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Today what I am trying to accomplish is a script that would execute on page load that would check if a specific image on an external website is online, via its full web address ( - and if it is online, then the user would be redirected to that website (

Furthermore, if the page ISN'T available, I want another div to appear with more options, but I can worry about this with an if statement later.. for now I just need to grasp the base.

The reason I am asking to do this via checking the status of an offsite image is because of this post I've already found here: Javascript: Check if server is online?

    function checkServerStatus()
    var img = document.body.appendChild(document.createElement("img"));
    img.onload = function()
    img.onerror = function()
    img.src = "";

I've tried the proposed solution and modified it to my website url, added a simple alert to the functions to see the results, and put an onLoad event AND a link with an onclick to fire it manually.. but alas, no luck.

The reason: I have a website that is just a redirect from an easy url ( to our support software page on our main domain. If this page is not available, I want my landing page to not redirect them to a dead link, but instead present them with a page with other options.

Is the post I linked above the correct approach? and if so, why doesn't t it seem to be working for me when I copy/paste it and just change the url to the url of my image? does this have to do with cross-server scripting issues?

share|improve this question
use JQuery load and img onerror –  Hitham S. AlQadheeb Jun 29 '12 at 21:38
What does "setServerStatus" do? –  Pointy Jun 29 '12 at 22:42
I was actually hoping someone else knew, because I have no idea what it does or is supposed to do.. like I said in my post, this is javascript code I got from another answer on Stack, and the poster claims it worked and voted it to be the answer so I assumed it would work. -- Could you elaborate a bit perhaps on "use JQuery load and img onerror" ? I do not use JQuery, because I do not fully understand it so I am very limited in it -- is a Javascript method not available? –  Morgan March Jul 2 '12 at 16:04

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