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Need to turn x:

X = [['A', 'B', 'C'], ['A', 'B', 'D']]

Into Y:

Y = {'A': {'B': {'C','D'}}}

More specifically, I need to create a tree of folders and files from a list of absolute paths, which looks like this:

paths = ['xyz/123/file.txt', 'abc/456/otherfile.txt']

where, each path is split("/"), as per ['A', 'B', 'C'] in the pseudo example.

As this represents files and folders, obviously, on the same level (index of the array) same name strings can't repeat.

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2  
What's this? {'C','D'} –  FogleBird Oct 4 '11 at 20:42
    
What problem are you trying to solve with the nested dict? –  Steven Rumbalski Oct 4 '11 at 20:51
    
What if folder A contains a directory B and also a file X? How should that be represented? –  Steven Rumbalski Oct 4 '11 at 20:52
    
Would this be acceptable? {'A': {'B': {'C': {}, 'D': {}}}} –  FogleBird Oct 4 '11 at 20:54
    
more consistent, Y = {'A': {'B': {'C':{},'D':{}}}} –  Dmitry Grinberg Oct 4 '11 at 20:55
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4 Answers 4

up vote 7 down vote accepted
X = [['A', 'B', 'C'], ['A', 'B', 'D'],['W','X'],['W','Y','Z']]
d = {}

for path in X:
    current_level = d
    for part in path:
        if part not in current_level:
            current_level[part] = {}
        current_level = current_level[part]

This leaves us with d containing {'A': {'B': {'C': {}, 'D': {}}}, 'W': {'Y': {'Z': {}}, 'X': {}}}. Any item containing an empty dictionary is either a file or an empty directory.

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thank you, Steven –  Dmitry Grinberg Oct 4 '11 at 21:12
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Assuming that {'C', 'D'} means set(['C', 'D']) and your Python version supports dict comprehension and set comprehension, here's an ugly but working solution:

>>> tr = [[1, 2, 3], [1, 2, 4], [5, 6, 7]]
>>> {a[0]: {b[1]: {c[2] for c in [y for y in tr if y[1] == b[1]]} for b in [x for x in tr if x[0] == a[0]]} for a in tr}
{1: {2: set([3, 4])}, 5: {6: set([7])}}

As for your example:

>>> X = [['A', 'B', 'C'], ['A', 'B', 'D']]
>>> {a[0]: {b[1]: {c[2] for c in [y for y in X if y[1] == b[1]]} for b in [x for x in X if x[0] == a[0]]} for a in X}
{'A': {'B': set(['C', 'D'])}}

But please don't use it in a real-world application :)

UPDATE: here's one that works with arbitrary depths:

>>> def todict(lst, d=0):
...     print lst, d
...     if d > len(lst):
...         return {}
...     return {a[d]: todict([x for x in X if x[d] == a[d]], d+1) for a in lst}
...
>>> todict(X)
{'A': {'B': {'C': {}, 'D': {}}}}
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Also doesn't work for arbitrary depth, which is probably a requirement. –  agf Oct 4 '11 at 20:58
    
@agf true - I didn't think that was a requirement, it probably is though. Should I come up with an even more horrible looking one-liner? :) –  Attila O. Oct 4 '11 at 21:00
1  
Hah, that would just get scary. I think Matt's got the idea -- it has to be done recursively. –  agf Oct 4 '11 at 21:01
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There is a logical inconsistency in your problem statement. If you really want ['xyz/123/file.txt', 'abc/456/otherfile.txt']

to be changed to {'xyz': {'123': 'file.txt}, 'abc': {'456': 'otherfile.txt'}}

Then you have to answer how a path 'abc.txt' with no leading folder would be inserted into this data structure. Would the top-level dictionary key be the empty string ''?

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if there is a file called abc.txt at top level, it'll be a peer with 'xyz' and 'abc', as in {'xyz':{...}, 'abc':{...}, 'abc.txt:{}} . with empty {}, which would indicate it's a leaf –  Dmitry Grinberg Oct 4 '11 at 21:03
    
it doesn't matter if something "looks" like a file or folder. last one will be a file, rest are folders. this is not real file system, btw. –  Dmitry Grinberg Oct 4 '11 at 21:04
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This should be pretty close to what you need:

def path_to_dict(path):
    parts = path.split('/')

    def pack(parts):
        if len(parts) == 1:
            return parts
        elif len(parts):
            return {parts[0]: pack(parts[1:])}
        return parts

    return pack(parts)

if __name__ == '__main__':
    paths = ['xyz/123/file.txt', 'abc/456/otherfile.txt']
    for path in paths:
        print '%s -> %s' % (path, path_to_dict(path))

Results in:

xyz/123/file.txt -> {'xyz': {'123': ['file.txt']}}
abc/456/otherfile.txt -> {'abc': {'456': ['otherfile.txt']}}
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How do you join all the dictionaries, like if you have other paths like xyz/123/b.a and abc/sss/ooo/1.a that overlap with those? –  agf Oct 4 '11 at 21:02
    
What if 'xyz' contains directories and files? –  Steven Rumbalski Oct 4 '11 at 21:05
    
Matt, I was about to ask same question as agf. This far i got myself. I actually need one dict merged. there will be overlaps, so I can't just replace nodes wholesale, need to actually merge at every level. –  Dmitry Grinberg Oct 4 '11 at 21:09
    
Deeply merge dicts: appdelegateinc.com/blog/2011/01/12/… –  Matt Williamson Oct 4 '11 at 21:25
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