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I'm trying to make a like system. Everything works well without ajax but with ajax is not ready. I mean, The ajax post is ok, the answer is ok, but the output on the screen is not ok. When i click the LIKE button, noting happens (no page refresh). When i refresh the post, there is one more like. ` without ajax, the functions and everything is working

Here's is my ajax file

<?php
ini_set('display_errors', 1);
include_once ('../classes/comments.class.php');
$key = $_POST['key'];
$sessie = $_POST['login'];
    $like1 = new Comments();
    $like1 -> Key = $key;
    $like1 -> User = $sessie;
try{
    $feedback["status"] = "succes";
    $like1 -> addlikes();
    $feedback["message"] = $like1 -> CountLikes();

} catch (Exception $e) {
    $feedback["message"] = $e -> getMessage();
    $feedback["status"] = "error";
}


header('Content-type: application/json');
echo json_encode($feedback);
?>

and here the code in my php page

    <script type="text/javascript">
        $(document).ready(function() {
            $("#knop").click(function() {
                    var login = $("#login").text();
                var key = $("#key").text();
                $.ajax({
                    type: "POST",
                    url: "assets/ajax/check_likes.php",
                    data: { login : login , key : key},
                    success: function( msg ){
if ( msg.status == "success" ) {
    $("#likes h1").text( msg.message );
}

}

                })
                    return false;
                });
        });
    </script>
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1  
Check the possible typo in your try: $feedback["status"] = "succes". You have the following comparison on you php page: if ( msg.status == "success" ). –  ZZ-bb May 21 '12 at 18:04

1 Answer 1

up vote 1 down vote accepted

Can you try adding an exit(); after echo json_encode($feedback); in ajax file?

Edit: Also try using the console in Firebug (or chrome inspector or whatever) to check out if the ajax response is valid json.

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