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Can someone please help me, I want just to pass variable from java to php. Some jquery code :

$('#').keyup(function() {
        $.ajax({
            url: url,
            type: "get",
            data: some_data_to_send_to_url,
            success: function(data){
             var javaScriptVariable = data;                
            }
        });

      });

And I just want in the same php file do this :

$phpVariable = javaScriptVariable;

And then do some operations in php.

Thanks in advance :)

EDIT :

Thank, but I don't have problem with data that is sent to url: "data.php", This file receive some data, do some operation and return new data. And I have problem with this new data “success: function(data)” that comes from this file, and I want to assign this data to normal php variable.

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3  
Didn't you just get data from the server? Why do you want to send it back? –  Felix Kling Mar 22 '13 at 9:48
    
Well, did you try it, and did it work ? –  adeneo Mar 22 '13 at 9:48
    
$phpVariable = javaScriptVariable; - You can't do this because the JS variable exists in the browser and the PHP variable exists on the webserver. But you're already using the $.ajax() method, which is one way of passing data from JS to PHP... (As an aside, Java and JavaScript are not the same thing.) –  nnnnnn Mar 22 '13 at 9:48
    
you can use the answer of the following post : stackoverflow.com/q/15565203/1035257 –  Code Lღver Mar 22 '13 at 9:49
    
Thank, but I don't have problem with data that is sent to url: "data.php", This file receive some data, do some operation and return new data. And I have problem with this new data “success: function(data)” that come from this file, and I want to assign this data to normal php variable. –  arsen99 Mar 22 '13 at 10:18

3 Answers 3

refer this code to send data to php page as json object.

function send()
    {
    var ip=new Object();
    ip.session_id="312fdfwf1343r";
    var inputParam=JSON.stringify(ip);
    var module="module1";
     $.ajax({
                         type: "POST",
                     url: phpurl
                         data: {inputParam:inputParam,module :module},   
                     dataType: "json",
                         success: function(msg)
                         {
                                 }
              });                
    }
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$('#').keyup(function() {
       $.ajax({
         url:  "data.php", // php file where you want to send data
         type: "get",
         data: {"some_data_to_send_to_url" : "yourValue"}, // this data will be sent
         success: function(data){
           // do something on success
         }
      });
  });

Then in your "data.php" file

$data = $_GET["some_data_to_send_to_url"];

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jQuery doc states :

jqXHR.done(function(data, textStatus, jqXHR) {}); An alternative construct to the success callback option, the .done() method replaces the deprecated jqXHR.success() method. Refer to deferred.done() for implementation details.

Javascript

var some_data_to_send_to_url = {"yourDataKey" : "yourValue"};

('#yourID').keyup(function() {          //Your "#" is not a valid selector
    $.ajax({
        url: url,
        type: "get",
        data: some_data_to_send_to_url,

    }).done(function(data){             //Updated
         var javaScriptVariable = data;                
       });

 });

Php

$phpvariable = $_GET["yourDataKey"];
//Stuff
echo $yourReturn;       //This is what you sent == javascriptvariable

Anyway, as said previously, PHP is server side exclusively, and javascript / jQuery is client side exclusively. So you won't assign data to a PHP var on your jQuery's done().

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