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I have a dictionary with key as words and values as ints.

Is it possible to sort the dictionary by values?

I want to be able to take the top 10 most occurring words in my dictionary. The values represent the word counts and the keys represent the word.

counter = 9
for a,b in sorted(dict_.iteritems()):
        if counter > 0:
            print str(a),str(b)+"\n"
            counter-=1

This is what i have so far but it is only printing off the first 10 items in the dictionary. How would I print off the top 10 most frequent items? (ie The values with the highest int as the value?)

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5 Answers

Try sorted(dict_.iteritems(), key=lambda item: -item[1]).

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what is - for? –  khachik Apr 13 '11 at 18:13
    
@khachik: It's to reverse the list. –  nmichaels Apr 13 '11 at 18:24
    
@nmichaels: Then it should be mapped back by lambda x: (x[0], -x[1])? Why not sorted(..., key=..., reverse=True)? –  khachik Apr 13 '11 at 18:26
    
Negating the key and adding reverse=True have equivalent effects. There is no effect on the sorted items that are returned, only their order. I used the negative key because it's my personal stylistic preference. –  Walter Mundt Apr 13 '11 at 18:30
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Use

sorted(dict_.iteritems(), key=lambda x:x[1]) 

or

import operator
sorted(.... key=operator.itemgetter(1)) 

to sort based on element values. You can use the reverse=True argument to invert the order of the results (default oder is ascending values) and slice notation (results[:10]) to iterate only the first 10 elements. You can also omit the reverse flag and use [-10:] to get the top 10.

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Ahhh, I love me some operator. –  jathanism Apr 13 '11 at 18:21
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Python dictionaries are unordered, but you can convert it to a list of tuples using items() and pass an appropriate comparison function to sort's key parameter.

sorted() has an analogous key parameter. You'd want to sort by lambda item: item[1] to get the value out of items() and iteritems(). Then you can just slice off the first N items.

So...

for a, b in reversed(sorted(dict_.iteritems(), key=lambda item: item[1]))[:10]:
    print a, b
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You can't sort dicts at all. They're unordered, i.e. the order is undefined and completely meaningless (for you).

However, you can sort .iteritems() with key=operator.itemgetter(1) (other answers negate the value, but you can just use the slice [-10:] to get the last 10 items). Or, in this particular case, just use collections.Counter, which comes with a .most_common(n) method.

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dicts are unordered is obvious but the question is that is it possible to sort it on values. –  damned Feb 5 '12 at 16:28
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In order to do that you should sort it using the key argument. key must be a function that takes an element as input and returns another that should be sortable and it will sort the whole elements using this key. And take the last 10 elements (it is sorted in ascending order). In your case you will need to do something like this:

for a,b in sorted(key=lambda x: (x[1], x[0]), dict_.iteritems())[-10:]:
    print str(a), str(b)
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