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I need help writing a regex for a phone number pattern that allows the following formats for a phone number


1)###-###-####
or 
2)#-###-###-####
or
3)###-####
or
4)##########
or
5)#######

I am well aware, that you are able to find regex patterns on the internet, but I havent been able to find one that will pass for all these patterns.

I am using Java

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What is the context of your attempt at validation? I ask because it is usually best as a free-form field once you start getting "..#### x12345" responses which are valid and unpredictable. You'll also annoy users who are in the habit of typing +1.987.555.1212. See also en.wikipedia.org/wiki/E.164 –  msw Jul 29 '10 at 23:58
    
Did you look at this already? stackoverflow.com/questions/123559/… –  hallidave Jul 30 '10 at 0:14

8 Answers 8

up vote 4 down vote accepted

You could use the | (or) operator and multiple patterns.

For example: (\d{7})|(\d{10)| ...

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yeah I am aware of this use, but I do not have all the patterns –  CitadelCSAlum Jul 29 '10 at 23:56
5  
wait... if you don't know what you're looking for then how will you know when you find it? ~plato –  sholsapp Jul 30 '10 at 0:06

try ^(\+\d)*\s*(\(\d{3}\)\s*)*\d{3}(-{0,1}|\s{0,1})\d{2}(-{0,1}|\s{0,1})\d{2}$

Here is an online regular expression evaluator, you can test your patterns against this regex and/or any other.

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Try this regular expression:

@"^(((\d-)?\d{3}-)?(\d{3}-\d{4})|\d{7}|\d{10})$"

This covers the five scenarios you've described; Alternatively, if you can also accept the following scenarios:

6)###-#######
or 
7)#-###-#######
or 
8)#-##########

Then this shorter variant will work also:

@"^(((\d-?)?\d{3}-?)?(\d{3}-?\d{4}))$"

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Try this

^\d?-?(\d{3})?-?\d{3}-?\d{4}$

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This allows extensions, UK international formats, and checks min length 7 characters

^(?=.{7,32}$)(\(?\+?[0-9]*\)?)?[0-9_\- \(\)]*((\s?x\s?|ext\s?|extension\s?)\d{1,5}){0,1}$
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public int Phone(String num)
{
    try
    {
    String expression = "^(?=.{7,32}$)(\\(?\\+?[0-9]*\\)?)?[0-9_\\- \\(\\)]*((\\s?x\\s?|ext\\s?|extension\\s?)\\d{1,5}){0,1}$";  
    CharSequence inputStr = num;  
    Pattern pattern = Pattern.compile(expression);  
    Matcher matcher = pattern.matcher(inputStr);
    int x=0,y=0;
    char[] value=num.toCharArray();
    for(int i=0;i<value.length;i++)
    {
        if(value[i]=='(')
            x++;
        if(value[i]==')'&&((value[i+1]>=48&&value[i+1]<=57)||value[i+1]=='-'))
            y++;
    }
   if(matcher.matches()&&x==y)
      return 1; //valid number
   else
      return 0; //invalid number
    }
    catch(Exception ex){return 0;}
 }



}
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You should include test values so we know what exactly this will match against. –  Christopher Perry Jun 18 at 19:24

Don't require the user to enter the number in any particular format.

Let them enter it however they want.

Strip any country code and store it for later use, likewise any extension number data if present.

Strip any spaces and punctuation.

Check that the remaining digits are potentially valid by looking at the leading digits and the number length.

Store the number in your database in international format with country code, without spaces or punctuation.

Show the number back to the user in a standardised format (either national format or international format with country code) with added spaces and punctuation for readability.

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This regex will match all local numbers and international numbers.

String reg= "([\+(]?(\d){2,}[)]?[- \.]?(\d){2,}[- \.]?(\d){2,}[- \.]?(\d){2,}[- \.]?(\d){2,})|([\+(]?(\d){2,}[)]?[- \.]?(\d){2,}[- \.]?(\d){2,}[- \.]?(\d){2,})|([\+(]?(\d){2,}[)]?[- \.]?(\d){2,}[- \.]?(\d){2,})";

1 ###-###-####
2 #-###-###-####
3 ##########
4 +### ##-###-####
5 ###.###.####
6 ### ### ####

7 (###)### ####

All of the above formats would work.

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