57

How would I go about counting the words in a sentence? I'm using Python.

For example, I might have the string:

string = "I     am having  a   very  nice  23!@$      day. "

That would be 7 words. I'm having trouble with the random amount of spaces after/before each word as well as when numbers or symbols are involved.

  • 2
    To accomodate the numbers, you can change the regex. \w matches [a-zA-Z0-9] Now, you need to define what your use case is. What happens to I am fine2 ? Would it be 2 words or 3 ? – karthikr Oct 16 '13 at 17:58
  • You needed to explicitly add "ignoring numbers, punctuation and whitespace" since that's part of the task. – smci Jul 5 '18 at 19:06
  • FYI some punctuation symbols may merit separate consideration. Otherwise, "carry-on luggage" becomes three words, as does "U.S.A." So answers may want to parameterize what punctuation is allowed, rather than blanket regex like \S+ – smci Jul 5 '18 at 19:51
85

str.split() without any arguments splits on runs of whitespace characters:

>>> s = 'I am having a very nice day.'
>>> 
>>> len(s.split())
7

From the linked documentation:

If sep is not specified or is None, a different splitting algorithm is applied: runs of consecutive whitespace are regarded as a single separator, and the result will contain no empty strings at the start or end if the string has leading or trailing whitespace.

| improve this answer | |
  • 9
    One (very minor) disadvantage of this would be that you could have punctuation groups counted as words. For example, in 'I am having a very nice day -- or at least I was.', you'd get -- counted as a word. isalnum might help, I guess, depending on the OP's definition of "word". – DSM Oct 16 '13 at 17:38
  • This seems to be faster than regex – Alaa M. Jan 6 '18 at 9:49
  • Of course it's faster, but it's also much more limited. – Gabriel Jul 5 '18 at 19:08
  • 2
    Nope, counts punctuation: 'apple & orange'.split() gives ['apple', '&', 'orange'] – stelios Aug 19 '18 at 12:30
52

You can use regex.findall():

import re
line = " I am having a very nice day."
count = len(re.findall(r'\w+', line))
print (count)
| improve this answer | |
  • Hmm, I'd usually avoid regex if I can, but this seems like a pretty good use case. – Games Brainiac Oct 16 '13 at 17:48
  • 4
    +1 for using re, it is truly better than [i for i in string.split() if i.isalnum()] – JadedTuna Oct 16 '13 at 18:02
  • 3
    I'd rather rely on counting \S+ to handle things like decimal numbers in "It's 2.5 times faster" – Emadpres Jul 19 '17 at 8:03
  • If line is 'inter-process communication', it will count 3 words – stelios Aug 19 '18 at 12:34
  • @GamesBrainiac: Just curious. Why do you try to avoid using regex ? – Catbuilts Apr 26 '19 at 8:20
6
s = "I     am having  a   very  nice  23!@$      day. "
sum([i.strip(string.punctuation).isalpha() for i in s.split()])

The statement above will go through each chunk of text and remove punctuations before verifying if the chunk is really string of alphabets.

| improve this answer | |
  • 2
    1. Using i as a nonindex variable is really misleading; 2. you don't need to create a list, it's just wasting memory. Suggestion: sum(word.strip(string.punctuation).isalpha() for word in s.split()) – Gabriel Jul 5 '18 at 19:12
5

This is a simple word counter using regex. The script includes a loop which you can terminate it when you're done.

#word counter using regex
import re
while True:
    string =raw_input("Enter the string: ")
    count = len(re.findall("[a-zA-Z_]+", string))
    if line == "Done": #command to terminate the loop
        break
    print (count)
print ("Terminated")
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  • Change raw_input to input in Python 3. – Gabriel Jul 5 '18 at 19:15
4

How about using a simple loop to count the occurrences of number of spaces!?

txt = "Just an example here move along" 
count = 1
for i in txt:
if i == " ":
   count += 1
print(count)

| improve this answer | |
  • here is another approach print(input().count(' ') + 1) – N997 Mar 12 '19 at 15:46
  • This doesn't work if there are multiple spaces between words. – HuckIt May 15 '19 at 16:35
3

Ok here is my version of doing this. I noticed that you want your output to be 7, which means you dont want to count special characters and numbers. So here is regex pattern:

re.findall("[a-zA-Z_]+", string)

Where [a-zA-Z_] means it will match any character beetwen a-z (lowercase) and A-Z (upper case).


About spaces. If you want to remove all extra spaces, just do:

string = string.rstrip().lstrip() # Remove all extra spaces at the start and at the end of the string
while "  " in string: # While  there are 2 spaces beetwen words in our string...
    string = string.replace("  ", " ") # ... replace them by one space!
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3
    def wordCount(mystring):  
        tempcount = 0  
        count = 1  

        try:  
            for character in mystring:  
                if character == " ":  
                    tempcount +=1  
                    if tempcount ==1:  
                        count +=1  

                    else:  
                        tempcount +=1
                 else:
                     tempcount=0

             return count  

         except Exception:  
             error = "Not a string"  
             return error  

    mystring = "I   am having   a    very nice 23!@$      day."           

    print(wordCount(mystring))  

output is 8

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0
import string 

sentence = "I     am having  a   very  nice  23!@$      day. "
# Remove all punctuations
sentence = sentence.translate(str.maketrans('', '', string.punctuation))
# Remove all numbers"
sentence = ''.join([word for word in sentence if not word.isdigit()])
count = 0;
for index in range(len(sentence)-1) :
    if sentence[index+1].isspace() and not sentence[index].isspace():
        count += 1 
print(count)
| improve this answer | |

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