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I need a regex which check the string contains only A-Z, a-z and special characters but not digits i.e. (0-9). Any help is appreciated.

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4 Answers 4

up vote 6 down vote accepted

You can try with this regex:

^[^\d]*$

And sample:

var str = 'test123';
if ( str.match(/^[^\d]*$/) ) {
  alert('matches');
}
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thanks a million, it did the trick :) –  Salil May 31 '11 at 13:12
    
Also ^\d equals \D so you can use: ^\D*$ –  hsz May 31 '11 at 13:14
    
thanks for additional info, it works for me so upvote it.i didn't check for other answers as of now so will accept only after checking all the answers –  Salil May 31 '11 at 13:16

Simple:

/^\D*$/

It means, any number of not-a-digit characters. See it in action…

The alternative is to reverse your test. Just check if there's a digit present, using the trivial:

/\d/

…and if that matches, your string fails.

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The second regex should be slightly more efficient and is as far as I can tell the best answer. –  Jonathon Wisnoski May 31 '11 at 14:42

You're looking for a character class: ^[A-Za-z.,!@#$%^&*()=+_-]+$.

The ^ and $ anchor the regex by marching the beginning and end of the string, respectively.

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what about:

var re = /^[a-zA-Z!#$%]+$/;

Fell free to add any special character you need inside the character class

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