Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to count the number of occurrences of all bigrams (pair of adjacent words) in a file using python. Here, I am dealing with very large files, so I am looking for an efficient way. I tried using count method with regex "\w+\s\w+" on file contents, but it did not prove to be efficient.

e.g. Let's say I want to count the number of bigrams from a file a.txt, which has following content:

"the quick person did not realize his speed and the quick person bumped "

For above file, the bigram set and their count will be :

(the,quick) = 2
(quick,person) = 2
(person,did) = 1
(did, not) = 1
(not, realize) = 1
(realize,his) = 1
(his,speed) = 1
(speed,and) = 1
(and,the) = 1
(person, bumped) = 1

I have come across an example of Counter objects in Python, which is used to count unigrams (single words). It also uses regex approach.

The example goes like this:

>>> # Find the ten most common words in Hamlet
>>> import re
>>> words = re.findall('\w+', open('a.txt').read())
>>> print Counter(words)

The output of above code is :

[('the', 2), ('quick', 2), ('person', 2), ('did', 1), ('not', 1),
 ('realize', 1),  ('his', 1), ('speed', 1), ('bumped', 1)]

I was wondering if it is possible to use the Counter object to get count of bigrams. Any approach other than Counter object or regex will also be appreciated.

share|improve this question
    
paste the sample text in question. –  undefined is not a function Sep 19 '12 at 4:47
    
Do you have to handle multiple lines or is the text all on one line per file? –  mhawke Sep 19 '12 at 4:49
1  
possible duplicate of Counting bi-gram frequencies –  David Robinson Sep 19 '12 at 4:52
    
Yes mhawke, the text in the file is on single line. –  Swapnil Nawale Sep 19 '12 at 4:53
    
Ashwini Chaudhary, I have included the sample text in code tags above. Sorry for the inconvenience! –  Swapnil Nawale Sep 19 '12 at 4:54
show 1 more comment

2 Answers

up vote 12 down vote accepted

Some itertools magic:

>>> import re
>>> from itertools import islice, izip
>>> words = re.findall("\w+", 
   "the quick person did not realize his speed and the quick person bumped")
>>> print Counter(izip(words, islice(words, 1, None)))

Output:

Counter({('the', 'quick'): 2, ('quick', 'person'): 2, ('person', 'did'): 1, 
  ('did', 'not'): 1, ('not', 'realize'): 1, ('and', 'the'): 1, 
  ('speed', 'and'): 1, ('person', 'bumped'): 1, ('his', 'speed'): 1, 
  ('realize', 'his'): 1})

Bonus

Get any n-gram frequency:

from itertools import tee, isilce

def ngrams(lst, n):
  tlst = lst
  while True:
    a, b = tee(tlst)
    l = tuple(islice(a, n))
    if len(l) == n:
      yield l
      next(b)
      tlst = b
    else:
      break

>>> Counter(ngrams(words, 3))

Output:

Counter({('the', 'quick', 'person'): 2, ('and', 'the', 'quick'): 1, 
  ('realize', 'his', 'speed'): 1, ('his', 'speed', 'and'): 1, 
  ('person', 'did', 'not'): 1, ('quick', 'person', 'did'): 1, 
  ('quick', 'person', 'bumped'): 1, ('did', 'not', 'realize'): 1, 
  ('speed', 'and', 'the'): 1, ('not', 'realize', 'his'): 1})

This works with lazy iterables and generators too. So you can write a generator which reads a file line by line, generating words, and pass it to ngarms to consume lazily without reading the whole file in memory.

share|improve this answer
1  
Awesome! This worked like a charm. Thanks a lot! –  Swapnil Nawale Sep 19 '12 at 5:08
    
that IS magic. wow, i'm going to have to dissect that one. –  Jake Sep 19 '12 at 6:13
add comment

How about zip()?

import re
from collections import Counter
words = re.findall('\w+', open('a.txt').read())
print(Counter(zip(words,words[1:])))
share|improve this answer
    
This too worked very well. Thanks –  Swapnil Nawale Sep 19 '12 at 5:08
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.