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I am working on form_dropdown() in codeigniter.

I have table countrystate(id, countryname, statename)

I populated countryname & filled on form_dropdown('fd_country').

Now I want to display statename based on selected countryname. Please help.

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closed as not a real question by Will Feb 8 '13 at 16:00

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1 Answer 1

See like I did it http://help.webhostel.org/h14682223

Controller code

public function index() {
        $this->load->database();
        $this->db->select('countryname');
        $this->db->group_by('countryname');
        $query = $this->db->get('country');

        foreach($query->result() as $item)
            $countries[$item->countryname] = $item->countryname;

        $data = array('department' => $countries);

        $this->load->helper('form');
        $this->load->view('welcome_message', $data);
}

public function get_subdepartment() {
    $this->load->database();
    $this->load->helper('form');
    $states = array();  
    if($this->input->post('dep_selected')) {
        $this->db->select('countrystate');
        $this->db->where(array('countryname' => $this->input->post('dep_selected')));
        $query = $this->db->get('country');

        foreach($query->result() as $item)
            $states[$item->countrystate] = $item->countrystate;
    }

    $output = form_dropdown('subdept', $states);
    echo $output;
}

Template part

<script type="text/javascript">
function get_subdepartment() {
    var dep_selected = $('select[name=txtDept]').val();
    $.ajax({
        data: {
            dep_selected: dep_selected,
        },
        type: 'POST',
        url: '/welcome/get_subdepartment',
        success: function(data){
            console.log(data);
            $('.subdepartment').html(data);
        }
    })
}
</script>
<div id="container">
<h1>Welcome to CodeIgniter</h1>
<div id="body">
<? echo form_open("addEmployee"); $newEmp = array('name' => 'newEmployee', 'id' => 'newEmployee', 'value' => set_value('ne')); ?>
    <div for='newEmp'><input type="text" name="txtEmpName" id="txtEmpName" maxlength="25" /></div> 
    <div for='newEmp'>
        <? echo form_dropdown($name = 'txtDept',$Options = $department, array($this->input->post('txtDept')),'onChange="get_subdepartment()"'); ?>
    </div>
    <div for='newEmp' class="subdepartment"></div>
<? echo form_submit('do_submit', 'Submit'); ?>
<? echo form_close(); ?>
</div>

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I am using <? echo form_open(); ?> & written same above code but no result. Also having <? form_submit(parameter) ?> Pls guide –  Shashikant Shukla Feb 4 '13 at 13:36
    
I've changed template part. See now. And if it doesen't work - show all part of template –  Andrei Zhamoida Feb 4 '13 at 14:09
    
No data post code as: <? echo form_open("addEmployee"); $newEmp = array('name' => 'newEmployee', 'id' => 'newEmployee', 'value' => set_value('ne')); ?> <div for='newEmp'><input type="text" name="txtEmpName" id="txtEmpName" maxlength="25" /></div> <div for='newEmp'><? echo form_dropdown($name = 'txtDept',$Options = $department, array($this->input->post('txtDept')),'onChange="submit(); return false;"'); ?></div> <div for='newEmp'><? if(count($subdepartment)){ echo form_dropdown($name = 'subdept', $options = $subdepartment); } ?></div> <? echo for_submit(); ?> <? echo form_close(); ?> –  Shashikant Shukla Feb 4 '13 at 14:16
    
then you need to use ajax. See like it works now. Code changed. Don't forget to require jquery –  Andrei Zhamoida Feb 4 '13 at 15:09
    
It is not posting through javascript i.e. $this->input->post('txtDept') is either null OR blank. What next? –  Shashikant Shukla Feb 5 '13 at 6:41

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