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How to check phone number is valid or not. containing upto length 13 and including character + infront.

How to do that?

I tried this:

String regexStr = "^[0-9]$";

            String number=entered_number.getText().toString();


             if(entered_number.getText().toString().length()<10 || number.length()>13 || number.matches(regexStr)==false  ) {
                Toast.makeText(MyDialog.this,"Please enter "+"\n"+" valid phone number",Toast.LENGTH_SHORT).show();
               // am_checked=0;
            }`

And also tried this:

 public boolean isValidPhoneNumber(String number)
 {
     for (char c : number.toCharArray())
     {
         if (!VALID_CHARS.contains(c))
         {
            return false;
         }
     }

     // All characters were valid
     return true;
 }

Both not working.

Input type: + sign to be accepted and from 0-9 numbers and length b/w 10-13 and shld not accpet other characters

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1  
Show your code to show us what you've tried so far. –  Kon Jun 15 '11 at 13:27
    
Perhaps you could specify an input type. –  Philip Sheard Jun 15 '11 at 14:15

5 Answers 5

up vote 11 down vote accepted

Given the rules you specified:

upto length 13 and including character + infront.

(and also incorporating the min length of 10 in your code)

You're going to want a regex that looks like this:

^\+[0-9]{10,13}$

With the min and max lengths encoded in the regex, you can drop those conditions from your if() block.

Off topic: I'd suggest that a range of 10 - 13 is too limiting for an international phone number field; you're almost certain to find valid numbers that are both longer and shorter than this. I'd suggest a range of 8 - 20 to be safe.

[EDIT] OP states the above regex doesn't work due to the escape sequence. Not sure why, but an alternative would be:

^[+][0-9]{10,13}$

[EDIT 2] OP now adds that the + sign should be optional. In this case, the regex needs a question mark after the +, so the example above would now look like this:

^[+]?[0-9]{10,13}$
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Thanx but it showing Invalid escape sequence error at line... –  Udaykiran Jun 15 '11 at 14:07
    
the slash is to escape the plus sign. It needs to be escaped since it is a regex reserved character. That's the only escape sequence in the regex, so I don't know why it would be complaining. But you could try replacing \+ with [+]; that should also work. –  Spudley Jun 15 '11 at 14:10
    
Its taking other special characters also...wen is used ^/+[0-9]{10,13}$ –  Udaykiran Jun 15 '11 at 14:11
    
forward slash is wrong; I specified back slash. But try the alternative string I suggested as well. –  Spudley Jun 15 '11 at 14:13
    
Its not working sir...it taking other charcters also but i want 0-9 numbers, length 10-13 and including only + sign ..i used ^[+][0-9]{10,13}$ –  Udaykiran Jun 15 '11 at 14:14

Use isGlobalPhoneNumber() method of PhoneNumberUtils to detect whether a number is valid phone number or not.

Example

System.out.println("....g1..."+PhoneNumberUtils.isGlobalPhoneNumber("+912012185234"));
System.out.println("....g2..."+PhoneNumberUtils.isGlobalPhoneNumber("120121852f4"));

The result of first print statement is true while the result of second is false. becase the second phone number contains f

Thanks Deepak

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2  
This is a WAY better answer than the others! –  user123321 Nov 11 '11 at 23:44
    
@MusselWhizzle, Thank you –  Sunil Kumar Sahoo Nov 14 '11 at 7:53
    
I am using (!PhoneNumberUtils.isGlobalPhoneNumber("1234")), then also its taking as a valid number. Where actually its not. What should I do? –  YuDroid May 16 '12 at 9:21
    
@YuDroid you need to mention the 'Valid' number. For someone to help you. Or post another question. –  Chris.Jenkins Apr 2 '13 at 22:01
3  
Note that isGlobalPhoneNumber will return false for formats such as (123) 456-7890 (whereas 123-456-7890 will return true) –  PVS May 10 '13 at 17:46

You can use PhoneNumberUtils if your phone format is one of the described formats. If none of the utility function match your needs, use regular experssions.

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You can use Regular Expressions. This is a great introduction to regex and you will get a lot more out of it by learning regex rather than me posting the exact answer.

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public boolean validCellPhone(String number) { return android.util.Patterns.PHONE.matcher(number).matches(); }

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This returns true if it looks like a phone number not sure it validates if it is actually a phone number. Source: developer.android.com/reference/android/util/Patterns.html –  Saher Sep 15 at 8:32

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