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So I'm coming across a very simple problem that I just can't seem to put together... I am simply reloading a table of images using AJAX so when the user selects an option (in this case a name) it will reload the box of images. So far, it works and it has been working but the only problem is I either need to do a 'hard' refresh or select the same option twice. Otherwise, it really isn't going to work. If anyone has a solution I'll post as much code as I can. Thanks!

jQuery:

    $('select.hotelmain').on('change', function (e){
    var id = $(this).val();
    var dataString = 'id=' + id;
    e.preventDefault();
    alert('got here');
    $.ajax({
        type: "POST",
        url: "../ajax/ajax_images.php",
        data: dataString,
        cache: false,
        success: function (html) {
            $("ul.image-list").html(html);
        }
    });
    $('p.selectMessage').css('display','none');
    $('.inner-container').css('display','block');
    $('.display').css('height','0px');
    return false;
});

PHP:

<?php
session_start();
$hotelId = $_SESSION['curHotelId'];
$hotelDir = '../assets/php/upload/'.$hotelId.'/*';
$count = 1;
if ($hotelId) {
    foreach(glob($hotelDir) as $filename=>$hotelvalue){
        echo '<li id="del'.$count.'" class="image-list"><img src="'.$hotelvalue.'" width="50px" height="50px"/><p class="filename">' . basename($hotelvalue) . '</p> <a class="btn btn-mini btn-primary image-list" style="width: 18px;margin-top: -25px;border-radius: 100%;-moz-border-radius: 100%;-o-border-radius: 100%;-webkit-border-radius: 100%;" id="del'.$count.'" value="Delete"><i class="icon-remove-circle icon-2" style="margin-left:-3px;"></i></a></li>' . "\n" . "<br>";
        $count++;
    }
}else{}
?>

Again, anything helps, I just can't seem to get it to do what I want. Thanks!

share|improve this question
    
Most likely everything after $.ajax needs to be inside the callback fn. –  Kevin B Jul 17 '13 at 18:52
    
Just a simple check; your Javascript is wrapped in some sort of DOM Content listener, right? ie: $(function() { ...yourstuff... }); –  Katana314 Jul 17 '13 at 18:52
    
Yes of course, starts off with $(document).ready(function (){ –  Mike Huebner Jul 17 '13 at 18:53

2 Answers 2

up vote 1 down vote accepted

You need to do the same option twice because you have .on(change). Since it's the same, it actually doesn't change.

EDIT: instead of change, try live.

share|improve this answer
1  
Haha, although live is now deprecated it managed to work, due to the fact I have an older version because I use datatables. It worked! Just still doesn't work in IE6, 7, or 8. :( I'll figure out a way around it though, but thank you so much! Can't believe it was as stupid as that. –  Mike Huebner Jul 17 '13 at 19:29

It looks like you're getting the hotleId from the session instead of the $_POST vars.
When do you set the $_SESSION['curHotelId']?

share|improve this answer
    
It is set when someone selects a hotel, so I have an ajax that resets the SESSION every time someone re-selects a hotel. I am grabbing that properly cause it does update in the code and everything else that uses this function works. This is the only function I cannot get to work. –  Mike Huebner Jul 17 '13 at 18:58
    
Why are you posting the new id to the ajax_images.php file and not using it? Are you sure the setting of the session var has happened by the time you do the post listed above? –  Barbara Laird Jul 17 '13 at 19:04
    
All I'm doing is updating the directory because in upload/$_SESSION['curHotelId']/ I have multiple different file names according to the id's of the hotels. It is weird system and took quite some time to figure it out but it works with everything else except refreshing this directory. –  Mike Huebner Jul 17 '13 at 19:07

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