Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have a function to insert the value to database . Everything is going well but i am stuck in ajax process to display the current value inserted in the new row of the table. I could not find a way to display or echo the values.I need an immediate help in this .can someone figure out what should i add to .
How can i echo value for ajax result to display in new row.

here is my modal..

    public function pinsert() {
    $amount = $this->input->post('amount');
    $paid_date = $this->input->post('paid_date');
    $project = $this->input->post('e1');

    $data = array(
        'paid_date' => $paid_date,
        'amount' => $amount,
        'pro_id' => $project
    );
    $this->db->insert('payment', $data);
   }

my controller

public function payment_insert() {
        $this->load->model('payment_model');
      $feed= $this->payment_model->pinsert();
      }

And lastly my jquery for ajax

  <script>
        $(document).ready(function() {
                   $(".btn-primary").live('click',function(){
               var post_data=$('.modal-body').find('input,select').serialize();
              // var select=$('select').val();
                 $.ajax(
                    {
                        url: "<?php echo site_url("payment/payment_insert"); ?>",
                        type: 'POST',
                        data: post_data,
                        success: function(result)
                        {
                        // console.log(result);
                             var $tr = $('<tr/>');
$tr.append($('<td/>').html(result.p_id));
$tr.append($('<td/>').html(result.project_title));
$tr.append($('<td/>').html(result.amount));
$tr.append($('<td/>').html(result.paid_date));
$tr.append($('<td/>').html(result.pro_id));
$('.table tr:last').before($tr);
                           //$('#table').html('<tr><td>'+result+'</td></tr>');
                        }
                    });

            return false;
            });

        });
    </script>
share|improve this question
1  
Please post what you're getting inside the success method after calling console.log(result); !! –  palaѕн Jul 2 '13 at 10:22
    
i'm getting nothing ..coz i couldnot figure out how to echo value for console.log(result); @PalashMondal –  Rozer Jul 2 '13 at 10:24
    
You're positive something like echo 'test'; doesn't show up in result.data when you inspect it in your client-side debugger? –  Mentok Jul 2 '13 at 10:26
    
i need that test like u commented to echo..so i can display. –  Rozer Jul 2 '13 at 10:32
    
Can you show us your "view" file (codeigniter)? –  matty Jul 2 '13 at 10:40
add comment

4 Answers

up vote 0 down vote accepted

Well I think you don't need to return the result back from your model WHY? because you sending the data which is enter in the form, so when you are sending data through ajax, don't don't send the whole form by serializing it. Get value of each text field send it as string and if the result is true show that variables in rows but if you still want to show it from data than, after inserting the record through model, than

public function payment_insert() {
    $this->load->model('payment_model');
    $amount = $this->input->post('amount');
    $paid_date = $this->input->post('paid_date');
    $project = $this->input->post('e1');


    $data = array(
       'paid_date' => $paid_date,
       'amount' => $amount,
       'pro_id' => $project
     );

    $feed= $this->payment_model->pinsert($data);
    print json_encode($feed);
  }

public function pinsert($data) {       
   $this->db->insert('payment', $data);
   $last_id = $this->db->last_id();//return last inserted id
   $this->db->where('id',$last_id);
   $query = $this->db->get();
   return $query->result_row();
}

you can also just return the last inserted id and than fetch the record from another function of model by passing this id to it. I hope it will help you

share|improve this answer
    
thank u this helped me slightly but how can i display on last row..my following code is not working for it –  Rozer Jul 2 '13 at 11:31
    
check in answers I will post for that... –  Mohammad Ismail Khan Jul 3 '13 at 4:46
add comment

Check this link

Using jQuery and ajax with Codeigniter

and remember one thing, without echoing you cant get ajax data.

share|improve this answer
add comment
$.ajax({
                    url: "<?php echo site_url("payment/payment_insert"); ?>",
                    type: 'POST',
                    data: post_data,
                    dataType: 'json',
                    success: function(result)
                    {
                     //console.log(result);
                      $.each(result,function(key,value){
                         var NewRow = '<tr><td">'+value.p_id+'</td>';
                             NewRow += '<td>'+value.project_title+'</td>';
                             NewRow += '<td>'+value.amount+'</td>';
                             NewRow += '<td>'+value.paid_date+'</td>';
                             NewRow += '<td>'+value.pro_id+'</td>';
                             NewRow += '</tr>';

                             $(".table").append(NewRow);
                      });
                    }
                });

        return false;
        });

I hope this will solve your problem. when you append a new thing it automatically goes to the end

share|improve this answer
add comment

you need to json_encode($result) your result in your controller.

and in jquery ajax request need to returning result in json format like this

dataType : 'json'

I think it will help.

share|improve this answer
    
but how can i get the value to encode..show me some way –  Rozer Jul 2 '13 at 10:31
    
you can use as you did before in success function –  sonusindhu Jul 2 '13 at 10:36
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.