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I want to count unique words in a text, but I want to make sure that words followed by special characters aren't treated differently, and that the evaluation is case-insensitive.

Take this example

text = "There is one handsome boy. The boy has now grown up. He is no longer a boy now." 
print len(set(w.lower() for w in text.split()))

The result would be 16, but I expect it to return 14. The problem is that 'boy.' and 'boy' are evaluated differently, because of the punctuation.

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marked as duplicate by mjv, unkulunkulu, Jean, Raghunandan, Thor Apr 17 '13 at 9:41

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Keep in mind that the actual number would be 14. Since you have the word boy three times, and the words is and now twice. –  eandersson Apr 17 '13 at 1:37

4 Answers 4

I think that you have the right idea of using the Python built-in set type. I think that it can be done if you first remove the '.' by doing a replace:

text = "There is one handsome boy. The boy has now grown up. He is no longer a boy now."
punc_char= ",.?!'"
for letter in text:
    if letter == '"' or letter in punc_char:
        text= text.replace(letter, '')
text= set(text.split())
len(text)

that should work for you. And if you need any of the other signs or punctuation points you can easily add them into punc_char and they will be filtered out.

Abraham J.

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What if the string has a ,, ' , ? , ! or any other character? will he need to hard-code checks for those as well? The text in the questions was obviously just an example. –  eandersson Apr 17 '13 at 1:10
    
he can use something like: punc_char= '.,!?' and then use that in place of the "hard-code" '.' so he would say something like if letter in punc_char: –  user2288672 Apr 17 '13 at 1:21
import re
print len(re.findall('\w+', text))

Using a regular expression makes this very simple. All you need to keep in mind is to make sure that all the characters are in lowercase, and finally combine the result using set to ensure that there are no duplicate items.

print len(set(re.findall('\w+', text.lower())))
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First, you need to get a list of words. You can use a regex as eandersson suggested:

import re
words = re.findall('\w+', text)

Now, you want to get the number of unique entries. There are a couple of ways to do this. One way would be iterate through the words list and use a dictionary to keep track of the number of times you have seen a word:

cwords = {}
for word in words:
     try:
         cwords[word] += 1
     except KeyError:
         cwords[word] = 1

Now, finally, you can get the number of unique words by

len(cwords)
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Note that you can use collections.defaultdict(int) of collections.Counter() instead of the try/except with a dict. In fact, in this case, seeing he just wants the number of unique words, all you need is a set(). –  Ben Hoyt Apr 16 '13 at 23:50

you can use regex here:

In [65]: text = "There is one handsome boy. The boy has now grown up. He is no longer a boy now."

In [66]: import re

In [68]: set(m.group(0).lower() for m in re.finditer(r"\w+",text))

Out[68]: 
set(['grown',
     'boy',
     'he',
     'now',
     'longer',
     'no',
     'is',
     'there',
     'up',
     'one',
     'a',
     'the',
     'has',
     'handsome'])
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