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I have a phone number field with the following regex:

[RegularExpression(@"^[0-9]{10,10}$")]

This checks input is exactly 10 numeric characters, how should I change this regex to allow spaces to make all the following examples validate

1234567890
12 34567890
123 456 7890

cheers!

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1
  • Are you sure that's the right regex? That looks more like an email validator
    – Blorgbeard
    Jul 19, 2012 at 3:41

5 Answers 5

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16

This works:

^(?:\s*\d\s*){10,10}$

Explanation:

^ - start line
(?: - start noncapturing group
\s* - any spaces
\d - a digit
\s* - any spaces
) - end noncapturing group
{10,10} - repeat exactly 10 times
$ - end line

This way of constructing this regex is also fairly extensible in case you will have to ignore any other characters.

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  • Btw, \s will match any whitespace, not just a space character. OP might want to match any whitespace, but he did say "spaces".
    – Michael Graczyk
    Jul 19, 2012 at 4:10
  • @Michael Graczyk - good point; \s will indeed match various sorts of spaces (not sure if all, like zero-width space and other fancy spaces). If only some of them are allowed, like only the ` ` character you get by pressing spaceber, might list them like [ ]* or ` *` instead of \s*
    – Eugene Ryabtsev
    Jul 19, 2012 at 4:17
  • Thanks Eugene, nice one on the explanation too
    – MikeW
    Jul 19, 2012 at 6:27
  • This solution counts the spaces as part of the 10 characters. Counting only the numbers is considerably harder and messier with a pure regex approach.
    – Dominic Cronin
    Jul 20, 2012 at 5:18
  • @Dominic Cronin - in fact, it counts groups (?:) of \s*\d\s*. With slight modification it could count any other groups. Currently, one group contains exactly one digit, which gives 10 groups of 1 digit each and an unknown number of whitespace of unknown type.
    – Eugene Ryabtsev
    Jul 20, 2012 at 6:29
1

Use this:

^([\s]*\d){10}\s*$

I cheated :) I just modified this regex here:

Regular expression to count number of commas in a string

I tested. It works fine for me.

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1

Use this simple regex

var matches = Regex.Matches(inputString, @"([\s\d]{10})");

EDIT

var matches = Regex.Matches(inputString, @"^((?:\s*\d){10})$");

explain:

   ^             the beginning of the string

  (?: ){10}      group, but do not capture (10 times):

  \s*            whitespace (0 or more times, matching the most amount possible)

  \d             digits (0-9)

  $              before an optional \n, and the end of the string
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3
  • Nah, [\s\d]{10} would not work - it takes 10 characters, some of them spaces and some of them digits.
    – Eugene Ryabtsev
    Jul 19, 2012 at 3:51
  • @Ria You didn't test your code well enough. Console.WriteLine(Regex.Match(new string(' ', 10), @"([\s\d]{10})").Success); definitely prints true.
    – Michael Graczyk
    Jul 19, 2012 at 4:04
  • Still wrong: Console.WriteLine(Regex.Match(new string('0', 11), @"((?:\s*\d){10})").Success); prints true. You need to check for the beginning and end of the string. See Eugene's answer.
    – Michael Graczyk
    Jul 19, 2012 at 4:09
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Depending on your problem, you might consider using a Match Evaluator delegate, as described in http://msdn.microsoft.com/en-us/library/system.text.regularexpressions.matchevaluator.aspx

That would make short work of the issue of counting digits and/or spaces

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0

Something like this i think ^\d{2}\s?\d\s?\d{3}\s?\d{4}$

There are variants : 10 digits or 2 digits space 8 digits or 3 digits space 3 digits space 4 digits.

But if you want only this 3 variants use something like this

^(?:\d{10})|(?:\d{2}\s\d{8})|(?:\d{3}\s\d{3}\s\d{4})$
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