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in this code I am trying to create a function anti_vowel that will remove all vowels (aeiouAEIOU) from a string. I think it should work ok, but when I run it, the sample text "Hey look Words!" is returned as "Hy lk Words!". It "forgets" to remove the last 'o'. How can this be?

text = "Hey look Words!"

def anti_vowel(text):

    textlist = list(text)

    for char in textlist:
        if char.lower() in 'aeiou':
            textlist.remove(char)

    return "".join(textlist)

print anti_vowel(text)
share|improve this question
8  
Testing and then removing has a N^2 complexity: just remove the char, whether it is present or not... (or use other suggested solutions) –  Don Jun 25 '13 at 14:28
1  
@Don: O(n^2) where n is what, the length of the input text? –  LarsH Jun 25 '13 at 18:13
27  
remove_vowels would be a better name than anti_vowel –  Gordon Gustafson Jun 25 '13 at 19:21
1  
Yes, but the 'if' is not that influent (it has complexity "5"): the N^2 is due to 'for' and '.remove' –  Don Jun 25 '13 at 19:26
2  
Just to simplify the logic: for char in 'aeiouAEIOU': textlist.remove(char) –  Don Jun 26 '13 at 7:32

8 Answers 8

up vote 137 down vote accepted

You're modifying the list you're iterating over, which is bound to result in some unintuitive behavior. Instead, make a copy of the list so you don't remove elements from what you're iterating through.

for char in textlist[:]: #shallow copy of the list
    # etc

To clarify the behavior you're seeing, check this out. Put print char, textlist at the beginning of your (original) loop. You'd expect, perhaps, that this would print out your string vertically, alongside the list, but what you'll actually get is this:

H ['H', 'e', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
e ['H', 'e', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
  ['H', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!'] # !
l ['H', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
o ['H', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
k ['H', 'y', ' ', 'l', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!'] # Problem!!
  ['H', 'y', ' ', 'l', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
W ['H', 'y', ' ', 'l', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
o ['H', 'y', ' ', 'l', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!'] 
d ['H', 'y', ' ', 'l', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
s ['H', 'y', ' ', 'l', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
! ['H', 'y', ' ', 'l', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
Hy lk Words!

So what's going on? The nice for x in y loop in Python is really just syntactic sugar: it still accesses list elements by index. So when you remove elements from the list while iterating over it, you start skipping values (as you can see above). As a result, you never see the second o in "look"; you skip over it because the index has advanced "past" it when you deleted the previous element. Then, when you get to the o in "Words", you go to remove the first occurrence of 'o', which is the one you skipped before.


As others have mentioned, list comprehensions are probably an even better (cleaner, clearer) way to do this. Make use of the fact that Python strings are iterable:

def remove_vowels(text): # function names should start with verbs! :)
    return ''.join(ch for ch in text if ch.lower() not in 'aeiou')
share|improve this answer
41  
+1 for detailed why, as opposed to other answers of this way is better... –  WernerCD Jun 25 '13 at 18:01
    
Very nice visual representation as well. When the issue is a misunderstanding of array indices, a version that shows (with the actual characters), rather than tells (with array index numbers) is a big plus! –  uptownnickbrown Jun 25 '13 at 21:09
    
str is iterable, filter would arguably be cleaner than a list comprehension. –  TC1 Jun 26 '13 at 12:21
    
@TC1 There's a case for filter and of course for str.translate as well. I personally think list comprehensions are more readable than either of those two; hence my choice :) –  Henry Keiter Jun 26 '13 at 13:49

Other answers tell you why for skips items as you alter the list. This answer tells you how you should remove characters in a string without an explicit loop, instead.

Use str.translate():

vowels = 'aeiou'
vowels += vowels.upper()
text.translate(None, vowels)

This deletes all characters listed in the second argument.

Demo:

>>> text = "Hey look Words!"
>>> vowels = 'aeiou'
>>> vowels += vowels.upper()
>>> text.translate(None, vowels)
'Hy lk Wrds!'
>>> text = 'The Quick Brown Fox Jumps Over The Lazy Fox'
>>> text.translate(None, vowels)
'Th Qck Brwn Fx Jmps vr Th Lzy Fx'

In Python 3, the str.translate() method (Python 2: unicode.translate()) differs in that it doesn't take a deletechars parameter; the first argument is a dictionary mapping Unicode ordinals (integer values) to new values instead. Use None for any character that needs to be deleted:

# Python 3 code
vowels = 'aeiou'
vowels += vowels.upper()
vowels_table = dict.fromkeys(map(ord, vowels))
text.translate(vowels_table)
share|improve this answer
    
Probably a note for python3 could be useful: text.translate(dict.fromkeys(map(ord, vowels))) –  Bakuriu Jun 25 '13 at 16:40
3  
This is a nice solution and I won't downvote, but this doesn't seem to answer the question (why did this happen) at all. –  Destrictor Jun 25 '13 at 16:45
6  
@Destrictor: The 'why' is really a dupe of many similar questions here on SO. –  Martijn Pieters Jun 25 '13 at 16:49
    
@Bakuriu: Indeed; the same applies to unicode.translate() on Python 2, which is the same type in any case. –  Martijn Pieters Jun 25 '13 at 16:53
    
I'd love to hear what is not helpful or wrong about my answer, to deserve a downvote. That way I can improve my answer! –  Martijn Pieters Jul 2 '13 at 12:30

Iterate over a shallow copy of the list using [:]. You're modifying a list while iterating over it, this will result in some letters being missed.

The for loop keeps track of index, so when you remove an item at index i, the next item at i+1th position shifts to the current index(i) and hence in the next iteration you'll actually pick the i+2th item.

Lets take an easy example:

>>> text = "whoops"
>>> textlist = list(text)
>>> textlist
['w', 'h', 'o', 'o', 'p', 's']
for char in textlist:
    if char.lower() in 'aeiou':
        textlist.remove(char)

Iteration 1 : Index = 0.

char = 'W' as it is at index 0. As it doesn't satisfies that condition you'll do noting.

Iteration 2 : Index = 1.

char = 'h' as it is at index 1. Nothing more to do here.

Iteration 3 : Index = 2.

char = 'o' as it is at index 2. As this item satisfies the condition so it'll be removed from the list and all the items to it's right will shift one place to the left to fill the gap.

now textlist becomes :

   0    1    2    3    4
`['w', 'h', 'o', 'p', 's']`

As you can see the other 'o' moved to index 2, i.e the current index so it'll be skipped in the next iteration. So, this is the reason some items are bring skipped in your iteration. Whenever you remove an item the next item is skipped from the iteration.

Iteration 4 : Index = 3.

char = 'p' as it is at index 3.

....


Fix:

Iterate over a shallow copy of the list to fix this issue:

for char in textlist[:]:        #note the [:]
    if char.lower() in 'aeiou':
        textlist.remove(char)

Other alternatives:

List comprehension:

A one-liner using str.join and a list comprehension:

vowels = 'aeiou'
text = "Hey look Words!"
return "".join([char for char in text if char.lower() not in vowels])

regex:

>>> import re
>>> text = "Hey look Words!"
>>> re.sub('[aeiou]', '', text, flags=re.I)
'Hy lk Wrds!'
share|improve this answer
    
re.sub('[aeiou]', '', flags=re.I) is easier (especially if the list of chars grows longer) –  Jon Clements Jun 25 '13 at 14:46
    
@JonClements Actually I was also searching about that, so thanks. –  Ashwini Chaudhary Jun 25 '13 at 15:03

You're modifying the data you're iterating over. Don't do that.

''.join(x for x in textlist in x not in VOWELS)
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text = "Hey look Words!"

print filter(lambda x: x not in "AaEeIiOoUu", text)

Output

Hy lk Wrds!
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You're iterating over a list and deleting elements from it at the same time.

First, I need to make sure you clearly understand the role of char in for char in textlist: .... Take the situation where we have reached the letter 'l'. The situation is not like this:

['H', 'e', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
                      ^
                    char

There is no link between char and the position of the letter 'l' in the list. If you modify char, the list will not be modified. The situation is more like this:

['H', 'e', 'y', ' ', 'l', 'o', 'o', 'k', ' ', 'W', 'o', 'r', 'd', 's', '!']
                      ^
char = 'l'

Notice that I've kept the ^ symbol. This is the hidden pointer that the code managing the for char in textlist: ... loop uses to keep track of its position in the loop. Every time you enter the body of the loop, the pointer is advanced, and the letter referenced by the pointer is copied into char.

Your problem occurs when you have two vowels in succession. I'll show you what happens from the point where you reach 'l'. Notice that I've also changed the word "look" to "leap", to make it clearer what's going on:

advance pointer to next character ('l') and copy to char

['H', 'e', 'y', ' ', 'l', 'e', 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                   -> ^
char = 'l'

char ('l') is not a vowel, so do nothing

advance pointer to next character ('e') and copy to char

['H', 'e', 'y', ' ', 'l', 'e', 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                        -> ^
char = 'e'

char ('e') is a vowel, so delete the first occurrence of char ('e')

['H', 'e', 'y', ' ', 'l', 'e', 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                           ^

['H', 'e', 'y', ' ', 'l',      'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                           ^

['H', 'e', 'y', ' ', 'l',   <- 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                           ^

['H', 'e', 'y', ' ', 'l', 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                           ^

advance pointer to next character ('p') and copy to char

['H', 'e', 'y', ' ', 'l', 'a', 'p', ' ', 'W', 'o', 'r', 'd', 's', '!']
                             -> ^
char = 'p'

When you removed the 'e' all the characters after the 'e' moved one place to the left, so it was as if remove had advanced the pointer. The result is that you skipped past the 'a'.

In general, you should avoid modifying lists while iterating over them. It's better to construct a new list from scratch, and Python's list comprehensions are the perfect tool for doing this. E.g.

print ''.join([char for char in "Hey look Words" if char.lower() not in "aeiou"])

But if you haven't learnt about comprehensions yet, the best way is probably:

text = "Hey look Words!"

def anti_vowel(text):

  textlist = list(text)
  new_textlist = []

  for char in textlist:
    if char.lower() not in 'aeiou':
      new_textlist.append(char)

    return "".join(new_textlist)

print anti_vowel(text)
share|improve this answer

List Comprehensions:

vowels = 'aeiou'
text = 'Hey look Words!'
result = [char for char in text if char not in vowels]
print ''.join(result)
share|improve this answer

Others have already explained the issue with your code. For your task, a generator expression is easier and less error prone.

>>> text = "Hey look Words!"
>>> ''.join(c for c in text if c.lower() not in 'aeiou')
'Hy lk Wrds!'

or

>>> ''.join(c for c in text if c not in 'AaEeIiOoUu')
'Hy lk Wrds!'

however, str.translate is the best way to go.

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protected by Ashwini Chaudhary Jun 30 '13 at 20:17

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