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.

Question:

Define a function isVowel(char) that returns True if char is a vowel ('a', 'e', 'i', 'o', or 'u'), and False otherwise. You can assume that char is a single letter of any case (ie, 'A' and 'a' are both valid).

Do not use the keyword in. Your function should take in a single string and return a boolean.

Code Given:

def isVowel(char):
    '''
    char: a single letter of any case

    returns: True if char is a vowel and False otherwise.
    '''

My Code:

def isVowel(char):
    '''
    char: a single letter of any case

    returns: True if char is a vowel and False otherwise.
    '''
    if char == 'a' or 'e' or 'i' or 'o' or 'u' or 'A' or 'E' or 'I' or 'O' or 'U':
        return True
    else:
        return False

My Problem: My output is always True. What am I doing wrong?

share|improve this question
2  
Sigh, will teachers ever stop creating tasks that require you to write bad code that nobody knowing the language would ever write? –  ThiefMaster Feb 16 '13 at 21:24
    
@ThiefMaster. May be they want to teach some basics first. But, unfortunately they have chosen wrong problem for this == operator. –  Rohit Jain Feb 16 '13 at 21:27
1  
"Do not use the keyword in". What they are trying to teach, how to be a stupid coder? –  darque Feb 16 '13 at 21:54
    
@user2066771 Remember to mark an answer accepted. –  Rohit Jain Feb 16 '13 at 21:55

7 Answers 7

up vote 7 down vote accepted

Your if statement:

if char == 'a' or 'e' or 'i' or 'o' or 'u' or 'A' or 'E' or 'I' or 'O' or 'U':
        return True

is equivalent to:

if (char == 'a') or 'e' or 'i' or 'o' or 'u' or 'A' or 'E' or 'I' or 'O' or 'U':

which will always be evaluated to either True, or e which is also True, and hence your function always returns True.

Change your if-statement to:

if char == 'a' or char == 'e' or char == 'i' so on...:
        return True

But, this problem is really simple if you can use in operator. This goes like this:

def isVowel(char):
    return char.lower() in 'aeiou'
share|improve this answer
1  
they don't actually need the if statement, just return char == 'a' or char == etc. –  gdbdmdb Feb 16 '13 at 21:48

Python doesn't read like English. You'd expect your code to work, but it's evaluated like this:

if (char == 'a') or ('b') or ('c') ...

'a' is truthy (not False, 0, None, etc.), so your if statement will always evaluate to True.

To fix your code, you have to write exactly what you mean:

if char == 'a' or char == 'b' or ...

Or just use in:

if char.lower() in 'aeiou':
    ...
share|improve this answer

First of all, this is how you are supposed to do it without stupid restrictions:

def is_vowel(char):
    return char.lower() in 'aeiou'

Since you cannot use the in operator. I assume the in from the loop is allowed:

def is_vowel(char):
    char = char.lower()
    return any(char == c for c in 'aeiou')

If that's still a no-go, here's something that is not really nice but differs from the or chain in the other answers:

def is_vowel(char):
    return is_in_list(char.lower(), 'aeiou')

def is_in_list(char, lst):
    if not lst:
        return False
    if char == lst[0]:
        return True
    return is_in_list(char, lst[1:])

Last but not least, you can avoid using the in operator while still using its functionality:

def is_vowel(char):
    return 'aeiou'.__contains__(char.lower())

Obviously this is most likely not what your professor/teacher expects - but it would show him that you are smart (or he already saw this post and will know you didn't do your homework on your own).

share|improve this answer
    
in not allowed –  Tshepang Feb 16 '13 at 21:22
    
It's homework. That's why there are restrictions. –  Spencer Ruport Feb 16 '13 at 21:24
    
You could use 'aeiou'.__contains__(char.lower()) to get around the in restriction. –  Blender Feb 16 '13 at 21:26
    
@Blender. I guess if in is not allowed, then sure OP wouldn't know about this method too. –  Rohit Jain Feb 16 '13 at 21:29
    
@ThiefMaster.. haha. The last line. ROFL. And what if teacher came here to get a better solution himself? ;) –  Rohit Jain Feb 16 '13 at 21:32
def is_vowel(char):
    try:
            'aeiou'.index(char.lower())
            return True
    except: 
            return False
share|improve this answer

I use Xcode on my Mac, but I think the results should be the same.

//Program: Vowels      
#include < iostream >
#include < cctype >

using namespace std;

bool isVowel (char ch);

int main()    
{
    char ch;

    cout << "Enter a letter and I will tell you if it is a vowel: \n" ;      
    cin >> ch;      
    cout << isVowel(ch) << endl;
}

bool isVowel(char ch)    
{       
    ch= tolower(ch);
    if (ch=='a' || ch=='e' || ch=='i' || ch=='o' || ch=='u') {
        return true;
    }
    return false;
}
share|improve this answer
def is_vowel(char):
    return False if 'aeiouAEIOU'.find(char) < 0 else True
share|improve this answer

Write a function that takes a character (i.e. a string of length 1) and returns True if it is a vowel, False otherwise.

vowel = ['a','e','i','o','u']

def return_vowel(x):
    if x in vowel:
        print "true"
    else:
        print "False"
return_vowel('a')

This program basically takes a string from the function return_vowel and returns True if its a vowel.

share|improve this answer
    
Please don't answer questions if your answer adds nothing of value. This problem was solved more than a year ago and your answer is basically just a wrong and more verbose version of the accepted answer - wrong because you don't account for uppercase chars and you print "true"/"false" instead of returning it. But even if your answer were correct, it would still be useless noise as long as it doesn't add anything of value that the accepted 15-month-old answer is missing. –  l4mpi May 6 at 13:24
    
Thanks much for advising me .. I will make sure that I give answers upto the mark of your expectations. Never the less I like challenges and your comment is basically one motivating factor for me. #Just wait and Watch. #Chill –  TougherApollo1 May 6 at 13:51

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.