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I'm pretty sure my code is correct but it doesn't seem to returning the expected output:

input anti_vowel("Hey look words") --> outputs: "Hey lk wrds".

Apparently it's not working on the 'e', can anyone explain why?

def anti_vowel(c):
    newstr = ""
    vowels = ('a', 'e', 'i', 'o', 'u')
    for x in c.lower():
        if x in vowels:
            newstr = c.replace(x, "")        
    return newstr
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3 Answers 3

up vote 6 down vote accepted

The function str.replace(old, new[, max]) don't changes c string itself (wrt to c you calls) just returns a new string which the occurrences of old have been replaced with new. So newstr just contains a string replaced by last vowel in c string that is the o and hence you are getting "Hey lk wrds" that is same as "Hey look words".replace('o', '').

I think you can simply write anti_vowel(c) as:

''.join([l for l in c if l not in vowels]);

What I am doing is iterating over string and if a letter is not a vowel then only include it into list(filters). After filtering I join back list as a string.

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Shouldn't it be [l for l in c if l not in vowels]? –  IanAuld Feb 5 at 15:57
    
@lanAuld thanks Corrected. –  Grijesh Chauhan Feb 5 at 15:57
    
You can leave out the [] and use the implicit Generator instead of this intermediate List. –  Chris Wesseling Feb 5 at 15:59
    
@ChrisWesseling see stackoverflow.com/questions/9060653/… for a ''.join() call it is faster to use a list comprehension instead of a generator expression. –  Grijesh Chauhan Feb 5 at 16:00
    
@GrijeshChauhan :-) I was just in the process of timeit'ing it –  Chris Wesseling Feb 5 at 16:01

You should do this:

initialize newstr to c, and then

for x in c.lower():
    if x in vowels:
        newstr = newstr.replace(x, "")

That's because str.replace(old, new[, max]) returns the a copy of the string after replacing the characters:

The method replace() returns a copy of the string in which the occurrences of old have been replaced with new, optionally restricting the number of replacements to max.

So, this is the correct code:

def anti_vowel(c):
    newstr = c
    vowels = ('a', 'e', 'i', 'o', 'u')
    for x in c.lower():
        if x in vowels:
            newstr = newstr.replace(x,"")

    return newstr

You can also do it in a more pythonic way:

''.join([x for x in c if x not in vowels])
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why don't you do it with regexp? According to the documentation, something like this should work:

import re

def anti_wovel(s):
    result = re.sub(r'[AEIOU]', '', s, flags=re.IGNORECASE)
    return result

If you're using the function often, you could compile the regexp and use the compiled version.

share|improve this answer
    
A justification on downvote would be nice. –  Laur Ivan Feb 5 at 16:16
    
I don't know why people down-votes on a nice contribution(I downotes on wrong info), Indeed I don't know flag in re.sub your answer v. interesting to me. –  Grijesh Chauhan Feb 5 at 17:37
    
This seem like the best approach to me (only commenting because of the errent down vote) –  Jonathan Aug 7 at 19:13

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