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I have a list of approximately 300 words and a huge amount of text that I want to scan to know how many times each word appears.

I am using the re module from python:

for word in list_word:
    search = re.compile(r"""(\s|,)(%s).?(\s|,|\.|\))""" % word)
    occurrences = search.subn("", text)[1]

but I want to know if there is a more efficient or more elegant way of doing this?

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you could use a wordbound instead of checking for surrounding spaces and punctuation. \bWORD\b –  Mark Jul 30 '10 at 14:20
3  
If you want to go beyond word frequency and look into text classification, you may want to look at this: streamhacker.com/2010/06/16/… –  monkut Jul 30 '10 at 14:30
    
How huge can the text be if you are holding it in memory? –  FMc Jul 30 '10 at 17:16

8 Answers 8

up vote 5 down vote accepted

If you have a huge amount of text, I wouldn't use regexps in this case but simply split text:

words = {"this": 0, "that": 0}
for w in text.split():
  if w in words:
    words[w] += 1

words will give you the frequency for each word

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Definitely more efficient to only scan the text once. Code snippet above just seems to be missing the check that the word is one of the 300 "important" ones. –  pdbartlett Jul 30 '10 at 14:28
    
@pdbartlett if w in words makes that check. –  Wilduck Jul 30 '10 at 14:41
    
Splitting on whitespace isn't always going to lead to perfect results. If you need sophisticated splitting, you can take a look at NLTK, which has been suggested below. –  Tim McNamara Jul 30 '10 at 20:40
    
@wilduck: Of course - not sure how I missed that :o –  pdbartlett Jul 31 '10 at 22:35

Googling: python frequency gives me this page as the first result: http://www.daniweb.com/code/snippet216747.html

Which seems to be what you're looking for.

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Its un-pythonish with all these regexes. Splitting into separate words is best achieved with str.split() rather than custom regex –  Daniel Kluev Jul 30 '10 at 14:36
    
you're right, if the Python string functions are sufficient, they should be used in lieu of regex. –  Joubert Nel Jul 30 '10 at 16:36

You can also split the text into words and search the resulting list.

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Regular expressions may not be what you want. Python has a number of built-in string operations that are much faster, and I believe .count() has what you need.

http://docs.python.org/library/stdtypes.html#string-methods

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Try stripping all the punctuation from your text and then splitting on whitespace. Then simply do

for word in list_word:
    occurence = strippedText.count(word)

Or if you're using python 3.0 I think you could do:

occurences = {word: strippedText.count(word) for word in list_word}
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in 2.6 <= python < 3.0 you can do occurences = dict((word, strippedText.count(word)) for word in list_word) –  Wilduck Jul 30 '10 at 14:44

If Python is not a must, you can use awk

$ cat file
word1
word2
word3
word4

$ cat file1
blah1 blah2 word1 word4 blah3 word2
junk1 junk2 word2 word1 junk3
blah4 blah5 word3 word6 end

$ awk 'FNR==NR{w[$1];next} {for(i=1;i<=NF;i++) a[$i]++}END{for(i in w){ if(i in a) print i,a[i] } } ' file file1
word1 2
word2 2
word3 1
word4 1
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It sounds to me like the Natural Language Toolkit might have what you need.

http://www.nltk.org/

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Specifically the nltk.FreqDist class. –  Tim McNamara Jul 30 '10 at 20:38

Maybe you could adapt this my multisearch generator function.

    from itertools import islice
testline = "Sentence 1.  Sentence 2?  Sentence 3!  Sentence 4.  Sentence 5."
def multis(search_sequence,text,start=0):
    """ multisearch by given search sequence values from text, starting from position start
        yielding tuples of text before sequence item and found sequence item"""
    x=''
    for ch in text[start:]:
        if ch in search_sequence:
            if x: yield (x,ch)
            else: yield ch
            x=''
        else:
            x+=ch
    else:
        if x: yield x

# split the first two sentences by the dot/question/exclamation.
two_sentences = list(islice(multis('.?!',testline),2)) ## must save the result of generation
print "result of split: ", two_sentences

print '\n'.join(sentence.strip()+sep for sentence,sep in two_sentences)
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