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I use the following regex for matching words with a length of 4 that has 1 number and 3 capital letters:

\b(?=[A-Z]*\d[A-Z]*\b)[A-Z\d]{4}\b

What I would like to know is how I need to modify the expression to filter out words with a length of 10, that contains 0-2 numbers.

\b(?=[A-Z]*\d[A-Z]*\b)[A-Z\d]{10}\b

This will work for 1 number occurence, but how do i extend it to filter 0 and 2 numbers as well?

Sample: http://regexr.com?32u40

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1  
Are the numbers always going to be adjacent? If that is the case, this should work: \b(?=[A-Z]*\d{0,2}[A-Z]*\b)[A-Z\d]{10}\b –  Asad Nov 25 '12 at 20:04
    
@Asad Yes, sorry for not mentioning it. –  Johan Nov 25 '12 at 20:11

1 Answer 1

up vote 4 down vote accepted

Put the length check into the lookahead:

\b(?=[A-Z\d]{10}\b)(?:[A-Z]*\d){0,2}[A-Z]*\b

Explanation:

\b           # Start at a word boundary
(?=          # Assert that...
 [A-Z\d]{10} # 10 A-Z/digits follow
 \b          # until the next word boundary.
)            # (End of lookahead)
(?:          # Match...
 [A-Z]*      # Any number of ASCII uppercase letters
 \d          # and exactly one digit
){0,2}       # repeat 0, 1 or 2 times.
[A-Z]*       # Match any number of letters
\b           # until the next word boundary.
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Thumbs up. Looks correct, but still returns a positive match with value of "" where the lookahead matches, but where the value contains too many numbers. Add a filter to remove those: x.match(/\b(?=[A-Z\d]{10})(?:[A-Z]*\d){0,2}[A-Z]*\b/g).filter(function(y){retur‌​n y.length == 10}); –  Steven Moseley Nov 25 '12 at 20:16
    
@TheSmose: Thanks; I had misread the question and thought there should be 10 characters or more. I've corrected the regex - one additional word boundary is enough, no need for a filter. –  Tim Pietzcker Nov 25 '12 at 21:11

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