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8,996 PointsPython dictionaries - word count challenge - clean solution?
Hi,
while I solved the challenge, I feel that my solution is clumsy and there might be a better way to do it? Also I used the get() method to check for non existing keys, which was not discussed in the course up to that point. So I think there might be a simpler and cleaner why to do it.
Does anbody have a better solution?
Thanks, Dennis
# E.g. word_count("I do not like it Sam I Am") gets back a dictionary like:
# {'i': 2, 'do': 1, 'it': 1, 'sam': 1, 'like': 1, 'not': 1, 'am': 1}
# Lowercase the string to make it easier.
def word_count(aString):
dictionary = {}
aString = aString.lower()
for word in aString.split():
if dictionary.get(word) == None:
dictionary.update({word: 1})
else:
dictionary.update({word: dictionary[word]+1})
return dictionary
1 Answer
Steven Parker
231,275 PointsYou might want to take a look at some of the other questions asked about this challenge (this link is from the "breadcrumbs" at the top of the question). Just remember that many, perhaps most, of the code will have errors and that's why it was posted. But it will allow you to see the variety of approaches taken to solve this task.