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I am new to python and I'm trying to write a simple word counter using a dictionary. I am wondering why the following code will not work:

while word != None:
      wordObject = Word()
      wordObject.setWord(word)
      if dictionary.has_key(wordObject.getWord():
            setCount = dictionary[wordObject.getWord()]
            setCount.setCount()

If I leave this as is it never enters the if statement, if I put a key value in the has key method then it will enter the statement and say that I have invalid syntax on my setCount variable. I am trying to set that variable to the object stored at the key value in the dictionary I made and then increment the words count with the setCount method. Thanks.

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1  
You have not included your relevant part of your code.. Like your Word class.. setCount() method.. – Rohit Jain Oct 6 '12 at 19:44
up vote 0 down vote accepted

I can't see your whole code but can predict you must be having some method setCount in wordObject and falsely using a local variable. Changing to wordObject.setCount() may help otherwise a simple

count = 0
while word != None:
      wordObject = Word()
      wordObject.setWord(word)
      if dictionary.has_key(wordObject.getWord():
            setCount=dictionary[wordObject.getWord()]
            count += 1

is enough to store the count.

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Thanks for the replies, I finally realized I had a syntactical error on my if statement, but both replies gave me easier ways to implement what I want to do. – trueinViso Oct 6 '12 at 19:49

Use collections.Counter for counting (Python 2.7+). If you want to count a list of words for example, this is what you'd do:

from collections import Counter

words = ['stack', 'overflow', 'stack', 'exchange']
counter = Counter(words)

print counter

Result:

Counter({'stack': 2, 'overflow': 1, 'exchange': 1})

A Counter is just a dictionary with a few additional convenience methods like most_common([n]) and it returns zero when trying to get a key that doesn't exist. So if you're on Python < 2.7 you can easily implement your own by subclassing dict.

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