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I've got some code that does an ajax request using jQuery, and handles success and error conditions. On an error, I want to find out what the URL I called was, so I can log it. This information appears to be contained in the XMLHttpRequest.channel, but firefox is complaining about accessing this -

Permission denied for <http://localhost:8081> to get property XMLHttpRequest.channel

Any ideas how I can determine the URL associated with an XMLHttpRequest? What's the security issue getting hold of this information? Cheers,

Colin

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4 Answers 4

up vote 1 down vote accepted

The security issue is cross domain XHR requests.

In FF2 you used to be able to override this in about:config, also see this blog and especially this preference:

user_pref("capability.policy.default.XMLHttpRequest.channel", "allAccess");

But that's all not possible anymore in FF3. And with a good reason.

Note that XMLHttpRequest.channel is Gecko-specific, so this wouldn't have worked in non-Gecko browsers.

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Can you explain why merely knowing the URL is a security issue? –  mhsmith Jun 17 '13 at 18:27

Ok - sorry about this - an answer is here

http://api.jquery.com/ajaxError/

specifically this code from above link -

$('.log').ajaxError(function(e, xhr, settings, exception) {
  if (settings.url == 'ajax/missing.html') {
    $(this).text('Triggered ajaxError handler.');
  }
});

shows how to access the request url in the event of an ajax error. Doesn't explain why the XMLHttpRequest.channel object is a no go though. Anyway, hopefully that will help others with a similar problem.

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Firebug presents this error with a trace that shows the URI used.

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Well, you just add it ;]

XMLHttpRequest.prototype.baseOpen = XMLHttpRequest.prototype.open; 
XMLHttpRequest.prototype.open = function(method, url, async) { this._url = url; return XMLHttpRequest.prototype.baseOpen.apply(this, arguments); }; 

then you can later ask for xhr._url in your error handler.

PS: Sorry, just discovered this thread is old.

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