How to sort OrderedDict of OrderedDict?
I'm trying to sort OrderedDict in OrderedDict by 'depth' key. Is there any solution to sort that Dictionary ?
OrderedDict([
(2, OrderedDict([
('depth', 0),
('height', 51),
('width', 51),
('id', 100)
])),
(1, OrderedDict([
('depth', 2),
('height', 51),
('width', 51),
('id', 55)
])),
(0, OrderedDict([
('depth', 1),
('height', 51),
('width', 51),
('id', 48)
])),
])
Sorted dict should look like this:
OrderedDict([
(2, OrderedDict([
('depth', 0),
('height', 51),
('width', 51),
('id', 100)
])),
(0, OrderedDict([
('depth', 1),
('height', 51),
('width', 51),
('id', 48)
])),
(1, OrderedDict([
('depth', 2),
('height', 51),
('width', 51),
('id', 55)
])),
])
Any idea how to get it?
Answer
You'll have to create a new one since OrderedDict is sorted by insertion order.
In your case the code would look like this:
foo = OrderedDict(sorted(foo.iteritems(), key=lambda x: x[1]['depth']))
See http://docs.python.org/dev/library/collections.html#ordereddict-examples-and-recipes for more examples.
Note for Python 3 you will need to use .items() instead of .iteritems().