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How do I use AJAX to return a variable in PHP? I am currently using echo in my controller to display a price on dropdown .change in a div called price.

However I have a hidden field which I need to return the row id to on change. How do I assign the return var in jQuery so that I can echo it in my hidden field?


$(document).ready(function() {
    $('#pricingEngine').change(function() {
         var query = $("#pricingEngine").serialize();
             type: "POST",
             url: "store/PricingEngine",
             data: query,
             success: function(data)
                  $('#price').removeClass('ajax-loading').html('$' + data).fadeIn(500);
    return false;



function PricingEngine()
    $post_options = array(
      'X_SIZE' => $this->input->post('X_SIZE'),
      'X_PAPER' => $this->input->post('X_PAPER'),
      'X_COLOR' => $this->input->post('X_COLOR'),
      'X_QTY' => $this->input->post('X_QTY'),
      'O_RC' => $this->input->post('O_RC')

    $data = $this->M_Pricing->ajax_price_engine($post_options);

    foreach($data as $pData) {
        echo number_format($pData->F_PRICE / 1000,2);
        return $ProductById = $pData->businesscards_id;


Here is my hidden field I want to pass the VAR to every-time the form is changed. " />

Thanks for the help!

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3 Answers 3

up vote 9 down vote accepted

Well.. One option would be to return a JSON object. To create a JSON object in PHP, you start with an array of values and you execute json_encode($arr). This will return a JSON string.

$arr = array(
echo json_encode($arr);


Now in your jQuery, you'll have to tell your $.ajax call that you are expecting some JSON return values, so you specify another parameter - dataType : 'json'. Now your returned values in the success function will be a normal JavaScript object.

  type: "POST",
  url: "...",
  data: query,
  dataType: 'json',
  success: function(data){
    console.log(data.stack); // overflow
    console.log(data.key);   // value
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I implemented your suggestion. It seems to be working but having some issues.. Please see new question… Thanks! ;) – Fab Nov 3 '12 at 20:51
how to get this string into php variable? – 151291 Nov 3 at 8:37
@151291 - In my example, the data inside the query variable will arrive inside the $_POST variable when this code executes the AJAX request. – Lix Nov 3 at 9:34
@151291 - it's really not clear what you are asking.. Please open a new post (if you can't find an answer on an already existing question). – Lix Nov 3 at 10:09
no new issue, success function returns empty data if i set dataType : 'json', else prints complete json element into html like this [{"id":"1001","full_name":"raju "}]. – 151291 Nov 3 at 10:23
echo json_encode($RESPONDE);

The exit is not to display other things except answer. RESPONDE is good to be array or object. You can access it at

success: function(data)
             { data }

data is the responde array or whatever you echo.. For example...

echo json_encode(array('some_key'=>'yesss')); exit();

at jquery

success: function(data){ alert(data.some_key); }
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if u are returning only single value from php respone to ajax then u can set it hidden feild using val method

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