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given the string below,

sentences = "He is a student. She is a teacher. They're students, indeed. Babies sleep much. Tell me the truth. Bell--push it!"

how can i print the words in the "sentences" that contain only one "e", but no other vowels? so, basically, i want the following:

He She Tell me the

my code below does not give me what i want:

for word in sentences.split():
    if re.search(r"\b[^AEIOUaeiou]*[Ee][^AEIOUaeiou]*\b", word):
        print word 

any suggestions?

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1  
what's the output of your code? –  das_weezul Nov 15 '12 at 21:15
    
Do you not want it to capture Bell? –  kreativitea Nov 15 '12 at 21:27
    
No, I do not need to capture Bell, because I split the string by a white space so that Bell-push is treated as a word as a whole.. –  user1775726 Nov 15 '12 at 21:29

2 Answers 2

You're already splitting out the words, so use anchors (as opposed to word boundaries) in your regular expression:

>>> for word in sentences.split():
...     if re.search(r"^[^AEIOUaeiou]*[Ee][^AEIOUaeiou]*$", word):
...         print word
He
She
Tell
me
the
>>> 
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Yes, this seems to work fine for now. Thanks!! –  user1775726 Nov 15 '12 at 21:30

Unless you're going for a "regex-only" solution, some other options could be:

others = set('aiouAIOU')
[w for w in re.split(r"[^\w']", sentence) if w.count('e') == 1 and not others & set(w)]

which will return a list of the matching words. That led me to a more readable version below, which I'd probably prefer to run into in a maintenance situation as it's easier to see (and adjust) the different steps of breaking down the sentence and the discrete business rules:

for word in re.split(r"[^\w']", sentence):
    if word.count('e') == 1 and not others & set(word):
        print word
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