Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

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?

jQuery

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

});

Controller

function PricingEngine()
{
    //print_r($_POST);
    $this->load->model('M_Pricing');
    $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;
    }
}

View

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

Thanks for the help!

share|improve this question
up vote 11 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.

$arr = array(
  'stack'=>'overflow',
  'key'=>'value'
);
echo json_encode($arr);

{"stack":"overflow","key":"value"}

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.

$.ajax({
  type: "POST",
  url: "...",
  data: query,
  dataType: 'json',
  success: function(data){
    console.log(data.stack); // overflow
    console.log(data.key);   // value
  }
});
share|improve this answer
    
I implemented your suggestion. It seems to be working but having some issues.. Please see new question stackoverflow.com/questions/13213361/… Thanks! ;) – Fab Nov 3 '12 at 20:51
    
how to get this string into php variable? – 151291 Nov 3 '15 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 '15 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 '15 at 10:09
    
@151291 - without seeing the code you are using it's quite difficult to make suggestions. This is why I suggested opening a new post to solve your problem. – Lix Nov 3 '15 at 11:08
echo json_encode($RESPONDE);
exit(); 

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); }
share|improve this answer
    
controller returns json encoded object, how can i get this object into php script?, it means how can i pass an json object from ajax success function into php script – 151291 Dec 22 '15 at 9:03
    
@151291 to start any PHP action you have to make new request so you have to make again ajax.. But its not logical 1 ajax to trigger 2nd ajax to the same script, its better to put your logic in the 1st script which you trigger with ajax request, and there to run the 2nd logic which you want to add. (If its possible of course.. else you have to make a new ajax request) – Svetlio Dec 22 '15 at 9:21
    
json.decode() is not PHP function. Please go to PHP.net and search for JSON handling the documentation is full and you will understand it. I am not teacher. – Svetlio Dec 22 '15 at 10:13
    
Ya its my mistake, not json.decode its json_decode(), so this is php function right? – 151291 Dec 22 '15 at 10:16
    
from your answer, how can i get data values into php script if it is object. – 151291 Dec 22 '15 at 10:30

if u are returning only single value from php respone to ajax then u can set it hidden feild using val method

$("#hidden_fld").val(return_val); 
share|improve this answer

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.