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Hi I think I'm doing something wrong in my jQuery. I'm working on an online booking system and after choosing a treatment and date I want to dynamicly show a list of available timeslots. I have a php file which creates an array and echoes back the results in a SELECT OPTION list. I've tested with another file, and the jQuery post function works so the problem is for sure getting the results to show. The following is my first page jQuery. On changing date the SELECT list disappears.

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

            var $form = $( "#input" ),
            treat = $form.find( 'input[name="treatment"]' ).val(),
            book = $form.find( 'input[name="bookdate"]' ).val(),
            url = "input_date.php";

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

        );
    }});
});

this is my php file:

<?php
include('connection.php');
error_reporting(0);
$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;
}

?>
share|improve this question
5  
Welcome your code to the world of SQL Injection. –  Marcin Orlowski Oct 8 '12 at 15:21
1  
@WebnetMobile.com please insert English links on SO: en.wikipedia.org/wiki/SQL_injection –  feeela Oct 8 '12 at 15:33
    
Thank you for pointing out to me security flaws, but how is this helping my problem? –  Jake Rowsell Oct 8 '12 at 15:37
    
@feeela Oops... I did not notice I switched languages. Sorry. Here is SQL Injection in English. –  Marcin Orlowski Oct 8 '12 at 16:21
    
alert(content); and see if you are getting the result in that variable –  air4x Oct 8 '12 at 16:21
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1 Answer

var content = $( data ).find( '#timeslots' );
                    $( "#dates" ).empty().append( content );    
                }

this is the error

$( data ).find( '#timeslots' );

returns an object

you can use

$( data ).find( '#timeslots' ).text();// or html()
share|improve this answer
    
I've tried them both like this: function(data) { var content = $( data ).find( '#timeslots' ).html(); alert(console.log(data)); $( "#dates" ).empty().append( content ); } But it still returns undefined, also with text instead of html –  Jake Rowsell Oct 8 '12 at 17:58
    
@JakeRowsell use $("#dates").html(content); instead of $( "#dates" ).empty().append( content ); –  StaticVariable Oct 8 '12 at 18:04
    
It still alerts undefined.. I think the problem is in finding #timeslots content.. –  Jake Rowsell Oct 8 '12 at 18:09
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