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I want to show a specific div class in my view ... but first I have to check whether sepecific data is successfully entered into the data base through ajax and if not then other dive error class will appear above for some time and then hide.

Here is my view JavaScript code. Here I am popping a dialog box if event occur suceesfully which I want to turn into a div class that if something true is happened then "div success message" else div failure message. I think I have to pass a specific parameter from controller to view but I dont know how to do it.

         <script type="text/javascript">
          $('#btn').click(function() { 

var item_name = $('#item_name').val();
var cat_id = $('#cat_id').val();

if (!item_name || item_name == 'Name') {
    alert('Please enter Category Name');
    return false;
}

var form_data = {
        item_name: $('#item_name').val(),
        cat_id:    $('#cat_id').val(),
    ajax: '1'       

};

$.ajax({
    url: "<?php echo site_url('itemsController/additems'); ?>",
    type: 'POST',
    data: form_data,
    success: function(msg) {
        //$('#message').html(msg);

        alert("items added successfully");
          $('#item_name').val("");



    }
});

return false;
     });


    </script>

this is my controller

function additems(){

    //getting parameters from view 
    $data = array(
            'item_name' => $this->input->post('item_name'),
            'cat_id' => $this->input->post('cat_id')

    );


    $is_ajax = $this->input->post('ajax'); //or use this line
    //$this->input->is_ajax_request();

    $this->load->model('itemsModel'); 
    $query = $this->itemsModel->addItemstoDB($data);


          if ($query && $is_ajax){             //if the user c validated
        //data variable is created becx we want to put username in session


         $page['main_content'] = 'itemsView';

         $this->load->view('dashboardTemplate/template',$page);


    }
    else
     {
        echo "not added";
    }
    }




     }

model

        class ItemsModel extends CI_Model {


public function addItemstoDB($data){

    $successfull = $this->db->insert('item',$data);


    if ($successfull){
        return true;
    }else{
        return false;
    }
}

}

share|improve this question

1 Answer 1

this is not how to deal with ajax in your controller at all:

first I''m going to assume that your model is returning true if inserted and false if not then:

your controller:

function additems(){
//your processing goes here.
    $result = array();
    $this->load->model('itemsModel'); 
    $query = $this->itemsModel->addItemstoDB($data);
    //var_dump($query); the results will be desplayed either on your page or you can see it using firebug in firefox
    if ($query ){  //&& any other condition
        $result['res'] = 1;//process successful - replace 1 with any message
    }
    else
     {
        $result['res'] = 0;//process failed - replace 0 with any message
     }
       echo json_encode($result);//at the end of the function.
    }

then your ajax part:

$.ajax({
    url: "<?php echo site_url('itemsController/additems'); ?>",
    type: 'POST',
    data: form_data,
    dataType: 'json',
    success: function(msg) {
        if(msg.res == 1)
        {
          $("your div").removeClass("error").addClass("ok");
        }
        else{
          $("your div").removeClass("ok").addClass("error");               
          }


    }
});
share|improve this answer
    
thanks it help me a lot and it works 99% ... 1% is where i am getting problem is when i implement your code ..i just replace $("your div").removeClass("error").addClass("ok"); $("your div").removeClass("ok").addClass("error"); these two lines with alert boxes true and false ... and then when i run the script it outputting the false in a dialog box ..but the data is successfully adding into database.. –  mynameisjohn Jan 11 '13 at 19:15
    
okay, fast typo error. I updated it. added array declaration at the first :). is there any other things? –  mamdouh alramadan Jan 11 '13 at 19:18
    
i replace these lines for testing purpose –  mynameisjohn Jan 11 '13 at 19:22
    
I added the $result array declaration at the top of the function. have you updated your code with it? –  mamdouh alramadan Jan 11 '13 at 19:27
    
yup i did that... according to your logic as the query is successfully running it should print true ... but its printing false but data is adding into database successfully ... may b the view is not getting the value '1' ..dont know wats wrong in this –  mynameisjohn Jan 11 '13 at 19:30

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