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I am kinda confused on it, when trying to send value on the same page.

 <script>
      $("select[name='sweets']").change(function () {
      var str = "";
      $("select[name='sweets'] option:selected").each(function () {
            str += $(this).text() + " ";

          });

            jQuery.ajax({
            type: "POST",
            data:  $("form#a").serialize(),

            success: function(data){
                jQuery(".res").html(data);

                $('#test').text($(data).html());


            }
            });  
            var str = $("form").serialize();
            $(".res").text(str);
    });
    </script>
 <div id="test">
 <?php
  echo $_POST['sweets'];
  ?>
  </div>
<form id="a" action="" method="post">
  <select name="sweets" >
   <option>Chocolate</option>
   <option selected="selected">Candy</option>
   <option>Taffy</option>
   <option>Caramel</option>
   <option>Fudge</option>
  <option>Cookie</option>
</select>
</form>

Well it will display if its in the top of html tag but if its inside the body it will display null.

share|improve this question
    
Please could you post the full PHP code? –  andyb Sep 27 '11 at 6:30
    
im on a testing phase that is the full php code. if you have a further question just add a comment. thanks –  GianFS Sep 28 '11 at 17:25
    
From the discussion on my answer, it became clear we need more info to help you. What are you trying to accomplish, exactly? Why do you need ajax if you are posting to the same page? –  bfavaretto Sep 28 '11 at 22:09

2 Answers 2

up vote 6 down vote accepted

Here is the working code for you. To send ajax request to the same page you can keep url parameter empty, which you are already doing. If you are trying to make the script behave differently when $_POST has value then use isset as I have used below.

 <?php
  if(isset($_POST['sweets'])) 
  {
    echo $_POST['sweets'];
    exit;
  }
  ?>

    <script>
        $(function(){
          $("select[name='sweets']").change(function () {
          var str = "";
          $("select[name='sweets'] option:selected").each(function () {
                str += $(this).text() + " ";

              });

                jQuery.ajax({
                type: "POST",
                data:  $("form#a").serialize(),

                success: function(data){
                    jQuery(".res").html(data);

                    $('#test').html(data);


                }
                });  
                var str = $("form").serialize();
                $(".res").text(str);
        });
        });
        </script>


 <div id="test">

  </div>

<form id="a" action="" method="post">
  <select name="sweets" >
   <option>Chocolate</option>
   <option selected="selected">Candy</option>
   <option>Taffy</option>
   <option>Caramel</option>
   <option>Fudge</option>
  <option>Cookie</option>
</select>
</form>
share|improve this answer
    
its just the same. it prints the whole form. –  GianFS Sep 28 '11 at 19:44
    
I have updated the whole code for you, added <?php if(isset($_POST['sweets'])) { echo $_POST['sweets']; exit; } at top. –  Usman Sep 28 '11 at 19:54
    
i see that value appear in the firebug but it is not displaying in the browser view. can you further explain why this happen? –  GianFS Sep 28 '11 at 20:02
    
I have updated it further, changed a line with .. $('#test').html(data);. It should work now. –  Usman Sep 28 '11 at 20:05
    
one more thing, is the php script will run after the data retrive? –  GianFS Sep 28 '11 at 20:21

You should wrap your code with

$(document).ready(function(){
   // your code here
});

This way, it will only run when the browser finishes processing the structure of your HTML.

UPDATE

There was a lot of debug stuff on your code, try this (requires Firebug to see the output of the ajax request):

<script>
$(document).ready(function(){
    $("select[name='sweets']").change(function () {
        jQuery.ajax({
            type: "POST",
            data:  $("form#a").serialize(),
            success: function(data) {
                // Check the output of ajax call on firebug console
                console.log(data);
            }
        });
    });
});
</script>
share|improve this answer
    
i seem that wont work, i tried adding it. but the question is how do send value from jquery ajax to php without reloading it. –  GianFS Sep 28 '11 at 17:23
    
You code already does that. I suggested using document.ready because you seem to be trying to add the change handler to the <select> before the browser knows what that element is. –  bfavaretto Sep 28 '11 at 17:37
    
oh yeah, but it appears that it display the whole form >_< can you make an example of it? –  GianFS Sep 28 '11 at 18:37
    
Please check the update above. –  bfavaretto Sep 28 '11 at 18:49
    
why it does the output did not print out? i added echo on it? –  GianFS Sep 28 '11 at 19:43

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