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With javascript, how do we remove the @gmail.com or @aol.com from a string so that what only remains is the name?

var string = "johndoe@yahoo.com";

Will be just "johdoe"? I tried with split but it did not end well. thanks.

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3  
What was the problem you had with split('@')? –  icedwater Aug 22 '13 at 4:33

4 Answers 4

up vote 19 down vote accepted
var email = "john.doe@email.com";
var name   = email.substring(0, email.lastIndexOf("@"));
var domain = email.substring(email.lastIndexOf("@") +1);

console.log( name );   // john.doe
console.log( domain ); // email.com

The above will also work for valid names containing @ (tools.ietf.org/html/rfc3696)

// john@doe
// john@@doe
// j@hnd@e
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yeah, it worked. i did not know it was as simple as that. thanks! –  leeshin Aug 22 '13 at 3:48
    
*Make sure you don't name the variable String (with a capital "S"). Not trying to be pedantic, but it's a reserved keyword. –  Gary Aug 22 '13 at 3:52
    
My comment would have been more appropriate on the question rather than your answer –  Gary Aug 22 '13 at 4:02
    
multiple @ in an email is valid, haacked.com/archive/2007/08/21/… –  Aun Rizvi Apr 24 at 6:39
1  
@AunRizvi I know, but if you read my answer completely.... –  Roko C. Buljan Apr 24 at 7:51

You should take note that a valid email address is an incredibly sophisticated object and may contain multiple @ signs (ref. http://cr.yp.to/im/address.html).

"The domain part of an address is everything after the final @."

Thus, you should do something equivalent to:

var email = "johndoe@yahoo.com";
var name = email.substring(0, email.lastIndexOf("@"));

or even shorter,

var name = email.replace(/@[^@]+$/, '');

If you want both the name and the domain/hostname, then this will work:

var email = "johndoe@yahoo.com";
var lasta = email.lastIndexOf('@');
var name, host;
if (lasta != -1) {
    name = email.substring(0, lasta);
    host = email.substring(lasta+1);
    /* automatically extends to end of string when 2nd arg omitted */
} else {
    /* respond to invalid email in some way */
}
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an email address might contain another @ if included in "" quotes. tools.ietf.org/html/rfc3696 These quoted forms are rarely recommended, and are uncommon in practice i.imgur.com/SfgsLuN.jpg –  Roko C. Buljan Aug 22 '13 at 4:53
1  
@RokoC.Buljan Your screenshot of Gmail is irrelevant. It has always been up to each host to define and validate its own mailbox identifier format within the broad range defined by documents dating many years before the one that you cite. Even the one you cite states the same thing: "... they should not be rejected in filtering routines but, [sic] should instead be passed to the email system for evaluation by the destination host." Also, you didn't finish the quote: "rarely used in practice, but are required for some legitimate purposes." –  Joseph Myers Aug 22 '13 at 4:57
    
@RokoC.Buljan Re my previous comment. The paragraph you quoted is slightly different from the one I thought you quoted, but even the one you quoted goes on to say this: "and are uncommon in practice, but, as discussed above, must be supported by applications that are processing email addresses." –  Joseph Myers Aug 22 '13 at 5:02
1  
Yum, I did a bit more research on that matter, and thanks for posting the additional information I skipped. +1 any way. Also to mention if lastIndexOf is supported by browser (ECMA-262) –  Roko C. Buljan Aug 22 '13 at 5:45

Try it using substring() and indexOf()

var name = email.substring(0, email.indexOf("@"));
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@Roko thanks. I am from mobile –  Atish Dipongkor Aug 22 '13 at 4:23
2  
Y'W! +1 for another way to do it tho I like more the simplicity of .split() I also hate giving answers from my phone, specially when it comes to hit the Edit button (a mission impossible) :) –  Roko C. Buljan Aug 22 '13 at 4:25
    
Thanks again. I am on the way of my office. –  Atish Dipongkor Aug 22 '13 at 4:31
var email = "johndoe@yahoo.com";
email=email.replace(/@.*/,""); //returns string (the characters before @)
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