I need to make a program that will read a text file and print how many vowels and consonants there are. I make a text file to test and the only thing in it is "This is a test". However the output it always:

Enter the file to check: test.txt

The number of Vowels is: 1

The number of consonants is: 0

fileName = input("Enter the file to check: ").strip()

infile = open(fileName, "r")


vowels = set("A E I O U a e i o u")
cons = set("b c d f g h j k l m n p q r s t v w x y z B C D F G H J K L M N P Q R S T V W X Y Z")

text = infile.read().split()


countV = 0
for V in text:
    if V in vowels:
        countV += 1

countC = 0
for C in text:
    if C in cons:
        countC += 1

print("The number of Vowels is: ",countV,"\nThe number of consonants is: ",countC)

If there is a better way to enter the values for vowels and cons I would also like to know, as I get an error when I try to user .lower() to convert everything in the file to lower case.....

up vote 2 down vote accepted
  1. set("A E I O U a e i o u") will result in {' ', 'A', 'E', 'I', 'O', 'U', 'a', 'e', 'i', 'o', 'u'}. If you'll notice, the space is also considered. You'll need to remove the spaces between the letters.

  2. infile.read().split() will split based on whitespace so you get a list of words. You then proceed to iterate over the words, and try a membership comparison between the words and the letters. This will not work out for you.

  3. You don't need to iterate twice. Once is enough.


Here's a cleaned up version of your code.

vowels = set("AEIOUaeiou")
cons = set("bcdfghjklmnpqrstvwxyzBCDFGHJKLMNPQRSTVWXYZ")

countV = 0
countC = 0
for c in infile.read():
    if c in vowels:
        countV += 1
    elif c in cons:
        countC += 1

As an improvement, consider the use of collections.Counter. It does the counting for you, and you just sum up the counts.

import collections
c = collections.Counter(infile.read())

countV = sum(c[k] for k in c if k in vowels)
countC = sum(c[k] for k in c if k in cons)
  • Thank you @COLDSPEED this helped. I did it slightly different but getting rid of the .split() and removing the spaces was a big help. I thought that sets don't repeat themselves though? So doesn't that mean that it would count the spaces too rather than showing 0 as a result? – PyPunk Aug 6 '17 at 18:57
  • 1
    @EvanH It counts the spaces once, but they are still counted. You will have spaces erroneously counted as both vowels and characters unless you removed them. – coldspeed Aug 6 '17 at 18:58
  • @COLDSPEED Got it. Thank you very much for the help and quick response! – PyPunk Aug 6 '17 at 18:59
  • @EvanH No problem. As a new user, you should know that you can mark an answer accepted if it helped. It's a nice way of saying thanks and it helps the community too. Appreciate it! – coldspeed Aug 6 '17 at 19:00
  • @EvanH The grey check next to an answer is to be clicked. I see you got it but beware you can only mark one answer per question! – coldspeed Aug 6 '17 at 19:04

If the input file fileName contains characters different than vowels and consonants like . , \n a solution is to use re.split() and re.sub() instead of the method str.split():

import re
text = re.split("\s+", re.sub("[.,\n+]", " ", infile.read()))

The expresion re.sub("[.,\n+]", " ", infile.read()) will substitute the characters . , \n with whitespaces. Then the expresion re.split("\s+", re.sub("[.,\n+]", " ", infile.read()) will split the 'clean' infile.read() text using as criteria one of more repetition of whitespace characters

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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