11

Basically, I had to create a javascript APP object, which will queue an sequence of asynchronous requests for the server, process response to JSON, and log errors from it.

JSON processing errors were caught easily with "try-catch", but server errors like 404, 500 etc. are still shown in the console of the browser, while I need to silently log it in "APP.history".

I tried to implement it via the code below, but none of 404 errors fires one error. What am I doing wrong?

xhr = new XMLHttpRequest();
xhr.open("GET", url, true)
xhr.onerror = function(){console.log("error")}  
xhr.upload.onerror = function(){console.log("error")}

By the way, how could it be done with jQuery AJAX?

-3

status allows you to show what error has occurred.

so you can do something like this

xhr = new XMLHttpRequest();
xhr.open("GET", url, true)
xhr.onerror = function(){console.log("error" + xhr.status)}  
xhr.upload.onerror = function(){console.log("error" + xhr.status)}

so if its a 404 it will say in your alert "error 404" and will do the same for the rest of the codes.

Hope this helps Josh

  • 2
    the point is not ot show the error status, it isn'a problem. The problem is to cath 404 and manage console not to show it to user. This JavaScrip APP is just a little part of page, so WINDOW.ONERROR is too massive solution))) – Tesmen May 24 '15 at 22:16
  • 2
    but this case browser console will report "GET site.com/page.htm 404 (Not Found)" anyway, am i right? – Tesmen May 24 '15 at 22:28
  • Technically a 404 is a CODE that is not itself an error... you have to use onloadend to review the code and parse properly the status 404 as error – Erick Aug 16 '17 at 3:44
  • @josh Stevens don't copy/paste answer of other. – A-312 Jun 8 '18 at 8:01
32

A 404 status will not trigger xhr.onerror() because, technically it's not an error; the 404 itself is a valid response.

One solution is to use the loadend() handler, which fires no matter what. Then check the status for 404, or whichever status you're interested in.

xhr = new XMLHttpRequest();
xhr.open("GET", url, true);

xhr.onloadend = function() {
    if(xhr.status == 404) 
        throw new Error(url + ' replied 404');
}

The same method exists for XMLHttpRequestUpload. Unfortunately, our browser vendors don't allow us to programmatically suppress network errors in 2017. However, networks errors can be suppressed using the console's filtering options.

  • @Tesmen should make this answer the correct one as 404 is not an error. It is a response code. Also, this answer worked for me. – DaveCat Mar 7 at 16:54

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