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I am trying to populate a DIV with a table. The table needs to be styled and the styling has to be done in the controller and then passed to the AJAX request as a HTML snippet to be displayed in the result DIV. I am running to multiple issues with the implementation. Below is the code and summary. I am asking you to tell me what I should add to the generate_suggestions function to get it working.

How I've done it before in the view

  <table>
    <!-- Function that splits the array in $pages into the first 5 movie suggestions -->
    <?php foreach ($pages->result() as $row): ?>
      <a style="display:block" href="<?php echo base_url('core/detail/'.$row->id) ?>">
        <div id="suggested" onmouseover="" style="cursor: pointer;">
          <div id="info">  
              <p><b><?php echo $row->name ?></b></p>
          </div>
          <div class="details">
                <p><?php echo $row->summary ?></p>
          </div>
        </div    
      </a>    
    <?php endforeach; ?>
  </table>

This is how I styled the array of rows before. So basically what I need is to somehow fit this styling into the controller and then pass it to the request so it can display the results already styled.

Controller

public function generate_suggestions($start = 0, $count = 5) {

    $movies = $this->db->query('SELECT * FROM movies LIMIT ' . $start . ',' . $count);
    //Here I need to put the code that styles the contents of the array so it gets properly displayed in the div

On the first load I take the 1st 5 movies from my DB. Now I need to style the rows into table and send the table back to the request.

View

<div id="listB"></div>

</script><script type="text/javascript">
    var nextstart = 6;
    var movies_per_page = 5;

    $( "#next_btn" ).click(function() {

        $.get("core/generate_suggestions/"+nextstart+"/" + movies_per_page,
        function(data) {

            $( "#listB" ).html(data);

            nextstart += movies_per_page; 
        });
    });
</script>

</body>

In the view for some reason I need to insert the script at the end of the body. When I put it in the head nothing ever happens when I click the next_btn div. The script calls the generate_suggestions function from my controller and then displays the result in div listB

Thank you all for reading and your help. I am really clueless.

share|improve this question
    
please check wheather your are getting the paramters from the view to the function as your using the $.get() method you should use $post() –  saurabh2836 Dec 14 '13 at 14:05
    
I need to get something from the function. I just don't know how to pass it to the $get.. should it be in an echo or what, that is what I am trying to figure out –  user1227065 Dec 14 '13 at 14:18
    
echo $movies and alert in the script on the view page .... –  saurabh2836 Dec 14 '13 at 14:19
    
how do I do the alert please? does it belong into here function(data) { $( "#listB" ).html(data); nextstart += movies_per_page; }); –  user1227065 Dec 14 '13 at 14:39
    
function(data) {</br> alert(data);<br/> $( "#listB" ).html(data);<br/> nextstart += movies_per_page; <br/> });<br/> –  saurabh2836 Dec 14 '13 at 14:44

1 Answer 1

When you want to add some information from server using JQuery, you could use an easy way with the JQuery method called load()

Example:

$( "#next_btn" ).load( "core/generate_suggestions/"+nextstart+"/" + movies_per_page );

more info: http://api.jquery.com/load/

In CodeIgniter, the controller should call generate_suggestions, and with the data returned (movies) you have to call a view and insert them. The view should contain your html+php.Like:

$data['movies'] = $movies->result(); $this->load->view("yourview", $data);

http://ellislab.com/codeigniter/user-guide/general/views.html

share|improve this answer
    
yeah but I need to know in to what I should enclose the data I am trying to pass back to the request. –  user1227065 Dec 14 '13 at 14:19

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