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my code so far, but since i'm so lost it doesn't do anything close to what I want it to do:

vowels = 'a','e','i','o','u','y'
#Consider 'y' as a vowel

input = input("Enter a sentence: ")

words = input.split()
if vowels == words[0]:
    print(words)

so for an input like this:

"this is a really weird test"

I want it to only print:

this, is, a, test

because they only contains 1 vowel.

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Expected output for ""thiis iis a"? –  undefined is not a function Mar 12 '13 at 2:25
4  
input = input(...) bad idea - you're rebinding the builtin input so next time you try to use it, it will fail –  gnibbler Mar 12 '13 at 2:39
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8 Answers 8

Try this:

vowels = set(('a','e','i','o','u','y'))

def count_vowels(word):
    return sum(letter in vowels for letter in word)

my_string = "this is a really weird test"

def get_words(my_string):
    for word in my_string.split():
        if count_vowels(word) == 1:
            print word

Result:

>>> get_words(my_string)
this
is
a
test
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I'm not sure if this is easier to read, but maybe sum(1 for letter in word if letter in vowels) would also work. –  mgilson Mar 12 '13 at 2:26
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Here's another option:

import re

words = 'This sentence contains a bunch of cool words'

for word in words.split():
    if len(re.findall('[aeiouy]', word)) == 1:
        print word

Output:

This
a
bunch
of
words
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[w for w in words.split() if re.match('[^aeiouy]*[aeiouy][^aeiouy]*$', w). regex is slow for this though –  gnibbler Mar 12 '13 at 4:17
    
I suggest to compile the regular expression (both in Kenosis and gnibbler). The pattern is fixed, and the regular expression is likely to be reused many times. Compiled regular expresions are pretty fast. –  pepr Mar 12 '13 at 14:29
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You can translate all the vowels to a single vowel and count that vowel:

import string
trans = string.maketrans('aeiouy','aaaaaa')
strs = 'this is a really weird test'
print [word for word in strs.split() if word.translate(trans).count('a') == 1]
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1  
Hmmm ... I guess nobody likes the translation table ... –  mgilson Mar 12 '13 at 2:37
    
How about a short circuiting version that stops if count('a') gets to 2? –  gnibbler Mar 12 '13 at 3:38
    
@gnibbler -- In most usual cases, I've found that a simple count out-performs the short-circuiting version simply due to the overhead associated with the generator (and the efficiency of str.count). e.g. see this answer –  mgilson Mar 12 '13 at 3:44
    
Yeah it was tongue in cheek. Your version is faster than mine (at least for the given string) by the way. I expect it's because str.translate is faster when doing translations than deletions. –  gnibbler Mar 12 '13 at 4:07
    
@gnibbler -- maybe. You also have 2 global lookups with len for each word whereas I don't have any. For smallish strings, that might be a performance consideration ... –  mgilson Mar 12 '13 at 5:02
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>>> s = "this is a really weird test"
>>> [w for w in s.split() if len(w) - len(w.translate(None, "aeiouy")) == 1]
['this', 'is', 'a', 'test']

Not sure if words with no vowels are required. If so, just replace == 1 with < 2

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Clever way to avoid the string import that I needed and also only iterating over the substring once (where mine does it twice). I'm not sure if I would rather read this version or my version, but ... +1 –  mgilson Mar 12 '13 at 3:47
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You may use one for-loop to save the sub-strings into the string array if you have checked he next character is a space. Them for each substring, check if there is only one a,e,i,o,u (vowels) , if yes, add into the another array

aFTER THAT, FROM another array, concat all the strings with spaces and comma

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This question is tagged with python, strings arrays? –  undefined is not a function Mar 12 '13 at 2:19
    
you need to refer this, it really exists jpython.blogspot.hk/2010/08/string-array.html –  Raju Gujarati Mar 12 '13 at 2:21
1  
That's a list not array. –  undefined is not a function Mar 12 '13 at 2:23
    
You mean , words=[] is a list ? –  Raju Gujarati Mar 12 '13 at 2:25
    
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Try this:

vowels = ('a','e','i','o','u','y')
words = [i for i in input('Enter a sentence ').split() if i != '']
interesting = [word for word in words if sum(1 for char in word if char in vowel) == 1]
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i found so much nice code here ,and i want to show my ugly one:

v = 'aoeuiy'
o = 'oooooo'

sentence = 'i found so much nice code here'

words = sentence.split()

trans = str.maketrans(v,o)

for word in words:
    if not word.translate(trans).count('o') >1:
        print(word)
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I find your lack of regex disturbing.

Here's a plain regex only solution (ideone):

import re

str = "this is a really weird test"

words = re.findall(r"\b[^aeiouy\W]*[aeiouy][^aeiouy\W]*\b", str)

print(words)
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