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I have the following div,

   <div id="mainoutput">
        <img src="/img/preloader.gif" alt="loading" class="preloader" />
    </div>

The beginning of my AJAX/Jquery is ,

        $(document).ready(function() {
            $(".preloader").hide();
            $("#button").click(function() {
                 $(".preloader").slideToggle( "slow" );
                 var host = $("#hostinput").val();
                 var record = $("#recordinput").val();
                 $.ajax({
                      url : "/cachecheck_ajax",
                      type : "POST",
                      dataType: "json",
                      data : {
                          hostinput : host,
                          recordinput : record,
                          csrfmiddlewaretoken: '{{ csrf_token }}'
                          },
                      success: function(json){

                      do some stuff...

                      $(".preloader").slideToggle( "slow" );
                      $('#mainoutput').html(table).hide().slideToggle( "slow" );

All works fine. I click submit, the preloader shows, until my ajax success kicks in, the preloader is toogled and my main div (#mainoutput) is shown.

However if I then want to submit again I want the #mainoutput to be toggled (hidden) and then preloader to show again. What is the best method to do this ?

I did try the following but it just complete broke the ajax and my json was just returned,

    $(document).ready(function() {
        $(".preloader").hide();
        $("#button").click(function() {
             // addition
             if($('#mainoutput').is(':visible'));{
                 $("#mainoutput").slideToggle( "slow" ).html();
             }
             //
             $(".preloader").slideToggle( "slow" );
             var host = $("#hostinput").val();
             var record = $("#recordinput").val();
             $.ajax({
share|improve this question
    
FWIW, You have "visable" which should be "visible." –  HodofHod Sep 24 '13 at 19:49
    
Try change if($('#mainoutput').is(':visable'));{ into if($('#mainoutput').is(':visible')){ –  Irvin Dominin Sep 24 '13 at 19:57
    
question updated, though now the preloader doesnt show at all ... –  felix001 Sep 24 '13 at 20:21

1 Answer 1

up vote 0 down vote accepted

I would use jQuery.Ajax's beforeSend and Complete callback methods. I hope below code will help you!

$(document).ready(function() {
    var xhr = null;
    $(".preloader").hide();

    $("#button").click(function() {
        var host = $("#hostinput").val();
        var record = $("#recordinput").val();

        if (xhr != null) {
            xhr.abort();    //Abort Existing XHR Call
            $(".preloader").hide(); //By Default hide the Element
        }

        //Get Referance in xhr variable
        xhr = $.ajax({
            url : "/cachecheck_ajax",
            type : "POST",
            dataType: "json",
            data : {
                hostinput : host,
                recordinput : record,
                csrfmiddlewaretoken: '{{ csrf_token }}'
            },
            beforeSend: function (jqXHR, settings) {
                $(".preloader").slideToggle( "slow" );  //Before sending to Server, Show the Element
            },
            success: function(json, textStatus, jqXHR) {

                //TODO: Do some stuff...!!!

                $('#mainoutput').html(table).hide().slideToggle( "slow" );
            },
            error: function (jqXHR, textStatus, errorThrown) {
                //TODO: Handle Errors here...!!!
            },
            complete: function (jqXHR, textStatus) {
                //jQuery will delegate call after XHR. So Hide the Element

                $(".preloader").slideToggle( "slow" );
            }
        });
    });
});
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