I need to make a mysql query according to the value of dropdown list. Here I use ajax to send dropdown value to the server. I think this part is working for me. But problem is I can not get it to php. Note: both are in the same page.

This is my Jquery code :

$('#filter-value').change(function(){
    var filterValue = $(this).val();
    //console.log(filterValue); 

    $.ajax({
        type: 'post',
        dataType: 'html',
        data: {filter: filterValue},
        success:function(data){ 
            alert(data); 
        }, 
        error:function (xhr, ajaxOptions, thrownError){
            //On error, we alert user
            alert(thrownError);
        }, 
        complete: function(){
            //alert('update success'); 
        }
    });
});

This is HTML form

    <form method="post" action="">
        <select id="filter-value" name="filter">
            <option value="10">10</option>
            <option value="20">20</option>
            <option value="30">30</option>              
        </select>
    </form>

This is my PHP code that I am trying on the top of the page :

if (isset($_POST['filter'])) {
    $filter = $_POST['filter']; 
    echo $filter; 
    exit;
} else {
    echo 'bad';
}

But this php code is always going to else part and print 'bad'

Can anybody tell me where I am going wrong?

Thank you.

  • Add echo json_encode($_POST) to the else clause. – Barmar Jun 29 '13 at 2:09
  • Your code checks out. Tell me what do you get if you do var_dump($_POST); exit; on the top of the PHP – Starx Jun 29 '13 at 2:11
  • @Starx I tried it and display this array(0) { } on the page – TNK Jun 29 '13 at 2:17
  • @Barmar it print this bad[] – TNK Jun 29 '13 at 2:18
  • @TNK, It is not the value Dude, specify the url now even if it the same page. – Starx Jun 29 '13 at 2:25

You have missed to specify the URL of the script. Be ensure that you are querying the correct file from the AJAX.

$.ajax({
    type: 'post',
    url: 'yourpage.php', // This one 
    //.....
});

Change your php to (and say save as xyz.php):

if($_POST) {
if (isset($_POST['filter'])) {
    $filter = $_POST['filter']; 
    echo $filter; 
    exit;
} else {
    echo 'bad';
}
}

and url to your ajax call:

$.ajax({
    url: "xyz.php",
    type: 'post',
    dataType: 'html',
    data: {filter: filterValue},
    success:function(data){ 
        alert(data); 
    }, 
  • now its not going to else part. But not echoing $filter also – TNK Jun 29 '13 at 2:14
  • you need to post to the file with this php script through your ajax call – raj Jun 29 '13 at 2:20
  • RAJ please tell me what do you mean in above comment – TNK Jun 29 '13 at 2:22
  • Answer edited. Note that the url you post to in the ajax call hits your php script – raj Jun 29 '13 at 2:29
  • do I need to add php to new page? – TNK Jun 29 '13 at 2:39

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