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I have added the following regular expression for validating a mobile phone number:

(^07[1,2,3,4,5,7,8,9][0-9]{7,8}$)

I want to allow the user to enter a # character too and I'm not sure where to fit it in. They may need to enter # character after they have dialed a number, or at the beginning of a number to dial a direct number or an extension.

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So your phone numbers accept , as well! –  devnull Mar 4 at 11:25
    
(^07[1,2,3,4,5,7,8,9|#][0-9|#]{7,8}$)? –  user3378736 Mar 4 at 11:27
    
I am using c# language –  user3378736 Mar 4 at 11:28
    
Both acccept the 11 or 12 numbers, however are still not allowing # –  user3378736 Mar 4 at 11:32
    
You can use [1-9] rather than [1,2,3,4,5,7,8,9]? –  Knightsy Mar 4 at 11:33
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1 Answer 1

up vote 2 down vote accepted

First, your current regex matches 'numbers' of the format 07,12345678 as well. So you need to change [1,2,3,4,5,7,8,9] to [1-9] (when you have a - between two characters in a character class, it usually means that there's a range)

If you want to accept an optional # character, you can use the ? quantifier which means 0 or 1 times.

^#?07[1-9][0-9]{7,8}#?$

regex101 demo

Except that, as you can see in the demo, it will also match numbers with two hashes; one at the front and one at the end. One option to circumvent this is to use some conditionals (which C# can support).

^(#)?07[1-9][0-9]{7,8}(?(1)|#?)$

regex101 demo

(?(1)|#?) basically means that if the first hash was matched, then nothing more should be matched. Otherwise, if no hash was initially matched, then it can match a hash, if there is one at the end of the number.

In C#, it will be a bit like this:

Regex.Match(myString, @"^(#)?07[1-9][0-9]{7,8}(?(1)|#?)$");

Or you could use a negative lookahead to make sure there's never more than one hash in the number:

^(?!.*#.*#.*$)#?07[1-9][0-9]{7,8}#?$
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Nice way to handle the # only appearing once. –  Knightsy Mar 4 at 11:54
    
Great - thank you very much Jerry I will work on this now. –  user3378736 Mar 4 at 12:01
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