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Is there a way to see how many items in a dictionary share the same value in Python?

Let's say that I have a dictionary like:

{"a": 600, "b": 75, "c": 75, "d": 90}

I'd like to get a resulting dictionary like:

{600: 1, 75: 2, 90: 1}

My first naive attempt would be to just use a nested-for loop and for each value then I would iterate over the dictionary again. Is there a better way to do this?

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5 Answers 5

up vote 6 down vote accepted

You could use itertools.groupby for this.

import itertools
x = {"a": 600, "b": 75, "c": 75, "d": 90}
[(k, len(list(v))) for k, v in itertools.groupby(x.values())]
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Worked for me! Thanks WoLpH, but I had to adjust it to use a dictionary instead: {k: len(list(v)) for k, v in itertools.groupby(x.values())} –  Jared Mar 6 '10 at 20:04
4  
Won't work in the general case without sorting those values! E.g. with the sorted Python built-in function. –  Alex Martelli Mar 6 '10 at 23:21

When Python 2.7 comes out you can use its collections.Counter class

otherwise see counter receipe

Under Python 2.7a3

from collections import Counter
items = {"a": 600, "b": 75, "c": 75, "d": 90}    
c = Counter( items )

print(  dict( c.items() ) )

output is

{600: 1, 90: 1, 75: 2}

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py 3.1 is already out and there is no need to repost exactly the same answer few times a day. –  SilentGhost Mar 6 '10 at 20:10
1  
@SilentGhost, Py 3.1 is out, but 2.7 isn't (still alpha) -- and as long as people post questions obviously requiring Counter it's perfectly fine to point them to it! –  Alex Martelli Mar 6 '10 at 23:20
1  
@Alex: it's a duplicate of a duplicate that had duplicate answer given in each thread by the same user. rather than multiplying entities it's better close the question altogether. –  SilentGhost Mar 6 '10 at 23:43
1  
If this question's a duplicate, why are there zero votes to close it? Attacking the answer is weird, especially when you haven't even given one "vote to close" for the question (and neither has anybody else, I note!-). –  Alex Martelli Mar 6 '10 at 23:56
>>> a = {"a": 600, "b": 75, "c": 75, "d": 90}
>>> b = {}
>>> for k,v in a.iteritems():
...     b[v] = b.get(v,0) + 1
...
>>> b
{600: 1, 90: 1, 75: 2}
>>>
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Use Counter (2.7+, see below at link for implementations for older versions) along with dict.values().

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>>> a = {"a": 600, "b": 75, "c": 75, "d": 90}
>>> d={}
>>> for v in a.values():
...   if not v in d: d[v]=1
...   else: d[v]+=1
...
>>> d
{600: 1, 90: 1, 75: 2}
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