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I am trying to create 3 drop down boxes dependent on each other. Each drop down box is getting its data from its own tables. There are 3 tables as shown:

enter image description here

enter image description here

enter image description here

This is the form:

<label for="tourtype">
  Tour Type 
</label>
<select id="tourtype" name="tourtype" required>

  <option value="" selected="selected">
    --Select--
  </option>
  <?php
       $sql=mysql_query("Select tour_type_id,tour_name from tour_type");
       while($row=mysql_fetch_array($sql))
       {
           $tour_type_id=$row['tour_type_id'];
           $name=$row['tour_name'];
           echo "<option value='$tour_type_id'>$name</option>";
       }
  ?>
</select>

<label>
  Country
</label>
<select id="country" name="country" class="country" required>
  <option value="" selected="selected">
    -- Select --
  </option>

</select>

<
<label>
  Destination
</label>
<select id="destination" name="destination" class="destination" required>

  <option value="" selected="selected">
    -- Select --
  </option>
</select>

This is the javascript:

<script type="text/javascript">
    $('#tour_type').change(function () {
        var id = $(this).val();
        $.ajax({
                type: "POST",
                url: "ajax.php",
                data: "&id=" + id + "&get_countries=1",
                success: function (html) {
                    $("#country").html(html);
                }
            });
    });

    $('#country').change(function () {
        var id = $(this).val();
        $.ajax({
                type: "POST",
                url: "ajax.php",
                data: "&id=" + id + "&get_destination=1",
                success: function (html) {
                    $("#destination").html(html);
                }
            });
    });
</script>

And this is the ajax.php

<?php
include ('../config.php');
< ? php
if ($_REQUEST['get_countries']) {
    $sql = mysql_query("SELECT * FROM `countries`  where `tour_type_id`=" . $_REQUEST['id']);
    $countries = "";
    while ($row = mysql_fetch_array($sql)) {
        $cid = $row['countries_id'];
        $name = $row['countries_name'];
        $countries.= "<option value='" . $cid . "'>" . $name . "</option>";
    }

    echo $countries;
}
elseif ($_REQUEST['get_destination']) {
    $destination = "";
    $sql = mysql_query("SELECT * FROM `destination`  where `country_id`   =" . $_REQUEST['id'])
    while ($row = mysql_fetch_array($sql)) {
        $destination_id = $row['destination_id'];
        $name = $row['destination_name'];
        $destination.= "<option value='" . $destination_id . "'>" . $name . "</option>";
    }

    echo $destination;
}

?>

The problem is the 2nd and 3rd drop down boxes are not populating anything. Can anyone help me? For example if i select culture on the 1st drop down, the 2nd drop down should show Holland and Belgium. Then if i select Holland, the 3rd drop down should show Amsterdam.

share|improve this question
    
Have you debugged the XMLHttpRequest? If not, install FireBug and watch the NET tab. –  Half Crazed Jun 5 '13 at 16:25
    
Also, your ajax.php will have a parse error. you should try accessing ajax.php?id=1. I also believe your $.ajax data is not formatted right (remove & from the ends of string) –  Half Crazed Jun 5 '13 at 16:26
1  
Please consider tidying your code using one of the many online formatters to make it more readable, this will help more users to be able to understand what your code is doing, and how best to answer your question. –  Stampy Jun 5 '13 at 16:27
    
are you sure your query is returning data and not just an empty string? –  stackErr Jun 5 '13 at 16:30
    
Sorry i am a beginner to coding and do not know my way around this forum. Can you simplify your explanation how to fix this issue please –  munue Jun 5 '13 at 16:30

1 Answer 1

up vote 2 down vote accepted

Your identifier in your Javascript is #tour_type when your id is #tourtype.

If the syntax is correct and your SQL results are correct too, it should work.

EDIT: some of your JS isn't right.

data: "&id=" + id + "&get_countries=1",

should be

data: {id: id, get_countries: 1},

You should also put a debug on your ajax call by adding

error: function () { alert("ajax failed"); }

after your success callback

full sources now:

$('#tourtype').change(function() {
    var id=$(this).val();
    $.ajax
    ({
        type: "POST",
        url:"jurassicbase5/admin/ajax.php",
        data: {id: id, get_countries: 1},
        success: function(html){
        $("#country").empty();
        $("#country").append(html);
        },
        error: function () { alert("ajax failed"); }

    });
});

$('#country').change(function() {
    var id=$(this).val();
    $.ajax
    ({
        type: "POST",
        url: "jurassicbase5/admin/ajax.php",
        data: {id: id, get_destination: 1},
        success: function(html)
        {
            $("#destination").empty();
            $("#destination").append(html);
        },
        error: function () { alert("ajax failed"); }
    });
});
share|improve this answer
    
ok i have changed it to #tourtype. But the fault still the same –  munue Jun 5 '13 at 16:46
    
Do you use any kind of javascript/jquery dropdown ? Everytime I used one with a dynamic population like that it was what made the dropdown not populate. Try using the base selects of html if you don't. –  Jay Zus Jun 5 '13 at 16:53
2  
Thanks Jay Zus and user1160022 for the huge help, this works now –  munue Jun 5 '13 at 19:16

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