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The first time i make a post, the post submits fine. I then close the dialog window and click link to reopen and when i submit data again, it duplicates it and adds it twice. This behaviour just seems to keep adding a duplidcte each time. for example, post1 then post1+post1 then post1+post1+post1. I have to keep refreshing the browser to make a post. Hope you get the idea. If someone could check my code, i would be grateful. Many thanks

// Feedback form

function feedbacknew() {

    $("#fb_form").dialog({
        autoOpen: false,
        resizable: true,
        modal: true,
        title: 'Submit a feedback request',
        width: 480,
        beforeclose: function (event, ui) {
            $("#fb_message").html("");


        },
        close: function (event, ui) {
            $("#fb_message").html("");
            $("#feedback").get(0).reset();
            $("#fb_form").dialog('close');

        }

    });

    $('#fb_submit').live('click', function () {

        var name = $('#fb_uname').val();
        var client = $('#fb_client').val();
        var department = $('#fb_department').val();
        var email = $('#fb_email').val();
        var position = $('#fb_position').val();
        var feedback = $('#fb_feedbacknew').val();
        var data = 'fb_uname=' + name +
                   '&fb_client=' + client +
                   '&fb_department=' + department +
                   '&fb_email=' + email +
                   '&fb_position=' + position +
                   '&fb_feedbacknew=' + feedback;
        $.ajax({
            type: "POST",
            url: "feedback.php",
            data: data,
            success: function (data) {

                $("#feedback").get(0).reset();
                $('#fb_message').html(data);


                $("#flex1").flexReload();

            },
            error:function (xhr, ajaxOptions, thrownError){
                    alert(xhr.status);
                    alert(thrownError);
                }    
        });
        return false;

    });

    $("#fb_form").dialog('open');

}
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aren't you by any change reloading the same page (with the scripts)? then your calls get duplicated every time. –  Uku Loskit Jul 25 '11 at 19:46
    
@uku i think i need a way to move the click out of the feedbacknew function but not sure howm hence the post. thanks –  bollo Jul 25 '11 at 20:01
    
When is the feedbacknew function being called? –  Ewout Kleinsmann Jul 25 '11 at 20:08
    
it is being called from a on:press in flexigrid which opens the dialog. –  bollo Jul 26 '11 at 8:38

3 Answers 3

up vote 1 down vote accepted

I would add an alert into your click function to see how many times it is being called. If it is being called the correct amount of times, then you aren't clearing one of your elements correctly and each successive call is appending the data rather then setting it. You will be able to narrow down the problem at least this way

share|improve this answer
    
I have added alert to click and here is what happens. The first time I click from page refresh, it alerts once. I then close the form and submit again and it alerts twice. I then close the form and reopen, submit data and it alerts 3 times and continues to add 1 each time it is submitted. –  bollo Jul 26 '11 at 8:47
    
thanks to your suggestion, I moved the click out of the function and put in $function() and all is well. Thanks –  bollo Jul 26 '11 at 9:47

Change the .live() methods.

If you are using a new version of jquery you may use .on(). if not use directly .click() as follow:

$('#fb_submit').click(function () { ....

share|improve this answer

make sure to destroy the pop up after you close the popup . Because when a div is popped up, it's taken out of the html and appended to the end of body. after an ajax call, a new div is generated to fill in the original div's place. using destroy can place the div back to it's original place and no new div is generated to fill in the original div's place.

destroy() Removes the dialog functionality completely. This will return the element back to its pre-init state. This method does not accept any arguments. Code examples: Invoke the destroy method:

1 $( ".selector" ).dialog( "destroy" );

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