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I'm trying to write a regular expression in Java that will match a word of n length that has a at least x number of vowels in it.

So far I've come up with the following:

// match words that are length 10 and have at least 2 vowels in them
(?=\w{10})(?:[^aeiou\W]*[aeiuo]){2}\w+

This seems to work but also matches words greater than length 10, i.e.:

wildernesses - matches

volatilizations - matches

voiceprint - matches (this should be the only match)

I would like it so that the length=10 constraint is enforced. I suspect that it may have something to do with the fact that I'm adding letters (the vowels) to the length of the string, but I'm not certain. Any help / guidance will be appreciated.

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3  
Is it compulsory that you must need to use regular expression ? –  Bhavik Ambani Nov 17 '12 at 17:05
    
@Bhavik Java and JavaScript are very different. –  Kevin Nov 17 '12 at 17:07
    
@Kevin Sorry bro I just placed that' –  Bhavik Ambani Nov 17 '12 at 17:08

3 Answers 3

up vote 4 down vote accepted

Use word boundaries, \b, to prevent the match happening halfway through a word:

\b(?=\w{10}\b)(?:[^aeiou\W]*[aeiuo]){2,}[^aeiou\W]*\b

This will match:

wildernesses voiceprint volatilizations

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You can simplify greatly by using a simple lookahead (as a java String):

"(?i)\\b(?=([^aeiou ]*[aeiou]){2,})[a-z]{10}\\b"

Note that all other answers use \w for letters, but \w includes the underscore character, which is not a letter.

(?i) turns on case insensitivity.

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should not match "vxyceprznt" from: "wildernesses voiceprint vxyceprznt volatilizations" - I think ".*" violates the word boundaries - this should work: (?i)\b(?=([a-z]*[aeiou]){2,})[a-z]{10}\b –  moj Nov 17 '12 at 18:41
    
@moj you're right the regex did need fixing, but i fixed it another way. thanks for your comment! –  Bohemian Nov 17 '12 at 18:47
1  
I think "(?=(.*[aeiou].*?\b){2,})" forces one word boundery for every vowel. –  moj Nov 17 '12 at 19:12
    
@moj no. there's a non-greedy .*? before the end word boundary, which allows it to have any number of characters between the vowel and the \b, but being non-greedy it won't skip over a \b to do it –  Bohemian Nov 17 '12 at 19:15
    
yes, but the whole subexpression with "\b" must match at least 2 times - "vxyceprznt" from "wildernesses voiceprint vxyceprznt volatilizations" still matches - I think the two vowels are scattered over 2 words –  moj Nov 17 '12 at 19:42

Try this out... (?<=\b|\p{Punct})(?:(?i)(?:aeiou{2,})|(?:a-z&&[^aeiou]{3,}))(?<=\w{10})

Tested this against sample data which seems to work. In my example, I've accounted for punctuation.

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