Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given the following list

['Jellicle', 'Cats', 'are', 'black', 'and', 'white,', 'Jellicle', 'Cats', 
 'are', 'rather', 'small;', 'Jellicle', 'Cats', 'are', 'merry', 'and', 
 'bright,', 'And', 'pleasant', 'to', 'hear', 'when', 'they', 'caterwaul.', 
 'Jellicle', 'Cats', 'have', 'cheerful', 'faces,', 'Jellicle', 'Cats', 
 'have', 'bright', 'black', 'eyes;', 'They', 'like', 'to', 'practise', 
 'their', 'airs', 'and', 'graces', 'And', 'wait', 'for', 'the', 'Jellicle', 
 'Moon', 'to', 'rise.', '']

I am trying to count how many times each word appears and display the top 3.

However I am only looking to find the top three that have the first letter capitalized and ignore all words that do not have the first letter capitalized.

I am sure there is a better way than this, but my idea was to do the following:

  1. put the first word in the list into another list called uniquewords
  2. delete the first word and all its duplicated from the original list
  3. add the new first word into unique words
  4. delete the first word and all its duplicated from original list.
  5. etc...
  6. until the original list is empty....
  7. count how many times each word in uniquewords appears in the original list
  8. find top 3 and print
share|improve this question
    
help is not a useful tag. –  SilentGhost Aug 29 '10 at 11:27
    
I like the 'Cats' reference! –  dls Aug 29 '10 at 12:26

6 Answers 6

up vote 4 down vote accepted

If you are using an earlier version of Python or you have a very good reason to roll your own word counter (I'd like to hear it!), you could try the following approach using a dict.

Python 2.6.1 (r261:67515, Feb 11 2010, 00:51:29) 
[GCC 4.2.1 (Apple Inc. build 5646)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> word_list = ['Jellicle', 'Cats', 'are', 'black', 'and', 'white,', 'Jellicle', 'Cats', 'are', 'rather', 'small;', 'Jellicle', 'Cats', 'are', 'merry', 'and', 'bright,', 'And', 'pleasant', 'to', 'hear', 'when', 'they', 'caterwaul.', 'Jellicle', 'Cats', 'have', 'cheerful', 'faces,', 'Jellicle', 'Cats', 'have', 'bright', 'black', 'eyes;', 'They', 'like', 'to', 'practise', 'their', 'airs', 'and', 'graces', 'And', 'wait', 'for', 'the', 'Jellicle', 'Moon', 'to', 'rise.', '']
>>> word_counter = {}
>>> for word in word_list:
...     if word in word_counter:
...         word_counter[word] += 1
...     else:
...         word_counter[word] = 1
... 
>>> popular_words = sorted(word_counter, key = word_counter.get, reverse = True)
>>> 
>>> top_3 = popular_words[:3]
>>> 
>>> top_3
['Jellicle', 'Cats', 'and']

Top Tip: The interactive Python interpretor is your friend whenever you want to play with an algorithm like this. Just type it in and watch it go, inspecting elements along the way.

share|improve this answer
    
thanks for this...but how could i do it so it only looks for words with the first letter being a capital,ignoring all other. ps. if a word appears multiple times, sometimes capitalized and other times not ccapitalized, then only count the instances when thw word's first letter is a capital. –  user434180 Aug 29 '10 at 12:54
1  
...then this begins to sound a lot like homework (and the question should be marked as such). Simply don't add any words starting with a lower-case letter to word_counter. If you update your question to show that (a) this is a requirement and (b) that you've tried to do this yourself, people are more likely to help. –  Johnsyweb Aug 29 '10 at 20:36

The answer from @Mark Byers is best, but if you are on a version of Python < 2.7 (but at least 2.5, which is pretty old these days), you can replicate the Counter class functionality very simply via defaultdict (otherwise, for python < 2.5, three extra lines of code are needed before d[i] +=1, as in @Johnnysweb's answer).

from collections import defaultdict
class Counter():
    ITEMS = []
    def __init__(self, items):
        d = defaultdict(int)
        for i in items:
            d[i] += 1
        self.ITEMS = sorted(d.iteritems(), reverse=True, key=lambda i: i[1])
    def most_common(self, n):
        return self.ITEMS[:n]

Then, you use the class exactly as in Mark Byers's answer, i.e.:

words_to_count = (word for word in word_list if word[:1].isupper())
c = Counter(words_to_count)
print c.most_common(3)
share|improve this answer

To just return a list containing the most common words

from collections import Counter
words=["i", "love", "you", "i", "you", "a", "are", "you", "you", "fine", "green"]
mcommon= [ite for ite, it in Counter(words).most_common(3)]
print mcommon

this prints ['you', 'i', 'a']

the 3 in "most_common(3)", specifies the number of items to print. Counter(words).most_common() returns a dictionary

"the ite for ite, it in", extracts the key of the dictionary.

Best regards

share|improve this answer

nltk is convenient for a lot of language processing stuff. It has methods for frequency distribution built in. Something like:

import nltk
fdist = nltk.FreqDist(your_list) # creates a frequency distribution from a list
most_common = fdist.max()    # returns a single element
top_three = fdist.keys()[:3] # returns a list
share|improve this answer

In Python 2.7 and above there is a class called Counter which can help you:

from collections import Counter
words_to_count = (word for word in word_list if word[:1].isupper())
c = Counter(words_to_count)
print c.most_common(3)

Result:

[('Jellicle', 6), ('Cats', 5), ('And', 2)]

I am quite new to programming so please try and do it in the most barebones fashion.

You could instead do this using a dictionary with the key being a word and the value being the count for that word. First iterate over the words adding them to the dictionary if they are not present, or else increasing the count for the word if it is present. Then to find the top three you can either use a simple O(n*log(n)) sorting algorithm and take the first three elements from the result, or you can use a O(n) algorithm that scans the list once remembering only the top three elements.

An important observation for beginners is that by using builtin classes that are designed for the purpose you can save yourself a lot of work and/or get better performance. It is good to be familiar with the standard library and the features it offers.

share|improve this answer
    
Counter(lst)? –  SilentGhost Aug 29 '10 at 11:26
    
why am I getting ImportError (on Python 2.6.1)? ImportError: cannot import name Counter –  abhiomkar Aug 29 '10 at 16:51
3  
@abhiomkar: Because Python 2.6.1 isn't Python 2.7 or above. –  Mark Byers Aug 29 '10 at 18:05
    
Thanks! upgraded to Python 2.7 in my Mac. –  abhiomkar Aug 31 '10 at 18:40
    
If your python is less than 2.7, but you want to future-proof your code and use a Counter-like class, see my answer below. stackoverflow.com/a/21760074/379037 –  JJC Feb 13 '14 at 16:38

The simple way of doing this would be (assuming your list is in 'l'):

>>> counter = {}
>>> for i in l: counter[i] = counter.get(i, 0) + 1
>>> sorted([ (freq,word) for word, freq in counter.items() ], reverse=True)[:3]
[(6, 'Jellicle'), (5, 'Cats'), (3, 'to')]

Complete sample:

>>> l = ['Jellicle', 'Cats', 'are', 'black', 'and', 'white,', 'Jellicle', 'Cats', 'are', 'rather', 'small;', 'Jellicle', 'Cats', 'are', 'merry', 'and', 'bright,', 'And', 'pleasant', 'to', 'hear', 'when', 'they', 'caterwaul.', 'Jellicle', 'Cats', 'have', 'cheerful', 'faces,', 'Jellicle', 'Cats', 'have', 'bright', 'black', 'eyes;', 'They', 'like', 'to', 'practise', 'their', 'airs', 'and', 'graces', 'And', 'wait', 'for', 'the', 'Jellicle', 'Moon', 'to', 'rise.', '']
>>> counter = {}
>>> for i in l: counter[i] = counter.get(i, 0) + 1
... 
>>> counter
{'and': 3, '': 1, 'merry': 1, 'rise.': 1, 'small;': 1, 'Moon': 1, 'cheerful': 1, 'bright': 1, 'Cats': 5, 'are': 3, 'have': 2, 'bright,': 1, 'for': 1, 'their': 1, 'rather': 1, 'when': 1, 'to': 3, 'airs': 1, 'black': 2, 'They': 1, 'practise': 1, 'caterwaul.': 1, 'pleasant': 1, 'hear': 1, 'they': 1, 'white,': 1, 'wait': 1, 'And': 2, 'like': 1, 'Jellicle': 6, 'eyes;': 1, 'the': 1, 'faces,': 1, 'graces': 1}
>>> sorted([ (freq,word) for word, freq in counter.items() ], reverse=True)[:3]
[(6, 'Jellicle'), (5, 'Cats'), (3, 'to')]

With simple I mean working in nearly every version of python.

if you don't understand some of the functions used in this sample, you can always do this in the interpreter (after pasting the code above):

>>> help(counter.get)
>>> help(sorted)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.