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This is what I have to count each word in a document:

from collections import defaultdict
word_dict=defaultdict(int)

def count_words(newstring):
    words=newstring.lower().split()
    for word in words:
        word_dict[word]+=1

When I print word_dict, I got the following results:

defaultdict(<type 'int'>, {'rate': 1, 'babo-free': 1, 'risk': 3, 'interest': 1})

I need to add each count so that total_count variable should be equal to 6.

I guess this may be too easy for many of you guys, but as a beginner, I don't know where to start.

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Your object shouldn't be a defaultdict, it really ought to be a Counter. You're importing from collections anyway, and this way, you can do any number of operations on your Counter. –  kreativitea Oct 10 '12 at 0:21

2 Answers 2

up vote 0 down vote accepted

Using iteritems you can get a list of key value pairs. With that you can use a for loop to sum the numbers together.

Eg

sum = 0
for k,v in d.iteritems():
    sum += v
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2 comments, first, since you don't use k, you're better off using d.values() or d.itervalues() instead of d.iteritems(). Second, rather than summing explicitly, use the builtin sum function. :) –  mgilson Oct 9 '12 at 23:51
    
I avoided both those things because it's a beginner question, could've added it as improvements though =) –  Erik Kronberg Oct 10 '12 at 7:47

You can do this the same way you would any dictionary:

>>> d = {'a': 1, 'b': 1, 'c': 3, 'd': 4}
>>> sum(d.values())
9

In Python 2.* you could also use

>>> sum(d.itervalues())
9

which doesn't create a new list, but frankly it's unlikely your lists are long enough for this to be a bottleneck. And the defaultdict works the same way:

>>> from collections import defaultdict
>>> d2 = defaultdict(int)
>>> d2.update(d)
>>> d2
defaultdict(<type 'int'>, {'a': 1, 'c': 3, 'b': 1, 'd': 4})
>>> sum(d2.values())
9

Incidentally, in Python 2.7+, there's also a handy Counter object:

>>> from collections import Counter
>>> Counter("a b A B B c".lower().split())
Counter({'b': 3, 'a': 2, 'c': 1})
>>> Counter("a b A B B c".lower().split()).most_common()
[('b', 3), ('a', 2), ('c', 1)]
>>> sum(Counter("a b A B B c".lower().split()).values())
6
share|improve this answer
    
This should be the accepted answer. –  philshem Mar 19 at 12:45

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