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Python: Sort a dictionary by value

d = {"a":4, "b":12, "c":2}

If I use sorted() with lambda:

s = sorted(d.items(), key=lambda(k,v):(v,k))

I get a list tuples (key,value) but I want a dict again:

{"c":2, "a":4, "b":12}

And doing dict(the_list_of_tuples) you're back to square one.

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marked as duplicate by juliomalegria, JBernardo, vikingosegundo, JoseK, Caleb Feb 28 '12 at 22:17

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jeez guys, take it easy on me. I thought dicts behaved like lists. –  ofko Feb 27 '12 at 5:52
    
how do i vote up this question? –  ofko Feb 27 '12 at 6:11
    
@ofko: very sorry to say but you can't.... –  avasal Feb 27 '12 at 6:17
    
What are you really trying to do? –  Karl Knechtel Feb 27 '12 at 7:50
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3 Answers 3

Standard dict objects are not sorted and so do not guarantee or preserve any ordering. This is because since you usually use a dict by get a value for a key ordering is unimportant.

If you want to preserve ordering you can use an OrderedDict. This isn't sorted but does remember the order in which items are added to it. So you can create one using your key value pairs in sorted order:

>>> d = {"a":4, "b":12, "c":2}
>>> from collections import OrderedDict
>>> od = OrderedDict(sorted(d.items(), key=lambda(k,v):(v,k)))
>>> od
OrderedDict([('c', 2), ('a', 4), ('b', 12)])
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This isn't possible. You can only get a sorted representation of a dict like you're getting.


Edit

Just did some research. Looks like Python 2.7 has something called OrderedDict, which would allow you to do this. Here's more information about it: http://docs.python.org/library/collections.html?highlight=ordereddict#ordereddict-examples-and-recipes

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Ah I see, I'm just ahead of the times then :D too bad I'm using 2.5 for hosting reasons. I'm just going to change my code to accept the list instead. –  ofko Feb 27 '12 at 5:49
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As many others pointed out you cannot as python doesn't allow you to do so (except with ordered dicts). What you could implement anyhow is something like that (python < 2.7)

>>> d = {"a":4, "b":12, "c":2}
>>> z = [(i,d[i]) for i in d]
>>> z.sort(key=lambda x: x[1])
>>> z
[('c', 2), ('a', 4), ('b', 12)]

And as now d is sorted you can perform a binary search over it to get what you want (or a normal iteration if you don't too much care about speed).

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