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I have a list that has 93 different strings. I need to find the 10 most frequent strings and the return must be in order from most frequent to least frequent.

mylist = ['"and', '"beware', '`twas', 'all', 'all', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'arms', 'as', 'as', 'awhile', 'back', 'bandersnatch', 'beamish', 'beware', 'bird', 'bite', 'blade', 'borogoves', 'borogoves', 'boy', 'brillig']
 # this is just a sample of the actual list.

I dont have the newest version of python and cannot use a counter.

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5 Answers 5

You could use a Counter from the collections module to do this.

from collections import Counter
c = Counter(mylist)

Then doing c.most_common(10) returns

[('and', 13),
 ('all', 2),
 ('as', 2),
 ('borogoves', 2),
 ('boy', 1),
 ('blade', 1),
 ('bandersnatch', 1),
 ('beware', 1),
 ('bite', 1),
 ('arms', 1)]
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1  
accept this already! –  Snakes and Coffee Apr 11 '12 at 4:05
    
This is it. No more beating around the bush. –  Andrés Apr 11 '12 at 4:22
    
i dont have the newest version of python and cannot use a counter –  Keely Aranyos Apr 11 '12 at 4:41
1  
@burhan: Counter was introduced in python 2.7, not python 2.4. I believe the OP is using 2.6.5. –  DSM Apr 11 '12 at 4:57
1  
@KeelyAranyos The Python docs link to a Py2.5 and Py2.6 backport of collections.Counter . All you need to do is cut and paste the code: code.activestate.com/recipes/576611 –  Raymond Hettinger Apr 11 '12 at 5:32

David's answer is the best - but if you are using a version of Python that does not include Counter from the collections module (which was introduced in Python 2.7), you can use this implementation of a counter class that does the same thing. I suspect that it would be slower than the module, but will do the same thing.

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Counter wasn't included in Python 2.4, but in 2.7. It says so in the docs - docs.python.org/library/collections.html#collections.Counter –  beardedprojamz Apr 11 '12 at 4:59
    
Yes, I have updated my answer to reflect the correct version. However, the solution provided works pre-2.7. –  Burhan Khalid Apr 11 '12 at 5:00
    
Cool - This snippet is written by Raymond Hettinger (author of a lot of the stuff in collections), and is much like the 2.7 source. Good find. :) –  beardedprojamz Apr 11 '12 at 5:07

Without using Counter as the modified version of the question requests

Changed to use heap.nlargest as suggested by @Duncan

>>> from collections import defaultdict
>>> from operator import itemgetter
>>> from heapq import nlargest
>>> mylist = ['"and', '"beware', '`twas', 'all', 'all', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'and', 'arms', 'as', 'as', 'awhile', 'back', 'bandersnatch', 'beamish', 'beware', 'bird', 'bite', 'blade', 'borogoves', 'borogoves', 'boy', 'brillig']
>>> c = defaultdict(int)
>>> for item in mylist:
        c[item] += 1


>>> [word for word,freq in nlargest(10,c.iteritems(),key=itemgetter(1))]
['and', 'all', 'as', 'borogoves', 'boy', 'blade', 'bandersnatch', 'beware', 'bite', 'arms']
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i do not have the newest version of python and cannot use a counter –  Keely Aranyos Apr 11 '12 at 4:45
    
Do you have defaultdict? Try from collections import defaultdict, if so I can write a quick solution using that. –  jamylak Apr 11 '12 at 4:48
    
yes i do have that –  Keely Aranyos Apr 11 '12 at 4:49
    
There is a solution using defaultdict –  jamylak Apr 11 '12 at 4:55
    
it is saying the last line, the line starting with [word for word...., is invalid syntax –  Keely Aranyos Apr 11 '12 at 4:58

David's solution is the best.

But probably more for fun than anything, here is a solution that does not import any module:

dicto = {}

for ele in mylist:
    try:
        dicto[ele] += 1
    except KeyError:
        dicto[ele] = 1

top_10 = sorted(dicto.iteritems(), key = lambda k: k[1], reverse = True)[:10] 

Result:

>>> top_10
[('and', 13), ('all', 2), ('as', 2), ('borogoves', 2), ('boy', 1), ('blade', 1), ('bandersnatch', 1), ('beware', 1), ('bite', 1), ('arms', 1)]

EDIT:

Answering the follow up question:

new_dicto = {}

for val, key in zip(dicto.itervalues(), dicto.iterkeys()):

    try:
        new_dicto[val].append(key)
    except KeyError:
        new_dicto[val] = [key]

alph_sorted = sorted([(key,sorted(val)) for key,val in zip(new_dicto.iterkeys(), new_dicto.itervalues())], reverse = True)

Result:

>>> alph_sorted
[(13, ['and']), (2, ['all', 'as', 'borogoves']), (1, ['"and', '"beware', '`twas', 'arms', 'awhile', 'back', 'bandersnatch', 'beamish', 'beware', 'bird', 'bite', 'blade', 'boy', 'brillig'])]

The words that show up once are sorted alphabetically, if you notice some words have extra quotation marks in them.

EDIT:

Answering another follow up question:

top_10 = []

for tup in alph_sorted:
    for word in tup[1]:
        top_10.append(word)
        if len(top_10) == 10:
            break

Result:

>>> top_10
['and', 'all', 'as', 'borogoves', '"and', '"beware', '`twas', 'arms', 'awhile', 'back']
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how then would you be able to just get the words and for the words that have the same number, how would you put them in alphabetical order –  Keely Aranyos Apr 11 '12 at 5:21
    
how would you get the top 10 of the alph sorted –  Keely Aranyos Apr 12 '12 at 3:25
    
@KeelyAranyos I edited my post to answer your second question, hopefully it gives you what you are looking for. –  Akavall Apr 15 '12 at 4:20

In case your Python Version does not support Counter, you can do the way Counter is implemented

>>> import operator,collections,heapq
>>> counter = collections.defaultdict(int)
>>> for elem in mylist:
    counter[elem]+=1        
>>> heapq.nlargest(10,counter.iteritems(),operator.itemgetter(1))
[('and', 13), ('all', 2), ('as', 2), ('borogoves', 2), ('boy', 1), ('blade', 1), ('bandersnatch', 1), ('beware', 1), ('bite', 1), ('arms', 1)]

If you see the Counter Class, it creates a dictionary of the occurrence of all the elements present in the Iterable It then puts the data in an heapq, key is the value of the dictionary and retrieves the nargest

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