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How will i process this Ajax in php. What i want to do is send the data to process.php and if mode=loadlinks it will do a mysql query

function PresentLinks(div_id){

        $("#loading-status").fadeIn(900,0);
        $("#loading-status").html("<img src='img/bigLoader.gif' />");           

$.ajax({

            type: "POST",
            url: "process.php",
            data: "mode=loadlinks",

            success: function(msg){

                $("#loading-status").fadeOut(900,0);
                $("#"+div_id).html(msg);


            }

        });}

What i want to process is

if($_POST['mode'] == loadlinks){  // this is what i want to ask
$query = "SELECT * FROM site ORDER BY link_id DESC";
$result = MYSQL_QUERY($query) or die (mysql_error());
while($data = mysql_fetch_row($result)){
echo ("$data[1]");
}}
else {
}
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2 Answers 2

You need to quote strings in PHP. Otherwise they will be assumed to be constants. You should also be using PDO.

if($_POST['mode'] == 'loadlinks'){
    $pdo = new PDO('mysql:host=HOST;dbname=DATABASE'), 'username', 'password');
    $stmt = $pdo->execute('SELECT * FROM site ORDER BY link_id DESC');

    $sites = $stmt->fetchAll();
    foreach($sites as $site) {
        echo "<div>" . $site['name'] . "</div>"; // Or whatever info you want to output
    }
}

For performance you should be specifying table column names to retrieve instead of using *.

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you need to quote the string value

  if($_POST['mode'] == 'loadlinks'){.....
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...and don't quote variables: echo ("$data[1]"); -> echo $data[1]; (or echo "{$data[1]}";, which would be pointless). –  d_inevitable Jun 17 '12 at 2:03

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