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I am trying to combine 2 regular expressions into 1 with the OR operator: |

I have one that checks for match of a letter followed by 8 digits:

Regex.IsMatch(s, "^[A-Z]\d{8}$")


I have another that checks for simply 9 digits:

Regex.IsMatch(s, "^\d{9}$")


Now, Instead of doing:

If Not Regex.IsMatch(s, "^[A-Z]\d{8}$") AndAlso
   Not Regex.IsMatch(s, "^\d{9}$") Then 
    ...
End If


I thought I could simply do:

If Not Regex.IsMatch(s, "^[A-Z]\d{8}|\d{9}$") Then
    ...
End If


Apparently I am not combining the two correctly and apparently I am horrible at regular expressions. Any help would be much appreciated.

And for those wondering, I did take a glance at How to combine 2 conditions and more in regex and I am still scratching my head.

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Another way to write it would be "^[A-Z0-9]\d{8}$" (an uppercase letter or number followed by 8 numbers). I don't see a problem with your regex, though. Can you provide some examples of strings that should / should not match? –  Patrick McElhaney Apr 10 '12 at 18:46
    
@PatrickMcElhaney Valid entries would be: A1234578 OR 123456789 –  Code Maverick Apr 10 '12 at 18:47
    
@Scott Patrick's suggestion supports both, as does Mike C's answer below with the same regex. –  Chris Shain Apr 10 '12 at 18:49
    
@PatrickMcElhaney Since you put that answer 1 minute before MikeC, I'll give you the check mark if you leave an answer, otherwise I will mark MikeC's answer. Let me know –  Code Maverick Apr 10 '12 at 18:52
    
Scott - normally, if i see that someone beat me out with the same answer, I will delete my post - however, the times I am seeing are showing that I was first by a minute. The choice is yours, tho :-) –  Mike C Apr 10 '12 at 18:54

5 Answers 5

up vote 20 down vote accepted

How about using ^[A-Z0-9]\d{8}$ ?

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+1, more efficient than the others. –  Griffin Apr 10 '12 at 18:47
2  
Thank you so much. I can't believe I didn't try that during my tinkering. Regex gives me tired head when I start thinking about it, lol. –  Code Maverick Apr 10 '12 at 18:56

The | operator has a high precedence and in your original regex will get applied first. You should be combining the two regex's w/ grouping parentheses to make the precedence clear. As in:

"^(([A-Z]\d{8})|(\d{9}))$"
share|improve this answer
    
+1 for correct answer as well, but I have to mark another answer for its simplicity. Thanks for your input! –  Code Maverick Apr 10 '12 at 18:57
    
Just curious about the semantics of your statement: are you not counting the grouping parentheses as "operator"s? If not, what are they? "construct"s? –  Code Jockey Apr 10 '12 at 19:57
    
Well, yes, you're correct -- I'm being imprecise w/ my language. It's a habit from explaining it to people -- they naturally accept that grouping parentheses override the order of precedence and then think about all the other operators after that. But it's good to be exact, so I'll clarify. –  Mike Ryan Apr 10 '12 at 20:44
    
@CodeJockey I've considered writing more, but your answer provides an excellent summary of this case, and there's no need to repeat it. –  Mike Ryan Apr 10 '12 at 21:05

I think you want to group the conditions:

Regex.IsMatch(s, "^(([A-Z]\d{8})|(\d{9}))$")

The ^ and $ represent the beginning and end of the line, so you don't want them considered in the or condition. The parens allow you to be explicit about "everything in this paren" or "anything in this other paren"

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+1 for being 1st with a working example. I will have to mark another answer for its simplicity though. Thank you for your fast input. –  Code Maverick Apr 10 '12 at 18:52
    
Sure, no problem –  Chris Shain Apr 10 '12 at 18:53

@MikeC's offering seems the best:

^[A-Z0-9]\d{8}$

...but as to why your expression is not working the way you might expect, you have to understand that the | "or" or "alternation" operator has a very high precedence - the only higher one is the grouping construct, I believe. If you use your example:

^[A-Z]\d{8}|\d{9}$

...you're basically saying "match beginning of string, capital letter, then 8 digits OR match 9 digits then end of string" -- if, instead you mean "match beginning of string, then a capital letter followed by 8 digits then the end of string OR the beginning of the string followed by 9 digits, then the end of string", then you want one of these:

^([A-Z]\d{8}|\d{9})$
^[A-Z]\d{8}$|^\d{9}$

Hope this is helpful for your understanding

share|improve this answer
    
I actually tried ^[A-Z]\d{8}$|^\d{9}$ at regexpal.com before posting, but it wasn't working for me. Oddly enough, I went back and tried it again, and now it does. However, MikeC's answer does the exact same thing without the need for the OR. So, that to me is the best case scenario. +1 for effort and explanation though. –  Code Maverick Apr 10 '12 at 19:09
    
@Scott happy to help :) –  Code Jockey Apr 10 '12 at 19:11

I find the OR operator a bit weird sometimes as well, what I do I use groups to denote which sections I want to match, so your regex would become something like so: ^(([A-Z]\d{8})|(\d{9}))$

share|improve this answer
    
I actually tried this before I posted the question and this doesn't work. It will find a match in A1234567890 which has too many digits. Wrapping parens around the whole thing solves that, as the other 2 paren answers show. –  Code Maverick Apr 10 '12 at 18:59
    
@Scott: Thanks for the tip. I have updated the answer I gave. –  npinti Apr 10 '12 at 19:22
    
+1 for correct answer –  Code Maverick Apr 10 '12 at 20:30

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