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EDIT: My main code no longer works, should this function work?

<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.

#

On load a PHP file populates my first dropdown:

<form name="indexSearch" action="searchResults.php" method="POST">

<select id="first-choice">
<option selected value="base">Please Select</option>
<option value="VAUXHALL">VAUXHALL</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>

That works, and then on choosing the value it calls a function which then fills the second with options which I can choose from. However when I post the form, it doesn't take the second dropdown selected value through it's just empty but it does take the first dropdown value selected value.

Any reason why?

share|improve this question
    
You dont have name attribute for your select input –  safarov Apr 5 '12 at 8:52
    
You have no form controls with a name attribute, that shouldn't be able to submit any data. –  Quentin Apr 5 '12 at 9:01

3 Answers 3

up vote 1 down vote accepted

The problem is that the second select tag does not have name attribute. if it lies in the form you will get the request via post only if the attribute has name. if you are using jquery you can simply fetch value by id then post it via ajax. select like this in jquery.

var second_choice = $('#second-choice').val();
share|improve this answer
    
actually - none of the <select> tags have name attributes –  cloakedninjas Apr 5 '12 at 9:28
    
Turns out my code isn't working anymore. Forget the original question; my first dropdown populates, but when I change the second nothing happens. My jquery function is just at the top near the head function, is that correct: <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> –  Glitch100 Apr 5 '12 at 9:43
    
Pleas check main post. –  Glitch100 Apr 5 '12 at 9:45

How are you changing the selected value? Using e.g. ajax? And how are you sending your data? Using ajax or simple POST with page reload?

If you're changing something using ajax your data need to be send by ajax. Because without it you will don't send your data generated by JS but this generated by your PHP script.

share|improve this answer

You wrote

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

instead of:

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

$ -> #

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