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I am just wondering how i would convert a string, such as "hello there hi there", and turn it into a dictionary, then using this dictionary, i want to count the number of each word in the dictionary, and return it in alphabetic order. So in this case it would return:

[('hello', 1), ('hi', 1), ('there', 2)]

any help would be appreciated

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Given a string "hi, there!" how would you split it into words? Given a string 维基百科 how would you split it into words? – georg May 15 '13 at 6:53

2 Answers 2

>>> from collections import Counter
>>> text = "hello there hi there"
>>> sorted(Counter(text.split()).items())
[('hello', 1), ('hi', 1), ('there', 2)]

class collections.Counter([iterable-or-mapping])

A Counter is a dict subclass for counting hashable objects. It is an unordered collection where elements are stored as dictionary keys and their counts are stored as dictionary values. Counts are allowed to be any integer value including zero or negative counts. The Counter class is similar to bags or multisets in other languages.

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+1 Nicely done! – Raymond Hettinger May 15 '13 at 6:18
+1 but should post the doc entry about Counter, so people don't need to go look it up after. – HennyH May 15 '13 at 7:21
@HennyH alrighty – jamylak May 15 '13 at 7:29

jamylak did fine with Counter. this is a solution without importing Counter:

text = "hello there hi there"
dic = dict()
for w in text.split():
    if w in dic.keys():
        dic[w] = dic[w]+1
        dic[w] = 1


>>> dic
{'hi': 1, 'there': 2, 'hello': 1}
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I would suggest dic[w] = dic.get(w, 0) + 1 instead of the if else – jamylak May 15 '13 at 7:00
1. you could use {} instead of dict() 2. if w in dic: works as is without dic.keys() 3. dic[w] += 1 instead of dic[w] = dic[w] + 1. If you don't want to use Counter; you could use dic = collections.defaultdict(int) and remove if/else. Here's a performance comparison – J.F. Sebastian May 15 '13 at 11:13

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