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I am trying to debug an error which is coming up when u run the following code. The ajax call simply carries a variable destroy which is a String. However, I am getting an error alert(xhr.status); which is return 0 and statusText is returning "error". Can anyone see a problem in this?

The new updated code is:

function logout() {
var destroy = "session_destroy"
FB.logout(function(response) {
    $.post("setUser.php", { destroy: destroy }, function (data) {
        alert(data);
        window.location.href = "signup.php";
    })
    .fail(function() { 
        alert("error"); 
    })
    .always(function() { 
        alert("finished"); 
    });
}

Note: This ajax calls intends to destory session whose code exists in setUser.php

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1  
this "destroy="+destroy change to this and try: {"destroy":destroy} –  Jai Feb 10 '13 at 18:32
    
@Jai I tried again, still no change. –  Namit Feb 10 '13 at 18:34
    
@Namit: What is the String? Sometimes error also occurs when the String is not HTML-friendly. Also check the spellings and paths of your files. There's a capital U in setUser I guess. –  xan Feb 10 '13 at 18:39
1  
Are you sure the filename is correct, and that the file is in the same folder etc. Also, doing an ajax request just to redirect as soon it's finished kind of defeats the purpose, and a regular form submit could have handled this just fine ? –  adeneo Feb 10 '13 at 18:39
    
(1) you can use JSON.stringify to make sure your destroy data does not mess up the request, and (2) you can use chrome with debug and check if the request is sent and the response is an error or it doesn't even get sent at all –  TheZuck Feb 10 '13 at 18:41
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1 Answer 1

I don't see any problem with your code. What is it the response setUser.php is giving you?

NOTE: To see what is being logged in CHrome or IE >9 press F12, and go to console.

But why aren't you using the shorthand version?

$.post("setUser.php", { destroy: destroy }, function (data) {
    alert(data);
    window.location.href = "signup.php";
})
 .fail(function(e, status, error) { 
     console.log(e);
     console.log(status);
     console.log(error);
     alert(error);
 })
 .always(function() { 
     alert("finished"); 
 });

DOCS

share|improve this answer
    
Its showing "error" and "finished". –  Namit Feb 10 '13 at 18:48
    
@Namit try the updated code and tell me what is alerted –  Tivie Feb 10 '13 at 18:58
    
Updated with the full code! –  Namit Feb 10 '13 at 19:08
    
Use the dev tools with this code and tell me what is outputed –  Tivie Feb 10 '13 at 19:12
    
If you mean the console output in the browser. Then nothing is outputted there. –  Namit Feb 10 '13 at 19:15
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