76

I need a regular expression that I can use in VBScript and .NET that will return only the numbers that are found in a string.

For Example any of the following "strings" should return only 1231231234

  • 123 123 1234
  • (123) 123-1234
  • 123-123-1234
  • (123)123-1234
  • 123.123.1234
  • 123 123 1234
  • 1 2 3 1 2 3 1 2 3 4

This will be used in an email parser to find telephone numbers that customers may provide in the email and do a database search.

I may have missed a similar regex but I did search on regexlib.com.

[EDIT] - Added code generated by RegexBuddy after setting up musicfreak's answer

VBScript Code

Dim myRegExp, ResultString
Set myRegExp = New RegExp
myRegExp.Global = True
myRegExp.Pattern = "[^\d]"
ResultString = myRegExp.Replace(SubjectString, "")

VB.NET

Dim ResultString As String
Try
      Dim RegexObj As New Regex("[^\d]")
      ResultString = RegexObj.Replace(SubjectString, "")
Catch ex As ArgumentException
      'Syntax error in the regular expression
End Try

C#

string resultString = null;
try {
    Regex regexObj = new Regex(@"[^\d]");
    resultString = regexObj.Replace(subjectString, "");
} catch (ArgumentException ex) {
    // Syntax error in the regular expression
}
1
  • 1
    As I said, \D is simpler than ^\d. May 10, 2009 at 1:52

8 Answers 8

203

In .NET, you could extract just the digits from the string. Like this:

string justNumbers = new String(text.Where(Char.IsDigit).ToArray());
6
  • 2
    ps. I know I've answered a VB question with C#, but since it's .NET I figured it's worth putting the idea out there. RegEx seems like overkill for something this simple. May 10, 2009 at 1:36
  • I actually needed VBScript to use in a Classic ASP page but I appreciate your answer. May 10, 2009 at 1:45
  • 6
    I was about to post a comment along the lines of, "/Clearly/, regex would be faster for this", but I ran a (unscientific) benchmark in Mono, and Linq won (about half the duration the regex took). :) So my hat is off to you. May 10, 2009 at 2:11
  • 10
    +10. Just a heads up for everyone out there, don't forget using System.Linq; for this. For me, VS2010 just said there's no such method "Where" for strings, and IntelliSense wouldn't give me the auto-add for the using statement.
    – DanM7
    May 15, 2013 at 17:00
  • You will also need using System.Linq.Expressions: using System.Linq; using System.Linq.Expressions;
    – WoodsLink
    Jul 1, 2016 at 16:45
17

As an alternative to the main .Net solution, adapted from a similar question's answer:

string justNumbers = string.Concat(text.Where(char.IsDigit));
14

I don't know if VBScript has some kind of a "regular expression replace" function, but if it does, then you could do something like this pseudocode:

reg_replace(/\D+/g, '', your_string)

I don't know VBScript so I can't give you the exact code but this would remove anything that is not a number.

EDIT: Make sure to have the global flag (the "g" at the end of the regexp), otherwise it will only match the first non-number in your string.

2
  • Thanks! That's exactly what I was looking to do. I knew it had to be somewhat simple. I'm using RegExBuddy and will try to test it and then post the VBScript code. I believe VBScript will do a replace. May 10, 2009 at 1:09
  • 2
    If you want to do it with .NET classes, it's basically re = Regex("\D"); re.Replace("123 123 1234", ""). Remember to cache your Regex objects (don't compile them every time the method is called). May 10, 2009 at 1:11
7

Note: you've only solved half the problem here.

For US phone numbers entered "in the wild", you may have:

  • Phone numbers with or without the "1" prefix
  • Phone numbers with or without the area code
  • Phone numbers with extension numbers (if you blindly remove all non-digits, you'll miss the "x" or "Ext." or whatever also on the line).
  • Possibly, numbers encoded with mnemonic letters (800-BUY-THIS or whatever)

You'll need to add some smarts to your code to conform the resulting list of digits to a single standard that you actually search against in your database.

Some simple things you could do to fix this:

  • Before the RegEx removal of non-digits, see if there's an "x" in the string. If there is, chop everything off after it (will handle most versions of writing an extension number).

  • For any number with 10+ digits beginning with a "1", chop off the 1. It's not part of the area code, US area codes start in the 2xx range.

  • For any number still exceeding 10 digits, assume the remainder is an extension of some sort, and chop it off.

  • Do your database search using an "ends-with" pattern search (SELECT * FROM mytable WHERE phonenumber LIKE 'blah%'). This will handle sitations (although with the possibility of error) where the area code is not provided, but your database has the number with the area code.

2
  • 1
    true. I did add something after the regex that returned the entire string if it was 10 digits or right(string,10) if it was longer. you last suggestion is a good one and something I will add. thanks! +1 May 10, 2009 at 17:32
  • Great points! I added my submission down below to solve this problem.
    – user4914655
    Dec 20, 2015 at 21:34
1

By the looks of things, your trying to catch any 10 digit phone number....

Why not do a string replace first of all on the text to remove any of the following characters.

<SPACE> , . ( ) - [ ] 

Then afterwards, you can just do a regex search for a 10 digit number.

\d{10}
1
  • that is what's in place but I wanted to make it match a wider range of input string. May 10, 2009 at 1:06
0

Have you gone through the phone nr category on regexlib. Seems like quite a few do what you need.

0

In respect to the points made by richardtallent, this code will handle most of your issues in respect to extension numbers, and the US country code (+1) being prepended.

Not the most elegant solution, but I had to quickly solve the problem so I could move on with what I'm doing.

I hope it helps someone.

 Public Shared Function JustNumbers(inputString As String) As String
        Dim outString As String = ""
        Dim nEnds As Integer = -1

        ' Cycle through and test the ASCII character code of each character in the string. Remove everything non-numeric except "x" (in the event an extension is in the string as follows):
        '    331-123-3451 extension 405  becomes 3311233451x405
        '    226-123-4567 ext 405        becomes 2261234567x405
        '    226-123-4567 x 405          becomes 2261234567x405
        For l = 1 To inputString.Length
            Dim tmp As String = Mid(inputString, l, 1)
            If (Asc(tmp) >= 48 And Asc(tmp) <= 57) Then
                outString &= tmp
            ElseIf Asc(tmp.ToLower) = 120
                outString &= tmp
                nEnds = l
            End If
        Next


        ' Remove the leading US country code 1 after doing some validation
        If outString.Length > 0 Then
            If Strings.Left(outString, 1) = "1" Then

                ' If the nEnds flag is still -1, that means no extension was added above, set it to the full length of the string
                ' otherwise, an extension number was detected, and that should be the nEnds (number ends) position.
                If nEnds = -1 Then nEnds = outString.Length

                ' We hit a 10+ digit phone number, this means an area code is prefixed; 
                ' Remove the trailing 1 in case someone put in the US country code
                ' This is technically safe, since there are no US area codes that start with a 1. The start digits are 2-9
                If nEnds > 10 Then
                    outString = Right(outString, outString.Length - 1)
                End If
            End If
        End If

        Debug.Print(inputString + "          : became : " + outString)

        Return outString
    End Function
0

The simplest solution, without a regular expression:

public string DigitsOnly(string s)
   {
     string res = "";
     for (int i = 0; i < s.Length; i++)
     {
       if (Char.IsDigit(s[i]))
        res += s[i];
     }
     return res;
   }

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.