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I have this code in a html file that checks for connectivity, but the problem here is that it takes about 10 seconds to throw the alert message box to indicate the connection is lost. I want to know if there's a much faster way to inform the user that the connection is lost without having to wait. Strictly JS thanks...

JS code:

<script language="JavaScript">
function SubmitButton()
{
    if(navigator.onLine)
    {
            document.getElementById('SubmitBtn').style.visibility='visible';
    }
    else
    {
        document.getElementById('SubmitBtn').style.visibility='hidden';
    }
}
function Online() 
{ 
    var status=false;
    status= navigator.onLine;
    if(status!= true)
    {
        alert('Network connectivity is lost, please try again later');
    }
}
</script>

Calling it in html file here:

<INPUT name="ccMCA1input" type="checkbox" onclick="ccMCA1.ccEvaluate(),Online()" value=False>
share|improve this question
    
Is this way faster? stackoverflow.com/a/10249744/851498 – Florian Margaine May 3 '12 at 7:36
up vote 4 down vote accepted

navigator.onLine is the only built-in property which can be checked (and not reliable btw).
You could create a XHR request to a reliable server, and check whether any response is being received.

share|improve this answer

You could periodically request a 1x1 gif image from a(ny) server, making sure you use the cache buster method to avoid caching. You could use the onload and onerror events.

var isOnline = (function isOnline(){
  // Create a closure to enclose some repeating data
  var state = false;
  var src = 'gif_url?t=' + Date.now();
  var function onLoad = function(){state = true;}
  var function onError = function(){state = false;}

  // Inside the closure, we create our monitor
  var timer = setInterval(function(){
    var img = new Image();
    img.onload = onLoad;
    img.onerror = onError;
    img.src = src;
  }, 10000);

  // Return a function that when called, returns the state in the closure
  return function(){return state;};
}());

//Use as
var amIOnline = isOnline();
share|improve this answer
    
Thanks, seems a neaty way of doing things. – gaganHR May 8 '12 at 7:36
    
Hmm but if one calls multiple times the function, we could have a lot of checks, since you're using setInterval... – franzlorenzon Sep 5 '13 at 11:34
    
@franzlorenzon unless you modify this code to just run once, collect "listeners" instead. – Joseph the Dreamer Sep 6 '13 at 0:26

Consider checking out the following URLs:

  1. Online connectivity monitoring
  2. navigator.onLine testing
  3. on/offline event capture
share|improve this answer
    
please read this post – Joseph the Dreamer May 3 '12 at 7:40
1  
@Joseph And then you did the exact same thing ;) – dev-null May 3 '12 at 7:52
    
@AndreasAL did the exact same thing? "providing an answer" (solutions+methods+references) is not the same as "providing a set of links" – Joseph the Dreamer May 3 '12 at 7:54
    
Went over the post quickly. Sounds a bit ambiguous, but probably the gist is to put more content in the answers. Will keep in mind. – Dhwanil Shah May 3 '12 at 7:54
    
@Joseph No not your answer witch is good and a save way to check for connection. But your comment to this post. ... – dev-null May 3 '12 at 7:56

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