Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an action in my site:

http://mysite.com/User/Logout

This will log the current user out of his/her session. Since this is a simple GET request, a malicious user could either create links to this page or even put this link in an image's src attribute that would force users to get logged out. I would still like to maintain the simplicity of the logout link without having to go too far, but at the same time I would like to be able to prevent the above scenario from occurring.

Any ideas?

share|improve this question
add comment

5 Answers

up vote 5 down vote accepted

Well, there are a few options that you can do to help secure against CSRF attacks:

  1. Use a form and a random token. So instead of having a "link", use a random token that's set in the session into a form

    <form action="/User/logout" method="post">
        <submit name="logout" value="Logout" />
        <input type="hidden" name="token" value="<?php echo getSessionToken(); ?>" />
    </form>
    

    Note that POST is best for this type of action, but you could change the form to a GET without too much trouble.

    Then in php, just do:

    if (getSessionToken(true) != $_POST['token']) {
        die('CSRF!');
    }
    

    Note that getSessionToken should work something like this:

    function getSessionToken($reset = false) {
        if (!isset($_SESSION['random_token'])) {
            $_SESSION['random_token'] = sha1(uniqid(mt_rand(), true));
        }
        $token = $_SESSION['random_token'];
        if ($reset) {
            unset($_SESSION['random_token']);
        }
        return $token;
    }
    

    Also note that whenever you fetch the token to check it, you should reset it to something new (which is what this does). This prevents replay attacks where an attacker detects the token on submission and resubmits the value.

  2. If you must use a link, then embed the token in the link. But note that this is more susceptible to attack since there's a chance the user might copy and paste the link to someone else. As long as it's a self-resetting token, there shouldn't be much issue with multiple tabs. But realize that it's not optimum:

    <a href="/User/logout?token=<?php echo getSessionToken(); ?>">Logout</a>
    

    It's absolutely better than nothing. But I would still suggest using the form for the best protection.

I would highly suggest reading and following the OWASP CSRF Guidelines for preventing CSRF. It will tell you just about all you need to know, and why...

share|improve this answer
    
Great explanation. Good to know that people actually write secure code in PHP. Best regards. –  Zed Mar 1 '11 at 14:39
    
Hmm, I don't think your getSessionToken actually resets the random_token session variable. It seems to only assign a new token if it doesn't already exist. If one does exist, however, it never assigns a new one. –  Scott Mar 1 '11 at 17:54
    
@Scott: good find. Fixed... –  ircmaxell Mar 1 '11 at 18:17
add comment

If you log people out using GET requests (or do anything more important than that using GET requests, for that matter) then your website will be vulnerable to cross-site request forgery attacks. You should use POST to log out people. GET is only for idempotent actions, see RFC 2616 section 9.1.

Keep in mind that while using GET in this case is not compliant with the RFC, it is not everything that you need to change to prevent the XSRF. See this answer by ircmaxell for an excellent explanation.

share|improve this answer
1  
A good site that I found a few years ago that details some CRSF prevention techniques: aachen-method.com He does a really good job of breaking it down it you don't understand it. –  PhpMyCoder Mar 1 '11 at 12:38
    
This answer is what you need. And the info about CSRF should be read because all your forms should be protected. –  Arkh Mar 1 '11 at 12:48
    
Yeah, this sounds like the right way to go. GET was the incorrect method here. –  Scott Mar 1 '11 at 14:02
4  
Note that switching to POST will not make you immune from CSRF (Cross-Site-Request-Forgery) attacks. It will make it trivially more difficult, but you MUST use a nonce or random token to prevent it all together. I would be fairly easy for someone to put some JS that posts to your site instead of clicking a link. Especially with FF not 100% supporting Same-Origin this is pretty easy. A token will still prevent this type of attack, so don't just switch to POST, also use a token! So for the purposes of this question, this answer is incomplete. –  ircmaxell Mar 1 '11 at 14:06
    
@ircmaxell: Very good point. I updated my answer. Thanks for pointing it out. –  Zed Mar 1 '11 at 14:29
show 2 more comments

You're going to have to require some sort of validator to be passed to the logout page. And it must be soething that's unique to the session and difficult to guess. Now, if only there were a suitable value.....oh yes, the session identifier.

Note that you should be using cookies for session management, and you should be setting the http only flag on the session cookie - so you'll need to populate the link from PHP (or copy the session id into a javascript readable cookie).

<?php
   session_start();
   if ($_GET['logout_valid']!==session_id()) {
       // handle invalid logout request
       exit;
   } else {
       $_SESSION=array();
       session_destroy();
   }
share|improve this answer
add comment

Rewrite to read like/Logout?#NONCE#, #NONCE# being a value you change from request to request.

share|improve this answer
    
...which will break if the user opens a second window. –  symcbean Mar 1 '11 at 13:10
    
Which is a good percentage of the point indeed, and should involve nothing more than redirecting the user to a new page with a new nonce with which he can logout. It's a tradeoff between the annoyance of getting prank-logged-out and the page reloading without you logging out yourself. –  Carlos Vergara Mar 1 '11 at 14:40
add comment

Without changing the HTTP method you could add a unique id to the users session and append that to the logout link. If a logout action is performed and the two id's match the logout is valid. Else it's not!

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.