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 am having trouble in combining CodeIgniter and AJAX. I have a sign up form. What I want is that when user clicks on sign up button on my home page, he gets a sign up form in pop up. If he enter wrong details in the form , he is prompted on the pop up itself that your details are invalid, He must not be redirected to new page to show errors. So I am using bpopup to make my form pop up and ajax request, but I am not able to perform form_validation, I am little confused. If user does not pass form validation a HTML document is alerted to the user because of view being loaded. If I will not load the view , it will not show login page. If I will directly load view , how will I show user individual errors , like password must be 6 characters long. Here is my code :

My login view :

<html>
<head>
<title>Sign In</title>
<script type="text/javascript">
     var frm = $('form');
     frm.submit(function () {
     $("#status").empty();
     $.ajax({
        type: frm.attr('method'),
        url: frm.attr('action'),
        data: frm.serialize(),
        success: function (data) {
            if (data == "invalid") {
              $('#status').html("Invalid Login Details");
            }
            else if(data == "valid")
            {
                $('#status').html("Login successful");
                setTimeout(function(){
                    location.reload();
                },600);
            }
            else
            {
                $('#status').html("Your Account is not Activated");
            }
        }
    });
    return false;
});
</script>
</head>
<body>
<div class="Header">
    <h3>Sign In </h3>
</div>
<div id="status"></div>
<div class="main">
    <?php echo form_open('xyz/signin'); //Renders the form element and adds extra functionality like Adds a hidden CSFR prevention field.?> 
    <h5>Email</h5>  // For the time being I have remove echo form_error.
    <input type="text" name="email"  value="<?php echo set_value('email'); ?>" size="25"/>
    <h5>Password *</h5> // For the time being I have remove echo form_error.
    <input type="password" name="password" size="25"/>
    <div><input type="submit" value="Submit" "/></div>
    </form>
</div>

</body>
</html>

and here is my sign in function of xyz controller :

public function signin()
{
  $this->load->helper(array('form','url'));
  $this->load->library('form_validation');
  $config = array(
array(
'field' => 'email',
'label' => 'Email Address',
'rules' => 'trim|required|valid_email|xss_clean'
),
array(
'field' => 'password',
'label' => 'Password',
'rules' => 'trim|required|xss_clean'
)
  );
  $this->form_validation->set_rules($config);
if($this->form_validation->run() == FALSE)  /
{
    $this->load->view('pinflag/login.php');
}
else                               //format of form is correct
{   
    $email = $this->input->post('email');
    $password = md5($this->input->post('password'));
    $data = array(
        'email' => $email,
        'password' => $password
        );
    $result = $this->user_model->get_users($data);
    if($result->num_rows == 1)   //login details are correct
    {
        $result = $result->result_array();
        if($result[0]['status'] == 0)
        {
            echo "notActivated";

        }
        else
        {
        $this->session->set_userdata('id',$result[0]['id']);
        $this->session->set_userdata('name',$result[0]['fname']);
            echo "valid";
        }
            }
            else        //when user enter invalid login details
    {
        echo "invalid";
    }

}
}

Sorry, indentation got all messed up when I pasted the code here.

share|improve this question
    
I just need help that how should I process all my request on pop up along side using CodeIgniter. –  Shivam Jun 17 '13 at 6:07

1 Answer 1

i didn't get how your pop is coming but for error and success messages try

$this->session->set_flashdata("msg","<span class='m_error'>".$this->lang->line('global_insert_error')."</span>");

before your page to be loaded.

and inside your login view any part

if($this->session->flashdata('msg'))
{
   echo $this->session->flashdata('msg');
}
share|improve this answer
    
I have a sign in function in controller which loads login view. Now my problem is , if I load this->load->view('login') , then each time user click on submit. It will again load the view. How to void this problem ? I just want that my sign in page load once, and then make AJAX request to check login details. Shall I make seperate functions , one to show view and other to check details ? For pop up i have used bpopup, it just loads the url you provide in a pop up window –  Shivam Jun 17 '13 at 8:07
    
check if the login was success redirect to another page. –  Mehdi Jalal Jun 17 '13 at 8:57

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.