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I'm a freshman in college, who's taking a python coding class. Currently I'm working on making a program count the amount of vowels or consonants based on a user's input to determine the mode.

currently, I've made two lists, and I'm trying to find out how to program python to count the vowels/consonants.

This is what I have so far - please keep in mind, I've worked on both ends, and the center is where the counting goes.

#=======================================#
#Zane Blalock's Vowel/Consonants Counter#
#=======================================#

print("Welcome to the V/C Counter!")

#Make List
vowels = list("aeiouy")
consonants = list("bcdfghjklmnpqrstvexz")

complete = False
while complete == False:
    mode = input("What mode would you like? Vowels or Consonants?: ").lower().strip()
    print("")
    print("You chose the mode: " + str(mode))
    print("")
    if mode == "vowels":
        word = input("Please input a word: ")
        print("your word was: " + str(word))
        print("")



        choice = input("Are you done, Y/N: ").lower().strip()
        if choice == "y":
            complete = True
        else:
            print("Ok, back to the top!")
    elif mode == "consonants":
        word = input("please input a word: ")
        print("your word was: " + str(word))
        print("")


        choice = input("Are you done, Y/N: ").lower().strip()
        if choice == "y":
            complete = True
        else:
            print("Ok, back to the top!")
    else:
        print("Improper Mode, please input a correct one")

print("Thank you for using this program")
share|improve this question
    
Yeah, no one cares about the bookends. Only the function that does the work matters. –  Ignacio Vazquez-Abrams Oct 12 '11 at 6:42
1  
None of the code you've pasted pertains to counting characters. What have you tried, and where are you stuck? –  Nick Johnson Oct 12 '11 at 6:44
    
Is e a consonant? –  joaquin Oct 12 '11 at 7:05
    
I removed it because nothing was working. (Hence where I said the big chunk spaces were where the good would go.) What I was doing before is making using similar questions I found on google such as the .count() method, but from what I found, the particular set-up was not working. I found one of the answers that makes more sense that I'm to test. Thank you for the help. –  ZenOokami Oct 12 '11 at 20:01
    
Thank you, slight typo. –  ZenOokami Oct 13 '11 at 6:36
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4 Answers

up vote 5 down vote accepted
number_of_consonants = sum(word.count(c) for c in consonants)

number_of_vowels = sum(word.count(c) for c in vowels)
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This is better than my solution using filter() –  spicavigo Oct 12 '11 at 7:04
    
A small change will make your solution a bit faster. Instead of generator use the exact list sum([word.count(c) for c in consonants]). You can afford to do that as the list is not too big. –  spicavigo Oct 12 '11 at 7:17
    
@spicavigo - are you sure the list solution is faster? With consonants and "hello world" it is 17% slower. But with consonants and string.letters * 1000 it is about the same speed. –  eumiro Oct 12 '11 at 7:20
    
I think mine would bite yours :), regex rocks! –  scriptmonster Oct 12 '11 at 7:37
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if mode == "vowels":
    print(len(filter(lambda x: x in vowels, word)))
else:
    print(len(filter(lambda x: x in consonants, word)))

So I timed my and eumiro's solution. His is better

>> vc=lambda :sum(word.count(c) for c in vowels)
>> vc2=lambda : len(filter(lambda x: x in vowels, word))
>> timeit.timeit(vc, number=10000)
0.050475120544433594
>> timeit.timeit(vc2, number=10000)
0.61688399314880371
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Good and concise solution, but a novice in Python probably will not understand it. It would be nice to add a few sentences explaining the code. –  Bolo Oct 12 '11 at 7:02
    
^ Exactly, but references non the less are always a good thing! I've actually found some "lambda" things from other similar questions, and was actually reading up on the documentation of it. Non the less, thank you for all of the help! –  ZenOokami Oct 12 '11 at 20:06
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Using regex would be an alternative:

>>> import re
>>> re.findall('[bcdfghjklmnpqrstvwxyz]','there wont be any wovels in the result') 
['t', 'h', 'r', 'n', 't', 'b', 'n', 'v', 'l', 's', 'n', 't', 'h', 'r', 's', 'l', 't']

If you take its length your problem is solved.

text = 'some text'

wovels = 'aeiou'
consonants = 'bcdfghjklmnpqrstvwxyz'

from re import findall
wovelCount = len(findall('[%s]' % wovels, text))
consonatCount = len(findall('[%s]' % consonants, text))
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Python 2.6.7 (r267:88850, Jun 27 2011, 13:20:48) [MSC v.1500 64 bit (AMD64)] on win32
Type "help", "copyright", "credits" or "license" for more information.
>>> a = "asfdrrthdhyjkae"
>>> vowels = "aeiouy"
>>> consonants = "bcdfghjklmnpqrstvexz"
>>> nv = 0
>>> nc = 0
>>> for char in a:
...     if char in vowels:
...         nv += 1
...     elif char in consonants:
...         nc += 1
...         
>>> print nv
4
>>> print nc
11
>>> 
share|improve this answer
    
What if I add 'y' in both 'vowels' and 'consonants'? ;) –  Nick Johnson Oct 12 '11 at 6:58
    
then do not use elif, use if and you will get y counted in both nv or nc. But why you want to do that? In any case the OP seems to consider y as a vowel. –  joaquin Oct 12 '11 at 7:01
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