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I am trying to remove all the words with an odd number of vowels with regex.

I tried stuff like [aeoui][^aeoui]*([aeoui][^aeoui]*[aeoui][^aeoui]*)

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How about:

(^|\W)([^aeoui\W]*([aeoui][^aeoui\W]*[aeoui][^aeoui\W]*)*[aeoui][^aeoui\W]*)(\W|$)

Edit: I don't know the exact syntax of vi, but the used elements should be available in vi I hope.

The word itself can be found in the second group.

share|improve this answer
    
what does the \W do? – sgmeysma Oct 31 '12 at 14:10
    
\W is a non-word character. I use it to seperate words. If you leave the \W out, then "a aa" would be one whole match instead of the first word matching and the second one not. – Skyte Oct 31 '12 at 14:15
    
@user1788639 If this solution works for you, please accept this answer by using the check mark. – Skyte Nov 1 '12 at 9:28
    
hmm, no, it doesnt work. this still gives me all te words( also these with an even number of vowels) – sgmeysma Nov 2 '12 at 13:38

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