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Hi I'm having a problem displaying the result I get back from my php file.

jquery part:

$("#dates").load('input_date.php');
    $("#datepicker").datepicker({
        dateFormat: "dd-mm-yy",
        onClose: function() { 

            var $form = $( "#input" ),
            treat = $('#treatment option:selected').val(),
            book = $( '#datepicker' ).val(),
            url = "input_date.php" ;

            $.post( url , { treatment: treat, bookdate: book  },
                function(data) {
                    var content = $( data ).find( '#timeslots' );
                    alert(treat);
                    console.log(content);
                    $( "#dates" ).empty().append( content );}


            /*$.post( "input_date.php" , { treatment: treat, bookdate: book  },
                function(data) {
                    var $data = $(data);
                    var content = $data.is('#timeslots') ?   $data : $data.find('#timeslots');
                    alert(content);
                    $( "#dates" ).empty().append( content );}*/
        );



    }});

php part (in input_date.php)

<?php
include('connection.php');
error_reporting(E_ALL);
$treatment = $_POST['treatment'];
$bookdate = $_POST['bookdate'];
if(isset($treatment) && isset($bookdate)){

$exp = explode("-", $bookdate);

//determine what day of the week it is
$timestamp = mktime(0,0,0,$exp[1],$exp[0],$exp[2]);
$dw = date( "w", $timestamp); // sun0,mon1,tue2,wed3,thur4,fri5,sat6
echo $dw."weekday"; //week day 
echo"<br/>";

//find bookings with same date
$q = mysql_query("SELECT BOOK_SLOT_ID FROM BOOKINGS WHERE BOOK_DATE='$bookdate'");
//make array of booking slots
$array1 = array();
while ($s = mysql_fetch_array($q)) {
$array1[] = $s['BOOK_SLOT_ID'];
}
$q2 = mysql_query("SELECT SL_ID FROM SLOTS");
//make array of all slots
$array2 = array();
while ($s2 = mysql_fetch_array($q2)) {
$array2[] =  $s2['SL_ID'];
}

//remove bookings from all slots
$arr_res = array_diff($array2, $array1);

//make selectable options of results
echo '<SELECT id="timeslots">';
foreach($arr_res as $op){
$r = mysql_query("SELECT SL_TIME FROM SLOTS WHERE SL_ID='$op'");
$q3 = mysql_fetch_array($r);
echo "<OPTION value=".$op.">".$q3['SL_TIME']."</OPTION>";
}
echo '</SELECT>';
}else{
$else = mysql_query("SELECT * FROM SLOTS");
echo '<SELECT>';
while($array_else = mysql_fetch_array($else)){
echo "<OPTION value=".$array_else['SL_ID'].">".$array_else['SL_TIME']."</OPTION>";
}
echo "</SELECT>";
print $bookdate;
}

?>

Big update: I found an error in the $.post part which was causing the variables not to be passed on to the php correctly. Now If I check my console, initially it gives php undefined errors, however the return I get from post shows what it should show, it doesn't display in my #dates div. Any ideas on how to get the information to display? Thanks in advance

share|improve this question
    
Also: JavaScript (and jQuery) works client-side. The client does not see PHP, it sees HTML. What HTML does your (server-side) PHP script return? – David Thomas Oct 8 '12 at 20:29
    
Have you checked the response you get from input_date.php in your browser's network or console tab? Is it what you are expecting? If the php file runs without errors (and doesn't output anything else) then the code should work – Bogdan Oct 8 '12 at 20:29
    
I currently also submit the form on this page to input_date.php and on that page it shows exactly what I want to see. I tried earlier posting values to a script to just upload records and that worked, so I think posting the same variables to this script should work too, and it should show me my select option list customised for available times.. – Jake Rowsell Oct 8 '12 at 20:35
    
But are you checking the response you're getting from input_date.php? Open the Developer Tools/Firebug depending if you're using Chrome or Firefox and check the Network tab after the request is made and see what you're getting back. From what I can tell you're expecting a <select> element with options in it, nothing more. – Bogdan Oct 8 '12 at 21:02
    
It does show me a that, it basicly gives me the same as I start with, except instead of get it's post response.. which is the full default array, along with two notices that variables are undefined.. Does this mean the $.post is not (correctly/in the right format) sending the variables? – Jake Rowsell Oct 8 '12 at 21:27
up vote 2 down vote accepted

jQuery.find() only searches descendants of the given element, not the element itself. Since #timeslots is the toplevel element of the script output, it's not being found. You can write:

var $data = $(data);
var contents = $data.is('#timeslots') ? $data : $data.find('#timeslots');
share|improve this answer
    
Thank you for your reply. It's still not working correctly though. The part that should be dynamicly loaded also doesn't change and my alert isn't working now. I believe that therefor the onclose function doesn't work anymore – Jake Rowsell Oct 8 '12 at 21:13
    
BUT now I fixed the php part, this solution worked perfectly! Thank you so much!! – Jake Rowsell Oct 9 '12 at 11:11

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