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I'm working on python 3.2.2. Breaking my head more than 3 hours to sort a dictionary by it's keys. I managed to make it a sorted list with 2 argument members, but can not make it a sorted dictionary in the end.

This is what I've figured:

myDic={10: 'b', 3:'a', 5:'c'}
sorted_list=sorted(myDic.items(), key=lambda x: x[0])

But no matter what I can not make a dictionary out of this sorted list. How do I do that? Thanks!

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2  
What do you mean by "can not make a dictionary out of this sorted list"? A dictionary is unsorted by definition. If you want a sorted dictionary, the look at Ordered Dictionaries. –  inspectorG4dget Jun 18 '12 at 19:29

3 Answers 3

dict does not keep its elements' order. What you need is an OrderedDict: http://docs.python.org/library/collections.html#collections.OrderedDict

edit

Usage example:

>>> from collections import OrderedDict
>>> a = {'foo': 1, 'bar': 2}
>>> a
{'foo': 1, 'bar': 2}
>>> b = OrderedDict(sorted(a.items()))
>>> b
OrderedDict([('bar', 2), ('foo', 1)])
>>> b['foo']
1
>>> b['bar']
2
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I cant manage to make such an OrderedDict object, I type OrderedDict={} but its just a regular variable named OrderedDict.. –  Jjang Jun 18 '12 at 19:42
    
@Jjang, OrderedDict = {} just creates an ordinary dictionary named "OrderedDict." You need to do from collections import OrderedDict, then initialize with something like myOrdDic = OrderedDict(). –  Greg E. Jun 18 '12 at 19:46
    
@Jjang I've added a usage example for clarity. –  Mikołaj Siedlarek Jun 18 '12 at 19:46
    
but in the end it stays a list, not a dict... when you print OrderedDict it prints like a list, with (), not {} like a dict... –  Jjang Jun 18 '12 at 19:55
    
An ordered dictionary is not necessarily a sorted one unless the entries are added to it in the proper sequence. It will likely become unsorted again if an entry is added afterwards. To keep it sorted it would require it to essentially be recreated on each addition and using one would therefore not be the best way to implement such a thing. –  martineau Jun 18 '12 at 20:31

Python's ordinary dicts cannot be made to provide the keys/elements in any specific order. For that, you could use the OrderedDict type from the collections module. Note that the OrderedDict type merely keeps a record of insertion order. You would have to sort the entries prior to initializing the dictionary if you want subsequent views/iterators to return the elements in order every time. For example:

>>> myDic={10: 'b', 3:'a', 5:'c'}
>>> sorted_list=sorted(myDic.items(), key=lambda x: x[0])
>>> myOrdDic = OrderedDict(sorted_list)
>>> myOrdDic.items()
[(3, 'a'), (5, 'c'), (10, 'b')]
>>> myOrdDic[7] = 'd'
>>> myOrdDic.items()
[(3, 'a'), (5, 'c'), (10, 'b'), (7, 'd')]

If you want to maintain proper ordering for newly added items, you really need to use a different data structure, e.g., a binary tree/heap. This approach of building a sorted list and using it to initialize a new OrderedDict() instance is just woefully inefficient unless your data is completely static.

Edit: So, if the object of sorting the data is merely to print it in order, in a format resembling a python dict object, something like the following should suffice:

def pprint_dict(d):
    strings = []
    for k in sorted(d.iterkeys()):
        strings.append("%d: '%s'" % (k, d[k]))
    return '{' + ', '.join(strings) + '}'

Note that this function is not flexible w/r/t the types of the key, value pairs (i.e., it expects the keys to be integers and the corresponding values to be strings). If you need more flexibility, use something like strings.append("%s: %s" % (repr(k), repr(d[k]))) instead.

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+1 for "different data structure." An OrderedDict is more like a hybrid dict/queue; if you wouldn't use a queue to solve your problem, an OrderedDict probably isn't the right solution either. –  senderle Jun 18 '12 at 19:50
1  
@senderle, honestly, I have yet to encounter a single situation in any of my own work in which using an OrderedDict would be appropriate. That's not to say that it isn't conceivably a useful class, but I'd say it plays a very niche role. –  Greg E. Jun 18 '12 at 19:52
    
but in the end it stays a list, not a dict... when you print OrderedDict it prints like a list, with (), not {} like a dict... And I need to print in a dict format in the end –  Jjang Jun 18 '12 at 19:56
    
@Jjang, it doesn't stay a list, it's merely that the .items() method happens to return a list. Internally, OrderedDict is not a list type. –  Greg E. Jun 18 '12 at 19:58
1  
@Jjang, you didn't specify the purpose of sorting the data. We can't read your mind. If all you want is to print the values in order, then just iterate over the sorted list of keys. I'll update my post with an example of what I mean in a minute. –  Greg E. Jun 18 '12 at 20:08

I like python numpy for this kind of stuff! eg:

r=readData()
nsorted = np.lexsort((r.calls, r.slow_requests, r.very_slow_requests, r.stalled_requests))

I have an example of importing CSV data into a numpy and ordering by column priorities. https://github.com/unixunion/toolbox/blob/master/python/csv-numpy.py

Kegan

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Sounds like chinese to me, sorry –  Jjang Jun 18 '12 at 19:56

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