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I have a strictly sorted list of strings:

['a',
 'b',
 'b/c',
 'b/d',
 'e',
 'f',
 'f/g',
 'f/h',
 'f/h/i',
 'f/h/i/j']

This list is similar to tree representation. So, I need to convert it to dict:

{'a': {},
 'b': {'c': {},
       'd': {}},
 'e': {},
 'f': {'g': {},
       'h': {'i': {'j': {}}}}}

As you can see, keys in this dict are parents and values are children.

UPD: I agree that empty dict is better than None

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5 Answers 5

up vote 8 down vote accepted

If you don't insist on None as the leaf value, you can use the compact code

my_dict = lambda: defaultdict(my_dict)
d = my_dict()
for x in my_list:
    reduce(defaultdict.__getitem__, x.split("/"), d)

Admittedly, it isn't that obvious what this code does, but it's succinct :)

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Very impressive! I love this code. –  scraplesh Oct 19 '11 at 9:01
    
@klesh: Thanks! –  Sven Marnach Oct 19 '11 at 9:05
di = {}
for a in arr:
    al = a.split("/")
    d = di
    for elem in al:
        if elem in d:
            d = d[elem]
        else:
            d[elem]={}

print di

Note that elemts are not stored in alphabetical order in a dictionary!

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This does not produce the requested result, as it uses {} instead of None as leaf values. –  Lauritz V. Thaulow Oct 19 '11 at 8:32
1  
@lazyr: Correct, but I think OP is able to adapt it to his needs :) And it would have cluttered the code with checks whether it is None or it is a dict etc, but I think the underlying idea is more important than such implementation details. –  phimuemue Oct 19 '11 at 8:35
    
This code fails for ["a", "b/c"]. It isn't quite clear from the specifications whether this case needs to be covered, though. –  Sven Marnach Oct 19 '11 at 9:00
    
@SvenMarnach this list ["a", "b/c"] is invalid. It must be ["a", "b", "b/c"]. Maybe I should have been represented my idea more clearly... –  scraplesh Oct 19 '11 at 10:02
    
I like this recipe, it's very simple and solves problem. –  scraplesh Oct 19 '11 at 10:49

Hope it helps, recursive approach :)

import pprint

l = ['a',
'b',
'b/c',
'b/d',
'e',
'f',
'f/g',
'f/h',
'f/h/i',
'f/h/i/j']

def put(d, elems):
    f = elems[0]
    if len(elems)==1:
        d[f]=None
    else:
        if f not in d or d[f]==None:
            d[f] = {}
        put(d[f], elems[1:])

d = {}
for x in l:
    put(d, x.split('/'))

pprint.pprint(d)
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Here's my crack at it. I reverse the path for optimization, because pop() is much faster than pop(0).

def add_branch(root, path):
    branch = path.pop()
    if path:
        if branch not in root or root[branch] is None:
            root[branch] = {}
        add_branch(root[branch], path)
    else:
        root[branch] = None

def totree(strings):
    root = {}
    for string in strings:
        path = string.split("/")
        path.reverse()
        add_branch(root, path)
    return root

Use like this:

my_tree = totree(['a', 'b', 'b/c', 'b/d', 'e', 'f', 'f/g', 'f/h', 
    'f/h/i', 'f/h/i/j'])
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this is my resolution:

from collections import defaultdict
from pprint import pprint

input = ['a', 'b', 'b/c', 'b/d', 'e', 'f', 'f/g', 'f/h', 'f/h/i', 'f/h/i/j']
result = defaultdict(dict)
for i in input:
    path = i.split('/')
    key = path[0]
    value = {}
    buffer = {key:value}
    for folder in path[1:]:
        value[folder] = {}
        value = value[folder]
    result[key].update(buffer[key])
pprint(dict(result))
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