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I am curious if key's can be rearranged after the dictionary has been created.

I would like to first enumerate the total number of values behind each key and then shuffle the order so they may be printed off from largest to smallest.

Say:

x= {'ONE': ['foo'], 'THREE': ['up', 'side', 'down'], 'TWO': ['hot', 'mess']} 

Can I get it to look like, or at least print off in the order of THREE, TWO, ONE?

Could I combine .get with a len() somehow to achieve this?

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I don't think this is relevant here, but just in case: If you're going to be continually modifying the dictionary and iterating it, you may want to use an automatically-sorted dictionary (like the one in blist), instead of sorting it each time after modifying it (or before iterating it). The reason I don't think this is relevant is that you're apparently building the whole thing at once and never modifying it again, in which case David Robinson's answer (and/or Ashwini Chaudhary's comment to that answer) is exactly what you want. –  abarnert Apr 17 '13 at 18:53
    
Thank you, I like to read up on new packages. However, you are right this script takes some output and places it in a dictionary once. I then preform all downstream actions using the dictionary as a input. –  jon_shep Apr 17 '13 at 19:32

2 Answers 2

up vote 6 down vote accepted

Dictionary keys do not have an ordering in Python, so there is no way to reorder them.

If you do want to print it out in order of the list size, however, you could show it as a list of tuples:

sorted(x.items(), key=lambda t: -len(t[1]))
# [('THREE', ['up', 'side', 'down']), ('TWO', ['hot', 'mess']), ('ONE', ['foo'])]
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1  
And pass this sorted list to an OrderedDict to get a sorted dict. –  Ashwini Chaudhary Apr 17 '13 at 18:24
1  
Instead of negating, you can pass reverse=True. And if you operate only on the keys, you can get rid of the lambda entirely: sorted(x, key=len, reverse=True). –  delnan Apr 17 '13 at 18:26
    
@delnan: He didn't want it to operate on the keys, he wanted the longer lists (not the longer keys) to come first. (And it seems to me that adding , reverse=True is just less concise). –  David Robinson Apr 17 '13 at 18:28
1  
reverse=True is clearer/more explicit. And depending on what exactly one does, the keys are sufficient (though probably not in OP's case, yeah). –  delnan Apr 17 '13 at 18:29
    
This should work for me, I (being new to python) have created a script that works in dictionaries and only dictionaries. So I think my "vision" has been a little narrow as to all the possible solutions I could have if I were to branch out form my comfort zone. –  jon_shep Apr 17 '13 at 18:32

One way to do it without an ordered dict:

x= {'ONE': ['foo'], 'THREE': ['up', 'side', 'down'], 'TWO': ['hot', 'mess']}
xkeys = sorted(x, key=lambda y: len(x[y])
for key in xkeys:
    print(x[key])

It doesn't reorder your dict but it is the same result. But as others have said dicts are unordered by definition in python. Ordered dict allows you to move elements to the end, also you can sort it on creation. Docs here: http://docs.python.org/dev/library/collections#collections.OrderedDict So you could use the sorting recipe found there as well.

OrderedDict(sorted(d.items(), key=lambda t: len(t[1])))
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Thank you for the reply, I had forget that dictionaries aren't ordered in virtual space. I have yet to work with OrderedDict so I'll look into that as well. –  jon_shep Apr 17 '13 at 18:39
    
They are accessible just like normal dicts. so you can use them interchangeably for almost every situation (at least that I've ever run into). The docs provide a lot of extra data but the recipe I provided works well. –  Bear Apr 17 '13 at 18:43
    
Yup, I am reading it now. I'll see if they are interchangeable now, most of my script uses normal dictionaries currently. –  jon_shep Apr 17 '13 at 18:45

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