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I am writing a code, to count the frequency of word occurrences in a document containing about 20,000 files,i am able to get the overall frequency of a word in the document and my code so far is:

import os
import re
import sys
sys.stdout=open('f2.txt','w')
from collections import Counter
from glob import iglob

def removegarbage(text):
    text=re.sub(r'\W+',' ',text)
    text=text.lower()
    return text

folderpath='d:/articles-words'
counter=Counter()
d=0

for filepath in iglob(os.path.join(folderpath,'*.txt')):
    with open(filepath,'r') as filehandle:
        d+=1

r=round(d*0.1)
for filepath in iglob(os.path.join(folderpath,'*.txt')):
    with open(filepath,'r') as filehandle:
        words=set(removegarbage(filehandle.read()).split())
        if r > counter:
             counter.update()

for word,count in counter.most_common():
    print('{}  {}'.format(word,count))

But, I want to modify my counter, and update it only when the count is greater than r=0.1*(no of files) in short, i want to read words whose frequency in the entire document is greater than 10% of the number of documents. the error is:

Traceback (most recent call last):
  File "<stdin>", line 4, in <module>
TypeError: unorderable types: int() > Counter()

how do I modify it?

share|improve this question
    
What do you expect if r > counter: counter.update() to do? –  Blender Jun 17 '13 at 2:31
    
i want the counter to update only if it satisfies the condition –  Poker Face Jun 17 '13 at 2:41
    
Read about what .update() actually does: docs.python.org/3.3/library/… –  Blender Jun 17 '13 at 2:45
    
What do you mean by when the count is greater than r=0.1*(no of files)? What count? –  Alex L Jun 17 '13 at 3:04
    
it must count values till it is greater than the value of r,and here the value of r is o.1*number of files –  Poker Face Jun 17 '13 at 3:11

1 Answer 1

up vote 2 down vote accepted

How about somethiing like this?

from glob import glob # (instead of iglob)

...

filepaths = glob(os.path.join(folderpath,'*.txt'))

num_files = len(filepaths)

# Add all words to counter
for filepath in filepaths):
    with open(filepath,'r') as filehandle:
        lines = filehandle.read()
        words = removegarbage(lines).split()
        counter.update(words)

# Display most common
for word, count in counter.most_common():

    # Break out if the frequency is less than 0.1 * the number of files
    if count < 0.1*num_files:
        break

    print('{}  {}'.format(word,count))

Use of Counter.iteritems():

>>> from collections import Counter
>>> c = Counter()
>>> c.update(['test', 'test', 'test2'])
>>> c.iteritems()
<dictionary-itemiterator object at 0x012F4750>
>>> for word, count in c.iteritems():
...     print word, count
...     
test 2
test2 1
share|improve this answer
1  
The read method of a file returns a single sting, not a sequence of lines. Do you mean readlines? –  Blckknght Jun 17 '13 at 3:04
    
i want to read only those words,whose frequency count in the entire document is greater than 10% of the number of documents –  Poker Face Jun 17 '13 at 3:15
    
@PokerFace How's something like this? –  Alex L Jun 17 '13 at 3:26
    
@Blckknght Cheers - fixed –  Alex L Jun 17 '13 at 3:27
    
Rather than popping the words with too few occurrences out of the counter, you could simply break out of output loop when the count gets lower than the desired amount. Since the iteration is from most common to least common, this will exclude all the low counts. –  Blckknght Jun 17 '13 at 3:43

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