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Im using JQUERY + CodeIgniter. I can't seem to get the returned data to display after an ajax call.

Here is my JQUERY:

  $.post("<?= site_url('plan/get_conflict') ?>", {
    user_id : user_id,
    datetime_from : plan_datetime_start,
    datetime_to : plan_datetime_end,
    json : true
   }, function(data) {
     }, "json");

Here is my CodeIgniter:

function get_conflict() {
 log_message("debug","get_conflict(): $result");
 return $result;

My logs show:

get_conflict(): {"work_product_name":"Functional Design Document","datetime_start_plan":"2010-04-22 08:00:00","datetime_end_plan":"2010-04-22 09:00:00","overlap_seconds":3600}

Meaning the JSON is being returned correctly. However, the alert(data) nor alert(data.work_product_name) are not displayed.

Any ideas?

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2 Answers 2

up vote 3 down vote accepted

You are returning the result... you should be outputting it.

For example

function get_conflict() {
    log_message("debug","get_conflict(): $result");

    $this->output->set_output( json_encode($result) );
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it works!! thanks man!!! –  Obay Mar 24 '10 at 4:55

Try this

 public function CreateStudentsAjax() {

        $this->form_validation->set_error_delimiters('', '');

        $this->form_validation->set_rules('roll', 'Roll Number', 'required');
        $this->form_validation->set_rules('name', 'Name', 'required');
        $this->form_validation->set_rules('phone', 'Phone', 'required');

        if ($this->form_validation->run()) {

            echo json_encode("Oks");
        } else {

            $data = array(
                'roll' => form_error('roll'),
                'name' => form_error('name'),
                'phone' => form_error('phone')

            echo json_encode($data);

and Scripts

<script type="text/javascript">


                            var obj = $.parseJSON(data);


                            alert("Please Try Again");
                    return false;
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