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How would I write a regular expression that allows for zero or more of one group, and zero or more of another group, but at least one of the two groups has to exist?

Specifically, I want to get a spreadsheet like reference, so it should get A1:B5 (for a whole region), A:A (for a whole column), or 5:5 (for a whole row).

I first tried

[A-Za-z]*[\d]*:[A-Za-z]*[\d]*

but this wouldn't be sufficient because then simply typing : or B6: would also satisfy that criteria.

Any help would be appreciated.

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Something like: ^(?:([a-zA-Z]+\d+:[a-zA-Z]+\d+)|\d+:\d+|[a-zA-Z]+:[a-zA-Z]+)$? (example) –  Brad Christie Apr 23 '12 at 0:44
    
Brad, great solution, would love to give you credit for this, but being that it's a comment, I can't. You should repost it as a real answer. –  Avi Apr 23 '12 at 0:53
    
DigitalRoss has basically what I had in their edit (except the lowercase variety), you can give them the points. ;-) –  Brad Christie Apr 23 '12 at 0:55
    
Brad, can you explain what the purpose of the first question mark + colon is? It seems superfluous to me. –  Avi Apr 23 '12 at 1:09
    
Non-capturing group. Just makes it so it needs to match, but doesn't necessarily need to return a result back. –  Brad Christie Apr 23 '12 at 1:26

2 Answers 2

You can do this with grouping...

/((how)|(now))+/

If you want to match a range but not a cell reference, you could just enumerate the ways to do that:

([A-Z]:[A-Z])|(\d+:\d+)|([A-Z]\d+:[A-Z]\d+)
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This is nice, but not quite perfect, as it also captures the first part of something like A:B20, which is invalid. –  Avi Apr 23 '12 at 1:00
    
Adjusted your approach to ^([A-Z]:[A-Z])$|^(\d+:\d+)$|^([A-Z]\d+:[A-Z]\d+)$ to avoid that problem. Thanks! –  Avi Apr 23 '12 at 1:07

One way would be an explicit alternation:

(?:[a-zA-Z]+|\d+|[a-zA-Z]+\d+):(?:[a-zA-Z]+|\d+|[a-zA-Z]+\d+)

If your engine supports lookbehind, however, you could use that:

(?>[a-zA-Z]*\d*(?<=.)):(?>[a-zA-Z]*\d*)(?<=.))

This says "zero or more letters, followed by zero or more numbers, which must end in at least one character (.). That guarantees it won't be empty. The atomic grouping (?>...) means that the lookbehind (?<=.) can't match whatever came before that point.

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