Unable to display contents in Second Drop Down Box
Posted on
16th Feb 2014 07:03 pm by
admin
Hi All,
What I am trying to do is 2 dependent drop down boxes and when user selects submit button the values are to be passed to the database to run a insert query.
Right now, I am stuck with the second drop down box because it does not show up the values based on the selection in the first drop down box.
Important point here is " My second drop down box displays columns from a single row(returned from second query)"
Attached is my code please do suggest me the required changes to make and also I pasted the code here,
<?php
include("../include/dbcommon.php");
if(isset($_GET["country"]) && is_numeric($_GET["country"]))
{
$country = $_GET["country"];
$emp_number=$country;
echo($emp_number);
}
if(isset($_GET["state"]) && is_numeric($_GET["state"]))
{
$state = $_GET["state"];
$emp_positionheld=$state;
echo ($emp_positionheld);
}
?>
<script language="JavaScript">
function autoSubmit()
{
var formObject = document.forms['theForm'];
formObject.submit();
}
</script>
<form name="theForm" method="get">
<select name="country" onChange="autoSubmit();">
<option value="null"></option>
<?php
//POPULATE DROP DOWN MENU WITH Employee Names
$sql = "SELECT EmployeeNumber,LastName FROM employees";
$countries = mysql_query($sql,$conn);
while($row = mysql_fetch_array($countries))
{
echo ("<option value="$row[EmployeeNumber]" " . ($country == $row["EmployeeNumber"] ? " selected" : "") . ">$row[LastName]</option>");
}
?>
</select>
<?php
if($country != null && is_numeric($country) )
{
?>
<select name="state" onChange="autoSubmit();">
<option value="null"></option>
<?php
//POPULATE DROP DOWN MENU WITH Job Position helds For a Given Employee
$sql = "SELECT * FROM employee_positionheld WHERE EmployeeNumber = $country ";
$states = mysql_query($sql);
$row = mysql_fetch_array($states);
for($k=1;$k<=6;$k++)
{
echo("inside for");
$temp[$k]='Position held' . ' '.$k;
$queryvar=$temp[$k];
//echo($queryvar);
echo ("<option value="$row[$queryvar]" " . ($state == $row[$queryvar] ? " selected" : "") . ">$row[$queryvar]</option>");
}
?>
</select>
<?php
}
?>
</form>
MY EMPLOYEE_POSITION HELD TABLE looks like this
EmployeeNumber Employee Name Position held 1 Position held 2 Position held 3 Position held 4 Position held 5 Position held 6
34550 Suraj Entryleveltech1 Seniortech1 programmer1 0 0 0 0
No comments posted yet
Your Answer:
Login to answer
272 
26 
Other forums
Quick fix: Conditional statement with an array
Hi, I'm getting the temperature value off of the Environment Canada website along with the icon file
Contents of variable not echoing
Hey guys, hopefully this is an easy one...
In this line, the variables are not echoing out. T
Not Loading Function Into Div
I'm not sure whether to put this under the php forum or ajax forum but because I tink it's more of a
SOAP Issue
Hi,
I am facing some understanding problem with SOAP basic.kindly recommend some SOAP expert.
Number Format
Hi All,
I have number '000000000050085' I want to format it to 500.85 Can any one give me
My query is being run with no results.
I have this.
Code: function DropUser($duser_id, $user_email, $user_username) {
links using header()
Hi All
I'm not sure where to ask for help on this but I hope someone can offer some. I'm at
Varible in trigger - refering to correct schema
Hello
Im having some issues with my trigger.
What I want to do is call opon a differ
PHP page is blank
Hi Everyone,
I have a site in which I am able to open the first PHP webpage in my browser but
How to convert this array to string
I am having problems converting this array to a string
using print_r($val[1]); I get:
Code: [
