24

I'm working on a completely ajax-driven application where all requests pass through what basically amounts to a main controller which, at its bare bones, looks something like this:

if(strtolower($_SERVER['HTTP_X_REQUESTED_WITH']) == 'xmlhttprequest') {
    fetch($page);
}

Is this generally sufficient to protect against cross-site request forgeries?

It's rather inconvenient to have a rotating token when the entire page isn't refreshed with each request.

I suppose I could pass and update unique token as a global javascript variable with every request -- but somehow that feels clumsy and seems inherently unsafe anyway.

EDIT - Perhaps a static token, like the user's UUID, would be better than nothing?

EDIT #2 - As The Rook pointed out, this might be a hair-splitting question. I've read speculation both ways and heard distant whispers about older versions of flash being exploitable for this kind of shenanigans. Since I know nothing about that, I'm putting up a bounty for anyone who can explain how this is a CSRF risk. Otherwise, I'm giving it to Artefacto. Thanks.

14
+100

I'd say it's enough. If cross-domain requests were permitted, you'd be doomed anyway because the attacker could use Javascript to fetch the CSRF token and use it in the forged request.

A static token is not a great idea. The token should be generated at least once per session.

EDIT2 Mike is not right after all, sorry. I hadn't read the page I linked to properly. It says:

A simple cross-site request is one that: [...] Does not set custom headers with the HTTP Request (such as X-Modified, etc.)

Therefore, if you set X-Requested-With, the request has to be pre-flown, and unless you respond to pre-flight OPTIONS request authorizing the cross-site request, it won't get through.

EDIT Mike is right, as of Firefox 3.5, cross-site XMLHttpRequests are permitted. Consequently, you also have to check if the Origin header, when it exists, matches your site.

if (array_key_exists('HTTP_ORIGIN', $_SERVER)) {
    if (preg_match('#^https?://myserver.com$#', $_SERVER['HTTP_ORIGIN'])
        doStuff();
}
elseif (array_key_exists('HTTP_X_REQUESTED_WITH', $_SERVER) &&
        (strtolower($_SERVER['HTTP_X_REQUESTED_WITH']) == 'xmlhttprequest'))
    doStuff(); 
  • To the gentleman who down voted me: can you explain what's wrong with my answer? – Artefacto Jul 26 '10 at 0:58
  • It's a bad answer because just adding something to the header offers absolutely no protection because it can easily be forged. See the accepted answer for a good solution to the problem. – Sasha Chedygov Jul 26 '10 at 1:06
  • @musicfreak This header is added only when the request is made through Javascript. CSRF cannot be accomplished with Javascript due to cross-site restrictions. Consequently, it's enough. Sure you could "forge" the header, e.g. by building a browser that would always send this header. But by doing it, you'd shooting yourself in the foot. Protection against CRFS is protection for the users from themselves, against requests that were maliciously and programatically made by themselves. – Artefacto Jul 26 '10 at 1:13
  • @musicfreak This is also a relatively known method. See code.djangoproject.com/ticket/8127 "Assuming this is a check for the X-Requested-By: XMLHttpRequest header, I'm all for it - it's a nice, secure way of allowing Ajax requests to avoid having to include a form token, which can be tricky to make available to the Ajax code otherwise." – Artefacto Jul 26 '10 at 1:35
  • +1 you are correct sir. Don't mind these other fools, for they do not know what they are talking about. Have you read the google browser sec handbook? I think you have. – rook Jul 26 '10 at 1:54
1

I do not believe that this is safe. The same origin policies are designed to prevent the documents from different domains from accessing the content that is returned from a different domain. This is why XSRF problems exist in the first place. In general XSRF doesn't care about the response. It is used to execute a specific type of request, like a delete action. In the simplest form, this can be done with a properly formatted img tag. Your proposed solution would prevent this simplest form, but doesn't protect someone from using the XMLHttp object to make the request. You need to use the standard prevention techniques for XSRF. I like to generate a random number in javascript and add it to the cookie and a form variable. This makes sure that the code can also write cookies for that domain. If you want more information please see this entry.

Also, to pre-empt the comments about XMLHttp not working in script. I used the following code with firefox 3.5 to make a request to google from html running in the localhost domain. The content will not be returned, but using firebug, you can see that the request is made.

<script>
var xmlhttp = false; 

if (!xmlhttp && typeof XMLHttpRequest != 'undefined') {
    try {
        xmlhttp = new XMLHttpRequest();
    } catch (e) {
        xmlhttp = false;
    }
}
if (!xmlhttp && window.createRequest) {
    try {
        xmlhttp = window.createRequest();
    } catch (e) {
        xmlhttp = false;
    }
}

xmlhttp.open("GET", "http://www.google.com", true);
xmlhttp.onreadystatechange = function() {
    if (xmlhttp.readyState == 4) {
        alert("Got Response");
        alert(xmlhttp.responseText)
    }
}

xmlhttp.send(null)
alert("test Complete");

  • sorry I had to edit it to able to remove my upvote. – Artefacto Jul 28 '10 at 17:57
  • I'm giving it to Artefacto, because it looks like X-Requested-With doesn't make it through, but this was interesting. Thank you. – Greg Jul 29 '10 at 4:11
0

I do not think this offers any kind of protection. An attacking site could still use xmlhttprequest for its cross-site request bypass your check.

  • Would you happen to know a proper solution? You don't have to hold my hand and walk me through it, but perhaps you could point me in the right direction? :) – Greg Jul 23 '10 at 7:08
  • @Greg: No not really. I was thinking using a one-time token is the way to go. But I am not experienced with that. – Alex Jul 26 '10 at 8:31
0

Short answer : no. Any attacker would just use Ajax himself to attack your website. You should generate a random token with a short but not too much lifetime which you would update during each ajax request.

You'd have to use an array of tokens in javascript as you may have multiple ajax request running at the same time.

  • 2
    I was under the impression that cross-domain AJAX requests are not permitted? I guess there are workarounds? – Greg Jul 23 '10 at 7:19
  • The attacker can use Firebug or an another developer console to AJAX in-domain. – Ming-Tang Jul 26 '10 at 0:14
  • 2
    -1, care to write an exploit to backup that comment? No? I didn't think so. xmlhttprequest cannot be cross site, its a violation of the same origin policy. it might not be a strong method of defiance, but you can't write an exploit for this. Read the google browser security handbook. – rook Jul 26 '10 at 1:53
  • "xmlhttprequest cannot be cross site", that's client side. If your user's browser has some problem, why not do what you can on the server side ? Flash is not your friend either. And last but not least : you may also have some XSS vulnerable page and it may be easier to make your client send requests than steal his credentials. – Arkh Jul 26 '10 at 8:29
  • 2
    @SHiNKiROU an attacker using a dev console to AJAX in-domain is merely CSRF attacking themselves, no? – Chris H. May 20 '14 at 0:44
0

What you are doing is secure because xmlhttprequest is usually not vulnerable to cross-site request forgery.

As this is a client side problem, the safest way would be to check the security architecture of each browser :-)

(This is a summary; I am adding this answer because this question is very confusing, let's see what the votes say)

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