10

i want to use the NSRegularExpression Class to validate if an NSString is an email address.

Something like this pseudocode:

- (BOOL)validateMail : (NSString *)email
{
    NSRegularExpression *expression = [NSRegularExpression regularExpressionWithPattern:@"" options:NSRegularExpressionCaseInsensitive error:NULL];

    if(emailValidated)
    {
        return YES;
    }else{
        return NO;
    }
}

But i don't know how exactly i validate an NSString if it's looking like this one "[email protected]"

Perhaps someone can help me here.

Greetings s4lfish

1
  • Sometimes all you need is simple ^[^@]+@[^@]+\.[^@]+$. Commented Jan 31, 2019 at 10:25

3 Answers 3

31

You can use:

@"^[A-Z0-9a-z._%+-]+@[A-Za-z0-9.-]+\\.[A-Za-z]{2,4}$";    // Edited: added ^ and $

you can test it here:

http://gskinner.com/RegExr/?2rhq7

And save this link it will help you with Regex in the future:

http://gskinner.com/RegExr/

EDIT

You can do it this way:

 NSString *string = @"[email protected]";
 NSString *expression = @"^[A-Z0-9a-z._%+-]+@[A-Za-z0-9.-]+\\.[A-Za-z]{2,4}$"; // Edited: added ^ and $
 NSError *error = NULL;

    NSRegularExpression *regex = [NSRegularExpression regularExpressionWithPattern:expression options:NSRegularExpressionCaseInsensitive error:&error];

    NSTextCheckingResult *match = [regex firstMatchInString:string options:0 range:NSMakeRange(0, [string length])];

    if (match){
         NSLog(@"yes");
    }else{
         NSLog(@"no");
    }
4
  • Thanks, but my problem is that i don't find a function to prove that the entered email fits the regex. I've looked in the documentation of apple, but somehow NSRegularExpression doesn't have a function which returns a boolean value for my "if-statement".
    – s4lfish
    Commented Nov 20, 2011 at 8:24
  • 2
    Hi I have added a code sample for that. And BTW @Alex Nichol it will be great if you could explain your comment. I might be wrong in my answer but your comment dose not help me or any one else understand this issue better.
    – shannoga
    Commented Nov 20, 2011 at 13:25
  • 2
    That expression is not RFC 822 compliant. Commented Jan 25, 2012 at 20:29
  • 1
    You've forgotten to escape the "\"s in your pattern. @"\." in an NSRegularExpression pattern gets interpreted as "." -- in other words it matches any character. If your intention is to match only the literal ".", you need @"\\."
    – jemmons
    Commented Jan 31, 2012 at 22:23
9

This was an older question, but it's general enough to never go out of style.

99.9% of email address regexs are wrong and even fewer handle international domains (IDN) properly.

Trying to make a comprehensive email regex isn't a good use of development time or user CPU cycles.

This is much simpler:

  1. Match [^@]+@([^@]+)

  2. Extract the domain per the matched part.

  3. Fail if it matches a banned domain. Cache the list of banned domains locally from a JSON endpoint so you don't have to wait for re-approval and can update it on-the-fly. (Be sure to log web stats for conversion analysis.)

  4. Check that the domain has DNS records. Check A and AAAA, in addition to MX, because not all domains implement MX. (Lame but true.)

  5. Just try to send the email already. The user will try again if they perceive an app has value. :))

1
  • agree, Top-level domain can more than 4, such as community, properties. over strict is worse than nothing.
    – chao787
    Commented Jul 10, 2014 at 2:34
1

Swift 4 version

I'm writing this for those who are doing Swift 4 version for email regular expression. The above can be done as follows:

 do {
        let emailRegex = try NSRegularExpression(pattern: "^[A-Z0-9a-z._%+-]+@[A-Za-z0-9.-]+\\.[A-Za-z]{2,4}$", options: .caseInsensitive)
        let textRange = NSRange(location: 0, length: email.count)
        if emailRegex.firstMatch(in: email, options: [], range: textRange) != nil {
            //Do completion code here
        } else {
            //Do invalidation behaviour
        }
    } catch  {
         //Do invalidation behaviour
    }

Assuming email is a swift String typed.

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