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I have a function isvowel that returns either True or False, depending on whether a character ch is a vowel.

    def isvowel(ch):
          if "aeiou".count(ch) >= 1:
              return True
          else:
              return False

I want to know how to use that to get the index of the first occurrence of any vowel in a string. I want to be able to take the characters before the first vowel and add them end of the string. Of course, I can't do s.find(isvowel) because isvowel gives a boolean response. I need a way to look at each character, find the first vowel, and give the index of that vowel.

How should I go about doing this?

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1  
This seems extremely similar to this question: stackoverflow.com/questions/12544302/python-string-and-lists Many of the answers there involve determining the index of the 1st vowel occurrence in a string. –  Adam Parkin Sep 23 '12 at 18:32
    
Are you trying to make a Pig Latin converter? –  eboix Sep 23 '12 at 19:20

5 Answers 5

up vote 0 down vote accepted
[isvowel(ch) for ch in string].index(True)
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3  
From an efficiency POV this isn't ideal, if you have the string "a" followed by 1000 characters, then you'll have to process all 1001 characters through isvowel() even though you could know after only looking at the 1st. –  Adam Parkin Sep 23 '12 at 18:34
    
Thank you! This is a very simplistic solution. @Adam the string will have no more than 50 characters –  Aei Sep 23 '12 at 18:35
1  
I agree with Adam. I wish list comprehension has way to break early. –  swang Sep 23 '12 at 18:39
1  
It does. See my answer. –  marr75 Sep 23 '12 at 18:40
    
Even if the string will not have too many characters, it is wise to use a more efficient solution simply it can often times come in handy in the future should you decide to further expand/develop your project. Having said that, the choice is really yours. –  arshajii Sep 23 '12 at 19:19

You can always try something like this:

import re

def first_vowel(s):
    i = re.search("[aeiou]", s, re.IGNORECASE)
    return -1 if i == None else i.start()

s = "hello world"
print first_vowel(s)

Or, if you don't want to use regular expressions:

def first_vowel(s):
    for i in range(len(s)):
        if isvowel(s[i].lower()):
            return i
    return -1

s = "hello world"
print first_vowel(s)
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(ch for ch in string if isvowel(ch)).next()

or for just the index (as asked):

(index for ch, index in itertools.izip(string, itertools.count()) if isvowel(ch)).next()

This will create an iterator and only return the first vowel element. Warning: a string with no vowels will throw StopIteration, recommend handling that.

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2  
Since I think the OP needs the index, something like next(i for i,c in enumerate(s) if isvowel(c)) would probably work better. –  DSM Sep 23 '12 at 18:42
    
Yep, pretty easy change. I do like your use of enumerate(s) better than using itertools, I'll remember that one. –  marr75 Sep 23 '12 at 18:45

Here is my take:

>>> vowel_str = "aeiou"

>>> def isVowel(ch,string):
...     if ch in vowel_str and ch in string:
...             print string.index(ch)
...     else:
...             print "notfound"
... 
>>> isVowel("a","hello")
not found

>>> isVowel("e","hello")
1
>>> isVowel("l","hello")
not found

>>> isVowel("o","hello")
4
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Using next for a generator is quite efficient, it means you don't iterate though the entire string (once you have found a string).

first_vowel(word):
    "index of first vowel in word, if no vowels in word return None"
    return next( (i for i, ch in enumerate(word) if is_vowel(ch), None)
is_vowel(ch):
    return ch in 'aeiou'
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