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EDIT 1

I am getting courseID from this code:

    $coursesOutput = '<option value=""></option>';

    while($row = mysql_fetch_array($result2)){
        $courseID = $row['courseID'];
        $courseName = $row['name'];

        $coursesOutput .= '<option value="' . $courseID . '">' . $courseName . '</option>'; 
    }

My php script is as follows (returning an echo statement)

    <?php

    include ("includes/connect.php");

    $courseID = mysql_real_escape_string($_GET['courseID']);
    $sql = "SELECT tee1, tee2, tee3, tee4, tee5 FROM courses WHERE courseID='$courseID' LIMIT 1";
    $result = mysql_query($sql) or die(mysql_error());

    while($row = mysql_fetch_array($result)){
  $tee1 = $row['tee1'];
  $tee2 = $row['tee2'];
  $tee3 = $row['tee3'];
  $tee4 = $row['tee4'];
  $tee5 = $row['tee5'];
    }

    $teesOutput = '<option value="' . $tee1 . '">' . $tee1 . '</option>';

    if($tee2 != ""){
  $teesOutput .= '<option value="' . $tee2 . '">' . $tee2 . '</option>';
    }
    if($tee3 != ""){
   $teesOutput .= '<option value="' . $tee3 . '">' . $tee3 . '</option>';
    }
    if($tee4 != ""){
  $teesOutput .= '<option value="' . $tee4 . '">' . $tee4 . '</option>';
    }
    if($tee5 != ""){
  $teesOutput .= '<option value="' . $tee5 . '">' . $tee5 . '</option>';
    }

    echo '' . $teesOutput . '';
    die();
    ?>

I am not getting any ajax errors but still nothing populating in my tee selector. Hope this helps, once again I am overwhelmed by the support here, unbelieveable!

End EDIT 1

I have been unable to figure this AJAX-JQUERY feature out for awhile now. It should be an easy spot for good jQuery programmers.

I want to be able to auto-populate my tee select input after a user selects their course. This is a golf app and courses have several different tee color schemes so each will be course specific.

So far my broken codes are:

HTML

<form id="formAddScore" action="addscore.php" enctype="multipart/form-data" method="post">
    <p class="profile_label">Select Date:</p>
    <input type="text" id="datepicker" name="datepicker" class="score_input" />

    <p class="profile_label">Select Course:</p>
    <select id="course" name="course" class="score_input" onchange="populateTee(this.value)">
        ' . $coursesOutput . '
    </select>

    <p class="profile_label">Select Tee:</p>
    <select id="tee" name="tee" class="score_input">

    </select>

    <p class="profile_label">Actual Score:</p>
    <input id="score" name="score" class="score_input" type="text" size="10" />

    <p class="profile_label">Score ESC (Equitable Stroke Control):</p>
    <input id="scoreESC" name="scoreESC" class="score_input" type="text" size="10" />
    <br/>

    <input id="btnAddScore" name="btnAddScore" class="btn_score" type="submit" value="Add Score" />

</form>

JQUERY

function populateTee(courseID)
{
    $.ajax(
    {
        url: 'includes/populate_tee.php?courseID=' + courseID,
        success: function(data) {
        $("#tee").html(data);
               }
    });
}

PHP

populate_tee.php script WORKS, so I won't waste your time including it.

I am fairly certain the problem is in the above JQUERY-AJAX script.

Any help would be wonderful.

Thanks in advance.

share|improve this question
    
What is the output that is returned by populate_tee.php? –  3dgoo Jan 3 '13 at 4:54
    
Are you getting any .ajax errors? Those could be seen in the browsers console. –  arttronics Jan 3 '13 at 4:55
    
You also need to mention where courseID comes from. Try copying the actual output in the course select from the page source. –  Rutwick Gangurde Jan 3 '13 at 4:59
    
have you triple-checked that - populateTee() is getting the correct courseID when it is supposed to? - populate_tee.php is outputting the correct HTML? - the headers the browser is receiving in the reply are correct? - the data in success function is correct? - the behaviour is consistent between different browsers? –  Carl Jan 3 '13 at 5:00
    
Are you passing the data in json format - I mean in which format the data is? –  Shiva Komuravelly Jan 3 '13 at 5:00

2 Answers 2

up vote 0 down vote accepted

Where does courseID come from? Try logging it into the console. Does this help?

function populateTee(courseID){
   $.ajax({
           url: 'includes/populate_tee.php?courseID=' + courseID,
           success: function(data) {
                    //Assuming you're returning the tees list as an indexed array
                    var ops = '';
                    for(var i=0; i<data.length; i++){
                        ops += '<option>'+data[i]+'</option>';
                    }
                    $("#tee").html(ops);
           }
   });
 }
share|improve this answer
    
$("#myselect").html("<option value='text'>text</option>"); –  Shiva Komuravelly Jan 3 '13 at 5:01
    
There could be multiple options. –  Rutwick Gangurde Jan 3 '13 at 5:04
    
Thanks for the edit, typo ;) –  Rutwick Gangurde Jan 3 '13 at 5:04
    
hi guys, much appreciative of the quick responses, i'm blown away at all the help. This is my first post and am wondering how to reply to this thread other than just a comment? –  Bill Chambers Jan 3 '13 at 5:19
1  
@BillChambers - You should edit your original post and start your edit with Edit 1 or Update 1 –  3dgoo Jan 3 '13 at 5:34

Instead of using onChange event on select i suggest use of jquery .change() method. Try following code it should solve the problem.

 $('#course').on('change', function () {
          var courseID = $(this).val();

          $.ajax({
                type: "post",
                url: 'includes/populate_tee.php?courseID=' + courseID,
                success: function(data) {
                $("#tee").html(data);
               }
              });


      });
share|improve this answer
    
each is not required here as it would mean sending an AJAX request for every option in the select. Editing your answer. –  Rutwick Gangurde Jan 3 '13 at 5:01
    
I guess you are right but since you are not using select multiple it should not cause any trouble. Although you can alter the code with in the change method. –  Saurabh Jan 3 '13 at 5:04
    
Did that! Check! –  Rutwick Gangurde Jan 3 '13 at 5:05
    
Hi, More simpler approach in this case will be to use $(this).val(); I changed the code accordingly. –  Saurabh Jan 3 '13 at 5:10
    
Hi, I feel dumb, I can't figure out how to reply to my own thread, please help! –  Bill Chambers Jan 3 '13 at 5:27

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