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I'm trying to avoid the pesky page reload and trying to dynamically reload a div when the user submits a form. However, although the data does get passed successfully and the output of the serialized data is correct, I am not able to access these in the php file.

Here is my code:

<script>
      var submiting = false;
        function submitmyforum()
        {
            alert($('#filter_form').serialize());
            if ( submiting == false )
            {
                submiting  = true;
                $.ajax({
                    type:   'post',
                    url:    'index.php',
                    data:   $('#filter_form').serialize(),
                    success: function(data, status, jqXHR) { 
                        $('#clublist').html($(data).filter('#clublist').contents()); 
                        alert('submitted');
                        submiting  = false;
                    }           
                });
            }else
            {
                alert("Still working ..");
            }
        }
</script>
<?php
if(isset($_POST['location'])){
    echo "Location was set";
}
?>

Now, in my html i have multiple checkbox options with the name = "location[]". Besides, the web site is working fine with the traditional page reload technique in which the form submits the values to the same page via POST method. So i am kinda sure that there is nothing wrong at the html front. Awaiting a solution. Thanks a lot.

share|improve this question
    
you can access it by $_POST variable.. –  Nishant Solanki Mar 11 '14 at 11:26
    
Did you try a var_dump( $_POST ) to see what you got –  adeneo Mar 11 '14 at 11:27
    
I'm trying exactly that but I dont get the desired output. –  Jones Mar 11 '14 at 11:28
    
I'm trying exactly that but I dont get the desired output. I tried the var_dump as well. But no output. Actually, the moment i click on the button, i see the 2 alerts alright, the div gets reloaded but it appears empty, an echo "hi" doesnt get displayed either. –  Jones Mar 11 '14 at 11:34

1 Answer 1

if you want get data as post than you should use

serializeArray() instead of serialize()

because serializeArray() creates array which is not json array. I suggest you to change it in your code and try to access the data as $_POST

share|improve this answer
    
I tried that it isn't working. Should i be moulding my php into a separate function altogether and then mention the function in the url? I doubt if the data is really getting passed on to the php code. How can i check that? –  Jones Mar 11 '14 at 11:46
    
you can alert the data to check what kind of data you got in response and in your php page echo/print_r the variable/array and end it with exit. –  Ram Sharma Mar 11 '14 at 11:49

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