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I have a problem with counting distinct values for each key in Python.

I have a dictionary d like

[{"abc":"movies"}, {"abc": "sports"}, {"abc": "music"}, {"xyz": "music"}, {"pqr":"music"}, {"pqr":"movies"},{"pqr":"sports"}, {"pqr":"news"}, {"pqr":"sports"}]

I need to print number of distinct values per each key individually.

That means I would want to print

abc 3
xyz 1
pqr 4

Please help.

Thank you

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2  
You mean you have a list of dictionaries? Or is it reproduced incorrectly? –  thegrinner May 6 '13 at 20:05
1  
That's not a dictionary, that's at best a list of dictionaries (which only contain one key/value pair) - really? What kind of a data structure is that? And I'm guessing it's actually [{"abc": "movies"}, ..., right? –  Tim Pietzcker May 6 '13 at 20:05
    
@TimPietzcker Thats right. Sorry for the mistake in representation –  user1189851 May 6 '13 at 20:06
    
See stackoverflow.com/questions/10303788/… –  dansalmo May 6 '13 at 20:07

5 Answers 5

up vote 0 down vote accepted

No need of using counter. You can achieve in this way:

# input dictionary
d=[{"abc":"movies"}, {"abc": "sports"}, {"abc": "music"}, {"xyz": "music"}, {"pqr":"music"}, {"pqr":"movies"},{"pqr":"sports"}, {"pqr":"news"}, {"pqr":"sports"}]

# fetch keys
b=[j[0] for i in d for j in i.items()]

# print output
for k in list(set(b)):
    print "{0}: {1}".format(k, b.count(k))
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This is even faster, than using with counter. –  akashdeep May 8 '13 at 8:49

Use a collections.Counter() instance, together with some chaining:

from collections import Counter
from itertools import chain

counts = Counter(chain.from_iterable(e.keys() for e in d))

This ensures that dictionaries with more than one key in your input list are counted correctly.

Demo:

>>> from collections import Counter
>>> from itertools import chain
>>> d = [{"abc":"movies"}, {"abc": "sports"}, {"abc": "music"}, {"xyz": "music"}, {"pqr":"music"}, {"pqr":"movies"},{"pqr":"sports"}, {"pqr":"news"}, {"pqr":"sports"}]
>>> Counter(chain.from_iterable(e.keys() for e in d))Counter({'pqr': 5, 'abc': 3, 'xyz': 1})

or with multiple keys in the input dictionaries:

>>> d = [{"abc":"movies", 'xyz': 'music', 'pqr': 'music'}, {"abc": "sports", 'pqr': 'movies'}, {"abc": "music", 'pqr': 'sports'}, {"pqr":"news"}, {"pqr":"sports"}]
>>> Counter(chain.from_iterable(e.keys() for e in d))                                                                               Counter({'pqr': 5, 'abc': 3, 'xyz': 1})

A Counter() has additional, helpful functionality, such as the .most_common() method that lists elements and their counts in reverse sorted order:

for key, count in counts.most_common():
    print '{}: {}'.format(key, count)

# prints
# 5: pqr
# 3: abc
# 1: xyz
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Note that the Counter class was introduced in python 2.7. There's a backport. I guess you knew about it, Martijn. –  Lauritz V. Thaulow May 6 '13 at 20:14
    
@LauritzV.Thaulow: and available as a backport for 2.5 and 2.6 otherwise. –  Martijn Pieters May 6 '13 at 20:17
    
...or you can use a defaultdict with int. –  Burhan Khalid May 6 '13 at 20:18
>>> d = [{"abc":"movies"}, {"abc": "sports"}, {"abc": "music"}, {"xyz": "music"},
... {"pqr":"music"}, {"pqr":"movies"},{"pqr":"sports"}, {"pqr":"news"}, 
... {"pqr":"sports"}]
>>> from collections import Counter
>>> counts = Counter(key for dic in d for key in dic.keys())
>>> counts
Counter({'pqr': 5, 'abc': 3, 'xyz': 1})
>>> for key in counts:
...     print (key, counts[key])
...
xyz 1
abc 3
pqr 5
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What you're describing--a list with multiple values for each key--would be better visualized by something like this:

{'abc': ['movies', 'sports', 'music'],
 'xyz': ['music'],
 'pqr': ['music', 'movies', 'sports', 'news']
}

In that case, you have to do a bit more work to insert:

  1. Lookup key to see if it already exists
    • If doesn't exist, create new key with value [] (empty list)
  2. Retrieve value (the list associated with the key)
  3. Use if value in to see if the value being checked exists in the list
  4. If the new value isn't in, .append() it

This also leads to an easy way to count the total number of elements stored:

# Pseudo-code
for myKey in myDict.keys():
    print "{0}: {1}".format(myKey, len(myDict[myKey])
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Use a collections.Counter. Assuming that you have a list of one item dictionaries...

from collections import Counter
listOfDictionaries = [{'abc':'movies'}, {'abc':'sports'}, {'abc':'music'},
    {'xyz':'music'}, {'pqr':'music'}, {'pqr':'movies'},
    {'pqr':'sports'}, {'pqr':'news'}, {'pqr':'sports'}]
Counter(list(dict)[0] for dict in zzz)
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