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Editorial Team
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Asked: 2026-06-01T09:58:49+00:00

I am trying to populate the second dropdown from my choice in the second,

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I am trying to populate the second dropdown from my choice in the second, but whenever I make my change nothing updates.

<script type="text/javascript" src="jquery-1.7.2.js"></script>

<script>
var second_choice = $('#second-choice').val();
$("#first-choice").change(function() {
$("$second-choice").load("findModel.php?choice=" + $("#first-choice").val());
});
</script>

Here is the associated PHP File:

<?php
include 'dbc.php';

$choice = mysql_real_escape_string($_GET['choice']);

$query="SELECT * FROM `cars` WHERE `DVLAMake`='$choice'";
$result = mysql_query($query);

while ($row = mysql_fetch_array($result)) {
    echo "<option>" . $row{'DVLAModel'} . "</option>";
}
?>

The database connection works.

<select id="first-choice">
<option selected value="base">Please Select a Make</option>
<?php 
$sql="SELECT DISTINCT `DVLAMake` FROM `cars`";
$result = mysql_query($sql);
while ($data=mysql_fetch_assoc($result))
{
echo "<option value =\"{$data[DVLAMake]}\" >{$data[DVLAMake]}</option>\n";
} 
?>
</select>

<select id="second-choice">
<option>Please choose from above</option>
</select>
<br />

<input type="submit" style="font-size:14px; padding:3;"value="Submit" size="20" />
</form>

Any reason why?

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1 Answer

  1. Editorial Team

    You have a typo here $("$second-choice")

    $("#second-choice").load("findModel.php?choice=" + $("#first-choice").val());

    EDIT – have you tried

    $(function(){
    var second_choice = $('#second-choice').val();
    $("#first-choice").change(function() {
        $("$second-choice").load("findModel.php?choice=" + $("#first-choice").val());
    });
});
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