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I've been having a bit of trouble with this for a while, please can somebody shed some light onto this?

What's happening so far: When a button is clicked, a search statement occurs and an AJAX call is made and brings back a set of results (displayed as a table) these results coming from a table in mysql database called 'ticket. The values displayed from the ticket table are 'venue' 'date' 'time' 'tPrice'. This 'tPrice' is a number which has been set i.e. 15/20/25 to represent the price of a ticket. This works and displays fine but I'm having a problem trying to get the value of the price of the ticket in Javascript, does anyone know how to refer to a number in a mysql table in JS?

What I'm wanting to do with this value is multiply it to the value of whatever number is selected from a drop-down menu. (this drop-down menu is also returned by AJAX as part of the results of the user's search, this search result page is written in php and echoes the drop-down menu as a column within the results table)

What I have so far is this:

function quantityChange() {
//Select the value of the drop down list       
var quantity = $('.summary').html($('#showQuantity option:selected').val());
//get the value of the number from the tPrice column in 'ticket' table
var ticket = parseFloat($('#ticketprice').val());
//multiply them together
var total = quantity * ticket;
return (total);

After debugging in Firebug, it's giving me no errors but it's also not giving me any results...please, any help would be greatly appreciated! Thanks

EDIT: The php code:

$postCodeSQL = "SELECT * FROM ticket WHERE locationID IN (SELECT locationID FROM location WHERE postCode LIKE '$pcSearch') ";

  $postCoderesult = mysql_query($postCodeSQL) or die(mysql_error());

  while ($pcRow = mysql_fetch_assoc($postCoderesult)) {
    $venue = $pcRow['venue'];
    $ticketPrice = $pcRow['tPrice'];
    $date = $pcRow['date'];
    $time= $pcRow['time'];

    echo "<tr>\n";
    echo "<td>$venue</td>\n";
    echo "<td id=\"ticketprice\">&pound$ticketPrice</td>\n";
    echo "<td >
         <select name =\"showQuantity\" id=\"showQuantity\" class =\"showQuantity\" onchange=\"quantityChange()\" >
                   <option value=\"1\">1</option>
           <option value=\"2\">2</option>
           <option value=\"3\">3</option>
           <option value=\"4\">4</option>
           <option value=\"5\">5</option>
         </select>
        </td>\n";
     echo "<td>$date</td>\n";
     echo "<td>$time</td>\n";
     echo "</tr>\n";
}
share|improve this question
    
Do you get nothing? or 0? –  Ofir Baruch Mar 7 '12 at 13:04
    
Do you only have one "ticketprice" dropdown on the page? You're giving an ID in that selector there, so I'm hoping so...are you sure the value is getting populated in the drop down's options? You might right-click and inspect the element with Firebug just to be sure. –  enygma Mar 7 '12 at 13:04
    
I get absolutely nothing. –  Tim Johnstone Mar 7 '12 at 13:05
    
You don't need $('.summary').html($('#showQuantity option:selected').val()). $('#showQuantity option:selected').val() is enough. –  Florian Margaine Mar 7 '12 at 13:05
    
What does Firebug show for the value of quantity and ticket just prior to calculating total? –  pete Mar 7 '12 at 13:05

2 Answers 2

Try this (change the trigger function)

$(document).ready(function() {
function quantityChange() {
//Select the value of the drop down list       
var quantity = $('#showQuantity option:selected').val();
//get the value of the number from the tPrice column in 'ticket' table
var ticket = parseFloat($('#ticketprice').val());
//multiply them together
var total = quantity * ticket;
//console.log(total);
//console.log(ticket);
//console.log(quantity);
return (total);
}

// Need a simple trigger
$('#showQuantity').change(function() {
        quantityChange();
});
});
share|improve this answer
    
Thank you Charles Weiss for your response, I have implemented these changes and Firefox tells me that quantityChange() is not defined? –  Tim Johnstone Mar 7 '12 at 13:20
    
check for mispelling between the function name when defining it to the function name when calling it. –  Ofir Baruch Mar 7 '12 at 13:28
    
Thank you, I shall do this. When I alert(ticket); its giving me 'NaN' (not a number) for some reason it won't recognise the value in my tPrice column as a number :/ –  Tim Johnstone Mar 7 '12 at 13:30
    
@TimJohnstone: I took it for granted that there was only 1 select statement, and that you are running jQuery. You might need to use a "live" handler on the trigger to detect the ajax changes to the dom. –  RumpRanger Mar 7 '12 at 14:02

As said , you have more than one element with the same ID. So when you're writing a code to get the value by elemeny's id = troubles. Try:

1.Change the next line:

onchange=\"quantityChange()\"

to:

onChange=\"quantityChange(this)\"

2.Change your function defining line to:

function quanitityChange(selElem){

3.change the next line:

var quantity = $('.summary').html($('#showQuantity option:selected').val());

to:

var quantity = parseFloat($(this).find(":selected").val());

4.Change:

echo "<td id=\"ticketprice\">&pound$ticketPrice</td>\n";

to:

echo "<td id=\"ticketprice\">&pound$ticketPrice<input type='hidden' id='ticketPriceHidden' value='".$ticketPrice."'></td>\n";

5.In your function again:

var ticket = parseFloat($(this).parent().find("input#ticketPriceHidden").val());

Works? What the output of quantity and ticket now?

share|improve this answer
    
Thank you dude. However the output for this is 'NaN'. I'm able to get the option value that the user selects but the major problem I'm having is getting the value of: $ticketPrice = $pcRow['tPrice']; echo "<td id=\"ticketprice\">&pound$ticketPrice</td>\n"; This is the value that is stored in my database and Im trying to make the function get this ['tPrice'] value and multiply it to the quantity variable. –  Tim Johnstone Mar 7 '12 at 13:39
    
I know , updated my answer (steps 4,5) –  Ofir Baruch Mar 7 '12 at 13:40
    
Thank you, however I'm now getting 'NaN' for both the quantity and ticket when I alert() them. Would you like me to re-post the code I have now? –  Tim Johnstone Mar 7 '12 at 13:44
    
You should update your question with your current code and output. –  Ofir Baruch Mar 7 '12 at 13:48

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