17

I have a string "Hello I am going to I with hello am". I want to find how many times a word occur in the string. Example hello occurs 2 time. I tried this approach that only prints characters -

def countWord(input_string):
    d = {}
    for word in input_string:
        try:
            d[word] += 1
        except:
            d[word] = 1

    for k in d.keys():
        print "%s: %d" % (k, d[k])
print countWord("Hello I am going to I with Hello am")

I want to learn how to find the word count.

3
  • 1
    Hello and hello are same? Jul 2, 2012 at 20:11
  • 1
    Depending on your use case, there's one more thing you might need to consider: some words have their meanings change depending upon their capitalization, like Polish and polish. Probably that won't matter for you, but it's worth remembering.
    – DSM
    Jul 2, 2012 at 20:28
  • Could you define you data set more for us, will you worry about punctuation such as in I'll, don't etc .. some of these raised in comments below. And differences in case?
    – Levon
    Jul 2, 2012 at 20:38

9 Answers 9

43

If you want to find the count of an individual word, just use count:

input_string.count("Hello")

Use collections.Counter and split() to tally up all the words:

from collections import Counter

words = input_string.split()
wordCount = Counter(words)
6
  • Is collections module part of basic python installation?
    – Varun
    Jul 2, 2012 at 20:13
  • 1
    I'm copying part of a comment by @DSM left for me since I also used str.count() as my initial solution - this has a problem since "am ham".count("am") will yield 2 rather than 1
    – Levon
    Jul 2, 2012 at 20:35
  • 1
    @Varun: I believe collections is in Python 2.4 and above. Jul 2, 2012 at 23:32
  • @Levon: You're absolutely right. I believe using Counter, along with a regex word collector is probably the best option. Will edit answer accordingly. Jul 2, 2012 at 23:33
  • 1
    Well .. credit goes to @DSM who made me aware of this in the first place (since I was using str.count() too)
    – Levon
    Jul 2, 2012 at 23:37
6
from collections import *
import re

Counter(re.findall(r"[\w']+", text.lower()))

Using re.findall is more versatile than split, because otherwise you cannot take into account contractions such as "don't" and "I'll", etc.

Demo (using your example):

>>> countWords("Hello I am going to I with hello am")
Counter({'i': 2, 'am': 2, 'hello': 2, 'to': 1, 'going': 1, 'with': 1})

If you expect to be making many of these queries, this will only do O(N) work once, rather than O(N*#queries) work.

2
  • 2
    +1 for re. split solutions won't work with phrases containing punctuations.
    – georg
    Jul 2, 2012 at 20:35
  • This is the best answer for me +1
    – Nahko
    Feb 25, 2020 at 22:45
6

Counter from collections is your friend:

>>> from collections import Counter
>>> counts = Counter(sentence.lower().split())
4

The vector of occurrence counts of words is called bag-of-words.

Scikit-learn provides a nice module to compute it, sklearn.feature_extraction.text.CountVectorizer. Example:

import numpy as np
from sklearn.feature_extraction.text import CountVectorizer

vectorizer = CountVectorizer(analyzer = "word",   \
                             tokenizer = None,    \
                             preprocessor = None, \
                             stop_words = None,   \
                             min_df = 0,          \
                             max_features = 50) 

text = ["Hello I am going to I with hello am"]

# Count
train_data_features = vectorizer.fit_transform(text)
vocab = vectorizer.get_feature_names()

# Sum up the counts of each vocabulary word
dist = np.sum(train_data_features.toarray(), axis=0)

# For each, print the vocabulary word and the number of times it 
# appears in the training set
for tag, count in zip(vocab, dist):
    print count, tag

Output:

2 am
1 going
2 hello
1 to
1 with

Part of the code was taken from this Kaggle tutorial on bag-of-words.

FYI: How to use sklearn's CountVectorizerand() to get ngrams that include any punctuation as separate tokens?

3

Here is an alternative, case-insensitive, approach

sum(1 for w in s.lower().split() if w == 'Hello'.lower())
2

It matches by converting the string and target into lower-case.

ps: Takes care of the "am ham".count("am") == 2 problem with str.count() pointed out by @DSM below too :)

2
  • 2
    Using count by itself can lead to unexpected results, though: "am ham".count("am") == 2.
    – DSM
    Jul 2, 2012 at 20:07
  • @DSM .. good point .. I'm not happy with this solution anyway since it's case sensitive, looking at an alternative right now ...
    – Levon
    Jul 2, 2012 at 20:08
2

Considering Hello and hello as same words, irrespective of their cases:

>>> from collections import Counter
>>> strs="Hello I am going to I with hello am"
>>> Counter(map(str.lower,strs.split()))
Counter({'i': 2, 'am': 2, 'hello': 2, 'to': 1, 'going': 1, 'with': 1})
3
  • I would go with Counter(strs.lower().split()). Reduces some of the overhead for a faster runtime Jul 2, 2012 at 20:15
  • 1
    Isn't this just Martijn Pieters' solution now, though?
    – DSM
    Jul 2, 2012 at 20:21
  • @DSM I somehow didn't saw his solution, updated my solution back to the original version. :) Jul 2, 2012 at 20:23
1

You can divide the string into elements and calculate their number

count = len(my_string.split())

0
0

You can use the Python regex library re to find all matches in the substring and return the array.

import re

input_string = "Hello I am going to I with Hello am"

print(len(re.findall('hello', input_string.lower())))

Prints:

2
0
def countSub(pat,string):
    result = 0
    for i in range(len(string)-len(pat)+1):
          for j in range(len(pat)):
              if string[i+j] != pat[j]:
                 break
          else:   
                 result+=1
    return result
1
  • 3
    Hello, welcome to SO. Your answer contains only code. It would be better if you could also add some commentary to explain what it does and how. Can you please edit your answer and add it? Thank you! Nov 1, 2018 at 21:51

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