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I want a regex to validate inputs of the form AABBAAA, where A is a a letter (a-z, A-Z) and B is a digit (0-9). All the As must be the same, and so must the Bs.

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Just in case you haven't been there before regular-expressions.info –  Chris Klepeis Dec 29 '09 at 19:14

3 Answers 3

up vote 6 down vote accepted

If all the A's and B's are supposed to be the same, I think the only way to do it would be:

([a-zA-Z])\1([0-9])\2\1\1\1

Where \1 and \2 refer to the first and second parenthetical groupings. However, I don't think all regex engines support this.

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+1 for backreferences, supported by at least Basic and Extended POSIX REs and perl. While probably not what the questioner wants, it is a valid reading of the question. –  pilcrow Dec 29 '09 at 19:27
    
True. This way AB12CDE will not match but AA11AAA will; I doubt that's what the OP wants, but it very well could be. –  Michael Myers Dec 29 '09 at 19:39

It's really not as hard as you think; you've got most of the syntax already.

[a-zA-Z]{2}[0-9]{2}[a-zA-Z]{3}

The numbers in braces ({}) tell how many times to match the previous character or set of characters, so that matches [a-zA-Z] twice, [0-9] twice, and [a-zA-Z] three times.

 
Edit: If you want to make sure the matched string is not part of a longer string, you can use word boundaries; just add \b to each end of the regex:

\b[a-zA-Z]{2}[0-9]{2}[a-zA-Z]{3}\b

Now "Ab12Cde" will match but "YZAb12Cdefg" will not.

 
Edit 2: Now that the question has changed, backreferences are the only way to do it. edsmilde's answer should work; however, you may need to add the word boundaries to get your final solution.

\b([a-zA-Z])\1([0-9])\2\1\1\1\b
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You can also use \d{2} instead of [0-9]{2}, depending on your preference. –  kejadlen Dec 29 '09 at 19:16
5  
Should this be anchored, to prohibit, say, BBAABBAAABB? –  pilcrow Dec 29 '09 at 19:18
    
Not in the specification. ;) –  Michael Myers Dec 29 '09 at 19:24
[a-zA-Z]{2}\d{2}[a-zA-Z]{3}
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