a little simplified:

from collections import defaultdict

outerdict = defaultdict(dict)
with open(filename) as infh:
    for line in infh:
        name, _, type_, *values = line.split()
        outerdict[name][type_] = [int(i) for i in values]

This uses Python 3 syntax to capture the remaining whitespace-delimited values on the line past the first 3 into values.

The Python 2 version would be:

with open(filename) as infh:
    for line in infh:
        name, _, type_, values = line.split(None, 3)
        outerdict[name][type_] = map(int, values.split())

where I limited the whitespace split to just 3 splits (giving you 4 values), then splitting the values string separately.

To have the inner-most list accumulate all values for repeated (name, type_) key combinations, you'll need to use a slightly more complex defaultdict setup; one that produces an inner defaultdict() set to produce list values:

outerdict = defaultdict(lambda: defaultdict(list))
with open(filename) as infh:
    for line in infh:
        name, _, type_, values = line.split(None, 3)
        outerdict[name][type_].extend(map(int, values.split()))

For the file you actually posted, I'd use a different approach altogether:

import csv
from itertools import islice

outerdict = defaultdict(lambda: defaultdict(list))

with open('ImmgenCons_all_celltypes_MicroarrayExp.csv', 'rb') as infh:
    reader = csv.reader(infh, skipinitialspace=True)
    # first row contains metadata we need
    celltypes = next(reader, [])[3:]

    # next two rows can be skipped
    next(islice(infh, 2, 2), None)

    for row in reader:
        name = row[1]
        for celltype, value in zip(celltypes, row[3:]):
share|improve this answer
@pdubois: then state that in your question. Are you parsing a file line by line? – Martijn Pieters Mar 12 '14 at 8:40
@Blckknght: the Perl code will just overwrite the lists, I think. – Martijn Pieters Mar 12 '14 at 8:43
@pdubois: and apologies, I accidentally used type (a built-in function) vs. type_ in places. – Martijn Pieters Mar 12 '14 at 9:05
@pdubois: you never specified that the output should be converted to integers. :-) Added mapping to int for you. – Martijn Pieters Mar 12 '14 at 9:15
@pdubois: Sounds like you have floating point values instead of integers. Be accurate in your question samples please. Use float instead of int. – Martijn Pieters Mar 12 '14 at 9:26
def make_strukture(lst_of_str):
    result = {}
    for i in my_strs:
        data = i.split()
        if data[0] in result.keys(): continue #Only one first key for foo, bar
        result[data[0]] = {} #Create first key foo, bar-level
        result[data[0]][data[2]] = list(data[3:]) #Skip kk and create second key with list
    return result

#Below more comples data structure:
my_strs = ["foo kk type1 1 2 3", "foo kk type2 1 2 3", "bar kk type2 3 5 1"]
print make_strukture(my_strs)

Print result:

    {'type1': ['1', '2', '3']},
    {'type2': ['3', '5', '1']}
share|improve this answer
@MichaelKazarian: your output is wrong. Foo with type2 should not exist. – pdubois Mar 12 '14 at 9:09
@pdubois See update. It good? – Michael Kazarian Mar 12 '14 at 9:21

Instead of using a defaultdict, you can use a normal dict with reduce and dict.setdefault. Here's an example that could be wrapped into a function:

text_data = """foo kk type1 1 2 3
bar kk type2 3 5 1"""

data = [line.split() for line in text_data.splitlines()]
# [['foo', 'kk', 'type1', '1', '2', '3'], ['bar', 'kk', 'type2', '3', '5', '1']]

var1 = {}
for row in data:
    # row[:2] everything before leaf, [2] is the leaf, row[3:] remainder of 'values'
    reduce(lambda a,b: a.setdefault(b, {}), row[:2], var1)[2] = row[3:]
# {'foo': {'kk': {2: ['1', '2', '3']}}, 'bar': {'kk': {2: ['3', '5', '1']}}}

Then, wrap it up into a function with an optional converter for the values, eg:

def nested_dict(sequences, n, converter=lambda L: L):
    ret = {}
    for seq in sequences:
        reduce(lambda a,b: a.setdefault(b, {}), seq[:n-1], ret)[n] = map(converter, seq[n:])
    return ret

nested_dict(data, 2)
#{'foo': {2: ['type1', '1', '2', '3']}, 'bar': {2: ['type2', '3', '5', '1']}}
nested_dict(data, 3)
# {'foo': {'kk': {3: ['1', '2', '3']}}, 'bar': {'kk': {3: ['3', '5', '1']}}}
nested_dict(data, 3, int)
# {'foo': {'kk': {3: [1, 2, 3]}}, 'bar': {'kk': {3: [3, 5, 1]}}}
# ...
share|improve this answer
This is why we can't have nice things. Reading everything into memory and using reduce() to.. reduce readability? :-) – Martijn Pieters Mar 12 '14 at 9:03
@Martijn text_data is from the example given at I have this data... the OP is having issues with nested dicts, it's not an untoward assumption that they're able to read a line from a file at a time (the data could be rows from a database table and the provide example was a just a simplified representation) :) reduce may be overkill for a couple of nesting levels, but scales better to multiple nesting levels and doesn't have the side-effect of requiring a defaultdict which may inadvertently create empty nodes for failed lookups instead of exceptions... – Jon Clements Mar 12 '14 at 9:11
I was not entirely serious. I've used reduce() in answers in the past to handle arbitrary-depth dictionary nesting. Not the case here though, the Perl code certainly uses a fixed depth of keys. – Martijn Pieters Mar 12 '14 at 9:17
@Martijn Indeed. This also handles fixed depth keys - it just so happens if they suddenly don't become fixed depth, it's far less hassle to have to cater for by amending a slice index, rather than a split and adding/removing variable names for the unpacking. (And yes, I know you're not entirely serious, but others may have viewed the comment differently, hence my reply :)) – Jon Clements Mar 12 '14 at 9:22

Another excellent way is to do the following

from collection import defaultdict

d = defaultdict(lambda: defaultdict(list))

In this way you are creating one dictionary of many dictionaries with default value of list

share|improve this answer

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