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There's an existing function that ends in:

return dict.iteritems()

that returns an unsorted iterator for a given dictionary. I would like to return an iterator that goes through the items in sorted order. How do I do that?

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10 Answers 10

up vote 67 down vote accepted

Haven't tested this very extensively, but works in Python 2.5.2.

>>> d = {"x":2, "h":15, "a":2222}
>>> it = iter(sorted(d.iteritems()))
>>> it.next()
('a', 2222)
>>> it.next()
('h', 15)
>>> it.next()
('x', 2)
>>>
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10  
use .items() instead of iteritems(): as @Claudiu said, iteritems does not work for Python 3.x, but items() is available from Python 2.6. –  Remi Oct 1 '11 at 17:30
19  
This is not obvious. In fact, items() creates a list and therefore uses memory, whereas iteritems() essentially does not use memory. What to use mostly depend on the size of the dictionary. Furthermore, the automatic Python 2 to Python 3 conversion tool (2to3) automatically takes care of the conversion from iteritems() to items(), so there is no need to worry about this. –  EOL Dec 9 '12 at 11:48
    
Is it possible to optimize it in case both getitem and sorted iteration are very frequently needed? –  HoverHell Dec 16 '12 at 19:15
2  
@HowerHell use a collections.OrderedDict then you sort once & get items in sorted order always. –  Mark Harviston Jun 3 '13 at 15:23
3  
@Richard: While it is true that all the elements must be pulled into memory, they are stored twice with items() (in the list returned by items(), and in the sorted list) and only once with iteritems() (in the sorted list only). –  EOL Oct 7 '13 at 8:38

Use the sorted() function:

return sorted(dict.iteritems())

If you want an actual iterator over the sorted results, since sorted() returns a list, use:

return iter(sorted(dict.iteritems()))
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That fails for me: <type 'exceptions.TypeError'>: iter() returned non-iterator of type 'list' –  mike Dec 13 '08 at 0:04
    
That's probably because you use "dict" as the variable name. "dict" is actually the type name of dictionaries. Just use another name like "mydict" here and voila. –  utku_karatas Dec 13 '08 at 0:17
    
Still not working. Are you positive sorted() returns another iterator, as opposed to a regular list? –  mike Dec 13 '08 at 0:26
    
when and where does this exception occur? you can iterate over a list without a problem –  hop Dec 13 '08 at 0:47
    
it could fail if you were calling the .next() method on the list, which would work on the iterator –  Chris Cameron Dec 13 '08 at 0:51

A dict's keys are stored in a hashtable so that is their 'natural order', i.e. psuedo-random. Any other ordering is a concept of the consumer of the dict.

sorted() always returns a list, not a dict. If you pass it a dict.items() (which produces a list of tuples), it will return a list of tuples [(k1,v1), (k2,v2), ...] which can be used in a loop in a way very much like a dict, but it is not in anyway a dict!

foo = {
    'a':    1,
    'b':    2,
    'c':    3,
    }

print foo
>>> {'a': 1, 'c': 3, 'b': 2}

print foo.items()
>>> [('a', 1), ('c', 3), ('b', 2)]

print sorted(foo.items())
>>> [('a', 1), ('b', 2), ('c', 3)]

The following feels like a dict in a loop, but it's not, it's a list of tuples being unpacked into k,v:

for k,v in sorted(foo.items()):
    print k, v

Roughly equivalent to:

for k in sorted(foo.keys()):
    print k, foo[k]
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Okay, but I don't want a Dict or a List, I want an Iterator. How do i coerce it into being an Iterator? –  mike Dec 13 '08 at 0:47
    
sorted(foo.keys()) is better as the equivalent sorted(foo), since dictionaries return their keys when iterated over (with the advantage of not being forced to create the foo.keys() intermediate list, maybe—depending on how sorted() is implemented for iterables). –  EOL Jul 28 at 9:24

Greg's answer is right. Note that in Python 3.0 you'll have to do

sorted(dict.items())

as iteritems will be gone.

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That fails for me: <type 'exceptions.TypeError'>: iter() returned non-iterator of type 'list' –  mike Dec 13 '08 at 0:05

If you want to sort by the order that items were inserted instead of of the order of the keys, you should have a look to Python's collections.OrderedDict. (Python 3 only)

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In general, one may sort a dict like so:

for k in sorted(d):
    print k, d[k]

For the specific case in the question, having a "drop in replacement" for d.iteritems(), add a function like:

def sortdict(d, **opts):
    # **opts so any currently supported sorted() options can be passed
    for k in sorted(d, **opts):
        yield k, d[k]

and so the ending line changes from

return dict.iteritems()

to

return sortdict(dict)

or

return sortdict(dict, reverse = True)
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sorted returns a list, hence your error when you try to iterate over it, but because you can't order a dict you will have to deal with a list.

I have no idea what the larger context of your code is, but you could try adding an iterator to the resulting list. like this maybe?:

return iter(sorted(dict.iteritems()))

of course you will be getting back tuples now because sorted turned your dict into a list of tuples

ex: say your dict was: {'a':1,'c':3,'b':2} sorted turns it into a list:

[('a',1),('b',2),('c',3)]

so when you actually iterate over the list you get back (in this example) a tuple composed of a string and an integer, but at least you will be able to iterate over it.

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Assuming you are using CPython 2.x and have a large dictionary mydict, then using sorted(mydict) is going to be slow because sorted builds a sorted list of the keys of mydict.

In that case you might want to look at my ordereddict package which includes a C implementation of sorteddict in C. Especially if you have to go over the sorted list of keys multiple times at different stages (ie. number of elements) of the dictionaries lifetime.

http://anthon.home.xs4all.nl/Python/ordereddict/

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>>> import heapq
>>> d = {"c": 2, "b": 9, "a": 4, "d": 8}
>>> def iter_sorted(d):
        keys = list(d)
        heapq.heapify(keys) # Transforms to heap in O(N) time
        while keys:
            k = heapq.heappop(keys) # takes O(log n) time
            yield (k, d[k])


>>> i = iter_sorted(d)
>>> for x in i:
        print x


('a', 4)
('b', 9)
('c', 2)
('d', 8)

This method still has an O(N log N) sort, however, after a short linear heapify, it yields the items in sorted order as it goes, making it theoretically more efficient when you do not always need the whole list.

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You can now use OrderedDict in Python 2.7 as well:

>>> from collections import OrderedDict
>>> d = OrderedDict([('first', 1),
...                  ('second', 2),
...                  ('third', 3)])
>>> d.items()
[('first', 1), ('second', 2), ('third', 3)]

Here you have the what's new page for 2.7 version and the OrderedDict API.

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