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I'm trying to get the following code working, it should remove vowels from a user-inputted string of text.

def isVowel(text):
    if text in ("a", "e", "i", "o", "u", "A", "E", "I", "O", "U"):
        return True

def withoutVowels(text):
    for char in text:
        if(isVowel == True):
            text = text.replace(char, "")
    return text

The isVowel function is working fine, however it does not seem to evaluate correctly when I use it, why is this?

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What is an example of when it doesn't work correctly? –  Xymostech Mar 17 '13 at 1:25
1  
Side note: what withoutVowels() does is better done with import re; without_vowles = re.sub('[aeiou]', '', text, flags=re.IGNORECASE) or re.sub('[aeiouAEIOU]', '', text). –  EOL Mar 17 '13 at 1:38
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2 Answers

up vote 11 down vote accepted
if (isVowel == True):

should be

if isVowel(char):

isVowel is a function object. isVowel == True will always be False.


Note that you could also do this, faster and more simply with str.translate.

In [90]: 'Abracadabra'.translate(None, 'aeiouAEIOU')
Out[90]: 'brcdbr'

or, (as EOL points out) using regex:

In [93]: import re
In [95]: re.sub(r'(?i)[aeiou]', '', 'Abracadabra')
Out[95]: 'brcdbr'

However, str.translate is faster in this case:

In [94]: %timeit 'Abracadabra'.translate(None, 'aeiouAEIOU')
1000000 loops, best of 3: 316 ns per loop
In [96]: %timeit re.sub(r'(?i)[aeiou]', '', 'Abracadabra')
100000 loops, best of 3: 2.26 us per loop
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You can do this in one line, because Python is awesome:

def withoutVowels(text):
    return "".join(c for c in text if c not in "aeiouAEIOU")
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