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jQuery:

$(document).ready(function(){

    $(".reload").click(function() {
        $("div#update").fadeOut("fast")
        .load("home.php div#update").fadeIn("fast")
    });
});

PHP:

function statusUpdate() {

    $service_query = mysql_query("SELECT * FROM service ORDER BY status");
    $service_num = mysql_num_rows($service_query);

    for ($x=1;$x<=$service_num;$x++) {
    $service_row = mysql_fetch_row($service_query);

    $second_query = mysql_query("SELECT * FROM service WHERE sid='$service_row[0]'");
    $row = mysql_fetch_row($second_query);

    $socket = @fsockopen($row[3], $row[4], $errnum, $errstr, 0.01); 
    if ($errnum >= 1) { $status = 'offline'; } else { $status = 'online'; }

    mysql_query("UPDATE service SET status='$status' WHERE sid='$row[0]'")
    or die(mysql_error());

    ?>

    <ul><li style="min-width:190px;"><?php echo $row[1]; ?></li>
    <li style="min-width: 190px;" title="DNS: <?php echo $row[2]; ?>">
    <?php echo $row[3] . ':' . $row[4]; ?></li>
    <li class="<?php echo $status; ?>" style="min-width:80px;"><div id="update">
    <?php echo $status; ?></div></li></ul> 

    <?php

    } 
}

?>

<?php statusUpdate(); ?>

I have a button which I press (refresh) and that will then refresh the #update id to hopefully fadeOut all the results, and then fade in the new results... issue is it fades them out okay, but when it brings them back, it's just div on div and div and looks really messy - does not do what it's meant to do (would have to upload a picture to give further information).

In the short, what I want to happen is when you hit the update, they will all fade and then fade in with updated values from the php... I made the php/mysql into a function so then I could call it when i hit that refresh button, thinking that would work, but I don't know how to do that...

Thank-you in advance,

Phillip.

share|improve this question
    
first check in you firebug what response do you get – Santosh Linkha Mar 7 '11 at 5:42
    
wouldn't know what to start looking at with that addon... haha. – Phillip Mar 7 '11 at 5:46
    
go to firefox addon search firebug and install it, and expand it on by clicking on the right corner of your browser and active console and you will see the ajax reqest there – Santosh Linkha Mar 7 '11 at 5:52
up vote 1 down vote accepted

Javascript

 $(document).ready(function(){

        $(".reload").click(function() {
            $("div#update").fadeOut("fast");
            $.ajax({
                 url:'home.php',
                 data:{type:'getStatus'},
                 type;'post', 
                 success:function(data){
                    $('div#update').html(data).fadeIn('fast');
                 }
            });       
        });
    });

php page format

<?php
$type= $_POST['type'];
if($type=="getStatus")
{
    //get statuses from data base and return only formatted statuses in html
}
else
{
   //your page codes here
   //like tags <html>,<body> etc, all regular tags
   //<script> tags etc
}
?>
share|improve this answer
    
i noticed here you have function(data), yet the php function is statusUpdate ... how do i link that ajax command to the output/results of the statusUpdate function within home.php? – Phillip Mar 7 '11 at 5:56
    
please tell me this so that i can update my code, the php page that is holding javascript and the one which is returning status are same ie. home.php?? – Praveen Prasad Mar 7 '11 at 6:03
    
home.php is holding all the information (html, php and jQuery). jquery is running at the top under ready(function) – Phillip Mar 7 '11 at 6:07
    
updated the answer!! – Praveen Prasad Mar 7 '11 at 6:15
    
You have been an amazing help. Thank-you very much! – Phillip Mar 7 '11 at 6:20
.load("home.php div#update").fadeIn("fast")

That's wrong. You need to use,

$('div#update').load('home.php', function(data) {
  $('div#update').html(data).fadeIn("fast");
});

Make sure your PHP file works properly by calling it directly and confirming that it returns the results properly.

Reference : http://api.jquery.com/load

share|improve this answer
    
Thank-you John P, I have attempted Praveen's for now, however nothing I do will allow each div to update individually, it keeps loading the entire home.php into each div rather than just the #update information :( – Phillip Mar 7 '11 at 5:57

Try this

var $data = $('div#update');
$data.fadeOut('slow', function() { 
    $data.load('home.php div#update', function() { 
        $data.fadeIn('slow'); 
    }); 
});
share|improve this answer

Just for the reference, it will be better to add an additional page in the same directory (eg: phpcode.php) and then put your php code also in there! then try this:

var $data = $('div#update');
$data.fadeOut('slow', function() { 
    $data.load('phpcode.php div#update', function() { 
        $data.fadeIn('slow'); 
    }); 
});
share|improve this answer

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